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Free with trial Long boats on canals in Bangkok. Input data was a validated Micromine Database. Extensive validation routines were run to confirm validity of all data. Collar, down hole survey and assay data has been sourced from original survey and laboratory files where possible and extensively validated. Site visits Comment on any site visits undertaken by the Competent Person and the outcome of those visits. If no site visits have been undertaken indicate why this is the case. A site visit was undertaken by the Competent Person Lynn Widenbar on 21 st September ; general site layout, open bulk sampling pits and diamond drilling operations were viewed, plus chip trays in the storage facility.

Geological interpretation Confidence in or conversely, the uncertainty 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 use of geology in guiding and controlling Mineral Resource estimation. The factors affecting continuity both of grade and geology. There is good confidence in the geological interpretation of the deposit in most areas; there are some areas of uncertainty at the outer limits of the deposit where drill spacing is sparse. The geological logging and the geochemical signatures of the various alluvial, overburden, lateritised and saprolite zones has been used to generate a reliable geological coding system for the drill hole data.

Alternative geological interpretation would have a minimal effect on the resource estimate. Geological domain boundaries are used to flag data for use in estimation and as hard boundaries to interpolate block grades. The underlying bedrock geology Dunite Complex is also used to constrain some of the block model generation. Continuity of grade and geology is strongly tied to the horizontal weathering profile which has created the mineralised laterite zones; the boundary between underlying Dunite complex and the surrounding pyroxenite also has an effect on the geochemical distribution.

Dimensions The extent and variability of the Mineral Resource expressed as length along strike or otherwise , plan width, and depth below surface to the upper and lower limits of the Mineral Resource. The extent and orientation of the resources at Sunrise are illustrated in the diagrams in the body of this release. The mineralisation is essentially horizontal with local dips of a few degrees in various directions. The resource extends over an area approximately 4km x 4km; thickness of the lateritised zones varies from a few metres to a total of over 30m. The base of the mineralisation varies from a few metres to more than 60m below natural 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 method was chosen include a description of computer software and parameters used. 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 block model interpolation, the block 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 use of reconciliation data if available. Other elements have been estimated using an Inverse Distance Cubed methodology. Micromine Geological surfaces have been used to produce discrete domain-based block estimates. In addition, Indicator Models were used to define a high-grade cobalt domain in the Goethitic Laterite Zone and a high-grade scandium domain to the north and west of the main Dunite Complex footprint.

Variography was carried out to define the variogram models for the Ordinary Kriging OK interpolation. Block size is generally one quarter of the drill hole spacing. Three parent cell sizes are used dependent on the local drilling pattern. In very close spaced drilling a 5m x 5m x 2m block size is used. In 60m x 60m drilled areas, a 15m x 15m x 2m block size is used. In m x m and wider spaced areas a 30m x 30m x 2m block size is used. All potentially deleterious elements have been modelled.

Recovery of by-products will be determined following detailed metallurgical testwork. All potential value-adding by-products have been included in the estimation. Search ellipsoids use multiple passes to ensure blocks are filled in areas with sparser drilling. The first pass used a search of 60m x 60 x 10m, A second pass used a search of m x m x 10m and a third pass of m x m x 10m was used to ensure complete filling of blocks. Sample data was composited to 1m down-hole composites, while honouring breaks in mineralised zone interpretation.

Top cut analysis was carried out to identify extreme outliers, using a combination log probability plots, and log histograms and the effect of top cuts on cut mean and coefficient of variation. Validation was carried out in a number of ways, including Visual inspection section, plan and 3D Swathe plot validation Model vs composite statistics ID2 vs OK model checks No reconciliation data is available.

Moisture Whether the tonnages are estimated on a dry basis or with natural moisture, and the method of determination of the moisture content. Tonnages are estimated on a dry basis. Cut-off parameters The basis of the adopted cut-off grade s or quality parameters applied. Mining factors or assumptions Assumptions made regarding possible mining methods, minimum mining dimensions and internal or, if applicable, external mining dilution. It is always necessary as part of the process of determining reasonable prospects for eventual economic extraction to consider potential mining methods, but the assumptions made regarding mining methods and parameters when estimating Mineral Resources may not always be rigorous.

