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Critical slowing down in purely elastic `snap-through' instabilities

Abstract:
Many elastic structures have two possible equilibrium states [1]: from umbrellas that become inverted in a sudden gust of wind, to nanoelectromechanical switches [2, 3], origami patterns [4, 5] and the hopper popper, which jumps after being turned inside-out [6]. These systems typically transition from one state to the other via a rapid ‘snap-through’. Snap-through allows plants to gradually store elastic energy, before releasing it suddenly to generate rapid motions [7, 8], as in the Venus flytrap [9]. Similarly, the beak of the hummingbird snaps through to catch insects mid-flight [10], while technological applications are increasingly exploiting snap-through instabilities [11–13]. In all of these scenarios, it is the ability to repeatedly generate fast motions that gives snap-through its utility. However, estimates of the speed of snap-through suggest that it should occur more quickly than is usually observed. Here, we study the dynamics of snapthrough in detail, showing that, even without dissipation, the dynamics slow down close to the snap-through transition. This is reminiscent of the slowing down observed in critical phenomena, and provides a handheld demonstration of such phenomena, as well as a new tool for tuning dynamic responses in applications of elastic bistability.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1038/nphys3915

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More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Mathematical Institute
Role:
Author
More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Mathematical Institute
Role:
Author
More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Mathematical Institute
Role:
Author


More from this funder
Funding agency for:
Vella, D
Grant:
Horizon 2020 (ERC 637334
European Union’s Horizon 2020 Programme / ERC Grant Agreement no. 637334
More from this funder
Funding agency for:
Gomez, M
Grant:
Horizon 2020 (ERC 637334


Publisher:
Nature Publishing Group
Journal:
Nature Physics More from this journal
Volume:
13
Issue:
2
Pages:
142–145
Publication date:
2017-01-01
Acceptance date:
2016-09-09
DOI:
EISSN:
1745-2481
ISSN:
1745-2473


Pubs id:
pubs:642683
UUID:
uuid:2e266cf8-3bcd-49dc-8c1f-9cd4e736ab2e
Local pid:
pubs:642683
Source identifiers:
642683
Deposit date:
2016-09-13

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