Zhang Lei, Ru C Q
Department of Mechanical Engineering, University of Alberta, Edmonton, Canada T6G 2G8.
Phys Rev E. 2016 Jun;93(6):062403. doi: 10.1103/PhysRevE.93.062403. Epub 2016 Jun 2.
Imperfection sensitivity is essential for mechanical behavior of biopolymer shells [such as ultrasound contrast agents (UCAs) and spherical viruses] characterized by high geometric heterogeneity. In this work, an imperfection sensitivity analysis is conducted based on a refined shell model recently developed for spherical biopolymer shells of high structural heterogeneity and thickness nonuniformity. The influence of related parameters (including the ratio of radius to average shell thickness, the ratio of transverse shear modulus to in-plane shear modulus, and the ratio of effective bending thickness to average shell thickness) on imperfection sensitivity is examined for pressured buckling. Our results show that the ratio of effective bending thickness to average shell thickness has a major effect on the imperfection sensitivity, while the effect of the ratio of transverse shear modulus to in-plane shear modulus is usually negligible. For example, with physically realistic parameters for typical imperfect spherical biopolymer shells, the present model predicts that actual maximum external pressure could be reduced to as low as 60% of that of a perfect UCA spherical shell or 55%-65% of that of a perfect spherical virus shell, respectively. The moderate imperfection sensitivity of spherical biopolymer shells with physically realistic imperfection is largely attributed to the fact that biopolymer shells are relatively thicker (defined by smaller radius-to-thickness ratio) and therefore practically realistic imperfection amplitude normalized by thickness is very small as compared to that of classical elastic thin shells which have much larger radius-to-thickness ratio.
对于具有高度几何非均匀性的生物聚合物壳(如超声造影剂(UCA)和球形病毒)的力学行为而言,缺陷敏感性至关重要。在这项工作中,基于最近为具有高结构非均匀性和厚度不均匀性的球形生物聚合物壳开发的精细壳模型,进行了缺陷敏感性分析。针对受压屈曲,研究了相关参数(包括半径与平均壳厚度之比、横向剪切模量与面内剪切模量之比以及有效弯曲厚度与平均壳厚度之比)对缺陷敏感性的影响。我们的结果表明,有效弯曲厚度与平均壳厚度之比对缺陷敏感性有主要影响,而横向剪切模量与面内剪切模量之比的影响通常可忽略不计。例如,对于具有实际物理参数的典型不完美球形生物聚合物壳,本模型预测实际最大外部压力可分别降低至完美UCA球形壳的60%或完美球形病毒壳的55% - 65%。具有实际物理缺陷的球形生物聚合物壳的适度缺陷敏感性很大程度上归因于生物聚合物壳相对较厚(由较小的半径与厚度之比定义),因此与具有大得多的半径与厚度之比的经典弹性薄壳相比,按厚度归一化的实际缺陷幅度非常小。