메뉴 건너뛰기




Volumn 41, Issue 11, 2013, Pages 2318-2333

Simulation of platelets suspension flowing through a stenosis model using a dissipative particle dynamics approach

Author keywords

Blood; DPD; Multi scale modeling; Platelet activation; Platelet aggregation; Thrombosis

Indexed keywords

BLOOD; BOUNDARY LAYER FLOW; BOUNDARY LAYERS; CHEMICAL ACTIVATION; DISEASES; MOLECULAR INTERACTIONS; PLATELETS; SHEAR FLOW; VISCOUS FLOW;

EID: 84896696972     PISSN: 00906964     EISSN: 15739686     Source Type: Journal    
DOI: 10.1007/s10439-013-0829-z     Document Type: Article
Times cited : (31)

References (52)
  • 1
    • 34249759076 scopus 로고
    • Lattice Boltzmann simulation of solid particles suspended in fluid
    • 10.1007/BF02179967
    • Aidun, C. K., and Y. N. Lu. Lattice Boltzmann simulation of solid particles suspended in fluid. J. Stat. Phys. 81:49-61, 1995.
    • (1995) J. Stat. Phys. , vol.81 , pp. 49-61
    • Aidun, C.K.1    Lu, Y.N.2
  • 2
    • 31344471511 scopus 로고    scopus 로고
    • A model for the formation and lysis of blood clots
    • 16432312 10.1159/000089931 1:STN:280:DC%2BD28%2Fktlymtg%3D%3D
    • Anand, M., K. Rajagopal, and K. R. Rajagopal. A model for the formation and lysis of blood clots. Pathophysiol. Haemost. Thromb. 34:109-120, 2005.
    • (2005) Pathophysiol. Haemost. Thromb. , vol.34 , pp. 109-120
    • Anand, M.1    Rajagopal, K.2    Rajagopal, K.R.3
  • 3
    • 31344470698 scopus 로고    scopus 로고
    • Mathematical modeling and computer simulation in blood coagulation
    • 16432308 10.1159/000089927
    • Ataullakhanov, F. I., and M. A. Panteleev. Mathematical modeling and computer simulation in blood coagulation. Pathophysiol. Haemost. Thromb. 34:60-70, 2005.
    • (2005) Pathophysiol. Haemost. Thromb. , vol.34 , pp. 60-70
    • Ataullakhanov, F.I.1    Panteleev, M.A.2
  • 4
    • 20844437704 scopus 로고    scopus 로고
    • Poiseuille flow to measure the viscosity of particle model fluids
    • 15945641 10.1063/1.1883163 1:STN:280:DC%2BD2MzgsFSnsw%3D%3D
    • Backer, J. A., C. P. Lowe, H. C. J. Hoefsloot, and P. D. Iedema. Poiseuille flow to measure the viscosity of particle model fluids. J. Chem. Phys. 122(15):154503, 2005.
    • (2005) J. Chem. Phys. , vol.122 , Issue.15 , pp. 154503
    • Backer, J.A.1    Lowe, C.P.2    Hoefsloot, H.C.J.3    Iedema, P.D.4
  • 5
    • 0027708346 scopus 로고
    • Mechanisms involved in platelet procoagulant response
    • 8209788 10.1007/978-1-4615-2994-1-15 1:CAS:528:DyaK2cXmsFWqsro%3D
    • Bevers, E. M., P. Comfurius, and R. F. Zwaal. Mechanisms involved in platelet procoagulant response. Adv. Exp. Med. Biol. 344:195-207, 1993.
    • (1993) Adv. Exp. Med. Biol. , vol.344 , pp. 195-207
    • Bevers, E.M.1    Comfurius, P.2    Zwaal, R.F.3
  • 6
    • 12344315538 scopus 로고    scopus 로고
    • Research approaches for studying flow-induced thromboembolic complications in blood recirculating devices
    • 16293011 10.1586/17434440.1.1.65
    • Bluestein, D. Research approaches for studying flow-induced thromboembolic complications in blood recirculating devices. Expert Rev. Med. Devices 1:65-80, 2004.
