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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Flower Shape Oscillating Heat Pipe - A novel type of oscillating heat pipe in a rotary system of coordinates - An experimental investigation
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Flower Shape Oscillating Heat Pipe - A novel type of oscillating heat pipe in a rotary system of coordinates - An experimental investigation

机译:花形振荡热管 - 坐标旋转系统中的一种新型振荡热管 - 实验研究

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摘要

A special type of oscillating heat pipe in a rotary system of coordinates, called a Flower Shape Oscillating Heat Pipe (FSOHP) was experimentally investigated. The unique rotary experimental set-up consists of 8 horizontal bends located on the bottom (evaporator) and the top (condenser), respectively, which were connected by a 1.1 m long vertical quasi-adiabatic section of capillaries with an internal diameter of 2.7 mm and filled with deionized water. In the performed research various rotational speeds, from 0 to 300 rpm and heat loads of between 1.5 and 2.0 kW (from 73.8 to 98.4 kW/m(2)) were studied with a different volumetric Filling Ratio (FR) of 50, 70 and 80%. The experimental results have shown that a higher temperature amplitude in the rotary system is associated with obtaining the appropriate level of pressure required to cause the slug-plug internal displacement flow, in the direction of from the evaporator to the condenser. This phenomenon directly affects the increase in the flow rate of the Working Fluid (WF). By obtaining Start-Up (SU) conditions, the type of flow pattern changes from oscillatory to directional, always fixed in a clockwise direction. It was found that the heat transport capabilities of the FSOHP improve as the centrifugal acceleration increases up to 5 g. In these conditions, the tested device reached a minimum thermal resistance of 0.012 degrees C/W with a heat load of 2 kW and FR =70%.
机译:实验研究了一种特殊类型的坐标坐标旋转系统中的振荡热管(FOHP)。独特的旋转实验装置分别由位于底部(蒸发器)和顶部(冷凝器)上的8个水平弯曲组成,其通过毛细管的1.1M长的垂直准直流段连接,内径为2.7mm并充满了去离子水。在进行的研究中,研究了各种转速,从0到300rpm和1.5和2.0 kW的热载量(从73.8至98.4kW / m(2)),用50,70和70和70 80%。实验结果表明,旋转系统中的较高温度幅度与从蒸发器到冷凝器的方向上获得所需的适当压力水平相关。这种现象直接影响工作流体(WF)的流速的增加。通过获得启动(SU)条件,流动模式的类型从振荡变为定向,始终以顺时针方向固定。发现FSHP的热传输能力随着离心加速度的增加而增加,高达5g。在这些条件下,测试装置达到0.012℃/ W的最小热阻,热负荷为2kW,FR = 70%。

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