Max power’s Lawson 1 well reported not commerically viable.

Max power’s Lawson 1 well reported not commerically viable.

"Preliminary engineering calculations returned calculate two different flow rates as per a) time to fill the tubing volume over 70 mins from perf guns going off; and b) the 15-minute blow down of the tubing volume to the rig tank before bottom water breakthrough. The Rate of a) above worked out to approximately 32.42 mcf/d and the rate of b) above worked out to approximately 151.29 mcf/d.

While by themselves, the natural hydrogen encountered at Lawson is uncommercial, nevertheless the results of this portion of the analytical program provide the first direct and significant subsurface confirmation of hydrogen not only in a MAX Power operated well, but also in Canada. "

Found at https://www.imageevent.org/technical-program > Wednesday, August 19 > "A First Look at a Natural Hydrogen System “In the Wild”: MAX Power’s Lawson Saskatchewan Natural Hydrogen Discovery Speaker"

u/DefiantPermit1767 — 14 hours ago
▲ 54 r/CanadianHiddenGems+3 crossposts

The pathway to production for QIMC : Part 2 - Commerical flow predictions

Written by a member of the QIMC investor community

Mapping commercial flow

Note: The following is meant to be speculative and not confirmed by the company nor any of its representatives.

The following is a prediction of what the commercial flow will be at Bennett Hill, given all the news from QIMC and news from other companies in the industry. This prediction is backed up by research, but I’m not a scientist (nor claim to be) so just keep this in mind. There are a couple of papers linked.

Before asking how much hydrogen, we need to ask ourselves: how is hydrogen generated at Bennett Hill?

There are 3 proposed hydrogen-generation pathways and 3 potential accumulation/production mechanisms that could explain the hydrogen observed at Bennett Hill. The 3 pathways are proposed hydrogen-generation processes, whereas the three mechanisms describe how that generated hydrogen may exist, accumulate, migrate, and ultimately be produced. These pathways are under the term “serpentinization”, which is the umbrella term for the whole category of water-rock reactions that generate hydrogen. Each of pathways will be described and supplemented with Layman's terms:

Pathway 1. Magnetite oxidation — magnetite (Fe₃O₄) reacts with water under heat and pressure, releasing hydrogen as the iron oxidizes from Fe²⁺ to Fe³⁺. This is suggested at Bennett Hill through magnetic susceptibility signatures and explicitly named as one of the three simultaneous pathways. This is the dominant generation pathway and the primary contributor to Peak and repeated high-range readings in DDH-26-04.

Layman's terms: Chemical reaction with water under heat and make lots of hydrogen.

Pathway 2. Amphibole oxidation — iron-bearing amphibole minerals (hornblende, actinolite) undergo similar water-rock oxidation reactions. Also suggested at Bennett Hill through core description — amphibolite-rich intervals are documented in the geological logs from both DDH-26-04 and DDH-26-05. Contributes to the same free-gas generation pool as magnetite, running concurrently in the same rock package.

Layman's terms: More chemical react with more water to make lots of hydrogen.

Pathway 3. Biotite oxidation — iron-bearing biotite mica undergoes hydrothermal oxidation releasing hydrogen. Also hypothesized through core description. Biotite is specifically one of the minerals Richer-Laflèche cited in the IOCG-style alteration documentation — the hydrothermal breccia zones at 176-251m in DDH-26-05 and the equivalent zone in DDH-26-04 both contain biotite-bearing rock.

Layman's terms: Loss of electrons makes lots of Hydrogen.

These 3 pathways help generate the hydrogen, and are all distinct, although related. There are now 3 different mechanisms which come from these pathways to create the flow:

Mechanism 1 — Free gas from the vuggy/fractured zone:
All three generation pathways (magnetite + amphibole + biotite) contribute hydrogen to this mechanism — they're three taps feeding the same pipe. This is gas that has migrated upward from the generation zone, accumulated in the vuggy and brecciated intervals of the crystalline basement rock below the cap rock, and is trapped there by the 390m syenogranite seal above it. The host rock is strongly altered, hematitized, fault-brecciated crystalline rock with increasing vugginess toward depth — the classic IOCG-style hydrothermal alteration setting. The evidence: DDH-26-04's 24.3% peak at 707m, 104 of 284 samples ≥1%, increasing vugginess toward final depth, and the 776-779m core loss/void.