    • (2004) Expert Rev. Med. Devices , vol.1 , pp. 65-80
    • Bluestein, D.1
  • 7
    • 0141975920 scopus 로고    scopus 로고
    • Dynamical clustering of red blood cells in capillary vessels
    • 12638008
    • Boryczko, K., W. Dzwinel, and D. A. Yuen. Dynamical clustering of red blood cells in capillary vessels. J. Mol. Model. 9:16-33, 2003.
    • (2003) J. Mol. Model. , vol.9 , pp. 16-33
    • Boryczko, K.1    Dzwinel, W.2    Yuen, D.A.3
  • 8
    • 3242753481 scopus 로고    scopus 로고
    • Modeling fibrin aggregation in blood flow with discrete-particles
    • 15265617 10.1016/j.cmpb.2004.02.001
    • Boryczko, K., W. Dzwinel, and D. A. Yuen. Modeling fibrin aggregation in blood flow with discrete-particles. Comput. Methods Programs Biomed. 75:181-194, 2004.
    • (2004) Comput. Methods Programs Biomed. , vol.75 , pp. 181-194
    • Boryczko, K.1    Dzwinel, W.2    Yuen, D.A.3
  • 9
    • 26944443795 scopus 로고    scopus 로고
    • Newtonian fluid meets an elastic solid: Coupling lattice Boltzmann and lattice-spring models
    • 10.1103/PhysRevE.71.056707
    • Buxton, G. A., R. Verberg, D. Jasnow, and A. C. Balazs. Newtonian fluid meets an elastic solid: Coupling lattice Boltzmann and lattice-spring models. Phys. Rev. E 71:056707, 2005.
    • (2005) Phys. Rev. e , vol.71 , pp. 056707
    • Buxton, G.A.1    Verberg, R.2    Jasnow, D.3    Balazs, A.C.4
  • 10
    • 0018467358 scopus 로고
    • Motion of a deformable drop in a 2nd-order fluid
    • 10.1017/S0022112079000562
    • Chan, P. C. H., and L. G. Leal. Motion of a deformable drop in a 2nd-order fluid. J. Fluid Mech. 92:131-170, 1979.
    • (1979) J. Fluid Mech. , vol.92 , pp. 131-170
    • Chan, P.C.H.1    Leal, L.G.2
  • 11
    • 85027918712 scopus 로고    scopus 로고
    • Analysis of mechanisms for platelet near-wall excess under arterial blood flow conditions
    • 10.1017/jfm.2011.54
    • Crowl, L., and A. L. Fogelson. Analysis of mechanisms for platelet near-wall excess under arterial blood flow conditions. J. Fluid Mech. 676:348-375, 2011.
    • (2011) J. Fluid Mech. , vol.676 , pp. 348-375
    • Crowl, L.1    Fogelson, A.L.2
  • 12
    • 77953099339 scopus 로고    scopus 로고
    • Computational model of whole blood exhibiting lateral platelet motion induced by red blood cells
    • 10.1002/cnm.1274
    • Crowl, L. M., and A. L. Fogelson. Computational model of whole blood exhibiting lateral platelet motion induced by red blood cells. Int. J. Numer. Methods Biomed. Eng. 26:471-487, 2010.
    • (2010) Int. J. Numer. Methods Biomed. Eng. , vol.26 , pp. 471-487
    • Crowl, L.M.1    Fogelson, A.L.2
  • 13
    • 34547346708 scopus 로고    scopus 로고
    • Modeling the flow of dense suspensions of deformable particles in three dimensions
    • 10.1103/PhysRevE.75.066707
    • Dupin, M. M., I. Halliday, C. M. Care, L. Alboul, and L. L. Munn. Modeling the flow of dense suspensions of deformable particles in three dimensions. Phys. Rev. E 75:056707, 2007.
