June 10, 2026 - Vancouver, Canada and Melbourne, Australia — Southern Cross Gold Consolidated Ltd (“SXGC”, “SX2” or the “Company”) (TSX:SXGC) (ASX:SX2) (OTCQX:SXGCF) (Frankfurt: MV3.F) - https://www.commodity-tv.com/ondemand/companies/profil/southern-cross-gold-consolidated-ltd/ - announces results from seven drill holes from the Apollo and Apollo East prospect from the 100%-owned Sunday Creek Gold-Antimony Project in Victoria (Figures 1 to 5). Best results included 36.6 m @ 6.5 g/t AuEq (4.0 g/t Au, 1.0% Sb) from 700.0 m in drill hole SDDSC202. The true thickness of the mineralized intervals is interpreted to be approximately 55% to 75% of the sampled thickness for all reported holes.

 

Four High Level Takeaways:

 

  1. Best new intersection of 36.6 m @ 6.5 g/t AuEq (4.0 g/t Au, 1.0% Sb) from 700.0 m in SDDSC202, with high grade assays up to 493 g/t Au and 29.1% Sb, with two previously unmodelled high-grade zones adding to the Apollo East vein architecture.
  2. SDDSC214W1 returned the most easterly mineralization identified within the main drill area to date (Figure 3), expanding Apollo East a further 20 m east with intersections on new vein sets including 0.5 m @ 251.4 g/t AuEq (232.0 g/t Au, 8.1% Sb) from 605.2 m and individual assays up to 362.0 g/t Au.
  3. Shallowest Apollo East results to date in SDDSC217, a ~97 m updip extension confirming strong antimony tenor near surface, with 0.1 m @ 130.6 g/t AuEq (55.8 g/t Au, 31.3% Sb) from 324.9 m.
  4. Mineralization continues to step out and grow at depth and along strike, with seven assays exceeding 100 g/t Au and five exceeding 20% Sb across the holes reported, while eleven rigs and 67 pending holes continue the 200,000 m program to Q1 2027.

 

Michael Hudson, President & CEO states: “These seven holes continue to do what Sunday Creek does best, growing the system in every direction we test. SDDSC202 delivered a standout 36.6 m at 6.5 g/t AuEq with high grade assays up to 493 g/t gold, while SDDSC214W1 has pushed mineralization to the most easterly position yet identified anywhere on the property, opening up new ground at Apollo East. The shallow, antimony-rich results up to 31.3% Sb in SDDSC217 are equally important, confirming strong critical-metal tenor close to surface. With eleven rigs turning and 67 holes pending, we are only accelerating as we drive toward defining the full extent of this exceptional gold-antimony system.”

 

For Those Who Like the Details - Highlights:

 

-          SDDSC202 (Apollo East) – drilled east to west and targeted the Apollo East prospect, intersecting 9 vein sets and 6 high-grade veins, of which 2 were previously not recognised or modelled.

o        0.2 m @ 58.6 g/t AuEq (34.9 g/t Au, 9.9% Sb) from 538.8 m

o        36.6 m @ 6.5 g/t AuEq (4.0 g/t Au, 1.0% Sb) from 700.0 m, including:

         2.7 m @ 34.0 g/t AuEq (18.4 g/t Au, 6.5% Sb) from 703.0 m

         1.5 m @ 27.3 g/t AuEq (25.2 g/t Au, 0.9% Sb) from 712.1 m

o        0.1 m @ 502.3 g/t AuEq (493.0 g/t Au, 3.9% Sb) from 778.1 m

o        1.3 m @ 30.6 g/t AuEq (14.9 g/t Au, 6.6% Sb) from 894.3 m, a 50 m step down from SDDSC145

o        Individual assays included 493.0 g/t Au, 132.0 g/t Au, 106.0 g/t Au with 25.70% Sb, and 29.10% Sb.

-          SDDSC214 & SDDSC214W1 (Apollo) drilled east to west and targeted the Apollo East and the deeper portions of the Apollo prospect, a daughter hole SDDSC214W1 was completed to achieve appropriate drillhole spacing in Apollo Deeps intersecting 4 vein sets and 3 high-grade vein sets, of which 2 were previously not recognised or modelled, expanding Apollo East 20 m east

-          0.5 m @ 251.4 g/t AuEq (232.0 g/t Au, 8.1% Sb) from 605.2 m

-          1.2 m @ 17.8 g/t AuEq (13.9 g/t Au, 1.7% Sb) from 596.3 m

-          12.1 m @ 4.0 g/t AuEq (3.5 g/t Au, 0.2% Sb) from 634.6 m, including:

o        1.6 m @ 24.2 g/t AuEq (22.9 g/t Au, 0.5% Sb)

-          2.2 m @ 45.0 g/t AuEq (44.9 g/t Au, 0.0% Sb) from 991.9 m, including:

o        0.2 m @ 362.3 g/t AuEq (362.0 g/t Au)

-          Individual assays included 362.0 g/t Au, 232.0 g/t Au with 8.11% Sb, and 207.0 g/t Au.

-          SDDSC217 (Apollo East) was drilled east to west and targeted the shallow upper portion of Apollo East. These results are the shallowest Apollo East results to date and represent a 100 m updip extension

-          0.9 m @ 31.0 g/t AuEq (12.6 g/t Au, 7.7% Sb) from 312.3 m, including:

         0.3 m @ 84.9 g/t AuEq (33.3 g/t Au, 21.6% Sb)

o        0.1 m @ 130.6 g/t AuEq (55.8 g/t Au, 31.3% Sb) from 324.9 m

-          SDDSC212 (Apollo East) – drilled east to west to target upper Apollo and to provide control to up-dip extensions of Apollo East.  Better results included:

o        3.0 m @ 2.1 g/t AuEq (1.6 g/t Au, 0.2% Sb) from 432.0 m

-          SDDSC204 (Apollo Deeps) – drilled east to west and targeted down-dip extension to Apollo Deeps 50 metres below the current exploration target boundaries:

o        1.3 m @ 4.5 g/t AuEq (4.4 g/t Au, 0.0% Sb) from 1,095.5 m

o        4.5 m @ 1.6 g/t AuEq (1.5 g/t Au, 0.0% Sb) from 1,102.0 m

-          SDDSC209 (Apollo East) – south-to-north control hole, eastern side of the Goliath fault

o        Drilled to validate orientation and offsets in the geological model; dyke intersected several times downhole, providing important control for the eastern margin of the Apollo system.

 

Drill Hole Discussion

 

Seven drill holes are reported here targeting the Apollo and Apollo East prospects, drilled in an east-to-west orientation to optimize high intersection angles across the steeply dipping vein architecture, with one south-to-north oriented control hole (SDDSC209) drilled to validate geological controls on the eastern side of the Goliath fault.

 

Seven (7) individual assays exceeding 100 g/t Au and five (5) individual Sb assays greater than 20% Sb were intersected amongst the seven holes reported showing the continued high-grade growth in Apollo as the exploration continues to step out and expand the known boundaries of the mineralization.

 

SDDSC202

 

SDDSC202 was drilled east to west and targeted the Apollo East prospect, intersecting 9 vein sets and 6 high-grade veins, of which 2 were previously not recognised or modelled.

 

4 individual assays exceeded 100 g/t Au and 3 individual assays exceeded 20% antimony:

 

-          106.0 g/t Au & 25.70% Sb over 0.18 m from 704.87 m

-          132.0 g/t Au & 2.26% Sb over 0.18 m from 712.67 m

-          493.0 g/t Au & 3.89% Sb over 0.10 m from 778.10 m

-          102.0 g/t Au & 15.00% Sb over 0.13 m from 785.64 m

-          91.5 g/t Au & 29.10% Sb over 0.28 m from 704.59 m

-          81.5 g/t Au & over 0.22 m from 894.64 m – a 50 m step down from SDDSC145 0.5 m @ 2544.5 g/t AuEq (2541.9 g/t Au, 1.1% Sb) from 876.4 m December 9th 2024)

 

Selected composite highlights include:

 

-          0.2 m @ 58.6 g/t AuEq (34.9 g/t Au, 9.9% Sb) from 538.8 m

-          1.5 m @ 8.7 g/t AuEq (7.6 g/t Au, 0.4% Sb) from 690.6 m

-          36.6 m @ 6.5 g/t AuEq (4.0 g/t Au, 1.0% Sb) from 700.0 m

o        Including 2.7 m @ 34.0 g/t AuEq (18.4 g/t Au, 6.5% Sb) from 703.0 m

o        Including 1.5 m @ 27.3 g/t AuEq (25.2 g/t Au, 0.9% Sb) from 712.1 m

o        Including 2.4 m @ 12.3 g/t AuEq (9.4 g/t Au, 1.2% Sb) from 723.6 m

-          2.3 m @ 5.5 g/t AuEq (4.9 g/t Au, 0.2% Sb) from 750.5 m

-          0.1 m @ 502.3 g/t AuEq (493.0 g/t Au, 3.9% Sb) from 778.1 m

-          1.5 m @ 12.8 g/t AuEq (9.2 g/t Au, 1.5% Sb) from 784.3 m

o        Including 0.8 m @ 22.9 g/t AuEq (16.4 g/t Au, 2.7% Sb) from 785.0 m

-          2.1 m @ 11.9 g/t AuEq (5.0 g/t Au, 2.9% Sb) from 789.0 m

-          1.3 m @ 30.6 g/t AuEq (14.9 g/t Au, 6.6% Sb) from 894.3 m

o        Including 0.9 m @ 42.4 g/t AuEq (20.4 g/t Au, 9.2% Sb) from 894.6 m

 

SDDSC204

 

SDDSC204 was drilled east to west and targeted down-dip extension to Apollo Deeps 50 metres below the current exploration target boundaries (Exploration Target March 3rd 2025). This drillhole intersected a faulted block of altered sediment and dyke which reduced the potential mineralization window within the drillhole. SDDSC0204 did however provide valuable geological controls at depth and additional drillhole locations will be utilised for future Apollo Deeps drilling to allow for efficient testing. Selected composite highlights include:

 

-          1.3 m @ 4.5 g/t AuEq (4.4 g/t Au, 0.0% Sb) from 1095.5 m

-          4.5 m @ 1.6 g/t AuEq (1.5 g/t Au, 0.0% Sb) from 1102.0 m

 

SDDSC209

 

SDDSC209 was drilled south to north as a control hole on the eastern side of the Goliath fault, designed to test orientation and offsets used in the geological model rather than to deliver a primary mineralised intersection. Dyke was intersected several times downhole providing important geological control for the eastern margin of the Apollo system.

 

SDDSC212

 

SDDSC212 was drilled east to west to target upper Apollo and to provide control to up-dip extensions of Apollo East. Selected composite highlights include:

 

-          3.0 m @ 2.1 g/t AuEq (1.6 g/t Au, 0.2% Sb) from 432.0 m

 

SDDSC214 & SDDSC214w1

 

SDDSC214 was drilled east to west and targeted the Apollo East and the deeper portions of the Apollo prospect, a daughter hole SDDSC214W1 was completed to achieve appropriate drillhole spacing in Apollo Deeps intersecting 4 vein sets and 3 high-grade veins, of which 2 were previously not recognised or modelled, expanding Apollo East 20 m east. Three individual assays exceeded 100 g/t Au:

 

-          232.0 g/t Au & 8.11% Sb over 0.47 m from 605.18 m

-          207.0 g/t Au & 0.08% Sb over 0.14 m from 992.72 m

-          362.0 g/t Au & 0.13% Sb over 0.18 m from 993.97 m

-          Selected composite highlights include:

-          1.2 m @ 17.8 g/t AuEq (13.9 g/t Au, 1.7% Sb) from 596.3 m

o        Including 0.2 m @ 87.2 g/t AuEq (71.2 g/t Au, 6.7% Sb) from 596.3 m

-          0.5 m @ 251.4 g/t AuEq (232.0 g/t Au, 8.1% Sb) from 605.2 m

-          12.1 m @ 4.0 g/t AuEq (3.5 g/t Au, 0.2% Sb) from 634.6 m

o        Including 1.6 m @ 24.2 g/t AuEq (22.9 g/t Au, 0.5% Sb) from 634.6 m

-          2.2 m @ 45.0 g/t AuEq (44.9 g/t Au, 0.0% Sb) from 991.9 m

o        Including 0.5 m @ 64.5 g/t AuEq (64.4 g/t Au, 0.0% Sb) from 992.3 m

o        Including 0.2 m @ 362.3 g/t AuEq (362.0 g/t Au, 0.1% Sb) from 994.0 m

 

SDDSC217

 

SDDSC217 was drilled east to west and targeted the shallow upper portion of Apollo East. These results are the shallowest Apollo East results to date and represent a 100 m updip extension of the A157 veinset and SDDSC179 (0.4 m @ 14.0 g/t AuEq (12.4 g/t Au, 0.7% Sb) from 368.3 m December 17th 2025)

 

Two individual assays exceeded 20% antimony, highlighting the high antimony presence in the shallow part of the system, including:

 

-          21.60% Sb & 33.3 g/t Au over 0.33 m from 312.28 m

-          31.30% Sb & 55.8 g/t Au over 0.13 m from 324.90 m

 

Selected composite highlights include:

 

-          0.9 m @ 31.0 g/t AuEq (12.6 g/t Au, 7.7% Sb) from 312.3 m

o        Including 0.3 m @ 84.9 g/t AuEq (33.3 g/t Au, 21.6% Sb) from 312.3 m

-          0.1 m @ 130.6 g/t AuEq (55.8 g/t Au, 31.3% Sb) from 324.9 m

 

Pending Results and Update

 

Eleven drill rigs are currently operational on the Sunday Creek project. Results are pending from 67 holes currently being processed and analyzed including eleven holes that are actively being drilled and two abandoned hole (Figure 2). The Company continues its ongoing 200,000 m drill program through to Q1 2027.

