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首页> 外文期刊>Biomechanics and modeling in mechanobiology >Twist buckling behavior of arteries
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Twist buckling behavior of arteries

机译:动脉扭曲屈曲行为

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Arteries are often subjected to torsion due to body movement and surgical procedures. While it is essential that arteries remain stable and patent under twisting loads, the stability of arteries under torsion is poorly understood. The goal of this work was to experimentally investigate the buckling behavior of arteries under torsion and to determine the critical buckling torque, the critical buckling twist angle, and the buckling shape. Porcine common carotid arteries were slowly twisted in vitro until buckling occurred while subjected to a constant axial stretch ratio (1.1, 1.3, 1.5 (in vivo level) and 1.7) and lumen pressure (20, 40, 70 and 100 mmHg). Upon buckling, the arteries snapped to form a kink. For a group of six arteries, the axial stretch ratio significantly affected the critical buckling torque (p<0.002) and the critical buckling twist angle (p<0.001). Lumen pressure also significantly affected the critical buckling torque (p<0.001) but had no significant effect on the critical twist angle (p=0.067). Convex material constants for a Fung strain energy function were determined and fit well with the axial force, lumen pressure, and torque data measured pre-buckling. The material constants are valid for axial stretch ratios, lumen pressures, and rotation angles of 1.3-1.5, 20-100 mmHg, and 0-270, respectively. The current study elucidates the buckling behavior of arteries under torsion and provides new insight into mechanical instability of blood vessels.
机译:由于身体运动和手术程序,动脉经常受到扭曲。尽管至关重要的是,在扭曲载荷下,动脉必须保持稳定和开放,但人们对扭曲下的动脉的稳定性知之甚少。这项工作的目的是通过实验研究动脉在扭曲下的屈曲行为,并确定临界屈曲扭矩,临界屈曲扭转角和屈曲形状。在恒定的轴向拉伸比(1.1、1.3、1.5(体内水平)和1.7)和管腔压力(20、40、70和100 mmHg)的作用下,猪的颈总动脉在体外缓慢扭曲直到发生屈曲。屈曲时,动脉折断形成扭结。对于一组六个动脉,轴向拉伸比显着影响临界屈曲扭矩(p <0.002)和临界屈曲扭转角(p <0.001)。流明压力也显着影响临界屈曲扭矩(p <0.001),但对临界扭曲角(p = 0.067)没有显着影响。确定了Fung应变能函数的凸材料常数,并与屈曲前测得的轴向力,管腔压力和扭矩数据非常吻合。材料常数分别适用于轴向拉伸比,流明压力和1.3-1.5、20-100 mmHg和0-270的旋转角度。当前的研究阐明了在扭曲下动脉的屈曲行为,并提供了对血管机械不稳定性的新见解。

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