SAFETYLIT WEEKLY UPDATE

We compile citations and summaries of about 400 new articles every week.
RSS Feed

HELP: Tutorials | FAQ
CONTACT US: Contact info

Search Results

Journal Article

Citation

Shaheen R, Doumit M. J. Mech. Behav. Biomed. Mater. 2018; 80: 81-87.

Affiliation

Department of Mechanical Engineering, University of Ottawa, Ottawa, Ontario, Canada. Electronic address: marc.doumit@uottawa.ca.

Copyright

(Copyright © 2018, Elsevier Publishing)

DOI

10.1016/j.jmbbm.2018.01.029

PMID

29414479

Abstract

Research in the field of human mobility assist devices, aiming to reduce the metabolic cost of daily activities, is seeing the benefits of the exclusive use of accumulators to store and release energy during the gait cycle. The Pneumatic Artificial Muscle, used in a passive state, has proven to be a superior choice for these devices when compared to its alternatives, however, challenges regarding muscle pressure dissipation and a limited elongation potential have been identified. A recently developed, novel Soft Composite material has been shown to experimentally replicate the distinctive mechanical behaviour of the Pneumatic Artificial Muscle, without the need for internal pressurization. This paper presents two separate constitutive models to provide a closer insight into the behaviour of these Soft Composite accumulators. Both models were derived from methods involving finite elasticity theory and employed either a structural strain energy function of Holzapfel, Gasser, and Ogden's type or a phenomenological strain energy function of Fung's type. Both models were in good agreement with the experimental data that were collected through a modified extension-inflation test and, therefore, provide a basis for further examination as a Soft Composite design model.

Copyright © 2018 Elsevier Ltd. All rights reserved.


Language: en

Keywords

Accumulator; Exoskeleton; Finite elasticity; Mobility assist devices; Soft composite

NEW SEARCH


All SafetyLit records are available for automatic download to Zotero & Mendeley
Print