吉林大学学报(工学版) ›› 2026, Vol. 56 ›› Issue (7): 1882-1893.doi: 10.13229/j.cnki.jdxbgxb.20241376
• 交通运输工程·土木工程 • 上一篇
Dong-hui CHENG1(
),Xiao WANG1,Ke LI1,Li WANG1,2
摘要:
为了开展工程地质聚合物复合材料(EGC)加固增强既有混凝土构件的应用研究,以混凝土为基体、以EGC为覆盖层,设定二者粘结界面为凿削与刻槽两种形式、且每种形式设定了不同参数水平,完成了EGC与混凝土粘结界面的直剪性能试验研究。根据试验数据可以看出:随着界面粗糙度的增加,界面抗剪强度也在增加,虽然在受剪极限状态下,粘结界面均因抗剪强度较低而发生EGC受剪破坏,但不同界面呈现出不同破坏形式。此外,研究结果显示:试件的荷载-位移曲线有一定相似,均存在上升曲线和下降曲线,界面粗糙度较高的试件达到极限荷载后,下降曲线更为平缓。基于试验结果,利用非线性拟合的方法建立了EGC与既有NC界面抗剪强度计算公式,与试验结果吻合良好。依据试验剪切荷载-位移曲线和纤维增强混凝土抗剪韧性评价方法对NC-EGC粘结试件开展了剪切韧性评价,结果显示:其峰值荷载前韧性可达C60混凝土对照组的139%、234%,表现出EGC具有良好的增韧能力。
中图分类号:
| [1] | Lao J C, Ma R Y, Xu L Y, et al. Fly ash-dominated high-strength engineered/strain-hardening geopolymer composites(HS-EGC/SHGC): influence of alkalinity and environmental assessment[J]. Journal of Cleaner Production, 2024, 447: No.141182. |
| [2] | Han J, Cai J, Lin Y, et al. Impact resistance of engineered geopolymer composite(EGC) in cold temperatures[J]. Construction and Building Materials, 2022, 343 (Sup.C): No.128150. |
| [3] | Farooq M, Krishna A, Banthia N, et al. Highly ductile fiber reinforced geopolymers under tensile impact[J]. Cement and Concrete Composites, 2022, 126: No.104374. |
| [4] | Yang K H, Song J K, Song K I, et al. Assessment of CO2 reduction of alkali-activated concrete[J]. Journal of Cleaner Production, 2013, 39: 265-272. |
| [5] | Provis J L. Alkali-activated materials[J]. Cement and Concrete Research, 2018, 114:40-48. |
| [6] | Elmesalami N, Celik K. A critical review of engineered geopolymer composite: a low-carbon ultra-high-performance concrete[J]. Construction and Building Materials, 2022, 346: No.128491. |
| [7] | Choi J I, Lee B Y, Li V C, et al. Ultra-high-ductile behavior of a polyethylene fiber-reinforced alkali-activated slag-based composite[J]. Cement and Concrete Composites, 2016, 70: 153-158. |
| [8] | Huy-Hoàng Nguyễn, Quang-Hiếu Lương, Jeong-Il Choi, et al. Ultra-ductile behavior of fly ash-based engineered geopolymer composites with a tensile strain capacity up to 13.7%[J]. Cement and Concrete Composites, 2021, 122: No.104133. |
| [9] | Wu J Q, Lu Z, Chen Y T, et al. Mechanical properties and cracking behaviour of lightweight engineered geopolymer composites with fly ash cenospheres[J]. Construction and Building Materials, 2023,400: No.132622. |
| [10] | Wang Y S, Peng K D, Alrefaei Y, et al. The bond between geopolymer repair mortars and OPC concrete substrate: strength and microscopic interactions[J]. Cement and Concrete Composites, 2021, 119: No. 103991. |
| [11] | Xie J, Li J, Zhang B, et al. Effects of pretreated recycled fine aggregates on the mechanical properties and microstructure of alkali-activated mortar[J]. Case Studies in Construction Materials, 2024, 20: No.e02819. |
| [12] | Li S, Ma W, Chen D, et al. Bonding characteristics between existing concrete substrate and high ductility geopolymer overlays under direct shear loading[J]. Engineering Structures, 2024, 315: No.118324. |
| [13] | Wang B, Feng H, Huang H, et al. Bonding properties between fly ash/slag-based engineering geopolymer composites and concrete[J]. Materials, 2023, 16(12): No.4232. |
| [14] | Lei M, Wang X, Chen J, et al. Bond behavior of the FRP grid-concrete interface with geopolymer mortar as an adhesive[J]. Journal of Building Engineering, 2024, 87: No. 109120. |
| [15] | Hashemi A, Mousavi S S, Nazarpour H, et al. Effect of nano-SiO2 and sulfate solutions curing on bond strength of GGBFS-based geopolymer repairing mortar[J]. Construction and Building Materials, 2024, 435: No. 136778. |
| [16] | . 混凝土物理力学性能试验方法 标准 [S]. |