Layman's terms: The 3 pathways feed into fractured zone making free gas. Lots of it. This is the deep tank.

Working production scenario: 350–700 Mcf/d.
This is a speculative range rather than a reservoir-engineering forecast created using a CSIRO analogue study on comparable Precambrian granite as the baseline generation model (found at https://www.sciencedirect.com/science/article/pii/S0009254123003984). The current drilling data demonstrate repeated high-concentration H₂ and, in DDH-26-05, observations consistent with mobile/free gas entering the borehole, but they do not yet provide the permeability, reservoir pressure, effective producing thickness or pressure-drawdown data required to calculate sustainable well deliverability. The range is therefore intended as a scenario informed by geological evidence and industry analogues—not as a demonstrated flow rate.

Mechanism 2 — Dissolved gas exsolution from the artesian brine:
One possible interpretation is that the 617 m artesian water zone contains H₂ dissolved in formation brine, potentially generated through water-rock reactions involving the same iron-bearing minerals. As the pressurized brine rises toward surface and pressure drops, dissolved hydrogen exsolves. Hanley 2020's Type B CaCl₂ brine data (20-31 wt% salinity, 61 bar pressure, 60-80°C) gives 1,000-3,000 mL dissolved H₂ per litre of formation water. This mechanism was suggested qualitatively by the July 20 artesian overflow — water overflowing at the wellhead under its own pressure.
(paper used is Fluid Inclusion Systematics Associated with Epithermal Gold Mineralization, Eastern Cobequid Highlands, Nova Scotia by Hanley, accessible from https://novascotia.ca/natr/meb/pdf/20re02.asp)

Layman's terms: Old water has brine that reacts with iron. overpressured formation allows the brine can flow toward the surface; decreasing pressure allows hydrogen to exsolve from solution.

Prediction: Working production scenario: 200-450 Mcf/d.
This is a speculative range derived using the same Hanley paper. The current drilling data demonstrate the artesian water overflow at 617m, consistent with an overpressured brine system, but do not yet provide direct measurement of dissolved hydrogen concentration in the formation water, water flow rate, or the fraction of dissolved gas that would exsolve under production conditions

Mechanism 3 — Shallow free gas from the 164m shattered fault corridor:
This is gas intercepted in a completely different rock type — competent, thinly-bedded siltstone — at a dramatically shallower depth, in a different structural setting. The siltstone package is described by the QP as having "potential trap geometry," suggesting the gas is trapped locally within the siltstone rather than migrating through it. The cap is the 108m thick graphitic fault breccia above (35-143m), not the syenogranite. The evidence: DDH-26-05's free gas at 164-167m with no water return, ambient air detection, 23.5% peak at 170m, and the distinct "potential trap geometry" language.

Layman's terms: Free gas corridor is good. A shallower tank discovered above Mechansim 1.

Prediction: It’s hard to tell how much this will add. There are 2 scenarios:

Scenario A — Connected to the deep system (same pool, different entry points):
If the 164m zone and the 665-818m zone are draining the same connected reservoir, then Mechanism 3 adds essentially nothing to the aggregate flow estimate — it's the same gas, accessible from two different depths. You just have more options for which depth to complete a pilot well at. This is actually still good news (shallower = cheaper wells = better economics) but it doesn't increase the volume estimate.

Scenario B — Independent, bounded accumulation (separate pool):
If the siltstone package at 143-197m is a genuinely discrete trapped accumulation — sealed above by the graphitic fault breccia (35-143m), and below by something we haven't yet identified — then it's an independent reservoir contributing its own flow rate on top of the deep system. In this case, Mechanism 3 is genuinely additive. Estimating how much it adds is difficult without permeability data, but working from the concentration profile: the shallow zone has 23.5% peak H₂ in a 54m corridor — comparable concentration to the deep zone, but in a thinner, potentially less porous/permeable siltstone package. A reasonable, conservative estimate for an independent shallow zone contribution would be 200-300 Mcf/d.

