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高熵合金中反Hall-Petch行为及低摩擦磨损的证据。

Evidence of Inverse Hall-Petch Behavior and Low Friction and Wear in High Entropy Alloys.

作者信息

Jones Morgan R, Nation Brendan L, Wellington-Johnson John A, Curry John F, Kustas Andrew B, Lu Ping, Chandross Michael, Argibay Nicolas

机构信息

Material, Physical, and Chemical Sciences Center, Sandia National Laboratories, Albuquerque, NM, 87123, USA.

出版信息

Sci Rep. 2020 Jun 23;10(1):10151. doi: 10.1038/s41598-020-66701-7.

Abstract

We present evidence of inverse Hall-Petch behavior for a single-phase high entropy alloy (CoCrFeMnNi) in ultra-high vacuum and show that it is associated with low friction coefficients (0.3). Grain size measurements by STEM validate a recently proposed dynamic amorphization model that accurately predicts grain size-dependent shear strength in the inverse Hall-Petch regime. Wear rates in the initially soft (coarse grained) material were shown to be remarkably low (10 mm/N-m), the lowest for any HEA tested in an inert environment where oxidation and the formation of mixed metal-oxide films is mitigated. The combined high wear resistance and low friction are linked to the formation of an ultra-nanocrystalline near-surface layer. The dynamic amorphization model was also used to predict an average high angle grain boundary energy (0.87 J/m). This value was used to explain cavitation-induced nanoporosity found in the highly deformed surface layer, a phenomenon that has been linked to superplasticity.

摘要

我们展示了在超高真空中单相高熵合金(CoCrFeMnNi)的反Hall-Petch行为的证据,并表明它与低摩擦系数(约0.3)有关。通过扫描透射电子显微镜(STEM)进行的晶粒尺寸测量验证了最近提出的动态非晶化模型,该模型准确预测了反Hall-Petch区域中与晶粒尺寸相关的剪切强度。最初较软(粗晶粒)材料的磨损率极低(约10 mm/N-m),在减轻氧化和混合金属氧化物膜形成的惰性环境中测试的任何高熵合金中,该磨损率都是最低的。高耐磨性和低摩擦的综合表现与近表面超纳米晶层的形成有关。动态非晶化模型还用于预测平均高角度晶界能(0.87 J/m)。该值用于解释在高度变形的表面层中发现的空化诱导纳米孔隙率,这一现象与超塑性有关。

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