Design of an over-constraint based nearly-constant amplification ratio compliant mechanism

Abstract

A constant displacement amplification ratio is less investigated in compliant mechanisms. This study addresses this need by presenting an over-constraint based nearly-constant amplification ratio compliant mechanism (OCARCM) that alleviates the change in displacement amplification ratio. The free-body diagram (FBD) combined with the generic beam constraint model (BCM) method is employed to obtain the closed-form solutions that accurately and insightfully elaborate the nonlinear kinetostatic characteristics of the OCARCM. Comparative analysis is provided between the proposed OCARCM and the widely-used bridge-type compliant amplifier in terms of the ability to remain a constant amplification ratio, with and without external payloads. The closed-form models are verified by the nonlinear finite element results (FEA) with a maximum difference of 1%. In our case studies, it shows that the amplification ratio of the OCARCM changes by 1% over the range, while that of the bridge-type amplifier changes by approximately 14% under the same conditions. The results also reveal that a higher amplification ratio results in a greater variation in the ratio. An experiment based on the CNC machined aluminium alloy prototype with distributed-compliance is conducted, and experimental results show a maximum error of 3.4% for the amplification ratio compared with the analytical or FEA results.

Publication DOI: https://doi.org/10.1016/j.mechmachtheory.2023.105347
Divisions: College of Engineering & Physical Sciences
Aston University (General)
Funding Information: Jiaxiang Zhu is grateful for the financial support from the China Scholarship Council (CSC Student ID: 202008300013). Haiyang Li is thankful to the National Natural Science Foundation of China (No. 51975108).
Additional Information: Copyright © 2023 The Author(s). Published by Elsevier Ltd. This is an open access article under the CC BY license (https://creativecommons.org/licenses/by/4.0/).
Publication ISSN: 0094-114X
Last Modified: 13 Nov 2025 18:38
Date Deposited: 28 Oct 2025 12:40
Full Text Link: https://www.sco ... tnerID=MN8TOARS
Related URLs: https://www.sci ... 1180?via%3Dihub (Publisher URL)
PURE Output Type: Article
Published Date: 2023-08-01
Published Online Date: 2023-04-10
Accepted Date: 2023-04-02
Authors: Zhu, Jiaxiang (ORCID Profile 0000-0002-5668-7038)
Hao, Guangbo
Liu, Tinghao
Li, Haiyang

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