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Effect of Local Magnetic Fields on Electrically Conducting Fluid Flow and Heat Transfer

机译:局部磁场对导电流体流动和传热的影响

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摘要

The prediction of electrically conducting fluid past a localized zone of applied magnetic field is the key for many practical applications. In this paper, the characteristics of flow and heat transfer (HI) for a liquid metal in a rectangular duct under a local magnetic-field are investigated numerically using a three-dimensional model and the impact of some parameters, such as constrainment factor, k, interaction parameter, N, and Reynolds number, Re, is also discussed. It is found that, in the range of Reynolds number 100 ≤ Re ≤900, the flow structures can be classified into the following four typical categories: no vortices, one pair of magnetic vortices, three pairs of vortices and vortex shedding. The simulation results indicate that the local heterogeneous magnetic field can enhance the wall-heat transfer and the maximum value of the overall increment of HI is about 13.6%. Moreover, the pressure drop penalty (△P_(penaity)) does not increasingly depend on the N for constant k and Re. Thus, the high overall increment of HI can be obtained when the vortex shedding occurs.
机译:对于许多实际应用而言,预测导电流体流过施加磁场的局部区域的关键是关键。本文利用三维模型并结合约束因子,k等参数的影响,对局部磁场作用下矩形管内液态金属在金属管内的流动和传热特性进行了数值研究。还讨论了相互作用参数N和雷诺数Re。发现在雷诺数100≤Re≤900的范围内,流动结构可分为以下四个典型类别:无涡旋,一对磁涡旋,三对涡旋和涡旋脱落。仿真结果表明,局部异质磁场可以增强壁热传递,HI的总增量最大值约为13.6%。而且,对于常数k和Re,压降损失(△P_(penaity))不再越来越依赖于N。因此,当发生涡旋脱落时,可以获得较高的HI总增量。

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