 

About Sunday Creek

 

The Sunday Creek epizonal-style gold project is located 60 km north of Melbourne within 16,900 hectares (“Ha”) of granted exploration tenements. SXGC is also the freehold landholder of 1,392 Ha that forms the key portion in and around the main drilled area at the Sunday Creek Project. 

 

Gold and antimony form in a relay of vein sets that cut across a steeply dipping zone of intensely altered rocks (the “host”). These vein sets are like a “Golden Ladder” structure where the main host extends between the side rails deep into the earth, with multiple cross-cutting vein sets that host the gold forming the rungs.  At Apollo, Golden Dyke and Rising Sun these individual ‘rungs’ have been defined over 600 m depth extent from surface to over 1,200 m below surface, are 2.5 m to 3.5 m wide (median widths) (and up to 10 m), and 20 m to 100 m in strike.

 

Cumulatively, 262 drill holes for 123,974.14 m have been reported from Sunday Creek since late 2020. This amount includes five holes for 929 m that have been drilled for geotechnical purposes and 22 holes for 2,972.92m that were abandoned due to deviation or hole conditions. Fourteen drill holes for 2,383 m have been reported regionally outside of the main Sunday Creek drill area with eleven additional regional holes currently being processed. A total of 64 historic drill holes for 5,599 m were completed from the late 1960s to 2008. The project now contains a total of ninety-six (96) composite intersections exceeding 100 g/t Au and eighty (80) composite intersections between 50 g/t and 100 g/t Au, and one-hundred and twelve (112) composite intersections exceeding 10% Sb by applying a 1 m (down hole length) @ 5 g/t AuEq lower cut.

 

Southern Cross Gold’s systematic drill program is strategically targeting these significant vein formations, which are currently defined over 1,550 m strike of the host dyke/sediment (“rails of the ladder”) from Christina to Apollo prospects, of which approximately 650 m has been more intensively drill tested (Golden Dyke to Apollo). At least 115 ‘rungs’ have been defined to date, defined by high-grade intercepts (20 g/t Au to >7,330 g/t Au) along with lower grade edges. Ongoing step-out drilling is aiming to uncover the potential extent of this mineralized system (Figure 2).

 

Geologically, the project is located within the Melbourne Structural Zone in the Lachlan Fold Belt. The regional host to the Sunday Creek mineralization is an interbedded turbidite sequence of siltstones and minor sandstones metamorphosed to sub-greenschist facies and folded into a set of open north-west trending folds.

 

Further Information

 

Further discussion and analysis of the Sunday Creek project is available through the interactive Vrify 3D animations, presentations and videos all available on the SXGC website.  These data, along with an interview on these results with President & CEO/Managing Director Michael Hudson can be viewed at www.southerncrossgold.com.

 

No upper gold grade cut is applied in the averaging and intervals are reported as drill thickness. However, during future Mineral Resource studies, the requirement for assay top cutting will be assessed. The Company notes that due to rounding of assay results to one significant figure, minor variations in calculated composite grades may occur.

 

Figures 1 to 5 show project location, plan and longitudinal views of drill results reported here and Tables 1 to 3 provide collar and assay data. The true thickness of the mineralized intervals reported individually as estimated true widths (“ETW”), otherwise they are interpreted to be approximately 55% to 75% of the sampled thickness for other reported holes. Lower grades were cut at 1.0 g/t AuEq lower cutoff over a maximum width of 2 m with higher grades cut at 5.0 g/t AuEq lower cutoff over a maximum of 1 m width.

 

Critical Metal Epizonal Gold-Antimony Deposits

 

Sunday Creek (Figure 5) is an epizonal gold-antimony deposit formed in the late Devonian (like Fosterville, Costerfield and Redcastle), 60 million years later than mesozonal gold systems formed in Victoria (for example Ballarat and Bendigo). Epizonal deposits are a form of orogenic gold deposit classified according to their depth of formation: epizonal (<6 km), mesozonal (6 km to 12 km) and hypozonal (>12 km).

 

Epizonal deposits in Victoria often have associated high levels of the critical metal, antimony, and Sunday Creek is no exception. China claims a 56 per cent share of global mined supplies of antimony, according to a 2023 European Union study. Antimony features highly on the critical minerals lists of many countries including Australia, the United States of America, Canada, Japan and the European Union. Australia ranks seventh for antimony production despite all production coming from a single mine at Costerfield in Victoria, located nearby to all SXGC projects. Antimony alloys with lead and tin which results in improved properties for solders, munitions, bearings and batteries. Antimony is a prominent additive for halogen-containing flame retardants. Adequate supplies of antimony are critical to the world's energy transition, and to the high-tech industry, especially the semi-conductor and defence sectors where it is a critical additive to primers in munitions.

 

Antimony represents approximately 21% to 24% in situ recoverable value of Sunday Creek at an AuEq of 2.39 ratio.

 

About Southern Cross Gold Consolidated Limited (TSX:SXGC) (ASX:SX2) (OTCQX:SXGCF) (Frankfurt: MV3.F)

 

Southern Cross Gold Consolidated Ltd. (TSX: SXGC, ASX: SX2, OTCQX: SXGCF), is defining a leading gold-antimony project at the Sunday Creek Gold-Antimony Project, located 60 km north of Melbourne. Sunday Creek is a significant gold and antimony drill discovery in a Tier 1 location, with high-grade drill results including 96 composite intersections exceeding 100 g/t Au from 129,573 km of drilling. The mineralization follows a "Golden Ladder" structure over 12 km of strike length, with structures tested from surface to 1,100 m depth.

 

Sunday Creek's strategic value is enhanced by its dual-metal profile. The Company has a critical mineral the Western world needs. This has gained increased significance following China's export restrictions on antimony, a critical metal for defence and semiconductor applications. Southern Cross’ inclusion in the US Defense Industrial Base Consortium (DIBC) and Australia's AUKUS-related legislative changes position it as a potential key Western antimony supplier.

 

Technical fundamentals further strengthen the investment case, with preliminary metallurgical work showing non-refractory mineralization suitable for conventional processing and gold recoveries of 93% to 98% through gravity and flotation.

 

With a strong cash position, 1,392 Ha of strategic freehold land ownership, and a large 200 km drill program planned through Q1 2027, SXGC is well-positioned to advance this globally significant gold-antimony discovery in a tier-one jurisdiction, delivering milestone by milestone.

 

- Ends –

 

For ASX Compliance: This announcement has been approved for release by the Board of Southern Cross Gold Consolidated Ltd.

 

For further information, please contact:

 

Mariana Bermudez – Corporate Secretary

mb@southerncrossgold.com or +1 604 685 9316   

Executive Office

1305 – 1090 West Georgia Street Vancouver, BC, V6E 3V7, Canada

 

Nicholas Mead – Corporate Development

info@southerncrossgold.com.au or +61 415 153 122  

 

Justin Mouchacca, Assistant Company Secretary,

jm@southerncrossgold.com.au or +61 3 8630 3321

 

Subsidiary Office 

Level 21, 459 Collins Street, Melbourne, VIC, 3000, Australia

 

In Europe

Swiss Resource Capital AG

Marc Ollinger

info@resource-capital.ch

www.resource-capital.ch

 

NI 43-101 Technical Background and Qualified Person

 

Kenneth Bush, Head of Exploration for SXGC, a Member of Australian Institute of Geoscientists and a Registered Professional Geologist in the fields of Mining and Exploration (#10315), is the Qualified Person as defined by the NI 43-101. They have prepared, reviewed, verified and approved the technical contents of this release.

 

Analytical samples are transported to the Bendigo facility of On Site Laboratory Services (“On Site”) which operates under both an ISO 9001 and NATA quality systems. Samples were prepared and analyzed for gold using the fire assay technique (PE01S method; 25 gram charge), followed by measuring the gold in solution with flame AAS equipment. Samples for multi-element analysis (BM011 and over-range methods as required) use aqua regia digestion and ICP-MS analysis. The QA/QC program of Southern Cross Gold consists of the systematic insertion of certified standards of known gold content, blanks within interpreted mineralized rock and quarter core duplicates. In addition, On Site inserts blanks and standards into the analytical process.

 

SXGC considers that both gold and antimony that are included in the gold equivalent calculation (“AuEq") have reasonable potential to be recovered and sold at Sunday Creek, given current geochemical understanding, historic production statistics and geologically analogous mining operations. Historically, ore from Sunday Creek was treated onsite or shipped to the Costerfield mine, located 54 km to the northwest of the project, for processing during WW1. The Costerfield mine corridor, now owned by Alkane Resources (previously Mandalay Resources) contains two million ounces of equivalent gold (Mandalay Resources Q3 2021 Results), and in 2020 was the sixth highest-grade global underground mine and a top 5 global producer of antimony.

 

SXGC considers that it is appropriate to adopt the same gold equivalent variables as Mandalay Resources Ltd in its 2024 End of Year Mineral Reserves and Resources Press Release, dated February 20, 2025. The gold equivalence formula used by Mandalay Resources was calculated using Costerfield’s 2024 production costs, using a gold price of US$2,500 per ounce, an antimony price of US$19,000 per tonne and 2024 total year metal recoveries of 91% for gold and 92% for antimony, and is as follows:

 

𝐴𝑢𝐸𝑞 = 𝐴𝑢 (𝑔/𝑡) + 2.39 × 𝑆𝑏 (%)

 

Based on the latest Costerfield calculation and given the similar geological styles and historic toll treatment of Sunday Creek mineralization at Costerfield, SXGC considers that a 𝐴𝑢𝐸𝑞 = 𝐴𝑢 (𝑔/𝑡) + 2.39 × 𝑆𝑏 (%) is appropriate to use for the initial exploration targeting of gold-antimony mineralization at Sunday Creek.

 

JORC Competent Person Statement

 

Information in this announcement that relates to new exploration results contained in this report is based on information compiled by Mr Kenneth Bush a Member of Australian Institute of Geoscientists and a Registered Professional Geologist in the fields of Mining and Exploration (#10315). Mr Bush has sufficient experience relevant to the style of mineralization and type of deposit under consideration, and to the activities undertaken, to qualify as a Competent Person as defined in the 2012 Edition of the Joint Ore Reserves Committee (JORC) Australasian Code for Reporting of Exploration Results, Mineral Resources and Ore Reserves. Mr Bush is Head of Exploration of Southern Cross Gold Consolidated Limited and consents to the inclusion in the report of the matters based on their information in the form and context in which it appears.

 

Certain information in this announcement that relates to prior exploration results is extracted from the Independent Geologist’s Report dated 11 December 2024 which was issued with the consent of the Competent Person, Mr Steven Tambanis. The report is included in the Company’s prospectus dated 11 December 2024 and is available at www.asx.com.au under code “SX2”. The Company confirms that it is not aware of any new information or data that materially affects the information related to exploration results included in the original market announcement. The Company confirms that the form and context of the Competent Persons’ findings in relation to the report have not been materially modified from the original market announcement.

