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首页> 外文期刊>Solar Energy >Further improvement of the synthesis of silica gel and CaCl2 composites: Enhancement of energy storage density and stability over cycles for solar heat storage coupled with space heating applications
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Further improvement of the synthesis of silica gel and CaCl2 composites: Enhancement of energy storage density and stability over cycles for solar heat storage coupled with space heating applications

机译:硅胶和CaCl2复合材料的合成的进一步改进:太阳能存储和空间加热应用的循环中能量存储密度和稳定性的提高

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摘要

Composite materials based on a silica gel loaded with CaCl2 are of great interest for seasonal thermochemical heat storage. In order to improve the performance of these materials for this application, and to evaluate their multi-cycle stability, a new synthesis protocol is proposed, based on successive impregnation/drying steps by using a matrix with a broad pore size distribution. Through this method, a CaCl2 content of 43 wt%, a high cycle loading lift of 0.40 g/g and an unprecedented energy storage density for this type of material of 211 kW h/m(3) of packed bed composite, in conditions of a solar heat storage system (adsorption at 30 degrees C, desorption at 80 degrees C, and water vapor pressure of 12.5 mbar) can be reached. Moreover, the distribution of the salt inside the pores and the absence of any salt crust outside the matrix prevent salt leakage, leading to an outstanding preservation of the cycle loading lift after 10 cycles. Based on Polanyi theory, it can be assumed that the energy storage density can exceed 350 kW h/m(3) for water sorption at 20 degrees C, desorption at 80 degrees C, with both steps at a water vapor pressure of 12.5 mbar.
机译:基于负载有CaCl2的硅胶的复合材料对于季节性热化学储热具有重大意义。为了提高这些材料在该应用中的性能并评估其多循环稳定性,基于连续的浸渍/干燥步骤,通过使用孔径分布宽的基质,提出了一种新的合成方案。通过这种方法,在以下条件下,这种类型的材料的填充床复合材料的CaCl2含量为43 wt%,高循环载荷提升为0.40 g / g,空载能量存储密度为211 kWh / m(3)。可以达到一个太阳能储热系统(在30摄氏度下吸附,在80摄氏度下解吸,水蒸气压力为12.5毫巴)。而且,盐在孔内的分布和基质外没有盐壳的存在可防止盐泄漏,从而在10个循环后出色地保留了循环负荷。根据Polanyi理论,可以假设在20摄氏度的温度下吸水,80摄氏度的温度下吸水以及两个步骤的水蒸气压力均为12.5 mbar时,能量存储密度可以超过350 kW h / m(3)。

著录项

  • 来源
    《Solar Energy》 |2017年第11期|532-541|共10页
  • 作者单位

    Univ Mons, Dept Thermodynam & Math Phys, 31 Blvd Dolez, B-7000 Mons, Belgium;

    ULB, Dept 4MAT, 50 Ave FD Roosevelt CP 194-3, B-1050 Brussels, Belgium;

    Univ Paris Saclay, Univ Versailles St Quentin en Yvelines, Inst Lavoisier, 45 Ave Etats Unis, F-78035 Versailles, France;

    Univ Mons, Dept Thermodynam & Math Phys, 31 Blvd Dolez, B-7000 Mons, Belgium;

    Univ Paris Saclay, Univ Versailles St Quentin en Yvelines, Inst Lavoisier, 45 Ave Etats Unis, F-78035 Versailles, France;

    ULB, Dept 4MAT, 50 Ave FD Roosevelt CP 194-3, B-1050 Brussels, Belgium;

    Univ Mons, Dept Thermodynam & Math Phys, 31 Blvd Dolez, B-7000 Mons, Belgium;

  • 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 storage; Composite; CaCl2; Silica gel;

    机译:热化学存储;复合材料;CaCl2;硅胶;

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