Conduit Metals’ cover photo
Conduit Metals

Conduit Metals

Mining

Unlocking hidden copper in eastern North America.

About us

The Flagship "Hidden Hill" Project includes a collection of historical mined adits including up to 15% copper located in the industrial corridor of Nova Scotia (numerous mines, quarries, natural gas plants, windmills, natural hydrogen discoveries and more), just south of New Glasgow and the various quarries and old coal mines. The Project occurs at a dilational cross fault to the massive Chedabucto Fault Zone in NS known to host numerous IOCG targets that appear to be deeper eroded roots, where a large 30+ sq. km alteration zone is apparent beneath a transitional basin sedimentary unit at depth (grades reported in surface breccias and starting at 74m from very limited drilling). This opportunity presents a potential for a Tier 1 discovery with similarities to Olympic Dam. Unlike heavy gravity overlapping magnetic anomalies for the magnetite roots, a transition zone appears to be well defined into a sharp gravity contrast low with traceable hydrothermal structures in regional geophysics and anomalous Cu, Co, Ni in geochemistry to date. Proposed work includes running conductivity geophysics to highlight potential ore zones across a greater 18km trend of this deep crustal fault where it is obvious extreme amounts of fluid has moved but covered from traditional prospecting and exploration near surface over the years. Utilizing a layered AI approach of overlapping signatures to quickly de-risk deeper drill targets with confidence.

Website
www.conduitmetals.ca
Industry
Mining
Company size
1 employee
Type
Privately Held

Updates

  • Solterra is proud to reaffirm ongoing collaboration with Dr. Donnelly Archibald and his research team at St. Francis Xavier University (StFX). From foundational work to new regional targets, this partnership continues to drive exploration success across Nova Scotia: Previously at West Barney’s River Rare Earth Elements (REE): Academic collaboration proved essential in unravelling complex magmatic versus hydrothermal systems. Utilizing advanced petrological and spectroscopic tools, Dr. Archibald’s team resolved primary magmatic phases (e.g., allanite, monazite) from secondary alteration, directly linking REE enrichment to regional A-type granitic events and steering exploration toward high-priority hydrothermal breccia corridors. Conduit Metals Pictou Copper-Cobalt-REE Project: Building on that success, ongoing research focuses on de-risking large-scale basin-margin polymetallic and IOCG-style targets at depth. Through XRD and Raman spectroscopy mineral mapping, Dr. Archibald’s lab identifies cryptic alteration assemblages and clarifies whether mineralization stems from deep Devono-Carboniferous granitic magmatism along the Cobequid-Chedabucto Fault Zone or regional fluid circulation. Training High-Quality Personnel (HQP): Beyond advancing geological models, this partnership provides StFX undergraduate and graduate students with direct industry integration, hands-on geochemical training, and applied economic geology experience. A sincere thank you to Dr. Donnelly Archibald and the student researchers at StFX for their dedication to advancing the science behind Canada’s critical mineral supply chain. #CriticalMinerals #EconomicGeology #NovaScotia #StFX #MiningExploration #RareEarths #Copper #Cobalt #Geosciences #AppliedResearch

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    Solterra is proud to reaffirm ongoing collaboration with Dr. Donnelly Archibald and his research team at St. Francis Xavier University (StFX). From foundational work to new regional targets, this partnership continues to drive exploration success across Nova Scotia: Previously at West Barney’s River Rare Earth Elements (REE): Academic collaboration proved essential in unravelling complex magmatic versus hydrothermal systems. Utilizing advanced petrological and spectroscopic tools, Dr. Archibald’s team resolved primary magmatic phases (e.g., allanite, monazite) from secondary alteration, directly linking REE enrichment to regional A-type granitic events and steering exploration toward high-priority hydrothermal breccia corridors. Conduit Metals Pictou Copper-Cobalt-REE Project: Building on that success, ongoing research focuses on de-risking large-scale basin-margin polymetallic and IOCG-style targets at depth. Through XRD and Raman spectroscopy mineral mapping, Dr. Archibald’s lab identifies cryptic alteration assemblages and clarifies whether mineralization stems from deep Devono-Carboniferous granitic magmatism along the Cobequid-Chedabucto Fault Zone or regional fluid circulation. Training High-Quality Personnel (HQP): Beyond advancing geological models, this partnership provides StFX undergraduate and graduate students with direct industry integration, hands-on geochemical training, and applied economic geology experience. A sincere thank you to Dr. Donnelly Archibald and the student researchers at StFX for their dedication to advancing the science behind Canada’s critical mineral supply chain. #CriticalMinerals #EconomicGeology #NovaScotia #StFX #MiningExploration #RareEarths #Copper #Cobalt #Geosciences #AppliedResearch

