Stress and Strain Distribution in Hypertensive and Normotensive Rat Aorta Considering Residual Strain
- 1 February 1996
- journal article
- Published by ASME International in Journal of Biomechanical Engineering
- Vol. 118 (1) , 62-73
- https://doi.org/10.1115/1.2795947
Abstract
The effects of hypertension on the stress and strain distributions through the wall thickness were studied in the rat thoracic aorta. Goldblatt hypertension was induced by constricting the left renal artery for 8 weeks. Static pressure-diameter-axial force relations were determined on excised tubular segments. The segments were then sliced into thin ring specimens. Circumferential strain distributions were determined from the cross-sectional shape of the ring specimens observed before and after releasing residual stresses by radial cutting. Stress distributions were calculated using a logarithmic type of strain energy density function. The wall thickness at the systolic blood pressure, Psys, significantly correlated with Psys. The mean stress and strain developed by Psys in the circumferential direction were not significantly different between the hypertensive and control aortas, while those in the axial direction were significantly smaller in the hypertensive aorta than in the control. The opening angles of the stress-free ring specimens correlated well with Psys. The stress concentration factor in the circumferential direction was almost constant and independent of Psys, although the stress distributions were not uniform through the wall thickness. Histological observation showed that the wall thickening caused by hypertension is mainly due to the hypertrophy of the lamellar units of the media, especially in the subintimal layer where the stress increase developed by hypertension is larger than in the other layers. These results indicate that: (a) the aortic wall adapts itself to the mechanical field by changing not only the wall dimensions but also the residual stresses, (b) this adaptation is primarily related to the circumferential stress but not to the axial stress, and (c) the aortic smooth muscle cells seem to change their morphology in response to the mechanical stress.Keywords
This publication has 26 references indexed in Scilit:
- Mechanical and Dimensional Adaptation of Rat Aorta to HypertensionJournal of Biomechanical Engineering, 1994
- Species Dependence of the Zero-Stress State of Aorta: Pig Versus RatJournal of Biomechanical Engineering, 1991
- The Zero-Stress State of Rat Veins and Vena CavaJournal of Biomechanical Engineering, 1991
- Effect of Hypertension on Elasticity and Geometry of Aortic Tissue From DogsJournal of Biomechanical Engineering, 1990
- Relationship Between Hypertension, Hypertrophy, and Opening Angle of Zero-Stress State of Arteries Following Aortic ConstrictionJournal of Biomechanical Engineering, 1989
- Zero-Stress States of ArteriesJournal of Biomechanical Engineering, 1988
- On Residual Stresses in ArteriesJournal of Biomechanical Engineering, 1986
- Vascular MechanicsPublished by Wiley ,1983
- Architecture of the Vessel WallPublished by Wiley ,1980
- Wall stress and patterns of hypertrophy in the human left ventricle.Journal of Clinical Investigation, 1975