Overall: If all three mechanisms prove to represent independently productive volumes, the combined scenario would be approximately 750–1,450 Mcf/d per well. For illustrative purposes, let's use 1,000 Mcf/d as a round-number production scenario. These are all meant to be approximate:

1 Mcf of H₂ ≈ 2.4 kg.
So: 1,000 Mcf/d × 2.4 kg ≈ 2,400 kg/day ≈ 2.4 tonnes/day of H₂.
2,400 kg/day × 365 days = 876,000 kg/year
So 1,000 Mcf/d of natural hydrogen ≈ 876,000 kg/year, or ≈ 876 tonnes/year of H₂.

All for one well. This can also scale up.

For reference, Mali generates 5-50 tonnes of hydrogen per year. This comparison is intended to illustrate the potential scale difference between a confirmed geological hydrogen system and the world's only current producing site, not to imply Bennett Hill will achieve this rate.

Are these numbers justified?
We will take a look at Pulsar Helium for this comparison. Note that Pulsar is looking for Helium, so a bit different, but similar settings.

Pulsar Helium's planned liquefaction plant is designed for ~4,000 Mcf/d of total field output with four wells (as far as I know), implying a target of ~1,000 Mcf/d per well. This is my inference from the plant design, not a demonstrated 1,000 Mcf/d per-well flow rate.

The geological similarities with Bennett Hill are similiar: both are rift-hosted, radiogenic Precambrian basement systems; both have a real confirmed cap rock; both show overpressured free gas and both have multiple confirmed gas-bearing wells. The key difference: QIMC has a couple of methods to generate Hydrogen: dry free gas, a separate artesian aqueous phase, and a shallow free gas phase, which are independent production mechanisms in the same structural corridor.

The Pulsar comparison suggests that a ~1,000+ Mcf/d per-well target is not inherently unreasonable as an industry analogue.

What would confirm these estimates?
The key missing data are reservoir pressure, permeability/transmissibility, effective producing thickness, pressure drawdown, and sustained flow testing. A pilot production test should provide the first direct measurement of Bennett Hill's actual deliverability. Until then, the numbers above should be viewed as scenario ranges rather than reserves, resources, or demonstrated production forecasts.

The biggest takeaway:
QIMC's Bennett Hill data support a model involving three proposed generation pathways and three potential production/accumulation mechanisms, with a free-gas phase. This is different from other companies in the industry, such as Gold Hydrogen and HyTerra who have been running into issues with their systems being primarily aqueous (look up flow rates at Ramsay-1, McCoy-1). Pilot testing will ultimately be required to determine the actual flow rates, but for now, investors should be pretty excited.

Bonus:
There is a chance that QIMC finds Helium-3. There was a paper from Dottin et al in 2025 (https://www.science.org/doi/10.1126/sciadv.adr2917)

Which specifically analyzed noble gas isotopes in rocks associated with the same mantle plume system that underlies the CCFZ and found evidence of mantle-derived helium — elevated ³He/⁴He ratios consistent with a mantle source contributing to the fault system's fluid budget. This is precisely the fingerprint that distinguishes mantle/primordial contributions from purely crustal/serpentinization ones. If the CCFZ has genuine mantle-fluid input (which Dottin's paper suggests), then the hydrogen at Bennett Hill could have both a serpentinization component (dominant, near-surface, the three Fe²⁺ oxidation pathways) AND a smaller mantle-degassing component (the primordial contribution, manifesting as anomalously high ³He/⁴He ratios and potentially contributing additional hydrogen from depth).

[Liquid helium density is ~0.125 kg/L. 940 L/hr × 0.125 kg/L = 117.5 kg/hr → 2,820 kg/day of liquid helium. Helium's molar volume at standard conditions gives roughly 5.6 m³ of gas per kg [At 0°C and 1 atm, 1 kg of helium occupies approximately 5.6 m³ as a gas] 2,820 kg/day × 5.6 m³/kg ≈ 15,790 m³/day of pure gaseous He ≈ 557 Mcf/ of pure helium. Using Pulsar's confirmed 14.5% He4 concentration: 557 Mcf/d ÷ 0.145 ≈ ~3,840 Mcf/d of total raw gas needed to feed this plant at its designed output. [This assumes ~100% helium recovery efficiency, which real plants don't achieve. Actual required raw gas intake is likely somewhat higher than 3,840 Mcf/d to account, say around 4,000 Mcf/d. Also no DST to confirm]

reddit.com
u/DefiantPermit1767 — 3 days ago
▲ 79 r/CanadianHiddenGems+4 crossposts

The pathway for QIMC to support hyperscalers with its data centre plans.

