|
- 2019
钢纤维对玄武岩纤维编织网增强混凝土板双向弯曲性能的影响
|
Abstract:
为了研究钢纤维对玄武岩纤维网格布增强混凝土方板双向受弯性能的影响,借鉴欧洲EFNARC标准,利用四边简支方板试验,分别对素混凝土方板、玄武岩纤维网格布增强混凝土方板、钢纤维增强混凝土方板及钢纤维与玄武岩纤维网格布混杂增强混凝土方板的弯曲性能进行研究,同时与传统钢筋网混凝土方板的弯曲性能进行对比,分析了网格布对混凝土方板的双向增强效果,探讨了钢纤维与玄武岩纤维网格布混杂使用代替传统钢筋网的可行性。结果表明:玄武岩纤维网格布可以改善方板的内力重分布,显著提高其承载力,但是破坏时脆性特征明显;钢纤维与玄武岩纤维网格布混杂使用表现出显著的正混杂效应,方板的韧性明显提高;在正常使用极限状态下,30 kg/m3的钢纤维与玄武岩纤维网格布混杂方板的弯曲性能高于传统钢筋网混凝土方板,说明钢纤维与玄武岩纤维编织网混杂使用可以代替传统钢筋网。 In order to investigate the influence of steel fibers on the biaxial bending properties of basalt fiber textile reinforced concrete, two-way slab test in accordance with EFNARC was introduced. The biaxial flexural properties of the basalt fiber textile reinforced concrete slab, the steel fiber reinforced concrete slab and the combined use of steel fiber and basalt fiber textile reinforced slab were compared. The slab without any reinforcement and the conventional steel mesh reinforced concrete slab were also studied as reference. The biaxial reinforcement of the basalt fiber mesh was analyzed and the feasibility of using steel fiber and basalt fiber mesh to replace the conventional steel mesh was studied. The results show that the inner force redistribution and the ultimate load of the slab increase obviously with the addition of the basalt fiber mesh, but the failure pattern of the slab still demonstrate brittle feature. The combined use of steel fiber and basalt fiber mesh illustrates positive hybrid effect, the toughness of the slab increases significantly. In the serviceability stage, the flexural properties of the slab reinforced with 30 kg/m3 steel fiber and basalt fiber mesh are higher than the conventional steel mesh reinforced slab, it means that the conventional steel mesh can be replaced by the combined use of the steel fiber and the basalt fiber mesh. 国家自然科学基金(51578109
[1] | SHAMS A, HORSTMANN M, HEGGER J. Experimental investigations on textile-reinforced concrete (TRC) sandwich sections[J]. Composite Structures, 2014, 118:643-653. |
[2] | TSESARSKY M, PELED A, KATZ A, et al. Strengthening concrete elements by confinement within textile reinforced concrete (TRC) shells-Static and impact properties[J]. Construction & Building Materials, 2013, 44:514-523. |
[3] | PORTAL N W, THRANE L N, LUNDGREN K. Flexural behaviour of textile reinforced concrete composites:Experimental and numerical evaluation[J]. Materials & Structures, 2017, 50(1):4. |
[4] | COLOMBO I G, COLOMBO M, PRISCO M D. Bending behaviour of textile reinforced concrete sandwich beams[J]. Construction & Building Materials, 2015, 95:675-685. |
[5] | 艾珊霞, 尹世平, 徐世烺. 纤维编织网增强混凝土的研究进展及应用[J]. 土木工程学报, 2015, 48(1):27-40. AI Shanxia, YIN Shiping, XU Shilang. A review on the development of research and application of textile reinforced concrete[J]. China Civil Engineering Journal, 2015, 48(1):27-40(in Chinese). |
[6] | 朱忠锋, 王文炜. 玄武岩格栅增强水泥基复合材料单轴拉伸力学性能试验及本构关系模型[J]. 复合材料学报, 2017, 34(10):2367-2374. ZHU Zhongfeng, WANG Wenwei. Experiment on the uniaxial tensile mechanical behavior of basalt grid reinforced engineered cementitious composites and its constitutive model[J]. Acta Materiae Compositae Sinica, 2017, 34(10):2367-2374(in Chinese). |
[7] | CURBACH M, JESSE F. Specification and application of textile reinforced concrete(TRC)[J]. Concrete and Reinforced Concrete Construction, 2010, 104(1):9-16. |
[8] | KULAS C, SCHNEIDER M, WILL N, et al. Ventilated facade structures made of textile reinforced concrete-structure behavior and construction[J]. Structural Engineering, 2011, 88(5):271-280. |
[9] | BENTUR A, MINDESS S. Fiber reinforced cementitious composites[M]. UK:Taylor & Francis Group, 2007. |
