基于fc - sc电池和牵引电机的混合动力汽车鲁棒自适应积分反演控制

M. Islam, S. Bruno, Cosimo Iurlaro, M. La Scala
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引用次数: 0

摘要

化石燃料的短缺、温室气体对环境的影响以及公众对全球变暖问题认识的提高,使运输行业的重点转向了燃料电池混合动力汽车。此外,粗糙的驾驶条件,如湿滑的公路,丘陵地区和不规则的地形,增强了车辆模型中存在的非线性。电阻、电容、电感等参数的时变和非线性会改变混合动力汽车的性能效率。考虑系统模型的非线性特性,提出了一种鲁棒自适应积分反步控制器,以减弱参数不确定性的影响。利用Lyapunov稳定性理论来保证系统的全局渐近稳定。全球统一的轻型车辆测试程序已被用于测试车辆的速度。在MATLAB/Simulink上对所提出的自适应非线性控制器进行了仿真。将所提出的自适应非线性控制器与文献中最近提出的非线性控制器进行了比较研究。为了保证所提控制器的实时性,还考虑了控制器硬件在环实验测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Robust adaptive integral backstepping control of FC-SC-battery and traction motor based hybrid electric vehicles
The shortage of fossil fuels, greenhouse gases impact on environment and the raising awareness in public about global warming issues shifted the focus of transport industry towards fuel cell hybrid electric vehicles. Furthermore, rough driving conditions like slippery highways, hilly areas and irregular terrains enhance the nonlinearities existing in vehicle models. Time varying parameters like resistance, capacitance, inductance and the nonlinearities can alter the performance efficiency of hybrid electric vehicles. In this paper, a robust adaptive integral backstepping controller has been proposed to attenuate the effects of parametric uncertainties while considering the nonlinearities of system model. Lyapunov stability theory has been used to ensure the global asymptotic stability of the system. A worldwide harmonized light vehicle testing procedure has been used to test the speed of vehicle. The proposed adaptive nonlinear controller has been simulated on MATLAB/Simulink. The comparison study of proposed adaptive nonlinear controller has been considered with the recently suggested nonlinear controllers in the literature. To ensure the effectiveness of proposed controller in real-time, a controller hardware in loop experimental test has been considered.
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