This was shared by a member of the investor community. This is theoretical and does not indicate any factual evidence QIMC is involved with companies like Microsoft.

The Opportunity: Data Centres Are Becoming an Energy Problem

Yesterday, the Government of Ontario released its Data Centre Playbook . One of the ideas it emphasizes is BYOP (Bring Your Own Power) essentially requiring a data centre operator to demonstrate that it has secured a dedicated power supply that does not strain the existing grid.

According to my research, Microsoft plans to build data centres in the GTA region of Ontario and the Quebec City region of Quebec. With QIMC’s properties concentrated near the Temiskaming region, the physical distance between these regions is obviously significant.
I also don't imagine Microsoft will build data centres in Northern Ontario toward the Temiskaming region, although that is obviously not confirmed (Microsoft is planning to build a large number of data centres)

[But there is an important possibility here: Ontario’s data centre approval process (including the September 12 consultation deadline) matters because if Ontario’s framework creates incentives for data centres to locate closer to clean power sources rather than simply contracting for power from distant sources, that could organically pull data centre development northward toward where QIMC’s hydrogen actually is.]

QIMC Does Not Necessarily Need to Sell Hydrogen to Microsoft:
If QIMC were to supply Microsoft directly with hydrogen, it would obviously be difficult. It could take years or decades to build the necessary pipeline infrastructure, while trucking hydrogen over long distances would be dangerous, inefficient, and expensive.

So I think the most efficient near-term solution is different:

The grid itself — with QIMC as a power seller rather than a hydrogen seller.
QIMC could sell electricity, converting its geological hydrogen into power on-site through fuel cells or turbines — including GE Vernova’s hydrogen turbines, which John shared on March 5. That electricity could then be fed into Ontario’s or Quebec’s existing grid, allowing the grid to physically deliver the power to Microsoft’s Toronto or Quebec City data centres.

The infrastructure is already there.
Under Ontario’s BYOP framework, Microsoft could theoretically contract for that generation as a dedicated clean energy supply, purchasing the output of specific QIMC generation units through a long-term Power Purchase Agreement (PPA), even if the actual electrons travel through the shared grid. This potentially turns QIMC’s geographic disadvantage into a different kind of advantage: QIMC does not need to physically move hydrogen to the data centre. It needs to convert the hydrogen into electricity where the hydrogen is produced and sell the resulting power into the grid.

What the QIMC-to-Microsoft Model could look like:
The process could be relatively straightforward.

  1. QIMC drills and produces geological hydrogen:
    Rather than compressing, purifying, and shipping that hydrogen to a distant buyer, QIMC installs on-site generation — such as GE Vernova hydrogen turbines or fuel cells — at or near the wellhead.
    Those units convert the hydrogen into electricity locally.

  2. The electricity enters the existing grid:
    [In Ontario] The electricity feeds into Ontario’s existing high-voltage grid at a nearby transmission interconnection point.
    This is where the existing infrastructure becomes particularly important.
    The key line is the Hydro One Northeast transmission system — a 230kV and 115kV network that connects Northern Ontario’s generation assets, historically hydro and now wind, southward toward the GTA load centre.

Kirkland Lake (adjacent to the Timiskaming corridor where QIMC is drilling) already has an existing grid connection point because it historically hosted gold mines with significant power demand. Ontario’s grid has significant spare transmission capacity on the north-south corridor specifically. Northern Ontario’s industrial and mining demand has declined over decades as mines closed or mechanized, while much of the transmission infrastructure built to serve those operations remains.
That means adding a new generation source in the Timiskaming region wouldn't necessarily require building entirely new transmission lines. It might be possible to use existing spare capacity. If so, that dramatically simplifies and accelerates the interconnection process compared with a greenfield transmission project.

  1. Microsoft purchases the power through a PPA:
    Microsoft contracts to buy a specific quantity of the clean, Canadian-sourced power through a PPA, which is a long-term contract specifying price, volume, and term. The grid physically moves the electricity from north to south, while Microsoft books the associated clean-energy attributes (provenance certificates confirming that the power came from geological hydrogen and is zero-carbon at source) against its sustainability commitments. The important distinction is that QIMC does not need to deliver molecules of hydrogen to Microsoft. It can deliver electrons, which move at the speed of light.

