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Metal oxides for thermochemical energy storage: A comparison of several metal oxide systems

机译:用于热化学能存储的金属氧化物:几种金属氧化物体系的比较

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The reversible redox reactions of metal oxides show high potential as thermochemical storage material. At high temperatures oxides of suitable transition metals will undergo a reduction reaction and by that thermal energy is absorbed (MxOy+z -> MxOy + z/2 O-2 (M = Metal)). Below specific equilibrium temperatures the reoxidation (MxOy+z -> MxOy + z/2 O-2 takes place and hence thermal energy will be delivered. Because of the gas solid reaction and the fact that air can be used as heat transfer fluid thermochemical energy storage based on transition metal oxides are of special interest from the procedural point of view. Among pure metal oxides only cobalt oxide, iron oxide, copper oxide and manganese oxide show suitable reaction temperatures, reaction enthalpies, cycling stabilities and material costs. To broaden the range of suitable metal oxides binary oxide systems were analyzed in the present study. In the following several compositions of eight binary metal oxide systems as well as the listed pure metal oxides were tested in terms of their ability to store energy thermochemically. Cobalt oxide/iron oxide, copper oxide/cobalt oxide, copper oxide/manganese oxide and manganese oxide/iron oxide are found to show high potential as thermochemical storage material. It was shown, however, that none of the tested systems fulfill all the requirements of an ideal storage material regarding storage capacity, costs and cycling stability. (C) 2016 Elsevier Ltd. All rights reserved.
机译:金属氧化物的可逆氧化还原反应显示出作为热化学存储材料的高潜力。在高温下,合适的过渡金属的氧化物将发生还原反应,并吸收热能(MxOy + z-> MxOy + z / 2 O-2(M =金属))。在特定的平衡温度以下,发生再氧化(MxOy + z-> MxOy + z / 2 O-2),因此将传递热能,这是因为发生了气固反应,并且空气可以用作传热流体的热化学能。从程序的角度来看,基于过渡金属氧化物的储存特别受关注,在纯金属氧化物中,只有氧化钴,氧化铁,氧化铜和氧化锰才显示出合适的反应温度,反应焓,循环稳定性和材料成本。在本研究中,分析了一系列合适的金属氧化物二元氧化物体系,然后在以下八种二元金属氧化物体系以及列出的纯金属氧化物的组成方面,对它们的热化学储存能力进行了测试。氧化物,氧化铜/氧化钴,氧化铜/氧化锰和氧化锰/氧化铁具有很高的潜力,可作为热化学存储垫erial。然而,事实证明,在存储容量,成本和循环稳定性方面,没有一个经过测试的系统能够满足理想存储材料的所有要求。 (C)2016 Elsevier Ltd.保留所有权利。

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