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Elastocaloric effect in CuAlZn and CuAlMn shape memory alloys under compression
Author(s) -
Suxin Qian,
Yunlong Geng,
Yi Wang,
Thomas Pillsbury,
Yoshiharu Hada,
Yuki Yamaguchi,
Kenjiro Fujimoto,
Yunho Hwang,
Reinhard Radermacher,
Jun Cui,
Yoji Yuki,
Koutaro Toyotake,
Ichiro Takeuchi
Publication year - 2016
Publication title -
philosophical transactions of the royal society a mathematical physical and engineering sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.074
H-Index - 169
eISSN - 1471-2962
pISSN - 1364-503X
DOI - 10.1098/rsta.2015.0309
Subject(s) - adiabatic process , materials science , isothermal process , compression (physics) , hysteresis , alloy , differential scanning calorimetry , shape memory alloy , strain rate , thermodynamics , latent heat , stress (linguistics) , strain (injury) , composite material , metallurgy , condensed matter physics , physics , medicine , linguistics , philosophy
This paper reports the elastocaloric effect of two Cu-based shape memory alloys: Cu68Al16Zn16 (CuAlZn) and Cu73Al15Mn12 (CuAlMn), under compression at ambient temperature. The compression tests were conducted at two different rates to approach isothermal and adiabatic conditions. Upon unloading at a strain rate of 0.1 s(-1) (adiabatic condition) from 4% strain, the highest adiabatic temperature changes (ΔTad) of 4.0 K for CuAlZn and 3.9 K for CuAlMn were obtained. The maximum stress and hysteresis at each strain were compared. The stress at the maximum recoverable strain of 4.0% for CuAlMn was 120 MPa, which is 70% smaller than that of CuAlZn. A smaller hysteresis for the CuAlMn alloy was also obtained, about 70% less compared with the CuAlZn alloy. The latent heat, determined by differential scanning calorimetry, was 4.3 J g(-1) for the CuAlZn alloy and 5.0 J g(-1) for the CuAlMn alloy. Potential coefficients of performance (COPmat) for these two alloys were calculated based on their physical properties of measured latent heat and hysteresis, and a COPmat of approximately 13.3 for CuAlMn was obtained.This article is part of the themed issue 'Taking the temperature of phase transitions in cool materials'.

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