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Post-buckling of a pressured biopolymer spherical shell with the mode interaction

机译:具有模式相互作用的受压生物聚合物球形壳的后屈曲

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摘要

Imperfection sensitivity is essential for mechanical behaviour of biopolymer shells characterized by high geometric heterogeneity. The present work studies initial post-buckling and imperfection sensitivity of a pressured biopolymer spherical shell based on non-axisymmetric buckling modes and associated mode interaction. Our results indicate that for biopolymer spherical shells with moderate radius-to-thickness ratio (say, less than 30) and smaller effective bending thickness (say, less than 0.2 times average shell thickness), the imperfection sensitivity predicted based on the axisymmetric mode without the mode interaction is close to the present results based on non-axisymmetric modes with the mode interaction with a small (typically, less than 10%) relative errors. However, for biopolymer spherical shells with larger effective bending thickness, the maximum load an imperfect shell can sustain predicted by the present non-axisymmetric analysis can be significantly (typically, around 30%) lower than those predicted based on the axisymmetric mode without the mode interaction. In such cases, a more accurate non-axisymmetric analysis with the mode interaction, as given in the present work, is required for imperfection sensitivity of pressured buckling of biopolymer spherical shells. Finally, the implications of the present study to two specific types of biopolymer spherical shells (viral capsids and ultrasound contrast agents) are discussed.
机译:缺陷敏感性对于以高几何异质性为特征的生物聚合物壳的机械性能至关重要。本工作研究了基于非轴对称屈曲模式和相关模式相互作用的受压生物聚合物球形壳的初始屈曲和不完美敏感性。我们的结果表明,对于具有中等半径与厚度比(例如,小于30)和较小有效弯曲厚度(例如,小于平均壳厚度的0.2倍)的生物聚合物球形壳,基于轴对称模式预测的不完美敏感性不包括模式交互作用接近于基于非轴对称模式的当前结果,并且模式交互作用的相对误差较小(通常小于10%)。但是,对于具有较大有效弯曲厚度的生物聚合物球形壳体,通过本非轴对称分析预测的不完美壳体可以承受的最大载荷可能比基于不具有该模式的轴对称模式预测的载荷显着降低(通常约为30%)。相互作用。在这种情况下,如本工作所述,需要更精确的具有模式相互作用的非轴对称分析,以解决生物聚合物球形壳体受压屈曲的缺陷敏感性。最后,讨论了本研究对两种特定类型的生物聚合物球形壳(病毒衣壳和超声造影剂)的影响。

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