Technology brief
What this platform addresses
Helium is formed deep inside the Earth over millions of years as a byproduct of the radioactive decay of uranium and thorium.
Crystallization
Helium is formed deep inside the Earth over millions of years as a byproduct of the radioactive decay of uranium and thorium.
Technology brief
Helium is formed deep inside the Earth over millions of years as a byproduct of the radioactive decay of uranium and thorium.
The challenge
ARBOK solution
Helium is formed deep inside the Earth over millions of years as a byproduct of the radioactive decay of uranium and thorium. It does not burn, does not react, has no smell or color. It is not manufactured — it is captured as a byproduct of natural gas extraction, and once released into the atmosphere it is gone forever. The global market is approximately 200 million m³ per year, worth $2.5–3 billion — modest by energy-industry standards, but critical: MRI machines, quantum computers, rocket engines and semiconductor manufacturing cannot function without it, and there are no substitutes.
The structural problem is concentration: for three decades the market depended on two or three large sources. On March 2, 2026 a strike on the Ras Laffan terminal in Qatar removed approximately 33% of global supply, with expert recovery estimates of at least 3–5 years; the price moved from $17/m³ EXW before the crisis to over $70 on the spot market. Arbok-HE addresses this by making wellhead extraction viable at concentrations far below the classical 0.3% threshold.
> Core technology and architecture: see ARBOK-VC (Vacuum Cracking). This entry covers the helium-specific feedstock, mechanism, market and economics. A separate platform entry exists as ARBOK-HE.
Arbok-HE is a gas separation module based on Arbok Vacuum Cracking. Separation is phase separation through the physics of vacuum — no membranes, no catalysts, no reagents, no consumables. The module runs at deep vacuum and at ambient temperature — no heat is supplied and no process temperature setpoint is defined; the 20–30 °C figure in the source reflects the ambient conditions at the sites, not a process window or setpoint. Specific energy consumption is 2–3 kWh per ton of processed gas stream, with up to 98% energy recuperation.
Helium is extracted at the wellhead rather than at a central plant for three reasons given in the source: (1) helium molecules are so small they seep through any seal — flanges, valves, welded joints — so every kilometer of pipeline means losses and concentration at the plant may fall below the viability threshold; (2) at 0.01–0.1% concentration, building a pipeline to a central plant makes no economic sense; (3) helium does not compete with the gas — it is inert, does not burn and does not reduce the calorific value of the stream, so the gas keeps flowing through the pipe.
Arbok-HE operates in tandem with the cooling module Arbok-CrioJet. The base configuration provides deep cryogenic cooling. Extending the cooling further inside the unit is potentially possible; this requires additional systems and in turn enables complete separation of all components, including nitrogen.
Limits stated in the source: the unit is not a finished off-the-shelf system — it is a concept of integrating proven solutions around a specific project, and development is conducted for a specific partner. The claim that the US could substantially increase its 42% share is explicitly described in the source as an assessment of potential, not a promise. Projects of this scale exist only in a B2G format or through national oil and gas companies as strategic partners.
Market and application
Global helium market approximately 200 million m³ per year, worth $2.5–3 billion. Supply structure before the 2026 crisis: United States ~42% of global output; Qatar 33% of global exports; Algeria, Russia (Eastern Siberia), Australia as smaller producers; Tanzania (Rukwa Basin) a major potential player with concentrations potentially up to 10% but no industrial production.
The March 2, 2026 strike on Ras Laffan removed ~33% of global supply, with recovery estimated at a minimum of 3–5 years, and moved the price from $17/m³ EXW to over $70 spot. If Arbok-HE enters the market, the structure of global production changes: deposits from 0.01% concentration become viable, and there are many times more of them than what is developed today. The US could substantially increase its share — stated in the source as an assessment of potential, not a promise. Russia, Australia and Tanzania gain economic rationale for extracting helium from small and remote deposits. Diversification is framed as supply-chain security for entire industries, not a matter of preference.
Estimates of total annual market value cluster in the $2.5–3 billion range across public reporting.
