AN ANALYTICAL AND NUMERICAL STUDY OF THE STABILITY OF BONE REMODELING THEORIES - DEPENDENCE ON MICROSTRUCTURAL STIMULUS

被引:41
作者
HARRIGAN, TP
HAMILTON, JJ
机构
[1] Department of Orthopedic Surgery, University of Missouri-Kansas City School of Medicine, Kansas City, MO 64108
关键词
D O I
10.1016/0021-9290(92)90088-I
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
The origin of unstable bone remodelling simulations using strain-energy-based remodelling rules was studied mathematically in order to assess whether the unstable behavior was due to the mathematical rules proposed to characterize the processes, or to the numerical approximations used to exercise the mathematical predictions. A condition which is necessary for the stability of a strain-energy-based remodelling theory was derived analytically using the calculus of variation. The analytical result was derived using a simple elastic model which consists of a long beam loaded by an axial force and a bending moment. This loading situation mimics the coupling between local density and global density distributions seen in vivo. A condition necessary for a stable remodelling scheme is arrived at, but the conditions necessary to guarantee a stable remodelling scheme are not. In this remodelling scheme, the elastic modulus is proportional to volumetric density raised to an exponent n, and the microstructural stimulus is taken as the strain energy density divided by volumetric density raised to an exponent m. In order for a remodelling scheme to be stable in this loading situation, m must be greater than n. Finite-difference time-stepping is used to verify the predictions of the analytical study. These numerical studies appear to confirm the analytical studies. Physiologic interpretation of the behavior found with n > m indicates that this type of unstable behavior is unlikely to be observed in vivo. Since numerical approximations are not made in deriving this stability condition, we conclude that the mathematical rules proposed to characterize bone remodelling based on strain energy density should meet this condition to be relevant to physiologic bone remodelling.
引用
收藏
页码:477 / 488
页数:12
相关论文
共 14 条
[1]  
[Anonymous], ENG ANAL
[2]  
Bathe KJ., 2006, FINITE ELEMENT PROCE
[3]   AN APPROACH FOR TIME-DEPENDENT BONE MODELING AND REMODELING - THEORETICAL DEVELOPMENT [J].
BEAUPRE, GS ;
ORR, TE ;
CARTER, DR .
JOURNAL OF ORTHOPAEDIC RESEARCH, 1990, 8 (05) :651-661
[4]   RELATIONSHIPS BETWEEN LOADING HISTORY AND FEMORAL CANCELLOUS BONE ARCHITECTURE [J].
CARTER, DR ;
ORR, TE ;
FYHRIE, DP .
JOURNAL OF BIOMECHANICS, 1989, 22 (03) :231-244
[5]   COMPRESSIVE BEHAVIOR OF BONE AS A 2-PHASE POROUS STRUCTURE [J].
CARTER, DR ;
HAYES, WC .
JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1977, 59 (07) :954-962
[6]   MECHANICAL LOADING HISTORY AND SKELETAL BIOLOGY [J].
CARTER, DR .
JOURNAL OF BIOMECHANICS, 1987, 20 (11-12) :1095-1109
[7]   MECHANICAL MODELING OF THE STRESS-ADAPTATION PROCESS IN BONE [J].
COWIN, SC .
CALCIFIED TISSUE INTERNATIONAL, 1984, 36 :S98-S103
[8]  
Hart R. T., 1989, BONE MECHANICS, P253
[9]   A COMPUTATIONAL METHOD FOR STRESS-ANALYSIS OF ADAPTIVE ELASTIC-MATERIALS WITH A VIEW TOWARD APPLICATIONS IN STRAIN-INDUCED BONE REMODELING [J].
HART, RT ;
DAVY, DT ;
HEIPLE, KG .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 1984, 106 (04) :342-350
[10]   ADAPTIVE BONE-REMODELING THEORY APPLIED TO PROSTHETIC-DESIGN ANALYSIS [J].
HUISKES, R ;
WEINANS, H ;
GROOTENBOER, HJ ;
DALSTRA, M ;
FUDALA, B ;
SLOOFF, TJ .
JOURNAL OF BIOMECHANICS, 1987, 20 (11-12) :1135-1150