granular crystal
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2021 ◽  
Author(s):  
Zhi-Guo Liu ◽  
Jinliang Zhang ◽  
Yue-Sheng Wang ◽  
Guoliang Huang

Abstract In this paper, the governing equation in a pre-compressed one-dimensional granular crystal, which was previously discussed by Nesterenko [J. Appl. Mech. Phys. 24, 733 (1983)], is solved analytically. Multiple solitary wave solutions are obtained by using the homogeneous balance principle and Hirota’s bilinear method. We analyze the difference between the original system and the KdV system and examine the collision of solitary waves in some special parameters. The dynamic behavior and stability of the double solitary waves are also studied. We find that the opposite collision between single solitary waves may be stable and thus generate a stable double solitary wave. It is concluded that the collision is a special stable double solitary wave solution. We further propose a possible way to determine the stability of multiple solitary waves qualitatively.


2019 ◽  
Vol 22 (1) ◽  
Author(s):  
Luís Paulo Silveira Machado ◽  
Surajit Sen

2018 ◽  
Vol 96 (1) ◽  
pp. 35-42 ◽  
Author(s):  
Yuichi Shimomura ◽  
Miki Tsuchiya ◽  
Satoru Ueno ◽  
Makoto Shiota

2018 ◽  
Vol 365 ◽  
pp. 27-41 ◽  
Author(s):  
K. Vorotnikov ◽  
Y. Starosvetsky ◽  
G. Theocharis ◽  
P.G. Kevrekidis

2017 ◽  
Vol 66 (22) ◽  
pp. 224502
Author(s):  
Wang Qing-Hai ◽  
Li Feng ◽  
Huang Xue-Qin ◽  
Lu Jiu-Yang ◽  
Liu Zheng-You

Author(s):  
Raj Kumar Pal ◽  
Robert F. Waymel ◽  
Philippe H. Geubelle ◽  
John Lambros

We develop a framework for wave tailoring by altering the lattice network topology of a granular crystal consisting of spherical granules in contact. The lattice topology can alternate between two stable configurations, with the spherical granules of the lattice held in stable equilibrium in each configuration by gravity. Under impact, the first configuration results in a wave with rapidly decaying amplitude as it propagates along a primary chain, while the second configuration results in a solitary wave propagating along the primary chain with no decay. The mechanism to achieve such tunability is by having energy diverted to the granules adjacent to the primary chain in the first case but not the second. The tunable design of the proposed network is validated using both numerical simulations and experiments. In terms of potential applications, the proposed bistable lattice network can be viewed either as a wave attenuator or as a device that allows higher amplitude wave propagation in one direction than in the opposite direction. The lattice is analogous to a crystal phase transformation due to the change in atomic configurations, leading to the change in properties at the macroscale.


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