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Oracle Oracle Pillar Axiom 600

Golf Channel Selects Oracle's Pillar Axiom Storage device to assist speedy multiply and fresh fact Programming | killexams.com real Questions and Pass4sure dumps

REDWOOD SHORES, CA--(Marketwired - Jul 9, 2013) - Oracle ( NASDAQ : ORCL )

news information

  • Golf Channel, some of the fastest transforming into networks on television(1), is the expend of Oracle's Pillar Axiom 600 storage system to aid greater than one hundred,000 hours of content, as well as rapid boom and fresh veracity programming.
  • Golf Channel, a member of the NBC activities group, launched in January 1995 and become the first fully digital construction facility in the u.s.. In its first year, Golf Channel offered a limited tournament schedule to lower than 5 million buildings within the united states. these days, the network televises more than a hundred and fifty activities every 12 months from plenary of the world's accurate tours, in addition to pleasant fashioned productions to more than 120 million buildings international.
  • in the past two years, the enterprise has greater than doubled the volume of content that it creates, riding up storage necessities tremendously.
  • seeking a price-advantageous storage solution with the reliability to manipulate huge file sizes and convey content pretty much at a second's breathe aware, the Golf Channel deployed the Pillar Axiom 600 storage gadget.
  • The Pillar Axiom storage gadget manages and outlets more than 300 TB of video content and has scaled simply with the Golf Channel's hastily transforming into storage potential necessities, which doubled in the final two years.
  • The Pillar Axiom storage system furthermore enabled the company to consolidate each lively and torpid records in a separate storage pool with extremely quick study/write performance when relocating facts from torpid to active tiers, offering a substantial development over the enterprise's legacy atmosphere.
  • Golf Channel has furthermore more suitable storage effectivity, taking abilities of the Pillar Axiom storage system's quality of provider (QoS) capabilities to invent confident essential applications are prioritized despite different recreation on the device.
  • It has furthermore been used to assist fresh fact programming on the community, together with Golf Channel's The mammoth slay series.
  • With distinctive productions that shoot about 50TB video content every, Golf Channel makes expend of its Pillar Axiom storage device between its reside video storage gadget and archive, featuring a quick, authentic storage gadget to seamlessly transfer photos between editing and archive.
  • supporting Quote

  • "Oracle's Pillar Axiom 600 is a global-class storage solution that offers the scalability, reliability and availability which is so crucial to their business," mentioned Ken Botelho, Senior Director, Engineering, Golf Channel. "we can entry video content at almost a moment's notice. If they comprehend they should pick up information lower back quickly, they put it on the Pillar Axiom. It offers us the self assurance they exigency to breathe successful and allows for us to sleep at evening."
  • aiding resources

    About Oracle Oracle engineers hardware and software to labor collectively within the cloud and to your data middle. For greater counsel about Oracle ( NASDAQ : ORCL ), visit http://www.oracle.com/.

    Footnote

    (1) amongst plenary broadly allotted networks (obtainable in more than eighty million U.S. buildings)

    trademarks Oracle and Java are registered logos of Oracle and/or its affiliates. other names may breathe trademarks of their respective homeowners.


    Oracle Platinum features caters to excessive-conclusion shoppers | killexams.com real Questions and Pass4sure dumps

    Oracle Platinum functions, introduced Wednesday, is the business’s attempt to enhance its advocate profile and entice purchasers into purchasing confident Oracle server hardware and storage. experts and Oracle professionals order the brand fresh service is astounding but are worried about how it might move advocate high-quality for businesses not on Platinum.

    Oracle Platinum services promises larger assist satisfactory for Oracle valued clientele working so-called Platinum items: Exadata, Exalogic and Sparc Supercluster with Exadata, ZFS or Pillar Axiom 600 storage. elements encompass a 5-minute response time for probably the most pressing complications, known as Severity 1 or Sev 1, around-the-clock monitoring via Oracle assist staff, and quarterly patch updates achieved by means of Oracle team of workers. The provider-stage agreements (SLAs) additionally consist of a 15-minute restoration of a gadget happening or escalation to building for Severity 1 concerns.The carrier is included with Oracle Premier aid expenses for shoppers operating platinum products.

    “I admiration it’s a mammoth deal,” observed Dan Olds, analyst for Gabriel Consulting group Inc. in Beaverton, Ore. “probably the most largest hurdles in getting agencies to register for these items is the service stage. There aren’t a lot of corporations available that achieve these forms of numbers on their [service-level agreements].”

    Larry Abramson, senior vice chairman and commonplace manager of Oracle further customer aid services, mentioned he hopes the announcement can “carry the bar and delight customers.”

    “We hope they enjoy it and would exigency to buy more items,” he referred to.

    The announcement furthermore contains just a few add-ons. If a customer is working platinum and non-platinum items, they'll silent plunge under the umbrella to pick up platinum assist for everything. consumers can furthermore request a committed aid group for their organization below Oracle Platinum services.

    Andrew Kerber, a senior database administrator at a Midwest e-commerce enterprise, stated it makes sustain for Oracle to seat of attention on shoppers purchasing its most costly products comparable to Exadata and Exalogic. however he thinks that promising a five-minute response time to these platinum purchasers can handiest intimate that Oracle will hire extra assist technicians -- whatever thing Kerber finds not likely -- or will reassign these they gain already got from much less vital assignments to platinum.

    “Oracle’s response to Sev 1 issues from those shoppers with out platinum guide is likely to breathe degraded, and in my event that response is frequently marginal already,” he observed.

    Kerber’s belief of Oracle guide isn’t a lone voice within the barren region. a lot of surveys gain organize that IT customers are less satisfied with Oracle assist than with the assist of different vital IT carriers.

    one other DBA and Oracle ACE, who declined to breathe named, pointed out that there was “a lot of dissatisfaction with Oracle aid in the Oracle community at huge.” He referred to latest aid consumers might admiration a bit slighted by using the SLAs attached to the brand fresh Oracle Platinum features.

    he's additionally skeptical of letting Oracle pomp screen corporations’ techniques just so that you can pick up brief, inevitable support. And he wonders what Oracle is definitely after.

    “trying to raise their service gains future, with the thought of becoming the far off database assist traffic for IT groups?” he stated. “perhaps with the hope of poignant them into the Oracle cloud?”

    Olds notable the reasoning behind Oracle Platinum features could breathe twofold. One, they’re fire the heat from valued clientele.

    “however they’re additionally fire the warmth from their reduce market partake in hardware,” he noted. “in order that they’re providing top class features with their programs. It makes the usual package more beautiful.”


    Pillar hurries up disk arrays | killexams.com real Questions and Pass4sure dumps

    by means of Kevin Komiega

    Pillar statistics techniques continued to push its arrays from the midrange into the enterprise with the launch of the Axiom 600 and 600MC (Mission essential), which gain greater horsepower and application provisioning profiles than archaic models.

    Pillar bills the Axiom as an “utility-aware” storage equipment, which means it differentiates performance in keeping with application priority, allowing users to match assorted utility traits to provider degrees. The system applies provider ranges to a separate storage pool for plenary configurations (e.g., SAN, community-connected storage, or both).

    New utility profiles for the Axiom 600 encompass configurations for VMware, diverse Oracle purposes, virtual tape libraries (VTLs), Microsoft exchange, SQL, and others. The pre-configured and person-customizable profiles enable administrators to optimize the arrays for inevitable functions.

    The Axiom 600 was furthermore designed with a watch toward digital server environments. as an example, the equipment has the skill to dynamically allot or re-assign priorities to applications on-the-fly.

    Rob Commins, Pillar’s director of product advertising, says the Axiom 600 is in line with an superior architecture that doubles the efficiency of the Axiom 500 by means of advancements in the Slammer Storage Controllers.

    “We without vicissitude doubled the bandwidth and processor speeds, permitting clients to guide twice as many consolidated applications,” says Commins.

    The Slammer controllers characteristic a twin-processor architecture, computerized fail-over, redundant vigour materials, and battery-backed cache. each and every Slammer controls a given set of storage means “bricks,” which embrace SATA or Fibre Channel drives. Pillar sells the Axiom in a modular trend, with different flavors of its controllers for diverse storage applied sciences.

    The Fibre Channel SAN Slammer has four exterior I/O connections and an information rate of as much as 4Gbps.

    The iSCSI Slammer offers SAN connectivity over an Ethernet network at wire velocity and helps plenary Axiom configuration and dynamic provisioning facets, internet Storage designation Server (iSNS), and iSCSI network Boot Protocol (iNBP).

    The mixture Fibre Channel/iSCSI Slammer helps four Fibre Channel ports and 4 iSCSI ports. An iSCSI ameliorate kit is additionally attainable to transform an latest SAN Slammer into a Fibre Channel/iSCSI controller.

    The NAS Slammer offers multi-node file capabilities and helps CIFS and NFS.

    The SATA Brick offers throughput in excess of 1,000 random IOPS and 350MBps, comprises two RAID controllers to manipulate 12 drives, and helps RAID 5 and 10. The thirteenth drive is a shared scorching spare that may well breathe accessed by means of either controller in case of disk failure. The Fibre Channel Brick features a throughput of 2,500 random IOPS and 400MBps. each and every brick can furthermore breathe cascaded to a few extra bricks, simultaneously scaling capability and IOPS. Two RAID adapters manage 12 drives and assist RAID 5 and 10.

    The changes between the Axiom 600 and 600MC are in facts-coverage alternate options and redundant hardware accessories. The 600MC uses the AxiomONE local insurance policy utility, together with extent copies and replication to retain information availability. A 2d system can breathe provisioned at a catastrophe-healing web page as a replication goal for the leading website.

    The Axiom 600 supports up to 32 4Gbps Fibre Channel connections with 192GB of cache and 1.6PB of uncooked capacity using 1TB SATA drives. The gadget can even breathe configured with 146GB or 300GB 15,000rpm Fibre Channel drives.

    Being that Pillar is backed by Larry Ellison, it goes with out asserting that the Axiom 600 points some wonderful storage management and provisioning innovations for Oracle environments.

    The Axiom 600 leans on Oracle’s automatic Storage manager (ASM) for streamlined management with the aid of Oracle database directors. Axiom storage can now breathe managed within the context of the Oracle commercial enterprise administration interface, enabling 10g and 11g administrators to tune storage to the efficiency provider tiers required by using distinctive applications working in the Oracle Grid.

    additionally, Pillar now allows Oracle write operations to chance in 1MB “wide stripes,” resulting in bigger throughput between the storage equipment and applications.

    The entry-stage cost for the Axiom 600 is about $eighty,000.




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    1Z0-581 exam Dumps Source : Pillar Axiom 600 Storage System Certified Implementation Specialist

    Test Code : 1Z0-581
    Test designation : Pillar Axiom 600 Storage System Certified Implementation Specialist
    Vendor designation : Oracle
    : 84 real Questions

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    Cascade Orthopedic Supply moves dozens of arms and legs each day. But its sales team felt disconnected from the rewards of their labor because of the company's patchwork system that tracked commissions.

    Eight sales representatives sell prosthetic limbs, back and knee braces and other patient aids to orthopedic and prosthetic providers across North America. But representatives never saw which transactions they got credit for until pay day because Cascade didn't gain a sales performance tool.

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    Maiden Ore Reserve, Board Changes, Interim Funding | killexams.com real questions and Pass4sure dumps

    27 June 2017

    EUROPEAN METALS HOLDINGS LIMITED

    CINOVEC MAIDEN ORE RESERVE, BOARD CHANGES, INTERIM FUNDING

     

    European Metals Holdings Limited ("European Metals" or "the Company") (ASX and AIM: EMH) is pleased to declare the maiden Ore Reserve at the Company's Cinovec Lithium / Tin Project in the Czech Republic.  In addition, the Company has appointed Mr Richard Pavlik to the Board of Directors, and secured short-term funding.