    • (2007) Phys. Rev. e , vol.75 , pp. 056707
    • Dupin, M.M.1    Halliday, I.2    Care, C.M.3    Alboul, L.4    Munn, L.L.5
  • 14
    • 33747587027 scopus 로고
    • Hydrodynamics from dissipative particle dynamics
    • 10.1103/PhysRevE.52.1734 1:CAS:528:DyaK2MXnsVOgtLg%3D
    • Espanol, P. Hydrodynamics from dissipative particle dynamics. Phys. Rev. E 52:1734-1742, 1995.
    • (1995) Phys. Rev. e , vol.52 , pp. 1734-1742
    • Espanol, P.1
  • 15
    • 33745603699 scopus 로고    scopus 로고
    • Simulating flow of DNA suspension using dissipative particle dynamics
    • 10.1063/1.2206595
    • Fan, X. J., N. Phan-Thien, S. Chen, X. H. Wu, and T. Y. Ng. Simulating flow of DNA suspension using dissipative particle dynamics. Phys. Fluids 18:063102, 2006.
    • (2006) Phys. Fluids , vol.18 , pp. 063102
    • Fan, X.J.1    Phan-Thien, N.2    Chen, S.3    Wu, X.H.4    Ng, T.Y.5
  • 16
    • 77952786405 scopus 로고    scopus 로고
    • A multiscale red blood cell model with accurate mechanics, rheology, and dynamics
    • 20483330 10.1016/j.bpj.2010.02.002 1:CAS:528:DC%2BC3cXosFCisbw%3D
    • Fedosov, D. A., B. Caswell, and G. E. Karniadakis. A multiscale red blood cell model with accurate mechanics, rheology, and dynamics. Biophys. J. 98:2215-2225, 2010.
    • (2010) Biophys. J. , vol.98 , pp. 2215-2225
    • Fedosov, D.A.1    Caswell, B.2    Karniadakis, G.E.3
  • 17
    • 58149247906 scopus 로고    scopus 로고
    • Triple-decker: Interfacing atomistic-mesoscopic-continuum flow regimes
    • 10.1016/j.jcp.2008.10.024
    • Fedosov, D. A., and G. E. Karniadakis. Triple-decker: interfacing atomistic-mesoscopic-continuum flow regimes. J. Comput. Phys. 228:1157-1171, 2009.
    • (2009) J. Comput. Phys. , vol.228 , pp. 1157-1171
    • Fedosov, D.A.1    Karniadakis, G.E.2
  • 18
    • 38049054069 scopus 로고    scopus 로고
    • Velocity limit in DPD simulations of wall-bounded flows
    • 10.1016/j.jcp.2007.11.009
    • Fedosov, D. A., I. V. Pivkin, and G. E. Karniadakis. Velocity limit in DPD simulations of wall-bounded flows. J. Comput. Phys. 227:2540-2559, 2008.
    • (2008) J. Comput. Phys. , vol.227 , pp. 2540-2559
    • Fedosov, D.A.1    Pivkin, I.V.2    Karniadakis, G.E.3
  • 19
    • 84859884942 scopus 로고    scopus 로고
    • Viscous flow simulation in a stenosis model using discrete particle dynamics: A comparison between DPD and CFD
    • 21369918 10.1007/s10237-011-0297-z
    • Feng, R., M. Xenos, G. Girdhar, W. Kang, J. W. Davenport, Y. F. Deng, and D. Bluestein. Viscous flow simulation in a stenosis model using discrete particle dynamics: a comparison between DPD and CFD. Biomech. Model. Mechanobiol. 11:119-129, 2012.