Where this is the case, this should be reported with an explanation of the basis of the mining assumptions made. Due to the proximity of the mineralisation to surface, the deposit is amenable to conventional open pit mining. Two feasibility studies have developed practicable staged open pit mine plans based on conventional open pit mining by contractor, using large backhoes and trucks, operating on working benches 2m in height. The most recent study assumed about 2. No dilution or ore loss is specifically included in the resource model, other than that inherent in the smoothing introduced by the kriging interpolation methodology and the inherent dilution built into the geological modelling as precursor to the Resource Modelling and Estimation.

Metallurgical factors or assumptions The basis for assumptions or predictions regarding metallurgical amenability. It is always necessary as part of the process of determining reasonable prospects for eventual economic extraction to consider potential metallurgical methods, but the assumptions regarding metallurgical treatment processes and parameters made when reporting Mineral Resources may not always be rigorous.

Where this is the case, this should be reported with an explanation of the basis of the metallurgical assumptions made. Metallurgical test work has been carried out on diamond, reverse circulation, Calweld and sonic core samples from geographically dispersed drill holes, with coverage of all geological domains. Metallurgical Test work on the nickel, cobalt and platinum material for the Sunrise project was completed by Black Range Minerals and Ivanplats, through ALS Metallurgy, SGS Metallurgy, Hazen Laboratories and other laboratories as part of the feasibility studies conducted in and Additional test work, including Pilot Scale test work, was carried out on the nickel, cobalt and scandium material by ALS Metallurgy, SGS Metallurgy and other laboratories during the Definitive Feasibility Study FS in through for mineral recovery determination.

A comprehensive suite of metallurgical test work, including further Pilot Scale test work and specific equipment vendor test work is presently in process and due for completion in Q3 further supporting results used in the Definitive Feasibility Study DFS , currently being undertaken by Clean TeQ. The ongoing metallurgical test work shall include metallurgical samples and composites collected from bulk test pits and geographically dispersed drill holes. The metallurgical recoveries for nickel and cobalt were derived from metallurgical test work comprising over ore variability batch tests and 4 separate pilot plant campaigns testing 10 bulk ore composites as part of three feasibility studies completed in , and Recent metallurgical test work undertaken by Clean TeQ confirm these recoveries.

Results of average feed grades support resource grades Sufficient work has been undertaken to demonstrate that a viable treatment process is available for the Sunrise lateritic nickel, cobalt and scandium mineralisation. The proposed process for nickel, cobalt and scandium recovery involves high pressure acid leaching, followed by continuous RIP process for the extraction of nickel, cobalt and scandium from solution, which is then purified via separation of scandium via ion exchange, followed by solvent extraction separation and purification, prior to crystallisation to produce battery grade nickel and cobalt sulphates. The proposed process for the scandium refining involves precipitation and purification steps of the scandium eluate to produce high purity scandium oxide product.

Environmental factors or assumptions Assumptions made regarding possible waste and process residue disposal options. It is always necessary as part of the process of determining reasonable prospects for eventual economic extraction to consider 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 be well advanced, the status of early consideration of these potential environmental impacts should be reported.

Where these aspects have not been considered this should be reported with an explanation of the environmental assumptions made. The area in which the deposit occurs does not seem to have any unusual environmental significance. The previous granting of a Development Consent indicates that there are unlikely to be any insurmountable environmental obstacles. Additional permits and licences would have to be obtained before operations could commence.

As part of the DFS, additional baseline studies have been undertaken to assess potential environmental impacts of the mining and processing operations. There are no obvious environmental factors that would prevent the deposit being reported as an identified mineral resource. Bulk density Whether assumed or determined. If assumed, the basis for the assumptions. If determined, the method used, whether wet or dry, the frequency of the measurements, the nature, size and representativeness of the samples. The bulk density for bulk material must have 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.

Dry bulk density factors used for previous Mineral Resource estimates have been used for this update. In-situ bulk densities have been determined by measurements carried out on core, measurements at external laboratories and down-hole geophysical logging gamma-gamma. Measurements on bulk material were obtained by weighing total material recovered from over m of drilling in mineralised zones by 6 large diameter Calweld holes, adjusted for moisture content determined by oven drying quickly sealed grab samples. As documented, the procedures used seemed appropriate. Due to the relatively large volumes involved these should have been the most reliable measurements available.

Measurements made after drying small core samples from 5 diamond drill holes were given some influence. Factors applied to the more mineralised zones tended to be slightly rounded downwards. This was prudent in view of the general tendency for a negative correlation between bulk density and grade. A higher average value was assumed for the SGZ than indicated by the Calweld holes. This was reasonable because they failed to fully penetrate the zone and we would expect average density to increase in its lowermost parts.

