Non-contact actuated snap-through buckling of a pre-buckled bistable hard-magnetic elastica

Snap-through buckling of bistable structures is a classic topic in mechanics which has been widely studied and applied in various fields such as mechanical meta-materials and soft robotics. Obstacles that hinder broader applications of conventional bistable structures include the requirement of cont...

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Main Authors: Zhang, Yingchao, Ma, Yinji, Yu, Jing, Gao, Huajian
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/171360
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1713602023-10-23T01:37:27Z Non-contact actuated snap-through buckling of a pre-buckled bistable hard-magnetic elastica Zhang, Yingchao Ma, Yinji Yu, Jing Gao, Huajian School of Mechanical and Aerospace Engineering School of Materials Science and Engineering Institute of High Performance Computing, A*STAR Institute for Digital Molecular Analytics and Science Engineering::Mechanical engineering Hard Magnetic Elastica Magnetization Distribution Snap-through buckling of bistable structures is a classic topic in mechanics which has been widely studied and applied in various fields such as mechanical meta-materials and soft robotics. Obstacles that hinder broader applications of conventional bistable structures include the requirement of contact actuation to trigger instability and difficulty to control post-buckling configurations. In contrast, hard magnetic elastica (HME), a composite made of hard ferromagnetic particles and soft elastomer that deforms in response to an externally applied magnetic field, exhibits great potential to bring major advances in this field by allowing non-contact actuation and programmable control of snap-through buckling via magnetization distribution (M−distribution). Here, we develop a theoretical framework to trace the instability and post-buckling evolution process of snap-through buckling of a bistable HME. In contrast to the conventional snapping through end-end shortening, the design space for bistable HME includes two key parameters: the remanent magnetization density after pre-magnetization and the external magnetic field. We focus on two simple yet practical cases: a fixed amplitude of magnetization density along the HME with direction reversed at the magnetization interface (M−interface), and a uniform magnetic field with varied direction. We identify an optimal position for the single M−interface and direction for the uniform actuation field for pre-buckled beams with two-ends fixed, which can reduce the required actuation field for snapping to nearly half in comparison with the symmetric cases. Experiments and finite element analysis are performed to validate the model predictions. Our work may stimulate further studies on utilizing snap-through buckling in applications where fast and large shape transitions from one stable state to another can be actuated in a low-energy, non-contact mode through a remotely applied stimulus field. Agency for Science, Technology and Research (A*STAR) Nanyang Technological University National Research Foundation (NRF) This work is supported by the Cyber Physiochemical Interfaces (CPI) project #A18A1b0045 and the Singapore National Research Fellowship (NRF-NRFF11-2019-0004). H. Gao acknowledges a start-up grant (002479-00001) from Nanyang Technological University and Agency for Science, Technology and Research (A*STAR). 2023-10-23T01:37:27Z 2023-10-23T01:37:27Z 2023 Journal Article Zhang, Y., Ma, Y., Yu, J. & Gao, H. (2023). Non-contact actuated snap-through buckling of a pre-buckled bistable hard-magnetic elastica. International Journal of Solids and Structures, 281, 112413-. https://dx.doi.org/10.1016/j.ijsolstr.2023.112413 0020-7683 https://hdl.handle.net/10356/171360 10.1016/j.ijsolstr.2023.112413 2-s2.0-85165114072 281 112413 en NRF-NRFF11-2019-0004 002479-00001 International Journal of Solids and Structures © 2023 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Mechanical engineering
Hard Magnetic Elastica
Magnetization Distribution
spellingShingle Engineering::Mechanical engineering
Hard Magnetic Elastica
Magnetization Distribution
Zhang, Yingchao
Ma, Yinji
Yu, Jing
Gao, Huajian
Non-contact actuated snap-through buckling of a pre-buckled bistable hard-magnetic elastica
description Snap-through buckling of bistable structures is a classic topic in mechanics which has been widely studied and applied in various fields such as mechanical meta-materials and soft robotics. Obstacles that hinder broader applications of conventional bistable structures include the requirement of contact actuation to trigger instability and difficulty to control post-buckling configurations. In contrast, hard magnetic elastica (HME), a composite made of hard ferromagnetic particles and soft elastomer that deforms in response to an externally applied magnetic field, exhibits great potential to bring major advances in this field by allowing non-contact actuation and programmable control of snap-through buckling via magnetization distribution (M−distribution). Here, we develop a theoretical framework to trace the instability and post-buckling evolution process of snap-through buckling of a bistable HME. In contrast to the conventional snapping through end-end shortening, the design space for bistable HME includes two key parameters: the remanent magnetization density after pre-magnetization and the external magnetic field. We focus on two simple yet practical cases: a fixed amplitude of magnetization density along the HME with direction reversed at the magnetization interface (M−interface), and a uniform magnetic field with varied direction. We identify an optimal position for the single M−interface and direction for the uniform actuation field for pre-buckled beams with two-ends fixed, which can reduce the required actuation field for snapping to nearly half in comparison with the symmetric cases. Experiments and finite element analysis are performed to validate the model predictions. Our work may stimulate further studies on utilizing snap-through buckling in applications where fast and large shape transitions from one stable state to another can be actuated in a low-energy, non-contact mode through a remotely applied stimulus field.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Zhang, Yingchao
Ma, Yinji
Yu, Jing
Gao, Huajian
format Article
author Zhang, Yingchao
Ma, Yinji
Yu, Jing
Gao, Huajian
author_sort Zhang, Yingchao
title Non-contact actuated snap-through buckling of a pre-buckled bistable hard-magnetic elastica
title_short Non-contact actuated snap-through buckling of a pre-buckled bistable hard-magnetic elastica
title_full Non-contact actuated snap-through buckling of a pre-buckled bistable hard-magnetic elastica
title_fullStr Non-contact actuated snap-through buckling of a pre-buckled bistable hard-magnetic elastica
title_full_unstemmed Non-contact actuated snap-through buckling of a pre-buckled bistable hard-magnetic elastica
title_sort non-contact actuated snap-through buckling of a pre-buckled bistable hard-magnetic elastica
publishDate 2023
url https://hdl.handle.net/10356/171360
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