    • (2012) Biomech. Model. Mechanobiol. , vol.11 , pp. 119-129
    • Feng, R.1    Xenos, M.2    Girdhar, G.3    Kang, W.4    Davenport, J.W.5    Deng, Y.F.6    Bluestein, D.7
  • 20
    • 49549084853 scopus 로고    scopus 로고
    • Modelling thrombosis using dissipative particle dynamics method
    • 10.1098/rsta.2008.0097 1:STN:280:DC%2BD1crgslaruw%3D%3D
    • Filipovic, N., M. Kojic, and A. Tsuda. Modelling thrombosis using dissipative particle dynamics method. Philos. Trans. R Soc. A 366:3265-3279, 2008.
    • (2008) Philos. Trans. R Soc. A , vol.366 , pp. 3265-3279
    • Filipovic, N.1    Kojic, M.2    Tsuda, A.3
  • 21
    • 0026908030 scopus 로고
    • Continuum models of platelet-aggregation-formulation and mechanical-properties
    • 10.1137/0152064
    • Fogelson, A. L. Continuum models of platelet-aggregation-formulation and mechanical-properties. SIAM J. Appl. Math. 52:1089-1110, 1992.
    • (1992) SIAM J. Appl. Math. , vol.52 , pp. 1089-1110
    • Fogelson, A.L.1
  • 22
    • 41949099291 scopus 로고    scopus 로고
    • Immersed-boundary-type models of intravascular platelet aggregation
    • 10.1016/j.cma.2007.06.030
    • Fogelson, A. L., and R. D. Guy. Immersed-boundary-type models of intravascular platelet aggregation. Comput. Methods Appl. Mech. Eng. 197:2087-2104, 2008.
    • (2008) Comput. Methods Appl. Mech. Eng. , vol.197 , pp. 2087-2104
    • Fogelson, A.L.1    Guy, R.D.2
  • 23
    • 84857702487 scopus 로고    scopus 로고
    • Device thrombogenicity emulation: A novel method for optimizing mechanical circulatory support device thromboresistance
    • 22396768 10.1371/journal.pone.0032463 1:CAS:528:DC%2BC38XjvFWqtLk%3D
    • Girdhar, G., M. Xenos, Y. Alemu, W. C. Chiu, B. E. Lynch, J. Jesty, S. Einav, M. J. Slepian, and D. Bluestein. Device thrombogenicity emulation: a novel method for optimizing mechanical circulatory support device thromboresistance. PLoS ONE 7:e32463, 2012.
    • (2012) PLoS ONE , vol.7 , pp. 32463
    • Girdhar, G.1    Xenos, M.2    Alemu, Y.3    Chiu, W.C.4    Lynch, B.E.5    Jesty, J.6    Einav, S.7    Slepian, M.J.8    Bluestein, D.9
  • 24
    • 5544242655 scopus 로고    scopus 로고
    • Dissipative particle dynamics: Bridging the gap between atomistic and mesoscopic simulation
    • 10.1063/1.474784 1:CAS:528:DyaK2sXlvVensLg%3D
    • Groot, R. D., and P. B. Warren. Dissipative particle dynamics: bridging the gap between atomistic and mesoscopic simulation. J Chem Phys 107:4423-4435, 1997.
    • (1997) J Chem Phys , vol.107 , pp. 4423-4435
    • Groot, R.D.1    Warren, P.B.2
  • 25
    • 33749494783 scopus 로고    scopus 로고
    • Dissipative particle dynamics simulation of flow generated by two rotating concentric cylinders: Boundary conditions
    • 10.1103/PhysRevE.74.046701 1:STN:280:DC%2BD28jislCitA%3D%3D
    • Haber, S., N. Filipovic, M. Kojic, and A. Tsuda. Dissipative particle dynamics simulation of flow generated by two rotating concentric cylinders: boundary conditions. Phys. Rev. E 74:046701, 2006.
