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Heating and cooling vehicle seat via air conditioner coils

机译:通过空调盘管加热和冷却汽车座椅

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A real vehicle seat was modified in order to locate evaporator coils extended from a vehicle air conditioner system just beneath the back and cushion surfaces. The seat back and cushion surface temperatures were measured by several thermocouples. Air conditioner system was operated in heat pump and cooling modes for different compressor speeds. After steady operation of the air conditioner was attained, a live manikin sat to the seat and remained in sitting position for five minutes. The temperatures were recorded during the existence of the manikin and they were recorded for an additional five minutes after the manikin left the seat. The coils embedded under the seat surfaces were made of flexible hoses for the sake of usage due to the shape changing seat surfaces under the load of the manikin weight. Coils were in parallel configuration by the help of a distributer and collector. The temperatures of the seat surfaces were evaluated in respect of the thermal comfort and feasibility of the application. Air conditioner system was also monitored in respect of the COP and energy consumption values. At the instance of sitting, the transient response of the system is very significant due to the weight of the live manikin. However it settles quickly. Cooling was observed to be more realizable while heating seat surfaces had problems due to flow blockage. There were no significant discomfort issues due to the seat surface temperatures and the existence of the coils. The surface temperatures of the seat back exhibited differences from the seat cushion although the formations were same. The orientation of the coils and the weight of the passenger were concluded to be the reason for that. COP was found to be changing between 3 and 3.56 for cooling mode while the highest amount was found for 600 rev/min compressor speed in cooling operation. Heat pump operation had relatively higher COP values ranging between 3.31-3.64. 700 rev/min compressor speed gave the 3.64 COP value for heat pump operation. The difference between COP values of the working modes was concluded to be due to the seat coils and their effect on the additional pumping work. The potential of the application and possible field of studies were evaluated according to the conducted tests and the survey about the topic.
机译:修改了真实的汽车座椅,以便将从汽车空调系统伸出的蒸发器盘管定位在靠背和靠垫表面下方。座椅靠背和坐垫表面温度通过几个热电偶测量。空调系统以热泵和冷却模式运行,以适应不同的压缩机速度。在空调器稳定运行之后,一个带电人体模型坐在座位上并保持坐姿五分钟。在人体模型存在期间记录温度,并在人体模型离开座位后再记录5分钟。由于在人体模型重量的作用下改变了座面的形状,为了使用,嵌入在座面下面的线圈由柔性软管制成。在分配器和收集器的帮助下,线圈处于并行配置。就热舒适性和应用的可行性评估了座椅表面的温度。还监测了空调系统的COP和能耗值。在坐着的情况下,由于人体模型的重量,系统的瞬态响应非常重要。但是,它很快就解决了。观察到冷却更容易实现,而加热座椅表面由于流动阻塞而出现问题。由于座椅表面温度和线圈的存在,没有明显的不适感。尽管结构相同,但座椅靠背的表面温度与座垫有所不同。得出的结论是线圈的方向和乘客的体重。对于制冷模式,发现COP在3到3.56之间变化,而在制冷运行中,以600转/分钟的压缩机速度发现最高值。热泵运行的COP值相对较高,介于3.31-3.64之间。 700转/分钟的压缩机转速给出了热泵运行的3.64 COP值。得出结论,工作模式的COP值之间的差异是由于座圈及其对额外抽水功的影响。根据进行的测试和有关该主题的调查,评估了该应用的潜力和可能的研究领域。

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