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arXiv · 1901.06848

Multisector method for arteries: The residual stresses of circumferential rings with non-trivial openings

Abstract

The opening angle method is a most popular choice in biomechanics to estimate residual stresses in arteries. Experimentally, it means that an artery is cut into rings; then the rings are cut axially: they open up into sectors; and the corresponding opening angles are measured to give residual stress levels by solving an inverse problem. However, in the lab, for many tissues--more commonly in pathological tissues, the ring does not open according to the theory, into a neat single circular sector, but rather creates an asymmetric geometry, often with abruptly changing curvature(s). This phenomenon might be due to a number of reasons including variation in thickness, microstructure, varying mechanical properties, etc. As a result, these samples have to be eliminated from studies relying on the opening angle method, which limits progress in understanding and evaluating residual stresses in all real arteries. With this work we propose an effective approach to deal with these non-trivial openings of rings. First we digitalise pictures of opened rings to split them into multiple, connected circular sectors. Then we measure the corresponding opening angles for each sub-sector. Finally we can determine the non-homogeneous distribution of residual stresses for individual sectors in a closed ring configuration.

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Taisiya Sigaeva, Elena Di Martino, Michel Destrade. 2019-01-21. Multisector method for arteries: The residual stresses of circumferential rings with non-trivial openings. https://arxiv.org/abs/1901.06848

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