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Swimming efficiency in a shear-thinning fluid

2017/12/04 by Hervé Nganguia, Herve Nganguia, Kyle Pietrzyk +1
Biochemistry, Genetics and Molecular Biology · Engineering · Physics and Astronomy · #Aerospace engineering #Biology #Composite material #Computer science #Ecology #Engineering #Lipid Membrane Structure and Behavior #Materials science #Mechanics #Micro and Nano Robotics #Microfluidic and Bio-sensing Technologies #Newtonian fluid #Physics #Propulsion #Rheology #Shear (geology) #Shear thinning #Thinning #physics.flu-dyn

paper · pdf · doi:10.1103/physreve.96.062606

published as Physical Review E, 96, 062606 (2017)

arxiv created 2017/12/04 · openalex publication_date 2017/12/11 · arxiv updated 2017/12/14 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05

Abstract

Micro-organisms expend energy moving through complex media. While propulsion speed is an important property of locomotion, efficiency is another factor that may determine the swimming gait adopted by a micro-organism in order to locomote in an energetically favorable manner. The efficiency of swimming in a Newtonian fluid is well characterized for different biological and artificial swimmers. However, these swimmers often encounter biological fluids displaying shear-thinning viscosities. Little is known about how this nonlinear rheology influences the efficiency of locomotion. Does the shear-thinning rheology render swimming more efficient or less? How does the swimming efficiency depend on the propulsion mechanism of a swimmer and rheological properties of the surrounding shear-thinning fluid? In this work, we address these fundamental questions on the efficiency of locomotion in a shear-thinning fluid by considering the squirmer model as a general locomotion model to represent different types of swimmers. Our analysis reveals how the choice of surface velocity distribution on a squirmer may reduce or enhance the swimming efficiency. We determine optimal shear rates at which the swimming efficiency can be substantially enhanced compared with the Newtonian case. The nontrivial variations of swimming efficiency prompt questions on how micro-organisms may tune their swimming gaits to exploit the shear-thinning rheology. The findings also provide insights into how artificial swimmers should be designed to move through complex media efficiently.

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