 

Certain information in this announcement also relates to prior drill hole exploration results, extracted from the following announcements, which are available to view on www.southerncrossgold.com:

 

-          4 October, 2022 SDDSC046, 20 October, 2022 SDDSC049, 5 September, 2023 SDDSC077B, 12 October, 2023 SDDLV003 & 4, 23 October, 2023 SDDSC082, 9 November, 2023 SDDSC091, 14 December, 2023 SDDSC092, 5 March, 2024 SDDSC107,  30 May, 2024 SDDSC117, 13 June, 2024 SDDSC118, 5 September, 2024 SDDSC130, 28 October, 2024 SDDSC137W2, 28 November, 2024 SDDSC141, 9 December, 2024 SDDSC145, 18 December, 2024 SDDSC129 & 144, 28 May, 2025 SDDSC161, 16 June, 2025 SDDSC162, 26 August, 2025 SDDSC171, 8 September, 2025 SDDSC170A,

 

The Company confirms that it is not aware of any new information or data that materially affects the information included in the original document/announcement and the Company confirms that the form and context in which the Competent Person’s findings are presented have not been materially modified from the original market announcement.

 

Forward-Looking Statement

 

This news release contains forward-looking statements. Forward-looking statements involve known and unknown risks, uncertainties and assumptions and accordingly, actual results and future events could differ materially from those expressed or implied in such statements. You are hence cautioned not to place undue reliance on forward-looking statements. All statements other than statements of present or historical fact are forward-looking statements.  Forward-looking statements include words or expressions such as “proposed”, “will”, “subject to”, “near future”, “in the event”, “would”, “expect”, “prepared to” and other similar words or expressions. Factors that could cause future results or events to differ materially from current expectations expressed or implied by the forward-looking statements include general business, economic, competitive, political, social uncertainties; the state of capital markets, unforeseen events, developments, or factors causing any of the expectations, assumptions, and other factors ultimately being inaccurate or irrelevant; and other risks described in the Company’s documents filed with Canadian or Australian (under code SX2) securities regulatory authorities. You can find further information with respect to these and other risks in filings made by the Company with the securities regulatory authorities in Canada or Australia (under code SX2), as applicable, and available for the Company in Canada at www.sedarplus.ca or in Australia at www.asx.com.au (under code SX2). Documents are also available at www.southerncrossgold.com The Company disclaims any obligation to update or revise these forward-looking statements, except as required by applicable law.

 

Figure 1: Sunday Creek plan view showing selected results from holes SDDSC202, SDDSC204, SDDSC209, SDDSC212, SDDSC214, SDDSC214W1 and SDDSC217 reported here (dark blue highlighted box, black trace), with selected prior reported drill holes.

 

 

Figure 2: Sunday Creek plan view showing selected drill hole traces from holes SDDSC202, SDDSC204, SDDSC209, SDDSC212, SDDSC214, SDDSC214W1 and SDDSC217 reported here (black trace), with prior reported drill holes (grey trace) and currently drilling and assays pending hole traces (dark blue).

 

 

Figure 3: Sunday Creek longitudinal section across A-B in the plane of the dyke breccia/altered sediment host looking towards the NW (striking 56 degrees) indicating mineralized vein sets. Showing holes SDDSC202, SDDSC204, SDDSC209, SDDSC212, SDDSC214, SDDSC214W1 and SDDSC217 reported here (dark blue highlighted box, black trace), with selected intersections and prior reported drill holes. The vertical extents of the vein sets are limited by proximity to drill hole pierce points.  

 

 

Figure 4: Sunday Creek regional plan view showing soil sampling, structural framework, regional historic epizonal gold mining areas and broad regional areas tested by 12 holes for 2,383 m drill program.  The regional drill areas are at Tonstal, Consols and Leviathan located 4,000 m to 7,500 m along strike from the main drill area at Golden Dyke- Apollo. Map in GDA94/ MGA Zone 55.

 

 

Figure 5: Location of the Sunday Creek project, along with the 100% owned Redcastle Gold-Antimony Project

 

 

Table 1:  Drill collar summary table for recent drill holes in progress.

 

This Release

 

Hole ID

Depth (m)

Prospect

East

GDA94 Z55

North

GDA94 Z55

Elevation

 (m)

Dip

Azimuth

GDA94 Z55

SDDSC202

947.76

Apollo

331596.2

5867936.6

345.6

-43.4

266.9

SDDSC204

1208.3

Apollo

331615.6

5867952.4

346.5

-58.2

270.4

SDDSC209

271.58

Apollo East

331463.3

5867746.4

341.2

-30.5

34

SDDSC212

438.7

Apollo East

331464.9

5867866.4

333.2

-33.2

261.3

SDDSC214

431.6

Apollo

331615.6

5867951.1

346.94

-55.2

268.9

SDDSC214W1

1043.5

Apollo

331615.6

5867951.1

346.94

-55.2

268.9

SDDSC217

490.7

Apollo East

331481.2

5867839.5

335.4

-25

261.9

 

Currently being processed and analyzed

 

Hole ID

Depth (m)

Prospect

East

GDA94 Z55

North

GDA94 Z55

Elevation

 (m)

Dip

Azimuth

GDA94 Z55

SDDSC201

321.4

Rising Sun

330948.3

5868003.4

313.3

-28.9

231.3

SDDSC205

1211.4

Rising Sun

330339.8

5867858.5

276.8

-64.6

75.8

SDDSC207

584.25

Christina

330094.8

5867459.3

278.3

-48.8

20.7

SDDSC213

941.44

Golden Dyke

330094.2

5867458.6

278.3

-62.6

14.6

SDDSC215

476.39

Regional

331603.6

5867183.7

304.9

-38.2

15.4

SDDSC216A

572.36

Golden Dyke

330701.2

5867880.5

299.6

-46.1

250.6

SDDSC218

796.99

Golden Dyke

330813.6

5867847.5

301.1

-47.6

265.5

SDDSC219

392.2

Golden Dyke

330701.5

5867880.3

299.6

-49.2

247.8

SDDSC220

716.7

Christina

329779.1

5867552.6

286.59

-26.5

70.5

SDDSC221

926.54

Golden Dyke

330754.1

5867733

307

-50.6

285.3

SDDSC222

792.29

Apollo

331596.1

5867936.9

345.43

-51.5

267.7

SDDSC222W1

1065.5

Apollo

331596.1

5867936.9

345.43

-51.5

267.7

SDDSC223

435.25

Apollo East

331483

5867839.8

335.72

-33.9

262.2

SDDSC224

496.9

Golden Dyke

330700.6

5867879.9

299.62

-36.8

246.6

SDDSC225

992.82

Christina

330754.5

5867733

306.93

-52.9

284.8

SDDSC226

826.1

Rising Sun

331276.9

5867121.1

289.09

-56.4

336.5

SDDSC226A

In Progress plan 1900 m

Rising Sun

331278.1

5867112.6

289.16

-56.8

330.4

SDDSC226W1

603.9

Rising Sun

331276.9

5867121.1

289.09

-56.4

336.5

SDDSC227

412

Apollo East

331483.8

5867840.3

335.83

-36.6

266.5

SDDSC228

447.8

Golden Dyke

330700.9

5867880.2

299.48

-47.1

245.2

SDDSC229

541.8

Golden Dyke

330813.6

5867847.5

301.1

-48.5

266.9

SDDSC230

1129.3

Rising Sun

330353.9

5867861.1

277.2

-65.1

77

SDDSC230W1

1415

Rising Sun

330353.9

5867861.1

277.2

-65.1

77

SDDSC231

1196.4

Rising Sun

330339.6

5867858.6

277

-70.3

71.1

SDDSC232

516.5

Christina

329777.6

5867552.2

286.76

-34.1

65.7

SDDSC233

445.94

Golden Dyke

330700.8

5867880.1

299.55

-40.7

245

SDDSC234

449

Apollo East

331484.5

5867840.3

335.75

-46.1

266.1

SDDSC235

In Progress plan 1500 m

Christina

329776.6

5867552

286.8

-44.7

63.2

SDDSC236

650.1

Golden Dyke

330813.6

5867847.5

301.1

-49.4

263.6

SDDSC237

359

Golden Dyke

330700.4

5867880.1

299.67

-43.2

245.7

SDDSC237W1

510.47

Golden Dyke

330700.4

5867880.1

299.67

-43.2

299.7

SDDSC239

915.63

Golden Dyke

330753.1

5867731.5

306.9

-31

270.2

SDDSC240

In Progress plan 1250 m

Rising Sun

330353.9

5867861.1

277.2

-58.3

73.9

SDDSC241

418.6

Golden Dyke

330700.9

5867879.7

299.8

-39.1

243.5

SDDSC242A

370.8

Golden Dyke

330814

5867848

301

-45.7

255.1

SDDSC242AW1

600

Golden Dyke

330814

5867848

301

0

0

SDDSC243

1037.9

Apollo

331615.8

5867951.1

346.99

-59.5

269

SDDSC245

548.8

Regional

331533.7

5867845.3

341.2

-40.7

156.1

SDDSC246

760.3

Golden Dyke

330753.7

5867731.8

306.73

-39.5

274.6

SDDSC247

193.6

Golden Dyke

330772.2

5867889.6

295.73

-32.3

248.5

SDDSC248

572.5

Apollo

331291.3

5867825.7

316.38

-40.9

269.8

SDDSC249

190

Golden Dyke

330772.7

5867889.6

295.74

-36.7

245.9

SDDSC250

199.8

Golden Dyke

330772.4

5867889.9

295.7

-36.9

252.3

SDDSC251

120.4

Apollo

331532.6

5867847.5

340.85

-31.9

270.4

SDDSC251A

306.7

Apollo

331532.8

5867847.9

340.89

-31.7

273.7

SDDSC252

200

Golden Dyke

330772.7

5867889.9

295.68

-40

249.9

SDDSC253

349.4

Apollo

331595.8

5867936.9

345.63

-53.8

267.8

SDDSC253W1

In Progress plan 1050 m

Apollo

331595.8

5867936.9

345.63

-53.8

267.8

SDDSC255

540

Golden Dyke

330773

5867890

295.56

-41.4

251.2

SDDSC256

In Progress plan 450 m

Golden Dyke

330775.7

5867890.8

295.4093

-31.2

246

SDDSC257

In Progress plan 830 m

Golden Dyke

330813.6

5867847.5

301.1

-43

263.8

SDDSC259

In Progress plan 830 m

Golden Dyke

330754.1

5867733.3

306.9

-43.6

273.6

SDDSC261

In Progress plan 1015 m

Apollo

331615.6

5867951

346.8

45.1

266.3

 

Regional holes currently being processed and analyzed

 

Hole ID

Depth (m)

Prospect

East

GDA94 Z55

North

GDA94 Z55

Elevation

 (m)

Dip

Azimuth

GDA94 Z55

SDDRE016

410.45

Redcastle

302735

5927298

217

-50.3

67.7

SDDRE017

359.8

Beautiful Venus

305388.6

5926618

206.62

-50.9

68.9

SDDTS009

506

Tonstall

336984.3

5870557.1

524.7

-28.3

285

SDDTS008

511.37

Tonstall

336992.9

5870558.4

524

-35

29

SDDTS010

535.79

Tonstall

336993.7

5870557.9

524.1

-37

44.4

SDDTS011

401.32

Tonstall

336992.1

5870557.3

524.1

-43

18

SDDCN002

350

Consols

336041

5870691

484

-37

241

SDDLV005A

420

Leviathan

334580

5870167

555.4

-31

206

SDDLV005

32.4

Leviathan

334580

5870167

555

-33

206

SDDLV006

In Progress plan 570 m

Leviathan

334580

5870167

555.4

-47

152

SDDCN003

In Progress plan 400 m

Consols

336043.5

5870690

484.1193

-36

130

 

 

Abandoned drill holes currently being processed and analyzed

 

Hole ID

Depth (m)

Prospect

East

GDA94 Z55

North

GDA94 Z55

Elevation

 (m)

Dip

Azimuth

GDA94 Z55

SDDSC216

131.2

Golden Dyke

330701

5867880.5

299.42

-46.3

252.5

SDDSC242

20.65

Golden Dyke

330814

5867848

301

-45.7

255.1

 

Table 2: Table of mineralized drill hole intersections reported from SDDSC202, SDDSC204, SDDSC209, SDDSC212, SDDSC214, SDDSC214W1 and SDDSC217 with two cutoff criteria.  Lower grades cut at 1.0 g/t AuEq lower cutoff over a maximum of 2 m with higher grades cut at 5.0 g/t AuEq cutoff over a maximum of 1 m. Significant intersections and interval depths are rounded to one decimal place.

