三元运算
材料科学
沉积(地质)
奥氏体
合金
冶金
航程(航空)
马氏体
大气温度范围
进程窗口
形状记忆合金
绝热过程
晶格常数
焓
无扩散变换
制冷
退火(玻璃)
工作温度
工作(物理)
兴奋剂
复合材料
热力学
作者
Guanqi Li,Chao Lv,Yang Liu,Bin Wang,Zhigang Li,Huo X,Zhuangweici Sun,Zhengrui Li,C.-X. Zhang,T. S. Chen,Kaichao Zhang,Fei Chen,Huiping Duan,Tianxu Zheng,Wei Song,Quan Fu,Yi Liu,Huilong Hou
摘要
Elastocaloric cooling is an emerging solid-state refrigeration technology and offers a promising alternative to conventional vapor-compression systems. However, expanding its operational temperature range poses a critical challenge. In this work, we utilize laser-directed energy deposition (L-DED) additive manufacturing to precisely control microstructural features at the submicrometer scale, thereby extending the operational temperature range of elastocaloric Ti–Ni–Fe alloys. We fabricate Ti50Ni50-xFex (x = 2, 4, 6) alloys by feeding the elemental powders of Ni, Ti, and Fe in L-DED with the alloy composition controlled by adjusting the flow rate of each powder. Fe when used as the doping element induces lattice relaxation by substituting Ni sites, thereby reducing the geometric differences between the austenite and martensite phases. As the content of Fe increases from 2 at. % to 6 at. %, the martensitic transformation enthalpy decreases from 18.8 to 1.8 J/g, and the austenite finish temperature is lowered by 66 K. The Ti4Ni2O precipitates naturally introduced during the L-DED process are refined to the sub-micrometer scale and exert the effect of microstructural refinement on the martensitic transformation. As a result, the fabricated alloys exhibit a broad operational temperature window (253–318 K) with adiabatic temperature changes (ΔTad) of 1.5–2.8 K. Our work demonstrates the potential of L-DED additive manufacturing in fabricating elastocaloric materials.
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