Buckling analysis of planar compression micro-springs

Large compression deformation causes micro-springs buckling and loss of load capacity. We analyzed the impact of structural parameters and boundary conditions for planar micro-springs, and obtained the change rules for the two factors that affect buckling. A formula for critical buckling deformation...

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Main Authors: Jing Zhang, Li Sui, Gengchen Shi
Format: Article
Language:English
Published: AIP Publishing LLC 2015-04-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.4907928
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spelling doaj-f1bdd01a8d2d44d7aef542ee3ef5a0bb2020-11-25T01:24:50ZengAIP Publishing LLCAIP Advances2158-32262015-04-0154041322041322-910.1063/1.4907928020593ADVBuckling analysis of planar compression micro-springsJing Zhang0Li Sui1Gengchen Shi2School of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, ChinaSchool of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, ChinaSchool of Mechanical Engineering, Beijing Institute of Technology, Beijing 100081, ChinaLarge compression deformation causes micro-springs buckling and loss of load capacity. We analyzed the impact of structural parameters and boundary conditions for planar micro-springs, and obtained the change rules for the two factors that affect buckling. A formula for critical buckling deformation of micro-springs under compressive load was derived based on elastic thin plate theory. Results from this formula were compared with finite element analysis results but these did not always correlate. Therefore, finite element analysis is necessary for micro-spring buckling analysis. We studied the variation of micro-spring critical buckling deformation caused by four structural parameters using ANSYS software under two constraint conditions. The simulation results show that when an x-direction constraint is added, the critical buckling deformation increases by 32.3-297.9%. The critical buckling deformation decreases with increase in micro-spring arc radius or section width and increases with increase in micro-spring thickness or straight beam width. We conducted experiments to confirm the simulation results, and the experimental and simulation trends were found to agree. Buckling analysis of the micro-spring establishes a theoretical foundation for optimizing micro-spring structural parameters and constraint conditions to maximize the critical buckling load.http://dx.doi.org/10.1063/1.4907928
collection DOAJ
language English
format Article
sources DOAJ
author Jing Zhang
Li Sui
Gengchen Shi
spellingShingle Jing Zhang
Li Sui
Gengchen Shi
Buckling analysis of planar compression micro-springs
AIP Advances
author_facet Jing Zhang
Li Sui
Gengchen Shi
author_sort Jing Zhang
title Buckling analysis of planar compression micro-springs
title_short Buckling analysis of planar compression micro-springs
title_full Buckling analysis of planar compression micro-springs
title_fullStr Buckling analysis of planar compression micro-springs
title_full_unstemmed Buckling analysis of planar compression micro-springs
title_sort buckling analysis of planar compression micro-springs
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2015-04-01
description Large compression deformation causes micro-springs buckling and loss of load capacity. We analyzed the impact of structural parameters and boundary conditions for planar micro-springs, and obtained the change rules for the two factors that affect buckling. A formula for critical buckling deformation of micro-springs under compressive load was derived based on elastic thin plate theory. Results from this formula were compared with finite element analysis results but these did not always correlate. Therefore, finite element analysis is necessary for micro-spring buckling analysis. We studied the variation of micro-spring critical buckling deformation caused by four structural parameters using ANSYS software under two constraint conditions. The simulation results show that when an x-direction constraint is added, the critical buckling deformation increases by 32.3-297.9%. The critical buckling deformation decreases with increase in micro-spring arc radius or section width and increases with increase in micro-spring thickness or straight beam width. We conducted experiments to confirm the simulation results, and the experimental and simulation trends were found to agree. Buckling analysis of the micro-spring establishes a theoretical foundation for optimizing micro-spring structural parameters and constraint conditions to maximize the critical buckling load.
url http://dx.doi.org/10.1063/1.4907928
work_keys_str_mv AT jingzhang bucklinganalysisofplanarcompressionmicrosprings
AT lisui bucklinganalysisofplanarcompressionmicrosprings
AT gengchenshi bucklinganalysisofplanarcompressionmicrosprings
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