메뉴 건너뛰기




Volumn 34, Issue 3, 2004, Pages 259-273

Computer simulation of an adaptive damage-bone remodeling law applied to three unit-bone bars structure

Author keywords

Bone microdamage; Bone remodeling; Computer simulation; Damage repair

Indexed keywords

COMPUTER SIMULATION; MATHEMATICAL MODELS; MICROCRACKS; TRUSSES; CELLS; LOADING; MAINTENANCE; STRAIN;

EID: 1642270215     PISSN: 00104825     EISSN: None     Source Type: Journal    
DOI: 10.1016/S0010-4825(03)00057-X     Document Type: Article
Times cited : (9)

References (35)
  • 2
    • 0016974131 scopus 로고
    • Bone remodeling I: Theory of adaptive elasticity
    • Cowin S.C., Hegedus D.M. Bone remodeling I. theory of adaptive elasticity J. Elast. 6:1976;313-325.
    • (1976) J. Elast. , vol.6 , pp. 313-325
    • Cowin, S.C.1    Hegedus, D.M.2
  • 3
    • 0017013419 scopus 로고
    • Bone remodeling II: Small strain adaptive elasticity
    • Hegedus D.H., Cowin S.C. Bone remodeling II. small strain adaptive elasticity J. Elast. 6:1976;337-352.
    • (1976) J. Elast. , vol.6 , pp. 337-352
    • Hegedus, D.H.1    Cowin, S.C.2
  • 7
    • 0025290371 scopus 로고
    • Experimental stress fractures of the tibia-biological and mechanical aetiology in rabbit
    • Burr D.B., Milgrom C., Boyd R.D., Higgins W.L., Radinel G. Experimental stress fractures of the tibia-biological and mechanical aetiology in rabbit. J. Bone Joint Surg. 72B:1990;370-375.
    • (1990) J. Bone Joint Surg. , vol.72 , pp. 370-375
    • Burr, D.B.1    Milgrom, C.2    Boyd, R.D.3    Higgins, W.L.4    Radinel, G.5
  • 8
    • 0027462103 scopus 로고
    • Increased intracortical remodeling following fatigue damage
    • Mori S., Burr D.B. Increased intracortical remodeling following fatigue damage. Bone. 14:1993;103-109.
    • (1993) Bone , vol.14 , pp. 103-109
    • Mori, S.1    Burr, D.B.2
  • 9
    • 0033991383 scopus 로고    scopus 로고
    • Toward a unifying theory of bone remodeling
    • Martin R.B. Toward a unifying theory of bone remodeling. Bone. 26:2000;1-6.
    • (2000) Bone , vol.26 , pp. 1-6
    • Martin, R.B.1
  • 10
    • 0028488953 scopus 로고
    • Prediction of bone adaptation using damage accumulation
    • Prendergast P.J., Taylor D. Prediction of bone adaptation using damage accumulation. J. Biomech. 27:1994;1067-1076.
    • (1994) J. Biomech. , vol.27 , pp. 1067-1076
    • Prendergast, P.J.1    Taylor, D.2
  • 11
    • 0002093244 scopus 로고
    • Presence of microscopic cracks in vivo in bone
    • Frost H.M. Presence of microscopic cracks in vivo in bone. Bull. Henry Ford Hosp. 8:1960;25-35.
    • (1960) Bull. Henry Ford Hosp. , vol.8 , pp. 25-35
    • Frost, H.M.1
  • 14
    • 0033981552 scopus 로고    scopus 로고
    • Loss of osteocyte integrity in association with microdamage and bone remodeling after fatigue in vivo
    • Verborgt O., Gibson G.J., Schaffler M.B. Loss of osteocyte integrity in association with microdamage and bone remodeling after fatigue in vivo. J. Bone Mineral Res. 15:2000;60-67.
    • (2000) J. Bone Mineral Res. , vol.15 , pp. 60-67
    • Verborgt, O.1    Gibson, G.J.2    Schaffler, M.B.3
  • 16
    • 0017741045 scopus 로고
    • Compact bone fatigue damage-I. Residual strength and stiffness
    • Carter D.R., Hayes W.C. Compact bone fatigue damage-I. Residual strength and stiffness. J. Biomech. 10:1977;325-337.
    • (1977) J. Biomech. , vol.10 , pp. 325-337
    • Carter, D.R.1    Hayes, W.C.2
