首页> 外文会议>International conference on nuclear engineering >PREDICTIONS OF HEAT TRANSFER COEFFICIENTS AND PRESSURE DROPS TO SUPERCRITICAL PRESSURE HCFC22 FLOWING IN A SMALL TUBE
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PREDICTIONS OF HEAT TRANSFER COEFFICIENTS AND PRESSURE DROPS TO SUPERCRITICAL PRESSURE HCFC22 FLOWING IN A SMALL TUBE

机译:预测小管中超临界压力HCFC22流动的传热系数和压降

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摘要

In this paper, experimental flow and heat transfer data of supercritical pressure HCFC22 flowing in a uniformly heated smooth tube with inner diameter of 1.004 mm at p/p_c=1.1 obtained by the authors are analyzed accounting for the influence of the thermophysical properties variation, the buoyancy effect, as well as the flow acceleration effect due to thermal expansion. These analyses indicate that both of the sharp thermophysical properties variation in the fluid adjacent to the wall with low density, low specific heat and low thermal conductivity and the flow acceleration effect due to thermal expansion have significant negative effects on the heat transfer under the present study conditions for HCFC22, while for the friction factor, the thermophysical properties variation is the predominant factor. The buoyancy effect on the flow and heat transfer is negligible. A new semi-empirical local heat transfer correlation accounting for the thermophysical properties variation and the flow acceleration effect due to thermal expansion for supercritical pressure fluids flowing through a vertical small tube during heating is proposed. The predicted values agree with 95% of the measured data within ±25%. In addition, a flow correlation with thermophysical properties variation correction terms to predict the friction factors for supercritical pressure fluids is proposed which predicts the measured friction factors within ±25%.
机译:本文分析了由作者获得的超临界压力HCFC22在均匀加热的内径为1.004 mm,p / p_c = 1.1的光滑管中流动的实验流动和传热数据,其中考虑了热物理性质的变化,浮力效应,以及由于热膨胀引起的流动加速效应。这些分析表明,在本研究中,低密度,低比热和低导热率的与壁相邻的流体的急剧的热物理性质变化和由于热膨胀引起的流动加速效应均对传热产生显着的负面影响。在HCFC22的条件下,而对于摩擦系数,热物理性质的变化是主要的因素。对流动和传热的浮力影响可以忽略不计。提出了一种新的半经验局部传热相关性,考虑了在加热过程中流过垂直小管的超临界压力流体的热物理性质变化和由于热膨胀引起的流动加速效应。预测值与95%的测量数据相吻合,误差在±25%以内。另外,提出了具有热物理性质变化校正项的流量相关性,以预测超临界压力流体的摩擦系数,该系数将测得的摩擦系数预测在±25%以内。

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