swiss study optimized power to gas mechanism to produce fuel gas
Last Updated : GMT 09:07:40
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Egypt Today, egypt today
Last Updated : GMT 09:07:40
Egypt Today, egypt today

Swiss study optimized power to gas mechanism to produce fuel gas

Egypt Today, egypt today

Egypt Today, egypt today Swiss study optimized power to gas mechanism to produce fuel gas

Geneva - KUNA

The Swiss Federal Laboratories for Materials Science and Technology (Empa) said on Tuesday that the greenhouse gas CO2 and the renewable hydrogen produced from photovoltaic systems and wind turbines can be used to produce methane, which can be stored and distributed in the natural gas network. Empa researchers succeeded in further optimising this process, which is based on "power to gas" technology to produce gas fuel, is a key concept when it comes to storing alternative energy, said Empa in a new study released from Empa Headquarters in Duebendorf, near Zurich.According to Emp), the methanation process uses CO2 and hydrogen (H2) from excess renewable electricity to produces methane, which can not only be distributed simply and cost-effectively in the natural gas network, but can also be stored for longer periods of time.This means renewable energy is being used to produce a "quasi-fossil" fuel - the basic principle of "power to gas".The reaction, which produces combustible methane from hydrogen and CO2, has been known for a long time. Now researchers in the Empa "Hydrogen and Energy" Department have succeeded in greatly optimising the process.A catalyst is required to bring about the reaction of CO2 with hydrogen using as little energy as possible; this catalyst can, for example, be made of nickel. The gas molecules react more easily with each other on the surface of such a catalyst, reducing the energy required for the reaction to take place. This is referred to as sorption catalysis. Empa researcher, Andreas Borgschulte, and his team have now combined a nanoscale nickel catalyst with a zeolite. Zeolites are crystalline aluminosilicates with the ability to absorb water molecules and release them again when heated. The principle is simple: the chemical reaction of hydrogen with CO2 produces not only methane (CH4), but also water (H2O). The researchers use the hygroscopic (i.e. water-binding) property of the zeolite to remove the resulting water from the reaction mixture.The chemical equilibrium then moves towards methane. Result: a higher yield of pure methane and a more efficient catalytic process. As soon as the zeolite is saturated with water, it can be "unloaded" again by heating and evaporation of the water, and is then re-used.The process works - though currently only in the laboratory. According to Borgschulte, there is still a long way to go before it is ready for commercial exploitation in large plants.Empa researchers are currently looking for project partners in order to build a methanation plant on a larger scale and use it as a pilot project.At the same time, Borgschulte's team would like to optimise the process even further. The next stage is to use four or more sorption catalysts at the same time. When one is saturated with water, the system automatically jumps to the next "dry" catalyst while the previous one is being "unloaded" again. One problem with this cyclical method up to now has been sulphur, which is produced in biogas plants together with methane and CO2. Sulphur compounds can cause irreparable damage to the zeolite.The researchers are now working on removing the sulphur from crude biogas so that the zeolite continues to work for as long as possible.In future, Borgschulte also thinks it is conceivable that new catalyst materials that are more efficient than nickel may be used in combination with the zeolite. These could improve the Sabatier process even further. This would mean that excess renewable electricity was no longer wasted but used as the basis for producing sustainable natural gas.

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swiss study optimized power to gas mechanism to produce fuel gas swiss study optimized power to gas mechanism to produce fuel gas



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