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Strain-path controlled microstructure, texture and hardness evolution in cryo-deformed AlCoCrFeNi2.1 eutectic high entropy alloy

机译:冷冻变形的Alcocro2.1共晶高熵合金中的应变路径控制的微观结构,纹理和硬度演化

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摘要

The effect of strain path on microstructure, texture and hardness properties of AlCoCrFeNi2.1 eutectic high entropy alloy containing ordered FCC (L1(2)) and ordered BCC (B2) was investigated. The EHEA was cryo-rolled using UCR, MSCR (during which the samples were rotated by 90 degrees around the ND between each pass) and TSCR (45 degrees) (in which the samples were deformed by unidirectional rolling to half of the total strain and then diagonally rolled for rest half of the strain). The UCR processed material showed a rather heterogeneous microstructure. The textures of the L1(2)/FCC and B2 phases in the MSCR processed material agreed with the cross-rolling texture of the corresponding single phase materials, while the texture of the two phases in the TSCR(45 degrees) processed materials appeared rather weak. Upon annealing at 800 degrees C, the UCR processed materials showed a novel heterogeneous microstructure, while the MSCR and TSCR(45 degrees) processed materials revealed microduplex structure. The heterogeneous microstructure was replaced by the usual microduplex structure at higher annealing temperatures. The annealing texture of the L1(2)/FCC phase showed the presence of alpha-fiber (ND// 011 ) components while the B2 phase showed strong ND-fiber (ND// 111 ) components. The UCR processed material with novel heterogeneous microstructure showed much greater hardness as compared to the MSCR and TSCR(45 degrees) processed materials. The present results indicate that strain path exerted significant influence in controlling microstructure, texture and hardness properties of EHEA.
机译:研究了应变路径对含有有序FCC(L1(2))和有序BCC(B2)的AlcoCrfeni2.1共晶高熵合金的微观结构,质地和硬度性能。使用UCR,MSCR(在此期间,在每个通过之间的ND周围旋转90度)和TSCR(45度)(其中通过单向滚动变形,其中样品通过单向轧制变形为总菌株的一半,并且然后对角滚动休息一半的菌株)。 UCR加工材料显示出相当异质的微观结构。 MSCR处理材料中L1(2)/ FCC和B2阶段的纹理与相应的单相材料的交叉滚动纹理同意,而TSCR(45度)加工材料中的两个阶段的质地出现了虚弱的。在800℃下退火时,UCR加工材料显示出一种新型的异构微观结构,而MSCR和TSCR(45度)加工材料揭示了微量掺杂结构。在较高的退火温度下通过常规的微量折叠结构代替异质组织。 L1(2)/ FCC相的退火纹理显示出α-纤维(Nd // <011&)组分,而B2相显示出强Nd-纤维(Nd //111&)组分。与MSCR和TSCR(45度)加工材料相比,具有新型异质微结构的UCR加工材料表现出更大的硬度。本结果表明,应变径对eHEA的微观结构,质地和硬度性能进行了显着影响。

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