首页> 外文期刊>International Journal of Refractory Metals & Hard Materials >Microstructure and performance of graphite/TZM alloy joints with different interfacial structures formed by vacuum diffusion bonding
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Microstructure and performance of graphite/TZM alloy joints with different interfacial structures formed by vacuum diffusion bonding

机译:石墨/ TZM合金接头采用真空扩散粘接形成不同界面结构的微观结构和性能

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摘要

Dissimilar joints of graphite and TZM alloys were obtained via vacuum diffusion bonding with a Zr interlayer. The influence of interfacial structure on the microstructure and mechanical properties of graphite/TZM alloy joints were investigated. The microstructure and compositions on the interface were observed and analyzed, and the tensile shear strength of the joints were evaluated. The interfacial morphologies showed good metallurgical combination with no apparent defects. A transition layer with a width of approximately 200 mu m was formed. The interface products were squeezed into triangular grooves in the graphite, forming a serrated structure in the joint with a triangular groove structure. The microstructures in the transition layer were Mo2Zr, ZrC and solid solution. Some eutectic penetrated into the porous graphite pores of the adjacent graphite matrix, forming an island-like morphology. The welding mechanism was consistent with transient liquid phase bonding. The interfacial shear strength of the joint with a triangular groove structure could reach 38 MPa, which was higher than that of graphite. Fracture occurred partly in the graphite and partly in the transition layer. The serrated structure between the graphite and the transition layer effectively improved the bonding strength.
机译:通过与Zr中间层的真空扩散键合获得石墨和TZM合金的不同关节。研究了界面结构对石墨/ TZM合金接头微观结构和力学性能的影响。观察和分析界面上的微观结构和组合物,评价关节的拉伸剪切强度。界面形态显示出良好的冶金组合,没有明显的缺陷。形成宽度约为200μm的过渡层。将界面产品挤压到石墨中的三角形槽中,形成具有三角形槽结构的接头中的锯齿状结构。过渡层中的微观结构是Mo2ZR,Zrc和固溶溶液。一些共晶渗透到相邻石墨基质的多孔石墨孔中,形成岛状形态。焊接机构与瞬态液相键合一致。具有三角形槽结构的关节的界面剪切强度可以达到38MPa,其高于石墨。骨折部分地发生在石墨中,部分在过渡层中。石墨和过渡层之间的锯齿状结构有效地提高了粘合强度。

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