Deformational properties of the female rabbit vaginal wall
S. Muslov
, P. Sukhochev
, A. Minasyan
Резюме: Objective: Based on literature data, the parameters of the hyperelastic properties of the vaginal wall of a female rabbit in transverse and longitudinal directions are calculated. Materials and methods: Calculations were carried out based on uniaxial tensile tests of autopsy material in the strain range 0-2.04 using the computer algebra system Mathcad 15.0. The most common hyperelastic models in continuum mechanics are considered: neohookean, Mooney-Rivlin, Ogden, Yeoh, polynomial and Veronda-Westmann. Results and discussion: To describe the mechanical behavior of the vaginal walls, the hyperelastic polynomial model and the Yeoh model are best suited; the neohookean model is least suitable. The latter, in addition, exhibits mechanical instability at small deformations, which is unusual for biological tissues. Linear, bilinear and exponential models of the vaginal wall were also considered and numerical values of the model indicators were obtained. The best performance among these models was demonstrated by the deformation exponential model. Conclusion: The relevance of the research is due to the need to know the parameters of the deformation properties of the vaginal walls when developing replacement materials for prostheses and functional analogues in surgery of the female pelvic organs.
Series on Biomechanics, Vol.38, No.3 (2024), 24-31
DOI:10.7546/SB.03.03.2024
Ключови думи: deformation models; elasticity; hyperelastisity; Vagina
Литература: (click to open/close) | [1] Muslov S.A., Pertsov S.S., Arutyunov S.D., 2023. Physical and mechanical properties of biological tissues. Ed. by Academician of the Russian Academy of Sciences O.O. Yanushevich. Moscow: Practical Medicine, 456, https://doi.org/10.17513/np.594. [2] Muslov S.A., Arutyunov S.D., 2020. Mechanical properties of the tooth and periodontal tissues. Monograph. 2020. Moscow: Practical Medicine. 256. [3] Muslov S.A., Arutyunov S.D., 2021. Physical properties of dental tissues. Moscow: Practical Medicine, 176, https://doi.org/10.17513/np.597. [4] National Center for Biotechnology Information. PubMed. [Internet resource]. URL: https://pubmed.ncbi.nlm.nih.gov/ (date accessed: 25.05.24). [5] Mgeliashvili M.V., Buyanova S.N., Shchukina N.A., Erema V.V., Petrakova S.A., Gukasyan S.A., 2021. Features of the use of vaginal synthetic prostheses for the treatment of women with genital prolapse. Russian Bulletin of Obstetrician-Gynecologist. 2021, 21, 3, 92-97. [6] S.A. Muslov, V.A. Andreev, A.B. Bondarev, P.Yu., 2010. Superelastic alloys with shape memory effect in science, technology and medicine. M.: Folium Publishing House, 448. [7] Muslov S.A., Lapshikhina E.A., Kobzev D.S., 2021. Elasticity and hyperelasticity of urogenital tissues in humans and animals. Effective pharmacotherapy. Urology and nephrology, 17, 25, 6-24. [8] Daniela Ulrich, Sharon L Edwards, Kai Su, Jacinta F White, John A M Ramshaw, Graham Jenkin, Jan Deprest, Anna Rosamilia, Jerome A Werkmeister, Caroline E Gargett., 2014. Influence of reproductive status on tissue composition and biomechanical properties of ovine vagina. PLoS One. 2014 Apr 7, 9, 4,:e93172. doi: 10.1371/journal.pone.0093172. eCollection 2014. [9] Robert Eberhart, Cheng-Jen Chuong, Philippe Zimmern., 2017. Exploring biomechanical methods to study the human vaginal wall. Neurourol. Urodynam. 36:499-506. [10] Vladimir Egorov, Heather van Raalte, Vincent Lucente, 2012. Quantifying vaginal tissue elasticity under normal and prolapse conditions by tactile imaging. Int Urogynecol J. 2012 April, 23, 4, 459-466. doi:10.1007/s00192-011-1592-z. [11] Ohara T., 1953. On the comparison of strengths of the various organs-tissues. J. Kyoto Prev. Med. Univ. 53, 577-597. [12] Shmurak M.I., Kuchumov A.G., Voronova N.O., 2017. Analysis of hyperelastic models for describing the behavior of soft tissues of the human body. Master`s Journal 1, 230-243. [13] Stephen K. Melly, Liwu Liu, Yanju Liu, Jinsong Leng., 2021. A review on material models for isotropic hyperelasticity. Int J Mech Syst Dyn.1, 71-88. [14] Ogden R.W., 1972. Large deformation isotropic elasticity – on the correlation of theory and experiment for incompressible rubberlike solids, proceedings of the royal society of London. Series A. Mathematical and Physical Sciences 326, 1567, 565-584. [15] M. Rackl., 2015. Curve Fitting for Ogden, Yeoh and Polynomial Models. ScilabTEC 2015, 7th International Scilab Users Conference. Paris, France, 21st and 22nd May 2015, 18. [16] Orbach DN, Rattan S, Hogan M, Crosby AJ, Brennan PLR., 2019. Biomechanical properties of female dolphin reproductive tissue. Acta Biomater. 2019 Mar 1, 86, 117-124. doi: 10.1016/j.actbio.2019.01.012.
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| Дата на публикуване: 2024-11-15
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