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Efficiency and Loss Models for Key Electronic Components of Hybrid and Plug-in Hybrid Electric Vehicles' Electrical Propulsion Systems

机译:混合动力和插电式电动汽车电气推进系统的关键电子元件效率和损耗模型

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Isolated gate bipolar transistors (IGBTs) are widely used in power electronic applications including electric, hybrid electric, and plug-in hybrid electric vehicles (EVs, HEVs, and PHEVs). The trend towards more electric vehicles (MEVs) has demanded the need for power electronic devices capable of handling power in the range of 10-100kW. However, the converter losses in this power range are of critical importance. Therefore, thermal management of the power electronic devices/converters is crucial for the reliability and longevity of the advanced vehicles. To aid the design of heat exchangers for the IGBT modules used in propulsion motor drives, a loss model for the IGBTs is necessary. The loss model of the IGBTs will help in the process of developing new heat exchangers and advanced thermal interface materials by reducing cost and time. This paper deals with the detailed loss modeling of IGBTs for advanced electrical propulsion systems. An experimental based loss model is proposed. The proposed loss calculation method utilizes the experimental data to reconstruct the loss surface of the power electronic devices by means of curve fitting and linear extrapolating. This enables the calculation of thermal losses in different voltage, current, and temperature conditions of operation. To verify the calculation method, an experimental test set-up was designed and built. The experimental set-up is an IGBT based bi-directional DC/DC converter. In addition, simulation results are presented to verify the proposed calculation method.
机译:隔离的闸门双极晶体管(IGBT)广泛用于电力电子应用,包括电动,混合电动和插入式混合动力电动车(EVS,HEV和PHEV)。更多电动车辆(MEVS)的趋势要求需要能够在10-100kW范围内处理电力的电力电子设备。但是,此功率范围内的转换器损耗具有至关重要的重要性。因此,电力电子设备/转换器的热管理对于先进车辆的可靠性和寿命至关重要。为了帮助推进电动机驱动器中使用的IGBT模块的热交换器的设计,需要一种用于IGBT的损耗模型。 IGBT的损耗模型将通过降低成本和时间来帮助开发新型热交换器和高级热界面材料的过程。本文涉及高级电推进系统IGBT的详细损失建模。提出了一种基于实验的损耗模型。所提出的损耗计算方法利用实验数据通过曲线配件和线性外推重建电力电子设备的损耗表面。这使得能够计算不同电压,电流和温度操作的热损失。为了验证计算方法,设计并构建了实验测试设置。实验设置是基于IGBT的双向DC / DC转换器。此外,提出了仿真结果以验证所提出的计算方法。

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