粘弹性
半径
振幅
旋转(数学)
机械
物理
螺旋(腹足类)
经典力学
蛋白质丝
材料科学
几何学
光学
热力学
数学
复合材料
生物
计算机科学
计算机安全
生态学
蜗牛
作者
Saverio E. Spagnolie,Bin Liu,Thomas Powers
标识
DOI:10.1103/physrevlett.111.068101
摘要
The motion of a rotating helical body in a viscoelastic fluid is considered. In the case of force-free swimming, the introduction of viscoelasticity can either enhance or retard the swimming speed and locomotive efficiency, depending on the body geometry, fluid properties, and the body rotation rate. Numerical solutions of the Oldroyd-B equations show how previous theoretical predictions break down with increasing helical radius or with decreasing filament thickness. Helices of large pitch angle show an increase in swimming speed to a local maximum at a Deborah number of order unity. The numerical results show how the small-amplitude theoretical calculations connect smoothly to the large-amplitude experimental measurements.
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