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Effect of solution treatment temperature and cooling rate on the mechanical properties of tungsten heavy alloy

机译:固溶温度和冷却速率对钨重合金力学性能的影响

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摘要

The present study investigates the effect of solution treatment temperature and cooling rate on mechanical properties of a tungsten heavy alloy (89.6W-6.2Ni-1.8Fe-2.4Co). In addition to water quenching, rapid argon quenching has been attempted in this study since it is a relatively cleaner process and it can be used in conjunction with vacuum treatment. Since in these alloys, there is a possibility of incomplete dissolution of intermetallics or segregation of impurities during heat treatment, which results in scatter in the mechanical properties, it was decided that the solution treatment temperature for both water and argon quenching would be varied from 1100 to 1250 ℃ in order to see its effect on the microstructure and mechanical properties. Solution treatment at varying temperatures followed by water quenching resulted in tensile strength ranging from 908 to 921 MPa and % elongation varied from 1996 to 26%. On the other hand, the argon quenching heat treatment resulted in tensile strength in the range of 871-955 MPa and % elongation from 9% to 25%. No significant trend with respect to solution treatment temperature on tensile properties was seen in both argon and water quenched samples. % elongation to failure and impact values of water quenched specimens were better than those of argon quenched specimens for a given solution treatment temperature. The impact values appeared to improve with increasing solution treatment temperature in water quenched condition. The properties were correlated with underlying microstructure and fractographs of the failed specimens. The study showed the argon quenching may not be appropriate for the heat treatment of heavy alloys since it results in inferior mechanical properties as compared to water quenching.
机译:本研究研究固溶处理温度和冷却速率对钨重合金(89.6W-6.2Ni-1.8Fe-2.4Co)的力学性能的影响。除了水淬以外,由于它是一种相对较清洁的工艺,并且可以与真空处理结合使用,因此在本研究中还尝试了快速氩淬。由于在这些合金中,热处理过程中金属间化合物可能不完全溶解或杂质偏析,从而导致机械性能分散,因此决定将水和氩气淬火的固溶处理温度从1100更改为到1250℃以观察其对组织和力学性能的影响。在不同温度下进行固溶处理,然后用水淬火,其拉伸强度范围为908至921 MPa,伸长率百分比从1996年变化至26%。另一方面,氩气淬火热处理导致抗拉强度在871-955 MPa的范围内,伸长率百分比从9%到25%。在氩气和水淬的样品中,均未观察到固溶处理温度对拉伸性能的明显影响。在给定的固溶处理温度下,水淬试样的断裂伸长率%和冲击值优于氩淬火试样。在水淬条件下,冲击值似乎随着固溶处理温度的提高而提高。这些性能与失效标本的基础微观结构和断口图相关。研究表明,氩淬火可能不适用于重合金的热处理,因为与水淬火相比,其机械性能较差。

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