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首页> 外文期刊>International Journal of Heat and Mass Transfer >An experiment and three-dimensional numerical simulation of pulsating heat pipes
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An experiment and three-dimensional numerical simulation of pulsating heat pipes

机译:脉动热管的实验与三维数值模拟

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摘要

An experimental and analytical study of pulsating heat pipe (PHP) has been carried out in order to develop a more reliable numerical simulation model. The test PHP was made of transparent Pyrex tubes with the inner diameter of 1.85mm and a total of sixteen tubes formed eight turns of PHP. Both heating and cooling were provided by water jackets in which inlet and outlet temperatures were precisely measured for estimating heat transfer rate. The working fluid was R123. Visualization using a high-speed camera showed various flow patterns as well as the fluid motions. The wall temperature measured at various locations revealed its relation to the fluid motion and the direction of circulation. The circulation motion was dominant in most tests. The heat transfer rate was measured and the difference for filling ratio of 50 and 60% was little. A three-dimensional computational fluid dynamics modeling has been developed for pulsating heat pipe using ANSYS Fluent. The VOF model with variable density and vapor pressure relation successfully simulated the circulating motions of PHP. The predicted wall temperatures showed the same indication of mode of flow motion and the flow direction as observed in the experiment. The predicted heat transfer rates agreed well with the experimental data within 5%. The success of the simulation of the experiment implies that the realizable k-ε turbulence model is appropriate to PHP simulation and the use of variable density for liquid and vapor and the vapor pressure equation is crucial.
机译:为了开发更可靠的数值模拟模型,对脉动热管(PHP)进行了实验和分析研究。测试PHP由内径为1.85mm的透明Pyrex管制成,总共16条管形成8圈PHP。水套可提供加热和冷却功能,其中可精确测量进口和出口温度以估算传热速率。工作流体为R123。使用高速摄像机的可视化显示了各种流动模式以及流体运动。在各个位置测量的壁温揭示了其与流体运动和循环方向的关系。在大多数测试中,循环运动占主导。测量了传热速率,并且填充率的50%和60%的差异很小。使用ANSYS Fluent开发了用于脉动热管的三维计算流体动力学模型。具有可变密度和蒸气压关系的VOF模型成功地模拟了PHP的循环运动。预测的壁温显示出与实验中观察到的流动运动方式和流动方向相同的指示。预计的传热率与实验数据吻合在5%以内。实验仿真的成功表明,可实现的k-ε湍流模型适用于PHP仿真,并且使用可变密度的液体和蒸气以及蒸气压力方程至关重要。

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