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材料导报  2025, Vol. 39 Issue (2): 23100224-10    https://doi.org/10.11896/cldb.23100224
  无机非金属及其复合材料 |
多因素复合环境下钢筋与混凝土黏结性能研究进展
杨淑雁*, 徐宁阳
宁夏大学土木与水利工程学院,银川 750021
Research Progress on Bonding Properties of Reinforcement and Concrete Under Muti-factor Composite Environments
YANG Shuyan*, XU Ningyang
School of Civil Engineering and Water Conservancy, Ningxia University, Yinchuan 750021, China
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摘要 为了探究多因素复合环境下钢筋-混凝土黏结性能的研究进展,在单调荷载和重复荷载下对不同环境(如冻融循环、干湿循环、氯盐侵蚀、硫酸盐侵蚀、碳化以及持续荷载等)多因素复合作用下带肋钢筋-混凝土的黏结特点、黏结强度以及黏结应力预测公式进行了归纳、总结和分析,并对不同环境因素作用下影响钢筋-混凝土黏结性能的原因进行了梳理和解释。结合文献和工程的实际需要,指出了多因素复合环境下钢筋-混凝土黏结性能研究中需进一步待解决的问题。最后提出,由于多因素复合环境作用的复杂性,现有的研究虽然发现了一些规律,但结论较为分散,差异性较大,还有待于后续开展进一步的科学研究。
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杨淑雁
徐宁阳
关键词:  多因素复合环境  钢筋-混凝土  黏结性能    
Abstract: To explore the research progress of bonding performance between rebar and concretesubjected to multi-factor composite environments, the bonding characteristics, bonding strength and bonding stress prediction formulas of reinforced concrete under monotonic and repeated loads were summarized and analyzed. Different environments such as freeze-thaw cycles, dry-wet cycles, chlorine salt attack, sulfate attack, carbonization and continuous loads were considered. The reasons affecting the bonding properties of reinforced concrete under different environmental factors were sorted out and explained. Combined with the literature and the practical needs of the project, the further problems to be solved in the research on the bonding properties of reinforced concrete under muti-factor composite environments are pointed out. At last, the conclusion was put forward that due to the complex effects of muti-factor compound environment, although some rules had been found in the existing studies, the conclusions were scattered and different, and further scientific research is needed.
Key words:  multi-factor composites environment    rebar-concrete    bonding property
出版日期:  2025-01-25      发布日期:  2025-01-21
ZTFLH:  TU528  
基金资助: 宁夏自然科学基金项目(2023AAC03129)
通讯作者:  *杨淑雁,宁夏大学土木与水利工程学院副教授、硕士研究生导师。目前主要从事钢筋混凝土结构耐久性方面的研究工作,重点是硫酸盐、氯盐以及冻融循环对钢筋混凝土结构造成的病害。yangshuyan@nxu.edu.cn   
引用本文:    
杨淑雁, 徐宁阳. 多因素复合环境下钢筋与混凝土黏结性能研究进展[J]. 材料导报, 2025, 39(2): 23100224-10.
YANG Shuyan, XU Ningyang. Research Progress on Bonding Properties of Reinforcement and Concrete Under Muti-factor Composite Environments. Materials Reports, 2025, 39(2): 23100224-10.
链接本文:  
https://www.mater-rep.com/CN/10.11896/cldb.23100224  或          https://www.mater-rep.com/CN/Y2025/V39/I2/23100224
1 Sun Y, Qiao G F. Materials Reports, 2020, 34(3), 3116 (in Chinese).
孙杨,乔国富. 材料导报, 2020, 34(3), 3116.
2 Fan Y F, Huang G Z, Li J M, et al. Industrial Construction, 1999(8), 51 (in Chinese).
范颖芳,黄振国,李健美,等. 工业建筑, 1999(8), 51.
3 Gong J X, He S Q, Guo Y X. Journal of Dalian University of Technology, 2005(3),405 (in Chinese).
贡金鑫,何世钦,郭肓霞.大连理工大学学报, 2005(3),405.
4 Jiang X Q, Cao D F, Ge W J, et al. Journal of Yangzhou University, 2017, 20(3), 69 (in Chinese).
姜小琴,曹大富,葛文杰,等. 扬州大学学报, 2017, 20(3), 69.
5 Su T. Bond behavior between recycled coarse aggregate concrete and rebar after salt-frost cycles. Master's Thesis, Nanjing University of Aeronautics and Astronautics, China, 2020 (in Chinese).
苏天. 盐冻循环后再生粗骨料混凝土与钢筋粘结性能研究. 硕士学位论文, 南京航空航天大学, 2020.
6 Hu K L, Fan C, Hu D L, et al. Science Technology and Engineering, 2019, 19 (4), 237 (in Chinese).
胡孔亮,范超,胡大琳,等. 科学技术与工程, 2019,19(4), 237.
