Single-Phase Self-Oscillating Jets for Enhanced Heat Transfer

S. Narumanchi, K. Kelly, M. Mihalic, S. Gopalan, R. Hester, A. Vlahinos
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引用次数: 14

Abstract

In hybrid electric vehicles (HEVs), the inverter is a critical component in the power module, which conditions the flow of electric power between the AC motor and the DC battery pack. The inverter includes a number of insulated gate bipolar transistors (IGBTs), which are high frequency switches used in bi-directional DC-AC conversion. The heat generated in the IGBTs can result in degraded performance, reduced lifetime, and component failures. Heat fluxes as high as 250 W/cm2 may occur, which makes the thermal management problem quite important. In this paper, the potential of self-oscillating jets to cool IGBTs in HEV power modules is investigated experimentally. A full factorial design of experiments was used to explore the impact of nozzle design, oscillation frequency, jet flow rate, nozzle-to-target distance, and jet configuration (free-surface or submerged) on heat transfer from a simulated electronic chip surface. In the free-surface configuration, self-oscillating jets yielded up to 18% enhancement in heat transfer over a steady jet with the same parasitic power consumption. An enhancement of up to 30% for the same flow rate (and velocity since all nozzles have the same exit area) was measured. However, in the submerged configuration, amongst the nozzle designs tested, the self- oscillating jets did not yield any enhancements in heat transfer over comparable steady jets. Results also suggest that oscillating jets provide a more uniform surface temperature distribution than steady jets.
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增强传热的单相自振荡射流
在混合动力汽车(hev)中,逆变器是电源模块中的关键部件,它控制交流电机和直流电池组之间的电力流动。逆变器包括许多绝缘栅双极晶体管(igbt),它们是用于双向DC-AC转换的高频开关。igbt中产生的热量会导致性能下降、寿命缩短和组件故障。热通量可能高达250 W/cm2,这使得热管理问题非常重要。本文通过实验研究了自振荡射流冷却HEV功率模块中igbt的潜力。采用全因子实验设计,探讨喷嘴设计、振荡频率、射流流量、喷嘴到目标的距离以及射流配置(自由面或水下)对模拟电子芯片表面传热的影响。在自由表面结构中,自振荡射流在相同寄生功耗的情况下,传热能力比稳定射流提高了18%。测量结果显示,在相同的流量(和速度,因为所有的喷嘴都有相同的出口面积)下,效率提高了30%。然而,在水下配置中,在测试的喷嘴设计中,自振荡射流在传热方面没有比可比的稳定射流产生任何增强。结果还表明,振荡射流比稳定射流提供更均匀的表面温度分布。
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