Moving on, the economics could become significant. At Ontario’s current industrial electricity rate (roughly $80–100/MWh for contracted clean power, potentially higher under a premium Microsoft PPA for certified clean hydrogen power) the economics begin to become meaningful.
For example:
25 MW continuous × 8,760 hours/year × $90/MWh ≈ ~$19.7 million/year in electricity revenue.
And that is only 25 MW.
The real opportunity is the ability to scale generation as QIMC proves out its hydrogen resource and develops additional wells.

Two Technologies:
There are two primary ways QIMC could convert its hydrogen into electricity:

  1. Fuel Cells:
    Fuel cells use electrochemical conversion.
    Hydrogen and oxygen combine directly to produce electricity, water, and heat, with no combustion at all. There are no moving parts in the core reaction.
    Bloom’s specification sheet already confirmed 52% electrical efficiency (LHV net AC) — meaning approximately 52% of the hydrogen’s energy content comes out as usable electricity, with the remainder available as heat. That heat can potentially be captured through waste-heat recovery, consistent with the Ontario Playbook’s own stated preference. There is also no CO₂ produced because there is no carbon in the fuel chain. The process does consume some parasitic power to operate pumps and controls, but this is already factored into the 52% net figure.
    A possible technology and commercialization pipeline could therefore look like:

Lambton → Altair Nanotechnologies, Ceres Power, Ballard Power Systems → Bloom Energy [for example]

  1. Gas Turbines:
    Gas turbines use thermodynamic combustion. Hydrogen burns with oxygen to produce heat, which drives a turbine, which spins a generator.
    Electrical efficiency is somewhat lower than fuel cells at smaller scales — approximately 35–45%, depending on turbine size and whether it is combined-cycle — but the power output per unit is dramatically higher. That makes turbines much better suited to grid-scale injection. They also produce zero CO₂ because there is no carbon in the hydrogen. The only combustion byproduct is water vapour. If the waste heat is captured through combined heat and power (CHP), overall energy utilization can reach 70–90%, making it one of the most efficient power-generation methods available.
    A possible technology and commercialization pipeline could therefore look like:

Lambton → NovaLT → 7HA (full commercial development, utility-scale, 10–20 wells, Microsoft-scale demand) [for example]

So the turbine route is simpler at larger scale, while the fuel-cell route requires more surface processing but generates cleaner, higher-efficiency electricity at smaller scale.

The Lambton College H2-RE DCPS system fits naturally into this strategy as a smaller-scale version of the same logic.
The Lambton system (modular, hydrogen-fuelled, 15–25 kW per unit) is explicitly designed for edge and remote deployment.
That makes it potentially valuable as the first step in demonstrating the broader QIMC model:
Produce geological hydrogen → convert it to electricity locally → deploy that electricity where it is needed.
The scale simply changes.

The same idea also works in Nova Scotia.
The Maritime Electricity Cooperation MOU was designed specifically to enable cross-border clean-power flows between Nova Scotia, New Brunswick, Prince Edward Island, and eventually New England. That means a QIMC hydrogen-to-power facility at Bennett Hill could potentially sell into a market that extends well beyond Nova Scotia’s own modest grid. And this is where the GE Vernova connection becomes particularly interesting.

GE Vernova’s global headquarters is in Cambridge, Massachusetts — right next to Boston, directly in the Dracut/New England demand corridor that the M&NP pipeline terminates at and that the June 15 NR explicitly named as a target market, “encompassing markets in New England, New York, and beyond.”
In other words, the same geography that QIMC has identified as a potential hydrogen market is also home to GE Vernova’s global headquarters.
That is not necessarily a coincidence, but it is certainly a relationship worth exploring.

The Bigger Picture:
If GE Vernova is evaluating geological hydrogen as a future fuel for its turbine fleet, QIMC’s Bennett Hill project — described as the closest confirmed geological hydrogen source to New England and producing the cleanest gas in the sector becomes a potentially compelling candidate for a reference project.

