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Transient performance evaluation of automotive secondary loop systems.

机译:汽车次级环路系统的瞬态性能评估。

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摘要

Automotive air-conditioning is a high impact technology where improvements in energy consumption and environmental performance can make a significant difference in fuel efficiency and comfort. The mandatory phase out of R134a as refrigerant in the European Union has set the stage for new systems and alternative refrigerants. While some of these refrigerants, such as R152a or R290, have a low Global Warming Potential, their flammability requires secondary loop systems to be used. The added thermal mass of such systems may increase power consumption and delay cool down while benefitting thermal comfort during start/stop operation. The recent revival of electric vehicles, as well as the associated focus on air-conditioning energy consumption, provides new challenges and opportunities.;This research focuses on the performance evaluation of refrigerants R152a and R290 during transient operation in secondary loop systems, quantification of thermal storage benefits for start/stop operation, and investigation of energy saving potentials in electric vehicles through the use of advanced air-conditioning system controls and cabin preconditioning.;A test facility was built to dynamically test secondary loop systems over a wide range of pull down conditions and drive cycles using a passenger cabin model and associated controls. It was shown that R290 is a viable alternative in secondary loop systems and system performance may be on par or better compared to R134a direct expansion systems. The preservation of cooling capacity and thermal comfort during off-cycle periods were quantified for a secondary loop system, as well as a combined ice storage system. System efficiency increases with longer off-cycle periods compared to direct expansion systems. Advanced compressor control strategies and the use of cabin preconditioning can make use of this characteristic and improve energy efficiency by more than 50%. Ice storage may be used in combination with cabin preconditioning to preserve comfort for an extended driving time with reduced use of the vapor compression cycle. A Modelica model of the secondary loop system was developed and validated with experimental data. The model enables dynamic simulation of pull-down and drive cycle scenarios and was used to study the effects of coolant volume and coolant concentration on transient performance.
机译:汽车空调是一项高影响力技术,其能耗和环境性能的改善可以显着改善燃油效率和舒适性。欧盟强制性淘汰R134a作为制冷剂为新系统和替代制冷剂奠定了基础。尽管其中一些制冷剂(例如R152a或R290)的全球升温潜能值较低,但其易燃性要求使用次级回路系统。这种系统增加的热质量可能会增加功率消耗并延迟冷却,同时在启动/停止操作期间有益于热舒适性。电动汽车的近期复兴以及与此相关的对空调能耗的关注为我们带来了新的挑战和机遇。这项研究的重点是在二次回路系统瞬态运行过程中对制冷剂R152a和R290的性能进行评估,对热量进行量化通过使用先进的空调系统控制和机舱预处理,可存储启/停操作的存储效益,并研究电动汽车的节能潜力。建造了一个测试设备,可在广泛的下拉范围内动态测试二次回路系统使用客舱模型和相关控件的条件和驾驶周期。结果表明,R290在次级环路系统中是可行的替代方案,与R134a直接扩展系统相比,系统性能可能相当或更好。对于辅助循环系统以及组合式储冰系统,量化了在非循环期间保持的制冷能力和热舒适性。与直接扩展系统相比,系统的效率随着更长的停机时间而提高。先进的压缩机控制策略和机舱预处理的使用可以利用这一特性,并将能源效率提高50%以上。储冰器可以与机舱预处理结合使用,以在延长的驾驶时间中保持舒适感,同时减少蒸汽压缩循环的使用。开发了二次回路系统的Modelica模型,并通过实验数据进行了验证。该模型能够对下拉和行驶周期情况进行动态仿真,并用于研究冷却液量和冷却液浓度对瞬态性能的影响。

著录项

  • 作者

    Eisele, Magnus.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Engineering Automotive.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 311 p.
  • 总页数 311
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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