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RNS Number : 1439L Future Metals NL 12 May 2022
Future Metals NL
Further Significant Mineralised Intercepts and Commencement of Updated Resource Estimation
Future Metals NL ("Future Metals" or the "Company", ASX | AIM: FME), a
platinum group metals ("PGM") focused company, is pleased to report further
shallow, wide PGM assay results from the historical drill hole sampling
completed to date at its 100% owned Panton PGM Project ("Panton") in northern
Western Australia. The Company has also commenced the resource estimation
workstream, targeting release of a new JORC Mineral Resource Estimate ("MRE")
in the coming weeks.
Highlights
§ Assay results received from a further 9 historical, previously unsampled
drill holes continue to confirm broad mineralised widths at Panton along the
drilled 3.5km strike. Notable intercepts include (at a 0.5g/t PGM((3E))
cut-off, maximum 4m internal dilution) (refer to Table One and Appendix Two
for full details):
· 60.5m @ 1.24 g/t PdEq(3) (0.86 g/t PGM3E(2) & 0.18% Ni) from 0m
(PS342)
· 14m @ 1.60 g/t PdEq(3) (1.17 g/t PGM3E(2) & 0.21% Ni) from 234m
(PS235)
· 12m @ 1.64 g/t PdEq(3) (1.40 g/t PGM3E(2) & 0.15% Ni) from 254m
(PS257)
· 9.2m @ 1.70 g/t PdEq(3) (1.41 g/t PGM3E(2) & 0.19% Ni) from
175.8m (PS264)
· 14m @ 1.48 g/t PdEq(3) (1.07 g/t PGM3E(2) & 0.19% Ni) from 67.05m
(PS316)
§ All holes returned significant intercepts of mineralisation when applying
an unconstrained PdEq cut-off grade of 0.5 g/t, intercepts included:
· 84m @ 1.10 g/t PdEq(3) (0.68 g/t PGM3E(2) & 0.19% Ni) from 226m
(PS235)
· 55.1m @ 1.26 g/t PdEq(3) (0.87 g/t PGM3E(2) & 0.18% Ni) from 41m
(PS341)
· 57.85m @ 1.02 g/t PdEq(3) (0.67 g/t PGM3E(2) & 0.15% Ni) from
244.95m (PS257)
· 50.95m @ 1.00 g/t PdEq(3) (0.62 g/t PGM3E(2) & 0.16% Ni) from
41.55m (PS316)
§ Preparation of an independent updated JORC Mineral Resource Estimate is
underway and remains on track for completion in the quarter ending June 2022.
Mr Jardee Kininmonth, Managing Director & CEO of Future Metals, commented:
"All drill hole results returned to date have confirmed significant intercepts
of mineralisation, demonstrating the strong continuity of the Panton orebody
along its current 3.5km strike, and the lateral extent of mineralisation
sitting outside of the chromite reefs.
With the majority of the assay results now received, work has begun on the new
bulk-tonnage Mineral Resource Estimate and we remain on target for its release
in the coming weeks. This new MRE will include both the mineralisation in the
high-grade chromite reefs and the significant dunite mineralisation which
envelopes the reefs, across the A, B, C and D blocks."
