首页> 外文期刊>Intelligent Transport Systems, IET >Accelerated adaptive super twisting sliding mode observer-based drive shaft torque estimation for electric vehicle with automated manual transmission
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Accelerated adaptive super twisting sliding mode observer-based drive shaft torque estimation for electric vehicle with automated manual transmission

机译:基于自动变速箱的电动汽车加速自适应超扭曲滑模观测器驱动轴扭矩估计

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摘要

The suddenly released torque that accumulated in the elastic drive shaft will bring torsional vibration and jerking feel at the shifting moment. A novel sliding mode observer is proposed to estimate the torque in drive shaft for a motor-transmission integrated powertrain system. Non-linear external characteristics of a driving motor and non-linear drag torque are considered in the electric powertrain system. In order to attenuate the chatting problem, the second-order super twisting sliding mode algorithm with an adaptive gain is adopted. Furthermore, a term system damping' is introduced to accelerate the estimation error convergence. The proposed estimation algorithm is tested on test rig for typical operating conditions. The results show that the torque in drive shaft can be estimated satisfactorily and the tracking error converges to 0 in a short time.
机译:蓄积在弹性驱动轴中的突然释放的扭矩会在换档时刻带来扭转振动和抽动感。提出了一种新颖的滑模观察器,以估计用于电动机-变速器集成动力总成系统的驱动轴中的扭矩。在电动动力总成系统中考虑了驱动马达的非线性外部特性和非线性拖曳扭矩。为了减轻聊天问题,采用具有自适应增益的二阶超扭曲滑模算法。此外,引入术语“系统阻尼”以加速估计误差收敛。所提出的估计算法已在测试装置上针对典型的运行条件进行了测试。结果表明,驱动轴中的扭矩可以令人满意地估算,并且跟踪误差在短时间内收敛到0。

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