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Modeling elastic lamina buckling in the unloaded aortic media

机译:卸载主动脉介质中的弹性薄片屈曲

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Mathematical modeling of the thoracic aorta is important for detecting extraordinary and unusual stress or strain distributions of the hypertensive aortic wall, even in early stages, and for understanding the development and progression of various cardiovascular diseases. In a freshly isolated aortic media, which mainly comprises elastic laminas (ELs) and smooth muscle layers (SMLs), circumferential EL waviness and longitudinal EL undulation are often observed because of the buckling of ELs, which is closely associated with residual stresses of ELs and SMLs in the aortic wall. However, the mechanism underlying EL buckling or specific mechanical interactions between EL and SML remains unclear. We hypothesized that the longitudinal EL undulation is likely formed by the superposition of the circumferential EL waviness along the aortic axis. Hence, a series of numerical simulations were conducted based on a design of experiments approach by implementing residual stresses. We identified that the prestress initially administered to ELs in the circumferential and axial directions, and the predefined internodal gap, which couples the EL and SML, are essential mechanical parameters to computationally reconstruct the circumferential EL waviness and the longitudinal EL undulation at an unloaded state. In addition, a mechanical balance between the assigned prestresses along the circumferential and axial directions is crucial for successful representation of structural buckling of EL in the unloaded aortic media. Although further study is required, we have verified that our hypothesis is reasonable in the current work. Moreover, the information we obtained here will greatly help improve understanding the roles of EL and SML in the aortic medial wall at the in vitro and in vivo states, while simultaneously providing a basis for more sophisticated computational modeling of the aorta.
机译:胸主动脉的数学建模对于检测高血压主动脉堵塞的高度和异常的应力或应变分布,即使在早期阶段,以及理解各种心血管疾病的发展和进展。在新的孤立主动脉介质中,主要包括弹性层(ELS)和平滑肌层(SML),由于ELS的屈曲,通常观察到圆周EL波纹和纵向EL波动,这与ELS的残余应力密切相关在主动脉墙中的SML。然而,EL屈曲或EL和SML之间的特定机械相互作用的机制仍不清楚。我们假设纵向EL波状可能通过沿主动脉轴的圆周EL波纹叠加而形成。因此,通过实施残余应力,基于实验方法的设计进行了一系列数值模拟。我们认为最初施加到圆周和轴向方向上的els的预应力,以及耦合EL和Sml的预定义的insododal间隙,是必要的机械参数,以计算较卸载状态的圆周EL波纹和纵向EL波动。另外,沿着周向和轴向方向的分配预应力之间的机械平衡对于在卸载的主动脉介质中成功表示EL的结构屈曲的成功表示至关重要。虽然需要进一步研究,但我们已经证实我们的假设在当前的工作中是合理的。此外,我们在此获得的信息将大大帮助改善在体外和在体内态中的主动脉内侧壁中的EL和SML的角色,同时为更复杂的计算建模提供基础主动脉。

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