    • (2006) Phys. Rev. e , vol.74 , pp. 046701
    • Haber, S.1    Filipovic, N.2    Kojic, M.3    Tsuda, A.4
  • 26
    • 0032033099 scopus 로고    scopus 로고
    • Quantification of the passive mechanical properties of the resting platelet
    • 9525767 10.1114/1.118 1:STN:280:DyaK1c7osVKrsw%3D%3D
    • Haga, J. H., A. J. Beaudoin, J. G. White, and J. Strony. Quantification of the passive mechanical properties of the resting platelet. Ann. Biomed. Eng. 26:268-277, 1998.
    • (1998) Ann. Biomed. Eng. , vol.26 , pp. 268-277
    • Haga, J.H.1    Beaudoin, A.J.2    White, J.G.3    Strony, J.4
  • 27
    • 84950109965 scopus 로고
    • Simulating microscopic hydrodynamic phenomena with dissipative particle dynamics
    • 10.1209/0295-5075/19/3/001
    • Hoogerbrugge, P. J., and J. M. V. A. Koelman. Simulating microscopic hydrodynamic phenomena with dissipative particle dynamics. Europhys. Lett. 19:155-160, 1992.
    • (1992) Europhys. Lett. , vol.19 , pp. 155-160
    • Hoogerbrugge, P.J.1    Koelman, J.2
  • 28
    • 0000670189 scopus 로고
    • The motion of ellipsoidal particles immersed in a viscous
    • 10.1098/rspa.1922.0078
    • Jeffery, G. B. The motion of ellipsoidal particles immersed in a viscous. Proc. R. Soc. Lond. A 102:161-179, 1922.
    • (1922) Proc. R. Soc. Lond. A , vol.102 , pp. 161-179
    • Jeffery, G.B.1
  • 29
    • 0002723523 scopus 로고
    • The pathways of blood coagulation
    • E. Beutler M.A. Lichtman B.S. Coller T.J. Kipps (eds) McGraw-Hill New York
    • Jesty, J., and Y. Nemerson. The pathways of blood coagulation. In: Williams Hematology, edited by E. Beutler, M. A. Lichtman, B. S. Coller, and T. J. Kipps. New York: McGraw-Hill, 1995, pp. 1227-1238.
    • (1995) Williams Hematology , pp. 1227-1238
    • Jesty, J.1    Nemerson, Y.2
  • 30
    • 0035119193 scopus 로고    scopus 로고
    • Surface-mediated control of blood coagulation: The role of binding site densities and platelet deposition
    • 11222273 10.1016/S0006-3495(01)76085-7 1:CAS:528:DC%2BD3MXkvFCjsbc%3D
    • Kuharsky, A. L., and A. L. Fogelson. Surface-mediated control of blood coagulation: the role of binding site densities and platelet deposition. Biophys. J. 80:1050-1074, 2001.
    • (2001) Biophys. J. , vol.80 , pp. 1050-1074
    • Kuharsky, A.L.1    Fogelson, A.L.2
  • 31
    • 0028461975 scopus 로고
    • Numerical simulations of particulate suspensions via a discretized Boltzmann-equation. 1. Theoretical foundation
    • 10.1017/S0022112094001771 1:CAS:528:DyaK2cXls1SjtL8%3D
    • Ladd, A. J. C. Numerical simulations of particulate suspensions via a discretized Boltzmann-equation. 1. theoretical foundation. J. Fluid Mech. 271:285-309, 1994.
    • (1994) J. Fluid Mech. , vol.271 , pp. 285-309
    • Ladd, A.J.C.1
  • 32
    • 0028460854 scopus 로고
    • Numerical simulations of particulate suspensions via a discretized Boltzmann-equation. 2. Numerical results
    • 10.1017/S0022112094001783 1:CAS:528:DyaK2cXltlKqsLo%3D
    • Ladd, A. J. C. Numerical simulations of particulate suspensions via a discretized Boltzmann-equation. 2. Numerical results. J. Fluid Mech. 271:311-339, 1994.
