不同热处理方式对AlSi10Mg点阵结构压缩性能的影响
The Influence of Different Heat Treatment Methods on the Compressive Performance of AlSi10Mg Lattice Structure
DOI: 10.12677/ms.2024.146107, PDF,  被引量    科研立项经费支持
作者: 陈昇声, 张 旭:大连交通大学机车车辆工程学院,辽宁 大连
关键词: 热处理工艺AlSi10Mg点阵结构压缩性能Heat Treatment Process AlSi10Mg Lattice Structure Compression Performance
摘要: 本研究针对选择性激光融化制造的AlSi10Mg点阵结构,系统探讨了不同热处理方式对其微观结构及压缩性能的影响。通过准静态压缩实验评估了压缩性能,并深入研究了热处理方式与微观结构以及性能之间的相互关系。结果显示,不同热处理方式对AlSi10Mg的微观结构和压缩性能产生了显著影响,为后续选择性激光融化制造的AlSi10Mg合金的力学性能和微观结构研究提供了重要参考。特别值得注意的是,经过实验验证,最佳的热处理工艺为525℃-2 h-空冷 + 180℃-6 h-空冷。
Abstract: This study focuses on the AlSi10Mg lattice structure manufactured by selective laser melting, and systematically explores the effects of different heat treatment methods on its microstructure and compression performance. The compression performance was evaluated through quasi-static compression experiments, and the relationship between heat treatment methods, microstructure, and performance was thoroughly studied. The results showed that different heat treatment methods had a significant impact on the microstructure and compressive properties of AlSi10Mg, providing important references for the mechanical properties and microstructure research of AlSi10Mg alloys manufactured by selective laser melting in the future. Of particular note, after experimental verification, the optimal heat treatment process is 525˚C-2 h-air cooling + 180˚C-6 h-air cooling.
文章引用:陈昇声, 张旭. 不同热处理方式对AlSi10Mg点阵结构压缩性能的影响[J]. 材料科学, 2024, 14(6): 946-956. https://doi.org/10.12677/ms.2024.146107

参考文献

[1] Li, D., Qin, R., Xu, J., Chen, B. and Niu, X. (2022) Effect of Heat Treatment on AlSi10Mg Lattice Structure Manufactured by Selective Laser Melting: Microstructure Evolution and Compression Properties. Materials Characterization, 187, Article 111882. [Google Scholar] [CrossRef
[2] Kleiner, S., Zürcher, J., Bauer, O. and Margraf, P. (2020) Heat Treatment Response of Selectively Laser Melted AlSi10Mg. HTM Journal of Heat Treatment and Materials, 75, 113-127. [Google Scholar] [CrossRef
[3] Bao, J., Wu, Z., Wu, S., Hu, D., Sun, W. and Wang, R. (2022) The Role of Defects on Tensile Deformation and Fracture Mechanisms of AM AlSi10Mg Alloy at Room Temperature and 250℃. Engineering Fracture Mechanics, 261, Article 108215. [Google Scholar] [CrossRef
[4] Park, T., Baek, M., Hyer, H., Sohn, Y. and Lee, K. (2021) Effect of Direct Aging on the Microstructure and Tensile Properties of AlSi10Mg Alloy Manufactured by Selective Laser Melting Process. Materials Characterization, 176, Article 111113. [Google Scholar] [CrossRef
[5] Han, Q. and Jiao, Y. (2019) Effect of Heat Treatment and Laser Surface Remelting on AlSi10Mg Alloy Fabricated by Selective Laser Melting. The International Journal of Advanced Manufacturing Technology, 102, 3315-3324. [Google Scholar] [CrossRef
[6] Casati, R., Hamidi Nasab, M., Coduri, M., Tirelli, V. and Vedani, M. (2018) Effects of Platform Pre-Heating and Thermal-Treatment Strategies on Properties of AlSi10Mg Alloy Processed by Selective Laser Melting. Metals, 8, Article 954. [Google Scholar] [CrossRef
[7] Ahn, S.Y., Moon, J., Choi, Y.T., Kim, E.S., Jeong, S.G., Park, J.M., et al. (2022) A Precipitation-Hardened AlSi10Mg Alloy Fabricated Using Selective Laser Melting. Materials Science and Engineering: A, 844, Article 143164. [Google Scholar] [CrossRef
[8] Li, Z., Nie, Y., Liu, B., Kuai, Z., Zhao, M. and Liu, F. (2020) Mechanical Properties of AlSi10Mg Lattice Structures Fabricated by Selective Laser Melting. Materials & Design, 192, Article 108709. [Google Scholar] [CrossRef
[9] Liu, M., Takata, N., Suzuki, A. and Kobashi, M. (2020) Effect of Heat Treatment on Gradient Microstructure of AlSi10Mg Lattice Structure Manufactured by Laser Powder Bed Fusion. Materials, 13, Article 2487. [Google Scholar] [CrossRef] [PubMed]
[10] Khan, H.M., Dirikolu, M.H. and Koç, E. (2019) Weibull Distribution of Selective Laser Melted AlSi10Mg Parts for Compression Testing. Proceedings of AMC Turkey 2019 Conference, Turkey, 17-18 October 2019.