QIMC does not have to become a hydrogen transportation company.
It does not necessarily need to build pipelines across provinces or truck hydrogen hundreds of kilometres to distant customers.
Instead, QIMC could become a clean-power producer located at the source of geological hydrogen.
The model is simple:
Geological hydrogen → local generation → electricity → existing grid → hyperscale demand.
Microsoft and other hyperscalers could ultimately become the customers.
And Bennett Hill could potentially open a second market through the Maritime grid and the Northeast U.S.
The strategic opportunity, therefore, may not be about figuring out how to get QIMC’s hydrogen to Microsoft.
It may be about making QIMC’s hydrogen into the power that Microsoft needs.

Obviously all speculative, formatted using AI because I'm too lazy to write it all out

reddit.com
u/DefiantPermit1767 — 4 days ago

Primary Hydrogen is preparing to put a drill into its Wicheeda North REE Project for the first time:

Primary Hydrogen is preparing to put a drill into its Wicheeda North REE Project for the first time:

The company has laid out a fully funded and permitted 2026 exploration program in British Columbia, culminating in approximately 1,500 metres of maiden drilling this fall.

Two high-priority REE anomaly clusters identified during the 2025 field season are currently untested by drilling.

But Primary isn't sending the rig in immediately.

First, the company plans to complete additional soil geochemistry and an airborne radiometric survey, integrating those results with LiDAR, historical geophysics and its existing exploration data to refine the strongest targets before selecting drill collars.

There is also considerable flexibility beyond this year's campaign.

Primary already holds a five-year permit covering up to 70 drill sites, giving it a pathway for successive exploration programs through 2030 without another Notice of Work application.

And importantly for the near-term program, the company says the work is already funded from its previous critical minerals flow-through financing.

Wicheeda North covers 2,138 hectares within British Columbia's Rocky Mountain Trench and sits approximately 5 km northwest of the Wicheeda rare earth deposit.

After a year of building the geological picture from the surface, 2026 is set to deliver the first test of what lies beneath Wicheeda North.

reddit.com
u/DefiantPermit1767 — 6 days ago

Prominence Energy is moving another step closer to drilling for helium and hydrogen in South Australia:

The company has completed gravity and magnetic inversion and interpretation across its Eyre and Northern Hinge projects, strengthening its understanding of the structures and geological architecture beneath both areas.

The work confirmed much of Prominence’s existing geological interpretation, strengthened several previously identified leads and generated additional targets for assessment.

Now the focus begins shifting toward resource assessment and drill preparation.

An independent Prospective Resources Review for Eyre is targeted for August, followed by a similar review for Northern Hinge in September.

Eyre already combines several interesting exploration signals, including field-confirmed helium, natural hydrogen and methane anomalies, laboratory-confirmed elevated helium and hydrogen in soil gas, satellite signatures and geophysical evidence.

Prominence then plans to move into updated drilling engineering and cost estimates alongside a farm-out process in October, followed by detailed well design and planning ahead of a targeted mid-2027 multi-well drilling campaign.

The preliminary drilling economics are also worth watching: Prominence estimates that around A$5 million could potentially fund three exploration wells, or two wells plus additional seismic, subject to updated engineering.

u/DefiantPermit1767 — 6 days ago
▲ 52 r/NaturalHydrogenStocks+1 crossposts

QIMC has reported another major step forward at Bennett Hill in Nova Scotia: Free Flowing Gas

The first approximately 300 metres of DDH-26-05 have returned hydrogen concentrations of up to 23.5% H₂.

That is significant because the company’s previous record hole, DDH-26-04, reached 24.3% H₂ at 707 metres.

This time, QIMC has come close to matching that peak at less than half the depth.

And the result is not limited to a single reading.

The company has outlined an approximately 54-metre corridor of sustained percent-level hydrogen between 143 and 197 metres, including:

• 20.8% H₂ at 158 m
• 23.5% H₂ at 170 m
• 17.6% H₂ at 176 m
• 16.0% H₂ at 179 m

QIMC also reported drilling observations consistent with free gas entering the borehole around 164-167 metres, directly between the two strongest hydrogen readings in the section.

Further down-hole, another double-digit interval returned 13.9% H₂ around 263 metres.

Around 74% of valid readings in DDH-26-05 so far are at or above 1% hydrogen, while methane has remained at zero.

The hole is still drilling and is planned to reach approximately 900 metres.

