Research on the load-bearing capacity of welded aluminum K-joints

被引:0
|
作者
Kalac, Semso [1 ,2 ]
Radlbeck, Christina [2 ]
Mensinger, Martin [2 ]
Zejnelagic, Naja
Lucic, Dusko [3 ]
机构
[1] Tech Univ Munich, D-80333 Munich, Germany
[2] Univ Donja Gorica, Podgorica 81000, Montenegro
[3] Univ Montenegro, Podgorica 81000, Montenegro
关键词
K-joint; SHS joint; HAZ; Aluminum; Load-bearing capacity; STRENGTH;
D O I
10.1016/j.jcsr.2025.109329
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This study addresses the limited research on the load-bearing capacity of welded aluminum joints, specifically focusing on square hollow-section (SHS) K-joints. Existing literature has primarily examined welded steel joints and the effects of welding on aluminum alloys without establishing clear design rules for these specific connections. This research develops a numerical model to assess the load-bearing capacity of aluminum SHS K-joints, accounting for peculiarities such as the heat-affected zone (HAZ). Experimental investigations were conducted on nine SHS K-joints integrated into three lattice girders. These tests examined the failure mechanisms and characterized the HAZ using micro-hardness testing to determine yield strength variations across the fusion zone and base material. A numerical model was then developed and validated using experimental results, achieving a difference of less than 8% between the numerical and experimental findings. This model employed the finite element method (FEM) using ANSYS software and considered a refined HAZ model with two subzones, HAZ 1 and HAZ 2, based on micro-hardness testing. Parametric analysis highlighted the influence of the brace-to-chord width ratio (beta) and the double thickness of chord wall to chord width (gamma) on joint performance. An increasing beta ratio was associated with a higher load-bearing capacity, while the impact of the gamma ratio was less definitive. Comparison with theoretical models from EN 1993-1-8 and prEN 1999-1-1 indicated that the existing expressions are conservative and do not fully capture the behavior of aluminum SHS K-joints. This study proposes a less conservative numerical approach that offers more realistic predictions.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Experimental and Theoretical Research on Welded Aluminum K-Joints
    Kalac, Semso
    Mensinger, Martin
    Radlbeck, Christina
    Zejnelagic, Naja
    Duricic, Dorde
    Lucic, Dusko
    15TH INTERNATIONAL ALUMINIUM CONFERENCE, INALCO 2023, 2023,
  • [2] Load-bearing capacity and load-bearing behaviour of notched joints
    Meisel, Andreas
    Wallner, Bernhard
    Schickhofer, Gerhard
    BAUTECHNIK, 2015, 92 (06) : 412 - 423
  • [3] The Load-Bearing Capacity of Aluminum Alloy T-stub Joints
    Xu, Han
    Guo, Xiaonong
    Luo, Yongfeng
    ADVANCES IN BUILDING MATERIALS, PTS 1-3, 2011, 261-263 : 765 - 769
  • [4] Load-bearing capacity and load-bearing behaviour of lap joints loaded in compression
    Meisel, Andreas
    Wallner, Bernhard
    Schickhofer, Gerhard
    BAUTECHNIK, 2015, 92 (10) : 702 - 715
  • [5] Load Bearing Capacity of Welded Joints.
    Woelfel, Joachim
    1600, (15):
  • [6] THE LOAD-BEARING CAPACITY OF WELDED OVERHEAD RAIL TRACKS
    KLYKOV, NA
    LUSHNIKOV, VA
    LIVSHITS, LN
    KRYMOV, VG
    AUTOMATIC WELDING USSR, 1983, 36 (09): : 15 - 17
  • [7] The influence of external weld imperfection size on the load-bearing capacity of butt-welded joints
    Voelkel, J.
    Meissner, M.
    Bartsch, H.
    Feldmann, M.
    JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2024, 220
  • [8] Study on Tensile Load-Bearing Capacity of Single-Plate Welded Hollow Spherical Joints
    Chen, Zhihua
    Cai, Rurui
    Liu, Hongbo
    Wen, Suolin
    Tianjin Daxue Xuebao (Ziran Kexue yu Gongcheng Jishu Ban)/Journal of Tianjin University Science and Technology, 2024, 57 (01): : 1 - 10
  • [9] RESTORATION OF LOAD-BEARING CAPACITY OF JOINTS WITH AN INTERFERENCE FIT
    KHVOROSTUKHIN, IA
    RUSSIAN ENGINEERING JOURNAL, 1980, 60 (09): : 18 - 21
  • [10] Load-bearing capacity of nailed joints exposed to fire
    Noren, Joakim
    Fire and Materials, 1996, 20 (03) : 133 - 143