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High-performance and low-cost macroporous calcium oxide based materials for thermochemical energy storage in concentrated solar power plants

机译:高性能,低成本,大孔氧化钙基材料,用于集中式太阳能发电厂的热化学能存储

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摘要

High energy density, cycling stability, low cost and scalability are the main features required for thermochemical energy storage systems to achieve a feasible integration in Concentrating Solar Power plants (CSP). While no system has been found to fully satisfy all these requirements, the reversible CaO/CaCO3 carbonation reaction (CaL) is one of the most promising since CaO natural precursors are affordable and earth-abundant. However, CaO particles progressively deactivate due to sintering-induced morphological changes during repeated carbonation and calcinations cycles. In this work, we have prepared acicular calcium and magnesium acetate precursors using a simple, cost-effective and easily scalable technique that requires just the natural minerals and acetic acid, thereby avoiding expensive reactants and environmentally unfriendly solvents. Upon thermal decomposition, these precursors yield a stable porous structure comprised of well dispersed MgO nanoparticles coating the CaO/CaCO3 grains that is resistant to pore-plugging and sintering while at the same time exhibits high long term effective conversion. Process simulations show that the employment of these materials could significantly improve the overall CSP-CaL efficiency at the industrial level.
机译:高能量密度,循环稳定性,低成本和可扩展性是热化学能量存储系统在聚光太阳能发电厂(CSP)中实现可行集成所需的主要功能。尽管还没有找到一种系统能够完全满足所有这些要求,但是可逆的CaO / CaCO3碳酸化反应(CaL)是最有希望的方法之一,因为CaO天然前体价格可承受且富含地球。然而,由于在重复的碳化和煅烧循环过程中,烧结引起的形态变化,CaO颗粒逐渐失活。在这项工作中,我们使用简单,经济高效且易于扩展的技术制备了针状乙酸钙和乙酸镁前体,该技术仅需要天然矿物质和乙酸,从而避免了昂贵的反应物和对环境不利的溶剂。在热分解后,这些前体产生稳定的多孔结构,该结构由分散良好的MgO纳米颗粒组成,这些纳米颗粒覆盖了CaO / CaCO3晶粒,可以抵抗孔堵塞和烧结,同时还具有很高的长期有效转化率。过程仿真表明,使用这些材料可以在工业水平上显着提高整体CSP-CaL效率。

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