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首页> 外文期刊>International Journal of Thermal Sciences >Local heat transfer measurement and thermo-fluid characterization of a pulsating heat pipe
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Local heat transfer measurement and thermo-fluid characterization of a pulsating heat pipe

机译:脉动热管的局部传热测量和热流体特性

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A compact Closed Loop Pulsating Heat Pipe (CLPHP), filled with ethanol (65% v/v), made of four transparent glass tubes forming the adiabatic section and connected with copper U-turns in the evaporator and condenser sections respectively, is designed in order to perform comprehensive thermal-hydraulic performance investigation. Local heat transfer coefficient is estimated by measurement of tube wall and internal fluid temperatures in the evaporator section. Simultaneously, fluid pressure oscillations are recorded together with the corresponding flow patterns. The thermal performances are measured for different heat input levels and global orientation of the device with respect to gravity. One exploratory test is also done with azeotropic mixture of ethanol and water. Results show that a stable device operation is achieved (i.e. evaporator wall temperatures can reach a pseudo-steady-state) only when a circulating flow mode is established superimposed on local pulsating flow. The heat transfer performance strongly depends on the heat input level and the inclination angle, which, in turn, also affect the ensuing flow pattern. The spectral analysis of the pressure signal reveals that even during the stable performance regimes, characteristic fluid oscillation frequencies are not uniquely recognizable. Equivalent thermal conductivities of the order of 10-15 times that of pure copper are achieved. Due to small number of turns horizontal mode operation is not feasible. Preliminary results indicate that filling azeotropic mixture of ethanol and water as working fluid does not alter the thermal performance as compared to pure ethanol case.
机译:设计了一个紧凑的闭环脉动热管(CLPHP),其中装有乙醇(65%v / v),由四个形成绝热段的透明玻璃管制成,并分别与蒸发器和冷凝器段中的铜U型弯头相连。为了进行综合的热工性能研究。通过测量管壁和蒸发器部分的内部流体温度来估算局部传热系数。同时,将流体压力振荡与相应的流型一起记录下来。针对不同的热量输入水平和设备相对于重力的整体方向来测量热性能。还对乙醇和水的共沸混合物进行了一项探索性测试。结果表明,只有在将循环流模式叠加在局部脉动流上的情况下,才能实现稳定的设备操作(即,蒸发器壁温度可以达到伪稳态)。传热性能在很大程度上取决于热量输入水平和倾斜角度,继而又影响随后的流动模式。压力信号的频谱分析表明,即使在稳定的性能范围内,特征流体的振荡频率也无法唯一识别。获得的等效热导率约为纯铜的10-15倍。由于匝数少,水平模式操作是不可行的。初步结果表明,与纯乙醇相比,填充乙醇和水的共沸混合物作为工作流体不会改变其热性能。

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