(1) PGM6E = Palladium (Pd) + Platinum (Pt) + Rhodium (Rh) + Ruthenium (Ru) +
Osmium (Os) + Iridium (Ir)
(2) PGM3E = Palladium (Pd) + Platinum (Pt) + Gold (Au)
(3) PdEq (Palladium Equivalent g/t) = Pd(g/t) + 0.76471xPt(g/t) +
0.875xAu(g/t) + 1.90394xNi(%) + 1.38936xCu(%) + 8.23xCo(%)
Exploration Drillhole Assay Results
Hole ID From To Interval Pd Pt Au PGM(3E)(1) Ni Cu Co PdEq(2)
(m) (m) (m) (g/t) (g/t) (g/t) (g/t) (%) (%) (ppm) (g/t)
Intersections based on 0.5 g/t PGM(3E)(1) cut-off grade, maximum 4m internal
dilution
PS235 234 248 14 0.59 0.56 0.02 1.17 0.21 0.022 163 1.60
PS235 256 287 31 0.45 0.32 0.06 0.83 0.19 0.0095 130 1.23
PS235 299.3 301.05 1.75 0.32 0.55 0.12 1.00 0.25 0.075 199 1.59
PS235 305 310 5 0.23 0.48 0.53 0.76 0.14 0.049 170 1.12
PS257 247.6 248.9 1.3 0.57 0.20 0.02 1.20 0.18 0.015 177 1.24
PS257 254 266 12 0.69 0.64 0.07 1.40 0.15 0.02 113 1.64
PS257 271 286 15 0.39 0.39 0.14 0.92 0.16 0.049 162 1.32
PS257 298 302.8 4.8 0.26 0.27 0.03 0.56 0.12 0.015 147 1.01
PS264 175.8 185 9.2 0.52 0.76 0.03 1.41 0.19 0.01 148 1.70
PS264 203 208 5 0.63 0.53 0.09 1.25 0.10 0.044 146 1.45
PS264 215 223 8 0.37 0.31 0.03 0.70 0.17 0.01 131 1.08
PS316 48.5 50 1.5 0.48 0.13 0.02 0.63 0.16 0.048 132 1.03
PS316 67.05 81.05 14 0.43 0.40 0.24 1.07 0.19 0.039 146 1.48
PS316 86 92.5 6.5 0.42 0.51 0.23 1.16 0.20 0.019 152 1.59
PS329 23 26 3 0.73 0.59 0.07 1.39 0.16 0.029 133 1.70
PS329 39 51 12 0.44 0.26 0.05 0.73 0.17 0.017 130 1.12
PS330 0.85 4 3.15 0.35 0.79 0.07 0.59 0.25 0.035 183 2.30
PS330 9.9 36 26.1 0.06 0.25 0.38 0.69 0.18 0.0147 135 1.10
PS330 41.6 42.2 0.6 0.55 0.42 0.05 1.01 0.22 0.016 184 1.50
PS330 47.65 50.35 2.7 0.30 0.21 0.02 0.53 0.20 0.008 147 0.99
PS330 57 63 6 0.51 0.27 0.02 0.79 0.16 0.011 147 1.17
PS341 69.35 89 19.65 0.43 0.39 0.06 0.87 0.18 0.019 143 1.26
PS342 0 60.5 60.5 0.37 0.43 0.05 0.86 0.18 0.014 148 1.24
Intersections based on 0.5 g/t PdEq(2) cut-off grade, unconstrained
PS235 226 310 84 0.34 0.31 0.035 0.68 0.19 0.018 144 1.10
PS257 244.95 302.8 57.85 0.30 0.30 0.07 0.67 0.15 0.028 128 1.02
PS264 175.8 225 49.2 0.25 0.27 0.04 0.56 0.16 0.0165 131 0.93
PS316 41.55 92.5 50.95 0.28 0.23 0.11 0.62 0.16 0.025 128 1.00
PS329 1.5 53 51.5 0.25 0.16 0.03 0.43 0.14 0.023 122 0.80
PS330 0.85 64 63.15 0.31 0.20 0.04 0.55 0.18 0.013 139 0.98
PS331 0 74 74 0.12 0.05 0.02 0.19 0.17 0.008 128 0.61
PS341 28 32 4 0.03 0.04 0.03 0.10 0.13 0.07 120 0.53
PS342 41 96.1 55.1 0.43 0.39 0.06 0.87 0.18 0.019 143 1.26
An additional 9 drill hole assays have been received and continue to confirm
much broader widths of shallow PGM mineralisation than modelled in the current
2.4Moz MRE (refer to Appendix One). Assays for the remaining holes submitted
to the laboratory that remain outstanding are expected to be reported in the
coming weeks. These latest assay results are set out in Table One below (refer
to Appendix Two for the drill hole details):
Table One | Drilling Assay Results
(1) 3E= Palladium (Pd) + Platinum (Pt) + Gold (Au)
(2) PdEq (Palladium Equivalent g/t) = Pd(g/t) + 0.76471xPt(g/t) +
1.90394xNi(%) + 0.875x(Au(g/t) + 1.38936xCu(%) + 8.23xCo(%)
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Figure One | Panton Drill Hole Plan
Palladium Equivalent (PdEq)
Based on metallurgical test work completed on Panton samples, all quoted
elements included in the metal equivalent calculation (palladium, platinum,
gold, nickel, copper and cobalt) have a reasonable potential of being
ultimately recovered and sold.
Metal recoveries used in the palladium equivalent (PdEq) calculations are the
midpoint of the range of recoveries for each element based on metallurgical
test work undertaken to date at Panton. It should be noted that palladium and
platinum grades reported in this announcement are lower than the palladium and
platinum grades of samples that were subject to metallurgical test work
(grades of other elements are similar).
