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Friday, September 18, 2026

CEWT is in the process of setting up a 20 MW Trigeneration ( Baseload power + Heating and Cooling) system, free from the grid and with nearly Zero emissions, using our patent-pending CRT technology in the state of Victoria, Australia.

From Carbon Recycling Technology to Commercial Demonstration

From Carbon Recycling Technology to Commercial Demonstration Clean Energy & Water Technologies Pty Ltd (CEWT) is progressing the commercial development of Carbon Recycling Technology (CRT), an integrated approach designed to capture carbon dioxide and recycle the carbon into reusable fuel using hydrogen-rich process gas and renewable hydrogen. Our immediate objective is to move CRT through independent engineering validation, technology-provider integration and preparation for commercial demonstration. CEWT is developing applications including firm low-emissions power, trigeneration for data centres and low-carbon iron production. Our proposed 20 MW CRT Trigeneration project is intended to demonstrate how firm power, useful heat and carbon recycling can be integrated within a practical industrial energy system. We are now interested in speaking with strategic investors and clean-technology investment partners who understand the journey from engineering innovation through independent validation to commercial deployment. CEWT is particularly interested in partners who can bring not only capital, but also experience in project development, industrial technology commercialisation, energy infrastructure and scaling emerging climate technologies. Our philosophy is straightforward: new energy technologies ultimately have to withstand engineering scrutiny, demonstrate measurable outcomes and establish a credible pathway to commercial operation. We welcome conversations with organisations and investors who share that approach. Ahilan Raman Managing Director Clean Energy & Water Technologies Pty Ltd (CEWT)

Singapore Batam Ferry service using EV boats with Fuelcell Extender

Thursday, September 17, 2026

From Surplus Renewable Power to 24/7 Industrial Energy

From Surplus Renewable Power to 24/7 Industrial Energy CEWT Carbon Recycling Technology (CRT) The energy transition is rapidly increasing solar and wind generation. But there is a fundamental challenge: Industry operates continuously. Renewable generation does not. At times of high solar or wind generation, electricity can exceed immediate demand and may be curtailed or sold at very low - or even negative - prices. At other times, the same industrial customer may need firm electricity, process heat and hydrogen when renewable generation is insufficient. CEWT's Carbon Recycling Technology (CRT) is being developed to address this mismatch. CRT is designed to use renewable electricity within an integrated carbon-recycling energy system and provide three continuous energy products: 24/7 BASELOAD POWER 24/7 THERMAL ENERGY 24/7 RENEWABLE HYDROGEN The principle is not to compete with renewable electricity. It is to make intermittent renewable energy continuously useful to industry. Renewable electricity provides the primary energy input. Hydrogen provides an important chemical pathway. Carbon is captured and recycled through the CRT loop rather than treating continuous fossil-carbon consumption as the permanent solution. This creates a pathway toward steady defossilisation: progressively replacing dependence on newly introduced fossil carbon while increasing the contribution of renewable energy to continuous industrial operations. The potential applications extend from AI data centres requiring firm power, to green iron and other industrial processes requiring electricity, heat and hydrogen around the clock. The energy transition is therefore not only about producing more renewable electricity. The next challenge is converting abundant intermittent renewable energy into the forms of energy industry needs - reliably, continuously and economically. That is the problem CEWT's CRT is being developed to solve. Clean Energy and Water Technologies Pty Ltd (CEWT) Carbon Recycling Technology - turning intermittent renewable energy into continuous industrial energy. #CarbonRecycling #RenewableEnergy #Defossilisation #GreenHydrogen #GreenIron #DataCentres #IndustrialDecarbonisation #EnergyTransition #FirmPower #CEWT

Monday, September 14, 2026

MOLECULAR ACCOUNTABILITY: NATURE DOES NOT RECOGNISE OUR CARBON LABELS

MOLECULAR ACCOUNTABILITY: NATURE DOES NOT RECOGNISE OUR CARBON LABELS The energy transition has created an expanding vocabulary: fossil carbon, biogenic carbon, renewable carbon, green hydrogen, blue hydrogen, e-methane and carbon-neutral fuels. These classifications can be useful for accounting. But Nature does not recognise them. A CO₂ molecule entering the atmosphere has the same physical properties regardless of whether its carbon originated from coal, natural gas, biomass or synthetic methane. Its origin may change its lifecycle accounting, but it does not change the molecule. This leads to a simple engineering principle: Classify for accounting, but balance according to Nature. Consider biogenic CO₂. Capturing CO₂ from a bioethanol plant and combining it with renewable hydrogen can produce synthetic methane: CO₂ + 4H₂ → CH₄ + 2H₂O But when that methane is ultimately combusted: CH₄ + 2O₂ → CO₂ + 2H₂O the carbon can return to the atmosphere. The fact that the original CO₂ was biogenic does not make the resulting atmospheric CO₂ physically different. The lifecycle benefit depends on the wider carbon cycle—including whether, how completely, and over what period biological systems remove an equivalent quantity of CO₂ again. A forest fire demonstrates the point clearly. Carbon released from burning vegetation is biogenic, but that does not mean the resulting emissions can automatically be regarded as “renewable CO₂.” Restoration of the carbon stock depends upon subsequent forest regeneration, land use, and time. We therefore need to move beyond labels towards Molecular Accountability. For any industrial energy system, ask: Where did the carbon come from? What molecular transformations did it undergo? Where did the carbon ultimately go? And carbon should not be considered alone. Hydrogen, oxygen, and water must also be accounted for. Industrial processes continually transform C, H, and O among CH₄, CO, CO₂, H₂, O₂, and H₂O. The atoms are conserved. The molecules are transformed. Every transformation carries an energy consequence. That brings thermodynamics directly into the discussion. A credible industrial decarbonisation system should therefore demonstrate: Elemental balance → Molecular balance → Energy balance → Exergy balance → Environmental discharge Only after these balances have been closed should we apply economic or environmental classifications. This principle is central to the thinking behind CEWT’s Carbon Recycling Technology (CRT): rather than regarding captured CO₂ simply as a waste requiring disposal, ask whether the carbon can remain within an engineered cycle—captured, transformed, used, and recovered again. Remove the label. Define the boundary.Follow the molecules.Close the balance. Nature will ultimately perform the accounting whether we do it or not. Clean Energy and Water Technologies Pty Ltd (CEWT) #MolecularAccountability #CarbonRecycling #CRT #Decarbonisation #Thermodynamics #CarbonManagement #EnergyTransition #CircularCarbon