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Experimental Measurements of Thermal Properties of High-Temperature Refractory Materials Used for Thermal Energy Storage

机译:用于热能储存的高温耐火材料热特性的实验测量

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This paper builds on studies conducted on thermal energy storage (TES) systems that were built as a part of the work performed for a DOE-funded SunShot project titled "High Temperature Falling Particle Receiver". In previous studies, two small-scale TES systems were constructed for measuring heat loss at high temperatures that are compatible with the falling particle receiver concept, both of which had shown very limited heat loss. Through the course of those studies, it became evident that there was a lack of information about the thermal performance of some of the insulating refractory materials used in the experiments at high temperatures, especially insulating firebrick and perlite concrete. This work focuses on determining the thermal conductivities of those materials at high temperatures. The apparatus consists of a prototype cylindrical TES bin built with the same wall construction used in previous studies. An electric heater is placed along the centerline of the bin, and thermocouples are used to measure temperature at the interfaces between all layers. Heat loss is measured across one of the layers whose thermal conductivity had already been well established using laboratory experiments. This value is used to deduce the thermal conductivity of other layers. Three interior temperature levels were considered; namely, 300°C, 500°C, and 700°C. Results show that the thermal conductivity of insulating firebrick remains low (approximately 0.22 W/m.K) at an average layer temperature as high as 640°C, but it was evident that the addition of mortar had an impact on its effective thermal conductivity. Results also show that the thermal conductivity of perlite concrete is very low, approximately 0.15 W/m.K at an average layer temperature of 360°C. This is evident by the large temperature drop that occurs across the perlite concrete layer. These results should be useful for future studies, especially those that focus on numerical modeling of TES bins.
机译:本文建立了在作为为“高温下降粒子接收器”的DOE资助的Sunshot项目执行的工作中构建的热能储存(TES)系统上进行的研究。在先前的研究中,构造了两个小型TES系统,用于测量与下降粒子接收器概念兼容的高温下的热量损失,这两者都显示出非常有限的热量损失。通过这些研究的过程,它变得明显,缺乏关于在高温下实验中使用的一些绝缘耐火材料的热性能的信息,特别是绝缘耐火和珍珠岩混凝土。这项工作侧重于确定高温下这些材料的热导体。该装置由具有在先前研究中使用的相同墙面构造的原型圆柱形TES箱组成。电加热器沿箱的中心线放置,热电偶用于测量所有层之间的接口处的温度。在使用实验室实验中已经很好地建立的热导率已经确定的一层中测量热损失。该值用于推导出其他层的导热率。考虑了三个内部温度水平;即300°C,500°C和700°C。结果表明,绝缘烧伤的导热率在平均层温度高达640℃下保持低(约0.22W / m.K),但显然砂浆的添加对其有效的导热率影响。结果还表明,珍珠岩混凝土的导热率非常低,平均层温度为360℃,大约0.15W / m。这是通过在珍珠岩混凝土层上发生的大的温度降低是显而易见的。这些结果对于未来的研究应该是有用的,特别是那些专注于TES箱的数值模拟的研究。

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