The biaxial failure behavior of the human trabecular bone, which has potential relevance both for fall and gait loading conditions, is not well understood, particularly for low-density bone, which can display considerable mechanical anisotropy. Addressing this issue, we investigated the biaxial normal strength behavior and the underlying failure mechanisms for human trabecular bone displaying a wide range of bone volume fraction (0.06–0.34) and elastic anisotropy. Micro-computed tomography (CT)-based nonlinear finite element analysis was used to simulate biaxial failure in 15 specimens (5 mm cubes), spanning the complete biaxial normal stress failure space in the axial-transverse plane. The specimens, treated as approximately transversely isotropic, were loaded in the principal material orientation. We found that the biaxial stress yield surface was well characterized by the superposition of two ellipses—one each for yield failure in the longitudinal and transverse loading directions—and the size, shape, and orientation of which depended on bone volume fraction and elastic anisotropy. However, when normalized by the uniaxial tensile and compressive strengths in the longitudinal and transverse directions, all of which depended on bone volume fraction, microarchitecture, and mechanical anisotropy, the resulting normalized biaxial strength behavior was well described by a single pair of (longitudinal and transverse) ellipses, with little interspecimen variation. Taken together, these results indicate that the role of bone volume fraction, microarchitecture, and mechanical anisotropy is mostly accounted for in determining the uniaxial strength behavior and the effect of these parameters on the axial-transverse biaxial normal strength behavior per se is minor.
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December 2013
Research-Article
Biaxial Normal Strength Behavior in the Axial-Transverse Plane for Human Trabecular Bone—Effects of Bone Volume Fraction, Microarchitecture, and Anisotropy
Arnav Sanyal,
Arnav Sanyal
1
Orthopaedic Biomechanics Laboratory,
Department of Mechanical Engineering,
e-mail: arnavsanyal@berkeley.edu
Department of Mechanical Engineering,
University of California
,Berkeley, CA 94720
e-mail: arnavsanyal@berkeley.edu
1Corresponding author.
Search for other works by this author on:
Tony M. Keaveny
Tony M. Keaveny
2
Orthopaedic Biomechanics Laboratory,
Department of Mechanical Engineering,
Department of Mechanical Engineering,
University of California
,Berkeley, CA 94720
Department of Bioengineering,
e-mail: tmk@me.berkeley.edu
University of California
, Berkeley, CA 94720
e-mail: tmk@me.berkeley.edu
2Please address all reprint requests to Tony M. Keaveny.
Search for other works by this author on:
Arnav Sanyal
Orthopaedic Biomechanics Laboratory,
Department of Mechanical Engineering,
e-mail: arnavsanyal@berkeley.edu
Department of Mechanical Engineering,
University of California
,Berkeley, CA 94720
e-mail: arnavsanyal@berkeley.edu
Tony M. Keaveny
Orthopaedic Biomechanics Laboratory,
Department of Mechanical Engineering,
Department of Mechanical Engineering,
University of California
,Berkeley, CA 94720
Department of Bioengineering,
e-mail: tmk@me.berkeley.edu
University of California
, Berkeley, CA 94720
e-mail: tmk@me.berkeley.edu
1Corresponding author.
2Please address all reprint requests to Tony M. Keaveny.
Contributed by the Bioengineering Division of ASME for publication in the JOURNAL OF BIOMECHANICAL ENGINEERING. Manuscript received July 9, 2013; final manuscript received September 23, 2013; accepted manuscript posted October 14, 2013; published online November 6, 2013. Assoc. Editor: Kristen Billiar.
J Biomech Eng. Dec 2013, 135(12): 121010 (9 pages)
Published Online: November 6, 2013
Article history
Received:
July 9, 2013
Revision Received:
September 23, 2013
Accepted:
October 14, 2013
Citation
Sanyal, A., and Keaveny, T. M. (November 6, 2013). "Biaxial Normal Strength Behavior in the Axial-Transverse Plane for Human Trabecular Bone—Effects of Bone Volume Fraction, Microarchitecture, and Anisotropy." ASME. J Biomech Eng. December 2013; 135(12): 121010. https://doi.org/10.1115/1.4025679
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