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Development of a metal hydride refrigeration system as an exhaust gas-driven automobile air conditioner

机译:开发金属氢化物制冷系统作为废气驱动的汽车空调

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Aiming at developing exhaust gas-driven automobile air conditioners, two types of systems varying in heat carriers were preliminarily designed. A new hydride pair LaNi_(4.61)Mn_(0.26)Al_(0.13)/La_(0.6)Y_(0.4)Ni_(4.8)Mn_(0.2) was developed working at 120-200℃/20-50℃/-10-0℃. P-C isotherms and reaction kinetics were tested. Reaction enthalpy, entropy and theoretical cycling coefficient of performance (COP) were deducted from Van't-Hoff diagram. Test results showed that the hydride pair has flat plateau slopes, fast reaction dynamics and small hystereses; the reaction enthalpy of the refrigeration hydride is -27.1 kJ/mol H_2 and system theoretical COP is 0.711. Mean particle sizes during cycles were verified to be an intrinsic property affected by constitution, heat treatment and cycle numbers rather than initial grain sizes. Based on this work pair, cylindrical reactors were designed and a function proving metal hydride intermittent refrigeration system was constructed with heat conducting oil as heat source and water as heat sink. The reactor equivalent thermal conductivity is merely 1.3 W/(mK), which still has not meet practical requirement. Intermittent refrigeration cycles were achieved and the average cooling power is 84.6 W at 150℃/30℃/0℃ with COP being 0.26. The regulations of cycling performance and minimum refrigeration temperature (MRT) were determined by altering heat source temperature. Results showed that cooling power and system COP increase while MRT decreases with the growth of heat source temperature. This study develops a new hydride pair and confirms its application in automobile refrigeration systems, while their heat transfer properties still need to be improved for better performance.
机译:为了开发排气驱动的汽车空调器,初步设计了两种不同载热体的系统。开发了一种新的氢化物对LaNi_(4.61)Mn_(0.26)Al_(0.13)/ La_(0.6)Y_(0.4)Ni_(4.8)Mn_(0.2)的工作温度为120-200℃/ 20-50℃/ -10- 0℃。测试了P-C等温线和反应动力学。从Van't-Hoff图中推导出反应焓,熵和理论循环性能系数(COP)。测试结果表明,该氢化物对具有平坦的平台斜率,快速的反应动力学和小的迟滞。制冷剂氢化物的反应焓为-27.1 kJ / mol H_2,系统理论COP为0.711。循环中的平均粒径被证实是一种固有性质,受结构,热处理和循环次数的影响,而不是初始粒度的影响。基于该工作对,设计了圆柱形反应堆,并构造了功能可靠的金属氢化物间歇式制冷系统,该系统以导热油为热源,水为散热器。反应堆的等效热导率仅为1.3 W /(mK),仍不符合实际要求。在150℃/ 30℃/ 0℃下实现了间歇的制冷循环,平均冷却功率为84.6 W,COP为0.26。循环性能和最低制冷温度(MRT)的规定是通过更改热源温度来确定的。结果表明,随着热源温度的升高,冷却功率和系统COP增大,而MRT减小。这项研究开发了一种新的氢化物对,并确认了其在汽车制冷系统中的应用,尽管它们的传热性能仍需要改进以提高性能。

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