Density determination by down-hole geophysical logging were conducted in a total of seven diamond drill holes and about RC holes by either Down Hole Surveys Pty Ltd or Surtron Technologies Pty Ltd. Classification The basis for the classification of the Mineral Resources into varying confidence categories. The Mineral Resources have been classified as Measured, Indicated and Inferred based on drill spacing and geological continuity. The Resource model uses a classification scheme based upon drill hole spacing plus block estimation parameters, including kriging variance, number of composites in search ellipsoid informing the block cell and average distance of data to block centroid.

Audits or reviews The results of any audits or reviews of Mineral Resource estimates. The currently reported Mineral Resource estimates have not been subject to third party review, but have been internally peer-reviewed. For example, the application of statistical or geostatistical procedures to quantify the relative accuracy of the resource within stated confidence limits, or, if such an approach is not deemed appropriate, a qualitative discussion of the factors that could affect the relative accuracy and confidence of the estimate. The statement should specify whether it relates to global or local estimates, and, if local, state the relevant tonnages, which should be relevant to technical and economic evaluation.

Documentation should include assumptions made and the procedures used. These statements of relative accuracy and confidence of the estimate should be compared with production data, where available. The statement relates to local estimates of tonnes and grade, with reference made to resources above a certain cut-off that are intended to assist mining studies. Section 4 Estimation and Reporting of Ore Reserves Criteria listed in section 1, and where relevant in section 2 and 3, also apply to this section. Clear statement as to whether the Mineral Resources are reported additional to, or inclusive of, the Ore Reserves.

The Mineral Resource was reported using both a 0. Tim Harrison Principal Metallurgist , Mr. Cox and Mr. Harrison are full time employees of Clean TeQ. Harrison has made numerous extended visits to site between and White will visit site during July Study status The type and level of study undertaken to enable Mineral Resources to be converted to Ore Reserves. Such studies will have been carried out and will have determined a mine plan that is technically achievable and economically viable, and that material Modifying Factors have been considered.

The project development consists of an open cut mine, hydrometallurgical processing plant and associated infrastructure, including: Ore crushing and preparation plant producing up to 2. The Sunrise deposit was scheduled to meet quality targets and processing constraints. Conventional open pit mining is planned using hydraulic excavators and dump trucks. Cut-off parameters The basis of the cut-off grade s or quality parameters applied. For the June Ore Reserves, no cut-off was applied as the Ore Reserve was optimised by maximising resource tonnages with all material processed through the Ore Preparation plant prior to HPAL with performance as per cut-off criteria applied below.

Mining factors or assumptions The method and assumptions used as reported in the Pre-Feasibility or Feasibility Study to convert the Mineral Resource to an Ore Reserve i. 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. The economic portions of the Mineral Resources were converted to Ore Reserves from pit optimisation, mine scheduling and pit design studies. Clean TeQ proposes to mine the Sunrise Deposit by conventional open pit mining methods using a selective mining approach.

Mining of Ore is planned to be undertaken on 2 m benches. The mine designs include pits, haul roads, dump and stockpile designs and water management bunds and dams. An allowance for grade control and pre-production drilling was included in the mining cost. A regularised mining block model, as distinct from the sub-blocked resource model, was developed from the resource model by the application of a regular block size and estimation of the Mineral Resource model to a Standard Mining Unit SMU mining block model; An SMU of Grades were re-estimated into the SMU but no other dilution is applied other than the inherent dilution built within the geological modelling as precursor to the Resource Modelling and Estimation.

Appropriate factors have been added to the regularised mining block model, which has been optimised using Datamine NPVS Optimisation software. The resultant optimal shell was then used as the basis for the detailed design to include pit wall angles and access ramps. The Ore Reserve model is a recoverable reserve estimate that takes into account estimation of dilution and ore losses in the estimation based on a SMU.

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 work undertaken, the nature of the metallurgical domaining applied and the corresponding metallurgical recovery factors applied. Any assumptions or allowances made for deleterious elements. The existence of any bulk sample or pilot scale test work 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 flowsheet will process goethite and silicified goethite feed via ore preparation, HPAL, continuous resin in pulp, continuous liquid exchange, solvent extraction and crystallisation to produce high purity nickel and cobalt sulfate products. High purity scandium oxide will also be produced. Waste streams are neutralised prior to disposal in a Tailings Storage Facility. The process has been demonstrated in both bench scale batch and continuous pilot plant operations, the results of which have been used to develop the process design criteria for the process plant design. The technologies used in the Clean TeQ Sunrise flowsheet have been demonstrated at commercial scale.

