Sperm motility and multiciliary beating: an integrative mechanical model
From MaRDI portal
Publication:2458550
DOI10.1016/J.CAMWA.2006.10.012zbMath1121.92020OpenAlexW2017161102MaRDI QIDQ2458550
Lisa J. Fauci, Xingzhou Yang, Robert H. Dillon
Publication date: 1 November 2007
Published in: Computers \& Mathematics with Applications (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.camwa.2006.10.012
Navier-Stokes equations for incompressible viscous fluids (76D05) Physiological flow (92C35) Cell movement (chemotaxis, etc.) (92C17)
Related Items (5)
Numerical simulation of muco-ciliary clearance: immersed boundary-lattice Boltzmann method ⋮ Muco-ciliary transport: effect of mucus viscosity, cilia beat frequency and cilia density ⋮ A Bayesian framework to estimate fluid and material parameters in micro-swimmer models ⋮ On the effect of mucus rheology on the muco-ciliary transport ⋮ Primary cilium: a paradigm for integrating mathematical modeling with experiments and numerical simulations in mechanobiology
Cites Work
- Unnamed Item
- A mathematical model and numerical method for studying platelet adhesion and aggregation during blood clotting
- A three-dimensional computational method for blood flow in the heart. II: Contractile fibers
- A three-dimensional computational method for blood flow in the heart. I: Immersed elastic fibers in a viscous incompressible fluid
- Numerical analysis of blood flow in the heart
- Modeling arteriolar flow and mass transport using the immersed boundary method
- Modeling viscoelastic networks and cell deformation in the context of the immersed boundary method
- Sperm motility in the presence of boundaries
- Modeling biofilm processes using the immersed boundary method
- IMMERSED BOUNDARY METHODS
- Flagellar Hydrodynamics
- Simulating the effects of fluid viscosity on the behaviour of sperm flagella
- BIOFLUIDMECHANICS OF REPRODUCTION
- Analysis of the swimming of microscopic organisms
This page was built for publication: Sperm motility and multiciliary beating: an integrative mechanical model