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Design of Efficient Air-Conditioning Systems for Electric Vehicles

机译:电动汽车的高效空调系统设计

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摘要

Among all the auxiliary components in conventional and electric vehicles, air-conditioning (AC) systems present the highest energy consumption. In fully electrical vehicles (FEVs), the heating of the cabin becomes an additional challenge as there is less waste heat available. Therefore, a careful design of the air-conditioning system and of the operation strategies is necessary to reach a reasonable FEV autonomy without compromising the thermal comfort. This paper presents a tool for the design, analysis and optimization of an efficient air-conditioning system for an electric minibus. It consists of dynamic models of each component of the system that have been developed and fully validated individually. Finally, they have been coupled together to simulate the overall vehicle performance of the vehicle in MATLAB-SIMULINK. The core of the system is a water-to-water reversible heat pump with a variable speed compressor. The internal water loop connects the heat pump to the air-coolers inside the cabin while the external water loop is integrated within the heat rejection system of the power electronics. An automatic control system regulates the speed of the compressor, the blowers and the circulation pumps to reach thermal comfort. The power consumption has been analysed under different working conditions and control settings using the overall vehicle model. The latter is a powerful tool not only to design and select MAC equipment, but also to find the most efficient operation strategies.
机译:在常规和电动汽车的所有辅助组件中,空调(AC)系统的能耗最高。在全电动汽车(FEV)中,由于可利用的余热较少,因此车厢的加热成为另一个挑战。因此,在不损害热舒适性的前提下,必须对空调系统和操作策略进行仔细设计,以实现合理的FEV自主性。本文提出了一种工具,用于设计,分析和优化电动小巴的高效空调系统。它由系统的每个组件的动态模型组成,这些模型已经分别开发和完全验证。最后,将它们耦合在一起,以在MATLAB-SIMULINK中模拟车辆的整体车辆性能。该系统的核心是带有变速压缩机的水对水可逆热泵。内部水回路将热泵连接至机舱内部的空气冷却器,而外部水回路则集成在电力电子设备的散热系统中。自动控制系统调节压缩机,鼓风机和循环泵的速度,以达到热舒适性。已使用整个车辆模型在不同的工作条件和控制设置下分析了功耗。后者是一个强大的工具,不仅可以设计和选择MAC设备,而且可以找到最有效的操作策略。

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