Thermomechanical Behavior of CuAlMn SMA Cellular Structures Obtained by Rapid Investment Casting

Author:

Alves Railson M. N.1ORCID,Silva Paulo C. S.2ORCID,Cavalcante Danielle G. L.1,Oliveira Danniel F.1ORCID,De Araújo Carlos J.2ORCID,Delgado João M. P. Q.3ORCID,Lima Antonio G. B.2ORCID

Affiliation:

1. Center of Technology, Department of Mechanical Engineering, Federal University of Paraíba, Cidade Universitária, Campus I, Castelo Branco, João Pessoa 58051-900, PB, Brazil

2. Center of Science and Technology, Department of Mechanical Engineering, Federal University of Campina Grande, Rua Aprígio Veloso, 882, Campina Grande 58429-900, PB, Brazil

3. CONSTRUCT-LFC, Civil Engineering Department, Faculty of Engineering, University of Porto, 4200-465 Porto, Portugal

Abstract

Shape memory alloy (SMA) bidimensional cellular structures (CSs) have a great potential application in attenuation of vibrations due to reversible martensitic phase transformations induced by thermal or mechanical loading. This work aims to produce a thermal and mechanical characterization of CuAlMn SMA CSs produced by rapid investment casting (RIC). Structures with different unit cell geometries and thicknesses of 0.5 mm and 1 mm were manufactured by centrifugal RIC. Compression tests at different temperatures were performed on the CS to verify its thermomechanical behavior. We observed that a CS with a thickness of 0.5 mm presents greater mechanical strength and lower levels of maximum force at the end of each 5% compression cycle, ranging from approximately 1/10 to 1/3, compared to structures with a thickness of 1 mm. Among all the CS configurations, the re-entrant structure exhibited higher levels of force, with higher secant stiffness and dissipated energy. The structures resisted the application of compressive forces that varied between 125 N and 500 N for the 0.5 mm CS and between 500 N and 5500 N for the 1 mm CS. Therefore, the results showed that all CuAlMn SMA CSs produced by RIC exhibited sufficient strength to attain strain levels of up to 5% at different temperatures, and that the unit cell geometry can be used to tune the mechanical properties.

Funder

INCT-EIE

CNPq

CAPES

FAPEMIG

FAPESQ-PB

FCT/MCTES

Base Funding

Programmatic Funding

FCT through the individual Scientific Employment Stimulus

Publisher

MDPI AG

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