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An automotive hybrid heating system for parallel hybrid passenger cars

机译:用于平行混合乘用车的汽车混合加热系统

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The advancements in hybrid and electric vehicles require an optimal utilization of the on-board energy sources to increase vehicle fuel economy, provide a safe and comfortable driving environment, and extend heating and cooling capacity range. Recently, the application of parallel propulsion technology to design and build hybrid vehicles has caused new concerns on climate control engineering. This study is the first to address the challenges on developing an innovative heating system for parallel hybrid vehicle applications. This paper presents a hybrid heating system for a parallel hybrid passenger car, in which a conventional coolant heater core loop and a heat pump loop are installed to meet the needs of cabin heating. Thermodynamic characteristics of various subsystems are discussed with respect to the variations of ambient temperature through the experimental and analytical comparisons. Furthermore, thermodynamic analysis is applied to evaluate the design and operating effectiveness of the hybrid heating system. To synthesize the operation of the heating system, a hybrid heating concept is proposed and applied to direct the optimal integration and identify the dynamic operating modes through a hypothetical drive simulation. The work reported in this paper is aimed at laying a theoretical and applied foundation to the development of automotive hybrid heating systems.
机译:混合动力和电动车辆的进步需要最佳利用车载能源来增加车辆燃料经济性,提供安全舒适的驾驶环境,并延长加热和冷却能力范围。最近,并行推进技术在设计和构建混合动力车上的应用对气候控制工程产生了新的问题。本研究首先要解决开发用于平行混合动力车型应用的创新供暖系统的挑战。本文介绍了一个平行混合乘用车的混合热系统,其中安装了传统的冷却剂加热器芯环和热泵回路,以满足机舱加热的需要。通过实验和分析比较,关于环境温度的变化讨论各种子系统的热力学特性。此外,应用热力学分析来评估混合动力加热系统的设计和操作效果。为了合成加热系统的操作,提出了一种混合加热概念并应用于通过假设的驱动模拟来引导最佳集成并识别动态操作模式。本文报告的工作旨在为汽车混合热系统的开发奠定理论和应用的基础。

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