吉林大学学报(工学版) ›› 2017, Vol. 47 ›› Issue (2): 468-477.doi: 10.13229/j.cnki.jdxbgxb201702017

Previous Articles     Next Articles

Bending performance of glued-lumber beam reinforced with steel plate

YANG Xin-hui1, 2, XUE Wei1, GUO Nan1   

  1. 1.College of Engineering and Technology, Northeast Forestry University, Harbin 150040, China;
    2.Mudanjiang Normal University,Mudanjiang 157011,China
  • Received:2016-01-04 Online:2017-03-20 Published:2017-03-20

Abstract: To improve the mechanical property of common glued-lumber beam, an reinforcing method is proposed, that steel plate is fixed on the bottom of beam by pasting or screwing. Bending test of 21 beams were conducted to analyze the influences of steel plate thickness, with or without the screwing on beam failure mode, bearing capacity and deformation capacity in comparison with common clued-lumber beam. The bearing capacities are respectively increased by 73.3%, 90.0% and 71.0% by pasting steel plates with thickness of 2 mm, 3 mm and 4 mm, indicating that as the thickness of the steel plate increases the bearing capacity increases first then decreases. When both pasting and screwing are used with the above values of thickness, the bearing capacities are increased by 76.4%, 96.9% and 148.6% respectively, indicating that bearing capacity increases with the thickness of the steel plate, and the reinforcing effect of thicker steel plate is obvious. With steel plate reinforcement, the ultimate deformation is increased by 6.2% to 61.1% than that of common glued-lumber beam, and the influences of the steel plate thickness and screwing are similar to that of bearing capacity. After verification of the glued-lumber beam reinforced with steel plate conformed on the plain section, the bending capacity calculation formula of similar constructional member is proposed. The average error between the theoretical value and testing value is less than 10%.

Key words: materials synthesis and processing technology, steel plate reinforced glued-lumber beam, bending performance, test research, failure mode, bearing capacity calculation

CLC Number: 

