Author:
Ban Ehsan,Cavinato Cristina,Humphrey Jay D.
Abstract
ABSTRACTComputational models of aortic dissection can examine mechanisms by which this potentially lethal condition develops and propagates. We present results from phase-field finite element simulations that are motivated by a classical but seldom repeated experiment. Initial simulations agreed qualitatively and quantitatively with data, yet because of the complexity of the problem it was difficult to discern trends. Simplified analytical models were used to gain further insight. Together, simplified and phase-field models reveal power-law-based relationships between the pressure that initiates an intramural tear and key geometric and mechanical factors – insult surface area, wall stiffness, and tearing energy. The degree of axial stretch and luminal pressure similarly influence the pressure of tearing, which was ∼88 kPa for healthy and diseased human aortas having sub-millimeter-sized initial insults, but lower for larger tear sizes. Finally, simulations show that the direction a tear propagates is influenced by focal regions of weakening or strengthening, which can drive the tear towards the lumen (dissection) or adventitia (rupture). Additional data on human aortas having different predisposing disease conditions will be needed to extend these results further, but the present findings show that physiologic pressures can propagate initial medial defects into delaminations that can serve as precursors to dissection.
Publisher
Cold Spring Harbor Laboratory
Reference42 articles.
1. Modeling lamellar disruption within the aortic wall using a particle-based approach;Scientific Reports,2019
2. Alnæs, M. , J. Blechta , J. Hake , A. Johansson , B. Kehlet , A. Logg , C. Richardson , J. Ring , M. E. Rognes , and G. N. Wells . The FEniCS Project Version 1.5. Archive of Numerical Software 3:, 2015.
3. Co-localization of microstructural damage and excessive mechanical strain at aortic branches in angiotensin-II-infused mice;Biomech Model Mechanobiol,2020
4. Differential propensity of dissection along the aorta;Biomech Model Mechanobiol,2021
5. Fluid–structure interaction simulations of patient-specific aortic dissection;Biomech Model Mechanobiol,2020