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Semipermeable encapsulation of calcium hydroxide for thermochemical heat storage solutions

机译:用于热化学储热溶液的氢氧化钙半透膜封装

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摘要

Thermochemical heat storage concepts offer a promising contribution to an efficient, economic and sustainable future energy supply. One of the most considered reaction systems for Concentrated Solar Power (CSP) applications is the system CaO/Ca(OH)(2). In contrast to the cost efficiency and good availability of this material, its poor powder properties advise to complex and therefore costly reactor solutions. Thus, this work presents an approach for the design of the storage material as an adaption to its utilization in moving bed reactors. Options for particle size stabilization are discussed and criteria for the selection of encapsulation materials are derived. In order to prevent agglomeration of the cohesive storage material powder during thermochemical cycling by stabilization of the particle size in the micrometrerange, a method for a novel encapsulation of pre-granulated Ca(OH)(2) with a ceramic shell is developed. To ensure the required transport of steam through the shell material, a semipermeable ceramic material is investigated. Basic physical material properties of the encapsulated storage material are determined and compared to the granulated Ca(OH)(2) and to the ceramic as reference materials. By investigation of the porosity and the microstructure of the encapsulated storage material, it is shown that by the encapsulation process a porous and throughout closed shell around the storage material is formed. Thermochemical cyclability over ten reaction cycles is proven by thermal analysis. The elemental phase composition is examined qualitatively and quantitatively before and after thermochemical cycling, giving the storage material content and information about possible side products. As expected, a loss in storage capacity of the storage material is not observed. Considering the overall sample mass, the specific storage capacity is lowered correlative to the amount of inert ceramic capsule material. By measurements of the crushing strength (CS) it is shown, that upon ceramic encapsulation, the mechanical stability before and after thermochemical cycling is significantly increased. (C) 2017 Elsevier Ltd. All rights reserved.
机译:热化学储热概念为有效,经济和可持续的未来能源供应做出了可喜的贡献。 CaO / Ca(OH)(2)系统是最受关注的集中式太阳能(CSP)应用反应系统之一。与这种材料的成本效益和良好的可获得性相比,其较差的粉末性质建议使用复杂且因此昂贵的反应器解决方案。因此,这项工作提出了一种设计存储材料的方法,以适应其在移动床反应器中的利用。讨论了粒径稳定化的选择,并推导了选择封装材料的标准。为了通过稳定微微米范围内的粒径来防止热化学循环过程中粘性存储材料粉末的团聚,开发了一种用陶瓷壳新型封装预粒化的Ca(OH)(2)的方法。为了确保所需的蒸汽通过外壳材料传输,研究了一种半渗透性陶瓷材料。确定了封装存储材料的基本物理材料性能,并将其与颗粒状Ca(OH)(2)和作为参考材料的陶瓷进行比较。通过对封装的存储材料的孔隙率和微观结构的研究,表明通过封装过程,在存储材料周围形成了多孔且整个封闭的壳。通过热分析证明了在十个反应循环中的热化学循环性。在热化学循环之前和之后,定性和定量地检查元素相的组成,从而给出存储材料的含量以及有关可能的副产物的信息。如预期的那样,未观察到存储材料的存储容量的损失。考虑到总的样品质量,与惰性陶瓷胶囊材料的量相关的比存储容量降低。通过抗碎强度(CS)的测量表明,在陶瓷封装时,热化学循环之前和之后的机械稳定性显着提高。 (C)2017 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Solar Energy》 |2017年第5期|1-11|共11页
  • 作者单位

    Univ Siegen, Inst Bldg & Mat Chem, Paul Bonatz Str 9-11, D-57076 Siegen, Germany;

    Univ Siegen, Chair Energy & Environm Proc Engn, Paul Bonatz Str 9-11, D-57076 Siegen, Germany;

    Univ Siegen, Chair Energy & Environm Proc Engn, Paul Bonatz Str 9-11, D-57076 Siegen, Germany;

    Univ Siegen, Inst Bldg & Mat Chem, Paul Bonatz Str 9-11, D-57076 Siegen, Germany;

    Univ Siegen, Chair Energy & Environm Proc Engn, Paul Bonatz Str 9-11, D-57076 Siegen, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Thermochemical heat storage; Calcium hydroxide; Expanding oxide ceramic; Agglomeration; Semipermeable encapsulation;

    机译:热化学储热;氢氧化钙;膨胀氧化物陶瓷;团聚;半透性封装;

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