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Latent heat thermal energy storage in salt hydrates and clathrate hydrates.

机译:盐水合物和笼形水合物中的潜热热能存储。

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摘要

Thermal energy storage in the temperature range useful for residential water and space heating can be accomplished in the latent heat of phase change of suitable storage materials. The selection and implementation of these materials is investigated. Three storage materials suitable for the 45-60;The acceptance of phase change storage is presently hindered by ineffective methods of heat recovery. Heat exchange via a vaporizing heat transfer fluid in direct contact with the crystallizing storage material is shown to alleviate problems associated with conventional heat exchangers. The criteria for choosing heat transfer fluids include their physical and chemical stability, alone and in conjunction with, the chosen storage materials. Tests show that fluorocarbons meet these criteria.;A comparatively high solubility of certain heat transfer fluids in selected storage materials was observed. The beneficial effect of this solubility on direct contact vaporization heat exchange is discussed. Long-term cycling experiments were performed on the effects of pH, the phase stability of storage materials, and the corrosion resistance of construction materials to the system components.;Latent heat storage at space cooling temperatures is presently limited to water ice. The use of clathrate hydrates for cold storage is proposed. Two problems encountered in developing clathrate cold storage are studied; the nucleation of clathrate and the clathrate formation rate. Suggested solutions include seed-induced nucleation and surfactant-enhanced formation rates. The dissociation temperature and pressure of the clathrate determine the operating conditions of the storage system. Controlling the composition of the clathrate by selectively filling the clathrate water lattice would allow the design of clathrate storage systems for arbitrary operating conditions.;Bench scale and prototype units were built to test direct contact vaporization heat exchange in both heat and cold storage systems. The bench scale device was used as a demonstration model while the prototypes are currently undergoing field testing. A foundation for a mathematical model of the operation of these devices is presented.
机译:在适合于住宅用水和空间供暖的温度范围内的热能存储可以通过合适的存储材料的相变潜热来完成。研究了这些材料的选择和实施。三种适合45-60的存储材料;无效的热回收方法阻碍了相变存储的接受。示出了通过与结晶存储材料直接接触的蒸发的传热流体进行的热交换减轻了与常规热交换器有关的问题。选择传热流体的标准包括其物理和化学稳定性(单独使用或与所选存储材料结合使用)。测试表明碳氟化合物符合这些标准。观察到某些传热流体在选定的存储材料中具有较高的溶解度。讨论了这种溶解度对直接接触蒸发热交换的有益作用。对pH值,存储材料的相稳定性以及建筑材料对系统组件的耐腐蚀性的影响进行了长期循环实验。;目前,空间冷却温度下的潜热存储仅限于水冰。提出了将笼形水合物用于冷藏。研究了在开发笼式冷库中遇到的两个问题。包合物的形核和包合物形成速率。建议的解决方案包括种子诱导的成核作用和表面活性剂增强的形成速率。包合物的解离温度和压力决定了存储系统的运行条件。通过有选择地填充笼状水晶格来控制笼状水的组成将允许在任意操作条件下设计笼状水的存储系统。台式秤和原型单元被构建为测试热和冷存储系统中的直接接触蒸发热交换。台式设备被用作演示模型,而原型目前正在现场测试中。提出了这些设备操作的数学模型的基础。

著录项

  • 作者

    Tsai, Albert G.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Engineering Chemical.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1986
  • 页码 182 p.
  • 总页数 182
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:51:00

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