Energy is a marginal cost line, not the driver: at a helium price of $70/m³, electricity accounts for less than 0.1% of revenue even with classical technology. The economics come from capital avoidance and resource access — no $15–50 million plant, no ~5-year construction, and viability at concentrations down to 0.01% where the classical threshold is 0.3%. Stated payback period: 5–7 years. Unit capex, opex and per-project revenue figures are established per project during the engineering-adaptation stage.
Use cases
Steps: gas-stream assay (helium concentration) → module configuration (20 ft base or 8 ft compact) → placement directly at the wellhead on asphalt or concrete, no foundation → commissioning together with the Arbok-CrioJet cooling module. Compared with the classical route, this replaces a $15–50 million plant with a ~5-year construction timeline. Commissioning duration and staffing are set per project during the engineering-adaptation stage.
Commercial model: development for a specific partner at government or corporate level; licensing gives the partner the production module, regional rights and ongoing support.
Pairs with Arbok-Criojet as the cooling stage and sits on the ARBOK-VC (Vacuum Cracking) platform; see also the platform entry ARBOK-HE. Deployed on natural gas wellheads, including small and remote deposits. Related light-gas and isotope separation cases on the same platform: ARBOK-DEUTERIUM, ARBOK-Tritium.
Helium is formed deep inside the Earth over millions of years as a byproduct of the radioactive decay of uranium and thorium. It does not burn, does not react, has no smell or color. It is not manufactured — it is captured as a byproduct of natural gas extraction, and once released into the atmosphere it is gone forever. The global market is approximately 200 million m³ per year, worth $2.5–3 billion — modest by energy-industry standards, but critical: MRI machines, quantum computers, rocket engines and semiconductor manufacturing cannot function without it, and there are no substitutes.
The structural problem is concentration: for three decades the market depended on two or three large sources. On March 2, 2026 a strike on the Ras Laffan terminal in Qatar removed approximately 33% of global supply, with expert recovery estimates of at least 3–5 years; the price moved from $17/m³ EXW before the crisis to over $70 on the spot market. Arbok-HE addresses this by making wellhead extraction viable at concentrations far below the classical 0.3% threshold.
> Core technology and architecture: see ARBOK-VC (Vacuum Cracking). This entry covers the helium-specific feedstock, mechanism, market and economics. A separate platform entry exists as ARBOK-HE.
Arbok-HE is a gas separation module based on Arbok Vacuum Cracking. Separation is phase separation through the physics of vacuum — no membranes, no catalysts, no reagents, no consumables. The module runs at deep vacuum and at ambient temperature — no heat is supplied and no process temperature setpoint is defined; the 20–30 °C figure in the source reflects the ambient conditions at the sites, not a process window or setpoint. Specific energy consumption is 2–3 kWh per ton of processed gas stream, with up to 98% energy recuperation.
Helium is extracted at the wellhead rather than at a central plant for three reasons given in the source: (1) helium molecules are so small they seep through any seal — flanges, valves, welded joints — so every kilometer of pipeline means losses and concentration at the plant may fall below the viability threshold; (2) at 0.01–0.1% concentration, building a pipeline to a central plant makes no economic sense; (3) helium does not compete with the gas — it is inert, does not burn and does not reduce the calorific value of the stream, so the gas keeps flowing through the pipe.
Arbok-HE operates in tandem with the cooling module Arbok-CrioJet. The base configuration provides deep cryogenic cooling. Extending the cooling further inside the unit is potentially possible; this requires additional systems and in turn enables complete separation of all components, including nitrogen.
Limits stated in the source: the unit is not a finished off-the-shelf system — it is a concept of integrating proven solutions around a specific project, and development is conducted for a specific partner. The claim that the US could substantially increase its 42% share is explicitly described in the source as an assessment of potential, not a promise. Projects of this scale exist only in a B2G format or through national oil and gas companies as strategic partners.
