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A Novel Platform for Power Train Model of Electric Cars with Experimental Validation Using Real-Time Hardware in-the-Loop (HIL): A Case Study of GM Chevrolet Volt 2nd Generation

机译:实验验证电动汽车电力汽车电力列车模型的新颖平台(HIL):GM Chevrolet Volt第2代的案例研究

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This paper presents a novel platform for accurate mathematical modeling of electric cars' propulsion system. It provides, for the first time, a Hardware in-the-Loop (HIL) real-time experimental verification for a case study of GM Chevrolet Volt for both power and control parts in addition to the mechanical part. The novelty of this work can be split into three steps; first, each component of the power-train is accurately modeled taking transient dynamics of all parts of the electric vehicle (EV) into consideration. Secondly, a PSIM simulation platform is consequently developed, to demonstrate the validity of this mathematical modeling. Finally, the Typhoon HIL is used to provide the experimental verification of the proposed model in real-time, which precisely validate the viability of the model. The HIL technology is used to prototype and test the control proposed system while simulating the power circuit on the HIL module platform. The Permanent Magnet Synchronous Motor (PMSM) and the Power Electronics hardware components are simulated in real-time at which the parameters can be changed while the simulation is running. However, the control algorithm is generated as a C code and downloaded to the TI controller that exists on a Digital Signal Processing (DSP) board. The results from the simulation based on PSIM environment and hardware validations using HIL are in agreement, which validates the developed model. The performance has been investigated under different load operating conditions in real-time to verify its robustness. The case study can be extended for any electric car as it provides a generic platform for modeling any propulsion system.
机译:本文介绍了电动汽车推进系统准确数学建模的新颖平台。它首次提供硬件内 - 循环(HIL)实时实验验证,以便在机械部件之外对电源和控制部件的GM雪佛兰伏特的案例研究。这项工作的新颖性可以分为三个步骤;首先,可以考虑到电动车辆(EV)的所有部件的瞬态动态,准确地建模动力传动系的每个组件。其次,因此开发了PSIM仿真平台,以展示该数学建模的有效性。最后,台风HIL用于实时提供所提出的模型的实验验证,这精确地验证了模型的可行性。 HIL技术用于原型并测试控制所提出的系统,同时模拟HIL模块平台上的电源电路。永磁同步电机(PMSM)和电力电子硬件组件在实时模拟,在仿真运行时可以更改参数。然而,将控制算法作为C代码生成并下载到数字信号处理(DSP)板上存在的TI控制器。根据PSIM环境和使用HIL的硬件验证的模拟结果符合验证开发的模型。在不同负载操作条件下实时调查了性能,以验证其鲁棒性。案例研究可以延长任何电动车,因为它提供了一种用于建模任何推进系统的通用平台。

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