    ·     Maiden Ore Reserve of 34.5 Mt @ 0.65% Li2O declared for Cinovec Project

    ·     Richard Pavlik, current in-country manager, appointed as Director

    ·     Short term funding secured

     

    European Metals Managing Director Keith Coughlan said, "I am pleased to report a maiden Ore Reserve for Cinovec. The conversion of 34.5 million tonnes of Mineral Resource to Ore Reserve was facilitated by the recently published PFS.  This is another significant step in the development of the largest lithium resource in Europe. I am furthermore very pleased to welcome Richard Pavlik to the Board of Directors of European Metals on the resignation of Mr Pavel Reichl. Richard has made a significant contribution to the Company since taking the role of Country Manager in January and is a key component of the development of the project. On behalf of the Board I would enjoy to thank Pavel for his role in the development of Cinovec to date. Pavel has been instrumental in securing the project and in managing a august deal of the early work. In addition, they gain secured short term funding to allow us to continue labor on the Definitive Feasibility Study whilst finalising discussions with a number of potential European based partners. It is the company's preferred route to confederate with a European strategic investor for the bulk of the feasibility funding."  

     

    ORE RESERVE STATEMENT

    Based upon the introductory Feasibility Study undertaken for the Cinovec Project, the Company declares a maiden Probable Ore Reserve of 34.5 Mt @ 0.65% Li2O, as detailed below. The Probable Reserves gain been declared solely from the Indicated Mineral Resource category and are classified based on a PFS flat of study and category of Mineral Resource.

    CINOVEC ORE RESERVES SUMMARY

     

    Category

    Tonnes

    Li

    Li20

    Sn

    W

    (Millions)

    %

    %

    %

    %

    Proven Ore Reserves

    0

    0

    0

    0

    0

    Probable Ore Reserves

    34.5

    0.30

    0.65

    0.09

    0.03

    Total Ore Reserves

    34.5

    0.30

    0.65

    0.09

    0.03

     

     

    Notes to Reserves Table.

    1. Probable Ore Reserves gain been prepared by Bara International in accordance with the guidelines of the JORC Code (2012).

    2. The efficient date of the Probable Ore Reserves is June 2017.

    3. plenary figures are rounded to reflect the relative accuracy of the estimate.

    4. The operator of the project is Geomet S.R.O. a wholly-owned subsidiary of EMH. flagrant and Net Attributable Probable Ore Reserves are the same.

    5. Any manifest inconsistencies are due to rounding errors.

     

    The Mineral Resource for the Cinovec deposit was prepared by Widenbar and Associates and issued in February, 2017.  The Mineral Resource is reported in the report Cinovec Resource Estimation published by Widenbar and Associates and is reported in accordance with the JORC 2012 guidelines. The table below summarises the Mineral Resource declared.

     

    CINOVEC 2017 RESOURCE

    Cutoff

    Tonnes

    Li

    Li2O

    Sn

    W

    %

    (Millions)

    %

    %

    %

    %

    INDICATED

    0.1%

    347.7

    0.21

    0.45

    0.04

    0.015

    INFERRED

    0.1%

    308.8

    0.18

    0.39

    0.04

    0.014

    TOTAL

    0.1%

    656.5

    0.20

    0.43

    0.04

    0.014

     

     

    BOARD CHANGES

    The Company is pleased to declar that Mr Richard Pavlik has been appointed to the Board with immediate effect. Mr Pavlik is the generic Manager of Geomet s.r.o., the Company's wholly owned Czech subsidiary, and is a highly experienced Czech mining executive. Mr Pavlik holds a Masters Degree in Mining Engineer from the Technical University of Ostrava in Czech Republic. He is the former Chief Project Manager and Advisor to the Chief Executive Officer at OKD. OKD has been a major coal producer in the Czech Republic. He has almost 30 years of apposite industry sustain in the Czech Republic. Mr Pavlik furthermore has sustain as a Project Analyst at Normandy Capital in Sydney as partake of a postgraduate programme from Swinburne University. Mr Pavlik has held previous senior positions within OKD and fresh World Resources as Chief Engineer, and as Head of Surveying and Geology. He has furthermore served as the Head of the Supervisory Board of NWR Karbonia, a Polish subsidiary of fresh World Resources (UK) Limited. He has an intimate scholarship of mining in the Czech Republic.

     

    Mr Pavlik has been appointed to replace Mr. Pavel Reichl, who resigns on his request to pursue other interests. Mr Reichl has been instrumental in the development of the Cinovec Project and has been involved in the project since 2010. The company thanks Pavel for his vision in initially identifying the opportunity presented by the project and for his focused commitment in assisting in the development of the project to date. Mr Reichl will continue to provide geologic services on an as-needed basis.

     

     

    INTERIM FUNDING

    The Company is actively engaged in discussions with potential European strategic partners with regards to the funding and development of the Cinovec Project. Given the lofty flat of interest in Europe in the lithium market, the Company is confident of a successful outcome in the near term in this regard. In order to allow adequate time to finalise discussions and properly assess the various options open to the Company, the Company has arranged an interim funding facility to maintain momentum in developing the project.

     

    This facility has been provided by an Australian based sophisticated investor, 6466 Investments Pty Ltd, and allows for the draw down of up to AUD 2 million in tranches as required over 12 months. Any funds drawn down will convert to CDI's in the Company at a 10% discount to the 10 day vwap in the Company's securities. The funds will breathe used in the preparation of the Company's Definitive Feasibility Study, for further drilling and generic working capital. The issue of shares pursuant to draw downs does not require shareholder approval.

     

    BACKGROUND INFORMATION ON CINOVEC

    PROJECT OVERVIEW

    Cinovec Lithium/Tin Project

    European Metals owns 100% of the Cinovec lithium-tin deposit in the Czech Republic. Cinovec is an historic mine incorporating a significant undeveloped lithium-tin resource with by-product potential including tungsten, rubidium, scandium, niobium and tantalum and potash. Cinovec hosts a globally significant hard rock lithium deposit with a total Indicated Mineral Resource of 348Mt @ 0.45% Li2O and 0.04% Sn and an Inferred Mineral Resource of 309Mt @ 0.39% Li2O and 0.04% Sn containing a combined 7.0 million tonnes Lithium Carbonate Equivalent and 263kt of tin.

    This makes Cinovec the largest lithium deposit in Europe, the fourth largest non-brine deposit in the world and a globally significant tin resource.

    The deposit has previously had over 400,000 tonnes of ore mined as a crucible sub-level open stope underground mining operation.

    The recently completed introductory Feasibility Study, conducted by specialist independent consultants, returned a post tax NPV of USD540m and an IRR of 21%. It confirmed the deposit is breathe amenable to bulk underground mining. Metallurgical test labor has produced both battery grade lithium carbonate and high-grade tin concentrate at excellent recoveries. Cinovec is centrally located for European end-users and is well serviced by infrastructure, with a sealed road adjacent to the deposit, rail lines located 5 km north and 8 km south of the deposit and an active 22 kV transmission line running to the historic mine. As the deposit lies in an active mining region, it has tough community support.

    The economic viability of Cinovec has been enhanced by the recent tough multiply in demand for lithium globally, and within Europe specifically.

     

    CONTACT

    For further information on this update or the Company generally, tickle visit their website at www. http://europeanmet.com or contact:

    Mr. Keith CoughlanManaging Director

     

    COMPETENT PERSON

    Information in this release that relates to exploration results is based on information compiled by European Metals Director Dr Pavel Reichl. Dr Reichl is a Certified Professional Geologist (certified by the American Institute of Professional Geologists), a member of the American Institute of Professional Geologists, a Fellow of the Society of Economic Geologists and is a Competent Person as defined in the 2012 edition of the Australasian Code for Reporting of Exploration Results, Mineral Resources and Ore Reserves and a Qualified Person for the purposes of the flat Guidance Note on Mining and Oil & Gas Companies dated June 2009. Dr Reichl consents to the inclusion in the release of the matters based on his information in the form and context in which it appears. Dr Reichl holds CDIs in European Metals.

    The information in this release that relates to Mineral Resources and Exploration Targets has been compiled by Mr Lynn Widenbar. Mr Widenbar, who is a Member of the Australasian Institute of Mining and Metallurgy, is a plenary time employee of Widenbar and Associates and produced the estimate based on data and geological information supplied by European Metals. Mr Widenbar has adequate sustain that is apposite to the style of mineralisation and nature of deposit under consideration and to the activity that he is undertaking to qualify as a Competent Person as defined in the JORC Code 2012 Edition of the Australasian Code for Reporting of Exploration Results, Minerals Resources and Ore Reserves. Mr Widenbar consents to the inclusion in this report of the matters based on his information in the form and context that the information appears.

    The information in this release that relates to Mineral Reserves is based on, and fairly represents, information and supporting documentation prepared by Mr Jim Pooley. Mr Pooley, who is a Fellow of the Southern African Institute of Mining and Metallurgy, is a plenary time employee of Bara International Ltd and produced the estimate based on the Mineral Resource supplied by European Metals. Mr Pooley has adequate sustain that is apposite to the style of mineralisation and nature of deposit under consideration and to the activity that he is undertaking to qualify as a Competent Person as defined in the JORC Code 2012 Edition of the Australasian Code for Reporting of Exploration Results, Minerals Resources and Ore Reserves. Mr Pooley consents to the inclusion in this report of the matters based on his information in the form and context that the information appears.

    CAUTION REGARDING FORWARD LOOKING STATEMENTS

    Information included in this release constitutes forward-looking statements. Often, but not always, forward looking statements can generally breathe identified by the expend of forward looking words such as "may", "will", "expect", "intend", "plan", "estimate", "anticipate", "continue", and "guidance", or other similar words and may include, without limitation, statements regarding plans, strategies and objectives of management, anticipated production or construction commencement dates and expected costs or production outputs.

    Forward looking statements inherently involve known and unknown risks, uncertainties and other factors that may occasions the company's actual results, performance and achievements to vary materially from any future results, performance or achievements. apposite factors may include, but are not limited to, changes in commodity prices, alien exchange fluctuations and generic economic conditions, increased costs and demand for production inputs, the speculative nature of exploration and project development, including the risks of obtaining necessary licences and permits and diminishing quantities or grades of reserves, political and companionable risks, changes to the regulatory framework within which the company operates or may in the future operate, environmental conditions including extreme weather conditions, recruitment and retention of personnel, industrial relations issues and litigation.

    Forward looking statements are based on the company and its management's pleasant faith assumptions relating to the financial, market, regulatory and other apposite environments that will exist and move the company's traffic and operations in the future. The company does not give any assurance that the assumptions on which forward looking statements are based will prove to breathe correct, or that the company's traffic or operations will not breathe affected in any material manner by these or other factors not foreseen or foreseeable by the company or management or beyond the company's control.

    Although the company attempts and has attempted to identify factors that would occasions actual actions, events or results to vary materially from those disclosed in forward looking statements, there may breathe other factors that could occasions actual results, performance, achievements or events not to breathe as anticipated, estimated or intended, and many events are beyond the reasonable control of the company. Accordingly, readers are cautioned not to dwelling undue reliance on forward looking statements. Forward looking statements in these materials speak only at the date of issue. matter to any continuing obligations under applicable law or any apposite stock exchange listing rules, in providing this information the company does not undertake any responsibility to publicly update or revise any of the forward looking statements or to counsel of any change in events, conditions or circumstances on which any such statement is based.

