Modeling viscoelastic networks and cell deformation in the context of the immersed boundary method
DOI10.1006/jcph.1998.6074zbMath0933.74077OpenAlexW2028908802MaRDI QIDQ1287232
Publication date: 2 May 1999
Published in: Journal of Computational Physics (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1006/jcph.1998.6074
elasticityfast Fourier transformviscositythixotropyforward difference operatorshear thinningbackward difference operatoractin cytoskeleton of ameboid cellsameboid deformationmicropipette aspiration
Non-Newtonian fluids (76A05) Spectral and related methods applied to problems in solid mechanics (74S25) Biomechanics (92C10) Biomechanical solid mechanics (74L15) Materials of strain-rate type and history type, other materials with memory (including elastic materials with viscous damping, various viscoelastic materials) (74D99)
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Cites Work
- A computational model of aquatic animal locomotion
- 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
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- Modeling biofilm processes using the immersed boundary method
- Truncated newton methods and the modeling of complex immersed elastic structures
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