The use of continuous resin in pulp has been widely used in former Soviet Union states for the recovery and production of gold and uranium. The application of this technology on laterite ores for the extraction of nickel, cobalt and scandium represents a novel use of the technology which has been successfully demonstrated at pilot scale by Clean TeQ Sunrise. Clean TeQ has developed the continuous resin in pulp process for nickel and cobalt laterite ore treatment over 14 years, which has included multiple large scale pilot plants on several laterite deposits.

Extensive metallurgical test work and piloting has previously been carried out on several ore types and composites over the Project. Variability testing was completed on mineral samples which represented the first 5 to 10 years of production. A month commissioning and ramp up period was assumed. The acid consumption calculation used for the Project was developed from bench scale and pilot testwork chemistry with consideration for the main elements in the orebody contributing to acid consumption. The factors applied to each element was based on analysis of multiple samples and composites over the deposit. Two large scale pilot plant operations have been carried out on Sunrise bulk sample, representing material likely to be processed in the first 10 years of operation.

Deleterious elements are managed through the Clean TeQ Sunrise flowsheet process chemistry and rejected via unit operations and process conditions employed. No assumptions have been made on the behaviour of deleterious elements as this has been demonstrated through testwork at bench scale and continuous pilot plant operation. Impurity elements are identified through the process testwork at bench scale and pilot testwork that are managed though the current process design.

The use of the continuous RIP process represents demonstrates upgrading of nickel and cobalt metal relative to impurities through rejection of impurities elements from the leached slurry through operating continuous and selectivity of the ion exchange resin for Ni, Co and Sc over impurity elements. Environmental The status of studies of potential environmental impacts of the mining and processing operation.

Details of waste 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 waste dumps should be reported. Waste will be used in the walls of the TSF. Waste material has been characterised as part of the EIS. The study has allowed for rehabilitation of the waste dumps, TSF and other surface facilities in line with the EIS and Development Consent conditions in place.

Erosion control measures will be provided along with the relocation and spreading of stockpiled topsoil material. Flora and fauna will be established in line with the development consent and EIS requirements. Infrastructure The existence 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 be provided, or accessed. Mining of the Sunrise Deposit is dependent on new development of the following infrastructure: haul roads, process plant, acid plant and accommodation at mine sites; power reticulation to the minesite from the NSW grid; Capital costs for this infrastructure were estimated within the DFS.

These two tenements are underlain by Exploration Licence EL Land currently not owned by the company which is required for the project is under negotiation for purchase or an access agreement The company has a water licence for 3. A water pipeline will be constructed to supply water to the project and has been allowed for in the capital estimate. The borefield and water pipeline were a part of the EIS completed on the Project. The Project is well-serviced by roads, both for transport and access to the local communities for labour accommodation. As a part of the Development Consent in place on the Project, upgrades to certain sections of roads have been agreed.

The costs for these upgrades have been accounted for in the DFS capital cost. Transport of all bulk commodities and reagents to site are via rail and road, with the main transport routes identified. 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.

Clean TeQ provided capital cost estimation for mining, borefields and pipeline, accommodation camp, first fills, and Owners Costs. Operating costs were estimated within the DFS and include allowances for reagents and raw materials, mining, ore processing, non-processing-related infrastructure, administration, transport to port and shipping costs. Exchange rates are derived from external economic forecasters. Freight prices are derived from an independent logistic consultant for the DFS and include port costs and charges, rail line haul and road transportation.

The DFS assumes that nickel and cobalt sulphate will be produced on site together with scandium oxide. No allowances were made for penalties for failure to meet specification. An allowance for a NSW State royalty of 4. 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. Treatment, refining and transportation charges were calculated via an operating cost model with estimates for costs calculated for each period.

No allowance was made for penalties. Market assessment The demand, supply and stock situation for the particular commodity, consumption trends and factors likely to affect 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. The binding offtake agreement is on a take-or-pay basis. Clean TeQ is also in discussion with other potential customers and offtake partners and has developed as part of the DFS, a detailed marketing strategy for nickel and cobalt sulphate and scandium oxide markets.

