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A stress-strain relation for a rat abdominal aorta
H Demiray1, H W Weizsäcker, K Pascale
1Research Institute for Basic Sciences, Gebze, Kocaeli-Turkey.
Journal of Biomechanics
|January 1, 1988
Summary
This study presents a stress-strain model for rat abdominal aortas, accurately predicting arterial behavior under physiological conditions. The model shows a maximum 3.7% deviation from experimental data, validating its effectiveness for biomechanical analysis.
Area of Science:
- Biomedical Engineering
- Computational Mechanics
- Cardiovascular Research
Background:
- Arterial walls are complex biological tissues with unique mechanical properties.
- Understanding the stress-strain relationship in arteries is crucial for diagnosing and treating cardiovascular diseases.
- Previous models often simplify arterial wall properties, limiting their predictive accuracy.
Purpose of the Study:
- To develop a constitutive model for the rat abdominal aorta.
- To analyze the biomechanical response of the aorta under simultaneous inflation and axial stretch.
- To determine material coefficients by comparing theoretical predictions with experimental data.
Main Methods:
- Assumed arterial wall properties: homogeneous, incompressible, isotropic, and elastic.
- Solved the problem of simultaneous inflation and axial stretch under physiological loading.
- Determined material coefficients by fitting theoretical results to experimental data.
Main Results:
- A stress-strain relation for the rat abdominal aorta was established.
- The model demonstrated a maximum deviation of 3.7% from experimental results across various pressure levels.
- Circumferential stress and incremental pressure modulus variations with inner pressure were analyzed.
Conclusions:
- The proposed theoretical model provides a good approximation of the experimental behavior of the rat abdominal aorta.
- The findings contribute to a better understanding of arterial biomechanics.
- The model can be valuable for further research in cardiovascular mechanics and disease modeling.