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Particle Swarm Optimization for optimal powertrain component sizing and design of fuel cell hybrid electric vehicle

机译:用于最佳动力系元件尺寸和燃料电池混合动力电动车辆设计的粒子群优化

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In this paper, an optimal design to minimize the cost, mass and volume of the fuel cell (FC) and supercapacitor (SC) in a fuel cell hybrid electric vehicle is presented. Because of the hybrid powertrain, component sizing significantly affects vehicle performance, cost and fuel economy. Hence, during sizing, various design and control constraints should also be satisfied simultaneously. In this research, there are two optimization techniques have tested to achieve optimal design of the powertrain. These are Genetic Algorithm (GA) and Particle Swarm Optimization (PSO). The proposed schemes have been simulated by MATLAB/ SIMULINK. Simulation results have demonstrated that the optimal sizing of the powertrain components has been improved when the PSO is applied, which means high-performance operation for FCHEV.
机译:在本文中,提出了一种最佳设计,以最小化燃料电池混合动力汽车中的燃料电池(Fc)和超级电容器(Sc)的成本,质量和体积。由于混合动力系,组件尺寸显着影响车辆性能,成本和燃料经济性。因此,在大小尺寸期间,也应该同时满足各种设计和控制约束。在这项研究中,有两种优化技术已经测试以实现动力系的最佳设计。这些是遗传算法(GA)和粒子群优化(PSO)。所提出的方案已被Matlab / Simulink模拟。仿真结果表明,当应用PSO时,动力总成部件的最佳尺寸已经提高,这意味着FChev的高性能操作。

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