At this stage, the key takeaway is that Bennett Hill is continuing to produce high hydrogen concentrations across multiple intervals and at shallower depths than previously seen.

u/DefiantPermit1767 — 8 days ago
▲ 52 r/QIMC_QIMCF_HYDROGEN+1 crossposts

QIMC Live X summary July 22 2026

Key points:

• Proven Hydrogen Consistency: QIMC has encountered percentage-level hydrogen across two distinct drill areas located 15 km apart within Nova Scotia's Cobequid-Chedabucto structural corridor.

• Exceptionally Clean Gas: Across all 4 Advocate holes, gas samples demonstrate a hydrogen-dominant signature with near-zero methane (~0%) and extremely low carbon dioxide (≤0.2%).

• Clear Pathway to Production: Transitioning from geological discovery to pilot plant characterization, lab petrophysics, deep geophysics, 2D seismic, and evaluating on-site electrical power generation.

-

Instead of assuming hydrogen must be compressed or transported over long distances.

We are evaluating how it could be used near site

Potential for powering future uses and project infrastructure, local industrial operations, grid connections and clean power for energy intense users.

Looking at Fuel cells, generators and turbines.

We are going to be updating the market on this aswell as regional development

Onsite generation creates a direct connection between the natural hydrogen system and its end user.

——

Here is a detailed summary of today's X Spaces broadcast hosted by John Karagiannidis, President and CEO of Qi Materials Corporation:

Executive Summary and Key Takeaways

• Milestone Drill Hole (DDH-26-04 - Bennett Hill): Hole 4 (DDH-26-04) yielded the strongest results to date, transforming QIMC’s natural hydrogen thesis from an isolated anomaly into a district/regional-scale model.

• Proven Hydrogen Consistency: QIMC has encountered percentage-level hydrogen across two distinct drill areas located 15 km apart within Nova Scotia's Cobequid-Chedabucto structural corridor.

• Exceptionally Clean Gas: Across all 4 Advocate holes, gas samples demonstrate a hydrogen-dominant signature with near-zero methane (~0%) and extremely low carbon dioxide (≤0.2%).

• Clear Pathway to Production: Transitioning from geological discovery to pilot plant characterization, lab petrophysics, deep geophysics, 2D seismic, and evaluating on-site electrical power generation.

Technical Drill Results: Hole 4 (Bennett Hill)

• Depth and Sampling: Drilled to a final depth of 818 metres; 284 mud-gas samples were collected.

• Hydrogen Highs:

- Peak Result: 24.3% H2​ at 707 metres (highest reading in the 2026 program).

- Key High-Grade Intervals: Included 19.2% at 674 m, 18.1% at 671 m, 12.4% at 665 m, and 11.9% at 287 m.

- Grade Distribution: 104 samples ≥1%, 23 samples ≥5%, and 10 samples ≥10% H2​.

• Open at Depth: Elevated H2​ levels continued near the bottom of the hole (8.3% at 776 m; 11.4% at 779 m). The hole ended in hydrogen without establishing a lower limit.

Geological Model and Structural Insights

• Breccia and Fracture Control: Statistical redundancy analysis confirms a direct link between hydrogen concentration and structural brecciation—the closer to a breccia zone, the higher the hydrogen gas reading.

• Open Void / High-Grade Link: Near-total core loss (~20 cm recovered over 3 m; 0% RQD) between 776 m and 779 m suggests potential open voids bracketing high-grade H2​ readings (8.3% and 11.4%).

• Seal vs. Reservoir Dynamics:

- Cap / Seal: A massive, competent granitic/syenogranite interval (~250 m to 640 m) acts as a potential ceiling.

- Reservoir / Alteration (IOCG Analogy): Below ~ 665–690 m, pervasive brecciation, hematitization, deformation, and vuggy porosity mirror Iron Oxide Copper Gold (IOCG)-style hydrothermal alteration, providing the "geological plumbing" for H2​ migration.

Exploration Methodology and Workflow

QIMC utilizes a 5-step repeatable workflow:

  1. Regional Structural Targeting (R2G2 Model): Mapping regional faults (e.g., Cobequid-Chedabucto fault zone).

  2. Soil Gas Geochemistry: Grid sampling (100 m to 25 m) to identify degassing surface anomalies.

  3. Geophysics: Mapping subsurface faults and altered zones underneath surface anomalies.

  4. Target Drilling: Directly testing integrated structural/geophysical targets.

  5. Data Refinement and Pilot Modeling: Feeding drill data into 2D seismic, deep geophysics, and pilot characterization well planning.

