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首页> 外文期刊>Journal of Non-Newtonian Fluid Mechanics >Heat transfer enhancement in laminar impinging flows with a non-newtonian inelastic fluid
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Heat transfer enhancement in laminar impinging flows with a non-newtonian inelastic fluid

机译:非牛顿非弹性流体在层流撞击流中的传热增强

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Non-Newtonian rheology, even when relatively benign, can alter the developing velocity field characteristics in laminar and turbulent impinging flows and thereby affect heat transfer distributions along the impinging surface. We consider steady laminar axisymmetric impinging jet flow of an inelastic Carreau fluid and analyze the effects of rheology on Nusselt number profiles at the impinging surface. Numerical calculations are presented for nozzle Reynolds numbers up to 750 and geometrical aspect ratios from 1/4 to 4, while the chosen rheological parameter range allows for local viscosity variation of three orders of magnitude within high strain rate domains in the wall jet region of the flow. Our results demonstrate that substantial enhancement in heat transfer rates occur both in the impinging zone and in the wall jet. The calculations show that the local Nusselt number can be up to an order of magnitude larger, and the enhancement may persist for several nozzle diameters downstream of the stagnation point. The inclusion of even moderate temperature dependent viscosity behavior serves to augment the enhancement. We use the numerical results to identify those features of the developing velocity field that are primarily responsible for the observed heat transfer enhancement, and conclude that different underlying mechanisms are relevant in the impinging zone and in the wall jet region of the flow. Consideration also is given to the effects of viscous heating, which are shown to depend significantly on the geometrical aspect ratio. Suitably defined average Nusselt numbers are computed to quantify the extent of heat transfer enhancement as a function of the governing parameters describing fluid rheology and the developing flow field, and specific results are presented for impinging jet heat transfer with a 0.125% polyacrylamide solution.
机译:非牛顿流变学,即使相对较温和,也可以改变层流和湍流撞击流中的发展速度场特征,从而影响沿撞击面的传热分布。我们考虑了非弹性Carreau流体的稳定层流轴对称撞击射流,并分析了流变学对撞击表面Nusselt数剖面的影响。给出了高达750的喷嘴雷诺数和1/4至4的几何长宽比的数值计算,而所选的流变参数范围允许在管道壁喷射区域的高应变率域内,局部粘度变化三个数量级。流。我们的结果表明,在撞击区和壁射流中,传热速率都得到了显着提高。计算表明,局部Nusselt数最多可以高一个数量级,并且这种增强对于滞止点下游的几个喷嘴直径可能会持续存在。甚至包括适度的温度依赖性粘度行为也可以增强粘度。我们使用数值结果来确定发展速度场的那些特征,这些特征主要负责观察到的传热增强,并得出结论,不同的潜在机理在流动的撞击区域和壁射流区域中是相关的。还考虑了粘性加热的影响,其显示出显着地取决于几何纵横比。计算适当定义的平均Nusselt数以量化传热增强的程度,该增强是描述流体流变学和发展中的流场的控制参数的函数,并给出了用0.125%聚丙烯酰胺溶液影响射流传热的具体结果。

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