Title of article
Depth-dependent strain fields of articular cartilage under rolling load by the optimized digital image correlation technique
Author/Authors
Gao، نويسنده , , Li-Lan and Zhang، نويسنده , , Chun-Qiu and Yang، نويسنده , , Yu-Bo and Shi، نويسنده , , Jinping and Jia، نويسنده , , Yun-Wei، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2013
Pages
6
From page
2317
To page
2322
Abstract
It is significant to investigate the depth-dependent mechanical behaviors of articular cartilage under rolling load since considerable rolling occurs for cartilage joint in activities of daily living. In this study, the rolling experiments of articular cartilage were conducted by applying an optimized digital image correlation (DIC) technique for the first time and the depth-dependent normal strain and shear strain of cartilage were analyzed. It is found that the normal strain and shear strain values of different layers increase firstly and then decrease with rolling time, and they increase with increasing compressive strains. The normal strain and shear strain values decrease along cartilage depth with constant compressive strain. The normal strain values of different normalized depth decrease with increasing rolling rates. The shear strain values of superficial layer and middle layer decrease; however there are no major changes for the shear strain values of deep layer with increasing rolling rates. The normal strain values with different rolling time increase with increasing rolling numbers and the 30.6% increase in initial normal strain is observed from 1st to 99th cycle. The fitting relationship of the normal strain and normalized depth was obtained considering the effects of compressive strain and rolling rate and the fitting curves agree with the experimental results for cartilage very well.
Keywords
Articular cartilage , depth-dependent , Normal strain , Shear Strain , Rolling load , Optimized DIC technique
Journal title
Materials Science and Engineering C
Serial Year
2013
Journal title
Materials Science and Engineering C
Record number
2103026
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