Metal recoveries used in the palladium equivalent calculations are shown
below:
§ Palladium 80%, Platinum 80%, Gold 70%, Nickel 45%, Copper 67.5% and
Cobalt 60%
Metal prices used are also shown below:
§ Palladium US$1,700/oz, Platinum US$1,300/oz, Gold US$1,700/oz, Nickel
US$18,500/t, Copper US$9,000/t and Cobalt US$60,000/t
Metal equivalents were calculated according to the follow formula:
§ PdEq (Palladium Equivalent g/t) = Pd(g/t) + 0.76471 x Pt(g/t) + 0.875 x
Au(g/t) +1.90394 x Ni(%) + 1.38936 x Cu(%) + 8.23 x Co(%)
This announcement has been approved for release by the Board of Future Metals
NL.
For further information, please contact:
Future Metals NL +61 8 9480 0414
Jardee Kininmonth info@future-metals.com.au (mailto:info@future-metals.com.au)
Strand Hanson Limited (Nominated Adviser) +44 (0) 20 7409 3494
James Harris
W H Ireland Limited (UK Broker) +44 (0) 207 220 1670
Harry Ansell/Katy Mitchell
White Noise Communications (Australian IR/PR) + 61 400 512 109
Fiona Marshall
Competent Person's Statement:
The information in this announcement that relates to Exploration Results is
based on, and fairly represents, information compiled by Mr Shane Hibbird, who
is a Member of the Australasian Institute of Mining and Metallurgy and the
Australian Institute of Geoscientists. Mr Hibbird is the Company's Exploration
Manager and has sufficient experience which is relevant to the style of
mineralisation and type of deposit under consideration and to the activity he
is undertaking to qualify as a competent person as defined in the 2012 Edition
of the "Australasian Code for reporting of Exploration Results, Exploration
Targets, Mineral Resources and Ore Reserves" (JORC Code). Mr Hibbird consents
to the inclusion in this announcement of the matters based upon his
information in the form and context in which it appears.
The information in this announcement which relates to Mineral Resources was
stated in the Company's ASX Prospectus dated 18 May 2021. The Company
confirms that it is not aware of any new information or data that materially
affects the information included in the Prospectus relating to Mineral
Resources, and that all material assumptions and technical parameters
underpinning the Mineral Resource Estimate continue to apply and have not
materially changed.
The information in this announcement that relates to Metallurgical Results is
based on, and fairly represents, information compiled by Mr Brian Talbot, a
Competent Person who is a Member of the Australian Institute of Mining and
Metallurgy. Mr Talbot is a full-time employee of R-Tek Group Pty Ltd (R-Tek) a
specialist metallurgical consultancy.. Mr Talbot has sufficient experience
which is relevant to the style of mineralisation and type of deposit under
consideration and to the activity he is undertaking to qualify as a competent
person as defined in the 2012 Edition of the "Australasian Code for reporting
of Exploration Results, Exploration Targets, Mineral Resources and Ore
Reserves" (JORC Code). Mr Talbot consents to the inclusion in this
announcement of the matters based upon his information in the form and context
in which it appears.
The information contained within this announcement is deemed by the Company to
constitute inside information as stipulated under the Market Abuse Regulation
(EU) No. 596/2014 as is forms part of United Kingdom domestic law pursuant to
the European Union (Withdrawal) Act 2018, as amended.
Notes to Editors:
About Panton PGM Project
The 100% owned Panton PGM project is located 60 kilometres north of the town
of Halls Creek in the eastern Kimberly region of Western Australia, a tier one
mining jurisdiction. The project is located on three granted mining licences
and situated just 1 kilometre off the Great North Highway which accesses the
Port of Wyndham (refer to Figure Two).
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The Panton PGM Project has a JORC Mineral Resource estimate of 14.32Mt @
4.89g/t PGM, 0.31g/t Au and 0.27% Ni (refer to Appendix One).
The Panton mineralisation occurs within a layered, differentiated
mafic-ultramafic intrusion referred to as the Panton intrusive which is a 10km
long and 3km wide, south-west plunging synclinal intrusion. PGM mineralisation
is hosted within two stratiform chromite reefs, the Upper and Middle reefs,
within the ultramafic sequence.
