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Experimental assessment of copper oxide for liquid chemical looping for thermal energy storage

机译:液态铜用于热能储存的氧化铜的实验评估

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The potential of copper oxide for both thermal energy storage and oxygen production in a liquid chemical looping thermal energy storage system has been assessed with thermogravimetric analysis. Liquid chemical looping thermal energy storage is a recently proposed system with potential to enable both the storage of thermal energy (through sensible heating, phase change and thermochemical reactions) and oxygen production. The process of isothermal reduction and oxidation of molten copper oxide was verified experimentally by heating the material isobarically, reducing or oxidising it isothermally, and then cooling it again isobarically. The isothermal reduction and oxidation reactions were achieved by varying the partial pressure of oxygen through the change in the concentrations of nitrogen and oxygen. This confirmed that copper oxide can be reduced in the liquid state by changing the partial pressure of oxygen in the system. Nevertheless, the extent of reduction in the assessed range of oxygen partial pressure in the liquid phase is approximately 2%, while this value in solid phase is approximately 10%, which implies that the thermochemical storage is mainly occurred in the solid phase. The reduction and oxidation cycles were repeated for 10 cycles. Superimposed on the cyclical weight change was an additional weight loss that was attribute to a side reaction between the copper oxide and alumina crucible.
机译:已经通过热重分析评估了液态化学回路热能存储系统中氧化铜在热能存储和氧气生产中的潜力。液体化学循环热能存储是最近提出的一种系统,具有潜力来存储热能(通过显热,相变和热化学反应)和产生氧气。通过等压加热材料,等温还原或氧化材料,然后等压冷却,通过实验验证了熔融氧化铜的等温还原和氧化过程。等温还原和氧化反应是通过改变氮和氧浓度来改变氧的分压来实现的。这证实了通过改变体系中氧的分压可以在液态还原氧化铜。然而,液相中氧分压的评估范围的降低程度约为2%,而固相中的该值约为10%,这意味着热化学存储主要发生在固相中。还原和氧化循环重复10个循环。周期性的重量变化叠加了额外的重量损失,这归因于氧化铜和氧化铝坩埚之间的副反应。

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