Damping and Stiffness Analysis of Sandwich Beam with 3D-Printed Honeycomb Core Filled with Magnetorheological Elastomer (MRE): An Experimental Approach

Author:

Sharif Umer1,Xiang Xinmei1,Zhu Miaochang1ORCID,Deng Jun1,Sun Jing1,Ibrahim Dauda Sh.2,Adewale Orelaja Oluseyi3

Affiliation:

1. School of Civil Engineering, Guangzhou University, Guangzhou 510006, China

2. State Key Laboratory of Mechanics and Control of Mechanical Structures, University of Aeronautics and Astronautics, Nanjing 210016, China

3. Department of Mechanical Engineering, Moshood Abiola Polytechnic Ogun State, Abeokuta 110252, Nigeria

Abstract

The current study focuses on the production and experimental examination of sandwich beams consisting of an aluminum face sheet and 3D-printed honeycomb cores that are filled with magnetorheological elastomer (MRE). These cores are loaded with different ratios of (75/25)% and (50/50)% elastomer and magnetic particles, measured by weight. In order to ascertain the dynamic characteristics of sandwich beams, the constructed specimens were subjected to classic shock (free vibration) experiments, and these experiments were conducted under two conditions: with and without the application of a changing magnetic field at the free end and center of the beam. The results of the experiments suggest that the attenuation of the damping ratio exhibited satisfactory performance, particularly with respect to the structures that were being examined. The sandwich beam constructions proposed exhibited the ability to alter the damping ratio, damping coefficient, and stiffness through the application of a magnetic field. Nevertheless, an escalation in the applied magnetic field resulted in a reduction in stiffness values, while the values of the damping ratio and damping coefficient increased. Furthermore, significant variations in damping were observed when the magnets were located in the central regions of the structures.

Funder

Guangzhou Post Doctorate Research Project Funding

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

Reference48 articles.

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3. Ginder, J.M., Nichols, M.E., Elie, L.D., and Tardiff, J.L. (1999, January 12). Magnetorheological elastomers: Properties and applications. Proceedings of the Smart Structures and Materials 1999 Conference, Newport Beach, CA, USA.

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