  • IOCG Copper deposits in eastern and Atlantic Canada won't require completely brand-new macro supply chain because the backbone of ports, rail, power, and civil engineering is already available. However, you cannot rely on existing brownfield mills without radical modification. The winning strategy for an Atlantic Canadian IOCG would require building a customized mine-site concentrator (Magnetic Separation + Chalcopyrite Flotation) to drop the weight of the ore by 70–80%, followed by leveraging the existing rail and port network to plug directly into the established Quebec-Ontario or European metallurgical smelting pipelines. #copper #cobalt #rareearths #criticalminerals #port #rail #belledune #newbrunswick #novascotia

  • The Conduit Metals Flagship project in Pictou County, Nova Scotia, is shaping up to be a textbook target for a Metasomatic Iron-Alkali-Calcic (MIAC) or Iron Oxide-Copper-Gold (IOCG) mineral system. Applying the concept of a "Tectonic Clock"—where episodic fault movements open transient pathways for deep-seated hydrothermal fluids—the Cobequid-Chedabucto Fault Zone (CCFZ) represents an ideal crustal-scale plumbing system. While drilling has not yet pierced the underlying Proterozoic basement, the physical and chemical indicators in the overlying Carboniferous strata reveal a highly active, deep-rooted structural engine. A prime geophysic fingerprint is a large gravity low crossed by a prominent magnetic trend that suffers intense, localized magnetic destruction near a major dilatational fault zone. In an IOCG model, these deep gravity lows often signify buried Devono-Carboniferous A-type granitic plutons that drove the district's thermal gradients. The striking magnetic dead zone demonstrates that high-temperature, oxidized hydrothermal fluids aggressively breached this structural jog, altering primary magnetite into hematite and iron-carbonates (siderite-ankerite), leaving a classic alteration footprint behind. The upper Carboniferous stratigraphy acts as the visual "exhaust system" for this deeper mineralizing cell. The presence of strong alteration haloes, trace disseminated copper, and historically mined breccias at the surface confirm that pressurized fluid expulsion successfully utilized these structural conduits. Rather than random anomalies, these surface expressions are the direct upward migration pathways of a potential large-scale magmatic-hydrothermal system that remains untested at depth. The exploration upside expands rapidly when tracing these transient flows laterally to the east. As these deep-seated, oxidized fluids escaped the main fault corridors, they encountered two exceptional chemical traps: the reactive limestone/evaporite boundaries of the Windsor Group contact and the organic-rich, reducing environments approaching the Stellarton coal fields. This setup mirrors world-class analog systems where metal-bearing fluids migrate out of structural conduits and interact with basinal organic matter or bitumen to precipitate high-grade, stratabound copper-sulfide deposits. As we vector toward a Phase 1 drill program, this offers a compelling multi-tier exploration play. Predictive AI/ML target mapping will help point to dual high-priority objectives: testing the deep, magmatically destructive core of the gravity low to locate the primary feeder pipe, and stepping out laterally to target high-grade stratabound "mantos" where fluid pathways collide with regional carbonaceous traps. The tectonic clock is ticking on a classic Nova Scotian mineral system. #Geology #MiningExploration #IOCG #CriticalMinerals #NovaScotia #MineralExploration #copper #cobalt #rareearths

