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The use of segregated heat sink structures to achieve enhanced passive cooling for outdoor wireless devices

机译:使用隔离的散热器结构来实现户外无线设备的增强的被动冷却

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Enviromnental standards which govern outdoor wireless equipment can stipulate stringent conditions:high solar loads (up to 1 kW/m~2), ambient temperatures as high as 55°C and negligible wind speeds (0 m/s). These challenges result in restrictions on power dissipation within a given envelope, due to the limited heat transfer rates achievable with passive cooling. This paper addresses an outdoor wireless device which features two segregated heat sink structures arranged vertically within a shielded chimney structure:a primary sink to cool temperature-sensitive components; and a secondary sink for high power devices. Enhanced convective cooling of the primary sink is achieved due to the increased mass flow within the chimney generated by the secondary sink. An unshielded heat sink was examined numerically, theoretically and experimentally, to verify the applicability of the methods employed. Nusselt numbers were compared for three cases:an unshielded heat sink; a sink located at the inlet of a shield; and a primary heat sink in a segregated structure. The heat sink, when placed at the inlet of a shield three times the length of the sink, augmented the Nusselt number by an average of 64% compared to the unshielded case. The Nusselt number of the primary was found to increase proportionally with the temperature of the secondary sink, and the optimum vertical spacing between the primary and secondary sinks was found to be close to zero, provided that conductive transfer between the sinks was suppressed.
机译:控制户外无线设备的环境标准可以规定严格的条件:高太阳能载荷(高达1 kW / m〜2),环境温度高达55°C,风速可忽略不计(0 m / s)。由于具有被动冷却可实现的有限的传热速率,这些挑战导致给定信封内的功耗限制。本文寻址了一个室外无线装置,其具有两个分离的散热器结构,垂直于屏蔽烟囱结构垂直布置:初级水槽以冷却温度敏感部件;和高功率器件的辅助水槽。由于次级水槽产生的烟囱内的质量流量增加,因此实现了初级水槽的增强的对流冷却。无屏蔽的散热器在理论上和实验上进行了数字上,实验,以验证所用方法的适用性。比较了纽带数量:一个非屏蔽的散热器;位于屏蔽入口处的水槽;和分离结构的主要散热器。散热器,当放置在屏蔽的入口处3倍的水槽的长度时,与非屏蔽案例相比,平均为64%增强了NUSERET数。发现初级的施主数与次级水槽的温度成比例地增加,并且发现初级和次级水槽之间的最佳垂直间隔接近零,只要抑制水槽之间的导电转移。

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