 

Hole number

From (m)

To (m)

Interval (m)

Au g/t

Sb %

AuEq g/t

SDDSC202

538.8

539.0

0.2

34.9

9.9

58.6

SDDSC202

690.6

692.1

1.5

7.6

0.4

8.7

SDDSC202

700.0

736.6

36.6

4.0

1.0

6.5

Including

703.0

705.6

2.7

18.4

6.5

34.0

Including

709.7

711.0

1.4

2.0

0.7

3.7

Including

712.1

713.6

1.5

25.2

0.9

27.3

Including

717.1

717.6

0.5

10.0

1.5

13.6

Including

723.6

726.0

2.4

9.4

1.2

12.3

Including

727.9

728.4

0.5

8.6

0.8

10.5

SDDSC202

750.5

752.8

2.3

4.9

0.2

5.5

Including

750.5

752.0

1.5

5.3

0.2

5.9

SDDSC202

759.3

760.8

1.6

1.9

0.8

4.0

SDDSC202

763.3

766.0

2.7

0.9

0.7

2.6

SDDSC202

778.1

778.2

0.1

493.0

3.9

502.3

SDDSC202

784.3

785.8

1.5

9.2

1.5

12.8

Including

785.0

785.8

0.8

16.4

2.7

22.9

SDDSC202

789.0

791.1

2.1

5.0

2.9

11.9

SDDSC202

894.3

895.6

1.3

14.9

6.6

30.6

Including

894.6

895.6

0.9

20.4

9.2

42.4

SDDSC204

1095.5

1096.8

1.3

4.4

0.0

4.5

SDDSC204

1102.0

1106.5

4.5

1.5

0.0

1.6

SDDSC212

356.7

359.2

2.5

0.9

0.0

0.9

SDDSC212

432.0

435.0

3.0

1.6

0.2

2.1

SDDSC212

437.5

438.7

1.2

1.7

0.0

1.8

SDDSC214W1

596.3

597.5

1.2

13.9

1.7

17.8

Including

596.3

596.6

0.2

71.2

6.7

87.2

SDDSC214W1

605.2

605.7

0.5

232.0

8.1

251.4

SDDSC214W1

634.6

646.6

12.1

3.5

0.2

4.0

Including

634.6

636.1

1.6

22.9

0.5

24.2

SDDSC214W1

657.1

660.6

3.5

0.3

0.2

0.7

SDDSC214W1

665.1

667.7

2.6

0.4

0.2

0.8

SDDSC214W1

713.0

715.4

2.4

0.6

0.2

1.0

SDDSC214W1

760.3

760.6

0.3

10.0

0.0

10.0

SDDSC214W1

830.3

831.9

1.6

1.0

0.1

1.4

SDDSC214W1

991.9

994.2

2.2

44.9

0.0

45.0

Including

992.3

992.9

0.5

64.4

0.0

64.5

Including

994.0

994.2

0.2

362.0

0.1

362.3

SDDSC214W1

1036.5

1036.6

0.1

25.0

0.0

25.0

SDDSC217

312.3

313.2

0.9

12.6

7.7

31.0

Including

312.3

312.6

0.3

33.3

21.6

84.9

SDDSC217

324.9

325.0

0.1

55.8

31.3

130.6

SDDSC217

330.2

330.7

0.5

3.9

1.6

7.6

 

Table 3: All individual assays reported from SDDSC202, SDDSC204, SDDSC209, SDDSC212, SDDSC214, SDDSC214W1 and SDDSC217 reported here >0.1g/t AuEq. Individual assay and sample intervals are reported to two decimal places.

 

Hole number

From (m)

To (m)

Interval (m)

