通过优化冷却液分配阀的设计改进电动汽车的热管理

E. Grotti , D. Monsorno , M. Renzi
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引用次数: 0

摘要

电池电动汽车需要对热流进行精确控制,以保证乘客的舒适度以及电池组的性能和安全性。这通常通过热管理系统来实现,该系统采用某种类型的液体冷却剂来传递热量。冷却剂分配阀用于调节流经交换器的冷却剂流量,例如从热源回收热量,从而提高车辆能效。这类部件的开发成本很高,设计通常也很复杂,因为要满足多种操作功能和制造限制。尽管这种复杂性和这种阀门对电动汽车热管理的积极影响,目前文献中关于这种组件设计程序的作品很少,只提供了对该主题的部分概述,仍然缺乏考虑有效工作条件的全面设计方法。在这项工作中,我们针对扭矩、内部泄漏和压降构建了一个阀门物理模型,并建立了一个优化程序来提高阀门的整体性能。我们将获得的设计与独立优化性能参数的简单方法进行了比较,结果表明,如果采用过于简化的设计方法,可能会产生性能参数严重不足的设计。然后,我们通过一个全局车辆热模型表明,阀门设计对全局车辆性能的影响主要取决于车辆层面的热交换,因此也取决于车辆的运行条件。尤其是当冷热流混合通过阀门时,影响更为显著。对于在全球统一轻型汽车测试程序的 type-3a 循环中进行评估的特定示例车辆,与采用简单方法确定的阀门相比,采用建议的优化程序确定的阀门可使车辆在此条件下的行驶里程增加约 1 公里。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal management improvement in electric vehicles through design optimization of coolant distributor valves

On battery electric vehicles a precise control of heat flows is required for passenger comfort and for both performance and safety of battery packs. This is typically achieved with a thermal management system which employs some type of liquid coolant to transfer heat. Coolant distributor valves are used to regulate coolant flows through the exchangers, for example to recover heat from hot sources, thus to increase vehicle energy efficiency. The development of this type of component is high-priced and the design is generally complex since several operating functions and manufacturing constraints should be satisfied. Despite this complexity and the positive impact such valves have on the thermal management of electric vehicles, a few works are currently available in the literature on design procedures for this component, where only a partial overview of the topic is provided and a comprehensive design methodology considering the effective operating conditions is still missing. In this work we construct a physical model of the valve for torque, internal leakage and pressure drop, and we build an optimization procedure to improve the global performance of the valve. We compare the obtained designs with a simpler approach that optimizes performance parameters independently and we show that designs which severely under-perform with respect to the uncontrolled performance parameters can be produced if an over-simplified design approach is followed. We then show with a global vehicle thermal model that the impact of valve design on global vehicle performance crucially depends on the thermal exchanges at vehicle level and, thus, on its operating conditions. In particular, the impact is considerable when mixing of cold and hot flows through the valve occurs. For a specific example vehicle evaluated in a type-3a cycle of the Worldwide Harmonized Light Vehicle Test Procedure, a valve determined with the proposed optimization procedure allows us to obtain in this condition an increase of about 1 km in the vehicle driving range with respect to a valve defined with the simpler approach.

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