Martin Caitlin, Sun Wei
Tissue Mechanics Laboratory, The Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology, Atlanta, GA 30313.
J Long Term Eff Med Implants. 2015;25(1-2):55-73. doi: 10.1615/jlongtermeffmedimplants.2015011749.
Mechanical fatigue damage is a critical issue for soft tissues and tissue-derived materials, particularly for musculoskeletal and cardiovascular applications; yet, our understanding of the fatigue damage process is incomplete. Soft tissue fatigue experiments are often difficult and time-consuming to perform, which has hindered progress in this area. However, the recent development of soft-tissue fatigue-damage constitutive models has enabled simulation-based fatigue analyses of tissues under various conditions. Computational simulations facilitate highly controlled and quantitative analyses to study the distinct effects of various loading conditions and design features on tissue durability; thus, they are advantageous over complex fatigue experiments. Although significant work to calibrate the constitutive models from fatigue experiments and to validate predictability remains, further development in these areas will add to our knowledge of soft-tissue fatigue damage and will facilitate the design of durable treatments and devices. In this review, the experimental, modeling, and simulation efforts to study collagenous tissue fatigue damage are summarized and critically assessed.
机械疲劳损伤是软组织和组织衍生材料面临的一个关键问题,特别是在肌肉骨骼和心血管应用方面;然而,我们对疲劳损伤过程的理解并不完整。软组织疲劳实验通常难以进行且耗时,这阻碍了该领域的进展。然而,软组织疲劳损伤本构模型的最新发展使得能够对各种条件下的组织进行基于模拟的疲劳分析。计算模拟有助于进行高度可控和定量的分析,以研究各种加载条件和设计特征对组织耐久性的不同影响;因此,它们比复杂的疲劳实验更具优势。尽管仍有大量工作要从疲劳实验中校准本构模型并验证其可预测性,但这些领域的进一步发展将增加我们对软组织疲劳损伤的认识,并有助于设计耐用的治疗方法和设备。在这篇综述中,对研究胶原组织疲劳损伤的实验、建模和模拟工作进行了总结和批判性评估。