About Platinum Group Metals (PGMs)
PGMs are a group of six precious metals being Platinum (Pt), palladium (Pd),
iridium (Ir), osmium (Os), rhodium (Rh), and ruthenium (Ru). Exceptionally
rare, they have similar physical and chemical properties and tend to occur, in
varying proportions, together in the same geological deposit. The usefulness
of PGMs is determined by their unique and specific shared chemical and
physical properties.
PGMs have many desirable properties and as such have a wide variety of
applications. Most notably, they are used as auto-catalysts (pollution control
devices for ICE vehicles), but are also used in jewellery, electronics,
hydrogen production / purification and in hydrogen fuel cells. The unique
properties of PGMs help convert harmful exhaust pollutant emissions to
harmless compounds, improving air quality and thereby enhancing health and
wellbeing.
Appendix One
Panton JORC (2012) Mineral Resource Estimate
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Appendix Two
Exploration Drill Hole Details
Hole ID Hole Type Easting Northing RL (m) Total Depth (m) Inc (deg) Azi (deg)
PS235 NQ2 Core 376589 8036791 467.6 367.3 -55.55 349.19
PS257 HQ3 Core 376433.4 8036658 469.5 302.8 -44 344.57
PS264 HQ3 Core 375913.3 8036507 447.3 255.1 -60.5 312.57
PS316 HQ3 Core 377483.3 8037346 486.6 92.9 -59 138.57
PS329 HQ3 Core 377872.3 8036864 442.5 53 -90 0
PS330 HQ3 Core 377766.3 8037032 447.7 64 -90 0
PS331 HQ3 Core 377249.3 8037383 466.6 74 -51 9
PS341 HQ3 Core 377464.5 8037416 494.5 96.1 -60 225.57
PS342 HQ3 Core 377294.3 8037454 457.5 62 -50 179.57
Appendix Three | JORC Code (2012) Edition Table 1
Section 1 Sampling Techniques and Data
Criteria JORC Code explanation Commentary
Sampling techniques § Nature and quality of sampling (eg cut channels, random chips, or § Sampling methods used for the samples in this announcement were HQ3
specific specialised industry standard measurement tools appropriate to the Diamond Core which was cut in half, one half is sent for assay, the remaining
minerals under investigation, such as down hole gamma sondes, or handheld XRF half is retained for reference. Sample intervals were generally 1m in length
instruments, etc). These examples should not be taken as limiting the broad but modified to honour geological changes such as lithology contacts. Minimum
meaning of sampling. sample length was 30cm.
§ Include reference to measures taken to ensure sample representivity and § All sampling was either supervised by, or undertaken by, qualified
the appropriate calibration of any measurement tools or systems used. geologists.
§ Aspects of the determination of mineralisation that are Material to the § ½ core samples were sent to Bureau Veritas, Canning Vale, Western
Public Report. In cases where 'industry standard' work has been done this Australia.
would be relatively simple (eg 'reverse circulation drilling was used to
obtain 1 m samples from which 3 kg was pulverised to produce a 30 g charge for § To ensure representative sampling, for each hole, the same half of the
fire assay'). In other cases more explanation may be required, such as where original core was sent for assay, for example when looking at the core down
there is coarse gold that has inherent sampling problems. Unusual commodities hole, the right-hand side was retained in the core tray as a reference sample,
or mineralisation types (eg submarine nodules) may warrant disclosure of and the left-hand side of the core was always sent for assay. At the
detailed information. laboratory the entire ½ core sample was crushed, a 300g split was pulverized
to provide material for fire assay and ICP-MS.
Drilling techniques § Drill type (eg core, reverse circulation, open-hole hammer, rotary air § All drill holes referred to in this announcement were drilled HQ3 (61.0mm
blast, auger, Bangka, sonic, etc) and details (eg core diameter, triple or diameter).
standard tube, depth of diamond tails, face-sampling bit or other type,
whether core is oriented and if so, by what method, etc.). § Core is orientated, the orientation tool used for the historical drill
holes has not been identified.
§ The drilling contractor was Mt Magnet Drilling. Standard tubes were
employed.
Drill sample recovery § Method of recording and assessing core and chip sample recoveries and § Each core run is measured and checked against the drillers core blocks.
results assessed. Any core loss is noted. To date, core recoveries have been excellent with very
little core loss reported.
§ Measures taken to maximise sample recovery and ensure representative
nature of the samples. § The drilled widths of mineralisation in these drill holes are larger than
the true widths.
