Theoretical Analysis of Heat Recovery Performance Air to Water of a Heat Pipe Heat Exchanger (HPHE)

Y. Pakam, T. Soontornchainacksaeng
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引用次数: 1

Abstract

The purpose of this report is to analyze the heat recovery of the Heat Pipe Heat Exchanger (HPHE) by using ethanol as the working fluid. Heat pipe heat exchanger consists of 90 tubes were placed in staggered arrangement and inside the heat pipes was contained a screen wick and a working fluid. These pipes have been divided into three zones, consisting of evaporation zone, adiabatic zone, condensation zone, in each of zone, has a length of 500 mm, 100 mm and 500 mm, respectively. The mathematical models of HPHE which were simulated in MATLAB have the hot air flowing to evaporation zone with temperature range of 423.15 to 498.15K, and the cold water flowing to the condensation zone with a constant temperature of 303.15K. The ratio of hot air heat capacity rates to water heat capacity rates (C*) are in the range of 0.50 to 1.50. The results showed that the C* is 1.50 and the hot air temperature of 498.15K to be provided the best temperature for an exit cold water flow. The heat transfer coefficient of the hot air flowing to evaporation zone is 99.66 W/m2.K as well as the heat flux of condensation zone is 23.226 W/m2. Furthermore, at C* = 0.50 and the hot air temperature inlet of 423.15K, showed the best effectiveness equal to 0.538. Therefore, the results of the HPHE simulation can be used to design for the boiler in distillery.
热管换热器空气对水热回收性能的理论分析
本文分析了以乙醇为工质的热管换热器(HPHE)的热回收情况。热管换热器由交错排列的90根管组成,热管内装有筛芯和工质。这些管道被分为三个区域,包括蒸发区、绝热区、冷凝区,每个区域的长度分别为500mm、100mm和500mm。在MATLAB中模拟的HPHE数学模型中,热空气流向蒸发区,温度范围为423.15 ~ 498.15K,冷水流向冷凝区,温度范围为303.15K。热空气热容率与水热容率之比(C*)的范围为0.50至1.50。结果表明,C*为1.50,热风温度为498.15K,为出口冷水流动提供了最佳温度。流向蒸发区的热风换热系数为99.66 W/m2。K,凝结区热流密度为23.226 W/m2。当温度* = 0.50,热风入口温度为423.15K时,效果最佳,为0.538。因此,HPHE的模拟结果可用于蒸馏锅炉的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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