Economic The inputs to the economic analysis to produce the net present value NPV in the study, the source and confidence of these economic inputs including estimated inflation, discount rate, etc. NPV ranges and sensitivity to variations in the significant assumptions and inputs. The NPV is most sensitive to cobalt and nickel price , operating and capital cost. Social The status of agreements with key stakeholders and matters leading to social licence to operate. Clean TeQ has been exploring and undertaking project development since and have a good relationship with the local community, government and key stakeholders with the following agreements in place or under negotiation: A Development Consent has been granted by the New South Wales government for the project based on an EIS submitted in and subsequent modifications in and Approvals for a modification to this consent to allow scandium oxide production was approved in May Additional approvals for modifications to this consent was undertaken in May , September and December for additional project efficiencies and updates as part of the DFS and are awaiting final approval or further assessment.

Any future modification applications of the Project will comply with relevant State significant development legislative requirements. Voluntary planning agreements with local councils have been agreed in principle and subject to approval of the Development Consent Modification by the NSW Department of Planning. There are no registered Native Title claims over the various components of the Project. The status of material legal agreements and marketing arrangements. The status of governmental agreements and approvals critical to the viability of the project, such as mineral tenement status, and government and statutory approvals. There must be reasonable grounds to expect that all necessary Government approvals will be received within the timeframes anticipated in the Pre-Feasibility or Feasibility study.

Highlight and discuss the materiality of any unresolved matter that is dependent on a third party on which extraction of the reserve is contingent. Major Project risks are Cobalt and Nickel price variation, delays in construction and ramp up of operations, foreign exchange rates, capital cost of the project, production and operational factors. Mining Leases under NSW Mining Act for the main project area and the limestone quarry have been granted and are in good standing Classification The basis for the classification of the Ore Reserves into varying confidence categories. A total of Tim Harrison, Mr. Luke Cox and Mr. Lee White are satisfied that the stated Ore Reserves accurately reflect the outcome of mine planning and the input of economic parameters into pit optimisation studies.

Audits or reviews The results of any audits or reviews of Ore Reserve estimates. The currently reported Ore Reserve estimates have not been subject to third party review, but have been internally peer-reviewed. For example, the application of statistical or geostatistical procedures to quantify the relative accuracy of the reserve within stated confidence limits, or, if such an approach is not deemed appropriate, a qualitative discussion of the factors which could affect the relative accuracy and confidence of the estimate.

Accuracy and confidence discussions should extend to specific discussions of any applied Modifying Factors that may have a material impact on Ore Reserve viability, or for which there are remaining areas of uncertainty at the current study stage. It is recognised that this may not be possible or appropriate in all circumstances. The Ore Reserve estimate is the outcome of a study undertaken to a Definitive Feasibility Study level with geological, metallurgical, geotechnical, engineering and mining engineering considerations.

No assurance can be given that such expectations will prove to have been correct. Accordingly, results could differ materially from those set out as a result of, among other factors: changes in economic and market conditions, deterioration in the nickel and cobalt market, deterioration in debt and equity markets that may lead to the Project not being able to be financed, success of business and operating initiatives, changes in the regulatory environment and other government action, fluctuations in nickel and cobalt sulphate prices and exchange rates, business and operational risk management, changes in equipment life, capability or access to infrastructure, emergence of previously underestimated technical challenges, environmental or social factors which may affect a license to operate.

As there has been no mining to date, no production data is available. There are no undisclosed known areas of uncertainty. Table 1: Summary of Outcomes. Initial Life of Mine Revenue. Average C1 operating cash costs Year — inclusive of by-product credits. Average C1 operating cash costs Year — exclusive of by-product credits. Project payback simple. Table 2: Key Assumptions. Key Assumptions. Scandium oxide price. Table 3: Production Summary Year 2 — Average Production Year 2 — Nickel sulphate. Cobalt sulphate. Ammonium sulphate. Contained nickel metal. Contained cobalt metal. Table 4: Initial Life of Mine Production.

