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首页> 外文期刊>International Journal of Refrigeration >Enhancing heat rejection from electronic devices with a supercritical carbon dioxide minichannel heat exchanger
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Enhancing heat rejection from electronic devices with a supercritical carbon dioxide minichannel heat exchanger

机译:用超临界二氧化碳迷你扬声器热交换器增强电子器件的热排斥

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The need for high heat flux dissipation in computing centers due to compactness of electronic components has created unforeseen challenges. Due to its large heat transfer coefficients, numerous studies propose the use of phase-change cooling. However, because of the limited operational temperatures allowed within microprocessors, closed cycles often require the employment of refrigerants, which generally present high GWP (Global Warming Potential)/ODP (Ozone Depletion Potential). Here, a s-CO2 (supercritical carbon dioxide) cooling system for thermal management of compact, multi-electronic circuits is investigated. This minichannel heat exchanger cooling unit takes advantage of variations in s-CO2's properties near the critical point for achieving large thermal conductance and reduced compressing power. It is shown that the cooling unit operating pressure could be controlled to provide maximum cooling rates depending on the thermal load of the electronic circuit. The cooling unit is shown to be compact and to present high heat transfer coefficients (similar to 10(4) Wm(-2)K(-1)), allowing the electronic component to operate with significant heat transfer rates, and with minimal environmental footprint given the low GWP/ODP of CO2. (C) 2019 Elsevier Ltd and IIR. All rights reserved.
机译:由于电子元件的紧凑性,对计算中心的高热量耗散的需要创造了无法预料的挑战。由于其大的传热系数,许多研究提出了使用相变冷却。然而,由于微处理器内允许的有限的操作温度,闭合周期通常需要制冷剂的就业,这通常存在高GWP(全球变暖潜力)/ ODP(臭氧耗尽电位)。这里,研究了用于紧凑,多电子电路的热管理的S-CO2(超临界二氧化碳)冷却系统。该迷你沟热交换器冷却单元利用S-CO2的特性的变化,靠近临界点,以实现大的热传导和降低的压缩功率。结果表明,可以控制冷却单元操作压力以根据电子电路的热负荷提供最大冷却速率。冷却单元被示出为紧凑,并呈现高传热系数(类似于10(4)Wm(-2)k(-1)),允许电子元件以显着的传热速率操作,并且具有最小的环境占用CO2的低GWP / ODP。 (c)2019年Elsevier Ltd和IIR。版权所有。

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