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Torque distribution strategies for energy-efficient\ud electric vehicles with multiple drivetrains

机译:高效节能的扭矩分配策略 具有多种传动系统的电动汽车

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摘要

The paper discusses novel computationally efficient torque distribution strategies for electric vehicles with individually controlled drivetrains, aimed at minimizing the overall power losses while providing the required level of wheel torque and yaw moment. Analytical solutions of the torque control allocation problem are derived and effects of load transfers due to driving/braking and cornering are studied and discussed in detail. Influences of different drivetrain characteristics on the front and rear axles are described. The results of an analytically-derived algorithm are contrasted with those from two other control allocation strategies, based on the off-line numerical solution of more detailed formulations of the control allocation problem (i.e., a multi-parametric non-linear programming problem). The control allocation algorithms are experimentally validated with an electric vehicle with four identical drivetrains along multiple driving cycles and in steady-state cornering. The experiments show that the computationally efficient algorithms represent a very good compromise between low energy consumption and controller complexity.
机译:本文讨论了具有独立控制传动系统的电动汽车的新型高效计算扭矩分配策略,旨在最大程度地降低总功率损耗,同时提供所需水平的车轮扭矩和偏航力矩。推导了转矩控制分配问题的解析解,并对驱动/制动和转弯引起的载荷传递效应进行了研究和详细讨论。描述了不同的传动系统特性对前后桥的影响。基于控制分配问题(即多参数非线性规划问题)的更详细公式的离线数值解,将分析得出的算法的结果与其他两种控制分配策略的结果进行了对比。该控制分配算法已通过电动汽车的实验验证,该电动汽车具有四个相同的传动系统,且沿多个行驶周期且处于稳态转弯。实验表明,计算效率高的算法在低能耗和控制器复杂度之间取得了很好的折衷。

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