Source Journal for Chinese Scientific and Technical Papers
Core Journal of RCCSE
Included in JST China
Included in the Hierarchical Directory of High-quality Technical Journals in Architecture Science Field
Volume 51 Issue 5
Sep.  2021
Turn off MathJax
Article Contents
WANG Wujun, JIE Zhiyu, CHEN Chao. FATIGUE PERFORMANCE OF CRACKED WELDED CRUCIFORM JOINTS STRENGTHENED BY CFRP[J]. INDUSTRIAL CONSTRUCTION, 2021, 51(5): 181-187. doi: 10.13204/j.gyjzG20011305
Citation: WANG Wujun, JIE Zhiyu, CHEN Chao. FATIGUE PERFORMANCE OF CRACKED WELDED CRUCIFORM JOINTS STRENGTHENED BY CFRP[J]. INDUSTRIAL CONSTRUCTION, 2021, 51(5): 181-187. doi: 10.13204/j.gyjzG20011305

FATIGUE PERFORMANCE OF CRACKED WELDED CRUCIFORM JOINTS STRENGTHENED BY CFRP

doi: 10.13204/j.gyjzG20011305
  • Received Date: 2020-10-20
    Available Online: 2021-09-16
  • Publish Date: 2021-09-16
  • Fatigue failure is a common form of failure of welded steel bridges under cyclic loading. In order to extend its life, the cracked structure needs to be strengthened and repaired. Due to its excellent performance, CFRP has been widely used in the reinforcement of concrete structures, but rarely used in welding steel structures. In the paper, the effects of different initial crack depths, CFRP fabric thickness and elastic modulus on fatigue performance under cyclic loading were studied through experiments and finite element methods. The finite element software ABAQUS was used to analyze the change laws of stress intensity factors of reinforced or unreinforced welded cruciform joints, and compared with the analytical results. It was found that the error of the stress intensity factor obtained by the numerical simulation solution and the theoretical solution of the unreinforced specimen was very small, which verified the accuracy of the numerical simulation. The adhesive layer was simulated by using CPE8 and cohesive element, and the maximum deviation was found to be -3.4%. CFRP could effectively reduce the strength factor at the cracking tip and extend its fatigue life, with a maximum increase of 67%. When the elastic modulus and thickness of the CFRP cloth were larger, the decrease of the stress intensity factor at the cracking tip was more obvious. The remaining fatigue life of the cruciform joints was estimated based on the Paris formula, and the predicted life was compared with the test results, and it was found that the agreement was good.
  • loading
  • [1]
    赵凯.钢结构加固方法与连接的可靠性分析[J]. 山西建筑, 2010, 36(19):93-95.
    [2]
    程璐, 冯鹏, 徐善华, 等.CFRP加固钢结构抗疲劳技术研究综述[J]. 玻璃钢/复合材料, 2013(4):59-63.
    [3]
    王海涛.CFRP板加固钢结构疲劳性能及其设计方法研究[D].南京:东南大学, 2016.
    [4]
    DAWOOD M, RIZKALLA S, SUMNER E. Fatigue and Overloading Behavior of Steel-Concrete Composite Flexural Members Strengthened with High Modulus CFRP Materials[J]. Journal of Composites for Construction, 2007, 11(6):659-669.
    [5]
    FAM A, WITT S, RIZKALLA S. Repair of Damaged Aluminum Truss Joints of Highway Overhead Sign Structures Using FRP[J]. Construction and Building Materials, 2006, 20(10):948-956.
    [6]
    伍希志, 程军圣, 杨宇, 等.CFRP加固裂纹钢板的疲劳寿命及加固参数研究[J]. 华南理工大学学报(自然科学版), 2016, 44(4):143-148.
    [7]
    吴婷, 田常录, 钱文杰.CFRP加固含裂纹钢板疲劳性能研究[J]. 机械制造与自动化, 2018, 47(1):47-49.
    [8]
    WANG H T, WU G, JIANG J B. Fatigue behavior of cracked steel plates strengthened with different CFRP systems and configurations[J]. Journal of Composites for Construction, 2015, 20(3). DOI: 10.1061/(ASCE)CC.1943-5614.0000647.
    [9]
    CHEN, TAO, et al. Numerical Analysis of Central Mixed-Mode Cracking in Steel Plates Repaired with CFRP materials[J]. Thin-Walled structures, 2019, 143. DOI.10.1016/j.tws.2019.106196.
    [10]
    陈涛, 夏紫璨, 李凌圳, 等.单面碳纤维增强复合材料补强含斜裂纹钢板疲劳寿命研究[J]. 钢结构, 2018, 33(12):52-55.
    [11]
    刘若愚, 陈涛.复合材料补强钢板的疲劳性能研究现状[J]. 结构工程师, 2019, 35(4):243-250.
    [12]
    刘若愚, 陈涛, 姚嘉旭.碳纤维增强复材补强含中心裂纹及缺陷孔钢板的疲劳性能研究[J]. 工业建筑, 2019, 49(9):167-172.
    [13]
    王秋东, 吉伯海, 姚悦, 等.钢箱梁竖向加劲肋焊接接头疲劳裂纹碳纤维补强修复试验研究[J]. 工业建筑, 2017, 47(5):37-41.
    [14]
    COLOMBI P, FAVA G, SONZOGNI L. Fatigue Crack Growth in CFRP-Strengthened Steel Plates[J]. Composites Part B:Engineering, 2015, 72:87-96.
    [15]
    YU Q Q, ZHAO X L, AL-MAHAIDI R, et al. Tests on cracked steel plates with different damage levels strengthened by CFRP laminates[J]. International Journal of Structural Stability and Dynamics, 2014, 14(6). DOI: 10.1142/S0219455414500187.
    [16]
    KAMRUZZAMAN M, JUMAAT M Z, SULONG N H R, et al. Experimental Investigation on Fatigue Behavior of Wide-Flange Steel I-Beams Strengthened Using Different CFRP End Cutting Shapes[J]. International Journal of Steel Structures, 2019, 19(3):760-768.
    [17]
    吴伟健, 陈涛.CFRP布单侧加固非承重十字焊接接头应力强度因子分析[J]. 建筑结构学报, 2014, 35(增刊1):101-106.
    [18]
    姜宇恬. 层间混杂FRP与钢胶接界面粘结性能研究[D].合肥:合肥工业大学, 2019.
    [19]
    British Standards Institution. Guide to Methods for Assessing the Acceptability of Flaws in Metallic Structures[M]. London:British Standards Institution, 2005.
    [20]
    DENG J, LEE M M K. Fatigue Performance of Metallic Beam Strengthened with a Bonded CFRP Plate[J]. Composite Structures, 2007, 78(2):222-231.
    [21]
    PARIS P C, ERDOGAN F A. Critical Analysis of Crack Propagation Laws. Trans ASME J Basic Eng[J]. Journal of Basic Engineering, 1963, 85(4):528-534.
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (143) PDF downloads(1) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return