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Viscoplastic slender-body theory

机译:粘胶纤细 - 体理论

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摘要

The theory of slow viscous flow around a slender body is generalized to the situation where the ambient fluid has a yield stress. The local flow around a cylinder that is moving along or perpendicular to its axis, and rotating, provides a first step in this theory. Unlike for a Newtonian fluid, the nonlinearity associated with the viscoplastic constitutive law precludes one from linearly superposing solutions corresponding to each independent component of motion, and instead demands a full numerical approach to the problem. This is accomplished for the case of a Bingham fluid, along with a consideration of some asymptotic limits in which analytical progress is possible. Since the yield stress of the fluid strongly localizes the flow around the body, the leading-order slender-body approximation is rendered significantly more accurate than the equivalent Newtonian problem. The theory is applied to the sedimentation of inclined cylinders, bent rods and helices, and compared with some experimental data. Finally, the theory is applied to the locomotion of a cylindrical filament driven by helical waves through a viscoplastic fluid.
机译:围绕细长体系的慢粘性流动的理论是推广到环境流体具有屈服应力的情况。围绕圆柱体的局部流动沿着或垂直于其轴线移动,旋转,提供了该理论的第一步。与牛顿流体不同,与粘胶组成型法相关的非线性妨碍了与对应于每个独立运动的线性叠加的溶液,而是要求对问题进行全面的数值方法。这是针对弯曲流体的情况实现的,同时考虑到某些渐近限制,其中可以进行分析进展。由于流体的屈服应力强烈地定位了身体周围的流动,因此前导级纤维体近似比等同的牛顿问题更准确。该理论适用于倾斜汽缸,弯曲棒和螺旋的沉降,并与一些实验数据进行比较。最后,该理论应用于螺旋波通过粘胶型流体驱动的圆柱形长丝的运动。

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