§ Whether a relationship exists between sample recovery and grade and
whether sample bias may have occurred due to preferential loss/gain of § No relationship between recovery and grade has been identified.
fine/coarse material.
Logging § Whether core and chip samples have been geologically and geotechnically § All drill core was logged onsite by geologists to a level of detail to
logged to a level of detail to support appropriate Mineral Resource support appropriate Mineral Resource estimation, mining studies and
estimation, mining studies and metallurgical studies. metallurgical studies.
§ Whether logging is qualitative or quantitative in nature. Core (or § Logging is qualitative and records lithology, grain size, texture,
costean, channel, etc.) photography. weathering, structure, alteration, veining and sulphides. Core is digitally
photographed.
§ The total length and percentage of the relevant intersections logged.
§ All holes are logged in full.
Sub-sampling techniques and sample preparation § If core, whether cut or sawn and whether quarter, half or all core taken. § All core that is sampled is cut using a diamond saw. HQ3 core is cut in
half and one half sent to the laboratory for assay, and the remaining half
§ If non-core, whether riffled, tube sampled, rotary split, etc and whether core kept as a reference.
sampled wet or dry.
§ Generally, core samples are 1 metre in length, with a minimum sample
§ For all sample types, the nature, quality and appropriateness of the length of 30 centimetres. Sample lengths are altered from the usual 1 metre
sample preparation technique. due to geological contacts, particularly around the chromitite reefs.
§ Quality control procedures adopted for all sub-sampling stages to § The sample size is considered appropriate for the material being sampled.
maximise representivity of samples.
§ Measures taken to ensure that the sampling is representative of the
in-situ material collected, including for instance results for field
duplicate/second-half sampling.
§ Whether sample sizes are appropriate to the grain size of the material
being sampled.
Quality of assay data and laboratory tests § The nature, quality and appropriateness of the assaying and laboratory § Core samples were sent to Bureau Veritas, Canning Vale, Western
procedures used and whether the technique is considered partial or total. Australia.
§ For geophysical tools, spectrometers, handheld XRF instruments, etc, the § Future Metals NL's analysis of samples had Pt, Pd and Au determined by
parameters used in determining the analysis including instrument make and lead collection fire assay with a 40 gram charge with ICP-MS finish providing
model, reading times, calibrations factors applied and their derivation, etc. a lower detection limit of 1ppb. Determination of As, Co, Cr, Cu, Ni and S was
by Inductively Coupled Plasma following a mixed acid digest. Both ICP and fire
§ Nature of quality control procedures adopted (e.g. standards, blanks, assay analytical methods are total.
duplicates, external laboratory checks) and whether acceptable levels of
accuracy (ie lack of bias) and precision have been established. § No geophysical tools were used.
§ Laboratory repeat analysis is completed on 10% of the samples submitted
for assay.
Verification of sampling and assaying § The verification of significant intersections by either independent or § Significant intercepts are calculated as composites and reported using
alternative company personnel. 0.50g/t PGM(3E) (Pt + Pd + Au) cut-off grade. A maximum of 4m consecutive
internal waste is allowed in composites.
§ The use of twinned holes.
§ All significant intercepts are calculated by the Company's Exploration
§ Documentation of primary data, data entry procedures, data verification, Manager and checked by management.
data storage (physical and electronic) protocols.
§ Discuss any adjustment to assay data.
Location of data points § Accuracy and quality of surveys used to locate drill holes (collar and § Drill hole collars are located differential GPS. Surtron Technologies
down-hole surveys), trenches, mine workings and other locations used in were contracted by Platinum Australia Pty Ltd to complete downhole directional
Mineral Resource estimation. gyroscopic surveys using a Gyroscopic Deviation Tool (9095). Survey readings
are recorded every ten metres and also at the surface. The Gyro accuracy is
§ Specification of the grid system used. +/- 1.0o for the azimuth and +/- 0.1o for the inclination. The Gyro readings
are not influenced by strongly magnetic rocks within the drill hole..
§ Quality and adequacy of topographic control.
§ Grid system used is Map Grid of Australia 1994, Zone 52.
§ The topographic control is considered better than <0.5m.
Data spacing and distribution § Data spacing for reporting of Exploration Results. § Data spacing down hole is considered appropriate at between 0.3 and 1m
intervals.
