室外电子设备热管理用透气外壳的评价

Z. Owens, L. Gilman, R. Dunne, J. McNulty, Abid Kemal
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引用次数: 1

摘要

室外使用的电子外壳的热设计由于需要将系统与水分,灰尘和其他环境污染物隔离开来而变得复杂。传统上,这种隔离是通过使用密封外壳来实现的;然而,透气,防水材料提供了一个机会,以实现通风外壳的热效益,同时也保持密封外壳提供的隔离。虽然透气通风口通常被整合到外壳中以达到压力平衡的目的,但使用透气性作为热管理工具的概念尚未完全实现。在本文中,我们描述了使用计算流体动力学(CFD)模型来探索透气聚合物或纺织品作为外壳的一部分的应用,并评估了与完全密封外壳相比,这种方法的热效益。研究结果表明,有几种传统上用于运动服的防水纺织品,当与内部风扇结合使用时,具有足够的透气性,可以实现显着的冷却效果。该研究还表明,通常用于外壳压力均衡的聚四氟乙烯(PTFE)膜材料太不透气,无法实现显着的冷却效益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of breathable enclosures for thermal management of outdoor electronics
Thermal design of electronic enclosures for outdoor use is complicated by the need to isolate the system from moisture, dust, and other environmental contaminants. Traditionally this isolation is achieved by using sealed enclosures; however, breathable, water-resistant materials present an opportunity to achieve the thermal benefits of a vented enclosure while also maintaining the isolation offered by sealed enclosures. While breathable vents are routinely incorporated into enclosures for the purpose of pressure equalization, the concept of using breathability as a thermal management tool has not been fully realized. In this paper we describe the use of a computational fluid dynamics (CFD) model to explore the application of breathable polymers, or textiles, as a part of the enclosure and assess the thermal benefit of this approach compared to a fully sealed enclosure. The results of the study reveal that there are several water-resistant textiles, traditionally used in sportswear, that have sufficient air permeability to achieve a significant cooling benefit when used in combination with internal fans. This study also reveals that the polytetrafluoroethylene (PTFE) membrane materials that are typically used for enclosure pressure equalization are too air-impermeable to achieve a significant cooling benefit.
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