Vasios Nikolaos, Deng Bolei, Gorissen Benjamin, Bertoldi Katia
John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, USA.
Nat Commun. 2021 Jan 29;12(1):695. doi: 10.1038/s41467-020-20698-9.
Multi-welled energy landscapes arising in shells with nonzero Gaussian curvature typically fade away as their thickness becomes larger because of the increased bending energy required for inversion. Motivated by this limitation, we propose a strategy to realize doubly curved shells that are bistable for any thickness. We then study the nonlinear dynamic response of one-dimensional (1D) arrays of our universally bistable shells when coupled by compressible fluid cavities. We find that the system supports the propagation of bidirectional transition waves whose characteristics can be tuned by varying both geometric parameters as well as the amount of energy supplied to initiate the waves. However, since our bistable shells have equal energy minima, the distance traveled by such waves is limited by dissipation. To overcome this limitation, we identify a strategy to realize thick bistable shells with tunable energy landscape and show that their strategic placement within the 1D array can extend the propagation distance of the supported bidirectional transition waves.
在具有非零高斯曲率的壳中出现的多阱能量景观通常会随着厚度增加而消失,这是因为反转所需的弯曲能量增加。受此限制的启发,我们提出了一种策略来实现对任何厚度都具有双稳态的双曲壳。然后,我们研究了由可压缩流体腔耦合的一维(1D)通用双稳态壳阵列的非线性动态响应。我们发现该系统支持双向过渡波的传播,其特性可以通过改变几何参数以及为引发波而提供的能量来调节。然而,由于我们的双稳态壳具有相等的能量最小值,此类波传播的距离受到耗散的限制。为克服这一限制,我们确定了一种实现具有可调能量景观的厚双稳态壳的策略,并表明它们在一维阵列中的策略性放置可以延长所支持的双向过渡波的传播距离。