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A simple way to generate propulsion at low Reynolds number is to periodically oscillate a passive flexible filament. Here we present a macroscopic experimental investigation of such a propulsive mechanism. A robotic swimmer is constructed…

软凝聚态物质 · 物理学 2008-10-02 Tony S. Yu , Eric Lauga , A. E. Hosoi

The propulsion of many eukaryotic cells is generated by flagella, flexible slender filaments that are actively oscillating in space and time. The dynamics of these biological appendages have inspired the design of many types of artificial…

软凝聚态物质 · 物理学 2025-04-15 Mariia Dvoriashyna , Eric Lauga

Biological locomotion in nature is often achieved by the interaction between a flexible body and its surrounding medium. The interaction of a flexible body with granular media is less understood compared with viscous fluids partially due to…

流体动力学 · 物理学 2017-08-03 Zhiwei Peng , Yang Ding , Kyle Pietrzyk , Gwynn J. Elfring , On Shun Pak

We present a numerical study on the rheology of semi-dilute and concentrated filament suspensions of different bending stiffness and Reynolds number, with the immersed boundary method used to couple the fluid and solid. The filaments are…

流体动力学 · 物理学 2019-11-13 Arash Alizad Banaei , Marco Edoardo Rosti , Luca Brandt

It has been known for some time that some microorganisms can swim faster in high-viscosity gel-forming polymer solutions. These gel-like media come to mimic highly viscous heterogeneous environment that these microorganisms encounter…

流体动力学 · 物理学 2009-11-29 A. M. Leshansky

Bio-inspired oscillatory foil propulsion has the ability to traverse various propulsive modes by dynamically changing the foil's heave and pitch kinematics. This research characterizes the propulsion properties and wake dynamics of a…

流体动力学 · 物理学 2020-09-24 Mukul Dave , Arianne Spaulding , Jennifer A. Franck

We study a linear inviscid model of a passively flexible swimmer with distributed flexibility, calculating its propulsive performance and optimal distributions of flexibility. The frequencies of actuation and mean stiffness ratios we…

流体动力学 · 物理学 2020-02-26 Daniel Floryan , Clarence W. Rowley

A single flexible filament can be actuated to escape from the scallop theorem and generate net propulsion at low Reynolds number. In this work, we study the dynamics of a simple boundary-driven multi-filament swimmer, a two-arm clamshell…

流体动力学 · 物理学 2022-03-07 Shiyuan Hu , Jun Zhang , Michael J. Shelley

We combine experiments with simulations to investigate the fluid-structure interaction of a flexible helical rod rotating in a viscous fluid, under low Reynolds number conditions. Our analysis takes into account the coupling between the…

软凝聚态物质 · 物理学 2015-10-28 M. K. Jawed , N. K. Khouri , F. Da , E. Grinspun , P. M. Reis

The dynamics of a flexible filament sedimenting in a viscous fluid are explored analytically and numerically. Compared to the well-studied case of sedimenting rigid rods, the introduction of filament compliance is shown to cause a…

流体动力学 · 物理学 2013-11-04 Lei Li , Harishankar Manikantan , David Saintillan , Saverio E. Spagnolie

Purcell's scallop theorem defines the type of motions of a solid body - reciprocal motions - which cannot propel the body in a viscous fluid with zero Reynolds number. For example, the flapping of a wing is reciprocal and, as was recently…

软凝聚态物质 · 物理学 2008-10-02 Eric Lauga

In a world without inertia, Purcell's scallop theorem states that in a Newtonian fluid a time-reversible motion cannot produce any net force or net flow. Here we consider the extent to which the nonlinear rheological behavior of…

流体动力学 · 物理学 2010-04-09 On Shun Pak , Eric Lauga

We use small-amplitude inviscid theory to study the swimming performance of a flexible flapping plate with time-varying flexibility. The stiffness of the plate oscillates at twice the frequency of the kinematics in order to maintain a…

流体动力学 · 物理学 2023-04-12 David Yudin , Daniel Floryan , Tyler Van Buren

We investigate structural and dynamical properties of a self-propelled filament using coarse-grained Brownian dynamics simulations. A self-propulsion force is applied along the bond vectors, i.e., tangent to the filament and their locations…

软凝聚态物质 · 物理学 2019-02-14 Shalabh K. Anand , Sunil P. Singh

The impact of spanwise flexibility on the propulsion performance of two foils arranged in tandem and subjected to a prescribed sinusoidal heaving motion has been studied at a Reynolds number of 100. This comprises a wide range of natural…

流体动力学 · 物理学 2023-11-10 Wendi Liu , Alex Skillen , Wei Wang , Charles Moulinec , David R. Emerson

Fluid-based locomotion at low Reynolds number is subject to the constraints of the scallop theorem, which dictate that body kinematics identical under a time-reversal symmetry (in particular, those with a single degree of freedom) cannot…

生物物理 · 物理学 2013-03-13 Gregory L. Wagner , Eric Lauga

Flexible filaments moving in viscous fluids are ubiquitous in the natural microscopic world. For example, the swimming of bacteria and spermatozoa as well as important physiological functions at organ-level, such as the cilia-induced motion…

软凝聚态物质 · 物理学 2019-06-05 Panayiota Katsamba , Eric Lauga

The influence of the bending rigidity of a flexible heaving wing on its propulsive performance in a two-dimensional imposed parallel flow is investigated in the inviscid limit. Potential flow theory is used to describe the flow over the…

流体动力学 · 物理学 2009-08-01 S. Michelin , S. G. Llewellyn Smith

Swimming fish and flying insects use the flapping of fins and wings to generate thrust. In contrast, microscopic organisms typically deform their appendages in a wavelike fashion. Since a flapping motion with two degrees of freedom is able,…

流体动力学 · 物理学 2014-06-18 Loic Was , Eric Lauga

Micro aerial vehicles are making a large impact in applications such as search-and-rescue, package delivery, and recreation. Unfortunately, these diminutive drones are currently constrained to carrying small payloads, in large part because…

流体动力学 · 物理学 2023-11-07 Justin P Cooke , Matthew F Campbell , Edward B Steager , Igor Bargatin , Mark H Yim , George I Park
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