Multi-Jurisdictional Project Updates

  1. Nova Scotia (Advocate Area) — Primary Focus

• Hole 5: Targeting narrower, verticalized gas pathways and extreme permeability contrasts in deformed argillites at Bennett Hill.

• Field Operations: 3 First Nations field crews (partnered with HHE / First Atlas Resources) conducting expanded soil-gas programs throughout August and September.

• Power Generation: Evaluating on-site power generation (fuel cells/turbines) using clean hydrogen to bypass long-distance transport costs.

  1. Quebec (St. Edouard and Favre)

• Cornerstone asset with a 5,000 m permitted drill program and 8 active monitoring wells.

• Planned pilot projects at St. Edouard and Favre; testing shallow vs. deep structural continuity.

• Geological natural hydrogen recognized in Quebec’s Energy Strategy.

  1. Ontario (Timiskaming Corridor)

• Partnered with DiagnaMed Holdings Corporation; expanded soil-gas corridor from 11 km to 15 km.

• Integrating soil gas, radon/thoron measurements, and geophysics to prepare for Fall 2026 drilling.

• Partnership with Témiscamingue First Nation (TFN); plans to establish a regional office on TFN land.

  1. Minnesota (Orvian Affiliate)

• Provides exposure to major US geological settings under state DNR registrations.

• Progressing through data compilation, field validation, and staged exploratory boring.

u/DefiantPermit1767 — 28 days ago
▲ 64 r/QIMC_QIMCF_HYDROGEN+1 crossposts

QIMC killed it at National Assembly today!

National Assembly parliamentary commission on Projet de Loi 17 seemed a great success today. Let’s see if the bill goes in next week! Thoughts?

reddit.com
u/CaptainHavo — 3 months ago

Qimc CEO with Premier Tim Houston at State of the Province address - Halifax Convention Centre

Today John K our CEO had the privilege of attending Premier Tim Houston's State of the Province address at the Halifax Convention Centre and the opportunity to meet the Premier afterward. A few quick takeaways:

⚡ Nova Scotia is open for business. The Premier and his team continue to send a clear, unambiguous signal: the province is moving forward with a proactive, growth-oriented approach to its economy and natural resources.

⛰️ Resource development is a real priority. From critical minerals to clean energy, Nova Scotia is positioning itself as a reliable, ethical and sustainable supplier and the federal–provincial alignment on clean energy keeps strengthening.

🔬 QIMC is exactly where we need to be. Our work in the Cumberland Basin — the West Advocate drilling program, our dominant claim position across the corridor, and the continued progress of our exploration and development model fits squarely within this provincial vision. We chose Nova Scotia for the geology and the leadership. Today reinforced that decision.

Thank you to Premier Houston and his team for the warm welcome, and to everyone at the event for the productive conversations. Very excited for what's next.

u/DefiantPermit1767 — 3 months ago

Looking to donate medical supplies.

Hello, I am looking for a place to donate medical supplies. I have Lots of sealed bandages and other products that were used for home care of a cancer patient.

Sew on fire was recommend to me but they seem to be closed down.

Any recommendations ? Thanks.

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u/DefiantPermit1767 — 3 months ago

Updated QIMC timeline

May

Completion of hole 2 (900 m)
• More results from holes 1-2-3
June
• NS grant/Government support ($3-5M)
• Drilling of holes 4 and 5 at Bennett Hill
• Results from extended field surveys in Bennett Hill
• Permit to drill in the Little Forks-Springhill area (looking both for active source and reservoirs)
• Start of the exploration work in Minnesota
• U.S. expansion in Michigan and Wisconsin
July
• Adoption of new gas regulation in Quebec
• Results from holes 4-5
• News from Lambton College project
• Permit to drill in the New Salem area (natural gas and helium)

August
• Evaluation of the commercial potential of the resource based on holes 1-2-3-4-5 results
• Announcement of deeper drilling to get closer to the active system (more pressure and flow)
• Partnership announcement with a strategic player (end user)

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u/DefiantPermit1767 — 3 months ago