Department of Aeronautics and Astronautics, Fudan University, Shanghai 200433, People's Republic of China.
Department of Mechanical and Aerospace Engineering, University of California, Los Angeles, CA 90095, USA.
Philos Trans A Math Phys Eng Sci. 2023 Apr 3;381(2244):20220026. doi: 10.1098/rsta.2022.0026. Epub 2023 Feb 13.
Viscoelastic shells subjected to a pressure loading exhibit rich and complex time-dependent responses. Here we focus on the phenomenon of pseudo-bistability, i.e. a viscoelastic shell can stay inverted when pressure is removed, and snap to its natural shape after a delay time. We model and explain the mechanism of pseudo-bistability with a viscoelastic shell model. It combines the small strain, moderate rotation shell theory with the standard linear solid as the viscoelastic constitutive law, and is applicable to shells with arbitrary axisymmetric shapes. As a case study, we investigate the pseudo-bistable behaviour of viscoelastic ellipsoidal shells. Using the proposed model, we successfully predict buckling of a viscoelastic ellipsoidal shell into its inverted configuration when subjected to an instantaneous pressure, creeping when the pressure is held, staying inverted after the pressure is removed, and eventually snapping back after a delay time. The stability transition of the shell from a monostable, temporarily bistable and eventually back to the monostable state is captured by examining the evolution of the instantaneous pressure-volume change relation at different time of the holding and releasing process. A systematic parametric study is conducted to investigate the effect of geometry, viscoelastic properties and loading history on the pseudo-bistable behaviour. This article is part of the theme issue 'Probing and dynamics of shock sensitive shells'.
受到压力载荷作用的黏弹性壳体会表现出丰富而复杂的时变响应。在这里,我们关注的是伪双稳现象,即当压力移除时,黏弹性壳可以保持倒置状态,并在延迟时间后弹回到其自然形状。我们使用黏弹性壳模型对伪双稳现象的机制进行建模和解释。该模型将小应变、中旋转壳理论与标准线性固体作为黏弹性本构定律相结合,适用于具有任意轴对称形状的壳。作为一个案例研究,我们研究了黏弹性椭球壳的伪双稳行为。使用所提出的模型,我们成功地预测了黏弹性椭球壳在受到瞬时压力时会屈曲成倒置构型,在保持压力时会蠕动,在移除压力后保持倒置,并在延迟时间后回弹。通过检查在保持和释放过程的不同时间的瞬时压力-体积变化关系的演化,捕捉了壳从单稳、暂时双稳到再次回到单稳状态的稳定性转变。通过系统的参数研究,研究了几何形状、黏弹性性质和加载历史对伪双稳行为的影响。本文是“探测和冲击敏感壳动力学”主题的一部分。