带电动液压复合转向系统的电动物流车的长短时域扭矩优化预测和分配方法

Weihe Liang, Wanzhong Zhao, Chunyan Wang, Zhongkai Luan
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引用次数: 0

摘要

电液复合转向系统可通过电液机构的协同控制降低转向能耗,是全球商用车和绿色物流发展的必然趋势。然而,在协同控制中,电液耦合特性不仅会导致系统能耗的增加,还会造成电液切换时系统速度的波动。针对上述问题,本文提出了一种长-短时域转向模式选择和扭矩优化分配策略,将长时域转向模式选择和短时域扭矩分配融为一体。在长期域,以转向能耗为优化指标,通过基于 CNN-LSTM 网络的转向模式选择模型选择最优转向模式,以降低转向能耗。在短时域,结合 Holt Winter 指数平滑法和支持向量回归法进行扭矩预测,综合考虑转向能耗和电液切换平稳性指标。在滚动时域动态优化电液扭矩分配比例,减小电液切换时液压泵转速的波动。仿真和实验结果表明,所提出的方法可以提高电液复合转向系统的切换平顺性,降低系统整体能耗 54.1%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Long-short-time domain torque optimal prediction and allocation method for electric logistics vehicles with electro-hydraulic composite steering system
The electro-hydraulic composite steering system can reduce steering energy consumption through cooperative control of electro-hydraulic mechanisms, an inevitable trend for global commercial vehicles and green logistics. However, in cooperative control, the electro-hydraulic coupling characteristics not only lead to an increase in system energy consumption but also cause fluctuations in system speed during electro-hydraulic switching. In response to the above issues, this paper proposes a long-short-time domain steering mode selection and torque optimal allocation strategy that integrates long-time domain steering mode selection and short-time domain torque allocation. In the long-term domain, with steering energy consumption as the optimization indicator, the optimal steering mode is selected through a steering mode selection model based on the CNN-LSTM network to reduce steering energy consumption. In the short time domain, the Holt Winter exponential smoothing and support vector regression methods are combined for torque prediction, and the steering energy consumption and electro-hydraulic switching smoothness indicators are comprehensively considered. The electro-hydraulic torque distribution ratio is dynamically optimized in the rolling time domain to reduce the fluctuation of hydraulic pump speed during electro-hydraulic switching. The simulation and experimental results show that the proposed method can improve the switching smoothness of the electro-hydraulic composite steering system and reduce the system’s overall energy consumption by 54.1%.
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