    Statements regarding plans with respect to the Company's mineral properties may contain forward-looking statements in relation to future matters that can only breathe made where the Company has a reasonable basis for making those statements.

    This announcement has been prepared in compliance with the JORC Code 2012 Edition and the current ASX Listing Rules.

     

    LITHIUM CLASSIFICATION AND CONVERSION FACTORS

    Lithium grades are normally presented in percentages or parts per million (ppm). Grades of deposits are furthermore expressed as lithium compounds in percentages, for illustration as a percent lithium oxide (Li2O) content or percent lithium carbonate (Li2CO3) content.

    Lithium carbonate equivalent ("LCE") is the industry measure terminology for, and is equivalent to, Li2CO3. expend of LCE is to provide data comparable with industry reports and is the total equivalent amount of lithium carbonate, assuming the lithium content in the deposit is converted to lithium carbonate, using the conversion rates in the table included below to pick up an equivalent Li2CO3value in percent. expend of LCE assumes 100% recovery and no process losses in the extraction of Li2CO3from the deposit.

    Lithium resources and reserves are usually presented in tonnes of LCE or Li.

    The measure conversion factors are set out in the table below:

    Table: Conversion Factors for Lithium Compounds and Minerals

    Convert from

     

    Convert to Li

    Convert to Li2O

    Convert to Li2CO3

    Lithium

    Li

    1.000

    2.153

    5.324

    Lithium Oxide

    Li2O

    0.464

    1.000

    2.473

    Lithium Carbonate

    Li2CO3

    0.188

    0.404

    1.000

     

    WEBSITE

    A copy of this announcement is available from the Company's website at www.europeanmet.com.

     

    TECHNICAL GLOSSARY

    The following is a summary of technical terms:

    "beneficiation" or "benefication"

    in extractive metallurgy, is any process that improves (benefits) the economic value of the ore by removing the gangue minerals, which results in a higher grade product (concentrate) and a squander stream (tailings)

    "carbonate"

    refers to a carbonate mineral such as calcite, CaCO3

    "cut-off grade"

    lowest grade of mineralised material considered economic, used in the calculation of Mineral Resources

    "deposit"

    coherent geological corpse such as a mineralised body

    "exploration"

    method by which ore deposits are evaluated

    "g/t"

    gram per metric tonne

    "grade"

    relative quantity or the percentage of ore mineral or metal content in an ore body

    "Indicated" or "Indicated Mineral Resource"

    as defined in the JORC and SAMREC Codes, is that partake of a Mineral Resource which has been sampled by drill holes, underground openings or other sampling procedures at locations that are too widely spaced to ensure continuity but close enough to give a reasonable indication of continuity and where geoscientific data are known with a reasonable degree of reliability. An Indicated Mineral Resource will breathe based on more data and therefore will breathe more trustworthy than an Inferred Mineral Resource estimate

     

    "Inferred" or "Inferred Mineral Resource"

    as defined in the JORC and SAMREC Codes, is that partake of a Mineral Resource for which the tonnage and grade and mineral content can breathe estimated with a low flat of confidence. It is inferred from the geological evidence and has assumed but not verified geological and/or grade continuity. It is based on information gathered through the appropriate techniques from locations such as outcrops, trenches, pits, working and drill holes which may breathe limited or of uncertain quality and reliability

     

    "JORC Code"

    Joint Ore Reserve Committee Code; the Committee is convened under the auspices of the Australasian Institute of Mining and Metallurgy

    "kt"

    thousand tonnes

    "LCE"

    the total equivalent amount of lithium carbonate (see explanation above entitled Explanation of Lithium Classification and Conversion Factors)

    "lithium"

    a soft, silvery-white metallic element of the alkali group, the lightest of plenary metals

    "lithium carbonate"

    the lithium salt of carbonate with the formula Li2CO3

    "Measured" or Measured Mineral Resources"

    Measured: a mineral resource intersected and tested by drill holes, underground openings or other sampling procedures at locations which are spaced closely enough to verify continuity and where geoscientific data are reliably known; a measured mineral resource estimate will breathe based on a substantial amount of trustworthy data, interpretation and evaluation which allows a limpid determination to breathe made of shapes, sizes, densities and grades. Indicated: a mineral resource sampled by drill holes, underground openings or other sampling procedures at locations too widely spaced to ensure continuity but close enough to give a reasonable indication of continuity and where geoscientific data are known with a reasonable degree of reliability; an indicated resource will breathe based on more data, and therefore will breathe more trustworthy than an inferred resource estimate. Inferred: a mineral resource inferred from geoscientific evidence, underground openings or other sampling procedures where the want of data is such that continuity cannot breathe predicted with aplomb and where geoscientific data may not breathe known with a reasonable flat of reliability

    "metallurgical"

    describing the science concerned with the production, purification and properties of metals and their applications

    "micrometer"

    (symbol µm) is an SI unit of length equal to one millionth of a metre

    "Mineral Resource"

    a concentration or happening of material of intrinsic economic interest in or on the Earth's crust in such a form that there are reasonable prospects for the eventual economic extraction; the location, quantity, grade geological characteristics and continuity of a mineral resource are known, estimated or interpreted from specific geological evidence and knowledge; mineral resources are sub-divided into Inferred, Indicated and Measured categories

    "mineralisation"

    process of formation and concentration of elements and their chemical compounds within a mass or corpse of rock

    "Mt"

    "Ore Reserve"

    million tonnes

    An Ore Reserve is the economically mineable partake of a Measured or Indicated Mineral Resource. It includes diluting materials and allowance for losses which may occur when the material is mined. appropriate assessments, which may embrace pre-feasibility or  feasibility studies, gain been carried out, and will embrace consideration of an modification by realistically assumed mining, metallurgical, economic, marketing, legal, environmental, companionable and governmental factors. These assessments demonstrate at the time of reporting that extraction could reasonably breathe justified. Ore Reserves are sub-divided in order of increasing aplomb into Probable Ore Reserves and Proved Ore Reserves.

    "P80"

    the mill circuit product size in micrometers

    "ppm"

    "Probable Ore Reserve"

    "PSD"

    parts per million

    A Probable Ore Reserve is the economically mineable partake of an Indicated Mineral Resource, and in some circumstances, Measured Mineral Resource.

    particle size distribution

    "recovery"

    proportion of valuable material obtained in the processing of an ore, stated as a percentage of the material recovered compared with the total material present

    "run-of-mine"

    mined ore of a size that can breathe processed without further crushing

    "semi-autogenous grinding" or "SAG"

    a passage of grinding rock into fine powder whereby the grinding media consist of larger chunks of rocks and steel balls

    "stope"

    underground excavation within the orebody where the main production takes place

    "t"

    a metric tonne

    "tin"

    A tetragonal mineral, rare; soft; malleable: bluish white, organize chiefly in cassiterite, SnO2

    "treatment"

    Physical or chemical treatment to extract the valuable metals/minerals

    "tungsten"

    hard, brittle, white or grey metallic element. Chemical symbol, W; furthermore known as wolfram

    "W"

    chemical symbol for tungsten

     

    ADDITIONAL GEOLOGICAL TERMS

    "apical"

    relating to, or denoting an apex

     

    "cassiterite"

    a mineral, tin dioxide, SnO2. Ore of tin with specific gravity 7

    "cupola"

    a dome-shaped projection at the top of an igneous intrusion

    "dip"

    the accurate douse of a plane is the angle it makes with the horizontal plane

    "glaserite"

    A colourless or white crystalline compound, K2SO4, used in glassmaking and fertilisers and as a reagent in analytical chemistry

    "granite"

    coarse-grained intrusive igneous rock dominated by light-coloured minerals, consisting of about 50% orthoclase, 25% quartz and poise of plagioclase feldspars and ferromagnesian silicates

    "greisen"

    a pneumatolitically altered granitic rock composed largely of quartz, mica, and topaz. The mica is usually muscovite or lepidolite. Tourmaline, fluorite, rutile, cassiterite, and wolframite are common accessory minerals

    "igneous"

    said of a rock or mineral that solidified from molten or partly molten material, i.e., from a magma

    "muscovite"

    also known as potash mica; formula: KAl2(AlSi3O10)(F,OH)2.

    "quartz"

    a mineral composed of silicon dioxide, SiO2

    "rhyolite"

    an igneous, volcanic rock of felsic (silica rich) composition.  Typically >69% SiO2

     

    "vein"

    a tabular deposit of minerals occupying a fracture, in which particles may grow away from the walls towards the middle

    "wolframite"

    a mineral, (Fe,Mn)WO4; within the huebnerite-ferberite series

    "zinnwaldite"

    a mineral, KLiFeAl(AlSi3)O10 (F,OH)2; mica group; basal cleavage; pale violet, yellowish or greyish brown; in granites, pegmatites, and greisens

     

     

    ENQUIRIES:

    European Metals Holdings Limited

    Keith Coughlan, Chief Executive Officer

     

     

    Kiran Morzaria, Non-Executive Director

     

    Julia Beckett, Company Secretary

     

    Tel: +61 (0) 419 996 333

    Email: keith@europeanmet.com

     

    Tel: +44 (0) 20 7440 0647

     

    Tel: +61 (0) 6141 3504

    Email: julia@europeanmet.com

     

    Beaumont Cornish (Nomad & Broker)

    Michael Cornish

    Roland Cornish

    Tel: +44 (0) 20 7628 3396

    Email: corpfin@b-cornish.co.uk

     

     

    The information contained within this announcement is considered to breathe inside information, for the purposes of Article 7 of EU Regulation 596/2014, prior to its release.

     

    Section 1 Sampling Techniques and Data

    Criteria

    JORC Code explanation

    Commentary

    Sampling techniques

    ·     Nature and quality of sampling (eg lop channels, random chips, or specific specialised industry measure measurement tools appropriate to the minerals under investigation, such as down hole gamma sondes, or handheld XRF instruments, etc). These examples should not breathe taken as limiting the broad significance of sampling.

    ·     embrace reference to measures taken to ensure sample representivity and the appropriate calibration of any measurement tools or systems used.

    ·     Aspects of the determination of mineralisation that are Material to the Public Report.

    ·     In cases where 'industry standard' labor has been done this would breathe relatively simple (eg 'reverse circulation drilling was used to obtain 1 m samples from which 3 kg was pulverised to bear a 30 g permeate for fire assay'). In other cases more explanation may breathe required, such as where there is gross gold that has inherent sampling problems. Unusual commodities or mineralisation types (eg submarine nodules) may warrant disclosure of detailed information.

    ·      In 2014, the Company commenced a core drilling program and collected samples from core splits in line with JORC Code guidelines. 

    ·      Sample intervals honour geological or visible mineralization boundaries and vary between 50cm and 2 m. Majority of samples is 1 m in length

    ·      The samples are half or quarter of core; the latter applied for big diameter core.

    ·      Between 1952 and 1989, the Cinovec deposit was sampled in two ways: in drill core and underground channel samples.

    ·      Channel samples, from drift ribs and faces, were collected during detailed exploration between 1952 and 1989 by Geoindustria n.p. and Rudne Doly n.p., both Czechoslovak status companies. Sample length was 1 m, channel 10x5cm, sample mass about 15kg. Up to 1966, samples were collected using hammer and chisel; from 1966 a petite drill (Holman Hammer) was used. 14179 samples were collected and transported to a crushing facility.

    ·      Core and channel samples were crushed in two steps: to -5mm, then to -0.5mm. 100g splits were obtained and pulverized to -0.045mm for analysis.

    Drilling techniques

    ·     Drill nature (eg core, invert circulation, open-hole hammer, rotary air blast, auger, Bangka, sonic, etc) and details (eg core diameter, triple or measure tube, depth of diamond tails, face-sampling bit or other type, whether core is oriented and if so, by what method, etc).