    • (1994) J. Fluid Mech. , vol.271 , pp. 311-339
    • Ladd, A.J.C.1
  • 33
    • 0034736608 scopus 로고    scopus 로고
    • Force measurements on platelet surfaces with high spatial resolution under physiological conditions
    • 10.1016/S0927-7765(00)00144-2 1:CAS:528:DC%2BD3cXosVSms7w%3D
    • Lee, I., and R. E. Marchant. Force measurements on platelet surfaces with high spatial resolution under physiological conditions. Colloid Surf. B 19:357-365, 2000.
    • (2000) Colloid Surf. B , vol.19 , pp. 357-365
    • Lee, I.1    Marchant, R.E.2
  • 34
    • 79952897998 scopus 로고    scopus 로고
    • Time-dependent and outflow boundary conditions for dissipative particle dynamics
    • 21499548 10.1016/j.jcp.2011.02.003 1:CAS:528:DC%2BC3MXjvVKktbc%3D
    • Lei, H. A., D. A. Fedosov, and G. E. Karniadakis. Time-dependent and outflow boundary conditions for dissipative particle dynamics. J. Comput. Phys. 230:3765-3779, 2011.
    • (2011) J. Comput. Phys. , vol.230 , pp. 3765-3779
    • Lei, H.A.1    Fedosov, D.A.2    Karniadakis, G.E.3
  • 35
    • 84859564891 scopus 로고    scopus 로고
    • Blood-plasma separation in Y-shaped bifurcating microfluidic channels: A dissipative particle dynamics simulation study
    • 22476709 10.1088/1478-3975/9/2/026010
    • Li, X., A. S. Popel, and G. E. Karniadakis. Blood-plasma separation in Y-shaped bifurcating microfluidic channels: a dissipative particle dynamics simulation study. Phys. Biol. 9:026010, 2012.
    • (2012) Phys. Biol. , vol.9 , pp. 026010
    • Li, X.1    Popel, A.S.2    Karniadakis, G.E.3
  • 36
    • 57849117144 scopus 로고    scopus 로고
    • Simulating deformable particle suspensions using a coupled lattice-Boltzmann and finite-element method
    • 10.1017/S0022112008004011
    • MacMeccan, R. M., J. R. Clausen, G. P. Neitzel, and C. K. Aidun. Simulating deformable particle suspensions using a coupled lattice-Boltzmann and finite-element method. J. Fluid Mech. 618:13-39, 2009.
    • (2009) J. Fluid Mech. , vol.618 , pp. 13-39
    • MacMeccan, R.M.1    Clausen, J.R.2    Neitzel, G.P.3    Aidun, C.K.4
  • 37
    • 4243694721 scopus 로고    scopus 로고
    • Static and dynamic properties of dissipative particle dynamics
    • 10.1103/PhysRevE.56.1676 1:CAS:528:DyaK2sXlsFejsb8%3D
    • Marsh, C. A., G. Backx, and M. H. Ernst. Static and dynamic properties of dissipative particle dynamics. Phys. Rev. E 56:1676-1691, 1997.
    • (1997) Phys. Rev. e , vol.56 , pp. 1676-1691
    • Marsh, C.A.1    Backx, G.2    Ernst, M.H.3
  • 38
    • 51649126018 scopus 로고    scopus 로고
    • Platelet adhesive dynamics. Part I: Characterization of platelet hydrodynamic collisions and wall effects
    • 18515387 10.1529/biophysj.107.127670 1:CAS:528:DC%2BD1cXhtVGqsr3E
    • Mody, N. A., and M. R. King. Platelet adhesive dynamics. Part I: characterization of platelet hydrodynamic collisions and wall effects. Biophys. J. 95:2539-2555, 2008.
    • (2008) Biophys. J. , vol.95 , pp. 2539-2555
    • Mody, N.A.1    King, M.R.2
  • 39
    • 79960912973 scopus 로고    scopus 로고
    • Predicting dynamics and rheology of blood flow: A comparative study of multiscale and low-dimensional models of red blood cells
    • 21640731 10.1016/j.mvr.2011.05.006
    • Pan, W. X., D. A. Fedosov, B. Caswell, and G. E. Karniadakis. Predicting dynamics and rheology of blood flow: a comparative study of multiscale and low-dimensional models of red blood cells. Microvasc. Res. 82:163-170, 2011.
