Wetting of Solid Molybdenum, Cobalt, and Nickel with Liquid Zinc and the Calculation of Their Interfacial Energies

被引:0
|
作者
Dokhov, M. P. [1 ]
Sherieva, E. Kh [2 ]
Kokoeva, M. N. [1 ]
机构
[1] Kabardino Balkar State Agr Univ, Nalchik, Russia
[2] Kabardino Balkar State Univ, Nalchik, Russia
来源
RUSSIAN METALLURGY | 2021年 / 2021卷 / 02期
关键词
interfacial energy; surface energy; solid metal; liquid metal; contact angle; wetting angle;
D O I
10.1134/S003602952102004X
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
The well-known experimental data on the angles of wetting of refractory metals with liquid zinc are used to calculate the interfacial energies in these systems. The calculation of this angle becomes a challenging problem, since there is no direct method for measuring the interfacial energy at the solid-another metal melt interface. Since the interfacial energies at the interfaces of solid metals with liquid zinc were calculated using the surface energies of solid metals measured by a noncontact method, i.e., in the absence of contact with a liquid metal, it is impossible to take into account the influence of a liquid phase on the surface energy of a solid metal. However, the influence of liquid zinc on the surface energies of solid metals may be ignored due to the fact that zinc does not form solutions and compounds with the metals under study. If the specific free surface energy is higher than the interfacial energy at the solid-melt interface, the equilibrium contact angle is acute; otherwise, i.e., at sigma(ss) < sigma(sl), the contact angle is obtuse. The closer the contact angle to the right angle at a contact angle higher than 90 degrees, the higher the energy of adhesion of the liquid to the solid metal. However, the ratio of the adhesion energy to the surface energy of the melt remains smaller than unity. A further increase in the absolute value of the contact angle leads to a decrease in the adhesion energy to zero at 180 degrees. Under equilibrium conditions in any systems, the contact angle is likely not to reach 180 degrees. The results of calculating the interfacial energies of the systems under study demonstrate that the Young equation can be used to calculate the interfacial energy of the solid-liquid (melt) interface in the systems where chemical reactions do not occur, i.e., under equilibrium conditions. These results can be used to choose metallic melts for soldering the products made of refractory metals.
引用
收藏
页码:203 / 205
页数:3
相关论文
共 50 条
  • [1] Wetting of Solid Molybdenum, Cobalt, and Nickel with Liquid Zinc and the Calculation of Their Interfacial Energies
    M. P. Dokhov
    E. Kh. Sherieva
    M. N. Kokoeva
    Russian Metallurgy (Metally), 2021, 2021 : 203 - 205
  • [2] THEORETICAL CALCULATION OF THE SOLID/LIQUID INTERFACIAL FREE ENERGY FOR IRON, COBALT, AND NICKEL.
    Haida, Osamu
    Emi, Toshihiko
    Tetsu-To-Hagane/Journal of the Iron and Steel Institute of Japan, 1977, 63 (09): : 1564 - 1571
  • [3] Wetting Angles of Yttrium Oxide and Zirconium Nitride with Liquid Nickel-Metal and Nickel-Chrome Alloys and Calculation of Their Interfacial Energies
    Dokhov, M. P.
    Sherieva, E. H.
    HIGH TEMPERATURE, 2024, 62 (02) : 188 - 192
  • [4] Interfacial Reaction Between Solid Nickel and Liquid Zinc
    孔纲
    Journal of Wuhan University of Technology(Materials Science Edition), 2008, (05) : 712 - 716
  • [5] Interfacial Reaction Between Solid Nickel and Liquid Zinc
    Kong Gang
    Lu Antang
    Xu Qiaoyu
    JOURNAL OF WUHAN UNIVERSITY OF TECHNOLOGY-MATERIALS SCIENCE EDITION, 2008, 23 (05): : 712 - 716
  • [6] Interfacial reaction between solid nickel and liquid zinc
    Gang Kong
    Jintang Lu
    Qiaoyu Xu
    Journal of Wuhan University of Technology-Mater. Sci. Ed., 2008, 23 : 712 - 716
  • [7] Wetting of Solid Refractory Metals by Liquid Oxides and Calculation of Their Interfacial Characteristics
    Dokhov, M. P.
    HIGH TEMPERATURE, 2023, 61 (05) : 724 - 726
  • [8] Wetting of Solid Refractory Metals by Liquid Oxides and Calculation of Their Interfacial Characteristics
    M. P. Dokhov
    High Temperature, 2023, 61 : 724 - 726
  • [9] Liquid-Solid Nanofriction and Interfacial Wetting
    An, Rong
    Huang, Liangliang
    Long, Yun
    Kalanyan, Berc
    Lu, Xiaohua
    Gubbins, Keith E.
    LANGMUIR, 2016, 32 (03) : 743 - 750
  • [10] Wetting properties and interfacial energies in liquid phase growth of α-SiC
    Yakimova, R
    Syvajarvi, M
    Janzen, E
    SILICON CARBIDE, III-NITRIDES AND RELATED MATERIALS, PTS 1 AND 2, 1998, 264-2 : 159 - 162