§ Whether the data spacing and distribution is sufficient to establish the
degree of geological and grade continuity appropriate for the Mineral Resource § Samples have not been composited.
and Ore Reserve estimation procedure(s) and classifications applied.
§ Whether sample compositing has been applied.
Orientation of data in relation to geological structure § Whether the orientation of sampling achieves unbiased sampling of § The orientation of the drill hole relative to the geological target is as
possible structures and the extent to which this is known, considering the orthogonal as practicable however drilled intersections will be larger than
deposit type. true widths.
§ If the relationship between the drilling orientation and the orientation
of key mineralised structures is considered to have introduced a sampling
bias, this should be assessed and reported if material.
Sample security § The measures taken to ensure sample security. § All core sample intervals are labelled in the core boxes, recoded
digitally and captured with the core photography. Cut core samples are
collected in bags labelled with the sample number. Samples are delivered to
the Company's transport contractor in Halls Creek directly by Company
personnel. Samples are then delivered to the laboratory by the transport
contractor.
Audits or reviews § The results of any audits or reviews of sampling techniques and data. § The Company employed industry-standard protocols. No independent audit
has been conducted.
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 § The Panton PGM Project is located on three granted mining licenses
or material issues with third parties such as joint ventures, partnerships, M80/103, M80/104 and M80/105 ('MLs'). The MLs are held 100% by Panton Sill Pty
overriding royalties, native title interests, historical sites, wilderness or Ltd which is a 100% owned subsidiary of Future Metals NL.
national park and environmental settings.
§ The MLs were granted on 17 March 1986 and are currently valid until 16
§ The security of the tenure held at the time of reporting along with any March 2028.
known impediments to obtaining a licence to operate in the area.
§ A 0.5% net smelter return royalty is payable to Elemental Royalties
Australia Pty Ltd in respect of any future production of chrome, cobalt,
copper, gold, iridium, palladium, platinum, nickel, rhodium and ruthenium.
§ A 2.0% net smelter return royalty is payable to Maverix Metals
(Australia) Pty Ltd on any PGMs produced from the MLs.
§ There are no impediments to working in the area.
Exploration done by other parties § Acknowledgment and appraisal of exploration by other parties. § The Panton deposit was discovered by the Geological Survey of Western
Australia from surface mapping conducted in the early 1960s.
§ Pickland Mather and Co. drilled the first hole to test the
mafic-ultramafic complex in 1970, followed by Minsaco Resources which drilled
30 diamond holes between 1976 and 1987.
§ In 1989, Pancontinental Mining Limited and Degussa Exploration drilled a
further 32 drill holes and defined a non-JORC compliant resource.
§ Platinum Australia Ltd acquired the project in 2000 and conducted the
majority of the drilling, comprising 166 holes for 34,410 metres, leading to
the delineation of a maiden JORC Mineral Resource Estimate.
§ Panoramic Resources Ltd subsequently purchased the Panton PGM Project
from Platinum Australia Ltd in May 2012 and conducted a wide range of
metallurgical test work programmes on the Panton ore.
Geology § Deposit type, geological setting and style of mineralisation. § The Panton intrusive is a layered, differentiated mafic to ultramafic
body that has been intruded into the sediments of the Proterozoic Lamboo
Complex in the Kimberley Region of Western Australia. The Panton intrusion
has undergone several folding and faulting events that have resulted in a
south westerly plunging synclinal structure some 10km long and 3km wide.
§ PGM mineralisation is associated with several thin cumulate Chromitite
reefs within the ultramafic sequence. In all there are three chromite
horizons, the Upper group Chromitite (situated within the upper gabbroic
sequence), the Middle group Chromitite (situated in the upper portion of the
ultramafic cumulate sequence) and the Lower group Chromitite (situated toward
the base of the ultramafic cumulate sequence). The top reef mineralised zone
has been mapped over approximately 12km.
Drill hole Information § A summary of all information material to the understanding of the § Details of all drill holes reported in this announcement are provided in
exploration results including a tabulation of the following information for Appendix Two.
all Material drill holes:
o easting and northing of the drill hole collar
o elevation or RL (Reduced Level elevation above sea level in metres) of
the drill hole collar
o dip 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 explain why
this is the case.
Data aggregation methods § In reporting Exploration Results, weighting averaging techniques, maximum § Significant intercepts are reported as down-hole length weighted averages
and/or minimum grade truncations (e.g. cutting of high grades) and cut-off of grades above 0.50g/t PGM(3E) (Pt/Pd/Au). No top cuts have been applied to
grades are usually Material and should be stated. the reporting of the assay results.