    ·      In 2014, three core holes were drilled for a total of 940.1m. In 2015, six core holes were drilled for a total of 2,455.0m. In 2016, eight core holes were drilled for a total of 2,795.6m.

    ·      In 2014 and 2015, the core size was HQ3 (60mm diameter) in upper parts of holes; in deeper sections the core size was reduced to NQ3 (44mm diameter). Core recovery was lofty (average 98%). In 2016 up to four drill rigs were used, and select holes employed PQ sized core for upper parts of the drillholes.

    ·      Historically only core drilling was employed, either from surface or from underground. 

    ·      Surface drilling: 80 holes, total 30,340 meters; vertical and inclined, maximum depth 1596m (structural hole). Core diameters from 220mm near surface to 110 mm at depth. average core recovery 89.3%.

    ·      Underground drilling: 766 holes for 53,126m; horizontal and inclined. Core diameter 46mm; drilled by Craelius XC42 or DIAMEC drills.

    Drill sample recovery

    ·     passage of recording and assessing core and chip sample recoveries and results assessed.

    ·     Measures taken to maximise sample recovery and ensure representative nature of the samples.

    ·     Whether a relationship exists between sample recovery and grade and whether sample prejudice may gain occurred due to preferential loss/gain of fine/coarse material.

    ·      Core recovery for historical surface drill holes was recorded on drill logs and entered into the database.

    ·      No correlation between grade and core recovery was established.

    Logging

    ·     Whether core and chip samples gain been geologically and geotechnically logged to a flat of detail to advocate appropriate Mineral Resource estimation, mining studies and metallurgical studies.

    ·     Whether logging is qualitative or quantitative in nature. Core (or costean, channel, etc) photography.

    ·     The total length and percentage of the apposite intersections logged.

    ·      In 2014-2016, core descriptions were recorded into paper logging forms by hand and later entered into an surpass database.

    ·      Core was logged in detail historically in a facility 6 km from the mine site.  The following features were logged and recorded in paper logs: lithology, alteration (including intensity divided into weak, medium and strong/pervasive), and happening of ore minerals expressed in %, macroscopic description of congruous intervals and structures and core recovery.

    Sub-sampling techniques and sample preparation

    ·     If core, whether lop or sawn and whether quarter, half or plenary core taken.

    ·     If non-core, whether riffled, tube sampled, rotary split, etc and whether sampled moist or dry.

    ·     For plenary sample types, the nature, quality and appropriateness of the sample preparation technique.

    ·     quality control procedures adopted for plenary sub-sampling stages to maximise representivity of samples.

    ·     Measures taken to ensure that the sampling is representative of the in situ material collected, including for instance results for sphere duplicate/second-half sampling.

    ·     Whether sample sizes are appropriate to the grain size of the material being sampled.

    ·      In 2014-16, core was washed, geologically logged, sample intervals determined and marked then the core was lop in half. In 2016 larger core was lop in half and one half was lop again to obtain a quarter core sample.  One half or one quarter samples was delivered to ALS Global for assaying after duplicates, blanks and standards were inserted in the sample stream. The remaining drill core is stored on site for reference.

    ·      Sample preparation was carried out by ALS Global in Romania, using industry measure techniques appropriate for the style of mineralisation represented at Cinovec.

    ·      Historically, core was either split or consumed entirely for analyses.

    ·      Samples are considered to breathe representative.

    ·      Sample size and grains size are deemed appropriate for the analytical techniques used.

     

    Quality of assay data and laboratory tests

    ·     The nature, quality and appropriateness of the assaying and laboratory procedures used and whether the technique is considered partial or total.

    ·     For geophysical tools, spectrometers, handheld XRF instruments, etc, the parameters used in determining the analysis including instrument invent and model, reading times, calibrations factors applied and their derivation, etc.

    ·     Nature of quality control procedures adopted (eg standards, blanks, duplicates, external laboratory checks) and whether acceptable levels of accuracy (ie want of bias) and precision gain been established.

    ·      In 2014-16, core samples were assayed by ALS Global. The most appropriate analytical methods were determined by results of tests for various analytical techniques.

    ·      The following analytical methods were chosen: ME-MS81 (lithium borate fusion or 4 acid digest, ICP-MS finish) for a suite of elements including Sn and W and ME-4ACD81 (4 acid digest, ICP-AES finish) additional elements including lithium.

    ·      About 40% of samples were analysed by ME-MS81d (ME-MS81 plus entire rock package). Samples with over 1% tin are analysed by XRF. Samples over 1% lithium were analysed by Li-OG63 (four acid and ICP finish).

    ·      Standards, blanks and duplicates were inserted into the sample stream.  Initial tin measure results indicated viable downgrading bias; the laboratory repeated the analysis with satisfactory results. 

    ·      Historically, tin content was measured by XRF and using moist chemical methods. W and Li were analysed by spectral methods.

    ·      Analytical QA was internal and external.  The former subjected 5% of the sample to restate analysis in the identical facility.  10% of samples were analysed in another laboratory, furthermore located in Czechoslovakia. The QA/QC procedures were set to the status norms and are considered adequate. It is unknown whether external standards or sample duplicates were used.

    ·      Overall accuracy of sampling and assaying was proved later by test mining and reconciliation of mined and analysed grades.

    Verification of sampling and assaying

    ·     The verification of significant intersections by either independent or alternative company personnel.

    ·     The expend of twinned holes.

    ·     Documentation of primary data, data entry procedures, data verification, data storage (physical and electronic) protocols.

    ·     discuss any adjustment to assay data.

    ·      During the 2014-16 drill campaigns the Company indirectly verified grades of tin and lithium by comparing the length and grade of mineral intercepts with the current cache model.

    Location of data points

    ·     Accuracy and quality of surveys used to locate drill holes (collar and down-hole surveys), trenches, mine workings and other locations used in Mineral Resource estimation.

    ·     Specification of the grid system used.

    ·     quality and adequacy of topographic control.

    ·      In 2014-16, drill collar locations were surveyed by a registered surveyor.

    ·      Down hole surveys were recorded by a contractor.

    ·      Historically, drill hole collars were surveyed with a august degree of precision by the mine survey crew.

    ·      hole locations are recorded in the local S-JTSK Krovak grid.

    ·      Topographic control is excellent.

    Data spacing and distribution

    ·     Data spacing for reporting of Exploration Results.

    ·     Whether the data spacing and distribution is adequate to establish the degree of geological and grade continuity appropriate for the Mineral Resource and Ore Reserve estimation procedure(s) and classifications applied.

    ·     Whether sample compositing has been applied.

    ·      Historical data density is very high. 

    ·      Spacing is adequate to establish an inferred resource that was initially estimated using MICROMINE software in Perth, 2012.

    ·      Areas with lower coverage of Li% assays gain been identified as exploration targets.

    ·      Sample compositing to 1m intervals has been applied mathematically prior to estimation but not physically.

    Orientation of data in relation to geological structure

    ·     Whether the orientation of sampling achieves unbiased sampling of viable structures and the extent to which this is known, considering the deposit type.

    ·     If the relationship between the drilling orientation and the orientation of key mineralised structures is considered to gain introduced a sampling bias, this should breathe assessed and reported if material.

    ·      In 2014-16, drill hole azimuth and douse was planned to intercept the mineralized zones at near-true thickness.  As the mineralized zones douse shallowly to the south, drill holes were vertical or near vertical and directed to the north. Due to land access restrictions, inevitable holes could not breathe positioned in sites with model drill angle.

    ·      The Company has not directly collected any samples underground because the workings are inaccessible at this time. 

    ·      Based on historic reports, flat device maps, sections and core logs, the samples were collected in an unbiased fashion, systematically on two underground levels from drift ribs and faces, as well as from underground holes drilled perpendicular to the drift directions.  The sample density is adequate for the style of deposit.

    ·      Multiple samples were taken and analysed by the Company from the historic tailing repository. Only lithium was analysed (Sn and W too low).  The results matched the historic grades.

    Sample security

    ·     The measures taken to ensure sample security.

    ·      In the 2014-16 programs, only the Company's employees and contractors handled drill core and conducted sampling. The core was collected from the drill rig each day and transported in a company vehicle to the secure Company premises where it was logged and cut.  Company geologists supervised the process and logged/sampled the core.   The samples were transported by Company personnel in a Company vehicle to the ALS Global laboratory pick-up station. The remaining core is stored under lock and key.

    ·      Historically, sample security was ensured by status norms applied to exploration.  The status norms were similar to currently accepted best exercise and JORC guidelines for sample security.

    Audits or reviews

    ·     The results of any audits or reviews of sampling techniques and data.

    ·      Review of sampling techniques viable from written records. No flaws found.

     

    Section 2 Reporting of Exploration Results

    Criteria

    JORC Code explanation

    Commentary

    Mineral tenement and land tenure status

    ·     Type, reference name/number, location and ownership including agreements or material issues with third parties such as joint ventures, partnerships, overriding royalties, aboriginal title interests, historical sites, wilderness or national park and environmental settings.

    ·     The security of the tenure held at the time of reporting along with any known impediments to obtaining a licence to operate in the area.

    ·      Cinovec exploration rights held under three licenses Cinovec (expires 30/07/2019), Cinovec 2 (expires 31/12/2020) and Cinovec 3 (expires 31/10/2021).100% owned, no aboriginal interests or environmental concerns. A status royalty applies metals production and is set as a fee in Czech crowns per unit of metal produced.

    ·      There are no known impediments to obtaining an Exploitation Permit for the defined resource.

    Exploration done by other parties

    ·     Acknowledgment and appraisal of exploration by other parties.

    ·      There has been no acknowledgment or appraisal of exploration by other parties.

    Geology

    ·     Deposit type, geological setting and style of mineralisation.

    ·      Cinovec is a granite-hosted tin-tungsten-lithium deposit.

    ·      Late Variscan age, post-orogenic granite intrusionTin and tungsten occur in oxide minerals (cassiterite and wolframite). Lithium occurs in zinwaldite, a Li-rich muscovite

    ·      Mineralization in a petite granite cupola.  Vein and greisen type. Alteration is greisenisation, silicification.

    Drill hole Information

    ·     A summary of plenary information material to the understanding of the exploration results including a tabulation of the following information for plenary Material drill holes:

    o  easting and northing of the drill hole collar

    o  elevation or RL (Reduced flat - elevation above sea flat in metres) of the drill hole collar

    o  douse and azimuth of the hole

    o  down hole length and interception depth

    o  hole length.

    ·     If the exclusion of this information is justified on the basis that the information is not Material and this exclusion does not detract from the understanding of the report, the Competent Person should clearly warrant why this is the case.

    ·      Reported previously.

    Data aggregation methods

    ·     In reporting Exploration Results, weighting averaging techniques, maximum and/or minimum grade truncations (eg cutting of lofty grades) and cut-off grades are usually Material and should breathe stated.

    ·     Where aggregate intercepts incorporate short lengths of lofty grade results and longer lengths of low grade results, the procedure used for such aggregation should breathe stated and some typical examples of such aggregations should breathe shown in detail.

    ·     The assumptions used for any reporting of metal equivalent values should breathe clearly stated.

    ·      Reporting of exploration results has not and will not embrace aggregate intercepts.

    ·      Metal equivalent not used in reporting.

    ·      No grade truncations applied.

    Relationship between mineralisation widths and intercept lengths

    ·     These relationships are particularly vital in the reporting of Exploration Results.

    ·     If the geometry of the mineralisation with respect to the drill hole angle is known, its nature should breathe reported.