Au g/t

Sb %

AuEq g/t

SDDSC202

267.63

268.52

0.89

0.14

0.00

0.1

SDDSC202

506.66

507.28

0.62

0.17

0.00

0.2

SDDSC202

507.28

507.42

0.14

0.24

0.00

0.2

SDDSC202

509.65

510.43

0.78

0.28

0.00

0.3

SDDSC202

510.43

511.7

1.27

0.12

0.00

0.1

SDDSC202

528.56

529.8

1.24

0.11

0.04

0.2

SDDSC202

529.8

530.83

1.03

0.29

0.01

0.3

SDDSC202

530.83

530.95

0.12

8.72

0.01

8.7

SDDSC202

534.9

535.8

0.9

0.3

0.06

0.4

SDDSC202

535.96

536.39

0.43

0.11

0.03

0.2

SDDSC202

537.12

537.3

0.18

0.1

0.01

0.1

SDDSC202

538.75

538.96

0.21

34.9

9.91

58.6

SDDSC202

538.96

539.7

0.74

0.79

0.04

0.9

SDDSC202

557.21

557.95

0.74

-0.01

0.05

0.1

SDDSC202

557.95

558.1

0.15

1.56

0.07

1.7

SDDSC202

559.98

560.98

1

0.13

0.01

0.1

SDDSC202

560.98

561.46

0.48

0.15

0.00

0.2

SDDSC202

562.6

562.75

0.15

1.84

0.01

1.9

SDDSC202

563.45

563.7

0.25

0.16

0.00

0.2

SDDSC202

568.29

569.59

1.3

0.13

0.01

0.1

SDDSC202

574.97

575.91

0.94

0.16

0.00

0.2

SDDSC202

582.1

583.11

1.01

0.48

0.01

0.5

SDDSC202

583.11

583.79

0.68

1.17

0.01

1.2

SDDSC202

583.79

584.5

0.71

1.07

0.01

1.1

SDDSC202

584.5

584.65

0.15

0.79

0.01

0.8

SDDSC202

584.65

585.45

0.8

0.24

0.00

0.2

SDDSC202

586.05

587.05

1

0.24

0.00

0.2

SDDSC202

587.05

588.3

1.25

0.52

0.00

0.5

SDDSC202

589

589.45

0.45

0.48

0.00

0.5

SDDSC202

590.96

591.25

0.29

0.15

0.00

0.2

SDDSC202

591.25

592.17

0.92

0.14

0.00

0.1

SDDSC202

592.17

592.59

0.42

0.88

0.00

0.9

SDDSC202

592.59

593.63

1.04

0.1

0.00

0.1

SDDSC202

597.2

598.2

1

0.27

0.00

0.3

SDDSC202

598.2

599

0.8

0.31

0.00

0.3

SDDSC202

599

599.7

0.7

0.15

0.00

0.2

SDDSC202

613.8

614.49

0.69

0.24

0.00

0.2

SDDSC202

671.58

672.39

0.81

0.12

0.00

0.1

SDDSC202

685.55

685.65

0.1

0.15

0.35

1.0

SDDSC202

686.34

686.71

0.37

0.27

0.00

0.3

SDDSC202

688.74

689.53

0.79

0.09

0.02

0.1

SDDSC202

689.53

690.1

0.57

0.14

0.02

0.2

SDDSC202

690.1

690.6

0.5

0.1

0.01

0.1

SDDSC202

690.6

690.75

0.15

36.3

1.48

39.8

SDDSC202

690.75

691.01

0.26

2.21

0.18

2.6

SDDSC202

691.01

691.43

0.42

0.77

0.06

0.9

SDDSC202

691.43

691.68

0.25

1.03

0.24

1.6

SDDSC202

691.68

692.08

0.4

11.7

0.76

13.5

SDDSC202

692.08

693.31

1.23

0.17

0.01

0.2

SDDSC202

693.31

693.8

0.49

0.4

0.02

0.5

SDDSC202

694.57

695.35

0.78

0.16

0.04

0.3

SDDSC202

695.35

696.35

1

0.03

0.03

0.1

SDDSC202

697.07

697.76

0.69

0.13

0.01

0.2

SDDSC202

698.72

699

0.28

0.1

0.01

0.1

SDDSC202

699

700

1

0.17

0.01

0.2

SDDSC202

700

700.52

0.52

0.78

0.10

1.0

SDDSC202

700.52

701

0.48

0.16

0.03

0.2

SDDSC202

701

701.17

0.17

0.69

0.03

0.8

SDDSC202

701.17

701.42

0.25

0.78

0.03

0.8

SDDSC202

701.42

701.96

0.54

0.6

0.73

2.3

SDDSC202

701.96

702.09

0.13

0.37

0.83

2.4

SDDSC202

702.09

702.95

0.86

0.18

0.13

0.5

SDDSC202

702.95

703.42

0.47

3.21

1.02

5.6

SDDSC202

703.42

703.79

0.37

2.45

0.81

4.4

SDDSC202

703.79

704.41

0.62

0.17

0.05

0.3

SDDSC202

704.41

704.59

0.18

5.81

16.70

45.7

SDDSC202

704.59

704.87

0.28

91.5

29.10

161.0

SDDSC202

704.87

705.05

0.18

106

25.70

167.4

SDDSC202

705.05

705.5

0.45

1.54

1.15

4.3

SDDSC202

705.5

705.63

0.13

2.13

2.89

9.0

SDDSC202

705.63

706.93

1.3

0.89

0.63

2.4

SDDSC202

706.93

707.71

0.78

0.94

0.15

1.3

SDDSC202

707.71

708.1

0.39

0.36

0.10

0.6

SDDSC202

708.1

708.24

0.14

5.78

1.37

9.1

SDDSC202

708.24

709.1

0.86

0.6

0.47

1.7

SDDSC202

709.1

709.68

0.58

0.62

0.24

1.2

SDDSC202

709.68

709.78

0.1

3.4

1.18

6.2

SDDSC202

709.78

710.29

0.51

0.32

0.24

0.9

SDDSC202

710.29

711.03

0.74

3.01

0.98

5.4

SDDSC202

711.03

712.1

1.07

0.29

0.17

0.7

SDDSC202

712.1

712.3

0.2

15.8

1.17

18.6

SDDSC202

712.3

712.67

0.37

14.4

0.80

16.3

SDDSC202

712.67

712.85

0.18

132

2.26

137.4

SDDSC202

712.85

713.2

0.35

2.81

0.54

4.1

SDDSC202

713.2

713.6

0.4

11.3

0.53

12.6

SDDSC202

713.6

714.6

1

0.66

1.15

3.4

SDDSC202

714.6

715.67

1.07

0.97

0.39

1.9

SDDSC202

715.67

716.56

0.89

1.11

0.57

2.5

SDDSC202

716.56

717.13

0.57

0.35

0.14

0.7

SDDSC202

717.13

717.63

0.5

9.95

1.54

13.6

SDDSC202

717.63

718.93

1.3

1.31

0.13

1.6

SDDSC202

718.93

719.8

0.87

0.61

1.61

4.5

SDDSC202

719.8

720.05

0.25

0.75

2.89

7.7

SDDSC202

720.05

721.35

1.3

0.26

0.33

1.0

SDDSC202

721.35

722.31

0.96

0.56

0.22

1.1

SDDSC202

722.31

722.41

0.1

2.28

7.38

19.9

SDDSC202

722.41

723.39

0.98

0.6

0.95

2.9

SDDSC202

723.39

723.57

0.18

0.94

1.02

3.4

SDDSC202

723.57

724.2

0.63

9.55

1.14

12.3

SDDSC202

724.2

725.32

1.12

12.6

1.46

16.1

SDDSC202

725.32

725.95

0.63

3.63

0.76

5.4

SDDSC202

725.95

726.69

0.74

0.2

0.06

0.3

SDDSC202

726.69

727.92

1.23

2.94

0.39

3.9

SDDSC202

727.92

728.4

0.48

8.62

0.79

10.5

SDDSC202

728.4

728.75

0.35

0.52

1.06

3.1

SDDSC202

728.75

729.74

0.99

0.66

0.71

2.4

SDDSC202

729.74

729.87

0.13

10.7

0.20

11.2

SDDSC202

729.87

730.67

0.8

0.35

0.69

2.0

SDDSC202

730.67

731.94

1.27

0.96

0.36

1.8

SDDSC202

731.94

733.05

1.11

0.41

0.39

1.3

SDDSC202

733.05

733.27

0.22

1.15

1.71

5.2

SDDSC202

733.27

734.41

1.14

0.43

0.08

0.6

SDDSC202

734.41

735.31

0.9

0.49

0.11

0.8

SDDSC202

735.31

735.71

0.4

1.06

0.21

1.6

SDDSC202

735.71

736.11

0.4

6.56

0.04

6.6

SDDSC202

736.11

736.29

0.18

5.81

0.10

6.0

SDDSC202

736.29

736.59

0.3

2.91

0.12

3.2

SDDSC202

750.15

750.52

0.37

0.15

0.02

0.2

SDDSC202

750.52

750.89

0.37

7.98

0.18

8.4

SDDSC202

750.89

751.89

1

0.42

0.05

0.5

SDDSC202

751.89

752.03

0.14

33.4

1.69

37.4

SDDSC202

752.03

752.83

0.8

4.15

0.28

4.8

SDDSC202

752.83

753.37

0.54

0.09

0.02

0.1

SDDSC202

753.37

754.19

0.82

0.11

0.04

0.2

SDDSC202

754.19

755.36

1.17

0.12

0.02

0.2

SDDSC202

755.36

756.05

0.69

0.29

0.10

0.5

SDDSC202

756.05

757.1

1.05

0.39

0.20

0.9

SDDSC202

758.36

758.89

0.53

0.17

0.03

0.3

SDDSC202

758.89

759.29

0.4

0.15

0.02

0.2

SDDSC202

759.29

759.44

0.15

16.3

6.12

30.9

SDDSC202

759.44

759.65

0.21

0.68

0.44

1.7

SDDSC202

759.65

760.04

0.39

0.14

0.03

0.2

SDDSC202

760.04

760.49

0.45

0.13

0.02

0.2

SDDSC202

760.49

760.84

0.35

0.86

0.80

2.8

SDDSC202

760.84

761.05

0.21

0.07

0.03

0.1

SDDSC202

761.05

761.35

0.3

0.12

0.01

0.1

SDDSC202

763

763.29

0.29

0.18

0.23

0.7

SDDSC202

763.29

763.75

0.46

1.33

1.70

5.4

SDDSC202

763.75

764.31

0.56

0.66

0.49

1.8

SDDSC202

764.31

765.14

0.83

0.09

0.10

0.3

SDDSC202

765.14

765.75

0.61

0.91

1.15

3.7

SDDSC202

765.75

765.93

0.18

0.06

0.07

0.2

SDDSC202

765.93

766.03

0.1

7.38

1.51

11.0

SDDSC202

767.98

768.6

0.62

0.42

0.03

0.5

SDDSC202

770.9

771.12

0.22

0.51

0.52

1.8

SDDSC202

777

778.1

1.1

0.19

0.05

0.3

SDDSC202

778.1

778.2

0.1

493

3.89

502.3

SDDSC202

778.2

778.87

0.67

0.41

0.02

0.5

SDDSC202

784.28

784.42

0.14

1.42

0.24

2.0

SDDSC202

784.95

785.06

0.11

1.94

2.38

7.6

SDDSC202

785.64

785.77

0.13

102

15.00

137.9

SDDSC202

786.83

787.93

1.1

0.27

0.01

0.3

SDDSC202

787.93

789

1.07

0.07

0.02

0.1

SDDSC202

789

789.11

0.11

4.63

6.11

19.2

SDDSC202

789.11

789.95

0.84

0.57

0.49

1.7

SDDSC202

789.95

790.14

0.19

1.45

5.94

15.6

SDDSC202

790.14

790.38

0.24

0.2

0.14

0.5

SDDSC202

790.38

790.48

0.1

19.3

2.32

24.8

SDDSC202

790.48

790.89

0.41

0.23

0.29

0.9

SDDSC202

790.89

791.06

0.17

41.2

19.80

88.5

SDDSC202

799.76

800.46

0.7

0.58

0.20

1.1

SDDSC202

800.46

800.91

0.45

0.44

0.06

0.6

SDDSC202

808.56

808.67

0.11

6.86

0.34

7.7

SDDSC202

809.8

811.01

1.21

0.6

0.02

0.7

SDDSC202

811.01

811.25

0.24

0.2

0.04

0.3

SDDSC202

811.25

811.44

0.19

0.64

0.03

0.7

SDDSC202

836.92

838.22

1.3

0.23

0.01

0.3

SDDSC202

843.71

844.23

0.52

0.63

0.02

0.7

SDDSC202

868.66

868.84

0.18

0.29

0.00

0.3

SDDSC202

871.83

871.96

0.13

0.89

0.08

1.1

SDDSC202

891.73

892

0.27

0.55

0.01

0.6

SDDSC202

893.64

894.27

0.63

0.47

0.22

1.0

SDDSC202

894.27

894.64

0.37

1.14

0.05

1.3

SDDSC202

894.64

894.86

0.22

81.5

31.40

156.5

SDDSC202

894.86

895.41

0.55

1.17

1.15

3.9

SDDSC202

895.41

895.56

0.15

1.41

6.04

15.8

SDDSC202

895.56

896.5

0.94

0.22

0.06

0.4

SDDSC202

906.79

907.16

0.37

0.17

0.01

0.2

SDDSC202

913.89

914.39

0.5

0.3

0.00

0.3

SDDSC202

915.43

915.65

0.22

0.14

0.00

0.1

SDDSC202

917.63

918

0.37

0.27

0.00

0.3

SDDSC202

918

919.03

1.03

0.18

0.00

0.2

SDDSC202

919.03

919.83

0.8

0.22

0.00

0.2

SDDSC202

920.96

921.52

0.56

0.46

0.00

0.5

SDDSC202

922.82

923.79

0.97

0.18

0.00

0.2

SDDSC202

923.79

924.86

1.07

0.32

0.00

0.3

SDDSC202

924.86

925.72

0.86

0.45

0.01

0.5

SDDSC202

925.72

926.28

0.56

0.91

0.00

0.9

SDDSC202

929.67

930.48

0.81

0.25

0.00

0.3

SDDSC202

930.48

930.85

0.37

0.27

0.00

0.3

SDDSC204

643.93

644.45

0.52

0.55

0.01

0.6

SDDSC204

644.45

644.88

0.43

1.75

0.00

1.8

SDDSC204

644.88

645.12

0.24

1.23

0.00

1.2

SDDSC204

645.12

646.42

1.3

0.18

0.00

0.2

SDDSC204

732

732.83

0.83

0.14

0.01

0.2

SDDSC204

805.6

805.97

0.37

0.86

0.00

0.9

SDDSC204

811.68

812.1

0.42

0.14

0.00

0.1

SDDSC204

820.46

820.97

0.51

0.1

0.00

0.1

SDDSC204

828.26

828.65

0.39

0.15

0.00

0.2

SDDSC204

875.5

875.75

0.25

0.15

0.00

0.2

SDDSC204

889.75

891

1.25

0.11

0.00

0.1

SDDSC204

896.85

898.02

1.17

0.465

0.01

0.5

SDDSC204

898.02

898.13

0.11

1.26

0.07

1.4

SDDSC204

898.84

899.42

0.58

0.18

0.00

0.2

SDDSC204

899.42

900.08

0.66

0.25

0.00

0.3

SDDSC204

900.08

900.31

0.23

0.77

0.01

0.8

SDDSC204

900.31

900.65

0.34

1.85

0.03

1.9

SDDSC204

900.65

901

0.35

0.67

0.01

0.7

SDDSC204

908.12

909

0.88

0.15

0.00

0.2

SDDSC204

1037.2

1038.5

1.3

0.22

0.00

0.2

SDDSC204

1050.2

1051.5

1.3

0.1

0.00

0.1

SDDSC204

1061.9

1063

1.1

0.36

0.00

0.4

SDDSC204

1069.2

1070.2

1

0.12

0.00

0.1

SDDSC204

1084.58

1084.9

0.32

0.07

0.03

0.1

SDDSC204

1085.9

1086.41

0.51

1.25

0.01

1.3

SDDSC204

1086.41

1087.7

1.29

0.62

0.00

0.6

SDDSC204

1090.08

1090.36

0.28

2.96

0.00

3.0

SDDSC204

1095.5

1096.8

1.3

4.44

0.01

4.5

SDDSC204

1096.8

1098.1

1.3

0.17

0.01

0.2

SDDSC204

1102

1103

1

1.25

0.01

1.3

SDDSC204

1103

1104.2

1.2

0.8

0.01

0.8

SDDSC204

1104.2

1105

0.8

2.58

0.01

2.6

SDDSC204

1105

1105.66

0.66

1.44

0.01

1.5

SDDSC204

1105.66

1106.46

0.8

2.11

0.02

2.1

SDDSC204

1110.97

1111.08

0.11

0.82

0.00

0.8

SDDSC204

1126.63

1126.86

0.23

0.12

0.00

0.1

SDDSC204

1146.44

1146.55

0.11

0.21

0.00

0.2

SDDSC204

1148.54

1149.45

0.91

0.14

0.00

0.1

SDDSC204

1150.14

1150.36

0.22

