Journal
ACTA MATERIALIA
Volume 188, Issue -, Pages 677-685Publisher
PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.actamat.2020.02.045
Keywords
All-d-metal Heusler alloys; Elastocaloric effect; Digital image correlation; Martensitic transformation; Electron backscatter diffraction
Funding
- National Key Research and Development Program of China [2017YFB0702703]
- International Partnership Program of Chinese Academy of Sciences [174433KYSB20180040]
- National Natural Science Foundation of China [51801225, 51771218, 51531008, 51701233]
- Natural Science Foundation of Ningbo [2019A610174]
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Solid-state cooling based on the caloric effect of phase transformation materials has attracted considerable interest with the increased demand for energy-efficient and environmentally friendly cooling technologies. Here, we have systematically studied the microstructural evolution, martensitic transformation (MT) behaviors, and elastocaloric effect (eCE) of directionally solidified Ni(35)(.)(5)Co(14)(.)(5)Mn(35)Ti(15)( )all-d-metal Heusler metamagnetic shape memory alloys. Electron backscatter diffraction (EBSD) analysis revealed the coexistence of Heusler-type < 001 >-oriented dendritic crystal and Ti-poor interdendritic phase for as-solidified alloys. Upon homogenization annealing, the sample presents a columnar-like morphology with < 105 > textured five-layer-modulated (5 M) martensite along the growth direction. Besides, the multi-modulated martensite with 7 M and 8 M structures was identified by transmission electron microscopy (TEM). Using a unique technique of in situ digital image correlation (DIC) with the combination of infrared thermography, MT and eCE behaviors were studied. Ni35.5Co14.5Mn35Ti15 alloy yielded a large adiabatic temperature change (Delta T-ad) of 11.5 K with a low critical stress (sigma(cr)) of 38 MPa and a moderate stress hysteresis (Delta sigma(hy)) of 54 MPa when subjected to uniaxial stress, resulting in the largest value of vertical bar Delta T-ad/sigma(cr)vertical bar = 0.31 K MPa-1. This improved eCE is attributed to the enhanced compatibility in the oriented polycrystalline alloy and the high mobility of the low-energy twin boundary in the multi-modulated martensite. (C) 2020 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
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