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Influence of Specimen Geometry on the Estimation of the Planar Biaxial Mechanical Properties of Cruciform Specimens

机译:试样几何形状对十字形试样平面双轴力学性能估计的影响

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It is in general challenging to characterize planar mechanical properties of extremely soft tissues such as cellseeded collagen gels. One of the difficulties is related to premature failure of specimens. This issue may be resolved by employing fillets on stress-concentrated spots of the specimen. The existence of fillets, however, complicates the estimation of stress at the center of the specimen where stiffness data are collected. In this study, cruciform rubber specimens with two types of fillets (general vs. cut-in fillets) at the intersections of perpendicular arms were prepared and subjected to planar biaxial mechanical testing, aiming at investigating how the fillets affect the estimation of mechanical properties of cruciform specimens. Digital image correlation was used to analyze full-field deformation in the central region of the specimens. Finite element analysis with a Neo-Hookean model was performed to simulate the full-field deformation under the same experimental boundary conditions. The strain distribution for each specimen geometry obtained by finite element analysis was found to be in good agreement with that analyzed by digital image correlation, validating the finite element models. Finite element simulation showed that the greatest value of the maximum principal strain decreased with increasing the fillet radius regardless of the fillet type. Increasing the fillet radius, in general, also reduced the strain field uniformity in the central region. Compared with general fillets, however, the use of cut-in fillets provided greater strain field uniformity given the same fillet radius. Finite element analysis was also used to estimate effective transverse length required to convert tensile force at the boundary to local stress at the center. It was found that the effective transverse length for each specimen geometry remained relatively constant if the specimen was not excessively deformed (i.e., global equibiaxial stretch ≤ 1.2). We suggest using cut-in fillets at the intersections of perpendicular arms when preparing cruciform specimens for testing extremely soft tissues.
机译:表征极软组织(例如带细胞的胶原蛋白凝胶)的平面机械性能通常具有挑战性。困难之一与标本过早失效有关。这个问题可以通过在样品应力集中的点上使用圆角来解决。但是,圆角的存在使在收集刚度数据的试样中心的应力估算变得复杂。在这项研究中,准备了在垂直臂的交点处具有两种圆角(普通圆角和切入圆角)的十字形橡胶试样,并对其进行了平面双轴机械测试,旨在研究圆角如何影响橡胶的力学性能估算。十字形标本。数字图像相关性用于分析样品中心区域的全场变形。在相同的实验边界条件下,使用Neo-Hookean模型进行了有限元分析,以模拟全场变形。发现通过有限元分析获得的每个试样几何形状的应变分布与通过数字图像相关分析得到的应变分布非常吻合,从而验证了有限元模型。有限元模拟表明,无论圆角类型如何,最大主应变的最大值随圆角半径的增加而减小。通常,增加圆角半径还会降低中心区域的应变场均匀性。但是,与普通圆角相比,在相同圆角半径的情况下,使用切入圆角可提供更大的应变场均匀性。还使用有限元分析来估算将边界处的拉力转换为中心处的局部应力所需的有效横向长度。已经发现,如果试样没有过度变形(即,整体等双轴拉伸≤1.2),则每种试样几何形状的有效横向长度保持相对恒定。我们建议在准备用于测试极软组织的十字形样本时,在垂直臂的交点处使用切角。

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