0.17

0.01

0.2

SDDSC204

1152.67

1153.8

1.13

0.11

0.00

0.1

SDDSC204

1154.84

1155.93

1.09

0.3

0.00

0.3

SDDSC204

1167.78

1168.07

0.29

0.38

0.00

0.4

SDDSC204

1169.37

1170.3

0.93

0.15

0.00

0.2

SDDSC204

1171.52

1172.5

0.98

0.1

0.00

0.1

SDDSC204

1172.5

1173.8

1.3

1.52

0.00

1.5

SDDSC204

1173.8

1174.8

1

0.83

0.00

0.8

SDDSC204

1174.8

1175.8

1

0.33

0.00

0.3

SDDSC204

1175.8

1177

1.2

0.15

0.00

0.2

SDDSC204

1177

1177.43

0.43

0.1

0.00

0.1

SDDSC204

1177.43

1178.73

1.3

0.21

0.00

0.2

SDDSC204

1178.73

1179

0.27

0.16

0.00

0.2

SDDSC204

1179

1179.44

0.44

0.25

0.00

0.3

SDDSC204

1179.44

1180.5

1.06

0.13

0.00

0.1

SDDSC212

324.15

324.4

0.25

0.11

0.00

0.1

SDDSC212

339.02

339.59

0.57

0.12

0.00

0.1

SDDSC212

341.04

341.64

0.6

0.08

0.01

0.1

SDDSC212

342.66

343.03

0.37

0.22

0.00

0.2

SDDSC212

344.33

345.63

1.3

0.1

0.00

0.1

SDDSC212

355.53

356.72

1.19

0.12

0.00

0.1

SDDSC212

356.72

357.22

0.5

2.98

0.00

3.0

SDDSC212

359.05

359.24

0.19

3.5

0.03

3.6

SDDSC212

359.24

359.59

0.35

0.06

0.03

0.1

SDDSC212

364.72

366.02

1.3

0.19

0.00

0.2

SDDSC212

366.02

367.32

1.3

0.21

0.00

0.2

SDDSC212

367.32

368.62

1.3

0.28

0.00

0.3

SDDSC212

410.3

411.3

1

0.19

0.00

0.2

SDDSC212

411.7

412.13

0.43

0.26

0.00

0.3

SDDSC212

412.13

412.4

0.27

0.18

0.00

0.2

SDDSC212

412.6

412.8

0.2

0.47

0.01

0.5

SDDSC212

413.5

414

0.5

0.09

0.00

0.1

SDDSC212

415

416

1

0.09

0.01

0.1

SDDSC212

416

416.53

0.53

0.08

0.02

0.1

SDDSC212

416.53

417

0.47

0.06

0.02

0.1

SDDSC212

420.8

422

1.2

0.1

0.00

0.1

SDDSC212

424.92

425.13

0.21

0.51

0.00

0.5

SDDSC212

425.13

426

0.87

0.07

0.01

0.1

SDDSC212

426

427

1

0.13

0.01

0.2

SDDSC212

430

431

1

0.07

0.02

0.1

SDDSC212

431

432

1

0.64

0.03

0.7

SDDSC212

432

433

1

1.18

0.04

1.3

SDDSC212

433

434

1

0.92

0.14

1.3

SDDSC212

434

435

1

2.82

0.40

3.8

SDDSC212

435

436

1

0.28

0.03

0.4

SDDSC212

436

437

1

0.11

0.01

0.1

SDDSC212

437

437.52

0.52

0.41

0.02

0.5

SDDSC212

437.52

438

0.48

1.93

0.02

2.0

SDDSC212

438

438.7

0.7

1.52

0.05

1.6

SDDSC214W1

575.2

575.63

0.43

0.11

0.01

0.1

SDDSC214W1

588

588.85

0.85

0.15

0.05

0.3

SDDSC214W1

588.85

589.18

0.33

1.98

0.00

2.0

SDDSC214W1

589.18

590

0.82

0.19

0.00

0.2

SDDSC214W1

591

592

1

0.1

0.00

0.1

SDDSC214W1

592

592.73

0.73

0.14

0.00

0.2

SDDSC214W1

595.96

596.33

0.37

0.15

0.02

0.2

SDDSC214W1

596.33

596.55

0.22

71.2

6.70

87.2

SDDSC214W1

596.55

596.81

0.26

0.75

0.29

1.4

SDDSC214W1

596.81

597.24

0.43

0.41

0.38

1.3

SDDSC214W1

597.24

597.5

0.26

0.69

0.84

2.7

SDDSC214W1

597.5

598

0.5

0.25

0.06

0.4

SDDSC214W1

598

598.5

0.5

0.31

0.21

0.8

SDDSC214W1

599.18

599.6

0.42

0.15

0.02

0.2

SDDSC214W1

601.27

601.68

0.41

0.12

0.00

0.1

SDDSC214W1

601.68

602.3

0.62

0.42

0.00

0.4

SDDSC214W1

602.3

603.16

0.86

0.21

0.00

0.2

SDDSC214W1

605.18

605.65

0.47

232

8.11

251.4

SDDSC214W1

605.65

605.95

0.3

0.09

0.02

0.1

SDDSC214W1

609.85

610.45

0.6

0.11

0.01

0.1

SDDSC214W1

615.66

616.45

0.79

0.2

0.00

0.2

SDDSC214W1

616.45

617.42

0.97

0.13

0.10

0.4

SDDSC214W1

617.42

617.69

0.27

0.2

0.25

0.8

SDDSC214W1

617.69

618.93

1.24

0.08

0.02

0.1

SDDSC214W1

618.93

619.79

0.86

0.08

0.01

0.1

SDDSC214W1

626.28

626.66

0.38

0.07

0.16

0.5

SDDSC214W1

626.66

627.59

0.93

0.26

0.57

1.6

SDDSC214W1

627.59

627.98

0.39

0.08

0.01

0.1

SDDSC214W1

628.22

628.91

0.69

0.14

0.04

0.2

SDDSC214W1

629.49

630.02

0.53

0.98

0.01

1.0

SDDSC214W1

630.25

631

0.75

0.44

0.07

0.6

SDDSC214W1

631

631.23

0.23

0.57

0.10

0.8

SDDSC214W1

631.23

632.23

1

0.09

0.01

0.1

SDDSC214W1

632.23

632.93

0.7

0.14

0.01

0.2

SDDSC214W1

632.93

633.96

1.03

0.19

0.01

0.2

SDDSC214W1

633.96

634.55

0.59

0.1

0.01

0.1

SDDSC214W1

634.55

635.17

0.62

38.6

0.36

39.5

SDDSC214W1

635.17

635.53

0.36

0.88

0.07

1.1

SDDSC214W1

635.53

635.88

0.35

24.6

0.91

26.8

SDDSC214W1

635.88

636.12

0.24

12.7

1.22

15.6

SDDSC214W1

636.12

637.1

0.98

0.66

0.03

0.7

SDDSC214W1

637.39

637.8

0.41

1.58

0.67

3.2

SDDSC214W1

638.6

639.13

0.53

0.81

0.09

1.0

SDDSC214W1

639.13

639.79

0.66

0.7

0.14

1.0

SDDSC214W1

639.79

640.41

0.62

0.7

0.10

0.9

SDDSC214W1

641.7

642.13

0.43

2.73

0.51

3.9

SDDSC214W1

642.13

642.52

0.39

0.57

0.00

0.6

SDDSC214W1

642.52

643.14

0.62

0.86

0.07

1.0

SDDSC214W1

643.66

644.56

0.9

0.72

0.28

1.4

SDDSC214W1

644.56

644.78

0.22

1.16

0.16

1.5

SDDSC214W1

644.78

645.11

0.33

0.54

0.14

0.9

SDDSC214W1

645.11

646.08

0.97

0.15

0.06

0.3

SDDSC214W1

646.08

646.62

0.54

0.7

0.63

2.2

SDDSC214W1

646.62

647.24

0.62

0.68

0.05

0.8

SDDSC214W1

647.24

648.21

0.97

0.55

0.17

1.0

SDDSC214W1

648.21

648.95

0.74

0.21

0.01

0.2

SDDSC214W1

654.42

655.36

0.94

0.13

0.01

0.1

SDDSC214W1

655.36

655.98

0.62

0.21

0.03

0.3

SDDSC214W1

657.06

657.52

0.46

1.04

0.25

1.6

SDDSC214W1

658.21

658.68

0.47

1.07

0.63

2.6

SDDSC214W1

659.05

659.44

0.39

0.08

0.09

0.3

SDDSC214W1

659.44

660.39

0.95

0.03

0.04

0.1

SDDSC214W1

660.39

660.6

0.21

0.56

0.22

1.1

SDDSC214W1

660.6

661.9

1.3

0.36

0.24

0.9

SDDSC214W1

663.2

663.62

0.42

0.14

0.01

0.2

SDDSC214W1

663.62

664.07

0.45

0.21

0.27

0.9

SDDSC214W1

664.07

664.72

0.65

0.09

0.17

0.5

SDDSC214W1

664.72

665.09

0.37

0.07

0.01

0.1

SDDSC214W1

665.09

665.87

0.78

0.78

0.37

1.7

SDDSC214W1

665.87

666.51

0.64

0.15

0.07

0.3

SDDSC214W1

666.51

666.78

0.27

0.11

0.04

0.2

SDDSC214W1

666.78

667.48

0.7

0.19

0.02

0.2

SDDSC214W1

667.48

667.67

0.19

1.35

0.17

1.8

SDDSC214W1

667.67

668.51

0.84

0.55

0.01

0.6

SDDSC214W1

678

679.05

1.05

0.22

0.01

0.2

SDDSC214W1

679.05

679.71

0.66

0.11

0.00

0.1

SDDSC214W1

694.67

695.47

0.8

0.08

0.01

0.1

SDDSC214W1

695.47

695.85

0.38

0.13

0.02

0.2

SDDSC214W1

699.11

699.76

0.65

0.53

0.01

0.5

SDDSC214W1

699.76

700.54

0.78

0.1

0.26

0.7

SDDSC214W1

700.54

701.07

0.53

0.13

0.01

0.2

SDDSC214W1

701.07

701.58

0.51

0.34

0.25

0.9

SDDSC214W1

704.51

705.13

0.62

0.15

0.15

0.5

SDDSC214W1

705.13

706.24

1.11

0.04

0.05

0.2

SDDSC214W1

706.24

706.7

0.46

0.07

0.18

0.5

SDDSC214W1

706.7

707.03

0.33

0.13

0.05

0.2

SDDSC214W1

707.03

707.43

0.4

0.05

0.03

0.1

SDDSC214W1

710.43

710.74

0.31

0.28

0.01

0.3

SDDSC214W1

710.74

711.21

0.47

0.1

0.00

0.1

SDDSC214W1

711.21

711.68

0.47

0.28

0.01

0.3

SDDSC214W1

711.68

711.98

0.3

0.65

0.04

0.7

SDDSC214W1

711.98

713

1.02

0.1

0.01

0.1

SDDSC214W1

713

713.14

0.14

1.25

0.10

1.5

SDDSC214W1

713.14

713.33

0.19

3.37

0.08

3.6

SDDSC214W1

713.33

714.2

0.87

0.09

0.01

0.1

SDDSC214W1

715.08

715.35

0.27

1.94

1.36

5.2

SDDSC214W1

716.06

716.34

0.28

0.21

0.02

0.2

SDDSC214W1

717

717.69

0.69

0.03

0.09

0.2

SDDSC214W1

718.21

718.73

0.52

0.51

0.00

0.5

SDDSC214W1

718.73

719.7

0.97

0.12

0.00

0.1

SDDSC214W1

720.82

721.55

0.73

0.2

0.01

0.2

SDDSC214W1

722.16

722.47

0.31

3.73

0.05

3.8

SDDSC214W1

728.04

728.32

0.28

0.3

0.05

0.4

SDDSC214W1

728.32

729.43

1.11

0.2

0.01

0.2

SDDSC214W1

729.43

729.77

0.34

0.72

0.03

0.8

SDDSC214W1

729.77

730.61

0.84

0.14

0.06

0.3

SDDSC214W1

736.34

737.6

1.26

0.93

0.00

0.9

SDDSC214W1

744.66

744.9

0.24

0.13

0.07

0.3

SDDSC214W1

747.57

748.21

0.64

0.29

0.32

1.1

SDDSC214W1

748.21

748.57

0.36

0.06

0.15

0.4

SDDSC214W1

753.05

753.6

0.55

0.7

0.04

0.8

SDDSC214W1

753.6

753.92

0.32

0.13

0.06

0.3

SDDSC214W1

754.85

755.2

0.35

0.08

0.01

0.1

SDDSC214W1

759.59

760.28

0.69

0.09

0.01

0.1

SDDSC214W1

760.28

760.55

0.27

10

0.00

10.0

SDDSC214W1

760.55

761.06

0.51

0.12

0.01

0.1

SDDSC214W1

761.06

761.6

0.54

0.24

0.01

0.3

SDDSC214W1

761.6

761.8

0.2

0.78

0.03

0.9

SDDSC214W1

761.8

761.93

0.13

0.43

0.09

0.6

SDDSC214W1

761.93

762.67

0.74

0.95

0.21

1.5

SDDSC214W1

762.67

762.89

0.22

0.64

0.01

0.7

SDDSC214W1

762.89

763.93

1.04

0.22

0.01

0.2

SDDSC214W1

770.92

771.11

0.19

0.12

0.05

0.2

SDDSC214W1

772.99

773.24

0.25

0.19

1.87

4.7

SDDSC214W1

785.49

785.61

0.12

0.68

0.01

0.7

SDDSC214W1

820.45

820.66

0.21

0.17

0.07

0.3

SDDSC214W1

829.2

830.26

1.06

0.27

0.00

0.3

SDDSC214W1

830.26

830.85

0.59

0.79

0.39

1.7

SDDSC214W1

830.85

830.97

0.12

0.35

0.00

0.4

SDDSC214W1

830.97

831.86

0.89

1.26

0.00

1.3

SDDSC214W1

831.86

832.9

1.04

0.17

0.00

0.2

SDDSC214W1

834.66

835.2

0.54

0.39

0.00

0.4

SDDSC214W1

835.2

835.95

0.75

0.16

0.00

0.2

SDDSC214W1

889.14

890.2

1.06

-0.01

0.05

0.1

SDDSC214W1

890.2

890.45

0.25

0.2

0.00

0.2

SDDSC214W1

895.5

896.8

1.3

0.13

0.01

0.1

SDDSC214W1

896.8

897.02

0.22

0.98

0.02

1.0

SDDSC214W1

898.09

898.44

0.35

0.14

0.01

0.2

SDDSC214W1

898.44

898.96

0.52

0.12

0.01

0.1

SDDSC214W1

905.2

905.97

0.77

0.09

0.00

0.1

SDDSC214W1

913.2

914.2

1

0.31

0.00

0.3

SDDSC214W1

914.2

915.2

1

0.14

0.02

0.2

SDDSC214W1

915.2

916.34

1.14

0.79

0.02

0.8

SDDSC214W1

916.34

917.45

1.11

0.73

0.01

0.7

SDDSC214W1

920.85

921.2

0.35

0.25

0.01

0.3

SDDSC214W1

921.2

922.3

1.1

0.15

0.01

0.2

SDDSC214W1

923.5

924.25

0.75

0.25

0.01

0.3

SDDSC214W1

924.25

925.32

1.07

0.29

0.01

0.3

SDDSC214W1

943.28

944.03

0.75

0.17

0.00

0.2

SDDSC214W1

982.1

982.93

0.83

0.13

0.00

0.1

SDDSC214W1

984

985

1

0.18

0.00

0.2

SDDSC214W1

991.92

992.34

0.42

1.08

0.00

1.1

SDDSC214W1

992.34

992.56

0.22

20.4

0.01

20.4

SDDSC214W1

992.56

992.72

0.16

0.28

0.00

0.3

SDDSC214W1

992.72

992.86

0.14

207

0.08

207.2

SDDSC214W1

992.86

993

0.14

0.15

0.00

0.2

SDDSC214W1

993

993.43

0.43

1.18

0.00

1.2

SDDSC214W1

993.43

993.97

0.54

0.97

0.00

1.0

SDDSC214W1

993.97

994.15

0.18

362

0.13

362.3

SDDSC214W1

994.15

995.2

1.05

0.23

0.00

0.2

SDDSC214W1

996.95

997.49

0.54

0.28

0.01

0.3

SDDSC214W1

998.75

998.89

0.14

2.99

0.02

3.0

SDDSC214W1

998.89

999.75

0.86

0.25

0.01

0.3

SDDSC214W1

999.75

1000.7

0.95

0.9

0.01

0.9

SDDSC214W1

1000.7

1001.56

0.86

0.24

0.01

0.3

SDDSC214W1

1001.56

1002.6

1.04

0.55

0.01

0.6

SDDSC214W1

1002.6

1002.82

0.22

0.33

0.01

0.3

SDDSC214W1

1002.82

1003.98

1.16

0.18

0.01

0.2

SDDSC214W1

1003.98

1004.83

0.85

0.53

0.01

0.5

SDDSC214W1

1004.83

1005.73

0.9

0.28

0.00

0.3

SDDSC214W1

1005.73

1006.64

0.91

0.19

0.00

0.2

SDDSC214W1

1009.32

1009.83

0.51

0.32

0.01

0.3

SDDSC214W1

1009.83

1010.6

0.77

0.22

0.01

0.2

SDDSC214W1

1012.75

1014.05

1.3

0.19

0.00

0.2

SDDSC214W1

1015.28

1015.7

0.42

0.24

0.00

0.3

SDDSC214W1

1015.7

1016.85

1.15