  • Since the Proterozoic, massive amounts of heated fluids have been pumped across the Chedabucto Fault Zone with widespread alteration and metals. At the Lansdowne, New Lairg and surrounding project area, there is a drop and covering of carboniferous sediments of the Mabou group, a transitional basin setting. These sediments still show strong alteration present across the project area, 30 km overlying a regional low resolution gravity low, a potential underlying magmatic source (the stove top) while breccias with historical high grade copper is the steam from the pot, mined by hand was consistent and ongoing even then. The continued evidence from thermal vectoring even in surrounded being coal basins, abundance of salt source for IOCG systems, numerous fault and conduit potential, traps, widespread alteration and dissemination, lack of historical systematics exploration, geophysics and cover preventing traditional prospecting, makes this a prime location for a Tier 1, hidden and overlooked copper cobalt IOCG district. #criticalminerals #copper #cobalt #rareearths

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  • The conventional bias that the 300-kilometer Cobequid-Chedabucto Fault Zone (CCFZ) lacks major Iron Oxide-Copper-Gold (IOCG) potential due to its younger, Devono-Carboniferous age is soundly disproven by empirical data. Academic and governmental research led by institutions like the Nova Scotia DNRR and researchers such as Dr. Daniel Kontak anf Trevor MacHattie confirms that the CCFZ hosted a continental-scale, mantle-tapped magmatic-hydrothermal engine. This system matches the precise tectonic and chemical conditions found in world-class, younger IOCG systems globally, such as in the Central Andes. A key pillar is the direct genetic link between late Paleozoic mafic magmatism and regional hydrothermal alteration. Studies on local intrusions, including the College Grant pluton and associated albitite dykes, demonstrate that these syn-tectonic gabbros did not just provide a localized heat source; they actively exsolved highly alkaline, iron-rich fluids directly into the fault corridors. Field evidence, such as massive specular hematite within the Marshdale gabbro, underscores that these mafic bodies were active drivers of widespread iron metasomatism. Fluid inclusion and stable isotope microchemistry provide the smoking gun for a salt-catalyzed exploration model. Microthermometric analysis of quartz-carbonate-sulfide veins along the fault zone reveals highly complex, hypersaline brines reaching up to 28 wt. % NaCl equivalent, with trapping temperatures exceeding 375°C. The stable isotope data reveals that these intense, metal-scavenging fluids heavily interacted with the sulfate and organic-bearing horizons of the Lower Carboniferous Windsor Group evaporites, which provided an inexhaustible source of chlorine and sodium ligands. Furthermore, the fluid inclusions preserve evidence of rapid, cyclic pressure drops from supralithostatic conditions (~4–5 kbars) down to 2 kbars along the main fault corridors. This sudden decompression triggered rapid fluid unmixing (boiling), acting as the primary chemical mechanism required to drop massive iron and copper out of solution into structural traps. Geochronological data tightly constrains these mineralizing events to approximately 320 Ma, matching the timing of regional Carboniferous basin development and salt tectonics. This structural and chemical framework positions the Lansdowne and New Lairg areas as premier, strategic exploration targets. Unlike the deeply eroded igneous cores of the western highlands, this sector represents a localized structural depression where the upper Carboniferous Mabou Group acts as a sedimentary "lid." This sequence preserves the underlying hydrothermal pathways and prevents the venting of fluids. By focusing exploration on these blind settings where the Mabou cover conceals dense gravity, which was never done, and magnetic anomalies, the model shifts from tracing narrow historical veins to targeting a fully preserved, salt-catalyzed Phanerozoic IOCG system.

