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Liquid cooled system for aircraft power electronics cooling

机译:用于飞机动力电子设备冷却的液冷系统

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The shift to more electric aircraft presents many electronics packaging and thermal challenges. Innovation in both cooling and mechanical packaging concepts is needed to integrate the required equipment into the aircraft. Heat dissipations in electronics can be significant, and be beyond the cooling capability of existing Electrical Equipment (EE) bay capabilities. The location of electronics in an aircraft is based on usage of the equipment. This presents thermal challenges because these locations are likely difficult to cool. The cooling system must acquire heat at the electronics box and transport the heat to the ultimate heat sink for rejection. There are only two options for heat rejection: either ram/fan air, or fuel. Fuel has limited thermal mass and also quantity of fuel and hence thermal mass varies during flight phase. Amount of heat that can be transferred to fuel is thus limited. Almost all options ultimately reject their heat to ram/fan air. Liquid cooling facilitates large transport distances, high heat fluxes and accompanying size and weight reductions for electronics, yet ultimately rejects heat to air. The complexities of integrating a large liquid loop on a commercial aircraft are numerous but solvable. A successful solution requires an integrated system that is easy to maintain, pays close attention to detail, and is cost effective. This paper will provide an overview of the above systems and integration challenges.
机译:转向更多的电动飞机带来了许多电子封装和热方面的挑战。需要在冷却和机械包装概念上进行创新,以将所需的设备集成到飞机上。电子产品中的散热可能非常重要,并且超出了现有电气设备(EE)托架功能的冷却能力。飞机中电子设备的位置取决于设备的使用情况。由于这些位置可能难以冷却,因此这带来了散热挑战。冷却系统必须在电子箱处获取热量,并将热量传输到最终散热器以排除热量。散热只有两种选择:冲压空气/风扇空气或燃料。燃料具有有限的热质量,并且燃料数量也有限,因此热质量在飞行阶段会发生变化。因此,可以传递给燃料的热量受到限制。几乎所有选项最终都会将其热量排到冲压/风扇空气中。液体冷却有助于延长运输距离,提高热通量,并降低电子产品的尺寸和重量,但最终会将热量排到空气中。在商用飞机上集成大型液体回路的复杂性很多,但可以解决。成功的解决方案需要一个易于维护,密切关注细节并具有成本效益的集成系统。本文将概述上述系统和集成挑战。

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