Influence of reduced cooling time on the properties of resistance spot welds

被引:0
|
作者
Tolf E. [1 ]
Hedegård J. [1 ]
机构
[1] Joining Technology Centre, Corrosion and Metals Research Institute (KIMAB)
关键词
Cooling rate; Hardness; High strength steels; Mechanical properties; Peel strength; Resistance spot welding; Resistance welding; Shear strength; Stainless steels; Steels; Strength;
D O I
10.1007/BF03266631
中图分类号
学科分类号
摘要
Reducing the cooling time in a resistance spot welding schedule offers two possible advantages. The first is decreased weld cycle time, which is of great importance in particular to car body assembly lines performing hundreds of millions of spot welds each year. Decreasing each resistance spot weld cycle time by a mere 0.1 s leads to substantial cost savings. The second advantage is the possibility to reduce the hardness in the weld metal and thereby improve fracture behaviour. Reducing the cooling time leads to reduced cooling rate of the weld metal and potentially a softer material. Two and three-sheet joint combinations of martensitic, dual phase, transformation induced plasticity (TRIP), complex phase and hardened boron steels were investigated in this study. The joints were evaluated by shear-, peeland cross-tension testing as well as metallographical examinations and hardness measurements. With knowledge of the materials weldability, and evaluation of the behaviour when welding with reduced cooling time, it was possible to develop optimised weld schedules and thereby increased productivity. It is recommended that the programming of the hold time in the power sources is modified in order to enable full flexibility in setting of the hold time / cooling time. This study showed that the cooling time could be reduced significantly without endangering the joint integrity.
引用
收藏
页码:43 / 53
页数:10
相关论文
共 50 条
  • [21] Reducing shrinkage voids in resistance spot welds
    Ford Motor Co., Dearborn, MI
    不详
    Weld J (Miami Fla), 2007, 2 (24-27):
  • [22] DYNAMIC CONTACT RESISTANCE OF SERIES SPOT WELDS
    SAVAGE, WF
    NIPPES, EF
    WASSELL, FA
    WELDING JOURNAL, 1978, 57 (02) : S43 - S50
  • [23] Study of the thermal behavior in resistance spot welds
    Cho, H.S.
    Cho, Y.J.
    Welding Journal (Miami, Fla), 1989, 68 (06):
  • [24] ULTRASONIC EVALUATION OF ELECTRICAL RESISTANCE SPOT WELDS
    CRECRAFT, DI
    WARNER, G
    NON-DESTRUCTIVE TESTING, 1969, 2 (01): : 40 - &
  • [25] Reducing shrinkage voids in resistance spot welds
    Joaquin, Armando
    Elliott, Adrian N. A.
    Jiang, Chonghua
    WELDING JOURNAL, 2007, 86 (02) : 24 - 27
  • [26] Influence of microstructure and weld size on the mechanical behaviour of dissimilar AHSS resistance spot welds
    Hernandez, V. H. Baltazar
    Kuntz, M. L.
    Khan, M. I.
    Zhou, Y.
    SCIENCE AND TECHNOLOGY OF WELDING AND JOINING, 2008, 13 (08) : 769 - 776
  • [27] On real time monitoring and control of resistance spot welds using dynanic-DC resistance signatures
    Garza, F
    Das, M
    PROCEEDINGS OF THE 44TH IEEE 2001 MIDWEST SYMPOSIUM ON CIRCUITS AND SYSTEMS, VOLS 1 AND 2, 2001, : 41 - 44
  • [29] REAL-TIME ULTRASONIC EXPULSION DETECTION AND INDENTATION MEASUREMENT IN RESISTANCE SPOT WELDS
    Karloff, Anthony C.
    Chertov, A. M.
    Maev, R. Gr.
    REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION, VOLS 29A AND 29B, 2010, 1211 : 1609 - 1614
  • [30] Microstructure and mechanical properties of dissimilar nickel-based superalloys resistance spot welds
    Bemani, M.
    Pouranvari, M.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2020, 773