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Uniaxial tensile tests were performed on porcine skin to investigate the tensile stress-strain constitutive characteristic at qua-sistatic deformations using uniaxial tensile tests. Experimental results were then used to determine the parameters of the various constitutive model types for rubber, including the Mooney-Rivlin, Yeoh, Ogden, and others. The Prony series viscoelastic model was also calibrated based on the stress relaxation test. To investigate the calibrated constitutive equations (visco-hyperelastic), the falling impact test was conducted. From the viewpoint of the maximum impact load, the error was approximately 15.87%. Overall, the Ogden model predicted the experimental measurements most reasonably. The calibrated constitutive model is expected to be of practical use in describing the mechanical properties of porcine skin.
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Czasopismo
Rocznik
Tom
Strony
819--822
Opis fizyczny
Bibliogr. 17 poz., fot., rys., tab., wzory
Twórcy
autor
- Department of Mechanical Engineering, Kyung Hee University, 1732 Deokyoungdaero, Giheung-Gu, Yongin-Si, Gyeonggi 17104, Korea
autor
- Department of Mechanical Engineering, Kyung Hee University, 1732 Deokyoungdaero, Giheung-Gu, Yongin-Si, Gyeonggi 17104, Korea
autor
- Department of Mechanical Engineering, Kyung Hee University, 1732 Deokyoungdaero, Giheung-Gu, Yongin-Si, Gyeonggi 17104, Korea
autor
- Department of Mechanical Engineering, Kyung Hee University, 1732 Deokyoungdaero, Giheung-Gu, Yongin-Si, Gyeonggi 17104, Korea
Bibliografia
- [1] C. A. Cordero, G. Carbone, M. Ceccarelli, J. Echávarri, J. L. Muñoz, Mech. Mach. Theory 80, 184-199 (2014).
- [2] J. A. Marvel, J. Falco, I. Marstio, IEEE Trans. Syst. Man Cybern.-Syst. 45 (2), 260-275 (2015).
- [3] A. M. Zanchettin, N. M. Ceriani, P. Rocco, H. Ding, B. Matthias, IEEE Trans. Autom. Sci. Eng. 13 (2), 882-893 (2016).
- [4] X. Chen, J. Yi, J. Li, J. Zhou, Z. Wang, IEEE Robotics and Automation Letters. 3 (4), 3505-3512 (2018).
- [5] J. Lim, J. Hong, W. W. Chen, T. Weerasooriya, Int. J. Impact Eng. 38 (2-3), 130-135 (2011).
- [6] G. Uzer, A. Ho, R. Clark, C. Fu-pen, in Proceedings of the Society for Experimental Mechanics Annual Conference (2009).
- [7] M. Żak, P. Kuropka, M. Kobielarz, A. Dudek, K. Kaleta-Kuratewicz, S. Szotek, Acta. Bioeng. Biomech. 13 (2), 37-43 (2011).
- [8] O. A. Shergold, N. A. Fleck, D. Radford, Int. J. Impact Eng. 32 (9), 1384-1402 (2006).
- [9] A. Kalra, A. Lowe, A. Al-Jumaily, J. Mater. Sci. Eng. 5 (4), 254-260 (2016).
- [10] J. M. Benítez, F. J. Montáns, Comput. Struct. 190, 75-107 (2017).
- [11] H. Joodaki, M. B. Panzer, Proc. Inst. Mech. Eng. Part H J. Eng. Med. 232 (4), 323-343 (2018).
- [12] J. W. Jor, M. P. Nash, P. M. Nielsen, P. J. Hunter, Biomech. Model. Mechanobiol. 10 (5), 767-778 (2011).
- [13] J. W. Jor, M. D. Parker, A. J. Taberner, M. P. Nash, P. M. Nielsen, Wiley Interdisciplinary Reviews: Systems Biology and Medicine 5 (5), 539-556 (2013).
- [14] W. Li, Biomedical Engineering Letters 5 (4), 241-250 (2015).
- [15] D. Remache, M. Caliez, M. Gratton, S. Dos Santos, J. Mech. Behav. Biomed. 77, 242-249 (2018).
- [16] Z. Liu, K. Yeung, J. Mech. Behav. Biomed. Mater. 2 (1), 22-28 (2008).
- [17] J. P. Torres, P. M. Frontini, L. Aretxabaleta, Polym. Int. 62 (11), 1553-1559 (2013).
Uwagi
EN
1. This research was supported by the Technology Innovation Program (10084657) funded By the Ministry of Trade, Industry & Energy (MOTIE, Korea). It was also financially supported by the Basic Science Research Program under contract numbers 2017R1A6A3A11028683 (S. Kim) funded by the Ministry of Education (Korea).
PL
2. Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
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bwmeta1.element.baztech-bce12440-fbfc-49d6-9642-ed9c97f878dd