COMPRESSIVE CREEP-BEHAVIOR OF BOVINE TRABECULAR BONE

被引:60
作者
BOWMAN, SM
KEAVENY, TM
GIBSON, LJ
HAYES, WC
MCMAHON, TA
机构
[1] HARVARD UNIV,SCH MED,BOSTON,MA 02215
[2] MIT,DEPT CIVIL & ENVIRONM ENGN,BOSTON,MA 02139
[3] HARVARD UNIV,DIV APPL SCI,CAMBRIDGE,MA 02138
关键词
D O I
10.1016/0021-9290(94)90006-X
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
There are almost no published data that describe the creep behavior of trabecular bane (at the specimen level), even though the creep behavior of cortical bone has been well documented. In an effort to characterize the creep behavior of trabecular bone and to compare it with that of cortical bone, we performed uniaxial compressive creep tests on 24 cylindrical specimens of trabecular bone taken from 19 bovine proximal tibiae. Six different load levels were used, with the applied stress normalized by the specimen modulus measured prior to creep loading. We found that trabecular bone exhibits the three creep regimes (primary, secondary, and tertiary) associated with metals, ceramics, and cortical bone. All specimens eventually fractured at strains less than 3.8%. In addition, the general shape of the creep curve was independent of apparent density. Strong and highly significant power law relationships (r(2) > 0.82, p < 0.001) were found between the normalized stress sigma/E(0), and both time-to-failure t(f) and steady-state creep rate d epsilon/dt: t(f)=9.66 x 10(-33) (sigma/E(0))(-16.18); d epsilon dt = 2.21 x 10(33) (sigma/E(0))(17.65). These data indicate that the creep behaviors of trabecular and cortical bone are qualitatively similar. In addition, the strength of trabecular bone can be reduced substantially if relatively large stresses (i.e. stresses approximately half the ultimate strength) are applied for 5 h. Such strength reductions may play a role in the etiology of progressive, age-related spine fractures if adaptive bone remodeling does not arrest creep deformations.
引用
收藏
页码:301 / &
相关论文
共 38 条
  • [1] [Anonymous], 1965, FUNDAMENTALS CREEP C
  • [2] BUHR AJ, 1959, LANCET, V1, P531
  • [3] BONE CREEP-FATIGUE DAMAGE ACCUMULATION
    CALER, WE
    CARTER, DR
    [J]. JOURNAL OF BIOMECHANICS, 1989, 22 (6-7) : 625 - 635
  • [4] CANNON WR, 1983, J MATER SCI, V18, P1, DOI 10.1007/BF00543808
  • [5] FATIGUE LIFE OF COMPACT BONE .1. EFFECTS OF STRESS AMPLITUDE, TEMPERATURE AND DENSITY
    CARTER, DR
    HAYES, WC
    [J]. JOURNAL OF BIOMECHANICS, 1976, 9 (01) : 27 - +
  • [6] FATIGUE BEHAVIOR OF ADULT CORTICAL BONE - THE INFLUENCE OF MEAN STRAIN AND STRAIN RANGE
    CARTER, DR
    CALER, WE
    SPENGLER, DM
    FRANKEL, VH
    [J]. ACTA ORTHOPAEDICA SCANDINAVICA, 1981, 52 (05): : 481 - 490
  • [7] COMPRESSIVE BEHAVIOR OF BONE AS A 2-PHASE POROUS STRUCTURE
    CARTER, DR
    HAYES, WC
    [J]. JOURNAL OF BONE AND JOINT SURGERY-AMERICAN VOLUME, 1977, 59 (07) : 954 - 962
  • [8] COHENSOLAL ME, 1991, J BONE MINER RES, V6, P1331
  • [9] CURREY JD, 1965, J EXP BIOL, V43, P279
  • [10] Dieter GE., 1986, MECH METALLURGY, P432