离心加速度对旋转闭环脉动热管传热特性的影响

Kritsada On-ai, N. Kammuang-lue, P. Sakulchangsatjatai, P. Terdtoon
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引用次数: 1

摘要

本文的目的是定性地研究离心加速度对旋转闭环脉动热管(RCLPHP)传热特性的影响。RCLPHP可用于冷却旋转装置,如盘式制动器或汽轮机。它提高了使用寿命,减少了设备的磨损。在最近的研究中,研究了几个参数对CLPHP热工性能的影响。蒸发器的内径、截面长度、转动曲度和工作流体。一些研究人员将这些参数以无因次形式导出,然后建立相关性来预测特定倾角下CLPHP的热性能。另一个影响旋转或移动热管的参数是离心加速度。RCLPHP的内部诱导离心加速度影响工质的循环。当凝结水流动方向与加速度方向一致时,定义离心加速度为正。反过来,如果离心加速度为负,则凝结液与加速度的流动方向相反。这个加速度影响了液相的循环。由于液体质量较大,大部分液体积聚在蒸发器段的末端。当rclphpi被加热时,该部分的工作流体由液态变为气相。然后循环到冷凝器段或另一端进行冷凝。当离心加速度增大时,热阻减小。由于工作流体速度比低加速度下的工作流体速度高,冷凝液可以快速循环到蒸发段。在未来的研究中,将进一步定量研究离心和参数对RCLPHP热性能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of Centrifugal Acceleration on Heat Transfer Characteristics of Rotating Closed-Loop Pulsating Heat Pipes
The objective of this paper is to qualitatively study the effect of centrifugal acceleration on heat transfer characteristic of a rotating closed-loop pulsating heat pipe (RCLPHP). RCLPHP can be applied to cool rotating devices, such as disc brake or steam turbine. It improves the lifetime and reduces the wear of the device. In recent studies, effects of several parameters on thermal performanceof CLPHP have been investigatede.g. inner diameter, length of evaporator section, meandering of turn and working fluid. Some researchersderivedthese parameters in dimensionless form, and then established correlation to predict thermal performance of CLPHP at specified inclination angles. Another parameter that affects rotating or moving heat pipe is centrifugal acceleration. The induced internal centrifugal acceleration of the RCLPHP affects the circulation of working fluid. When flow direction of condensate is in the same direction as the acceleration,the centrifugal acceleration is defined to be positive. In turn,thecondensate is in thecounter-flow direction to the acceleration, if centrifugal acceleration is negative. This acceleration affectsthe circulation of liquid phase. Because of heavier mass of the liquid, most of itaccumulatedat the end part of evaporator section. When the RCLPHPis heated, working fluid in this section changes from liquid to vapor phase. Then it circulates to condenser section, or another end, and condensed. When centrifugal acceleration is increased, thermal resistance decreases. The condensate can quickly circulate to evaporation sectionbecause working fluid velocityis higher than those at lower acceleration. In the future, researches to quantitatively study on the effects of centrifugal and parameters which related to the thermal performance of RCLPHP will be further conducted.
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