DocumentCode :
702972
Title :
A structural damage model for pelvic floor muscles
Author :
Oliveira, Dulce ; Parente, Marco ; Jorge, Renato Natal ; Calvo, Begona ; Mascarenhas, Teresa
Author_Institution :
Fac. of Eng., Univ. of Porto, Porto, Portugal
fYear :
2015
fDate :
26-28 Feb. 2015
Firstpage :
1
Lastpage :
4
Abstract :
The childbirth process has been studied continuously and biomechanical models have been seen as quantitative analysis tools. The improvement of such models requires the characterization of the mechanical properties of the tissues involved. During vaginal delivery the muscles undergo large deformations and may suffer damage midway, therefore the definition of a constitutive model including damage process, as presented in this work, becomes critical. The performance of the constitutive model was tested with typical tridimensional simulations to assess the damage evolution. Although the accurate characterization of the mechanical properties is an extremely complex task, the model used seems to capture the typical stress-strain behavior observed in biological soft tissues during both loading-unloading test analysis. With the introduction of damage variables, the model can be also used in damage analysis being the damage evolution well reproduced. Further interpretation requires however extensive model validation using mechanical data on damage development.
Keywords :
biomechanics; biomedical measurement; deformation; finite element analysis; muscle; obstetrics; physiological models; stress-strain relations; biological soft tissues; biomechanical models; childbirth process; constitutive model; damage development; damage evolution; damage process; damage variables; deformations; loading-unloading test analysis; mechanical data; pelvic floor muscles; quantitative analysis tools; stress-strain behavior; structural damage model; tissue mechanical properties; tridimensional simulations; vaginal delivery; Analytical models; Biological system modeling; Floors; Load modeling; Mathematical model; Muscles; Strain; biological soft tissues; finite element method; large deformations; structural damage model;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioengineering (ENBENG), 2015 IEEE 4th Portuguese Meeting on
Conference_Location :
Porto
Type :
conf
DOI :
10.1109/ENBENG.2015.7088865
Filename :
7088865
Link To Document :
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