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Simulation Based Hybrid Electric Vehicle Components Sizing and Fuel Economy Prediction by Using Design of Experiments and Stochastic Process Model

机译:基于仿真的混合动力电动车辆组件尺寸和随机过程模型设计的尺寸和燃料经济性预测

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The aim of this study is to evaluate the Fuel Economy (FE) over the driving cycle for a 48 Volt P2 technology vehicle with different component ratings (battery and electric machine) in the hybrid powertrain, using simulation and Design of Experiments (DoE) tools. The P2 architecture was selected for this study based on an initial assessment of a wide number of possibilities, using the Ricardo “Architecture Independent Modelling (AIM)” toolset. This allows rapid evaluation of different powertrain options independently of a defined hybrid control strategy. For the vehicle with P2 architecture, a DoE test matrix of battery capacity and electric machine power rating was created. The test matrix was then imported into the simulation environment to perform the driving cycle FE simulations. Then, a 48 V P2 Hybrid Electric Vehicle (HEV) FE emulator model was created and interrogated using model visualisation and optimisation methods. For the HEV without an on-board charger (i.e. no Plug-in capability), legislation strictly requires the HEV to complete the driving cycle with a balanced battery State-Of-Charge (SOC) when doing the FE test. Therefore, the paper also compares two methods, optimisation and DoE, for calibrating the HEV control strategy to achieve charge neutrality, and discusses the pros and cons of these methods.
机译:本研究的目的是利用实验(DOE)工具(DOE)工具的仿真和设计,评估48伏P2技术车辆的驾驶循环的燃油经济性(FE)。 。根据广泛的可能性,使用Ricardo“独立建筑(AIM)”工具集,基于对广泛可能性的初步评估来选择P2架构。这允许独立于定义的混合控制策略快速评估不同的动力总成选项。对于具有P2架构的车辆,创建了电池容量和电机功率额定值的DOE测试矩阵。然后将测试矩阵导入模拟环境以执行驾驶循环FE模拟。然后,使用模型可视化和优化方法创建和询问48 V P2混合动力电动车(HEV)FE仿真器模型。对于没有车载充电器的HEV(即没有插件能力),立法严格要求HEV在进行FE测试时使用平衡的电池充电(SOC)完成驾驶循环。因此,本文还比较了两种方法,优化和DOE,用于校准HEV控制策略以实现充电中立,并讨论这些方法的利弊。

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