首页> 外文期刊>International Journal of Heat and Mass Transfer >Thermal management of a power electronic module employing a novel multi-micro nozzle liquid-based cooling system: A numerical study
【24h】

Thermal management of a power electronic module employing a novel multi-micro nozzle liquid-based cooling system: A numerical study

机译:采用新型多微喷嘴液体冷却系统的电力电子模块的热管理:数值研究

获取原文
获取原文并翻译 | 示例
           

摘要

In this study, the cooling capability of a novel design liquid jet impingement multi-micro nozzle cooling system for a high heat flux commercial Si-IGBT power modules has been numerically investigated. The Pressure-based finite-volume techniques method is used. High operating temperature and non-uniformity of the temperature distribution of power modules can lead to thermal reliability problems such as module deformation and performance degradation. So, the development of cooling techniques for thermal management and innovation in the design of the cooling system is indispensable. A prominent feature of the designed cooling system is the uniform distribution of the cooling fluid by the micro-nozzles. The effect of mass flow rate and the ratio of the micro-nozzle at three heat fluxes of 100, 175, and 250W/cm~2 on the cooling performance and pumping power have been investigated. Based on the results, in a constant mass flow rate, by decreasing the ratio of the nozzle from 1.0 to 0.45, the temperature significantly decreases while increasing the pumping power is negligible; less than 1 W. When the nozzle ratio is 0.3, the increase in the pumping power is considerable, and using the nozzle ratio less than 0.4 is not recommended. According to the results, at minimum nozzle ratio (0.3) and maximum flow rate, the pumping power is maximum (23 W) and when heat flux on the IGBT is 250 W/ cm~2, in nozzle ratio of 0.45, and at the minimum flow rate (0.57 lit/min), the operating temperature is 117 ℃, and the pumping power is 0.25 W, which can be considered as an optimum case in the present study.
机译:在这项研究中,已经对新型设计的液体喷射冲击多微喷嘴冷却系统对高热通量商用Si-IGBT电源模块的冷却能力进行了数值研究。使用基于压力的有限体积技术方法。较高的工作温度和电源模块温度分布的不均匀会导致热可靠性问题,例如模块变形和性能下降。因此,开发用于热管理的冷却技术以及在冷却系统设计中进行创新是必不可少的。设计的冷却系统的突出特点是通过微喷嘴均匀分布冷却液。研究了质量流量和三种热通量分别为100、175和250W / cm〜2的微喷嘴的比例对冷却性能和泵浦功率的影响。根据该结果,在恒定的质量流量下,通过将喷嘴的比例从1.0降低到0.45,温度显着降低,而泵浦功率的增加可忽略不计。小于1W。当喷嘴比为0.3时,泵浦功率的增加非常可观,建议不要使用小于0.4的喷嘴比。根据结果​​,在最小喷嘴比(0.3)和最大流量下,泵浦功率最大(23 W),当IGBT上的热通量为250 W / cm〜2时,喷嘴比为0.45,并且在最小流量(0.57升/分钟),工作温度为117℃,泵浦功率为0.25 W,可以认为是本研究的最佳案例。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号