| Parameter | Value |
|---|---|
| Process pressure | Deep vacuum |
| Process temperature | Ambient — no heat supplied, no setpoint. Observed site climate 20–30 °C |
| Specific energy consumption | 2–3 kWh per ton of processed gas stream |
| Energy recuperation | Up to 98% |
| Consumables | None — no membranes, catalysts, reagents or consumables |
| Energy per kg helium at 0.3% He | 0.83 kWh/kg (3 kg He per ton of gas, at 2.5 kWh/ton) |
| Energy per kg helium at 1% He | 0.25 kWh/kg (10 kg He per ton of gas) |
| Advantage vs. cryogenic separation | ~25x at 0.3% He; ~80x at 1% He; approaching ~500x at 7% He |
| Reference — classical cryogenic separation | Cooling to –185 °C; 15–25 kWh per kg of extracted helium; plant cost $15–50 million; ~5 years construction; minimum viable concentration 0.3% |
| Enclosure | TARK maritime container — base 20 ft, compact version 8 ft |
| Siting | Installation on asphalt or concrete — no foundation or capital construction |
| Paired cooling module | Arbok-CrioJet — base configuration deep cryogenic cooling; extended cooling available with additional systems |
| Payback period | 5–7 years |
| Service life | In line with other containerized ARBOK field modules |
| Throughput per unit | Sized to the wellhead gas flow during the engineering-adaptation stage |
| Helium recovery rate / product purity | Established during pilot commissioning at the target site |
Two coupled modules: the Arbok-HE gas separation module (vacuum phase separation on the Vacuum Cracking platform) and the Arbok-CrioJet cooling module. The assembly is containerized in a TARK maritime container — 20 ft in base configuration, 8 ft in the compact version intended for small wells — and installs on asphalt or concrete without a foundation or capital construction. Deeper cooling requires additional systems beyond the base configuration. Detailed component-level breakdown is finalized during project-specific engineering.
Pairs with Arbok-Criojet as the cooling stage and sits on the ARBOK-VC (Vacuum Cracking) platform; see also the platform entry ARBOK-HE. Deployed on natural gas wellheads, including small and remote deposits. Related light-gas and isotope separation cases on the same platform: ARBOK-DEUTERIUM, ARBOK-Tritium.
Steps: gas-stream assay (helium concentration) → module configuration (20 ft base or 8 ft compact) → placement directly at the wellhead on asphalt or concrete, no foundation → commissioning together with the Arbok-CrioJet cooling module. Compared with the classical route, this replaces a $15–50 million plant with a ~5-year construction timeline. Commissioning duration and staffing are set per project during the engineering-adaptation stage.
Commercial model: development for a specific partner at government or corporate level; licensing gives the partner the production module, regional rights and ongoing support.
TRL 8
Arbok-HE is characterized as a concept integration rather than a finished off-the-shelf system — proven modules combined around a specific project, with development conducted for a named partner. The underlying Vacuum Cracking platform is the industrially validated element.
Global helium market approximately 200 million m³ per year, worth $2.5–3 billion. Supply structure before the 2026 crisis: United States ~42% of global output; Qatar 33% of global exports; Algeria, Russia (Eastern Siberia), Australia as smaller producers; Tanzania (Rukwa Basin) a major potential player with concentrations potentially up to 10% but no industrial production.
The March 2, 2026 strike on Ras Laffan removed ~33% of global supply, with recovery estimated at a minimum of 3–5 years, and moved the price from $17/m³ EXW to over $70 spot. If Arbok-HE enters the market, the structure of global production changes: deposits from 0.01% concentration become viable, and there are many times more of them than what is developed today. The US could substantially increase its share — stated in the source as an assessment of potential, not a promise. Russia, Australia and Tanzania gain economic rationale for extracting helium from small and remote deposits. Diversification is framed as supply-chain security for entire industries, not a matter of preference.
Estimates of total annual market value cluster in the $2.5–3 billion range across public reporting.
Energy is a marginal cost line, not the driver: at a helium price of $70/m³, electricity accounts for less than 0.1% of revenue even with classical technology. The economics come from capital avoidance and resource access — no $15–50 million plant, no ~5-year construction, and viability at concentrations down to 0.01% where the classical threshold is 0.3%. Stated payback period: 5–7 years. Unit capex, opex and per-project revenue figures are established per project during the engineering-adaptation stage.
ARBOK-HE · Arbok-Criojet · ARBOK-VC (Vacuum Cracking) · ARBOK-DEUTERIUM · ARBOK-Tritium
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