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Experimental and Thermodynamic Study of Co-Fe and Mn-Fe Based Mixed Metal Oxides for Thermochemical Energy Storage Application

机译:用于热化学储能应用的CO-Fe和Mn-Fe混合金属氧化物的实验和热力学研究

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Metal oxides are potential materials for thermochemical heat storage, and among them, cobalt oxide and manganese oxide are attracting attention. Furthermore, studies on mixed oxides are ongoing, as the synthesis of mixed oxides could be a way to answer the drawbacks of pure metal oxides, such as slow reaction kinetics, loss-in-capacity over cycles or sintering, selected for thermochemical heat storage application. The addition of iron oxide is under investigation and the obtained results are presented. This work proposes a comparison of thermodynamic modelling with experimental data in order to identify the impact of iron oxide addition to cobalt oxide and manganese oxide. Fe addition decreased the redox activity and energy storage capacity of Co_3O_4, whereas the cycling stability of Mn_2O_3 was significantly improved with added Fe amounts above 20 mol% while the energy storage capacity was unchanged. The thermodynamic modelling method to predict the behavior of the Mn-Fe-O and Co-Fe-O systems was validated, and the possibility to identify other mixed oxides becomes conceivable, by enabling the selection of transition metals additives for metal oxides destined for thermochemical energy storage applications.
机译:金属氧化物是热化学储热的潜在材料,其中氧化钴和氧化锰正在引起关注。此外,在混合氧化物的合成可以是回答纯金属氧化物的缺点的方式,例如慢反应动力学,对热敏蓄热装置的循环或烧结的损失,选择的循环或烧结损失的方法。正在研究中添加氧化铁,并提出了所得结果。该工作提出了与实验数据进行热力学建模的比较,以识别氧化铁加入氧化钴和氧化锰的影响。 Fe添加降低了Co_3O_4的氧化还原活性和能量储存能力,而Mn_2O_3的循环稳定性随着20摩尔%的加入量显着提高,而能量储存能力不变。预测Mn-Fe-O和Co-Fe-O系统的行为的热力学建模方法被验证,并通过选择用于热化学的金属氧化物的过渡金属添加剂来观察到识别其他混合氧化物的可能性能量存储应用。

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