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Enhancement of a CaO/Ca(OH)(2) based material for thermochemical energy storage

机译:增强基于CaO / Ca(OH)(2)的热化学能量存储材料

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摘要

The application of hydration/dehydration reactions of CaO/Ca(OH)(2) to thermochemical energy storage systems can be facilitated by the development of Ca-based materials with improved mechanical properties when compared to the natural Ca-precursor, while maintaining good chemical activity. For this purpose, we are developing composite materials for fluidized bed or fixed bed applications synthesized using sodium silicate to bind fine CaO/Ca(OH)(2) particles. In this work, the mechanism of decay in the mechanical properties of the resulting CaO/Ca-silicates composites over hundreds of hydration/dehydration cycles has been investigated. Based on the observed mechanism, improvements to the method of synthesis of the materials have been introduced, in order to retain the original carbonate grain volumes, which are larger than those of the equimolar quantity of the expanding Ca(OH)(2) during hydration. A noticeable improvement in the mechanical stability of the resulting pellets was observed when the material was exposed to temperatures of around 880 degrees C in pure CO2 before calcination in order to avoid the decomposition of CaCO3 during the formation of the hard Ca-silicates that provide mechanical strength to the composite. Further gains in mechanical stability were achieved by avoiding the complete hydration of the CaO grains in the composites. These results confirm the primary role of Ca(OH)(2) anisotropic expansion as the main cause of the reduction in crushing strength of the pellets. It can be concluded that the formation of calcium silicates as binders of CaO rich grains is a promising route for the development Ca-based composite materials. However, more effort is still needed to overcome the decay in performance observed after several hundreds of cycles. (C) 2016 Elsevier Ltd. All rights reserved.
机译:CaO / Ca(OH)(2)的水合/脱水反应在热化学能量存储系统中的应用可通过开发与天然Ca前体相比具有改善的机械性能的Ca基材料来促进,同时保持良好的化学性质活动。为此,我们正在开发用于流化床或固定床应用的复合材料,该材料使用硅酸钠合成以结合细小的CaO / Ca(OH)(2)颗粒。在这项工作中,已经研究了在数百个水合/脱水循环中所得CaO / Ca-硅酸盐复合材料的机械性能衰减的机理。基于观察到的机理,为了保留原始碳酸盐颗粒体积,引入了合成材料方法的改进,该原始碳酸盐颗粒体积大于水合过程中膨胀的Ca(OH)(2)的等摩尔量。 。当材料在煅烧前暴露于纯二氧化碳中约880摄氏度的温度下时,观察到所得颗粒的机械稳定性有了显着改善,从而避免了形成硬质硅酸钙的过程中CaCO3的分解。复合材料的强度。通过避免复合物中CaO颗粒的完全水合,可以进一步提高机械稳定性。这些结果证实了Ca(OH)(2)各向异性膨胀的主要作用是引起粒料抗碎强度降低的主要原因。可以得出结论,形成硅钙作为富CaO晶粒的粘合剂是开发基于钙的复合材料的有前途的途径。但是,仍需要更多的努力来克服数百个循环后观察到的性能下降。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Solar Energy》 |2016年第10期|800-809|共10页
  • 作者单位

    CSIC INCAR, Inst Nacl Carbon, C Francisco Pintado Fe 26, Oviedo 33011, Spain;

    CSIC INCAR, Inst Nacl Carbon, C Francisco Pintado Fe 26, Oviedo 33011, Spain;

    CSIC INCAR, Inst Nacl Carbon, C Francisco Pintado Fe 26, Oviedo 33011, Spain;

  • 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 energy storage; Composite material; Calcium oxide; Sodium silicate;

    机译:热化学储能;复合材料;氧化钙;硅酸钠;
  • 入库时间 2022-08-18 00:24:00

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