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首页> 外文期刊>Journal of Fluid Mechanics >Swimming mediated by ciliary beating: comparison with a squirmer model
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Swimming mediated by ciliary beating: comparison with a squirmer model

机译:由睫状体跳动介导的游泳:与杀死模型的比较

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The squirmer model of Lighthill and Blake has been widely used to analyse swimming ciliates. However, real ciliates are covered by hair-like organelles, called cilia; the differences between the squirmer model and real ciliates remain unclear. Here, we developed a ciliate model incorporating the distinct ciliary apparatus, and analysed motion using a boundary element-slender-body coupling method. This methodology allows us to accurately calculate hydrodynamic interactions between cilia and the cell body under free-swimming conditions. Results showed that an antiplectic metachronal wave was optimal in the swimming speed with various cell-body aspect ratios, which is consistent with former theoretical studies. Exploiting oblique wave propagation, we reproduced a helical trajectory, like Paramecium, although the cell body was spherical. We confirmed that the swimming velocity of model ciliates was well represented by the squirmer model. However, squirmer modelling outside the envelope failed to estimate the energy costs of swimming; over 90 % of energy was dissipated inside the ciliary envelope. The optimal swimming efficiency was given by the antiplectic wave; the value was 6.7 times larger than in-phase beating. Our findings provide a fundamental basis for modelling swimming micro-organisms.
机译:Lighthill和Blake的Dirmer模型已被广泛用于分析游泳纤维。然而,真正的纤毛人被毛发的细胞器覆盖,称为纤毛; Dirmer模型与真正的纤毛之间的差异仍然不清楚。在这里,我们开发了一种包含不同纤井装置的CiLiate模型,并使用边界元件纤维组耦合方法分析运动。该方法使我们能够在自由游泳条件下准确地计算纤毛和细胞体之间的流体动力学相互作用。结果表明,在游泳速度下,具有各种细胞体纵横比的抗渗透成像波是与前理论研究一致的。利用斜波传播,我们再现了螺旋轨迹,如paramecium,尽管细胞体是球形的。我们证实,模型纤毛的游泳速度是由Dirmer模型表示的。然而,信封外的肮脏建模未能估计游泳的能量成本;超过90%的能量在睫状体包络内消散。抗渗透波提供最佳的游泳效率;该值比相位跳动大6.7倍。我们的研究结果为造型的游泳微生物提供了一个根本的基础。

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