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Direct numerical simulation of turbulent non-Newtonian flow using a spectral element method

机译:用谱元法对非牛顿湍流进行直接数值模拟

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A spectral element-Fourier method (SEM) for Direct Numerical Simulation (DNS) of the turbulent flow of non-Newtonian fluids is described and the particular requirements for non-Newtonian rheology are discussed. The method is implemented in parallel using the MPI message passing kernel, and execution times scale somewhat less than linearly with the number of CPUs, however this is more than compensated by the improved simulation turn around times, The method is applied to the case of turbulent pipe flow, where simulation results for a shear-thinning (power law) fluid are compared to those of a yield stress (Herschel-Bulkley) fluid at the same generalised Reynolds number. It is seen that the yield stress significantly dampens turbulence intensities in the core of the flow where the quasi-laminar flow region there co-exists with & transitional wall zone. An additional simulation of the flow of blood in a channel is undertaken using a Carreau-Yasuda rheology model, and results compared to those of the one-equation Spalart-Allmaras RANS (Reynolds-Averaged Navier-Stokes) model. Agreement between the mean flow velocity profile predictions is seen to be good. Use of a DNS technique to study turbulence in non-Newtonian fluids shows great promise in understanding transition and turbulence in shear thinning, non-Newtonian flows.
机译:描述了非牛顿流体湍流的直接数值模拟(DNS)的光谱元素-傅立叶方法(SEM),并讨论了非牛顿流变学的特殊要求。该方法是使用MPI消息传递内核并行实现的,执行时间随CPU数量的增加而线性地减少,但是通过改进的仿真周转时间可以弥补这一不足,该方法适用于湍流情况在相同的广义雷诺数下,将剪切稀化(幂律)流体的模拟结果与屈服应力(Herschel-Bulkley)流体的模拟结果进行比较。可以看出,屈服应力显着地抑制了流芯中的湍流强度,那里的准层流区域与过渡壁区域共存。使用Carreau-Yasuda流变模型对通道中的血液流动进行了附加仿真,并将结果与​​单方程Spalart-Allmaras RANS(雷诺-平均Navier-Stokes)模型的结果进行了比较。平均流速分布预测之间的一致性很好。使用DNS技术研究非牛顿流体中的湍流显示出对理解剪切稀化,非牛顿流中的过渡和湍流的巨大希望。

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