Initial Life of Mine Production Year 1 — Nickel Production. Cobalt Production. Scandium Hydroxide Production excess stockpiled. Average Strip Ratio. Life of Mine Revenue. Proportion of Revenue. Nickel Sulphate. Cobalt Sulphate. Ammonium Sulphate. Project Area. Site Development. Process Plant. Total Directs. Indirects, including EPCM. Capital Cost, excluding Contingency. Total Capital Cost Estimate. Table 7: Average C1 operating costs Years 2 — Cost Centre. Cobalt Credits. Scandium Credits assumes sales capped at 10tpa. Ammonium Sulphate Credits. Total C1 Operating Cost. Capital Cost. Operating Costs. Nickel Price. Cobalt Price. Nickel Recovery. Cobalt Recovery. Table Spot Commodity Price Scenario.

Nickel Sulphate Price. Cobalt Sulphate Price. LOM Revenue. C1 Cash costs before cobalt credits. C1 Cash costs after cobalt credits. NPV 8 real, post-tax. IRR real, post-tax. Tonnage Mt. Grade Sc ppm. Ni Metal Tonnes. Co Metal Tonnes. Scandium Metal t. Scandium Oxide t. Q1 Formal construction 24 months. Q1 — Q1 First ore into process plant. Sampling techniques. Nature and quality of sampling eg cut channels, random chips, or specific specialised industry standard measurement tools appropriate to the minerals under investigation, such as down hole gamma sondes, or handheld XRF instruments, etc. Drilling techniques.

Drill type eg core, reverse circulation, open-hole hammer, rotary air blast, auger, Bangka, sonic, etc and details eg core diameter, triple or standard tube, depth of diamond tails, face-sampling bit or other type, whether core is oriented and if so, by what method, etc. Drill sample recovery. Method of recording and assessing core and chip sample recoveries and results assessed. Whether core and chip samples have been geologically and geotechnically logged to a level of detail to support appropriate Mineral Resource estimation, mining studies and metallurgical studies. Sub-sampling techniques and sample preparation.

If core, whether cut or sawn and whether quarter, half or all core taken. 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. Verification of sampling and assaying. The verification of significant intersections by either independent or alternative company personnel. 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.

Data spacing and distribution. Data spacing for reporting of Exploration Results. Orientation of data in relation to geological structure. Whether the orientation of sampling achieves unbiased sampling of possible structures and the extent to which this is known, considering the deposit type. Sample security. The measures taken to ensure sample security. Audits or reviews. The results of any audits or reviews of sampling techniques and data. Mineral tenement and land tenure status. Exploration done by other parties. Acknowledgment and appraisal of exploration by other parties. Deposit type, geological setting and style of mineralisation. Drill hole Information. A summary of all information material to the understanding of the exploration results including a tabulation of the following information for all Material drill holes: easting and northing of the drill hole collar elevation or RL Reduced Level — elevation above sea level in metres of the drill hole collar dip and azimuth of the hole down hole length and interception depth hole length.

Data aggregation methods. Relationship between mineralisation widths and intercept lengths. These relationships are particularly important in the reporting of Exploration Results. Appropriate maps and sections with scales and tabulations of intercepts should be included for any significant discovery being reported. Balanced reporting. Other substantive exploration data.

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

Further work. The nature and scale of planned further work eg tests for lateral extensions or depth extensions or large-scale step-out drilling. Addition geological and mine development work is planned post completion of the DFS. 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 use for Mineral Resource estimation purposes. Site visits. Comment on any site visits undertaken by the Competent Person and the outcome of those visits.

Geological interpretation. Confidence in or conversely, the uncertainty of the geological interpretation of the mineral deposit. The extent and variability of the Mineral Resource expressed as length along strike or otherwise , plan width, and depth below surface to the upper and lower limits of the Mineral Resource. 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. Whether the tonnages are estimated on a dry basis or with natural moisture, and the method of determination of the moisture content. Cut-off parameters. The basis of the adopted cut-off grade s or quality parameters applied. Mining factors or assumptions. Assumptions made regarding possible mining methods, minimum mining dimensions and internal or, if applicable, external mining dilution.

Metallurgical factors or assumptions. The basis for assumptions or predictions regarding metallurgical amenability. Environmental factors or assumptions. Assumptions made regarding possible waste and process residue disposal options. Bulk density. Whether assumed or determined. The basis for the classification of the Mineral Resources into varying confidence categories. The results of any audits or reviews of Mineral Resource estimates. Where appropriate a statement of the relative accuracy and confidence level in the Mineral Resource estimate using an approach or procedure deemed appropriate by the Competent Person.

Mineral Resource estimate for conversion to Ore Reserves.

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