    • (2011) Microvasc. Res. , vol.82 , pp. 163-170
    • Pan, W.X.1    Fedosov, D.A.2    Caswell, B.3    Karniadakis, G.E.4
  • 40
    • 18344396058 scopus 로고    scopus 로고
    • A new method to impose no-slip boundary conditions in dissipative particle dynamics
    • 10.1016/j.jcp.2005.01.006
    • Pivkin, I. V., and G. E. Karniadakis. A new method to impose no-slip boundary conditions in dissipative particle dynamics. J. Comput. Phys. 207:114-128, 2005.
    • (2005) J. Comput. Phys. , vol.207 , pp. 114-128
    • Pivkin, I.V.1    Karniadakis, G.E.2
  • 41
    • 33744454912 scopus 로고    scopus 로고
    • Controlling density fluctuations in wall-bounded dissipative particle dynamics systems
    • 16803187 10.1103/PhysRevLett.96.206001
    • Pivkin, I. V., and G. E. Karniadakis. Controlling density fluctuations in wall-bounded dissipative particle dynamics systems. Phys. Rev. Lett. 96:206001, 2006.
    • (2006) Phys. Rev. Lett. , vol.96 , pp. 206001
    • Pivkin, I.V.1    Karniadakis, G.E.2
  • 42
    • 52149120726 scopus 로고    scopus 로고
    • Accurate coarse-grained modeling of red blood cells
    • 18851338 10.1103/PhysRevLett.101.118105
    • Pivkin, I. V., and G. E. Karniadakis. Accurate coarse-grained modeling of red blood cells. Phys. Rev. Lett. 101(11):118105, 2008.
    • (2008) Phys. Rev. Lett. , vol.101 , Issue.11 , pp. 118105
    • Pivkin, I.V.1    Karniadakis, G.E.2
  • 43
    • 33751224781 scopus 로고    scopus 로고
    • Blood flow velocity effects and role of activation delay time on growth and form of platelet thrombi
    • 17085579 10.1073/pnas.0608546103 1:CAS:528:DC%2BD28Xht1Kqs73E
    • Pivkin, I. V., P. D. Richardson, and G. Karniadakis. Blood flow velocity effects and role of activation delay time on growth and form of platelet thrombi. Proc. Natl. Acad. Sci. U.S.A. 103:17164-17169, 2006.
    • (2006) Proc. Natl. Acad. Sci. U.S.A. , vol.103 , pp. 17164-17169
    • Pivkin, I.V.1    Richardson, P.D.2    Karniadakis, G.3
  • 44
  • 45
    • 0002467378 scopus 로고
    • Fast parallel algorithms for short-range molecular-dynamics
    • 10.1006/jcph.1995.1039 1:CAS:528:DyaK2MXlt1ejs7Y%3D
    • Plimpton, S. Fast parallel algorithms for short-range molecular-dynamics. J. Comput. Phys. 117:1-19, 1995.
    • (1995) J. Comput. Phys. , vol.117 , pp. 1-19
    • Plimpton, S.1
  • 46
    • 0033161165 scopus 로고    scopus 로고
    • Computational simulation of platelet deposition and activation: I. Model development and properties
    • 10468228 10.1114/1.200 1:STN:280:DyaK1Mzps1ejtg%3D%3D
    • Sorensen, E. N., G. W. Burgreen, W. R. Wagner, and J. F. Antaki. Computational simulation of platelet deposition and activation: I. Model development and properties. Ann. Biomed. Eng. 27:436-448, 1999.
