Non-linear viscoelastic constitutive model for bovine cortical bone tissue

被引:10
作者
Pawlikowski, Marek [1 ]
Barcz, Katarzyna [1 ]
机构
[1] Warsaw Univ Technol, Inst Mech & Printing, Ul Narbutta 85, PL-02524 Warsaw, Poland
关键词
Constitutive model; Non-linear viscoelasticity; Stiffness tensor; Experimental validation; FE simulation; MECHANICAL-PROPERTIES; DYNAMIC-RESPONSE; TRABECULAR BONE; COMPACT-BONE; BEHAVIOR; DEFORMATION;
D O I
10.1016/j.bbe.2016.03.005
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
In the paper a constitutive law formulation for bovine cortical bone tissue is presented. The formulation is based on experimental studies performed on bovine cortical bone samples. Bone tissue is regarded as a non-linear viscoelastic material. The constitutive law is derived from the postulated strain energy function. The model captures typical viscoelastic effects, i.e. hysteresis, stress relaxation and rate-dependence. The elastic and rheological constants were identified on the basis of experimental tests, i.e. relaxation tests and monotonic uniaxial tests at three different strain rates, i.e. lambda = 0.1 min(-1), lambda = 0.5 min(-1) and = 1.0 min(-1). In order to numerically validate the constitutive model the fourth-order stiffness tensor was analytically derived and introduced to Abaqus finite element (FE) software by means of UMAT subroutine. The model was experimentally validated. The validation results show that the derived constitutive law is adequate to model stress-strain behaviour of the considered bone tissue. The constitutive model, although formulated in the strain rate range lambda = 0.1-1.0 min(-1), is also valid for the strain rate values slightly higher than lambda = 1.0 min(-1). The work presented in the paper proves that the formulated constitutive model is very useful in modelling compressive behaviour of bone under various ranges of load. (C) 2016 Nakcz Institute of Biocybemetics and Biomedical Engineering of the Polish Academy of Sciences. Published by Elsevier Sp. z o.o. All rights reserved.
引用
收藏
页码:491 / 498
页数:8
相关论文
共 34 条
[21]  
Melnis A. E., 1979, Mechanics of Composite Materials, V15, P574, DOI 10.1007/BF00605581
[22]   Mechanisms governing the inelastic deformation of cortical bone and application to trabecular bone [J].
Mercer, C ;
He, MY ;
Wang, R ;
Evans, AG .
ACTA BIOMATERIALIA, 2006, 2 (01) :59-68
[23]   Constitutive modelling of inelastic behaviour of cortical bone [J].
Natali, Arturo N. ;
Carniel, Emanuele L. ;
Pavan, Piero G. .
MEDICAL ENGINEERING & PHYSICS, 2008, 30 (07) :905-912
[24]   Constitutive modeling of the stress-strain behavior of F-actin filament networks [J].
Palmer, Jeffrey S. ;
Boyce, Mary C. .
ACTA BIOMATERIALIA, 2008, 4 (03) :597-612
[25]   Process of hip joint prosthesis design including bone remodeling phenomenon [J].
Pawlikowski, M ;
Skalski, K ;
Haraburda, M .
COMPUTERS & STRUCTURES, 2003, 81 (8-11) :887-893
[28]   An anisotropic hyperelastic constitutive model with fiber-matrix shear interaction for the human annulus fibrosus [J].
Peng, X. Q. ;
Guo, Z. Y. ;
Moran, B. .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2006, 73 (05) :815-824
[29]   Muscle and Tendon Tissues: Constitutive Modeling and Computational Issues [J].
Spyrou, L. A. ;
Aravas, N. .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2011, 78 (04)
[30]   In vivo monitoring of bone-implant bond strength by microCT and finite element modelling [J].
Stadelmann, Vincent A. ;
Conway, Carl M. ;
Boyd, Steven K. .
COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2013, 16 (09) :993-1001