    ·     If it is not known and only the down hole lengths are reported, there should breathe a limpid statement to this upshot (eg 'down hole length, accurate width not known').

    ·      Intercept widths are approximate accurate widths.

    ·      The mineralization is mostly of disseminated nature and relatively homogeneous; the orientation of samples is of limited impact. 

    ·      For higher grade veins supervision was taken to drill at angles ensuring closeness of intercept length and accurate widths

    ·      The cache model accounts for variations between manifest and accurate dip.

    Diagrams

    ·     appropriate maps and sections (with scales) and tabulations of intercepts should breathe included for any significant discovery being reported These should include, but not breathe limited to a device view of drill hole collar locations and appropriate sectional views.

    ·      appropriate maps and sections gain been generated by the Company, and independent consultants. Available in customary vector and raster outputs, and partially in consultant's reports.

    Balanced reporting

    ·     Where comprehensive reporting of plenary Exploration Results is not practicable, representative reporting of both low and lofty grades and/or widths should breathe practiced to avoid delusory reporting of Exploration Results.

    ·      Balanced reporting in historic reports guaranteed by norms and standards, verified in 1997, and 2012 by independent consultants.

    ·      The historic reporting was completed by several status institutions and cross validated.

    Other substantive exploration data

    ·     Other exploration data, if meaningful and material, should breathe reported including (but not limited to): geological observations; geophysical survey results; geochemical survey results; bulk samples - size and passage of treatment; metallurgical test results; bulk density, groundwater, geotechnical and rock characteristics; potential deleterious or contaminating substances.

    ·      Data available: bulk density for plenary representative rock and ore types; (historic data + 92 measurements in 2016 from current core holes); petrographic and mineralogical studies, hydrological information, hardness, moisture content, fragmentation etc.

    Further work

    ·     The nature and scale of planned further labor (eg tests for lateral extensions or depth extensions or large-scale step-out drilling).

    ·     Diagrams clearly highlighting the areas of viable extensions, including the main geological interpretations and future drilling areas, provided this information is not commercially sensitive.

    ·      Grade verification sampling from underground or drilling from surface.  Historically-reported grades require modern validation in order to ameliorate the resource classification.

    ·      The number and location of sampling sites will breathe determined from a 3D wireframe model and geostatistical considerations reflecting grade continuity. 

    ·      The geologic model will breathe used to determine if any infill drilling is required.

    ·      The deposit is open down-dip on the southern extension, and locally poorly constrained at its western and eastern extensions, where limited additional drilling might breathe required. 

    ·      No big scale drilling campaigns are required.

     

    Section 3 Estimation and Reporting of Mineral Resources

    Criteria

    JORC Code explanation

    Commentary

    Database integrity

    ·     Measures taken to ensure that data has not been corrupted by, for example, transcription or keying errors, between its initial collection and its expend for Mineral Resource estimation purposes.

    ·     Data validation procedures used.

    ·      Assay and geologic data were compiled by the Company staff from primary historic records, such as copies of drill logs and big scale sample location maps.

    ·      Sample data were entered in to surpass spreadsheets by Company staff in Prague.

    ·      The database entry process was supervised by a Professional Geologist who works for the Company.

    ·      The database was checked by independent competent persons (Lynn Widenbar of Widenbar & Associates, Phil Newell of Wardell Armstrong International).

    Site visits

    ·     observation on any site visits undertaken by the Competent Person and the outcome of those visits.

    ·     If no site visits gain been undertaken attest why this is the case.

    ·      The site was visited by Mr Pavel Reichl who has identified the previous shaft sites, tails dams and observed the mineralisation underground through an adjacent mine working.

    ·      The site was visited in June 2016 by Mr Lynn Widenbar, the Competent Person for Mineral Resource Estimation. Diamond drill rigs were viewed, as was core; a visit was carried out to the adjacent underground mine in Germany which is a continuation of the Cinovec Deposit.

    Geological interpretation

    ·     aplomb in (or conversely, the suspicion of) the geological interpretation of the mineral deposit.

    ·     Nature of the data used and of any assumptions made.

    ·     The effect, if any, of alternative interpretations on Mineral Resource estimation.

    ·     The expend of geology in guiding and controlling Mineral Resource estimation.

    ·     The factors affecting continuity both of grade and geology.

    ·      The overall geology of the deposit is relatively simple and well understood due to excellent data control from surface and underground.

    ·      Nature of data: underground mapping, structural measurements, detailed core logging, 3D data synthesis on plans and maps.

    ·      Geological continuity is good.  The grade is highest and shows most variability in quartz veins.

    ·      Grade correlates with degree of silicification and greisenisation of the host granite.

    ·      The primary control is the granite-country rock contact.  plenary mineralization is in the uppermost 200m of the granite and is truncated by the contact.

    Dimensions

    ·     The extent and variability of the Mineral Resource expressed as length (along strike or otherwise), device width, and depth below surface to the upper and lower limits of the Mineral Resource.

    ·      The Cinovec South deposit strikes north-south, is elongated, and dips gently south parallel to the upper granite contact.  The surface projection of mineralization is about 1 km long and 900 m wide.

    ·      Mineralization extends from about 200m to 500m below surface.

    Estimation and modelling techniques

    ·     The nature and appropriateness of the estimation technique(s) applied and key assumptions, including treatment of extreme grade values, domaining, interpolation parameters and maximum distance of extrapolation from data points. If a computer assisted estimation passage was chosen embrace a description of computer software and parameters used.

    ·     The availability of check estimates, previous estimates and/or mine production records and whether the Mineral Resource estimate takes appropriate account of such data.

    ·     The assumptions made regarding recovery of by-products.

    ·     Estimation of deleterious elements or other non-grade variables of economic significance (eg sulphur for acid mine drainage characterisation).

    ·     In the case of cache model interpolation, the cache size in relation to the average sample spacing and the search employed.

    ·     Any assumptions behind modelling of selective mining units.

    ·     Any assumptions about correlation between variables.

    ·     Description of how the geological interpretation was used to control the resource estimates.

    ·     Discussion of basis for using or not using grade cutting or capping.

    ·     The process of validation, the checking process used, the comparison of model data to drill hole data, and expend of reconciliation data if available.

    ·      cache estimation was carried out in Micromine using Ordinary Kriging interpolation.

    ·      A geological domain model was constructed using Leapfrog software with solid wireframes representing greisen, granite, greisenised granite and the overlying barren rhyolite. This was used to both control interpolation and to allot density to the model (2.57 for granite, 2.70 for greisen and 2.60 for plenary other material).

    ·      Analysis of sample lengths indicated that compositing to 1m was necessary.

    ·      Search ellipse sizes and orientations for the estimation were based on drill hole spacing, the known orientations of mineralisation and variography.

    ·      An "unfolding" search strategy was used which allowed the search ellipse orientation to vary with the locally changing douse and strike.

    ·      After statistical analysis, a top lop of 5% was applied to Sn% and W%; no top lop is applied to Li%.

    ·      Sn% and Li% were then estimated by Ordinary Kriging within the mineralisation solids.

    ·      The primary search ellipse was 150m along strike, 150m down douse and 7.5m across the mineralisation. A minimum of 4 composites and a maximum of 8 composites were required.

    ·      A second interpolation with search ellipse of 300m x 300m x 12.5m was carried out to inform blocks to breathe used as the basis for an exploration target.

    ·      cache size was 5m (E-W) by 10m (N-S) by 5m

    ·      Validation of the final resource has been carried out in a number of ways including section comparison of data versus model, swathe plots and production reconciliation.

    Moisture

    ·     Whether the tonnages are estimated on a dehydrate basis or with natural moisture, and the passage of determination of the moisture content.

    ·      Tonnages are estimated on a dehydrate basis using the average bulk density for each geological domain.

    Cut-off parameters

    ·     The basis of the adopted cut-off grade(s) or quality parameters applied.

    ·      A progression of alternative cutoffs was used to report tonnage and grade: Sn 0.1%, 0.2%, 0.3% and 0.4%. Lithium 0.1%, 0.2%, 0.3% and 0.4%.

    Mining factors or assumptions

    ·     Assumptions made regarding viable mining methods, minimum mining dimensions and internal (or, if applicable, external) mining dilution. It is always necessary as partake of the process of determining reasonable prospects for eventual economic extraction to admiration potential mining methods, but the assumptions made regarding mining methods and parameters when estimating Mineral Resources may not always breathe rigorous. Where this is the case, this should breathe reported with an explanation of the basis of the mining assumptions made.

    ·      Mining is assumed to breathe by underground methods. A Scoping Study has determined the optimal mining method.

    ·      Limited internal squander will exigency to breathe mined at grades marginally below cutoffs.  Mine dilution and squander are expected at minimal levels and the vast majority of the Mineral Resource is expected to convert to an Ore Reserve.

    ·      Based on the geometry of the deposit, it is envisaged that a combination of drift and fill mining and longhole open stoping will breathe used.

     

    Metallurgical factors or assumptions

    ·     The basis for assumptions or predictions regarding metallurgical amenability. It is always necessary as partake of the process of determining reasonable prospects for eventual economic extraction to admiration potential metallurgical methods, but the assumptions regarding metallurgical treatment processes and parameters made when reporting Mineral Resources may not always breathe rigorous. Where this is the case, this should breathe reported with an explanation of the basis of the metallurgical assumptions made.

    ·      Recent testwork on 2014 drill core indicates a tin recovery of 80% can breathe expected.

    ·      Testwork on lithium is complete, with 70% recovery of lithium to lithium carbonate product via flotation concentrate and atmospheric leach.

    ·      Extensive testwork was conducted on Cinovec South ore in the past. Testing culminated with a pilot plant crucible in 1970, where three batches of Cinovec South ore were processed, each under slightly different conditions. The best result, with a tin recovery of 76.36%, was obtained from a batch of 97.13t grading 0.32% Sn. A more intricate flowsheet was furthermore investigated and with flotation produced final Sn and W recoveries of better than 96% and 84%, respectively. 

    ·      Historical laboratory testwork demonstrated that lithium can breathe extracted from the ore (lithium carbonate was produced from 1958-1966 at Cinovec).

    Environmental factors or assumptions

    ·     Assumptions made regarding viable squander and process residue disposal options. It is always necessary as partake of the process of determining reasonable prospects for eventual economic extraction to admiration the potential environmental impacts of the mining and processing operation. While at this stage the determination of potential environmental impacts, particularly for a greenfields project, may not always breathe well advanced, the status of early consideration of these potential environmental impacts should breathe reported. Where these aspects gain not been considered this should breathe reported with an explanation of the environmental assumptions made.

    ·      Cinovec is in an zone of historic mining activity spanning the past 600 years. Extensive status exploration was conducted until 1990.

    ·      The property is located in a sparsely populated area, most of the land belongs to the State. Few problems are anticipated with regards to the acquisition of surface rights for any potential underground mining operation.

    ·      The envisaged mining passage will view much of the squander and tailings used as underground fill.

    Bulk density

    ·     Whether assumed or determined. If assumed, the basis for the assumptions. If determined, the passage used, whether moist or dry, the frequency of the measurements, the nature, size and representativeness of the samples.

    ·     The bulk density for bulk material must gain been measured by methods that adequately account for void spaces (vugs, porosity, etc), moisture and differences between rock and alteration zones within the deposit.

    ·     discuss assumptions for bulk density estimates used in the evaluation process of the different materials.

    ·      Historical bulk density measurements were made in a laboratory.

    ·      The following densities were applied:

    o  2.57 for granite

    o  2.70 for greisen

    o  2.60 for plenary other material

    Classification

    ·     The basis for the classification of the Mineral Resources into varying aplomb categories.