0.14

0.01

0.2

SDDSC214W1

1016.85

1017.75

0.9

0.28

0.00

0.3

SDDSC214W1

1017.75

1018.67

0.92

0.29

0.00

0.3

SDDSC214W1

1018.67

1019.54

0.87

0.22

0.00

0.2

SDDSC214W1

1019.54

1020.27

0.73

0.17

0.00

0.2

SDDSC214W1

1020.27

1021

0.73

0.23

0.01

0.2

SDDSC214W1

1021

1022.05

1.05

0.63

0.01

0.6

SDDSC214W1

1022.05

1022.67

0.62

0.71

0.01

0.7

SDDSC214W1

1022.67

1023.3

0.63

0.14

0.01

0.2

SDDSC214W1

1023.3

1023.76

0.46

0.17

0.01

0.2

SDDSC214W1

1023.76

1024.05

0.29

0.16

0.13

0.5

SDDSC214W1

1024.05

1024.52

0.47

0.29

0.02

0.3

SDDSC214W1

1024.52

1025.53

1.01

0.32

0.02

0.4

SDDSC214W1

1025.53

1026.1

0.57

0.23

0.01

0.3

SDDSC214W1

1026.1

1026.54

0.44

0.34

0.02

0.4

SDDSC214W1

1026.54

1027.22

0.68

0.48

0.01

0.5

SDDSC214W1

1027.92

1028.8

0.88

0.29

0.01

0.3

SDDSC214W1

1028.8

1029.5

0.7

0.37

0.01

0.4

SDDSC214W1

1029.5

1030.15

0.65

0.91

0.03

1.0

SDDSC214W1

1030.15

1030.25

0.1

1.24

0.02

1.3

SDDSC214W1

1030.25

1030.48

0.23

1.28

0.29

2.0

SDDSC214W1

1030.48

1030.97

0.49

0.75

0.02

0.8

SDDSC214W1

1030.97

1032.02

1.05

0.11

0.01

0.1

SDDSC214W1

1032.88

1033.96

1.08

0.41

0.01

0.4

SDDSC214W1

1033.96

1035

1.04

0.1

0.02

0.2

SDDSC214W1

1035

1035.96

0.96

0.26

0.02

0.3

SDDSC214W1

1036.48

1036.58

0.1

25

0.00

25.0

SDDSC214W1

1036.58

1037.7

1.12

0.14

0.01

0.2

SDDSC214W1

1039

1039.94

0.94

0.22

0.00

0.2

SDDSC217

193.3

194.3

1

0.23

0.00

0.2

SDDSC217

194.3

195.3

1

0.09

0.00

0.1

SDDSC217

196.15

196.64

0.49

0.4

0.00

0.4

SDDSC217

227.7

228.78

1.08

0.98

0.00

1.0

SDDSC217

255.1

255.39

0.29

0.23

0.00

0.2

SDDSC217

255.39

256.44

1.05

0.31

0.01

0.3

SDDSC217

256.44

257.7

1.26

0.11

0.02

0.1

SDDSC217

270.63

270.73

0.1

0.11

0.00

0.1

SDDSC217

272

273.3

1.3

0.14

0.00

0.1

SDDSC217

275.55

275.65

0.1

0.23

0.00

0.2

SDDSC217

277.19

277.36

0.17

0.18

0.06

0.3

SDDSC217

277.36

277.67

0.31

0.51

0.01

0.5

SDDSC217

277.67

277.77

0.1

0.18

0.01

0.2

SDDSC217

279.64

279.74

0.1

0.2

0.00

0.2

SDDSC217

280.14

280.24

0.1

1.61

1.83

6.0

SDDSC217

284.46

285.04

0.58

0.26

0.00

0.3

SDDSC217

285.04

285.14

0.1

1.18

0.00

1.2

SDDSC217

285.14

286.38

1.24

0.24

0.00

0.2

SDDSC217

286.38

286.59

0.21

0.49

0.00

0.5

SDDSC217

290.7

291.38

0.68

0.17

0.00

0.2

SDDSC217

291.38

291.76

0.38

0.16

0.00

0.2

SDDSC217

295.42

295.81

0.39

0.49

0.01

0.5

SDDSC217

299.2

300.5

1.3

0.11

0.00

0.1

SDDSC217

301.7

301.94

0.24

0.13

0.00

0.1

SDDSC217

301.94

302.66

0.72

0.18

0.00

0.2

SDDSC217

303.76

304.5

0.74

0.53

0.01

0.5

SDDSC217

310.9

311.74

0.84

0.13

0.05

0.3

SDDSC217

311.74

312.28

0.54

0.35

0.10

0.6

SDDSC217

312.28

312.61

0.33

33.3

21.60

84.9

SDDSC217

312.61

313.21

0.6

1.26

0.01

1.3

SDDSC217

313.21

314.5

1.29

0.43

0.00

0.4

SDDSC217

318.4

318.59

0.19

0.2

0.18

0.6

SDDSC217

318.59

319.1

0.51

0.25

0.07

0.4

SDDSC217

320.4

321.7

1.3

0.21

0.00

0.2

SDDSC217

324.27

324.9

0.63

0.34

0.09

0.5

SDDSC217

324.9

325.03

0.13

55.8

31.30

130.6

SDDSC217

325.03

325.76

0.73

0.16

0.04

0.3

SDDSC217

325.76

326.47

0.71

0.06

0.02

0.1

SDDSC217

326.47

326.58

0.11

0.74

3.14

8.2

SDDSC217

328.78

329.05

0.27

0.43

0.01

0.5

SDDSC217

329.05

330.17

1.12

0.34

0.01

0.4

SDDSC217

330.17

330.39

0.22

8.54

1.09

11.1

SDDSC217

330.39

330.7

0.31

0.55

1.90

5.1

SDDSC217

330.7

331.02

0.32

0.25

0.02

0.3

SDDSC217

331.02

332.3

1.28

0.12

0.01

0.1

SDDSC217

334.76

335.17

0.41

0.52

0.00

0.5

SDDSC217

430.1

430.7

0.6

0.14

0.00

0.1

 

JORC Table 1

 

Section 1 Sampling Techniques and Data

 

Criteria

JORC Code explanation

Commentary

Sampling techniques

  • Nature and quality of sampling (e.g. 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.). These examples should not be taken as limiting the broad meaning of sampling.
  • Include reference to measures taken to ensure sample representivity and the appropriate calibration of any measurement tools or systems used.
  • Aspects of the determination of mineralization that are Material to the Public Report.
  • In cases where ‘industry standard’ work has been done this would be relatively simple (e.g. ‘reverse circulation drilling was used to obtain 1 m samples from which 3 kg was pulverised to produce a 30 g charge for fire assay’). In other cases more explanation may be required, such as where there is coarse gold that has inherent sampling problems. Unusual commodities or mineralization types (e.g. submarine nodules) may warrant disclosure of detailed information.
  • Sampling has been conducted on drill core (half core for >90% and quarter core for check samples), grab samples (field samples of in-situ bedrock and boulders; including duplicate samples), trench samples (rock chips, including duplicates) and soil samples (including duplicate samples).
  • Locations of field samples were obtained by using a GPS, generally to an accuracy of within 5 metres. Drill hole and trench locations have been confirmed to <1 metre using a differential GPS.
  • Samples locations have also been verified by plotting locations on the high-resolution Lidar maps
  • Drill core is marked for cutting and cut using an automated diamond saw used by Company staff in Kilmore.
  • Samples are bagged at the core saw and transported to the Bendigo On Site Laboratory for assay.
  • At On Site samples are crushed using a jaw crusher combined with a rotary splitter and a 1 kg split is separated for pulverizing (LM5) and assay.
  • Standard fire assay techniques are used for gold assay on a 30 g charge by experienced staff (used to dealing with high sulfide and stibnite-rich charges). On Site gold method by fire assay code PE01S.
  • Screen fire assay is used to understand gold grain-size distribution where coarse gold is evident.
  • ICP-OES is used to analyse the aqua regia digested pulp for an additional 12 elements (method BM011) and over-range antimony is measured using flame AAS (method known as B050).
  • Soil samples were sieved in the field and an 80-mesh sample bagged and transported to ALS Global laboratories in Brisbane for super-low level gold analysis on a 50 g samples by method ST44 (using aqua regia and ICP-MS).
  • Grab and rock chip samples are generally submitted to On Site Laboratories for standard fire assay and 12 element ICP-OES as described above.
  •  

Drilling techniques

  • Drill type (e.g. core, reverse circulation, open-hole hammer, rotary air blast, auger, Bangka, sonic, etc.) and details (e.g. 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.).
  • HQ or NQ diameter diamond drill core, oriented using Axis Champ orientation tool with the orientation line marked on the base of the drill core by the driller/offsider.
  • A standard 3 metre core barrel has been found to be most effective in both the hard and soft rocks in the project.

Drill sample recovery

  • Method 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 bias may have occurred due to preferential loss/gain of fine/coarse material.
  • Core recoveries were maximised using HQ or NQ diamond drill core with careful control over water pressure to maintain soft-rock integrity and prevent loss of fines from soft drill core. Recoveries are determined on a metre-by-metre basis in the core shed using a tape measure against marked up drill core checking against driller’s core blocks.
  • Plots of grade versus recovery and RQD (described below) show no trends relating to loss of drill core, or fines.

Logging

  • 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.
  • Whether logging is qualitative or quantitative in nature. Core (or costean, channel, etc.) photography.
  • The total length and percentage of the relevant intersections logged.
  • Geotechnical logging of the drill core takes place on racks in the company core shed.
  • Core orientations marked at the drill rig are checked for consistency, and base of core orientation lines are marked on core where two or more orientations match within 10 degrees.
  • Core recoveries are measured for each metre
  • RQD measurements (cumulative quantity of core sticks > 10 cm in a metre) are made on a metre-by-metre basis.
  • Each tray of drill core is photographed (wet and dry) after it is fully marked up for sampling and cutting.
  • The ½ core cutting line is placed approximately 10 degrees above the orientation line so the orientation line is retained in the core tray for future work.
  • Geological logging of drill core includes the following parameters:
  • Rock types, lithology
  • Alteration
  • Structural information (orientations of veins, bedding, fractures using standard alpha-beta measurements from orientation line; or, in the case of un-oriented parts of the core, the alpha angles are measured)
  • Veining (quartz, carbonate, stibnite)
  • Key minerals (visible under hand lens, e.g. gold, stibnite)
  • 100% of drill core is logged for all components described above into the company MX logging database.
  • Logging is fully quantitative, although the description of lithology and alteration relies on visible observations by trained geologists.
  • Each tray of drill core is photographed (wet and dry) after it is fully marked up for sampling and cutting.
  • Logging is considered to be at an appropriate quantitative standard to use in future studies.

Sub-sampling techniques and sample preparation

  • If core, whether cut or sawn and whether quarter, half or all core taken.
  • If non-core, whether riffled, tube sampled, rotary split, etc. and whether sampled wet or dry.
  • For all sample types, the nature, quality and appropriateness of the sample preparation technique.
  • Quality control procedures adopted for all 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 field duplicate/second-half sampling.
  • Whether sample sizes are appropriate to the grain size of the material being sampled.
  • Drill core is typically half-core sampled using an Almonte core saw. The drill core orientation line is retained.
  • Quarter core is used when taking sampling duplicates (termed FDUP in the database).
  • Sampling representivity is maximised by always taking the same side of the drill core (whenever oriented),and consistently drawing a cut line on the core where orientation is not possible. The field technician draws these lines.
  • Sample sizes are maximised for coarse gold by using half core, and using quarter core and half core splits (laboratory duplicates) allows an estimation of nugget effect.
  • In mineralized rock the company uses approximately 10% of ¼ core duplicates, certified reference materials (suitable OREAS materials), laboratory sample duplicates and instrument repeats.
  • In the soil sampling program duplicates were obtained every 20th sample and the laboratory inserted low-level gold standards regularly into the sample flow.