  • The Lansdowne and New Lairg mineral occurrences in Pictou County, Nova Scotia, represent one of the region’s cleanest examples of the Phanerozoic IOCG (Iron Oxide-Copper-Gold) deposit model. Historically worked around the turn of the 20th century as a localized copper play, shipping several hundred tons of ore to a smelter in Pictou. Modern analysis has reinterpreted this system as a series of genetically related magmatic-hydrothermal and basinal-brine events structurally controlled by the regional Cobequid-Chedabucto Fault Zone. The defining geological feature of the Lansdowne and New Lairg area is the pervasive structural deformation and intense hydrothermal brecciation found along the stratigraphic interfaces of the Late Devonian to Carboniferous sequences. Specifically, the contact zones between the highly soluble, evaporite-bearing Windsor Group and the overlying siliciclastic Mabou Group served as ground zero for massive fluid movement. The mobilization and halokinetic migration (subsurface movement) of the underlying Windsor salt beds triggered widespread mechanical instability in the stiffer, brittle cap rocks above. As the salt evacuated, dissolved, or diapirically forced its way upward, it generated extensive fracturing and shattered the country rock, developing complex breccias and potentially very large collapsing mega-breccia pipes. These intensely fractured zones acted as low-pressure structural sinks, creating open, high-permeability conduits. Highly saline, chlorine-rich basinal brines derived from the dissolving Windsor evaporites flooded these breccias, leaching iron and copper out of the regional plumbing system and ultimately precipitating the heavy siderite, specular hematite, and chalcopyrite mineralization that characterizes the New Lairg and Lansdowne footprints. Whether a source intrusion, a massive alteration breccia pipe, or mineralized underlying sediments, updated gravity (which was never done on this particular area), with IP will surely generate drill targets. #copper #cobalt #gold #rareearths #salt #criticalminerals #mineralexploration #mining

  • 1. Multi-Element Geochemistry The primary limitation of Londonderry and, to a lesser extent, Copper Lake, is their tighter, more restricted mineralogical footprints. Londonderry: Historically a massive iron producer (over 2 million tons of ore), Londonderry is overwhelmingly dominated by a massive iron-carbonate system (ankerite, siderite, specular hematite, and limonite/goethite). While it represents a textbook iron-oxide endmember of the IOCG spectrum, it is notoriously lean on the core "G" and "C" (gold and copper) components required for a high-margin modern discovery. Copper Lake: While it boasts excellent copper grades historically (fissure veins up to 5-11% Cu hosted in Devonian slates), it functions primarily as a localized copper-siderite vein system. Conduit Metals main projects Lansdowne / New Lairg: This area strikes a highly prospective middle ground. Historical assays and modern work demonstrate a true polymetallic signature, yielding Copper + Gold + Silver associated with structural breccias. The presence of documented gold and silver values alongside copper indicates a more chemically evolved or multi-phased hydrothermal plumbing system capable of precipitating high-value precious metals alongside base metals. 2. Structural Complexity & Splays vs. the Main Fault In IOCG and related fault-hosted systems, the main structural trunk of a crustal fault (like the core CCFZ) is often too tightly constrained, tight, or heavily sheared to host massive, open-space breccia bodies. The real plumbing action happens where the fault splays, bends, or steps off. Londonderry sits directly along a relatively linear, tightly constrained segment of the southern Cobequid margins. Conduit Metals Lansdowne and New Lairg sit in a highly complex structural knot in Pictou County. Here, the fault system interacts with localized sub-basins, generating structural splays, dilational jogs, and secondary high-angle structures. This structural architecture creates the structural "room" (dilation zones) necessary for large-scale hydrothermal fluid flow, wall-rock alteration, and the development of wide breccia pipelines rather than just narrow fissure veins. 3. Preservation and Depth Levels The level of erosion along the CCFZ varies from west to east. Londonderry represents a deeply eroded, exhumed system where the surficial, supergene-enriched iron caps were mined out down to the deep-seated iron-carbonate roots. Lansdowne / New Lairg appears to represent a higher, better-preserved crustal level within the hydrothermal system. The mineralization is hosted within highly altered volcanic and sedimentary units, which are excellent reactive host rocks for widespread replacement style mineralization, rather than being restricted to narrow fracture fillings. Solterra Bathurst Rare Metals Beckwith Integrated Energy Project. #copper #gold #cobalt #rareearths #criticalminerals #mineralexploration #mining #novascotia #newbrunswick

  • "Hidden Hill represents a rare opportunity in mineral exploration: a district-scale, high-grade IOCG target in a proven structural corridor that has hardly seen a drill bit. Computational and continued field legwork is ongoing to eliminate the guesswork, with a plan for immediate geophysics to quickly get drills in the ground—looking for the right capital partner to unlock the system." #copper #cobalt #rareearths #criticalminerals #AI #investment

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