  • 17
    • 0000568921 scopus 로고
    • Mathematical modeling of microdamage in bone remodeling and adaptation
    • A. Odgaard, & H. Weinans. Singapore: World Scientific
    • Prendergast P.J., Huiskes R. Mathematical modeling of microdamage in bone remodeling and adaptation. Odgaard A., Weinans H. Bone Structure and Remodeling. Recent Advances in Human Biology. Vol. 2:1995;213-223 World Scientific, Singapore.
    • (1995) Bone Structure and Remodeling. Recent Advances in Human Biology , vol.2 , pp. 213-223
    • Prendergast, P.J.1    Huiskes, R.2
  • 18
    • 0032124309 scopus 로고    scopus 로고
    • Microcrack growth parameter for compact bone deduced from stiffness variations
    • Taylor D. Microcrack growth parameter for compact bone deduced from stiffness variations. J. Biomech. 31:1998;587-592.
    • (1998) J. Biomech. , vol.31 , pp. 587-592
    • Taylor, D.1
  • 19
    • 0011757048 scopus 로고    scopus 로고
    • An anisotropic internal-external bone adaptation model based on a combination of CAO and continuum damage mechanics technologies
    • Garcia J.M., Martinez M.A., Doblaré M. An anisotropic internal-external bone adaptation model based on a combination of CAO and continuum damage mechanics technologies. Comput. Methods Biomech. Biomed. Eng. 34:2001;471-479.
    • (2001) Comput. Methods Biomech. Biomed. Eng. , vol.34 , pp. 471-479
    • Garcia, J.M.1    Martinez, M.A.2    Doblaré, M.3
  • 20
    • 0033224840 scopus 로고    scopus 로고
    • Damaged-bone remodeling theory: Thermodynamical approach
    • Ramtani S., Zidi M. Damaged-bone remodeling theory. thermodynamical approach Mech. Res. Commun. 26:1999;701-708.
    • (1999) Mech. Res. Commun. , vol.26 , pp. 701-708
    • Ramtani, S.1    Zidi, M.2
  • 21
    • 0035108552 scopus 로고    scopus 로고
    • A theoretical model of the effect of continuum damage on a bone adaptation model
    • Ramtani S., Zidi M. A theoretical model of the effect of continuum damage on a bone adaptation model. J. Biomech. 34:2001;471-479.
    • (2001) J. Biomech. , vol.34 , pp. 471-479
    • Ramtani, S.1    Zidi, M.2
  • 22
    • 1642309970 scopus 로고    scopus 로고
    • Damaged-bone adaptation under steady homogeneous stress
    • S. Ramtani, M. Zidi, 2001. Damaged-bone adaptation under steady homogeneous stress, ASME J. Biomech. Eng. 124 (2002) 1-6.
    • (2001) ASME J. Biomech. Eng. , vol.124 , pp. 1-6
    • Ramtani, S.1    Zidi, M.2
  • 23
    • 0035130678 scopus 로고    scopus 로고
    • A mechanistic model for internal bone remodeling exhibits different dynamic responses in disuse and overload
    • Hazelwood S.J., Martin R.B., Rashid M.M., Rodrigo J.J. A mechanistic model for internal bone remodeling exhibits different dynamic responses in disuse and overload. J. Biomech. 34:2001;299-308.
    • (2001) J. Biomech. , vol.34 , pp. 299-308
    • Hazelwood, S.J.1    Martin, R.B.2    Rashid, M.M.3    Rodrigo, J.J.4
  • 25
    • 0021960062 scopus 로고
    • Bone remodeling in response to in vivo fatigue microdamage
    • Burr D.B., Martin R.B., Schaffler M.B., Radin E.L. Bone remodeling in response to in vivo fatigue microdamage. J. Biomech. 18:1985;189-200.
    • (1985) J. Biomech. , vol.18 , pp. 189-200
    • Burr, D.B.1    Martin, R.B.2    Schaffler, M.B.3    Radin, E.L.4
  • 27
    • 0027575822 scopus 로고
    • Micromechanics of bone strength and fracture
