基于数值和实验分析的逆变器组件冷却效率优化

Q3 Engineering
Anbarasu Govindarasu, Sukumar T, Gugainamasivayam Sathyamoorthy, Vivek Subramanian
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引用次数: 0

摘要

<div class="section abstract"><div class="htmlview段落">未来几年,向100%电动汽车迈进将是汽车行业的关键领域之一。使用电动交通的主要优点是操作灵活性、低碳排放和可再生能源。电动汽车的热管理对系统的可靠性起着至关重要的作用,任何热故障都可能使公司每辆车损失大量资金。在电动交通平台上,逆变器组件广泛用于将直流电(DC)转换为交流电(AC)来操作电机以实现车辆推进。它由各种各样的电子发射器、控制器、电容器和半导体组成,它们在运行过程中会发出大量的热量。由于逆变器本质上是高度温度敏感的,因此有必要改善器件内的温度分布。因此,适当的冷却系统和通风是保持组件运行的必要条件。在本研究中,利用瞬态热分析确定了逆变器的热特性,考虑了散热器中使用的三种不同的翅片几何形状。两个主要的热源是电容器和绝缘栅双极晶体管(IGBT),逆变器组件中的传热是由于传导,对流和辐射。本文讨论了以满足冷却效率为目的的逆变器翅片优化问题。对模拟结果进行了实验验证,并进行了相关性研究,以确定数值方法计算结果的准确性。为一种可有效应用于电动汽车行业的逆变器热管理设计了标准化的仿真方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimization of Cooling Efficiency in Inverter Assembly Using Numerical and Experimental Analysis
In the coming years, moving towards a hundred percent electric vehicles will be one of the key areas in the automotive industry. The main advantages of using e-mobility are operational flexibility, lower carbon emission and regenerative energy. Thermal management in an e-vehicle plays a vital role for the reliability of the system and any thermal failure can cost a significant amount of money to a company per vehicle. Inverter assembly is widely used to convert Direct Current (DC) to Alternating Current (AC) in the e-mobility platform to operate the motor for vehicle propulsion. It consists of various electronic transmitters, controllers, capacitors, and semi-conductors which will emit an enormous amount of heat during their operation. Since inverters are highly temperature sensitive in nature, it is necessary to improve the temperature distribution in the device. For this reason, adequate cooling system and ventilation is inevitable to keep the components operational. In this study, the thermal characteristic of the inverter was determined using transient thermal analysis considering three different fin geometry used in the heat sink. The two major heat sources are capacitors and Insulated Gate Bipolar Transistor (IGBT), and the heat transfer in the inverter assembly is due to conduction, convection, and radiation. This paper deals with the optimization of inverter fin to meet the cooling efficiency. Also, experimental validation was performed to verify the simulation results and correlation study was carried out to find the results accuracy of the numerical method. Simulation methodology was standardized for the thermal management of an inverter which can be effectively used in the electric vehicle industry.
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来源期刊
SAE Technical Papers
SAE Technical Papers Engineering-Industrial and Manufacturing Engineering
CiteScore
1.00
自引率
0.00%
发文量
1487
期刊介绍: SAE Technical Papers are written and peer-reviewed by experts in the automotive, aerospace, and commercial vehicle industries. Browse the more than 102,000 technical papers and journal articles on the latest advances in technical research and applied technical engineering information below.
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