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EVALUATION OF HEAT TRANSFER AND PRESSURE DROP FOR THE HEATER-CORE IN AN AUTOMOTIVE HEAT PUMP SYSTEM

机译:汽车热泵系统中加热器芯的热传递和压降评估

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The heat transfer and pressure drop results for a heater-core of an automotive system are presented and discussed in this article. The heater-core is a type of compact heat exchanger that is used as part of an automobile heating-cooling system for heating the passenger cabin in cold seasons. The automotive heating-cooling system in this study includes a standard refrigeration cycle consists of a condenser, an evaporator, a compressor and an expansion valve using the refrigerant R134a as the working fluid. Furthermore, the system uses two separate secondary fluid loops using a 50% glycol-water mixture to exchange energy with the main refrigeration loop. During the cold weather season, the system is operated in the heat pump mode and one of the fluid loops is used to transfer heat from the condenser to the heater-core for heating the passenger cabin. The heat transfer from the heater-core to the passenger cabin is accomplished using air flow through the heater-core openings in an unmixed and cross-flow fashion. The air-side of the heater-core has a unique louver system that is intended to enhance the air-side heat transfer while the glycol-side has a twisted wire inserts to enhance flow turbulence and heat transfer. Semi-empirical correlations for the heat transfer and pressure drop for both glycol-water mixture and air flows in the heater-core are proposed. The flow of the glycol-water mixture in the heater-core is a single-phase flow within a bundle of parallel circular tubes with the twisted wire inserts. The flow of air through the heater-core is approximated as a flow across a finned-tube compact heat exchanger with continuous plate-fins. A modified Wilson plot technique is applied to determine correlations for heat transfer on both glycol-water mixture and air sides. The frictional pressure drop on the glycol-side is calculated from the total measured pressure drop and adjusted for pressure drops within manifolds and inlet/outlet ports. The results for the heat transfer and pressure drop analyses are finally plotted, discussed and compared with the relevant previous studies. These results show that the heat transfer rate is increased in the glycol-side due to the twisted wire inserts, in comparison with the smooth circular tubes. The air-side heat transfer rate is also enhanced due to the louvers in the air passages, as compared to flat-plate fins in compact heat exchangers.
机译:本文介绍并讨论了汽车系统的加热器芯的传热和压降结果。加热器芯是一种紧凑型热交换器,用作汽车加热冷却系统的一部分,用于在冷季加热乘客舱。本研究中的汽车加热冷却系统包括使用制冷剂R134a作为工作流体的冷凝器,蒸发器,压缩机和膨胀阀组成的标准制冷循环。此外,该系统使用使用50%乙二醇 - 水混合物的两个单独的二级流体环,以将能量与主制冷回路交换。在寒冷的天气季节期间,系统在热泵模式下操作,其中一个流体环用于将热量从冷凝器转移到加热器芯中,以加热乘客舱。从加热器芯的加热器芯从加热器芯开口以未混合和交叉流动的方式实现的热传递。加热器芯的空气侧具有独特的百叶窗系统,该系统旨在增强空气侧传热,而糖侧具有绞合线插入件以增强流动湍流和传热。提出了用于加热器芯中乙二醇 - 水混合物和空气流动的传热和压降的半经验相关性。在加热器芯中的二醇水混合物的流动是具有绞合线插入件的平行圆形管内的单相流。通过加热器芯的空气流动近似为具有连续板翅片的翅片管紧凑型热交换器的流动。应用修改的Wilson绘图技术以确定乙二醇 - 水混合物和空白侧的传热相关的相关性。甘醇侧的摩擦压降由总测量的压降计算,并调节压力下降歧管和入口/出口。最终绘制了传热和压降分析的结果,并与先前的相关研究进行了讨论。这些结果表明,与光滑的圆形管相比,由于双绞线插入件,在乙二醇侧增加了传热速率。与紧凑型热交换器中的平板翅片相比,由于空气通道中的百叶窗也增强了空气侧传热速率。

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