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首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >Partial Transient Liquid Phase Diffusion Bonding of Zircaloy-4 to Stabilized Austenitic Stainless Steel 321 Using Titanium Interlayer
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Partial Transient Liquid Phase Diffusion Bonding of Zircaloy-4 to Stabilized Austenitic Stainless Steel 321 Using Titanium Interlayer

机译:Zircaloy-4与钛中间层对稳定奥氏体不锈钢321的部分瞬态液相扩散结合

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In this study, an innovative method was applied for bonding Zircaloy-4 to stabilized austenitic stainless steel 321 using an active titanium interlayer. Specimens were joined by partial transient liquid phase diffusion bonding method in a vacuum furnace at different temperatures under 1 MP a dynamic pressure of contact. The influence of different bonding temperatures on the microstructure, microindentation hardness, joint strength, and interlayer thickness has been studied. Additionally, a simple numerical model was developed to predict the evolution of interlayer during partial transient liquid phase diffusion bonding. Diffusion of Fe, Cr, Ni, and Zr has been investigated by scanning electron microscopy examinations and energy dispersive spectroscopy elemental analyses. Results showed that control of heating and cooling rate and 20 min soaking at 1223 K produces a perfect joint. However, solid state diffusion of the melting point depressant elements into the joint metal causes the solid/liquid interface to advance until the joint is solidified. The tensile strength values of all bonded specimens were found around 480-670 MPa. Energy dispersive spectroscopy studies indicated that the melting occurred along the interface of bonded specimens as a result of transfer of atoms between the interlayer and the matrix during bonding. The evolution of interlayer film thickness indicates a good agreement between the calculation and experimental measurement. This technique provides a reliable method of bonding zirconium alloy to stainless steel.
机译:在这项研究中,采用了一种创新方法,使用活性钛夹层将Zircaloy-4粘接到稳定的奥氏体不锈钢321上。通过部分瞬态液相扩散结合法在真空炉中在1MP动态接触压力下于不同温度下连接样品。研究了不同键合温度对显微组织,显微压痕硬度,接头强度和中间层厚度的影响。此外,开发了一个简单的数值模型来预测部分瞬态液相扩散结合过程中中间层的演变。 Fe,Cr,Ni和Zr的扩散已通过扫描电子显微镜检查和能量色散光谱元素分析进行​​了研究。结果表明,控制加热和冷却速率以及在1223 K下均热20分钟可产生完美的接头。但是,熔点降低元素的固态扩散到接缝金属中会导致固/液界面前进,直到接缝凝固。发现所有粘合样品的抗拉强度值约为480-670 MPa。能量色散光谱研究表明,熔化是沿着键合试样的界面发生的,这是由于键合过程中夹层和基体之间原子转移的结果。层间膜厚度的变化表明计算和实验测量之间的良好一致性。该技术提供了一种将锆合金粘合到不锈钢的可靠方法。

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