  • TU366.3
[1] 赵越,杨春梅,齐英杰,等. 新中国成立后木结构建筑的发展概况[J]. 林业机械与木工设备,2012,40(5):10-12.
Zhao Yue,Yang Chun-mei,Qi Ying-jie,et al. Development of wood architecture since the founding of new China[J]. Forestry Machinery and Woodworking Equipment, 2012,40(5):10-12.
[2] 侯桂深. 现代木结构房屋的先进性及发展趋势分析[J]. 产业与科技论坛,2012,11(23):113-114.
Hou Gui-shen. Advancement and development trend of wooden structure building[J]. Industrial and Science Tribune,2012,11(23):113-114.
[3] 蔡汉忠,甄小翠. 湘西传统木建筑构造探析[J]. 森林工程,2012,28(6):94-95.
Cai Han-zhong, Zhen Xiao-cui. An analysis of the xiangxi traditional wood building construction[J]. Forest Engineering,2012,28(6):94-95.
[4] Issa C A, Kmeid Z. Advanced wood engineering: glulam beams[J]. Original Research Article Construction and Building Materials,2005,19(2):99-106.
[5] Ribeiro A S, de Jesus A M P, Lima A M, et al. Study of strengthening solutions for glued-laminated wood beams of maritime pine wood[J]. Construction and Building Materials,2009,23(8):2738-2745.
[6] 刘伟庆,杨会峰. 工程木梁的受弯性能试验研究[J]. 建筑结构学报,2008,29(1):90-95.
Liu Wei-qing, Yang Hui-feng. Experimental study on flexural behavior of engineered wood beams[J]. Journal of Building Structures,2008,29(1):90-95.
[7] Ferrier E, Labossière P, Neale K. Mechanical behavior of an innovative hybrid beam made of glulam and ultrahigh-performance concrete reinforced with FRP or steel[J]. Journal of Composites for Construction,2010,14(2):217-228.
[8] Manalo A C, Aravinthan T, Karunasena W. Flexural behaviour of glue-laminated fibre composite sandwich beams[J]. Composite Structures,2010,92(11):2703-2711.
[9] Khorsandnia N, Valipour H R, Foster S, et al. A force-based frame finite element formulation for analysis of two-and three-layered composite beams with material non-linearity[J]. International Journal of Non-Linear Mechanics,2014,62:12-22.
[10] Yahyaei-Moayyed M, Taheri F. Creep response of glued-laminated beam reinforced with pre-stressed sub-laminated composite[J]. Construction and Building Materials,2011,25(5):2495-2506.
[11] 王全凤,李飞,陈浩军,等. GFRP加固木梁抗弯性能的试验研究与理论分析[J]. 建筑结构学报,2010,40(5):50-52,107.
Wang Quan-feng, Li Fei, Chen Hao-jun,et al. Experimental study on bending behavior of timber beams reinforced with GFRP sheets[J]. Journal of Building Structures,2010,40(5):50-52,107.
[12] Huang Dong-sheng, Zhou Ai-ping, Bian Yu-ling. Experimental and analytical study on the nonlinear bending of parallel strand bamboo beams[J]. Construction and Building Materials,2013,44:585-592.
[13] Manalo A C, Aravinthan T, Karunasena W. Flexural behaviour of glue-laminated fibre composite sandwich beams[J]. Composite Structures,2010,92(11):2703-2711.
[14] Toratti T, Schnabl S, Turk G. Reliability analysis of a glulam beam[J]. Original Research Article Structural Safety,2007,29(4):279-293.
[1] JIANG Qiu-yue,YANG Hai-feng,TAN Cai-wang. Strengthening properties of welded joints of 22MnB5 super high strength steel [J]. Journal of Jilin University(Engineering and Technology Edition), 2018, 48(6): 1806-1810.
[2] HU Zhi-qing, YAN Ting-xu, LI Hong-jie, LYU Zhen-hua, LIAO Wei, LIU Geng. Effect of cryogenic treatment on punch-shearing performance of aluminum alloy sheet [J]. Journal of Jilin University(Engineering and Technology Edition), 2018, 48(5): 1524-1530.
[3] QIU Xiao-ming, WANG Yin-xue, YAO Han-wei, FANG Xue-qing, XING Fei. Multi-objective optimization of resistance spot welding parameters for DP1180/DP590 using grey relational analysis based Taguchi [J]. 吉林大学学报(工学版), 2018, 48(4): 1147-1152.
[4] CHEN Jun-fu, GUAN Zhi-ping, YANG Chang-hai, NIU Xiao-ling, JIANG Zhen-tao, Song Yu-quan. Comparison of strain ranges and mechanical properties of metal rods under tension and torsion tests [J]. 吉林大学学报(工学版), 2018, 48(4): 1153-1160.
[5] LIANG Xiao-bo, CAI Zhong-yi, GAO Peng-fei. Numerical simulation and experiment of cylindrical forming of sandwich composite panel [J]. 吉林大学学报(工学版), 2018, 48(3): 828-834.
[6] LIU Zi-wu, LI Jian-feng. Erosion damage and evaluation of remanufacturing cladding layer for impeller metals FV520B [J]. 吉林大学学报(工学版), 2018, 48(3): 835-844.
[7] LIU Chun-guo, LIU Wei-dong, DENG Yu-shan. Effect of multi-point punch active loading path on the stretch-forming of sheet [J]. 吉林大学学报(工学版), 2018, 48(1): 221-228.
[8] LYU Meng-meng, GU Zheng-wei, XU Hong, LI Xin. Process optimization of hot stamping for anti-collision beam with ultra high strength [J]. 吉林大学学报(工学版), 2017, 47(6): 1834-1841.
[9] XING Hai-yan, GE Hua, LI Si-qi, YANG Wen-guang, SUN Xiao-jun. Hidden defect metal magnetic memory identification for welded joints based on fuzzy membership and maximum likelihood estimation [J]. 吉林大学学报(工学版), 2017, 47(6): 1854-1860.
[10] GU Xiao-yan, LIU Ya-jun, SUN Da-qian, XU Feng, MENG Ling-shan, GAO Shuai. Microstructures and mechanical properties of transient liquid phase diffusion bonded S355 steel/6005A aluminum alloy joint [J]. 吉林大学学报(工学版), 2017, 47(5): 1534-1541.
[11] GU Zheng-wei, ZHANG Wen-xue, LYU Meng-meng, WANG Wei, XU Hong, LI Xin. Stretch bending defect control of U-section stainless steel profile with wide flange [J]. 吉林大学学报(工学版), 2017, 47(4): 1165-1170.
[12] GUO Nan, ZHANG Ping-yang, ZUO Yu, ZUO Hong-liang. Bending performance of glue-lumber beam reinforced by bamboo plyboard [J]. 吉林大学学报(工学版), 2017, 47(3): 778-788.
[13] GU Zheng-wei, LYU Meng-meng, ZHANG Wen-xue, LEI Jiao-jiao, XU Hong. Stamping of front-end three-dimensional skin of China electric multiple units [J]. 吉林大学学报(工学版), 2017, 47(3): 869-875.
[14] LIANG Ji-cai, LI Yi, GAO Song, TENG Fei. Springback prediction for multi-point 3D stretch bending profile [J]. 吉林大学学报(工学版), 2017, 47(1): 185-190.
[15] XU Hong, LIU Ya-nan, YU Ting, GU Zheng-wei, LI Xiang-ji, ZHANG Zhi-qiang. Inelastic recovery behavior and microscopic mechanism of high strength DP780 steel during cyclic loading-unloading [J]. 吉林大学学报(工学版), 2017, 47(1): 191-198.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!