| [17] | . Standard test method for compressive strength of hydraulic cement mortars [S]. |
| [18] | Randl N. Design recommendations for interface shear transfer in fib Model Code 2010[J]. Structural Concrete, 2013, 14(3): 230-241. |
| [19] | Yokota H, Rokugo K, Sakata N, et al. JSCE recommendations for design and construction of high performance fiber reinforced cement composite with multiple fine cracks[J].Konkurito Kogaku, 2008, 45(3):3-9. |
| [20] | Tian J, Wu X, Zheng Y, et al. Investigation of interface shear properties and mechanical model between ECC and concrete[J]. Construction and Building Materials, 2019, 223: 12-27. |
| [21] | Wu X, He J, Tian J, et al. Shear behaviors of engineered cementitious composites to seawater sea-sand concrete(ECC-to-SSSC) interfaces cast using 3D-printed pre-grooving formwork: mechanical properties, characterization, and life-cycle assessment[J]. Journal of Building Engineering, 2023, 78: No.107636. |
| [22] | 刘增晨, 蒋利, 成莞莞, 等. 高强混凝土抗压抗拉强度的尺寸效应[J]. 科学技术与工程, 2015, 15(30): 209-213. |
| Liu Zeng-chen, Jiang Li, Cheng Guan-guan, et al. The dimensional effect of compressive strength and splitting tensile strength of high strength concrete[J]. Science Technology and Engineering, 2015, 15(30): 209-213. | |
| [23] | EN1992-1-1.Eurocode 2: design of concrete structures-part 1-1: general rules and rules for buildings [S]. |
| [24] | fib-2010. Fib Model code for concrete structures 2010 [S]. |
| [25] | 王德弘, 沈彤, 鞠彦忠, 等. 后浇普通混凝土与预制UHPC的黏结受剪性能研究[J]. 建筑结构学报, 2020, 41(): 411-419. |
| Wang De-hong, Shen Tong, Ju Yan-zhong, et al. Study on shear bond behavior of post-cast normal concrete and precast UHPC[J]. Journal of Building Structures, 2020, 41(Sup.2): 411-419. | |
| [26] | 邓明科, 刘华政, 马福栋, 等. 聚乙烯醇纤维改性高延性混凝土双面剪切试验及剪切韧性评价方法[J]. 复合材料学报, 2020, 37(2): 461-471. |
| Deng Ming-ke, Liu Hua-zheng, Ma Fu-dong, et al. Double shear experiment of highly ductileconcrete modified by polyvingl alcohol and shear toughness evaluation method[J]. Acta Mater Composite Sinica, 2020, 37(2): 461-471. | |
| [27] | Gao Z, Zhang P, Wang J, et al. Interfacial properties of geopolymer mortar and concrete substrate: effect of polyvinyl alcohol fiber and nano-SiO2 contents[J]. Construction and Building Materials, 2022, 315: No.125735. |
| [1] | 姚韦靖,柏梦宇,蔡海兵,刘涛. 水热耦合养护混凝土蠕变特性试验[J]. 吉林大学学报(工学版), 2025, 55(7): 2343-2353. |
| [2] | 徐文远,李微,王大洋,纪泳丞. 碱冻耦合作用FRP加固混凝土性能损伤机理[J]. 吉林大学学报(工学版), 2025, 55(6): 2050-2062. |
| [3] | 樊学平,杨渡,李九谕,赵启凡,刘月飞. 温度和车辆荷载耦合产生的桥梁极值应力预测[J]. 吉林大学学报(工学版), 2025, 55(5): 1588-1594. |
| [4] | 梅生启,刘晓东,王兴举,李旭峰,武腾,程相旭. 基于参数相关性分析和机器学习算法的高强混凝土徐变预测[J]. 吉林大学学报(工学版), 2025, 55(5): 1595-1603. |
| [5] | 张安顺,付伟,张军辉,高峰. 长沙压实黏土剪切特性及应力-应变关系表征[J]. 吉林大学学报(工学版), 2025, 55(5): 1604-1616. |
| [6] | 张亮亮,程桦,王晓健. 常规三轴压缩下高强混凝土能量演化和破坏准则[J]. 吉林大学学报(工学版), 2025, 55(3): 974-985. |
| [7] | 周宇,李萌,狄生奎,石贤增,陈东. 变截面两铰拱推力影响线解析解及损伤识别应用[J]. 吉林大学学报(工学版), 2025, 55(2): 664-672. |
| [8] | 何化南,吴奇泽,张潇,孙松,李兵,张轩祎. UHPC-NC植筋界面抗剪性能[J]. 吉林大学学报(工学版), 2025, 55(12): 3976-3985. |
| [9] | 姜浩,赵正文. 玄武岩纤维网格水泥基复合材料加固RC梁抗剪性能试验[J]. 吉林大学学报(工学版), 2025, 55(1): 211-220. |
| [10] | 韦芳芳,李丽萍,徐庆鹏,赵有正,杨晶晶. 受火双钢板-混凝土组合剪力墙加固后抗震性能试验[J]. 吉林大学学报(工学版), 2025, 55(1): 230-244. |
| [11] | 王羽岱,王斌,苗福生,马楠. 水热耦合变化下衬砌渠道冻胀响应[J]. 吉林大学学报(工学版), 2025, 55(1): 256-268. |
| [12] | 杨伟松,张安,许卫晓,李海生,杜轲. 刚度增强型金属连梁阻尼器的抗震性能[J]. 吉林大学学报(工学版), 2024, 54(9): 2469-2483. |
| [13] | 赵金全,周龙,丁永刚,朱熔基. 螺旋箍筋-波纹管浆锚连接锚固性能试验[J]. 吉林大学学报(工学版), 2024, 54(9): 2484-2494. |
| [14] | 姜封国,周玉明,白丽丽,梁爽. 改进磷虾群算法及其在结构优化中的应用[J]. 吉林大学学报(工学版), 2024, 54(8): 2256-2266. |
| [15] | 阎奇武,邹忠亮. 减震结构阻尼器优化布置混合算法[J]. 吉林大学学报(工学版), 2024, 54(8): 2267-2274. |
|
||