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An immersed boundary method for two-phase fluids and gels and the swimming of Caenorhabditis elegans through viscoelastic fluids

机译:两相流体和凝胶的浸没边界方法以及秀丽隐杆线虫在粘弹性流体中的游动

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摘要

The swimming of microorganisms typically involves the undulation or rotation of thin, filamentary objects in a fluid or other medium. Swimming in Newtonian fluids has been examined extensively, and only recently have investigations into microorganism swimming through non-Newtonian fluids and gels been explored. The equations that govern these more complex media are often nonlinear and require computational algorithms to study moderate to large amplitude motions of the swimmer. Here, we develop an immersed boundary method for handling fluid-structure interactions in a general two-phase medium, where one phase is a Newtonian fluid and the other phase is viscoelastic (e.g., a polymer melt or network). We use this algorithm to investigate the swimming of an undulating, filamentary swimmer in 2D (i.e., a sheet). A novel aspect of our method is that it allows one to specify how forces produced by the swimmer are distributed between the two phases of the fluid. The algorithm is validated by comparing theoretical predictions for small amplitude swimming in gels and viscoelastic fluids. We show how the swimming velocity depends on material parameters of the fluid and the interaction between the fluid and swimmer. In addition, we simulate the swimming of Caenorhabditis elegans in viscoelastic fluids and find good agreement between the swimming speeds and fluid flows in our simulations and previous experimental measurements. These results suggest that our methodology provides an accurate means for exploring the physics of swimming through non-Newtonian fluids and gels.
机译:微生物的游动通常涉及在流体或其他介质中细丝状物体的起伏或旋转。在牛顿液体中游泳已被广泛检查,直到最近才对通过非牛顿液体和凝胶游动微生物的研究进行了研究。控制这些更复杂介质的方程式通常是非线性的,需要计算算法来研究游泳者的中度到大振幅运动。在这里,我们开发了一种沉浸边界方法来处理一般两相介质中的流体-结构相互作用,其中一相是牛顿流体,另一相是粘弹性的(例如聚合物熔体或网络)。我们使用此算法来调查2D波浪状丝状游泳者的游泳情况(即一张)。我们方法的一个新颖方面是,它允许人们指定游泳者产生的力如何在流体的两相之间分配。通过比较凝胶和粘弹性流体中小幅度游泳的理论预测来验证该算法。我们展示了游泳速度如何取决于流体的材料参数以及流体与游泳者之间的相互作用。此外,我们模拟了秀丽隐杆线虫在粘弹性流体中的游动,并在我们的模拟和先前的实验测量中发现了游动速度和流体流动之间的良好一致性。这些结果表明,我们的方法学为探索通过非牛顿流体和凝胶游泳的物理学方法提供了一种准确的方法。

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