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Performance and microstructure of TC4 titanium alloy subjected to deep cryogenic treatment and magnetic field

机译:深浊治疗和磁场进行TC4钛合金的性能和微观结构

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In this paper, mechanical properties, scanning electron microscopy, electron backscatter diffraction (EBSD),X ray diffraction (XRD) and transmission electron microscopy (TEM)techniques were combined to investigate the performance and microstructure of TC4 titanium alloy subjected to sole deep cryogenic treatment (DCT) and coupled static magnetic field and deep cryogenic treatment (MDCT) with different processing time. It showed that both the DCT and MDCT samples arrived at the optimal properties when the processing time was 12 h, and the tensile strength and elongation of the DCT12 sample increased by 2.57% and 8.06% respectively in comparison to the untreated sample, while that of MDCT12 sample increased by 3.01% and 11.29%. In DCT samples, the (110) crystal plane has transformed toward (100) and (101). However, the (002) crystal plane of MDCT sample showed the preferred orientation. In addition, the EBSD results showed that both the sole DCT and MDCT promoted the transformation of alpha -> beta in titanium alloy, and sole DCT weakened the texture of {0001} direction, while MDCT strengthened it. The change of microstructure was attributed to the grain rotation caused by the effect of cold compression force and magnetic driving force. TEM images revealed that the dislocation density of the DCT sample increased obviously in comparison to the untreated sample, together with the apparent tangling. As for the MDCT sample, the dislocation density increased further, nevertheless, the tangling phenomenon decreased to some extent and the distribution tended to be well-aligned. (C) 2019 Published by Elsevier B.V.
机译:在本文中,组合了机械性能,扫描电子显微镜,电子反向散射衍射(EBSD),X射线衍射(XRD)和透射电子显微镜(TEM)技术,以研究TC4钛合金对唯一的深冷处理进行TC4钛合金的性能和微观结构(DCT)和耦合的静态磁场和具有不同处理时间的深度低温处理(MDCT)。它表明,当处理时间为12小时时,DCT和MDCT样品达到最佳性质,并且与未处理的样品相比,DCT12样品的拉伸强度和伸长率分别增加了2.57%和8.06%,而MDCT12样品增加3.01%和11.29%。在DCT样品中,(110)晶体平面已转变为(100)和(101)。然而,MDCT样品的(002)晶体平面显示了优选的取向。此外,EBSD结果表明,唯一的DCT和MDCT均促进钛合金中α->β的转化,鞋底DCT削弱了{0001}方向的质地,而MDCT加强了它。微观结构的变化归因于由冷压缩力和磁力驱动力的效果引起的颗粒旋转。 TEM图像显示,与未处理的样品相比,DCT样品的位错密度显然与明显的缠结相同。至于MDCT样品,位错密度进一步增加,弯曲现象在一定程度上降低,分布趋于良好对齐。 (c)2019年由elestvier b.v发布。

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