Development of a continuous solid solution with extended Red-Ox temperature range and unexpected high reaction enthalpies for thermochemical energy storage

A. Zaki, Daniel Bielsa, A. Faik
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引用次数: 2

Abstract

Thermochemical reactions are considered as a promising approach to be applied for heat storage in next generation of concentrated solar power (CSP) plants where the expected working temperatures will be higher than the current ones. Redox reactions involving multivalent cations have been investigated for high temperature applications in temperature range of 900 - 1200°C. However, only a few number of metal oxides with limited number of reaction temperatures have been identified in that temperature range which has been considered as one of the main barriers for further development of new concepts and systems for thermochemical energy storage. Mixed metal oxides, on the other hand, could provide a flexibility allowing to extend the reaction temperature in a wide temperature range to be adapted for each specific application. With this regard, the study of mixed cobalt and manganese oxides with the general formula Co3-xMnxO4 (0≤x≤3) was carried out, where five pure mixed metal oxides, i.e. Co2.5Mn0.5O4, Co2MnO4, Co1.5Mn1.5O4, CoMn2O4 and Co0.5Mn2.5O4, have been successively synthesized. Their structural characterization demonstrated that a continuous solid solution, with pure spinel structures, was obtained between the two pure cobalt and manganese oxides with an adjustable reduction/oxidation temperature in a large temperature range between 850°C and 1700°C. The obtained redox temperatures for Co2.5Mn0.5O4, Co2MnO4, Co1.5Mn1.5O4, CoMn2O4 and Co0.5Mn2.5O4 are 980, 1129, 1230, 1320 and 1428°C, respectively. Finally, the thermodynamic study has revealed that the enthalpies of mixed metal oxides are higher than the pure oxides ones reaching a maximum value of 1233 J/g for Co1.5Mn1.5O4, which is almost the double of the pure cobalt oxide enthalpy 675 J/g.Thermochemical reactions are considered as a promising approach to be applied for heat storage in next generation of concentrated solar power (CSP) plants where the expected working temperatures will be higher than the current ones. Redox reactions involving multivalent cations have been investigated for high temperature applications in temperature range of 900 - 1200°C. However, only a few number of metal oxides with limited number of reaction temperatures have been identified in that temperature range which has been considered as one of the main barriers for further development of new concepts and systems for thermochemical energy storage. Mixed metal oxides, on the other hand, could provide a flexibility allowing to extend the reaction temperature in a wide temperature range to be adapted for each specific application. With this regard, the study of mixed cobalt and manganese oxides with the general formula Co3-xMnxO4 (0≤x≤3) was carried out, where five pure mixed metal oxides, i.e. Co2.5Mn0.5O4, Co2Mn...
开发具有扩展红-牛温度范围和意想不到的高反应焓的连续固溶体用于热化学储能
热化学反应被认为是应用于下一代聚光太阳能(CSP)电站蓄热的一种有前途的方法,其预期工作温度将高于当前的温度。涉及多价阳离子的氧化还原反应已经在900 - 1200°C的高温应用中进行了研究。然而,在该温度范围内,只有少数几种反应温度有限的金属氧化物被确定,这被认为是进一步发展热化学储能新概念和新系统的主要障碍之一。另一方面,混合金属氧化物可以提供灵活性,允许在更宽的温度范围内扩展反应温度,以适应每种特定应用。为此,进行了通式Co3-xMnxO4(0≤x≤3)混合钴锰氧化物的研究,先后合成了Co2.5Mn0.5O4、Co2MnO4、Co1.5Mn1.5O4、CoMn2O4和Co0.5Mn2.5O4五种纯混合金属氧化物。结构表征表明,在850 ~ 1700℃的大温度范围内,两种纯钴锰氧化物之间形成了具有纯尖晶石结构的连续固溶体,还原/氧化温度可调。Co2.5Mn0.5O4、Co2MnO4、Co1.5Mn1.5O4、CoMn2O4和Co0.5Mn2.5O4的氧化还原温度分别为980、1129、1230、1320和1428℃。最后,热力学研究表明,混合金属氧化物的焓高于纯氧化物,Co1.5Mn1.5O4的焓最大值为1233 J/g,几乎是纯氧化钴焓675 J/g的两倍。热化学反应被认为是应用于下一代聚光太阳能(CSP)电站蓄热的一种有前途的方法,其预期工作温度将高于当前的温度。涉及多价阳离子的氧化还原反应已经在900 - 1200°C的高温应用中进行了研究。然而,在该温度范围内,只有少数几种反应温度有限的金属氧化物被确定,这被认为是进一步发展热化学储能新概念和新系统的主要障碍之一。另一方面,混合金属氧化物可以提供灵活性,允许在更宽的温度范围内扩展反应温度,以适应每种特定应用。为此,进行了通式为Co3-xMnxO4(0≤x≤3)的混合钴锰氧化物的研究,其中Co2.5Mn0.5O4、Co2Mn…
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