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Updated: Jan 13, 2026

Experimental Methods for Investigation of Shape Memory Based Elastocaloric Cooling Processes and Model Validation
Published on: May 2, 2016
Boosting Caloric Performances of Ni-Co-Mn-Ti Shape Memory Alloy for Multi-Scenario Refrigeration by Spark Plasma
Hongyuan Tang1, Ziqi Guan2, Yanze Wu1
1School of Material Science and Engineering, Dalian Jiaotong University, Dalian 116028, China.
Abstract:
In this study, Ni37Co13Mn33.5+xTi16.5-x alloys with different particle sizes (75-150 μm, 50-75 μm, 0-50 μm) were successfully fabricated using spark plasma sintering under different processing conditions. By adjusting the composition of alloy and particle size, a significant transformation entropy change and the generation of a suitable amount of second phases along the grain boundaries were achieved in the SPS Ni37Co13Mn34.5Ti15.5 alloy with a particle size range of 0-50 μm. The mechanical properties of this optimized alloy were excellent, exhibiting a compressive strength of 2005 MPa and a fracture strain of 27%. Furthermore, under a loading rate of 0.28 s-1, the alloy demonstrated an adiabatic temperature change of up to 34.2 K. In addition, the alloy also exhibited a barocaloric effect under low-pressure conditions, achieving a substantial entropy change of 16.1 J·kg-1·K-1 and an estimated adiabatic temperature change of 11.2 K under 100 MPa pressure. Through these results, SPS Ni37Co13Mn34.5Ti15.5 alloy is proved to be a potential candidate for solid-state refrigeration applications.
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