Medical Engineering & Physics
Volume 31, Issue 9 , Pages 1104-1109, November 2009

Probabilistic constitutive law for damage in ligaments

Mechanics of Soft Biological Systems Laboratory, Engineering Science and Mechanics Department, 230 Norris Hall, Virginia Tech, Blacksburg, VA 24061, USA

Received 13 January 2009; accepted 7 June 2009. published online 10 August 2009.

Abstract 

A new constitutive equation is presented to describe the damage evolution process in parallel-fibered collagenous tissues such as ligaments. The model is formulated by accounting for the fibrous structure of the tissues. The tissue’s stress is defined as the average of the collagen fiber’s stresses. The fibers are assumed to be undulated and straightened out at different stretches that are randomly defined according to a Weibull distribution. After becoming straight, each collagen fiber is assumed to be linear elastic. Damage is defined as a reduction in collagen fiber’s stiffness and occurs at different stretches that are also randomly defined by a Weibull distribution. Due to the lack of experimental data, the predictions of the constitutive equation are analyzed by varying the values of its structural parameters. Moreover, the results are compared with the available stress–strain data in the biomechanics literature that evaluate damage produced by subfailure stretches in rat medial collateral ligaments.

Keywords: Constitutive model, Damage, Medial collateral ligament

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PII: S1350-4533(09)00151-9

doi:10.1016/j.medengphy.2009.06.011

Medical Engineering & Physics
Volume 31, Issue 9 , Pages 1104-1109, November 2009