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VISCOELASTICITY AND POROELASTICITY IN ELASTOMERIC GELS 被引量:8

VISCOELASTICITY AND POROELASTICITY IN ELASTOMERIC GELS
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摘要 An elastomeric gel is a mixture of a polymer network and a solvent. In response to changes in mechanical forces and in the chemical potential of the solvent in the environment, the gel evolves by two concurrent molecular processes: the conformational change of the network, and the migration of the solvent. The two processes result in viscoelasticity and poroelasticity, and are characterized by two material-specific properties: the time of viscoelastic relaxation and the effective diffusivity of the solvent through the network. The two properties define a material- specific length. The material-specific time and length enable us to discuss macroscopic observations made over different lengths and times, and identify limiting conditions in which viscoelastic and poroelastic relaxations have either completed or yet started. We formulate a model of homogeneous deformation, and use several examples to illustrate viscoelasticity-limited solvent migration, where the migration of the solvent is pronounced, but the size of the gel is so small that the rate of change is limited by viscoelasticity. We further describe a theory that evolves a gel through inhomogeneous states. Both infinitesimal and finite deformation are considered. An elastomeric gel is a mixture of a polymer network and a solvent. In response to changes in mechanical forces and in the chemical potential of the solvent in the environment, the gel evolves by two concurrent molecular processes: the conformational change of the network, and the migration of the solvent. The two processes result in viscoelasticity and poroelasticity, and are characterized by two material-specific properties: the time of viscoelastic relaxation and the effective diffusivity of the solvent through the network. The two properties define a material- specific length. The material-specific time and length enable us to discuss macroscopic observations made over different lengths and times, and identify limiting conditions in which viscoelastic and poroelastic relaxations have either completed or yet started. We formulate a model of homogeneous deformation, and use several examples to illustrate viscoelasticity-limited solvent migration, where the migration of the solvent is pronounced, but the size of the gel is so small that the rate of change is limited by viscoelasticity. We further describe a theory that evolves a gel through inhomogeneous states. Both infinitesimal and finite deformation are considered.
出处 《Acta Mechanica Solida Sinica》 SCIE EI 2012年第5期441-458,共18页 固体力学学报(英文版)
基金 supported by the National Science Foundation (NSF) (CMMI-0800161) Multidisciplinary University Research Initiative (MURI) (W911NF-09-1-0476) the Materials Research Science and Engineering Center at Harvard University (DMR-0820484)
关键词 ELASTOMER GEL VISCOELASTICITY poroelasticity CREEP stress relaxation elastomer, gel, viscoelasticity, poroelasticity, creep, stress relaxation
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  • 1Oberhauser,A.F., Marszalek,P.E., Erickson,H.P. and Fernandez,J.M., The molecular elasticity of the ex- traceliular matrix protein tenascin. Nature, 1998, 393: 181-185.
  • 2Krammer,A., Lu,H., Isralewitz,B., Schulten,K. and Vogel,V., Forced unfolding of the fibronectin type Ⅲ module reveals a tensile molecular recognition switch. Proceedings of the National Academy of Sciences of USA, 1999, 96: 1351-1356.
  • 3Ohashi,T., Kiehart,D.P. and Ericson,H., Dynamics and elasticity of the fibronectin matrix in living cell culture visualized by fibronectin-green fluorescent protein. Proceedings of the National Academy of Sciences of USA, 1999, 96: 2153-2158.
  • 4Craig,D, Krammer,A., Schulten,K. and Vogel,V., Comparison of the early stages of forced unfolding for fibronectin type III modules. Proceedings of the National Academy of Sciences of USA, 2001, 98: 5590-5595.
  • 5Vogel,V, Thomas,W.E., Craig,D.W., Krammer,A. and Baneyx,G., Structural insights into the mechanical regulation of molecular recognition sites. Trends in Biotechnology, 2001, 19: 416-423.
  • 6Puklin-Faucher,E., Gao,M., Schulten,K. and Vogel,V., How the headpiece hinge angle is opened: New insights into the dynamics of integrin activation. Journal of Cell Biology, 2006, 175: 349-360.
  • 7Vogel,V. and Sheetz,M.P., Cell fate regulation by coupling mechanical cycles to biochemical signaling pathways. Current Opinion in Cell Biology, 2009, 21: 38-46.
  • 8Puklin-Faucher,E. and Vogel,V., Integrin activation dynamics between the RGD-binding site and the headpiece hinge. Journal of Biological Chemistry, 2009, 284: 36557-36568.
  • 9Kong,F., Garcia,A.J., Mould,A.P., Humphries,M.J. and Zhu,C., Demonstration of catch bonds between an integrin and its ligand. Journal of Cell Biology, 2009, 185: 1275-1284.
  • 10Ruggeri,Z.M., Von WiUebrand factor. Current Opinion in Hematology, 2003, 10: 142-149.

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