    • Mammone J.F., Hudson S.M. Micromechanics of bone strength and fracture. J. Biomech. 26:1993;439-446.
    • (1993) J. Biomech. , vol.26 , pp. 439-446
    • Mammone, J.F.1    Hudson, S.M.2
  • 28
    • 0018421762 scopus 로고
    • Cement line motion in bone
    • Lakes R., Saha S. Cement line motion in bone. Science. 204:1979;501-503.
    • (1979) Science , vol.204 , pp. 501-503
    • Lakes, R.1    Saha, S.2
  • 29
    • 0026990532 scopus 로고
    • A comparison of the fatigue behaviour of human trabecular and cortical bone tissue
    • Choi K., Goldstein S.A. A comparison of the fatigue behaviour of human trabecular and cortical bone tissue. J. Biomech. 25:1992;1371-1381.
    • (1992) J. Biomech. , vol.25 , pp. 1371-1381
    • Choi, K.1    Goldstein, S.A.2
  • 31
    • 0028371273 scopus 로고
    • Finite element modeling of damage accumulation in trabecular bone under cyclic loading
    • Guo X.E. Finite element modeling of damage accumulation in trabecular bone under cyclic loading. J. Biomech. 27:1994;145-155.
    • (1994) J. Biomech. , vol.27 , pp. 145-155
    • Guo, X.E.1
  • 32
    • 0002920144 scopus 로고
    • Continuum damage mechanics. Part I, General concepts, Part II, Damage growth, crack initiation and crack growth
    • Chaboche J.L. Continuum damage mechanics. Part I, General concepts, Part II, Damage growth, crack initiation and crack growth. J. Appl. Mech. 55:1988;233-247.
    • (1988) J. Appl. Mech. , vol.55 , pp. 233-247
    • Chaboche, J.L.1
  • 33
    • 0031126214 scopus 로고    scopus 로고
    • Constitutive and damage evolution equations of elastic-brittle materials based on irreversible thermodynamics
    • Murakami S., Kamya K. Constitutive and damage evolution equations of elastic-brittle materials based on irreversible thermodynamics. Int. J. Mech. Sci. 39:1997;473-486.
    • (1997) Int. J. Mech. Sci. , vol.39 , pp. 473-486
    • Murakami, S.1    Kamya, K.2
  • 34
    • 0023162010 scopus 로고
    • Trabecular bone density and loading history: Regulation of connective tissue biology by mechanical energy
    • Carter D.R., Fyhrie D.P., Whalem R.T. Trabecular bone density and loading history. regulation of connective tissue biology by mechanical energy J. Biomech. 20:1987;785-794.
    • (1987) J. Biomech. , vol.20 , pp. 785-794
    • Carter, D.R.1    Fyhrie, D.P.2    Whalem, R.T.3
  • 35
    • 0023510231 scopus 로고
    • Adaptive bone-remodeling theory applied to prosthetic-design analysis
    • M. Doblaré is Full Professor of Structural Mechanics of the Department of Mechanical Engineering
    • Huiskes R., Weinans H., Grootenboer H.J., Dalstra M., Fudala B., Sloof T.J. Adaptive bone-remodeling theory applied to prosthetic-design analysis. J. Biomech. 20:1987;1135-1150 M. Doblaré is Full Professor of Structural Mechanics of the Department of Mechanical Engineering, Zaragoza University, Spain since 1984. He is presently the Director of the Aragón Institute for Engineering Research. Doctorate at Mechanical Engineering at the Polytechnic University of Madrid in 1981 and Doctorate "Honoris Causa" at the Technical University of Cluj-Napoca (Romania). Visiting Scholar at the Universities of Southampton, U.K., New York University, U.S.A. (Fulbright grant) and Stanford, U.S.A.
    • (1987) J. Biomech. , vol.20 , pp. 1135-1150
    • Huiskes, R.1    Weinans, H.2    Grootenboer, H.J.3    Dalstra, M.4    Fudala, B.5    Sloof, T.J.6


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.