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Regenerative active suspension system with residual energy for in-wheel motor driven electric vehicle

机译:轮式电机驱动电动汽车的带有剩余能量的再生主动悬架系统

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The active suspension system is a practical solution to improve vehicle comfort and safety by applying controlled forces to the vehicle body and wheels. However, the widespread application of the system is significantly inhibited by their large power demands. This paper proposes a new regenerative active suspension system for the in-wheel motor driven electric vehicles. In this system, a new advance dynamic-damper mechanism with a suspended driving motor is designed. Two electromagnetic actuators are controlled to imitate the behaviors of skyhook damper and conventional shock absorber for better ride comfort and harvesting energy from the vibration of suspended driven motor, respectively. An improved boost-buck converter is employed to regulate the damping force only utilizing the feedback of current of actuators. To further improve the regenerative efficiency, a variable threshold strategy is designed for the hybrid energy storage system to keep its terminal voltage locating in high-efficiency regions, which are identified through analyzing system performance. The results indicate that the desired damping forces of actuators are precisely tracked regardless of the voltage conditions. The vehicle ride comfort and comprehensive performance are improved by 52% and 14%, respectively. In addition, the variable thresholds strategy shows higher regenerative efficiency than the fixed one. After offsetting the energy consumed by active control, the average regenerated power is 4.9, 17.7, 49.2 and 45.0 W on A, B, C and D class roads, respectively. The proposed system is verified as a practical solution to simultaneously improve the dynamic and energy conservation performances of vehicles.
机译:主动悬架系统是通过向车身和车轮施加受控力来提高车辆舒适性和安全性的实用解决方案。然而,系统的广泛应用由于其大功率需求而受到严重阻碍。本文提出了一种用于轮毂电机驱动的电动汽车的新型再生主动悬架系统。在该系统中,设计了一种具有悬挂式驱动电机的新型先进的动态阻尼器机构。两个电磁致动器被控制以模仿悬钩减震器和传统减震器的行为,以分别提供更好的乘坐舒适性并从悬挂的驱动电机的振动中收集能量。改进的升压-降压转换器仅通过利用执行器电流的反馈来调节阻尼力。为了进一步提高再生效率,为混合储能系统设计了可变阈值策略,以使其端电压保持在高效率区域,这可以通过分析系统性能来确定。结果表明,无论电压条件如何,都可以精确跟踪执行器的期望阻尼力。车辆乘坐舒适性和综合性能分别提高了52%和14%。另外,可变阈值策略显示出比固定阈值策略更高的再生效率。抵消主动控制所消耗的能量后,A,B,C和D类道路的平均再生功率分别为4.9、17.7、49.2和45.0W。所提出的系统被验证为同时提高车辆动态和节能性能的实用解决方案。

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