Accelerated development of high-strength and high-conductivity Cu-Cr-Ti alloys based on data-driven design and experimental validation

被引:0
|
作者
Feng, Li [1 ]
Li, Jiangnan [1 ,2 ]
Lu, Qiong [1 ,2 ]
You, Yuanqi [1 ,2 ]
Xu, Zunyan [1 ,2 ]
Liu, Liyuan [1 ,2 ]
Fu, Li [1 ,2 ]
Gao, Peng [1 ]
Yi, Jianhong [1 ,2 ]
Li, Caiju [1 ,2 ]
机构
[1] Faculty of Materials Science and Engineering, Kunming University of Science and Technology, Kunming, Kunming,650093, China
[2] Yunnan Engineering Research Center of Metallic Powder Materials, Kunming University of Science and Technology, Kunming,650093, China
来源
Materials and Design | 2025年 / 253卷
基金
中国国家自然科学基金;
关键词
Copper alloys - High strength alloys - Mercury amalgams - Support vector regression - Titanium alloys - Z transforms - Zinc alloys;
D O I
10.1016/j.matdes.2025.113948
中图分类号
学科分类号
摘要
Copper alloys, valued for their excellent electrical conductivity and mechanical properties, are widely applied in electronics, power systems, and related fields. However, the extensive diversity and compositional range of alloying elements pose substantial challenges in alloy design. To address this challenge, this study applied a machine learning approach: a Support Vector Regression (SVR) based composition-conductivity model was constructed to predict the impact of individual elements on the alloy's electrical conductivity. According to the prediction results, Zn element was added to Cu-0.4Cr-0.06Ti alloy. Through experimental validation, it was shown that adding 0.05 wt% Zn achieves an ultimate tensile strength of 507 MPa, an electrical conductivity of 79 % IACS, and an elongation of 23 %. Morphology characterization revealed the role of Zn in the alloy: Zn was present in the matrix as a substitutional solid solution, while Cr was present as an interstitial solid solution. The addition of Zn promoted Cr precipitation and accelerated the transformation of Cr-rich phases, altering the interface between the matrix and precipitates from coherent to incoherent, thus reducing lattice distortion. This adjustment in solute elements and interfacial relationships enhanced both electrical conductivity and strength, breaking through the inverted relationship between strength and conductivity of copper alloy Furthermore, this study demonstrated that machine learning-based composition optimization effectively guides experimental design, providing new insights for the development of high-performance copper alloys. © 2025 The Authors
引用
收藏
相关论文
共 45 条
  • [21] Fabricate of High-Strength and High-Conductivity Cu-Cr-Si Alloys through ECAP-Bc and Aging Heat Treatment
    Guo, Tingbiao
    Wang, Junjie
    Wu, Yibo
    Tai, Xiaoyang
    Jia, Zhi
    Ding, Yutian
    MATERIALS, 2020, 13 (07)
  • [22] Development of high-strength and high-electrical-conductivity hypoeutectic Cu-Zr alloys
    Muramatsu N.
    Goto T.
    Funtai Oyobi Fummatsu Yakin/Journal of the Japan Society of Powder and Powder Metallurgy, 2019, 66 (07): : 317 - 322
  • [23] Development of a high-strength high-conductivity Cu−Ni−P alloy. Part II: Processing by severe deformation
    A. Belyakov
    M. Murayama
    Y. Sakai
    K. Tsuzaki
    M. Okubo
    M. Eto
    T. Kimura
    Journal of Electronic Materials, 2006, 35 : 2000 - 2008
  • [24] DEVELOPMENT OF COPPER BASE HIGH STRENGTH-MEDIUM CONDUCTIVITY ALLOYS-CU-TI-SN AND CU-TI-SN-CR
    SAARIVIRTA, MJ
    TRANSACTIONS OF THE METALLURGICAL SOCIETY OF AIME, 1961, 221 (03): : 596 - 606
  • [25] Development of a high-strength high-conductivity Cu-Ni-P alloy. Part I: Characterization of precipitation products
    M. Murayama
    A. Belyakov
    T. Hara
    Y. Sakai
    K. Tsuzaki
    M. Okubo
    M. Eto
    T. Kimura
    Journal of Electronic Materials, 2006, 35 : 1787 - 1792
  • [26] Development of a high-strength high-conductivity Cu-Ni-P alloy. Part 1: Characterization of precipitation products
    Murayama, M.
    Belyakov, A.
    Hara, T.
    Sakai, Y.
    Tsuzaki, K.
    Okubo, M.
    Eto, M.
    Kimura, T.
    JOURNAL OF ELECTRONIC MATERIALS, 2006, 35 (10) : 1787 - 1792
  • [27] Development of a high-strength high-conductivity Cu-Ni-P alloy. Part II: Processing by severe deformation
    Belyakov, A.
    Murayama, M.
    Sakai, Y.
    Tsuzaki, K.
    Okubo, M.
    Eto, M.
    Kimura, T.
    JOURNAL OF ELECTRONIC MATERIALS, 2006, 35 (11) : 2000 - 2008
  • [28] Accelerated development of hard high-entropy alloys with data-driven high-throughput experiments
    Liu, Yi
    Wang, Jiong
    Xiao, Bin
    Shu, Jintao
    JOURNAL OF MATERIALS INFORMATICS, 2022, 2 (01):
  • [29] Effects of Cryorolling on Properties and Precipitation Behavior of a High-Strength and High-Conductivity Cu-1Cr-0.2Zr-0.25Nb Alloy
    Li Longjian
    Li Rengeng
    Zhang Jiajun
    Cao Xinghao
    Kang Huijun
    Wang Tongmin
    ACTA METALLURGICA SINICA, 2024, 60 (03) : 405 - 416
  • [30] Relationship between microstructure and properties of high-strength Cu-Ti-Cr alloys during aging
    Huang, Lue
    Peng, Lijun
    Mi, Xujun
    Zhao, Gang
    Huang, Guojie
    Xie, Haofeng
    Zhang, Wenjing
    JOURNAL OF ALLOYS AND COMPOUNDS, 2023, 942