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Mechanocaloric materials for solid-state cooling 被引量:5

Mechanocaloric materials for solid-state cooling
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摘要 This article reviews the up-to-date progress in mechanocaloric effect and materials near ambient temperature. For elastocaloric materials, we focus on directly measured temperature change and its entropy origin in nonmagnetic and magnetic shape memory alloys. In terms of barocaloric materials, change in magnetic state, volume and shift of transition temperature due to hydrostatic pressure are systematically compared. We propose advantages and challenges of elastocaloric materials for solidstate cooling. Strategies to enhance elastocaloric and mechanical stability under long-term mechanical cycles are presented. Finally, we conclude with an outlook on the prospect of elastocaloric cooling application. This article reviews the up-to-date progress in mechanocaloric effect and materials near ambient temperature. For elastocaloric materials, we focus on directly measured temperature change and its entropy origin in non- magnetic and magnetic shape memory alloys. In terms of barocaloric materials, change in magnetic state, volume and shift of transition temperature due to hydrostatic pressure are systematically compared. We propose advantages and challenges of elastocaloric materials for solidstate cooling. Strategies to enhance elastocaloric and mechanical stability under long-term mechanical cycles are presented. Finally, we conclude with an outlook on the prospect of elastocaloric cooling application.
出处 《Science Bulletin》 SCIE EI CAS CSCD 2015年第19期1638-1643,共6页 科学通报(英文版)
基金 supported by the National Natural Science Foundation of China(51371184) Zhejiang Provincial Natural Science Foundation(LR14E010001)
关键词 Elastocaloric effect Barocaloric effect Shape memory alloy ENTROPY 冷却机械 材料 固态 磁性形状记忆合金 机械热效应 温度变化 直接测量 静水压力
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