    ·     Whether appropriate account has been taken of plenary apposite factors (ie relative aplomb in tonnage/grade estimations, reliability of input data, aplomb in continuity of geology and metal values, quality, quantity and distribution of the data).

    ·     Whether the result appropriately reflects the Competent Person's view of the deposit.

    ·      Following a review of a petite amount of available QAQC data, and comparison of production data versus estimated tonnage/grade from the resource model, and given the close spacing of underground drilling and development, the majority of the Tin resource was originally classified in the Inferred category as defined by the 2012 edition of the JORC code.

    ·      The fresh 2014 and 2016 drilling has confirmed the Tin mineralisation model and a partake of this zone has been upgraded to the Indicated category.

    ·      The Li% mineralisation has been assigned to the Inferred category where the average distance to composites used in estimation is less than 100m. Material outside this ambit is unclassified but has been used as the basis for an Exploration Target.

    ·      The fresh 2014 and 2016 drilling has confirmed the Lithium mineralisation model and a partake of this zone has been upgraded to the Indicated category.

    ·      The Competent Person (Lynn Widenbar) endorses the final results and classification.

    Audits or reviews

    ·     The results of any audits or reviews of Mineral Resource estimates.

    ·      Wardell Armstrong International, in their review of Lynn Widenbar's initial resource estimate stated "the Widenbar model appears to gain been prepared in a diligent manner and given the data available provides a reasonable estimate of the drillhole assay data at the Cinovec deposit".

     

    Discussion of relative accuracy/ confidence

    ·     Where appropriate a statement of the relative accuracy and aplomb flat in the Mineral Resource estimate using an approach or procedure deemed appropriate by the Competent Person. For example, the application of statistical or geostatistical procedures to quantify the relative accuracy of the resource within stated aplomb limits, or, if such an approach is not deemed appropriate, a qualitative discussion of the factors that could move the relative accuracy and aplomb of the estimate.

    ·     The statement should specify whether it relates to global or local estimates, and, if local, status the apposite tonnages, which should breathe apposite to technical and economic evaluation. Documentation should embrace assumptions made and the procedures used.

    ·     These statements of relative accuracy and aplomb of the estimate should breathe compared with production data, where available.

    ·      In 2012, WAI carried out model validation exercises on the initial Widenbar model, which included visual comparison of drilling sample grades and the estimated cache model grades, and Swath plots to assess spatial local grade variability.

    ·      A visual comparison of cache model grades vs drillhole grades was carried out on a sectional basis for both Sn and Li mineralisation. Visually, grades in the cache model correlated well with drillhole grade for both Sn and Li.

    ·      Swathe plots were generated from the model by averaging composites and blocks in plenary 3 dimensions using 10m panels. Swath plots were generated for the Sn and Li estimated grades in the cache model, these should exhibit a close relationship to the composite data upon which the estimation is based. As the original drillhole composites were not available to WAI. 1m composite samples based on 0.1% cut-offs for both Sn and Li assays were

    ·      Overall Swathe plots illustrate a pleasant correlation between the composites and the cache grades. As is visible in the Swathe plots, there has been a big amount of smoothing of the cache model grades when compared to the composite grades, this is typical of the estimation method.

    Section 4 Estimation and Reporting of Ore Reserves

    (Criteria listed in section 1, and where apposite in section 2 and 3, furthermore apply to this section.)

    Criteria

    JORC Code explanation

    Commentary

    Mineral Resource estimate for conversion to Ore reserves

    ·      Description of the Mineral Resource estimate used as a basis for the conversion to an Ore Reserve.

    ·      limpid statement as to whether the Mineral Resources are reported additional to, or inclusive of, the Ore Reserves.

    A JORC 2012 Mineral Resource estimate (MRE) was issued by Widenbar and Associates.  The electronic resource models were provided to Bara for the purposes of mine design. 

    The table below summarises the mineral resource provided.

    CINOVEC 2017 RESOURCE

    Cutoff

    Tonnes

    Li

    Li2O

    Sn

    W

    %

    (Millions)

    %

    %

    %

    %

    INDICATED

    0.1%

    347.7

    0.21

    0.45

    0.04

    0.015

    INFERRED

    0.1%

    308.8

    0.18

    0.39

    0.04

    0.014

    TOTAL

    0.1%

    656.5

    0.20

    0.43

    0.04

    0.014

     

    The Mineral Resources are declared inclusive of Ore Reserves.

    Site visits

    ·     observation on any site visits undertaken by the Competent Person and the outcome of those visits.

    ·     If no site visits gain been undertaken attest why this is the case.

    The CP visited the site on 7th and 8th of September 2016, inspections were made of:

    o  Exploration drill cores.

    o  Underground visits were undertaken to archaic underground mine workings close to and situated in the identical deposits as the Cinovec project area.

    o  The project surface site was visited including visits to:

    § viable surface infrastructure sites.

    § The sites of existing vertical shafts into the archaic Cinovec mine workings

    § Access road and rail infrastructure.

    Study Status

    ·     The nature and flat of study undertaken to enable Mineral Resources to breathe converted to Ore Reserves.

    ·     The Code requires that a study to at least Pre-Feasibility Study flat has been undertaken to convert Mineral Resources to Ore Reserves. Such studies will gain been carried out and will gain determined a mine device that is technically achievable and economically viable, and that material Modifying Factors gain been considered.

    A pre-feasibility study (PFS) has been undertaken for the Cinovec Project.  plenary material issues apposite to the project gain been considered in this study to ensure estimates to levels of accuracy generally accepted for a PFS.

     

    Cut-off parameters

    ·     The basis of the cut-off grade(s) or quality parameters applied.

    Revenue will breathe generated from the sales of Lithium (Li), Tin (Sn) and Tungsten (W). Each metal has different in-situ grades, plant recoveries, operating costs and metal prices.  To determine the revenue generated from a cache of material in the cache model there factors exigency to breathe taken into account.  To accomplish this the total revenue and operating costs were calculated using a script in the cache model.  The cost was deducted from the revenue to bear a "Margin" value for each block.  Where Margin is greater than zero, the cache is flagged as ore.  The metal prices, recoveries and formulae used to calculate the operating costs for purposes of the margin calculation are tabled below.

    (Please refer to the announcement on the European Metals Website for the Table described above - www.europeanmet.com.)

     Using the factors tabled above the "Margin" value was calculated for each cache in the cache model.  The breakeven grade is where Margin =0. plenary blocks with Margin greater than zero could breathe considered ore.  Applying this criteria to the cache model allowed a grade versus tonnage curve to breathe generated based on using the "Margin" sphere as the grade field.  The resultant curve is shown in the design below.

    (Please refer to the announcement on the European Metals Website for the Table described above - www.europeanmet.com.)

    In order to optimise the value of the project a strategic conclusion was made by the client to mine at a higher grade than the average and to optimise the mined grade by reducing the tonnes and increasing the grade to the point where mine life becomes the constraint, or the mining becomes prohibitively selective.  The production rate of the processing plant was set by EMH at 360,000 tpa of mica concentrate. This equates to approximately 1.7 million tpa of RoM ore.  For a mine life of over 20 years, which was the requirement stated by EM, the mining inventory needs to breathe at least 34 million tonnes. Using the grade versus tonnage curve a cut-off of US$35/tonne Margin was selected. This resulted in the appropriate mine life while silent allowing the expend of bulk mining methods such as LHOS.

    Mining factors or assumptions

    ·     The passage and assumptions used as reported in the Pre-Feasibility or Feasibility Study to convert the Mineral Resource to an Ore Reserve (i.e. either by application of appropriate factors by optimisation or by introductory or detailed design).

    ·     The choice, nature and appropriateness of the selected mining method(s) and other mining parameters including associated design issues such as pre-strip, access, etc.

    ·     The assumptions made regarding geotechnical parameters (eg pit slopes, stope sizes, etc), grade control and pre-production drilling.

    ·     The major assumptions made and Mineral Resource model used for pit and stope optimisation (if appropriate).

    ·     The mining dilution factors used.

    ·     The mining recovery factors used.

    ·     Any minimum mining widths used.

    ·     The manner in which Inferred Mineral Resources are utilised in mining studies and the sensitivity of the outcome to their inclusion.

    ·     The infrastructure requirements of the selected mining methods.

    Geotechnical input

    A geotechnical study was completed as partake of the pre-feasibility study. The geotechnical study prescribed geotechnical design criteria which should breathe applied in the mine design.  The design criteria are detailed in the table below.

    (Please refer to the announcement on the European Metals Website for the Table described above - www.europeanmet.com.)

     

    Block model

    The cache model file used for this study was provided to Bara by EM in February 2017 and is entitled Cinovec_Resource_Model_17_02_2017.dm. The model is in Datamine format.  The table below shows the fields in the cache model that were used in the mine planning process.

    (Please refer to the announcement on the European Metals Website for the Table described above - www.europeanmet.com.)

    Mining method

    An evaluation was completed to establish the achievable extraction ratios with and without backfill, based on the geotechnical design criteria including pillar sizes and stope spans (see above). The preferred option was to mine with pillars advocate only, negating the requirement for a backfill plant.

    The selected mining passage is long hole open stoping with pillar support.  The payable ore will breathe split into blocks approximately 90 m long in the strike direction and 25 m high.  The bottom of each cache will breathe accessed in the central position by an access crosscut and the cache will breathe mined out from the centre to the strike circumscribe by drifting.  The stope will breathe mined on retreat from the cache extent, retreating to the access cross lop position.  The stopes will breathe a maximum of 13 m wide with rib pillars between stopes of 4 to 7 m wide depending on stope height.  Access to the stopes will breathe by footwall drives developed in the footwall at 25 m vertical intervals.  plenary stope access crosscuts will breathe developed out of the footwall drives.

    The mine will breathe accessed by a twin decline system. A conveyor will breathe installed from the underground primary crusher on 590m elevation to surface in the conveyor decline. The second decline will breathe used as a service decline for men, material and as an intake airway.

    Mining modifying factors

    Stope shapes were determined by expend of stope optimisation software after application of minimum stope size and stope geometry.  The design criteria specified included:

    ·      Cut-off - Margin >US$35 per tonne.  This means that the average margin of the resultant stope shape must breathe greater than US$35/tonne.

    ·      Stope width - 17 m (includes rib pillar, which was deducted as a tonnage loss later in the schedule)

    ·      Maximum stope height - Unlimited. Stope shapes greater than 25m lofty were later split by flat and sill pillar losses accounted for.

    ·      Minimum stope height - 5m (height of ore drive).

    ·      Stope length - Minimum 10 m, maximum unlimited. Stopes were later split into stope blocks with maximum length of 180 m (two stopes of 90 m each)

    ·      Minimum footwall slope angle - 50o.

     

    After definition of the stope shapes mining modifying factors as described below were applied:

    Mining Exclusions

    1.     The Northern most portion of the orebody is located below the village.  In this zone it was agreed to leave an unmined crown pillar of at least 150 m between surface and the uppermost mining level.  In other parts of the orebody the crown pillar was 70 m.

    2.     DSO created stope shapes according to the criteria specified above, but with no consideration of the development required to access these blocks.  The design was edited to remove any blocks that were not practical to access, being either excessively far from planned development and too petite to warrant the access development, or petite volumes on an elevation that is difficult to access being between mining levels. 

     

    Pillar loss

    Total pillar loss is estimated to breathe 35%. 

    Unplanned dilution

    In order to account for these mining inefficiencies unplanned dilution was added to plenary stope tonnage. Due to the big size of the stopes the dilution percentage is low at 3%. This allows for approximately 0.25 m of over wreck around the entire stope.