[10] | BARHUM R, MECHTCHERINE V. Effect of short, dispersed glass and carbon fibres on the behaviour of textile-reinforced concrete under tensile loading[J]. Engineering Fracture Mechanics, 2012, 92:56-71. |
[11] | BARHUM R, MECHTCHERINE V. Influence of short dispersed and short integral glass fibres on the mechanical behaviour of textile-reinforced concrete[J]. Materials & Structures, 2013, 46(4):557-572. |
[12] | LI Q, XU S. Experimental research on mechanical performance of hybrid fiber reinforced cementitious composites with polyvinyl alcohol short fiber and carbon textile[J]. Journal of Composite Materials, 2011, 45(1):5-28. |
[13] | 尹世平, 徐世烺. 提高纤维编织网保护层混凝土抗剥离能力的有效方法[J]. 建筑材料学报, 2010, 13(4):468-473. YIN Shiping, XU Shilang. Effective method to improve anti-flaking capacity of cover concrete to textile[J]. Journal of Building Materials, 2010, 13(4):468-473(in Chinese). |
[14] | EFNARC. European specification for sprayed concrete:ISBN 0-952-24831-X[S]. Loughborough:Loughborough University, 1996. |
[15] | 中华人民共和国住房和城乡建设部. 混凝土结构设计规范:GB 50010-2010[S]. 北京:中国建筑工业出版社, 2011. Ministry of Housing and Urban-Rural Development of the People's Republic of China. Code for design of concrete structures:GB 50010-2010[S]. Beijing:China Architecture & Building Press, 2011(in Chinese). |
[16] | HAVAEI M, LATIFI M, JAMSHIDI M. Study of the microstructure and flexural behavior of cementitious composites reinforced by surface modified carbon textiles[J]. Construction & Building Materials, 2018, 158:243-256. |
[17] | HEGGER J, VOSS S. Investigations on the bearing behaviour and application potential of textile reinforced concrete[J]. Engineering Structures, 2008, 30(7):2050-2056. |
[18] | BRAMESHUBER W. Textile reinforced concrete[M]. Bayeux:State-of-the-art Report of RILEM Technical Committee 201-TRC, 2006. |
[19] | 尹世平, 盛杰, 吕恒林, 等. TRC加固RC梁在静载下的受弯性能[J]. 中国公路学报, 2015, 28(1):45-53. YIN Shiping, SHENG Jie, LV Henglin, et al. Flexural behavior of RC beams strengthened with TRC under static loading[J]. China Journal of Highway and Transport, 2015, 28(1):45-53(in Chinese). |
[20] | 沈玲华, 王激扬, 徐世烺. 掺入短切纤维的纤维编织网增强混凝土薄板弯曲力学性能试验研究[J]. 建筑结构学报, 2016, 37(10):98-107. SHEN Linghua, WANG Jiyang, XU Shilang. Experimental study on bending mechanical behavior of textile reinforced concrete thin-plates with short dispersed fibers[J]. Journal of Building Structures, 2016, 37(10):98-107(in Chinese). |
[21] | DING Y, KUSTERLE W. Comparative study of steel fibre-reinforced concrete and steel mesh-reinforced concrete at early ages in panel tests[J]. Cement & Concrete Research, 1999, 29(11):1827-1834. |
[22] | CENGIZ O, TURANLI L. Comparative evaluation of steel mesh, steel fibre and high-performance polypropylene fibre reinforced shotcrete in panel test[J]. Cement & Concrete Research, 2004, 34(8):1357-1364. |
[23] | 李冬, 丁一宁. 钢纤维对喷射混凝土方板早龄期弯曲性能的影响[J]. 建筑材料学报, 2017, 20(1):78-82. LI Dong, DING Yining. Effect of steel fiber on the bending behavior of shotcrete plate at early age[J]. Journal of Building Materials, 2017, 20(1):78-82(in Chinese). |
[24] | 顾祥林. 建筑混凝土结构设计[M]. 上海:同济大学出版社, 2011. GU Xianglin. Design of concrete structures[M]. Shanghai:Tongji University Press, 2011(in Chinese). |
[25] | 邓宗才. 混杂纤维增强超高性能混凝土弯曲韧性与评价方法[J]. 复合材料学报, 2016, 33(6):1274-1280. DENG Zongcai. Flexural toughness and characterization method of hybrid fibers reinforced ultra-high performance concrete[J]. Acta Materiae Compositae Sinica, 2016, 33(6):1274-1280(in Chinese). |
[26] | 曹明莉, 李黎, 李志文, 等. CaCO3晶须对钢-聚乙烯醇混杂纤维增强水泥基复合材料板弯曲性能的影响[J]. 复合材料学报, 2017, 34(11):2614-2623. CAO Mingli, LI Li, LI Zhiwen, et al. Influence of CaCO3 whisker on flexural behavior of steel-polyvinyl alcohol hybrid fiber reinforced cement matrix composite slabs[J]. Acta Materiae Compositae Sinica, 2017, 34(11):2614-2623(in Chinese). |