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Hydraulic regenerative braking system studies based on a nonlinear dynamic model of a full vehicle

机译:基于全车辆非线性动态模型的液压再生制动系统研究

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To obtain a reasonable match of the main parameters of a hydraulic regenerative braking system and to improve the energy recovery efficiency, this paper establishes the corresponding mathematical models and testbed for a hydraulic regenerative braking system. The proposed system is analysed and verified through simulation and experiments. Then, the linear and nonlinear mathematical models of a full vehicle are built, with joint simulation of the hydraulic regenerative braking system, and the influence of the hydraulic regenerative braking system on braking performance under different running conditions is discussed. The results indicate that the deviations in the simulation results between the linear and nonlinear dynamic models are very small. When the brake deceleration and road adhesion coefficient are 0.2, deviations are within 1.38 %. With an increase in the braking deceleration and road adhesion coefficient, the deviations in braking time and distance between the systems become larger and larger. When the braking deceleration and road adhesion coefficient are 0.7, the deviation reaches 30 %. Finally, with braking energy recovery efficiency and braking distance as the optimization objectives, the nonlinear braking energy recovery system parameters are optimized. After optimization, the energy recovery efficiency of the nonlinear system reaches 76.3 %, and the braking distance is 22.8 m.
机译:为了获得液压再生制动系统的主要参数的合理匹配并提高能量回收效率,本文建立了相应的数学模型和液压再生制动系统的测试平台。通过模拟和实验分析并验证所提出的系统。然后,建立了全车辆的线性和非线性数学模型,具有液压再生制动系统的联合模拟,以及液压再生制动系统对不同运行条件下的制动性能的影响。结果表明,线性和非线性动态模型之间的仿真结果中的偏差非常小。当制动减速和道路粘附系数为0.2时,偏差在1.38%范围内。随着制动减速和道路粘附系数的增加,系统之间的制动时间和距离变大而且更大的偏差。当制动减速和道路粘附系数为0.7时,偏差达到30%。最后,通过制动能量回收效率和制动距离作为优化目标,优化非线性制动能量回收系统参数。优化后,非线性系统的能量回收效率达到76.3%,制动距离为22.8米。

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