On the effect of mucus rheology on the muco-ciliary transport
From MaRDI portal
Publication:905823
DOI10.1016/j.mbs.2015.11.010zbMath1369.92028OpenAlexW2184500547WikidataQ50757758 ScholiaQ50757758MaRDI QIDQ905823
Publication date: 28 January 2016
Published in: Mathematical Biosciences (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.mbs.2015.11.010
immersed boundary methodOldroyd-B modelmuco-ciliary transportmucusfinite difference-lattice Boltzmann method
Related Items
Numerical simulation of muco-ciliary clearance: immersed boundary-lattice Boltzmann method, Analysis of a channel and tube flow induced by cilia, A Hybrid Immersed Boundary-Lattice Boltzmann Method for Simulation of Viscoelastic Fluid Flows Interaction with Complex Boundaries, Simulation study on the mass transport based on the ciliated dynamic system of the respiratory tract
Cites Work
- Hybrid grid-particle methods and penalization: a Sherman-Morrison-Woodbury approach to compute 3D viscous flows using FFT
- Muco-ciliary transport: effect of mucus viscosity, cilia beat frequency and cilia density
- An immersed interface method for viscous incompressible flows involving rigid and flexible boundaries
- An integrative computational model of multiciliary beating
- An immersed interface method for solving incompressible viscous flows with piecewise constant viscosity across a moving elastic membrane
- Immersed boundary method for the simulation of 2D viscous flow based on vorticity-velocity formulations
- An implicit-forcing immersed boundary method for simulating viscous flows in irregular domains
- Numerical analysis of blood flow in the heart
- Three-dimensional numerical simulations of human pulmonary cilia in the periciliary liquid layer by the immersed boundary method
- A viscoelastic traction layer model of muco-ciliary transport
- Sperm motility and multiciliary beating: an integrative mechanical model
- A Hybrid Grid-Particle Method for Moving Bodies in 3D Stokes Flow with Variable Viscosity
- Discrete lattice effects on the forcing term in the lattice Boltzmann method
- The immersed boundary method
- The discrete-cilia approach to propulsion of ciliated micro-organisms
- Energetic considerations of ciliary beating and the advantage of metachronal coordination
- Particulate Flow Simulation Via a Boundary Condition-enforced Immersed Boundary-lattice Boltzmann Scheme
- A model for the micro-structure in ciliated organisms