§ Where aggregate intercepts incorporate short lengths of high grade § 4 metres of internal dilution is allowed in the reported intervals.
results and longer lengths of low grade results, the procedure used for such
aggregation should be stated and some typical examples of such aggregations § Higher grade intervals are included in the reported grade intervals; and
should be shown in detail. have also been split out on a case-by-case basis where relevant.
§ The assumptions used for any reporting of metal equivalent values should § Where palladium equivalents are reported, these values are based on the
be clearly stated. following assumptions
§ Prices in USD
$/(t or oz)
Cu % 9,000
Pt ppm 1,300
Au ppm 1,700
Pd ppm 1,700
Ni % 18,500
Co ppm 60,000
§ Metal recoveries are based on past metallurgical test work.
Recovery
%
Cu 67.5%
Pt 80.0%
Au 70.0%
Pd 80.0%
Ni 45.0%
Co 60.0%
Relationship between mineralisation widths and intercept lengths § These relationships are particularly important in the reporting of § Metallurgical drill holes have been deliberately orientated at a low
Exploration Results. angle to the dip of the mineralised chromitite reefs to maximise the amount of
material recovered for metallurgical test work. The drilled thickness is
§ If the geometry of the mineralisation with respect to the drill hole considerably greater than the true thickness in these drill holes as a result.
angle is known, its nature should be reported.
§ If it is not known and only the down hole lengths are reported, there
should be a clear statement to this effect (e.g. 'down hole length, true width
not known').
Diagrams § Appropriate maps and sections (with scales) and tabulations of intercepts § Drill hole plan included in Figure One of the body of this announcement.
should be included for any significant discovery being reported These should
include, but not be limited to a plan view of drill hole collar locations and
appropriate sectional views.
Balanced reporting § Where comprehensive reporting of all Exploration Results is not § All results at hand at the time of this announcement have been reported.
practicable, representative reporting of both low and high grades and/or
widths should be practiced to avoid misleading reporting of Exploration
Results.
Other substantive exploration data § Other exploration data, if meaningful and material, should be reported § No other exploration data is relevant.
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 § Next stage of work will consist of additional mineralogical and
extensions or depth extensions or large-scale step-out drilling). metallurgical test work. The Company plans to undertake a new JORC Mineral
Resource model and estimate once the majority of assays from the recently
§ Diagrams clearly highlighting the areas of possible extensions, including completed drilling have been received.
the main geological interpretations and future drilling areas, provided this
information is not commercially sensitive.
§ Metal recoveries are based on past metallurgical test work.
Recovery
%
Cu 67.5%
Pt 80.0%
Au 70.0%
Pd 80.0%
Ni 45.0%
Co 60.0%
Relationship between mineralisation widths and intercept lengths
§ These relationships are particularly important in the reporting of
Exploration Results.
§ If the geometry of the mineralisation with respect to the drill hole
angle is known, its nature should be reported.
§ If it is not known and only the down hole lengths are reported, there
should be a clear statement to this effect (e.g. 'down hole length, true width
not known').
§ Metallurgical drill holes have been deliberately orientated at a low
angle to the dip of the mineralised chromitite reefs to maximise the amount of
material recovered for metallurgical test work. The drilled thickness is
considerably greater than the true thickness in these drill holes as a result.
Diagrams
§ Appropriate maps and sections (with scales) and tabulations of intercepts
should be included for any significant discovery being reported These should
include, but not be limited to a plan view of drill hole collar locations and
appropriate sectional views.
§ Drill hole plan included in Figure One of the body of this announcement.
Balanced reporting
§ Where comprehensive reporting of all Exploration Results is not
practicable, representative reporting of both low and high grades and/or
widths should be practiced to avoid misleading reporting of Exploration
Results.
§ All results at hand at the time of this announcement have been reported.
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.
§ No other exploration data is relevant.
Further work
§ The nature and scale of planned further work (eg tests for lateral
extensions or depth extensions or large-scale step-out drilling).
§ Diagrams clearly highlighting the areas of possible extensions, including
the main geological interpretations and future drilling areas, provided this
information is not commercially sensitive.
§ Next stage of work will consist of additional mineralogical and
metallurgical test work. The Company plans to undertake a new JORC Mineral
Resource model and estimate once the majority of assays from the recently
completed drilling have been received.
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