材料科学
金属间化合物
微观结构
钛镍合金
制冷
磁滞
形状记忆合金
制冷剂
热交换器
蒸汽压缩制冷
工作(物理)
复合材料
冶金
机械工程
合金
工程类
物理
量子力学
作者
Huilong Hou,Emrah Simsek,Tao Ma,Nathan S. Johnson,Suxin Qian,Cheikh Cissé,Drew Stasak,Naila Al Hasan,Lin Zhou,Yunho Hwang,Reinhard Radermacher,Valery I. Levitas,M. J. Kramer,Mohsen Asle Zaeem,Aaron P. Stebner,Ryan Ott,Jun Cui,Ichiro Takeuchi
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2019-11-29
卷期号:366 (6469): 1116-1121
被引量:405
标识
DOI:10.1126/science.aax7616
摘要
Elastocaloric cooling, a solid-state cooling technology, exploits the latent heat released and absorbed by stress-induced phase transformations. Hysteresis associated with transformation, however, is detrimental to efficient energy conversion and functional durability. We have created thermodynamically efficient, low-hysteresis elastocaloric cooling materials by means of additive manufacturing of nickel-titanium. The use of a localized molten environment and near-eutectic mixing of elemental powders has led to the formation of nanocomposite microstructures composed of a nickel-rich intermetallic compound interspersed among a binary alloy matrix. The microstructure allowed extremely small hysteresis in quasi-linear stress-strain behaviors-enhancing the materials efficiency by a factor of four to seven-and repeatable elastocaloric performance over 1 million cycles. Implementing additive manufacturing to elastocaloric cooling materials enables distinct microstructure control of high-performance metallic refrigerants with long fatigue life.
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