升温速率和固溶时间对热压7085铝合金组织和性能的影响

IF 0.8 4区 材料科学 Q3 METALLURGY & METALLURGICAL ENGINEERING
Qingshan Zhou, Tian Han, Siyuan Yin, Cheng Tan, Xiaojing Xu
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引用次数: 0

摘要

本研究通过金相分析、硬度和电导率测试、x射线衍射(XRD)分析、电子背散射衍射(EBSD)扫描测试和腐蚀测试等多种测试来研究加热速率和固溶时间对热压7085铝合金组织和性能的影响。结果表明:固溶处理时,升温速度慢(3.6°C/h),保温时间短(470°C × 2 h),合金的抗拉强度得到提高,最大抗拉强度为585.74 MPa;另一方面,快速加热(180℃/h)和短保温时间(470℃× 2 h)提高了合金的伸长率,最大伸长率为16.94%。这种伸长率的增加可以归因于在缓慢加热速率期间发生的恢复,它将许多位错转化为低角晶界,从而加强了位错和低角晶界的作用。此外,保温时间的延长导致合金的再结晶增加,从而削弱了位错和低角度晶界强化。此外,研究发现加热速率和溶解时间对合金的硬度和电导率没有显著影响。最大晶间腐蚀深度为86.72 mm,通过快速升温和长时间保温的固溶处理提高了合金的耐蚀性。最后,研究发现,不同固溶处理后合金的抗剥落腐蚀性能相似,均为P级。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Effect of Heating Rates and Solid Solution Time on Microstructure and Properties of Hot-Pressed 7085 Aluminum Alloy

Effect of Heating Rates and Solid Solution Time on Microstructure and Properties of Hot-Pressed 7085 Aluminum Alloy

The present study aimed to investigate the effects of heating rates and solid solution time on the microstructure and properties of hot-pressed 7085 aluminum alloy This was achieved through various tests, including metallographic analysis, hardness and conductivity tests, X-ray diffraction (XRD) analysis, electron backscatter diffraction (EBSD) scanning test, and corrosion test. The results revealed that the tensile strength of the alloy was enhanced by a slow heating rate (3.6°C/h) and a short holding time (470°C × 2 h) during the solution treatment, up to the maximum tensile strength of 585.74 MPa. On the other hand, rapid heating rate (180°C/h) and short holding time (470°C × 2 h) increased the elongation of the alloy, with a maximum value of 16.94%. This increase in elongation can be attributed to the occurrence of recovery during the slow heating rate, which transformed numerous dislocations into low-angle grain boundaries, thereby strengthening the effect of dislocations and low-angle grain boundaries. Besides, an increase in holding time resulted in increased recrystallization of the alloy, which weakened the dislocation and low-angle grain boundary strengthening. Furthermore, the study found that the heating rate and solution time did not have a significant impact on the hardness and electrical conductivity of the alloy. The maximum intergranular corrosion depth recorded was 86.72 mm, and the corrosion resistance of the alloy was improved through a solution treatment involving the rapid heating rate and long-time holding. Finally, the study observed that the exfoliation corrosion resistance of the alloys after different solution treatments was similar, with all being rated as P grade.

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来源期刊
CiteScore
1.90
自引率
18.20%
发文量
90
审稿时长
4-8 weeks
期刊介绍: Protection of Metals and Physical Chemistry of Surfaces is an international peer reviewed journal that publishes articles covering all aspects of the physical chemistry of materials and interfaces in various environments. The journal covers all related problems of modern physical chemistry and materials science, including: physicochemical processes at interfaces; adsorption phenomena; complexing from molecular and supramolecular structures at the interfaces to new substances, materials and coatings; nanoscale and nanostructured materials and coatings, composed and dispersed materials; physicochemical problems of corrosion, degradation and protection; investigation methods for surface and interface systems, processes, structures, materials and coatings. No principe restrictions exist related systems, types of processes, methods of control and study. The journal welcomes conceptual, theoretical, experimental, methodological, instrumental, environmental, and all other possible studies.
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