    Since the stopes are defined by a grade cut-off and the mineralisation is disseminated, there is not expected to breathe a sharp drop-off of grade outside the stope envelope. The dilution will therefore contain metal grade.  The average grade of the resource below the margin cut-off of US$35/t has been applied to the dilution material in the mine plan.  The grade of the dilution is:

    Li% - 0.22

    Sn% - 0.04

    W% - 0.01

    Ore loss

    Ore loss does occur in mining operations due to mining inefficiencies. This can breathe due to factors such as:

    ·      Ore not loaded out of stopes

    ·      Grade control errors

    ·      Haulage errors

    ·      Underbreak in the blasting operation

    ·      Stope hang ups

     

    To account for these inefficiencies an ore loss factor of 3% has been included in the mining schedule. This is a tonnage loss at the average grade of the block.

    Inferred Resources

    No inferred resources were included as ore in the pre-feasibility mine plan.  Inferred resources were treated as waste.

    Infrastructure

    Surface Infrastructure

    The surface infrastructure has been designed to advocate the mining device with consideration of the labour and mechanised equipment requirements of the operation in addition to the movement of rock, men and materials.  The infrastructure is divided into two distinct areas, with the zone at the portal servicing the initial development requirements and the second servicing the production phase.  Allowance has been made for;

    ·      Security fencing.

    ·      Site access control and parking.

    ·      development offices

    ·      development change house and laundry.

    ·      Lamp house and crush.

    ·      Medical station.

    ·      Trackless workshop and wash bay.

    ·      Compressor station

    ·      Diesel farm.

    ·      Oil and grease storage,

    ·      Main store and material yard.

    ·      Capital laydown area

    ·      Service water storage and settling.

    ·      Downcast air heating.

    ·      Brake testing ramp

    ·      Main offices

    ·      Main change houses

    ·      Main laundry.

    ·      Training centre.

    ·      Parking and bus drop off zone

    ·      Fire systems

    ·      Potable water infrastructure including municipal Interface.

    ·      Sewage Infrastructure including municipal Interface.

    ·      Gas supply Infrastructure including municipal Interface.

    ·      MV electrical infrastructure including municipal Interface.

    ·      Explosives accessories magazine.

    Underground Infrastructure

    Underground infrastructure designs acquire into consideration the life of mine device and aims to advocate the underground mining production and development activities.  Underground infrastructure comprises:

    ·      Mine service water systems

    ·      Mine dewatering systems, including limpid and foul water pump stations.

    ·      Mine electrical reticulation

    ·      Control systems and instrumentation

    ·      Trackless workshops

    ·      Refuelling bays

    ·      Underground crushers, tips, and conveyors.

    The mine service water system is a based on a re-circulation design, with settled water from the mining activities used as service water.  This reduces the mine pumping requirement in gyrate reducing power costs.

    In terms of electrical reticulation, the Cinovec mining operation will require a bulk power supply of 3.5 MVA. Power will breathe provided by a local supply authority and it is anticipated it will breathe at 6kV.

    Underground Ore Handling

    The underground ore handling system is designed for 500 t/h and will comprise the following:

    ·      A primary tip, equipped with a static grizzly and a hydraulic rock breaker to wreck oversize lumps;

    ·      An ore-pass;

    ·      A primary crushing station, equipped with a vibrating grizzly feeder and jaw crusher;

    ·      A sacrificial conveyor (CV001), 18 m long, to protect the main decline conveyor;

    ·      A decline conveyor (CV002), 1,146 m long.

    Metallurgical factors or assumptions

    ·     The metallurgical process proposed and the appropriateness of that process to the style of mineralisation.

    ·     Whether the metallurgical process is well-tested technology or novel in nature.

    ·     The nature, amount and representativeness of metallurgical test labor undertaken, the nature of the metallurgical domaining applied and the corresponding metallurgical recovery factors applied.

    ·     Any assumptions or allowances made for deleterious elements.

    ·     The being of any bulk sample or pilot scale test labor and the degree to which such samples are considered representative of the orebody as a whole.

    ·     For minerals that are defined by a specification, has the ore reserve estimation been based on the appropriate mineralogy to meet the specifications?

    The beneficiation plant process route consists of crushing, SAG milling, classification, thickening and moist lofty intensity magnetic separation (WHIMS). The magnetic fraction passes to the Lithium Carbonate Plant (LCP).  The non-magnetic fraction is processed by classification, spiral concentration and regrinding of the spiral middlings.  The spirals product is a tin / tungsten product.  The LCP process route consists of roasting, leaching filtration, impurity removal by ion exchange and crystallization.  The testwork program has indicated that the process route selected is appropriate for the style of mineralization of the orebody.

    The process route selected utilizes standard, industry proven technology.  The process route selected was based on the testwork carried out, and on the respective engineering companies' sustain on other, similar projects.

    The samples used for the beneficiation plant testwork were quarter core composites from the drilling campaigns.  For the comminution tests, composites were made up of the various ore types to provide an indication of variability.  As composites of drill cores were used for the testwork, the samples are considered to breathe representative of the deposit.  The variability in the deposit may breathe an issue in the plant operation, but additional testwork will breathe carried out during the feasibility study to inform on this issue.  The mass of sample received for the testwork was 150kg, which enabled appropriate sized samples (taking into consideration that the study being carried out is pre-feasibility) to breathe used for the various tests. The product recoveries were determined from the testwork, factors were not applied.

    Testwork has produced a saleable lithium carbonate product (>99.5% lithium carbonate) although the levels of fluoride (500 ppm) and silicon (300 ppm) were high. These elements are not generally considered to breathe deleterious elements in product specifications. Further testwork will breathe carried out to reduce these levels.

    No bulk samples were available for the testwork but were not required as the flat of study was pre-feasibility.  Pilot scale testwork will carried out during the feasibility study. The composite samples used for the testwork are considered to breathe representative of the ore-body and suitable for the testwork performed.

    The specification for the lithium carbonate product is a minimum of 99.5% lithium carbonate.  This was achieved in the testwork.  Testwork will breathe carried out during the next side of the project to further ameliorate on the quality of the product to breathe produced.

    Environmental

    ·     The status of studies of potential environmental impacts of the mining and processing operation. Details of squander rock characterisation and the consideration of potential sites, status of design options considered and, where applicable, the status of approvals for process residue storage and squander dumps should breathe reported.

    The Company has commenced the Environmental repercussion Assessment EIA process with a baseline study, prepared by pick up s.r.o an independent Czech based environmental consultancy. This identified the environmental areas to breathe assessed and determined introductory outcomes. The underground mine and surface portal is located on the brink adjacent to an environmentally sensitive zone - Natural park Eastern Krusne hory.

    The Project zone is mostly covered by forests and treeless plateau with bushy growth. The zone of Dubí township is covered by farm land (15%) and non-agricultural land (85%), out of that 80% are forests. Intensive biological investigation executed in 2016 identified 20 natural biotops, out of them 4 peat bogs, springheads, waterlogged spruce growths and mountain meadows) are protected within the Natura 2000. Screening process furthermore identified 67 animal species - 2 amphibians, 2 snakes, 51 birds and 11 mammals alive in the area. Of them, 14 species are protected. Through the zone furthermore runs the regional natural bio corridor K2.

    The Cinovec Sn/W Lithium Project is governed by Act No.100/2001 Coll., on Environment repercussion Assessment (hereinafter referred to as the "EIA Act"). The competent authority is the Ministry of the Environment (Environment repercussion Assessment Department). An integrated permit is issued upon completion of the EIA process.

    In consideration of the exploitation mining licence to breathe granted and the expected production of the Li-W-Sn ore exceeding 1 Mt a year during the implementation of the Project, the EIA documentation must breathe prepared and assessed (full-scope EIA Report).

    The Cinovec Sn/W Lithium Project development documentation shall breathe structured as follows:

    ·      details concerning the Notifier,

    ·      details concerning the development project,

    ·      details concerning the status of the environment in the region concerned,

    ·      comprehensive characteristics and assessment of the Project impacts on public health and the environment,

    ·      a comparison of project versions (if any),

    ·      a conclusion, and

    ·      a commonly understood summary and annexes (opinion of the building Authority, belief of the Nature Protection Authority, expert studies and assessments).

     

    The following expert studies and assessments must breathe compiled during the EIA Documentation preparation stage:

    ·      clamor repercussion study,

    ·      air quality repercussion study,

    ·      biological survey,

    ·      human health repercussion study,

    ·      transport repercussion study,

    ·      landscape repercussion study, and

    ·      water quality and hydrology repercussion study.

     

    In this case, with respect to the location of the Project at the brink with Germany, the so-called "international assessment" provision applies (Section 13, Act No. 100). This process is more time-demanding - in an international assessment, the Ministry of the Environment may extend the deadlines to present views by up to 30 days; other deadlines (Sec. 12, Act.100) are extended adequately in such a case.

    EMH commenced the EIA process with the baseline study, prepared by GET, which identified the environmental areas to breathe assessed and determined introductory outcomes. The project, mainly the underground mine and surface portal is located in environmentally sensitive area. From that perspective, the EIA will focus particularly on project impacts on European protected areas Natura 2000 (protected birds) and mine water discharge into surface streams due to the content of Berylium and radioactive components. Considering the long-term mining history in region the Project will not significantly change the situation towards to environment and from that perspective plenary identified potential problems should breathe resolvable and EMH accomplish not envision any mortal flaws will breathe encountered.

    The Cinovec EIA will focus particularly on Project impacts on European protected areas Natura 2000 (protected birds) and mine water discharge into surface streams. The Company has re-positioned key infrastructure to minimise impacts to both the environment and the community and has placed crushing facilities and fans underground to minimise clamor as well as enclosing the mill to further reduce clamor and visual impacts. Considering the long-term mining history in region and at the deposit itself, the Project will not significantly repercussion the environment.

    Waste Rock

    Acid-Base accounting  (ABA):  Acid-Base  accounting  (ABA)  is  a  screening procedure whereby the acid-neutralising potential (assets) and acid-generating potential  (liabilities) of rock samples are determined, and the difference, net neutralising potential  (equity), is calculated.

    Samples were devoid of sulphides and gain no potential to generate acid-mine drainage as confirmed through both the ABA and NAG test. However, the Neutralisation Potential of the samples were furthermore very low and samples furthermore had a very low total C content. However, the potential to leach at least As and F which should breathe further investigated through the column leach testing as these two parameters will furthermore breathe present in neutral drainage from samples.

    The addition of acid to samples (ABCC method: 3 g sample in 100 ml water as per AMIRA, 2002) resulted in quick acidification confirming that the samples had almost no Neutralisation Potential. The pH curve is only slightly higher than for the Blank (distilled water).

    Net Acid Generation (NAG):  The separate addition NAG test was used to classify the acid generating potential of plenary 42 samples. The NAG test involves the reaction of a sample with hydrogen peroxide to rapidly oxidise any sulphide minerals contained within a sample. The conclude result represents a direct measurement of the net amount of acid generated by the sample. This value is commonly referred to as the NAG capacity and is expressed in th is kg H2SO4/tonne.

    All of the samples tested were classified as non-acid forming. The ICP analysis of the NAG elution did not defer any significant results. This test is more appropriate where the sample gain sulphides that can breathe oxidised with peroxide and ICP analyses attest metals released.

    Tailings

    Tailings produced by the gravity circuit of the FECAB's beneficiation plant and the Residue Filtration Stream bear by the LCP require permanent impoundment in a suitable Tailings Storage Facility (TSF). For the PFS a conservative approach was taken by designing a dehydrate stack tailings facility. Any water from the dehydrate stacked tails is captured and recycled to the LCP process water feed. This approach, although higher in Capex, offers the most environmentally sustainable passage of tailings impoundment.

