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Increasing efficiency of ecological vehicles by integrating auxiliary units directly to the traction shaft

机译:通过将辅助单元直接集成到牵引轴上来提高生态车辆的效率

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The climatisation requirements of Electric Vehicles (EVs) largely depend on its usage location. For example, EVs operated in European countries require heating during the winter season, while those operated in equatorial regions face cooling load throughout the year. To date, the low range for a given battery charge remains the single-most important factor hindering the widespread acceptance of EVs. The principal electrical loads of an EV comprises of the traction and air-conditioning (A/C) compressor motors. These high power loads expedites the battery drain, leading to poor cruise range. The paper proposes a novel design solution geared towards improving the overall operating efficiency of these motors by integrating them into a single housing. The integrated unit is expected to operate close to 100 % efficiency during recuperation mode. The unprecedented improvement in efficiency is achieved through direct mechanical coupling of the traction motor with the A/C compressor during breaking events. The mechanical configuration of the unit is such that the torque and speed characteristics of traction and compressor motors can be independently controlled during drive mode. In addition to improved efficiency, the integrated unit boosts numerous other advantages such as increased reliability, compact design and weight saving.
机译:电动汽车(EV)的气候要求在很大程度上取决于其使用位置。例如,在欧洲国家/地区运行的电动汽车在冬季需要供暖,而在赤道地区运行的电动汽车则全年面临制冷负荷。迄今为止,给定电池电量的低射程仍然是阻碍电动汽车广泛接受的最重要因素。电动汽车的主要电气负载包括牵引和空调(A / C)压缩机电机。这些高功率负载会加速电池消耗,导致巡航距离较差。本文提出了一种新颖的设计解决方案,旨在通过将它们集成到单个壳体中来提高这些电动机的整体运行效率。集成单元在回热模式下有望以接近100%的效率运行。通过在断裂过程中将牵引电机与A / C压缩机直接机械耦合,可以实现效率的空前提高。该单元的机械配置使牵引和压缩机电机的扭矩和速度特性可以在驱动模式下独立控制。除了提高效率外,集成单元还具有许多其他优点,例如,可靠性更高,设计紧凑,重量更轻。

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