首页> 外文会议>ASME international mechanical engineering congress and exposition >THERMAL ASSESSMENT OF A LATENT HEAT ENERGY STORAGE MODULE USING A HIGH TEMPERATURE PHASE CHANGE MATERIAL WITH ENHANCED RADIATIVE PROPERTIES
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THERMAL ASSESSMENT OF A LATENT HEAT ENERGY STORAGE MODULE USING A HIGH TEMPERATURE PHASE CHANGE MATERIAL WITH ENHANCED RADIATIVE PROPERTIES

机译:使用具有增强辐射特性的高温相变材料对潜热存储模块进行热评估

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This paper presents a comprehensive analysis of the heat transfer during the melting process of a high temperature (> 800°C) PCM encapsulated in a vertical cylindrical container. The energy contributions from radiation, natural convection and conduction have been included in the mathematical model in order to capture most of the physics that describe and characterize the problem and quantify the role that each mechanism plays during the phase change process. Numerical predictions based on the finite volume method has been obtained by solving the mass, momentum and energy conservation principles along with the enthalpy porosity method to track the liquid/solid interface. Experiments were conducted to obtain the temperature response of the TES-cell during the sensible heating and phase change regions of the PCM. Continuous temperature measurements of porcelain crucibles filled with ACS grade NaCl were recorded. The temperature readings were recorded at the center of the sample and at the wall of the crucible as the samples were heated in a furnace over a temperature range of 700 °C to 850 °C. The numerical predictions have been validated by the experimental results and the effect of the controlling parameters of the system on the melt fraction rate, total and radiative heat transfer rates at the inner surface of the cell have been evaluated. Results showed that the natural convection is the dominant heat transfer mechanism. In all the experimental study cases, the measured temperature response captures the PCM melting trends with acceptable repeatability. The uncertainty analysis of the experiment yielded an approximate error of ±5.81 °C.
机译:本文对封装在立式圆柱形容器中的高温(> 800°C)PCM的熔化过程中的传热进行了全面分析。数学模型中包括了辐射,自然对流和传导的能量贡献,以便捕获描述和表征问题的大多数物理学,并量化每种机制在相变过程中所起的作用。通过求解质量,动量和能量守恒原理以及焓孔隙率方法来跟踪液/固界面,已经获得了基于有限体积法的数值预测。进行实验以获得在PCM的显热和相变区域期间TES-cell的温度响应。记录了装有ACS级NaCl的瓷坩埚的连续温度测量。在将样品在炉中在700°C至850°C的温度范围内加热时,在样品中心和坩埚壁处记录温度读数。实验结果验证了数值预测的正确性,并评估了系统控制参数对电池内表面熔体分馏率,总传热速率和辐射传热速率的影响。结果表明,自然对流是主要的传热机理。在所有实验研究案例中,所测得的温度响应均以可接受的可重复性捕获了PCM熔化趋势。实验的不确定性分析得出的近似误差为±5.81°C。

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