    • (1999) Ann. Biomed. Eng. , vol.27 , pp. 436-448
    • Sorensen, E.N.1    Burgreen, G.W.2    Wagner, W.R.3    Antaki, J.F.4
  • 47
    • 0033159465 scopus 로고    scopus 로고
    • Computational simulation of platelet deposition and activation: II. Results for Poiseuille flow over collagen
    • 10468229 10.1114/1.201 1:STN:280:DyaK1Mzps1ejtw%3D%3D
    • Sorensen, E. N., G. W. Burgreen, W. R. Wagner, and J. F. Antaki. Computational simulation of platelet deposition and activation: II. Results for Poiseuille flow over collagen. Ann. Biomed. Eng. 27:449-458, 1999.
    • (1999) Ann. Biomed. Eng. , vol.27 , pp. 449-458
    • Sorensen, E.N.1    Burgreen, G.W.2    Wagner, W.R.3    Antaki, J.F.4
  • 48
    • 34548236295 scopus 로고    scopus 로고
    • A lattice Boltzmann study on the large deformation of red blood cells in shear flow
    • 10.1142/S012918310701108X
    • Sui, Y., Y. T. Chew, and H. T. Low. A lattice Boltzmann study on the large deformation of red blood cells in shear flow. Int. J. Mod. Phys. C 18:993-1011, 2007.
    • (2007) Int. J. Mod. Phys. C , vol.18 , pp. 993-1011
    • Sui, Y.1    Chew, Y.T.2    Low, H.T.3
  • 49
    • 34247262162 scopus 로고    scopus 로고
    • A hybrid immersed-boundary and multi-block lattice Boltzmann method for simulating fluid and moving-boundaries interactions
    • 10.1002/fld.1381
    • Sui, Y., Y. T. Chew, P. Roy, and H. T. Low. A hybrid immersed-boundary and multi-block lattice Boltzmann method for simulating fluid and moving-boundaries interactions. Int. J. Numer. Methods Fluids 53:1727-1754, 2007.
    • (2007) Int. J. Numer. Methods Fluids , vol.53 , pp. 1727-1754
    • Sui, Y.1    Chew, Y.T.2    Roy, P.3    Low, H.T.4
  • 50
    • 0034359349 scopus 로고    scopus 로고
    • No-slip boundary condition in dissipative particle dynamics
    • Willemsen, S. M., H. C. J. Hoefsloot, and P. D. Iedema. No-slip boundary condition in dissipative particle dynamics. Int. J. Mod. Phys. C 11:881-890, 2000.
    • (2000) Int. J. Mod. Phys. C , vol.11 , pp. 881-890
    • Willemsen, S.M.1    Hoefsloot, H.C.J.2    Iedema, P.D.3
  • 51
    • 0016387142 scopus 로고
    • Transverse force on a drop in an unbounded parabolic flow
    • 10.1017/S0022112074000632
    • Wohl, P. R., and S. I. Rubinow. Transverse force on a drop in an unbounded parabolic flow. J. Fluid Mech. 62:185-207, 1974.
    • (1974) J. Fluid Mech. , vol.62 , pp. 185-207
    • Wohl, P.R.1    Rubinow, S.I.2
  • 52
    • 84864553859 scopus 로고    scopus 로고
    • A numerical investigation of blood damage in the hinge area of aortic bileaflet mechanical heart valves during the leakage phase
    • 22215278 10.1007/s10439-011-0502-3
    • Yun, B. M., J. Wu, H. A. Simon, S. Arjunon, F. Sotiropoulos, C. K. Aidun, and A. P. Yoganathan. A numerical investigation of blood damage in the hinge area of aortic bileaflet mechanical heart valves during the leakage phase. Ann. Biomed. Eng. 40:1468-1485, 2012.
    • (2012) Ann. Biomed. Eng. , vol.40 , pp. 1468-1485
    • Yun, B.M.1    Wu, J.2    Simon, H.A.3    Arjunon, S.4    Sotiropoulos, F.5    Aidun, C.K.6    Yoganathan, A.P.7


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.