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A Comprehensive Thermal Management System Model for Hybrid Electric Vehicles.

机译:混合动力汽车的综合热管理系统模型。

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摘要

This study describes the creation of efficient architecture designs of vehicle thermal management system (VTMS) for hybrid electric vehicles (HEVs) by using numerical simulations. The objective is to develop guidelines and methodologies for the architecture design of the VTMS for HEVs, which are used to improve the performance of the VTMS and the fuel economy of the vehicle. For the numerical simulations, a comprehensive model of the VTMS for HEVs which can predict the thermal response of the VTMS during transient operations is developed. The comprehensive VTMS model consists of the vehicle cooling system model and climate control system model. A vehicle powertrain model for HEVs is also developed to simulate the operating conditions of the powertrain components because the VTMS components interact with the powertrain components. Finally, the VTMS model and the vehicle powertrain model are integrated to predict thermal response of the VTMS and the fuel economy of the vehicle under various vehicle driving conditions.;The comprehensive model of the VTMS for HEVs is used for the study on the architecture design of the VTMS for a heavy duty series hybrid electric vehicle. Integrated simulation is conducted using three VTMS architecture designs created based on the design guidelines developed in this study. The three architecture designs are compared based on the performance of the VTMS and the impact of the VTMS design on the fuel economy under various driving conditions. The comparison of three optional VTMS architectures shows noticeably significant differences in the parasitic power consumptions of the VTMSs and the transient temperature fluctuations of electric components depending on the architecture design. From the simulation results, it is concluded that, compared with the VTMS for the conventional vehicles, the architecture of the VTMS for the SHEV should be configured more carefully because of the additional heat source components, the complexity of component operations, and the dependency of the parasitic power consumption on driving modes.
机译:这项研究描述了使用数值模拟为混合动力电动汽车(HEV)建立汽车热管理系统(VTMS)的有效架构设计的过程。目的是为混合动力汽车的VTMS的体系结构设计制定指导方针和方法,以改善VTMS的性能和车辆的燃油经济性。对于数值模拟,开发了一种用于混合动力汽车的VTMS的综合模型,该模型可以预测瞬态运行期间VTMS的热响应。全面的VTMS模型包括车辆冷却系统模型和气候控制系统模型。还开发了用于混合动力汽车的车辆动力总成模型,以模拟动力总成组件的工作条件,因为VTMS组件与动力总成组件相互作用。最后,将VTMS模型和车辆动力总成模型进行集成,以预测VTMS的热响应以及在各种车辆行驶条件下的车辆燃油经济性。;用于混合动力汽车的VTMS的综合模型用于架构设计的研究重型混合动力电动汽车的VTMS的制造。使用基于本研究中开发的设计指南创建的三种VTMS架构设计进行集成仿真。根据VTMS的性能以及各种行驶条件下VTMS设计对燃油经济性的影响,对这三种架构设计进行了比较。三种可选VTMS架构的比较表明,取决于架构设计,VTMS的寄生功耗和电气组件的瞬态温度波动存在明显差异。从仿真结果可以得出的结论是,与传统车辆的VTMS相比,SHEV的VTMS的体系结构应更加谨慎地配置,原因是附加的热源组件,组件操作的复杂性以及所依赖的部件。驱动模式上的寄生功耗。

著录项

  • 作者

    Park, Sungjin.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 125 p.
  • 总页数 125
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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