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Cloud-based shaft torque estimation for electric vehicle equipped with integrated motor-transmission system

机译:配备集成式电机传动系统的电动汽车基于云的轴扭矩估计

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In order to improve oscillation damping control performance as well as gear shift quality of electric vehicle equipped with integrated motor-transmission system, a cloud-based shaft torque estimation scheme is proposed in this paper by using measurable motor and wheel speed signals transmitted by wireless network. It can help reduce computational burden of onboard controllers and also relief network bandwidth requirement of individual vehicle. Considering possible delays during signal wireless transmission, delay-dependent full-order observer design is proposed to estimate the shaft torque in cloud server. With these random delays modeled by using homogenous Markov chain, robust H_∞ performance is adopted to minimize the effect of wireless network-induced delays, signal measurement noise as well as system modeling uncertainties on shaft torque estimation error. Observer parameters are derived by solving linear matrix inequalities, and simulation results using acceleration test and tip-in, tip-out test demonstrate the effectiveness of proposed shaft torque observer design.
机译:为了提高装备有电机传动系统的电动汽车的振动阻尼控制性能和变速质量,本文提出了一种基于无线网络的可测量电机和车轮转速信号的基于云的轴转矩估计方案。 。它可以帮助减轻车载控制器的计算负担,还可以减轻单个车辆的网络带宽需求。考虑到信号无线传输过程中可能存在的延迟,提出了与延迟有关的全阶观测器设计,以估计云服务器中的轴扭矩。利用均质马尔可夫链对这些随机延迟进行建模,采用鲁棒的H_∞性能可最大程度地减少无线网络引起的延迟,信号测量噪声以及系统建模不确定性对轴转矩估计误差的影响。观测器参数是通过求解线性矩阵不等式得出的,而使用加速测试以及加速,加速和加速测试的仿真结果证明了所提出的轴扭矩观测器设计的有效性。

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