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首页> 外文期刊>International journal for numerical methods in biomedical engineering >A three-layer model for buckling of a human aortic segment under specific flow-pressure conditions
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A three-layer model for buckling of a human aortic segment under specific flow-pressure conditions

机译:在特定流动压力条件下人体主动脉节屈曲的三层模型

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Human aortas are subjected to large mechanical stresses because of blood flow pressurization and through contact with the surrounding tissue. It is essential that the aorta does not lose stability by buckling with deformation of the cross-section (shell-like buckling) (i) for its proper functioning to ensure blood flow and (ii) to avoid high stresses in the aortic wall. A numerical bifurcation analysis employs a refined reduced-order model to investigate the stability of a straight aorta segment conveying blood flow. The structural model assumes a nonlinear cylindrical orthotropic laminated composite shell composed of three layers representing the tunica intima, media and adventitia. Residual stresses because of pressurization are evaluated and included in the model. The fluid is formulated using a hybrid model that contains the unsteady effects obtained from linear potential flow theory and the steady viscous effects obtained from the time-averaged Navier-Stokes equations. The aortic segment loses stability by divergence with deformation of the cross-section at a critical flow velocity for a given static pressure, exhibiting a strong subcritical behaviour with partial or total collapse of the inner wall. Preliminary results suggest directions for further study in relation to the appearance and growth of dissection in the aorta.
机译:由于血液流动的压力并通过与周围组织的接触,人类主动脉会承受较大的机械应力。至关重要的是,主动脉不会因横截面变形而屈曲而失去稳定性(壳状屈曲)(i)其正常功能以确保血液流动和(ii)避免在主动脉壁上产生高应力。数值分叉分析采用改进的降阶模型来研究传输血流的主动脉直段的稳定性。结构模型假定非线性圆柱正交异性层压复合材料壳体由三层组成,分别代表内膜,中膜和外膜。评估由于加压而产生的残余应力并将其包括在模型中。使用包含从线性势流理论获得的非稳态效应和从时间平均Navier-Stokes方程获得的稳态粘性效应的混合模型来配制流体。对于给定的静压力,主动脉段在临界流速下会因横截面变形的发散而失去稳定性,从而表现出强大的亚临界行为,内壁部分或全部塌陷。初步结果提出了有关主动脉夹层的外观和生长的进一步研究方向。

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