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 make and model, reading times, calibrations factors applied and their derivation, etc.
  • Nature of quality control procedures adopted (e.g. standards, blanks, duplicates, external laboratory checks) and whether acceptable levels of accuracy (i.e. lack of bias) and precision have been established.
  • The fire assay technique for gold used by On Site is a globally recognised method, and over-range follow-ups including gravimetric finish and screen fire assay are standard. Of significance at the On Site laboratory is the presence of fire assay personnel who are experienced in dealing with high sulfide charges (especially those with high stibnite contents) – this substantially reduces the risk of inaccurate reporting in complex sulfide-gold charges.
  • Where screen fire assay is used, this assay will be reported instead of the original fire assay.
  • The ICP-OES technique is a standard analytical technique for assessing elemental concentrations. The digest used (aqua regia) is excellent for the dissolution of sulfides (in this case generally stibnite, pyrite and trace arsenopyrite), but other silicate-hosted elements, in particular vanadium (V), may only be partially dissolved. These silicate-hosted elements are not important in the determination of the quantity of gold, antimony, arsenic or sulphur.
  • A portable XRF has been used in a qualitative manner on drill core to ensure appropriate core samples have been taken (no pXRF data are reported or included in the MX database).
  • Acceptable levels of accuracy and precision have been established using the following methods
  • ¼ duplicates – half core is split into quarters and given separate sample numbers (commonly in mineralized core) – low to medium gold grades indicate strong correlation, dropping as the gold grade increases over 40 g/t Au.
  • Blanks – blanks are inserted after visible gold and in strongly mineralized rocks to confirm that the crushing and pulping are not affected by gold smearing onto the crusher and LM5 swing mill surfaces. Results are excellent, generally below detection limit and a single sample at 0.03 g/t Au.
  • Certified Reference Materials – OREAS CRMs have been used throughout the project including blanks, low (<1 g/t Au), medium (up to 5 g/t Au) and high-grade gold samples (> 5 g/t Au). Results are automatically checked on data import into the MX database to fall within 2 standard deviations of the expected value.
  • Laboratory splits – On Site conducts splits of both coarse crush and pulp duplicates as quality control and reports all data. In particular, high Au samples have the most repeats.
  • Laboratory CRMs – On Site regularly inserts their own CRM materials into the process flow and reports all data
  • Laboratory precision – duplicate measurements of solutions (both Au from fire assay and other elements from the aqua regia digests) are made regularly by the laboratory and reported.
  • Accuracy and precision have been determined carefully by using the sampling and measurement techniques described above during the sampling (accuracy) and laboratory (accuracy and precision) stages of the analysis.
  • Soil sample company duplicates and laboratory certified reference materials all fall within expected ranges.

Verification of sampling and assaying

  • The verification of significant intersections by either independent or alternative company personnel.
  • The use of twinned holes.
  • Documentation of primary data, data entry procedures, data verification, data storage (physical and electronic) protocols.
  • Discuss any adjustment to assay data.
  • The Independent Geologist has visited Sunday Creek drill sites and inspected drill core held at the Kilmore core shed.
  • Visual inspection of drill intersections matches both the geological descriptions in the database and the expected assay data (for example, gold and stibnite visible in drill core is matched by high Au and Sb results in assays).
  • In addition, on receipt of results Company geologists assess the gold, antimony and arsenic results to verify that the intersections returned expected data.
  • The electronic data storage in the MX database is of a high standard. Primary logging data are entered directly by the geologists and field technicians and the assay data are electronically matched against sample number on return from the laboratory.
  • Certified reference materials, ¼ core field duplicates (FDUP), laboratory splits and duplicates and instrument repeats are all recorded in the database.
  • Exports of data include all primary data, from hole SDDSC077B onwards after discussion with SRK Consulting. Prior to this gold was averaged across primary, field and lab duplicates.
  • Adjustments to assay data are recorded by MX, and none are present (or required).
  • Twinned drill holes are not available at this stage of the project.

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.
  • Differential GPS used to locate drill collars, trenches and some workings
  • Standard GPS for some field locations (grab and soils samples), verified against Lidar data.
  • The grid system used throughout is Geocentric datum of Australia 1994; Map Grid Zone 55 (GDA94_Z55), also referred to as ELSG 28355. Reported azimuths also relate to MGA55 (GDA94_Z55).
  • Topographic control is excellent owing to sub 10 cm accuracy from Lidar data.

Data spacing and distribution

  • Data spacing for reporting of Exploration Results.
  • Whether the data spacing and distribution is sufficient 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.
  • The data spacing is suitable for reporting of exploration results – evidence for this is based on the improving predictability of high-grade gold-antimony intersections.
  • At this time, the data spacing and distribution are not sufficient for the reporting of Mineral Resource Estimates. This however may change as knowledge of grade controls increase with future drill programs.
  • Samples have been composited to a 1 g/t AuEq over 2.0 m width for lower grades and 5 g/t AuEq over 1.0 m width for higher grades in table 3. All individual assays above 0.1 g/t AuEq have been reported to two decimal places with no compositing in table 4.

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.
  • If the relationship between the drilling orientation and the orientation of key mineralized structures is considered to have introduced a sampling bias, this should be assessed and reported if material.
  • The true thickness of the mineralized intervals reported are interpreted to be approximately 55-75% of the sampled thickness.
  • Drilling is oriented in an optimum direction when considering the combination of host rock orientation and apparent vein control on gold and antimony grade.
  • The steep nature of some of the veins may give increases in apparent thickness of some intersections, but more drilling is required to quantify.
  • A sampling bias is not evident from the data collected to date (drill holes cut across mineralized structures at a moderate angle).

Sample security

  • The measures taken to ensure sample security.
  • Drill core is delivered to the Kilmore core logging shed by either the drill contractor or company field staff. Samples are marked up and cut by company staff at the Kilmore core shed, in an automated diamond saw and bagged before loaded onto strapped secured pallets and trucked by company staff to Bendigo for submission to the laboratory. There is no evidence in any stage of the process, or in the data for any sample security issues.

Audits or reviews

  • The results of any audits or reviews of sampling techniques and data.
  • Continuous monitoring of CRM results, blanks and duplicates is undertaken by geologists and the company data geologist. Mr Kenneth Bush for SXG has the orientation, logging and assay data.

 

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, native 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.
  • The Sunday Creek Project, previously known as the Clonbinane Project, is covered by the Retention Licence RL 6040 and is surrounded by Exploration Licence EL6163 and Exploration Licence EL7232. All the licences are 100% held by Clonbinane Goldfield Pty Ltd, a wholly owned subsidiary company of Southern Cross Gold Ltd.
  •  

Exploration done by

other parties

  • Acknowledgment and appraisal of exploration by other parties.
  • The Sunday Creek project is a high level orogenic (or epizonal) Fosterville-style deposit. Small scale mining has been undertaken in the project area since the 1880s continuing through to the early 1900s. Historical production occurred with multiple small shafts and alluvial workings across the Clonbinane Goldfield permits. Production of note occurred at the Clonbinane area with total production being reported as 41,000 oz gold at a grade of 33 g/t gold (Leggo and Holdsworth, 2013)
  • Work in and nearby to the Sunday Creek Project area by previous explorers typically focused on finding bulk, shallow deposits. Beadell Resources were the first to drill deeper targets and Southern Cross have continued their work in the Sunday Creek Project area.
  • EL54 - Eastern Prospectors Pty Ltd

Rock chip sampling around Christina, Apollo and Golden Dyke mines.

Rock chip sampling down the Christina mine shaft. Resistivity survey over the Golden Dyke. Five diamond drill holes around Christina, two of which have assays.

  • ELs 872 & 975 - CRA Exploration Pty Ltd

Exploration focused on finding low grade, high tonnage deposits. The tenements were relinquished after the area was found to be prospective but not economic.

Stream sediment samples around the Golden Dyke and Reedy Creek areas. Results were better around the Golden Dyke. 45 dump samples around Golden Dyke old workings showed good correlation between gold, arsenic and antimony.

Soil samples over the Golden Dyke to define boundaries of dyke and mineralization. Two costeans parallel to the Golden Dyke targeting soil anomalies. Costeans since rehabilitated by SXG.

  • ELs 827 & 1520 - BHP Minerals Ltd

Exploration targeting open cut gold mineralization peripheral to SXG tenements.

  • ELs 1534, 1603 & 3129 - Ausminde Holdings Pty Ltd

Targeting shallow, low grade gold. Trenching around the Golden Dyke prospect and results interpreted along with CRAs costeans. 29 RC/Aircore holes totalling 959 m sunk into the Apollo, Rising Sun and Golden Dyke target areas.

  • ELs 4460 & 4987 - Beadell Resources Ltd

ELs 4460 and 4497 were granted to Beadell Resources in November 2007. Beadell successfully drilled 30 RC holes, including second diamond tail holes in the Golden Dyke/Apollo target areas.

  • Both tenements were 100% acquired by Auminco Goldfields Pty Ltd in late 2012 and combined into one tenement EL4987.
  • Nagambie Resources Ltd purchased Auminco Goldfields in July 2014. EL4987 expired late 2015, during which time Nagambie Resources applied for a retention licence (RL6040) covering three square kilometres over the Sunday Creek Project. RL6040 was granted July 2017.
  • Clonbinane Goldfield Pty Ltd was purchased by Mawson Gold Ltd in February 2020.

Mawson drilled 30 holes for 6,928 m and made the first discoveries to depth.

Geology

  • Deposit type, geological setting and style of
  • mineralization.
  • Refer to the description in the main body of the release.

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.
  • 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.
  • Refer to appendices

Data aggregation methods

  • In reporting Exploration Results, weighting averaging techniques, maximum and/or minimum grade truncations (e.g. cutting of high-grades) and cut-off grades are usually Material and should be stated.
  • Where aggregate intercepts incorporate short lengths of high-grade results and longer lengths of low-grade results, the procedure used for such aggregation should be stated and some typical examples of such aggregations should be shown in detail.
  • The assumptions used for any reporting of metal equivalent values should be clearly stated.
  • See “Further Information” and “Metal Equivalent Calculation” in main text of press release.

Relationship

between

mineralization

widths and

intercept lengths

  • These relationships are particularly important in the reporting of Exploration Results.
  • If the geometry of the mineralization 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’).
  • See reporting of true widths in the body of the press release.

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.
  • The results of the diamond drilling are displayed in the figures in the 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 above 0.1 g/t Au have been tabulated in this announcement. The results are considered representative with no intended bias.
  • Core loss, where material, is disclosed in tabulated drill intersections.

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.
  • Preliminary testing was reported in January 11, 2024.  This established the general metallurgical test procedure for samples from the Sunday Creek deposits and demonstrated the basis for confidence in establishing prospects for economic recovery of contained gold and antimony to three separate products:
    • Metallic gold product by gravity recovery
    • Antimony-gold flotation concentrate
    • Pyrite-arsenopyrite-gold flotation concentrate
  • Testing has now been expanded to include samples from additional zones of the mineral deposits and to refine metallurgical processes.  The aim was to improve aspects of antimony concentrate production, maximise gold recovery to a high-grade metallic product, and to further investigate the nature of gold occurrence.
  • The work, conducted by ALS Burnie Laboratories, focused on:
    • Improving selectivity between sulphide minerals in the antimony flotation stage whilst maintaining high overall gold recovery.
    • Further processing of the flotation concentrates, to assess the metallurgical response of contained gold.
    • Mineralogical examination of selected product samples.
  • It was demonstrated that, with appropriate process conditions, high antimony and gold recovery could be maintained whilst rejecting arsenic and iron sulphides in the first flotation stage.  The antimony concentrate produced (~50% Sb, <0.2% As) is deemed to be attractive to the smelter market.
  • Recovery of antimony to concentrate varied with feed type, and ranged from 83% to 93% for the samples tested from the antimony rich zones.
  • Additional metallic gold was recovered from the flotation concentrate by gravity separation.
  • The gold grade of the concentrate is a function of the proportion of feed gold associated with arsenic-iron sulphides, the ratio of gold to antimony in the feed, the gold recovered to the metallic gold product, and the flotation rate of gold in the first flotation stage.
  • High overall gold recovery was achieved with all samples tested.
  • Further Work
    • Additional characterization testing across deposit zones
    • Locked cycle testing to confirm overall recoveries
    • Multi-stage cleaning optimization to maximize concentrate quality
    • Pilot plant evaluation of larger samples
    • Process plant design studies targeting Q1 2027 completion

Further work

  • The nature and scale of planned further work (e.g. 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.
  • The Company has stated it will drill 200,000 m through 2025 to Q1 2027.
  • See diagrams in presentation which highlight current and future drill plans.