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通过异常晶粒生长制备超大单晶。

Ultra-large single crystals by abnormal grain growth.

作者信息

Kusama Tomoe, Omori Toshihiro, Saito Takashi, Kise Sumio, Tanaka Toyonobu, Araki Yoshikazu, Kainuma Ryosuke

机构信息

Department of Materials Science, Graduate School of Engineering, Tohoku University, Aoba-yama 6-6-02, Sendai, Miyagi, 980-8579, Japan.

Technology Development Department, Special Metals Division, Furukawa Techno Material Co., Ltd., 5-1-8 Higashi-yawata, Hiratsuka, Kanagawa, 254-0016, Japan.

出版信息

Nat Commun. 2017 Aug 25;8(1):354. doi: 10.1038/s41467-017-00383-0.

Abstract

Producing a single crystal is expensive because of low mass productivity. Therefore, many metallic materials are being used in polycrystalline form, even though material properties are superior in a single crystal. Here we show that an extraordinarily large Cu-Al-Mn single crystal can be obtained by abnormal grain growth (AGG) induced by simple heat treatment with high mass productivity. In AGG, the sub-boundary energy introduced by cyclic heat treatment (CHT) is dominant in the driving pressure, and the grain boundary migration rate is accelerated by repeating the low-temperature CHT due to the increase of the sub-boundary energy. With such treatment, fabrication of single crystal bars 70 cm in length is achieved. This result ensures that the range of applications of shape memory alloys will spread beyond small-sized devices to large-scale components and may enable new applications of single crystals in other metallic and ceramics materials having similar microstructural features.Growing large single crystals cheaply and reliably for structural applications remains challenging. Here, the authors combine accelerated abnormal grain growth and cyclic heat treatments to grow a superelastic shape memory alloy single crystal to 70 cm.

摘要

由于低质量生产率,生产单晶成本高昂。因此,许多金属材料都以多晶形式使用,尽管单晶的材料性能更优越。在此我们表明,通过简单热处理诱导的异常晶粒生长(AGG),能够以高的质量生产率获得超大尺寸的铜铝锰单晶。在异常晶粒生长中,循环热处理(CHT)引入的亚晶界能在驱动力中占主导,并且由于亚晶界能的增加,通过重复低温循环热处理可加速晶界迁移速率。通过这种处理,实现了长度达70厘米的单晶棒的制造。这一结果确保了形状记忆合金的应用范围将从小型器件扩展到大型部件,并可能使单晶在具有类似微观结构特征的其他金属和陶瓷材料中获得新的应用。廉价且可靠地生长用于结构应用的大单晶仍然具有挑战性。在此,作者结合加速异常晶粒生长和循环热处理,将一种超弹性形状记忆合金单晶生长到了70厘米。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bd3d/5572478/5a002fdf75f9/41467_2017_383_Fig1_HTML.jpg

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