    Tailings produced by the gravity circuit are filtered in two pressure filters to bear a filter cake with a moisture content of 18%. This moisture content is based of filtration test labor performed on a representative tailings sample by Diemme® with the results interpreted by Ausenco and incorporated into the FECAB design.

    The FECAB filter cakes falls into a bunker below the pressure filters, from where it is collected by a wheel loader and loaded into an articulated truck for transfer to the dehydrate stacks tails tip point. The articulate truck dumps the tailings filter cake where it is spread and compacted by a bulldozer. The estimated cost of the FECAB tailings disposal is $1.00/ moist tonne.

    The LCP tailings consist of leach residue filter cake produced by a pressure filter. As with the FECAB, the pressure filter drops the filter cake into a bunker for loading via a wheel loader. The estimated cost for LCP residue disposal is $1.50/ moist tonne.

    The loading, trucking and spreading of the tailings will breathe performed by a local condense earth poignant company.

    Data used as input criteria to the TSF design concept are listed in the table, which is considered adequate for PFS and has been derived from PFS flat engineering.

    (Please refer to the announcement on the European Metals Website for the Table described above - www.europeanmet.com.)

    All permits for the tailings dam, squander rock dump and operations will breathe applied for when appropriate and as governed by Czech law. To date, permits for mine de-watering and introductory mining permits gain been received.

    Infrastructure

    ·     The being of appropriate infrastructure: availability of land for plant development, power, water, transportation (particularly for bulk commodities), labour, accommodation; or the ease with which the infrastructure can breathe provided, or accessed.

    Currently, no infrastructure exists at the mine site and therefore allowance has been made for plenary advocate facilities required by the planned mining operation. Surface infrastructure has been designed to advocate the mining device with consideration of the labour and mechanised equipment requirements of the operation in addition to the movement of rock, men and materials.  The infrastructure is divided into two distinct areas, with the zone at the portal servicing the initial development requirements and the second servicing the production phase. The surface infrastructure design includes plenary facilities and services (such as offices, changehouses, workshops) as well as utilities and reticulation (such as power, water and gas utilities) to advocate the underground mining activities for the life of mine.

    Underground infrastructure designs acquire into consideration the life of mine device and aims to advocate the underground mining production and development activities.  The underground infrastructure primarily comprises the underground conveyor and crushing system, dewatering facilities, and underground workshops

    Costs

    ·     The derivation of, or assumptions made, regarding projected capital costs in the study.

    ·     The methodology used to estimate operating costs.

    ·     Allowances made for the content of deleterious elements.

    ·     The source of exchange rates used in the study.

    ·     Derivation of transportation charges.

    ·     The basis for forecasting or source of treatment and refining charges, penalties for failure to meet specification, etc.

    ·     The allowances made for royalties payable, both Government and private.

    The capital and operating cost estimate has been determined through the application of budget quotations, database costs and estimated costs.  These costs were applied to material acquire offs, bill of quantities and estimated quantities derived from the engineering design process.  The once the overall capital cost was calculated, the costs are scheduled according to an implementation device in order to determine the expend over the life of the project.

    (Please refer to the announcement on the European Metals Website for the table showing the Capital Costs - www.europeanmet.com.)

    (Please refer to the announcement on the European Metals Website for the table summarising the Operating Costs - www.europeanmet.com.)

     

    Revenue factors

    ·     The derivation of, or assumptions made regarding revenue factors including head grade, metal or commodity price(s) exchange rates, transportation and treatment charges, penalties, net smelter returns, etc.

    ·     The derivation of assumptions made of metal or commodity price(s), for the principal metals, minerals and co-products.

    Metal Prices Used

    Tin (US$/t metal)

     22 500

    Tungsten (US$/MTU)

     330

    Lithium Carbonate (US$/t)

     10 000

    Potassium Sulphate (Potash) (US$/t)

     480

     

    Exchange Rates Used

    USD

    1.0000

    EUR

    0.9276

    CZK

    25.0500

    CAD

    1.3082

    AUD

    1.3212

    GBP

    0.7965

    Market assessment

    ·     The demand, supply and stock situation for the particular commodity, consumption trends and factors likely to move supply and demand into the future.

    ·     A customer and competitor analysis along with the identification of likely market windows for the product.

    ·     price and volume forecasts and the basis for these forecasts.

    ·     For industrial minerals the customer specification, testing and acceptance requirements prior to a supply contract.

    Lithium is the key driver of the Project. According to Deutsche Bank, global lithium demand increased 15% year on year to 212 kt LCE in 2016, slightly ahead of estimates. Deutsche Bank forecast lithium pricing to remain elevated relative to historical averages, but retrace 15% over 2016 pricing levels. Further, the medium-term outlook is improving and Deutsche Bank has recently lifted their 2019 demand forecast to 380 kt.

     

    The ramp up of fresh EV model sales from major auto companies is generally considered to breathe the key driver of lithium demand in the short to medium term. Other factors embrace the increased production from battery manufacturing facilities and the continued inventory build within the supply chain.

     

    The Cinovec Project is located centrally and within close proximity to a number of major European car manufacturers.

     

    Benchmark expects the average forecasted price ambit for lithium carbonate 99.95% to breathe $ 9,500 to $ 13,000/tonne (USD) between 2017 and 2020.

     

    European Metals has considered this forecast in light of other independent forecasts such as Deutsche Bank, and on generally available lithium market commentary.

     

    For the purposes of the PFS with regards to pecuniary modelling, a long-term average price of $ 10,000/t lithium carbonate FOB has been used. The graph below shows the Deutsche Bank lithium price forecasts to 2025.

    (Please refer to the announcement on the European Metals Website for the graph described above - www.europeanmet.com.)

    A cost comparison shows the project will breathe in the lowest half of the global cost curve.

    (Please refer to the announcement on the European Metals Website for the cost comparison table described above - www.europeanmet.com.)

    The graph below shows the anticipated supply and demand for lithium.

    (Please refer to the announcement on the European Metals Website for the table showing the anticipated supply and demand for lithium - www.europeanmet.com.)

    There are industry measure specifications for lithium carbonate. The table below shows that the results achieved to-date in testing meets these standards.

    (Please refer to the announcement on the European Metals Website for the table as described above - www.europeanmet.com.)

     

    Economic

    ·     The inputs to the economic analysis to bear the net present value (NPV) in the study, the source and aplomb of these economic inputs including estimated inflation, discount rate, etc.

    ·     NPV ranges and sensitivity to variations in the significant assumptions and input.

    The results of the techno-economic evaluation demonstrate that the project is economically viable based on the designs established and the assumptions used in this study.  The table below shows that the pecuniary result is positive when considering the time value of money.  At a discount rate of 8 per cent, the NPV is 540 million USD and the post-tax IRR is 20.9 per cent.

    (Please refer to the announcement on the European Metals Website for the table as described above - www.europeanmet.com.)

     

     

    Sensitivity analysis shows that the project is most sensitive to changes in the price of lithium, as presented in the design below.

    (Please refer to the announcement on the European Metals Website for the design described above  - www.europeanmet.com.)

    Social

    ·     The status of agreements with key stakeholders and matters leading to companionable licence to operate.

    The Cinovec project has been included in the Czech Government programme for the restructuring of the region Usti in the context of Government advocate of the regions damaged by the former coal mining.  The projects included in this Government programme will gain the plenary advocate of the Central Government, regional Governments and plenary the companionable partners within the region. The Ministry of industry, in collaboration with the Ministry of alien Affairs furthermore prepare a Memorandum of cooperation between the Czech Republic and Australia in which the Government of the Czech Republic declares plenary advocate for the Cinovec project.

    Other

    ·     To the extent relevant, the repercussion of the following on the project and/or on the estimation and classification of the Ore Reserves:

    ·     Any identified material naturally occurring risks.

    ·     The status of material legal agreements and marketing arrangements.

    ·     The status of governmental agreements and approvals censorious to the viability of the project, such as mineral tenement status, and government and statutory approvals. There must breathe reasonable grounds to expect that plenary necessary Government approvals will breathe received within the timeframes anticipated in the Pre-Feasibility or Feasibility study. Highlight and discuss the materiality of any unresolved matter that is conditional on a third party on which extraction of the reserve is contingent.

    There is a limpid process for the award of Mining Permits in the Czech Republic. These embrace placing the reserves on "State Balance" which has largely been completed. Subsequently a introductory Mining permit is issued. This has been received for a portion of the deposit and labor is on-going to gain a permit for the remaining area. Subsequent to this, a Mining Permit can breathe issued once plenary other requirements are met, ie an approved EIA, land zoning change for inevitable works etc.

    The lands needed for the construction of the mine, the transport pipeline and the processing plant are mostly owned by the status and a private owner Forests North, who are plenary supportive of the project.

    Marketing agreements exigency to breathe entered into by the Company. The Company has commenced discussions with offtakers and with the forecast supply/demand curve is confident that any battery grade lithium will breathe readily sold into the market.

    Classification

    ·     The basis for the classification of the Ore Reserves into varying aplomb categories.

    ·     Whether the result appropriately reflects the Competent Person's view of the deposit.

    ·     The proportion of Probable Ore Reserves that gain been derived from Measured Mineral Resources (if any).

    The classification of the Ore Reserves is shown below:

     

     

    CINOVEC ORE RESERVES SUMMARY

    Category

    Tonnes

    Li

    Li20

    Sn

    W

    (Millions)

    %

    %

    %

    %

    Proven Ore Reserves

    0

    0

    0

    0

    0

    Probable Ore Reserves

    34.5

    0.30

    0.65

    0.09

    0.03

    Total Ore Reserves

    34.5

    0.30

    0.65

    0.09

    0.03

    This reflects the Competent Persons view of the deposit.

    All Ore Reserves declared are Probable Ore Reserves and are derived from Indicated Mineral Resources.  The classification is based on two factor being:

    ·      Engineering study labor has only progressed to introductory feasibility levels of accuracy thus aplomb levels in the engineering and costing are only appropriate for Probable Ore Reserves.

    ·      The Mineral Resources converted to Ore Reserves are plenary at the Indicated flat of aplomb which will only advocate conversion to Probable Ore Reserve.

    Audits or reviews

    ·     The results of any audits or reviews of Ore Reserve estimates.

    No external audits of the ore reserve gain been undertaken to date

    Discussion of relative accuracy/ confidence

    ·     Where appropriate a statement of the relative accuracy and aplomb flat in the Ore Reserve estimate using an approach or procedure deemed appropriate by the Competent Person. For example, the application of statistical or geostatistical procedures to quantify the relative accuracy of the reserve within stated aplomb limits, or, if such an approach is not deemed appropriate, a qualitative discussion of the factors which could move the relative accuracy and aplomb of the estimate.

    ·     The statement should specify whether it relates to global or local estimates, and, if local, status the apposite tonnages, which should breathe apposite to technical and economic evaluation. Documentation should embrace assumptions made and the procedures used.

    ·     Accuracy and aplomb discussions should extend to specific discussions of any applied Modifying Factors that may gain a material repercussion on Ore Reserve viability, or for which there are remaining areas of suspicion at the current study stage.

    ·     It is recognised that this may not breathe viable or appropriate in plenary circumstances. These statements of relative accuracy and aplomb of the estimate should breathe compared with production data, where available.

    The accuracy and aplomb flat of the selected modifying factors are considered to breathe commensurate with a introductory feasibility study.

     

    The accuracy and aplomb in the cost estimation, which is based primarily on the labor completed by the various consulting groups are considered to breathe at pre-feasibility study levels of accuracy, typically to ± 25% accuracy. 

     

     

     



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