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Convective heat transfer in foams under laminar flow in pipes and tube bundles

机译:管道和管束中层流下泡沫的对流传热

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摘要

The present study reports experimental data and scaling analysis for forced convection of foams and microfoams in laminar flow in circular and rectangular tubes as well as in tube bundles. Foams and microfoams are pseudoplastic (shear thinning) two-phase fluids consisting of tightly packed bubbles with diameters ranging from tens of microns to a few millimeters. They have found applications in separation processes, soil remediation, oil recovery, water treatment, food processes, as well as in fire fighting and in heat exchangers. First, aqueous solutions of surfactant Tween 20 with different concentrations were used to generate microfoams with various porosity, bubble size distribution, and rheological behavior. These different microfoams were flowed in uniformly heated circular tubes of different diameter instrumented with thermocouples. A wide range of heat fluxes and flow rates were explored. Experimental data were compared with analytical and semi-empirical expressions derived and validated for single-phase power-law fluids. These correlations were extended to two-phase foams by defining the Reynolds number based on the effective viscosity and density of microfoams. However, the local Nusselt and Prandtl numbers were defined based on the specific heat and thermal conductivity of water. Indeed, the heated wall was continuously in contact with a film of water controlling convective heat transfer to the microfoams. Overall, good agreement between experimental results and model predictions was obtained for all experimental conditions considered. Finally, the same approach was shown to be also valid for experimental data reported in the literature for laminar forced convection of microfoams in rectangular minichannels and of macrofoams across aligned and staggered tube bundles with constant wall heat flux.
机译:本研究报告了圆形和矩形管以及管束中层流中的泡沫和微泡强制对流的实验数据和结垢分析。泡沫和微泡沫是假塑性(剪切稀化)两相流体,由紧密堆积的气泡组成,气泡的直径范围从几十微米到几毫米。他们发现它们可用于分离过程,土壤修复,石油回收,水处理,食品过程以及消防和热交换器中。首先,使用具有不同浓度的表面活性剂吐温20的水溶液来生成具有不同孔隙率,气泡尺寸分布和流变行为的微泡沫。这些不同的微泡沫在装有热电偶的不同直径的均匀加热的圆管中流动。探索了广泛的热通量和流速。将实验数据与单相幂律流体的解析和半经验表达式进行了比较和验证。通过根据微泡沫的有效粘度和密度定义雷诺数,将这些相关性扩展到两相泡沫。但是,根据水的比热和热导率定义了局部Nusselt和Prandtl数。实际上,加热的壁连续地与控制对流热传递到微泡的水膜接触。总体而言,对于所有考虑的实验条件,实验结果与模型预测之间都取得了良好的一致性。最后,对于在矩形小通道中的微泡沫和具有恒定壁热通量的对齐和交错的管束的大泡沫的层流强制对流的文献中,实验方法也被证明对文献报道的实验数据也是有效的。

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