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An Experimental Study of Single-Phase Heat Transfer inside an Additively Fabricated Microchannel Heat Exchanger

机译:一种碱性制造的微通道热交换器内单相热传递的实验研究

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Effective system energy management and cooling solutions is critical for a range of increasingly complex systems and missions. Various industries and agencies seek technologies and design techniques to cool ultra-high heat fluxes in various applications, and thereby increase system energy efficiencies in future advanced lasers, radars and power electronics. There has been an increasing interest in exploiting the use of additive manufacturing in developing nontraditional cooling schemes to be built directly into components. This study investigates the heat transfer and pressure loss performance of additively manufactured micro-channel heat exchanger. A heat exchanger of 30 micron-sized channels was manufactured via the Direct Metal Laser Sintering (DMLS) method and tested at a range of Reynolds numbers. Same test setup and configurations have been used to test the DMLS manufactured micro-channel heat exchanger here, and the results are compared to the mini-channel heat exchanger of similar dimension but manufactured traditionally. The results have shown that although DMLS manufactured micro-channel heat exchanger yield a higher-pressure loss, it has shown significantly improved convective heat transfer compared to the mini-channel heat exchanger tested under same conditions but fabricated traditionally. It is likely that non-post processed surface of the DMLS manufactured micro-channels is the main contributor of this augmented heat transfer. Future study is needed to further understand the mechanisms behind the phenomena observed here.
机译:有效的系统能源管理和冷却解决方案对于一系列日益复杂的系统和任务至关重要。各种行业和机构寻求技术和设计技术在各种应用中冷却超高热量通量,从而增加未来先进激光器,雷达和电力电子设备的系统能源效率。对利用添加剂制造的使用时,在发展非传统冷却方案中的使用是越来越兴趣的兴趣。本研究调查了加瘾制造的微通道热交换器的传热和压力损失性能。通过直接金属激光烧结(DMLS)方法制造30微米尺寸通道的热交换器,并在一系列Reynolds数中进行测试。同样的测试设置和配置已经用于测试DMLS制造的微通道热交换器,并将结果与​​类似尺寸的迷你通道热交换器进行比较,但传统上制造。结果表明,尽管DMLS制造的微通道热交换器产生更高压力损失,但与在相同条件下测试但传统上制造的迷你通道热交换器相比,它表明对流热传递显着改善。 DMLS制造的微通道的非后处理表面可能是这种增强热传递的主要因素。需要未来的研究以进一步了解在此观察到的现象背后的机制。

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