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Sinter-Bonding of AISI 316L and 17-4 PH Stainless Steels

机译:AISI 316L和17-4 pH不锈钢的烧结

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The sinter-bonding method was used to produce AISI 316L/17-4 PH components by conventional powder metallurgy technology. The production process consisted of following steps: the powder layering, co-pressing and co-sintering processes. The co-sintering process was carried out at different sintering temperatures (1200, 1250 and 1300?°C), and times (60, 90 and 120?min) in hydrogen atmosphere. The effect of co-pressing and co-sintering conditions on the ability to create a permanent connection between AISI 316L and 17-4 PH stainless steels was investigated. The densification, dimensional change and microstructural evolution of sintered AISI 316L/17-4 PH components were studied. The increase in co-pressing pressure as well as using of the longer time and the higher temperature of co-sintering process contributed to increase in AISI 316L/17-4 PH component density. The dilatometric study as well as dimensional changes measurements revealed an appropriate sintering compatibility for AISI 316L and 17-4PH steels when the sintering process was carried out at the temperature of 1200?°C for time ranging from 60 to 120?min and at 1250?°C for shorter sintering times. The sintering at temperature of 1300?°C (regardless of other manufacturing conditions) led to a significant deviation from the cylindrical shape of samples, as a result of difference of shrinkage of AISI 316L and 17-4 PH steels. Microstructural study indicated that AISI 316L and 17-4 PH steels creates a good diffusion joint (without any cracks and warpage) during the high-temperature sintering process. Nickel diffusion takes place from the AISI 316L to 17-4 PH stainless steel, and copper and molybdenum diffuse in opposite direction of nickel diffusion. It is possible to achieve a solid connection between two materials exhibiting difference in chemical composition by using sinter-bonding and conventional powder metallurgy technology.
机译:烧结粘合方法用于通过常规粉末冶金技术生产AISI 316L / 17-4 pH组分。生产过程包括以下步骤:粉末分层,共压和共烧结过程。共烧结过程在不同的烧结温度(1200,1250和1300℃)下进行,以及在氢气氛中的时间(60,90和120℃)。研究了共压和共烧结条件对在AISI 316L和17-4 pH不锈钢之间产生永久性连接的能力的影响。研究了烧结AISI 316L / 17-4 pH组分的致密化,尺寸变化和微观结构演化。加压压力的增加以及使用较长时间和较高的共烧制过程的温度有助于AISI 316L / 17-4 pH分量密度的增加。稀释测量以及尺寸变化测量显示了当烧结过程在1200℃的温度下进行的时间为60至120Ω·min和1250时,对AISI 316L和17-4PH钢的适当烧结相容性揭示了AISI 316L和17-4PH钢的适当烧结相容性。 °C对于较短的烧结时间。在1300Ω·°C的温度下烧结(无论其他制造条件)导致与样品的圆柱形形状的显着偏差,导致AISI 316L和17-4 pH钢的收缩差异的结果。微结构研究表明,在高温烧结过程中,AISI 316L和17-4 pH钢钢在高温烧结过程中产生良好的扩散接头(没有任何裂缝和翘曲)。镍扩散从AISI 316L至17-4 pH不锈钢发生,铜和钼在镍扩散的相反方向上漫射。通过使用烧结粘合和常规的粉末冶金技术,可以在表现出化学成分差异的两种材料之间实现固体连接。

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