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Clyde Hydrogen Systems

Clyde Hydrogen Systems develops decoupled electrolysis technology that produces high-pressure green hydrogen by separating the generation of hydrogen and oxygen, allowing for greater flexibility and efficiency. This approach addresses the challenges of existing electrolysers, including high costs, safety risks from gas mixing, and the need for mechanical compression.

Glasgow, United KingdomFounded 20227500+ followers
Updated 19 months ago

Funding

$1.3M raised to dateRaised to date based on public sources. This may differ from the amount the company actually raised and is based only on what is publicly available on the internet.

UO
Funding rounds are not available yet.

Founders

Product

Problem

Existing green hydrogen production methods using conventional electrolyzers struggle with the variable nature of renewable energy sources, high capital costs, and the need for mechanical compression to achieve high-pressure output. The risk of hydrogen and oxygen mixing also presents a significant safety concern.

Solution

Clyde Hydrogen Systems offers a decoupled electrolysis technology that separates hydrogen and oxygen production in both space and time, enhancing safety and enabling greater operational flexibility. This innovative approach eliminates the possibility of gas mixing, reduces the need for costly mechanical compression, and improves compatibility with intermittent renewable energy sources. The simplified design facilitates easier scaling and reduces both capital and operational expenditures, redefining the architecture for next-generation green hydrogen production.

Target Audience

The primary target audience includes organizations seeking to produce green hydrogen at scale, renewable energy companies, and entities requiring high-pressure hydrogen for various applications.

Features

  • Decoupled electrolysis process enabling separate hydrogen and oxygen generation.
  • High-pressure hydrogen production without mechanical compression.
  • Enhanced safety profile by eliminating the risk of hydrogen and oxygen mixing.
  • Improved compatibility with variable renewable energy sources.
  • Simplified system design for easier scalability.
  • Reduced capital expenditure (CAPEX) and operational expenditure (OPEX).
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