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Thermal numerical model of a high temperature heat pipe heat exchanger under radiation

机译:辐射下高温热管换热器的热数值模型

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The heat transfer of an air-to-air heat pipe heat exchanger (HPHEX) with counter flow and a high-temperature range was modeled. The HPHEX was constructed from sodium-stainless steel (STS) heat pipes (HPs) using a staggered configuration. The thermal numerical model was developed by the nodal approach, and the junction temperature and thermal resistance of the HP and heat transfer fluid of each row were defined. Surface-to-surface radiant heat transfer was applied to each row of the liquid metal HPHEX. The cold-side inlet air temperature was determined by iteration to converge to the minimum operating temperature of the sodium HP. The cold-side inlet velocity and position of the common wall were considered as the main variables in evaluating the performance of the liquid metal HPHEX, and their effects on the temperature distribution, effectiveness, heat transfer rate of each row were investigated. The proposed row-by-row heat transfer model is useful for understanding the temperature distribution of each row and can be used to predict the cold-side inlet temperature of a liquid metal HPHEX with counter flow. The recovery heat and effectiveness of the heat exchanger were calculated for various configurations and operating conditions. The simulation results agreed with experimental data to within 5% error for normal operation of the heat pipes, and within 11% error when the minimum temperature was lower than could allow normal operation of the sodium heat pipes.
机译:模拟了具有逆流和高温范围的空气-空气热管热交换器(HPHEX)的热传递。 HPHEX由钠不锈钢(STS)热管(HPs)交错构造而成。通过节点方法建立了热数值模型,并定义了每排高压与传热流体的结温和热阻。将表面间辐射热传递应用于液态金属HPHEX的每一行。通过迭代确定冷侧进气温度,使其收敛到钠HP的最低运行温度。在评估液态金属HPHEX的性能时,将冷侧入口速度和公共壁的位置视为主要变量,并研究了它们对每行温度分布,效率和传热率的影响。所提出的逐行传热模型对于理解每一行的温度分布很有用,并可用于预测具有逆流的液态金属HPHEX的冷侧入口温度。针对各种配置和运行条件计算了热交换器的余热和效率。模拟结果与实验数据相符,对于热管的正常运行,误差在5%以内,而当最低温度低于钠热管的正常运行时,误差在11%的误差以内。

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