Biomedical Engineering Reference
In-Depth Information
[37] Fedosov D.A., Caswell B., Karniadakis G.E.: A multiscale red blood cell model with accurate
mechanics, rheology, and dynamics. Biophysical Journal 98 : 2215-2225, 2010.
[38] Pan W., Caswell B., Karniadakis G.E.: A low-dimensional model for the red blood cell. Soft
Matter 6 : 4366-4376, 2010.
[39] Groot R.D., Warren P.B.: Dissipative particle dynamics: Bridging the gap between atomistic
and mesoscopic simulation. Journal of Chemical Physics 107 : 4423-4435, 1997.
[40] Lei H., Caswell B., Karniadakis G.: Direct comparison of mesoscopic models from micro-
scopic simulations. Physical Review. E 81 : 026704, 2010.
[41] Espanol P., Warren P.: Statistical mechanics of dissipative particle dynamics. Europhysics
Letters 30: 191-196, 1995.
[42] Fan X., Phan-Thien N., Chen S., Wu X.H., Ng T.Y.: Simulating flow of DNA suspension
using dissipative particle dynamics. Physics of Fluids 18 : 063102, 2006.
[43] Fedosov D.A., Pivkin I.V., Karniadakis G.E.: Velocity Limit in DPD Simulations of Wall-
Bounded Flows. Journal of Computational Physics 227 : 2540-2559, 2008.
[44] Symeonidis V., Karniadakis G.: A family of time-staggered schemes for integrating hybrid
DPD models for polymers: Algorithms and applications. Journal of Computational Physics
218 : 82-101, 2006.
[45] Pan W., Pivkin I.V., Karniadakis G.E.: Single-particle hydrodynamics in DPD: A new for-
mulation. Europhysics Letters 84 : 10012, 2008.
[46] Pan W., Caswell B., Karniadakis G.E.: Rheology, Microstructure and Migration in Brownian
Colloidal Suspensions. Langmuir 26 : 133-142, 2010.
[47] Pryamitsyn V., Ganesan V.: A coarse-grained explicit solvent simulation of rheology of col-
loidal suspensions. Journal of Chemical Physics 122 : 104906, 2005.
[48] Fan X.J., Phan-Thien N., Chen S., Wu X.H., Ng T.Y.: Simulating flow of DNA suspension
using dissipative particle dynamics. Physics of Fluids 18 : 063102, 2006.
[49] Pan W., Fedosov D.A., Caswell B., Karniadakis G.E.: Hydrodynamic interactions for single
dissipative-particle-dynamics particles and their clusters and filaments. Physical Review E
78 : 046706, 2008.
[50] Fedosov D.A., Caswell B., Karniadakis G.E.: Systematic coarse-graining of spectrin-level
red blood cell models. Computer Methods in Applied Mechanics and Engineering 199 : 1937-
1948, 2010.
[51] Fedosov D.A.: Multiscale modeling of blood flow and soft matter. PhD thesis, Brown Uni-
versity, USA, 2010.
[52] Helfrich W.: Elastic properties of lipid bilayers: theory and possible experiments. Z. Natur-
forschung C 28 : 693-703, 1973.
[53] Espanol P.: Fluid particle model. Physical Review E 57 : 2930, 1998.
[54] Hammer D.A., Apte S.M.: Simulation of cell rolling and adhesion on surfaces in shear flow:
general results and analysis of selectin-mediated neutrophil adhesion. Biophysical Journal 63 :
35-57, 1992.
[55] Howard R.J.: Malarial proteins at the membrane of Plasmodium falciparum-infected erythro-
cytes and their involvement in cytoadherence to endothelial cells. Progress in Allergy 41 :
98-147, 1988.
[56] Ho M., White N.J.: Molecular mechanisms of cytoadherence in malaria. American Journal of
Physiology 276 : C1231-C1242, 1999.
[57] Nagao E., Kaneko O., Dvorak J.A.: Plasmodium falciparum-infected erythrocytes: qualitative
and quantitative analyses of parasite-induced knobs by atomic force microscopy. Journal of
Structural Biology 130 : 34-44, 2000.
[58] Chien S., Jan K.-M.: Ultrastructural basis of the mechanism of rouleaux formation. Microvas-
cular Research 5 : 155-166, 1973.
[59] Neu B., Meiselman H.J.: Depletion-mediated red blood cell aggregation in polymer solutions.
Biophysical Journal 83 : 2482-2490, 2002.
[60] Liu Y., Liu W.K.: Rheology of red blood cell aggregation by computer simulation. Journal
of Computational Physics 220 : 139-154, 2006.
Search WWH ::




Custom Search