首页> 外文会议>ASME International Technical Conference on Packaging and Intergation of Electronic and Photonic Microsystems >Experimental Characterization of Heat Transfer and Thermal Energy Storage Capability Using Swirling Two-Phase Flow in the Package Integrated Cyclone COoler (PICCO)
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Experimental Characterization of Heat Transfer and Thermal Energy Storage Capability Using Swirling Two-Phase Flow in the Package Integrated Cyclone COoler (PICCO)

机译:在封装中旋转两相流量的热传递和热能储存能力的实验表征在封装中旋转的旋风冷却器(PICCO)

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The increasing demand for high power density wide-bandgap power electronics has propelled heat transfer research leading to a constant increase in the thermal performance of cold plates and heat sinks. Most of this research has focused on reducing thermal resistance of the package which can have a detrimental effect on transient thermal performance if thermal capacitance is reduced.In order to provide both a low thermal resistance and a higher thermal capacitance integrated into the package and near the thermal junction, a new cold plate called the Package Integrated Cyclone COoler (PICCO) was developed. GE Research and the US Army Research Lab collaborated to explore and validate the potential of this concept.The PICCO coldplate, which is enabled by 3D printing, establishes a swirling coolant flow field to remove heat. The swirling flow is anticipated to significantly aid in vapor removal from the surface and hence allow for the fluid to provide thermal capacitance through two-phase heat transfer efficiently.This paper describes the experiment design and development for thermal storage and cooling performance characterization of PICCO. The test rig includes a high-pressure capability gear pump moving fluid first through a Coriolis flowmeter and then through PICCO, where the fluid is accelerated in the cyclone and heated by miniaturized ceramic heaters, simulating SiC power electronics. The coolant releases the accumulated enthalpy to a plate-fin heat exchanger that is connected to a chiller. Several absolute and differential pressure transducers and thermocouples monitor the state ofFC-72. The experiments will provide empirical transfer functions characterizing the PICCO pressure drop, heat transfer coefficient, critical heat flux and thermal energy storage capability.
机译:越来越多的对高功率密度宽带隙电力电子设备的需求具有推进的传热研究,导致冷板的热性能恒定增加。该研究的大部分都集中于降低包装的热阻,如果热电容降低,可以对瞬态热性能产生有害影响。在顺序提供低热电阻和较高的热电容,靠近封装和近散热交界处,开发了一种称为包装集成旋风冷却器(PICCO)的新型冷盘。 GE Research和美国陆军研究实验室合作探索并验证了这一概念的潜力。通过3D打印使能的PICCO Coldplate建立了一个旋转的冷却剂流场,以去除热量。预期旋转流动以显着辅助从表面去除蒸汽去除,因此允许流体有效地通过两相热传递提供热电容。本文描述了用于PICCO的热存储和冷却性能表征的实验设计和开发。试验台包括高压能力齿轮泵移动流体首先通过科里奥利流量计移动,然后通过PICCO,其中流体在旋风内加速并通过小型化陶瓷加热器加热,模拟SIC电力电子器件。冷却剂将积聚的焓释放到连接到冷却器的板翅式热交换器。若干绝对和差压传感器和热电偶监控状态offc-72。实验将提供特征,其特征在于PICCO压降,传热系数,临界热通量和热能储存能力的经验传递函数。

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