首页> 外文会议>ASME international heat transfer conference;IHTC14 >CONJUGATE HEAT TRANSFER IN ANNULAR LAMINAR FILM CONDENSATION IN MICROCHANNELS: COMPARISON OF NUMERICAL MODEL TO EXPERIMENTAL RESULTS
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CONJUGATE HEAT TRANSFER IN ANNULAR LAMINAR FILM CONDENSATION IN MICROCHANNELS: COMPARISON OF NUMERICAL MODEL TO EXPERIMENTAL RESULTS

机译:微通道中环形层流膜冷凝中的共轭传热:数值模型与实验结果的比较

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摘要

A comparison of the recently proposed numerical model for annular laminar film condensation heat transfer in micro-channels of different internal shapes (circular, square, rectangular, etc.), including the effects of conjugate heat conduction in the channel walls, is made versus recent independent experimental results experiencing this effect. Notably, the thinning of the condensate film induced by surface tension due to gravity forces and shape of the surface, also known as the 'Grigorig' effect, has a strong consequence on the local heat transfer coefficient in condensation.The model, which is based on a finite volume formulation of the Navier-Stokes and energy equations for the liquid phase only, accounts for the contributions of the surface tension, axial shear stresses and gravitational forces and for the conjugate effects of axial and peripheral wall conduction and non-uniform heat flux. The model was previously validated versus experimental data available in the literature without accounting for conjugate effects, predicting microchannel heat transfer data to within 20% or better.Specifically, the updated version of the model includes the coupling between the thin film fluid dynamics, the heat transfer in the condensing fluid and the heat conduction in the channel wall. Since it is imperative to demonstrate that numerical heat transfer models are accurate and reliable, the present paper focuses on validating this new conjugate model versus recent actual experimental data for various small channels and test fluids experiencing this effect. The results are very encouraging and are presented here.
机译:对最近提出的在不同内部形状(圆形,正方形,矩形等)的微通道中环形层流膜凝结传热的数值模型进行了比较,其中包括在通道壁中共轭传热的影响。独立的实验结果正在经历这种效果。值得注意的是,由重力和表面形状引起的表面张力引起的凝结膜变薄,也称为“格里戈里格”效应,对凝结过程中的局部传热系数有很强的影响。 该模型基于Navier-Stokes的有限体积公式和仅针对液相的能量方程,说明了表面张力,轴向剪应力和重力的贡献以及轴向和周向壁的共轭效应传导和不均匀的热通量。该模型先前已相对于文献中提供的实验数据进行了验证,而未考虑共轭效应,预测微通道传热数据在20%或更好的范围内。 具体而言,模型的更新版本包括薄膜流体动力学,冷凝流体中的热传递和通道壁中的热传导之间的耦合。由于必须证明数值传热模型是准确而可靠的,因此本文着重于验证这种新的共轭模型与各种小通道和经历这种效果的测试流体的最新实际实验数据。结果非常令人鼓舞,并在此处进行介绍。

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