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Metal oxide composites and structures for ultra-high temperature solar thermochemical cycles

机译:用于超高温太阳热化学循环的金属氧化物复合材料和结构

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摘要

Conceptually, thermochemical cycles are heat engines that drive endothermic chemical reactions, e.g., splitting water into hydrogen and oxygen. The two-step metal oxide cycles (typically ferrite-based) are particularly attractive since they are relatively simple, use non-corrosive materials, and involve gas–solid reactions requiring no difficult separations. Additionally, they are potentially the most efficient renewable-energy driven processes for hydrogen production. We are developing a novel concentrating solar power (CSP) driven metal-oxide-based heat engine, the CR5, at the heart of which are rings of a reactive solid that are thermally and chemically cycled to produce oxygen and hydrogen from water in separate and isolated steps. The monolithic ring structures must have high geometric surface area for gas–solid contact and for adsorption of incident solar radiation, and must maintain structural integrity and high reactivity after extensive thermal cycling to temperatures of at least 1,400 °C. We have demonstrated through laboratory and on-sun testing that cobalt ferrite/zirconia mixtures fabricated into monolithic structures suitable for the CR5 are mechanically robust and maintain productivity over tens of cycles. We have also demonstrated that carbon dioxide splitting (CDS) to carbon monoxide and oxygen is a thermodynamically favorable alternative to water splitting that can be conducted with both iron- and cerium-based materials.
机译:从概念上讲,热化学循环是驱动吸热化学反应的热机,例如将水分解为氢和氧。两步金属氧化物循环(通常是基于铁氧体的循环)特别吸引人,因为它们相对简单,使用非腐蚀性材料并且涉及气固反应,不需要困难的分离。此外,它们可能是最高效的可再生能源驱动制氢工艺。我们正在开发一种新型的基于聚光太阳能(CSP)的基于金属氧化物的热力发动机,CR5的核心是反应性固体的环,该环通过热和化学循环从水中分离产生氧和氢,孤立的步骤。整体式环形结构必须具有高的几何表面积,以进行气固接触并吸收入射的太阳辐射,并且必须经过广泛的热循环至至少1400°C的温度后,才能保持结构完整性和高反应活性。通过实验室和日光测试,我们证明了制造成适合CR5的整体结构的铁氧体钴/氧化锆混合物的机械稳定性强,可在数十个周期内保持生产率。我们还证明了二氧化碳分解为一氧化碳和氧气的热力学优势,可以替代铁和铈基材料进行的水分解。

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