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Energy analysis and optimization design of vehicle electro-hydraulic compound steering system

机译:车辆电动液压复合转向系统的能量分析与优化设计

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In order to reduce the vehicle steering energy consumption and improve the steering road feeling, this work proposes an electro-hydraulic compound steering (EHCS) system, which combines the functions of electric power steering (EPS) and electro-hydraulic power steering (EHPS). For this novel steering system, there is a complex mechanical-electro-hydraulic coupling relationship that affects the steering performance. Thus, how to choose the appropriate parameters to ensure the system of good energy-saving characteristics and steering road feeling is one of the key issues. The power flow of mechanical, electrical and hydraulic subsystems is used to test the coupling relationship between the parameters of the motor, hydraulic pipe, hydraulic valve, power cylinder, and mechanical steering structure, and analyze their influence on the steering energy consumption. According to the results of energy consumption sensitivity analysis, the main coupling parameters are selected as design variables, and the steering energy consumption, steering road feeling and steering wheel return error are taken as optimization objectives. To add population diversity and accelerate convergence velocity, the improved competitive multi-objective particle swarm optimization (CMOPSO) algorithm is proposed and used for optimization. The optimization results illustrate that the CMOPSO has better convergence compared with the basic MOPSO, and the EHCS system optimized by CMOPSO has a better steering economy, with better steering road feeling and smaller steering wheel return error. To verify the comprehensive steering performance, the optimized EHCS system is installed on the vehicle for an on-field road test. Compared with original EHPS, the road test results show that the energy consumption of the modified vehicle under the steering condition significantly decreases, and can also meet the steering assistance and driver road feeling requirements. Furthermore, the real road traffic scene around Nanjing University of Aeronautics and Astronautics is reconstructed to analyze the relationship between the whole vehicle energy consumption and energy characteristics of the EHCS system in the intelligent traffic environments, which verifies the steering energy consumption is reduced by 51.7% under the 15 km test road.
机译:为了减少车辆转向能耗并改善转向感觉,本工作提出了一种电动液压复合转向(EHCS)系统,该系统结合了电动助力转向(EPS)和电动液压助力转向(EHPS)的功能。对于这种新颖的转向系统,存在影响转向性能的复杂的机电液耦合关系。因此,如何选择合适的参数来保证系统具有良好的节能特性和转向感是关键问题之一。机械,电气和液压子系统的功率流用于测试电动机,液压管,液压阀,动力缸和机械转向结构之间的耦合关系,并分析它们对转向能耗的影响。根据能耗敏感性分析的结果,选择主要耦合参数作为设计变量,以转向能耗,方向盘感觉和方向盘回程误差为优化目标。为了增加种群多样性并加快收敛速度​​,提出了一种改进的竞争多目标粒子群算法(CMOPSO)并将其用于优化。优化结果表明,与基本的MOPSO相比,CMOPSO具有更好的收敛性,通过CMOPSO优化的EHCS系统具有更好的转向经济性,更好的转向感觉和较小的方向盘回程误差。为了验证综合转向性能,在车辆上安装了经过优化的EHCS系统,用于现场道路测试。与原始的EHPS相比,路试结果表明,改型车辆在转向条件下的能耗显着降低,并且还可以满足转向辅助和驾驶员道路感觉的要求。此外,通过重构南京航空航天大学周围的真实道路交通场景,分析了智能交通环境下整车能耗与EHCS系统能耗特性之间的关系,验证了转向能耗降低了51.7%。在15公里的测试路下。

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