Ab'/> Vacuum brazing of TZM alloy to ZrC particle reinforced W composite using Ti-28Ni eutectic brazing alloy
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Vacuum brazing of TZM alloy to ZrC particle reinforced W composite using Ti-28Ni eutectic brazing alloy

机译:使用Ti-28Ni共晶钎焊合金真空钎焊TZM合金对ZRC颗粒加固W复合材料

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AbstractReliable brazing of TZM alloy and ZrC particle reinforced (ZrCp) W composite was achieved in this study by using Ti-28Ni eutectic brazing alloy. The typical interfacial microstructure of TZM/Ti-28Ni/ZrCp-W brazed joint consisted of a Ti solid solution (Ti(s, s)) layer, a continuous Ti2Ni layer and a diffusion layer mainly composed of W particles and (Ti, Zr)C particles. With an increase of brazing temperature, more ZrC particles and W particles entered the molten brazing alloy, which broadened the brazing seam and diminished the Ti2Ni layer, resulting in the disappearance of the Ti2Ni layer eventually. Meanwhile, more Ti(s, s) stripes were observed on the TZM side. The presence of continuous Ti2Ni intermetallic phase and Ti(s, s) stripes structure in joints deteriorated the joining properties, which resulted in the formation of brittle fracture under shear test. In addition, the fracture path was related to the brazing temperature, and cracks initiate and propagate in the continuous Ti2Ni layer at lower temperatures. However, the fracture path tended to be located at the TZM substrate close to the interface between TZM and the brazing seam when the brazing temperature exceeded 1040°C. The optimal room temperature shear strength reached 120.5MPa when brazed at 1040°C for 10 min and the fracture surface exhibited cleavage fracture characteristics, and the shear strength at high temperature of 800°C for the specimens with highest shear strength at room temperature reached 77.5MPa.Graphical abstractMicrostructure of the ZrCp-W substrate and the brazed joint, mechanical properties of the brazed joint and its fracture path.Display OmittedHighlights?TZM alloy and ZrCp-W composite were successfully brazed using Ti-28Ni braze alloy.?Brazing temperature played an important role on the interfacial microstructure.?Ti2Ni layer and Ti(s, s) strips structures at TZM dominated the joints properties.?The maximum average shear strength of TZM joints reached 120.5MPa.?Fracture locations varied greatly with increasing the brazing temperature.]]>
机译:<![cdata [ 抽象 可靠的TZM合金和ZRC粒子增强的可靠钎焊(ZRC P < / Ce:Inf>)通过使用Ti-28ni共晶钎焊合金在该研究中实现了复合材料。 TZM / TI-28NI / ZRC -W钎焊接头由Ti固溶体组成(Ti(S,S))层,a连续TI 2 Ni层和主要由W颗粒和(Ti,Zr)C颗粒组成的扩散层。随着钎焊温度的增加,更多的ZRC颗粒和W颗粒进入熔融钎焊合金,这拓宽了钎焊缝并减少了Ti 2 Ni层,导致TI 2 NI层最终的消失。同时,在TZM侧观察到更多Ti(S,S)条纹。连续的存在 2 Ni金属间相位和接头中的条纹结构劣化了连接性质,从而形成脆性骨折的形成剪切测试。此外,裂缝路径与钎焊温度有关,并且裂缝在连续Ti 2 Ni层。然而,当钎焊温度超过1040℃时,沿TZM和钎焊缝之间的裂缝路径倾向于靠近TZM和钎焊缝之间的界面。当在1040℃下钎焊10分钟时,最佳室温剪切强度达到120.5MPa,并且裂缝表面表现出裂解断裂特性,并且在高温下为800℃的剪切强度在室温下具有最高剪切强度的试样达到77.5 mpa。 图形摘要 ”全部“>”全部“> [全部”> ZRC P> P -W基板和钎焊接头的机械性能及其骨折路径。 显示省略 亮点 Tzm Alloy和Zrc p使用Ti-28ni钎焊合金成功钎焊。 钎焊温度在界面微观结构上发挥着重要作用。 ti 2 Ni层和Ti(s,s,s)条带结构主导了关节属性。 TZM关节的最大平均剪切强度达到120.5MPa。 裂缝位置很大差异增加钎焊温度。 ]]>

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