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首页> 外文期刊>Journal of Materials Research and Technology >Recrystallization of Cu-30Zn brass during friction stir welding
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Recrystallization of Cu-30Zn brass during friction stir welding

机译:摩擦搅拌焊接期间Cu-30Zn黄铜的重结晶

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The recrystallization process of Cu-30Zn brass during friction stir welding (FSW) was investigated. The microstructural evolution in the stirring period and the subsequent normal air-cooling period were separately studied by using stop-action technology, liquid nitrogen cooling, and subsequent heat treatment. During the stirring period, the initial large grains in the base material underwent serious shear deformation at elevated temperatures, resulting in the occurrence of dynamic recrystallization. The weld exhibited ultrafine grains with high dislocation density and a typical {111}<110> shear texture. The grain refinement mechanism was mainly attributed to discontinuous dynamic recrystallization, although several features of continuous dynamic recrystallization could also be found. In the subsequent normal air-cooling period, static restoration occurred and led to dislocation annihilation, selected grain growth, and appearance of annealing twins. The {111}<110> textural component partially changed into a {110}<001> Goss recrystallization texture. From these results, it was deduced that the brass experienced static restoration following dynamic recrystallization during FSW. The static restoration produced by the stirring remarkably influenced the microstructure. This study concluded that if the rapid cooling method is adopted during FSW, the static restoration process can be effectively restrained, and the microstructure of the joint can be significantly improved.
机译:研究了Cu-30Zn黄铜在摩擦搅拌焊接(FSW)期间的再结晶过程。通过使用止动作用技术,液氮冷却和随后的热处理分别研究搅拌时期的微观结构演化和随后的正常空气冷却时段。在搅拌期间,基材中的初始大颗粒在升高的温度下进行严重的剪切变形,导致动态再结晶的发生。焊缝展现出具有高位锁定密​​度和典型{111} <110>剪切纹理的超细晶粒。晶粒细化机制主要归因于不连续的动态重结晶,尽管也可以找到连续动态再结晶的几个特征。在随后的正常空气冷却时段中,发生静态恢复并导致脱离湮灭,选择的晶粒生长和退火双胞胎的外观。 {111} <110>纹理组分部分地改变为{110} <001>高峰重结晶纹理。从这些结果中,推导出在FSW期间动态再结晶后经历了静态恢复。通过搅拌产生的静态恢复显着影响了微观结构。本研究得出结论,如果在FSW期间采用快速冷却方法,则可以有效地抑制静态恢复过程,并且可以显着提高关节的微观结构。

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