论文标题
屈服应力流体中的蠕动运动
Squirmer locomotion in a yield stress fluid
论文作者
论文摘要
对宾厄姆粘塑料流体中的轴对称蠕动器进行数值研究,以确定屈服应力环境对运动的影响。管理方程式的非线性需要数值方法,这是通过使用有限元方法求解可变粘度的Stokes方程来完成的。研究了纯和合并的中风模式的影响,发现在跑步机或“中性”模式下,屈服应力流体中的游泳者的游泳速度较低,并且使用了更多的功率。但是,游泳效率以有限的收益率限制达到其最大值。此外,对于较高的屈服极限,较高的中风模式可以提高跑步机游泳者的游泳速度和流体动力效率。高阶的奇数蠕动模式,尤其是第三笔中风模式,可以自行产生推进力,随着粘塑性非线性的增加,强度会增加强度,直到特定的极限。这些结果与游泳体周围的粘塑性刚性表面引起的限制效应密切相关,表明在粘塑料环境中的游泳者(生物学和人工)可能会采用其他非标准游泳策略来优化其机车。
An axisymmetric squirmer in a Bingham viscoplastic fluid is studied numerically to determine the effect of a yield stress environment on locomotion. The nonlinearity of the governing equations necessitates numerical methods, which is accomplished by solving a variable-viscosity Stokes equation with a Finite Element approach. The effects of stroke modes, both pure and combined, are investigated and it is found that for the treadmill or "neutral" mode, the swimmer in a yield stress fluid has a lower swimming velocity and uses more power. However, the efficiency of swimming reaches its maximum at a finite yield limit. In addition, for higher yield limits, higher stroke modes can increase the swimming velocity and hydrodynamic efficiency of the treadmill swimmer. The higher-order odd-numbered squirming modes, particularly the third stroke mode, can generate propulsion by themselves that increases in strength as the viscoplastic nonlinearity increases till a specific limit. These results are closely correlated with the confinement effects induced by the viscoplastic rigid surface surrounding the swimming body, showing that swimmers in viscoplastic environments, both biological and artificial, could potentially employ other non-standard swimming strategies to optimize their locomotion.