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Performance Analysis of the ABS Control on Parallel Hybrid Electric Vehicle Equipped with Regenerative Braking System

机译:具有再生制动系统的并联混合动力电动汽车ABS控制性能分析

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Anti-lock brake system (ABS) prevents the vehicle wheels from locking up and reduces the total stopping distance as far as possible. The current implementation is based on a traditional hydraulic disk brake and small wheel inertia. Seen the need for making vehicles cleaner in the future, it can be expected that an increasing the amount of vehicles will be equipped with electric motors able to regenerate energy during braking. The addition of this electric motor changes the properties of the brake actuation and has an influence on the wheel inertia. However, the objective of this paper is to study the change of the dynamics induced by the regenerative braking which assess the performance of traditional ABS systems on the parallel hybrid electric vehicles. The MATLAB software to establish the simulation model, which include the single wheel dynamic model, hydraulic brake system model, electric motor brake system model and traditional ABS controller were used. Moreover, an integrated control scheme for regenerative braking based on anti-lock regenerative brake system (ARBS) is implemented. Using ARBS, the braking and regenerative performances of parallel hybrid electric vehicle (PHEV) have significantly improved in slippery roads while the slip ratios are kept between 0.15 and 0.25. The simulation results show that the control scheme not only realizes the harmony and compatibility between electric motor brake and conventional friction brake, recovering the energy, but also fully takes the advantage of quick response of motor braking, better realizing the anti-lock braking control of vehicles. In addition, the simulation results also show that the hybrid electric vehicle (HEV) with the braking-driving integrated system has better ABS performances than the HEV with the traditional brake system, and has more the regenerative brake system (RBS) efficiency than other regenerative braking systems.
机译:防抱死制动系统(ABS)防止车轮锁定并尽可能减少总停止距离。目前的实施基于传统的液压盘式制动器和小型惯性。看到需要在将来制造车辆清洁剂,可以预期增加车辆的数量将配备能够在制动期间能够再生能量的电动机。添加该电动机改变制动致动的性质,对车轮惯性产生影响。然而,本文的目的是研究再生制动诱导的动力学的变化,这些制动评估了传统ABS系统在平行混合动力电动车上的性能。 MATLAB软件建立了仿真模型,包括单轮动态模型,液压制动系统模型,电动机制动系统模型和传统ABS控制器。此外,实施了基于防锁再生制动系统(ARB)的再生制动的集成控制方案。使用ARB,并联混合动力电动车辆(PHEV)的制动和再生性能在滑滑道路上显着改善,而滑动比率保持在0.15和0.25之间。仿真结果表明,控制方案不仅实现了电动机制动器和传统摩擦制动器之间的和谐和兼容性,恢复了能量,还充分利用了电动机制动的快速响应,更好地实现了防锁制动控制车辆。此外,仿真结果还表明,具有制动驱动的集成系统的混合动力电动车(HEV)比具有传统制动系统的HEV具有更好的ABS性能,并且具有比其他再生的再生制动系统(RBS)效率更高制动系统。

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