7 Wang H C, He S Q, Gong JX. Concrete, 2007(8),1 (in Chinese).
王海超,何世钦,贡金鑫.混凝土, 2007(8),1.
8 Zhu F Z, Ma Z M, Zhao T J. Advances in Materials Science and Enginee-ring, 2016, 2016,1.
9 Sun Y, Diao B. Journal of Building Structures, 2007(S1), 242 (in Chinese).
孙洋, 刁波. 建筑结构学报, 2007(S1), 242.
10 Wu Y, Tang P, Lv H, et al. Construction and Building Materials, 2023, 369,130515.
11 Li X M, Shang H S. Journal of Qingdao Technological University, 2015,36(4),23 (in Chinese).
李新明,商怀帅. 青岛理工大学学报,2015,36(4),23.
12 Guo H. Bond behavior of glass aggregate reinforced concrete under complex environment. Master's Thesis, Shenyang Jianzhu University, China, 2021(in Chinese).
郭昊. 复杂环境下玻璃集料钢筋混凝土粘结性能. 硕士学位论文, 沈阳建筑大学, 2021.
13 Alhawat M, Ashour A. Construction and Building Materials, 2020,237,117441.
14 Al-Sibahy A, Sabhan M. Construction and Building Materials, 2020, 250, 118568.
15 Xu S L, Cai X H. Assessment, Durability, Monitoring and Retrofitting of Concrete Structures/eds, 2010, 794.
16 Wang Z W, Ma F. New Building Materials, 2017, 44(11), 40 (in Chinese).
王志伟, 马福. 新型建筑材料, 2017, 44(11), 40.
17 Jiang L, Niu D, Yuan L, et al. Cold Regions Science and Technology, 2015,112, 112.
18 Qiu W L, Teng F, Pan S S. Construction and Building Materials,2020,236,117560.
19 An M Z, Wang Y, Yu Z R. Construction and Building Materials, 2019,198, 546.
20 Kim J, Moon J H, Shim J W, et al. Construction and Building Materials,2014,66, 398.
21 Han M, Yang S Y, Kong J, et al. Building Science, 2022,38(11), 68 (in Chinese).
韩敏, 杨淑雁, 孔骏, 等. 建筑科学, 2022, 38(11), 68.
22 Yang S Y, Han M, Chen X L, et al. Construction and Building Mate-rials, 2022, 345,128368.
23 Gong J Z, Yang S T, Liu Y. Fiber Reinforced Plastics/Composites, 2018(4), 11(in Chinese).
巩家宗, 杨树桐, 刘洋. 玻璃钢/复合材料, 2018(4), 11.
24 Hong W L, Zhao Y X. Construction and Building Materials, 2016,118(8), 127.
25 Wu Y Z, Lv H L, Fang Z N, et al. Construction and Building Materials, 2015, 77,253.
26 Wu Y Z, Lv H L, Zhou S C, et al. Construction and Building Materials, 2016,119,89.
27 Zheng J L, Ding J W, You F. Journal of Fuzhou University,2019, 47(2),7 (in Chinese).
郑建岚,丁进炜, 游帆. 福州大学学报, 2019, 47(2),7.
28 Niu D T, Sun C T. Journal of the Chinese Ceramic Society, 2013,41(8),1094 (in Chinese).
牛荻涛,孙丛涛. 硅酸盐学报,2013,41(8),1094.
29 Shang H, Ren G, Hou D, et al. Magazine of Concrete Research, 2019, 71(13-14),700.
30 Wang Z H. Study on bond behavior between stell bar and concrete under sustained load and dry-wet cycles. Master's Thesis, Qingdao Technological University, China, 2018 (in Chinese).
王志恒. 持续荷载与干湿循环共同作用下钢筋混凝土粘结性能试验研究.硕士学位论文,青岛理工大学, 2018.
31 Zhu F Z, Ma Z M, Jiang L J, et al. Xi'an Univ. of Arch. & Tech. 2016, 48(5), 643 (in Chinese).
朱方之,马志鸣,蒋连接,等. 西安建筑科技大学学报, 2016, 48(5), 643.
32 Nilson A N. ACI Structural Journal, 1972, 69(7) , 439.
33 Zhang M M, Li S L, Dai X Q, et al. Journal of Qingdao University of Technology, 2020, 41(4), 1(in Chinese).
张慢慢,李树良,戴小倩,等. 青岛理工大学学报, 2020, 41(4), 1.
34 Shang H S, Ren G S, Hou D S, et al. Journal of Jangsu University, 2019, 40(4), 479 (in Chinese).
商怀帅, 任国盛, 侯东帅, 等. 江苏大学学报, 2019, 40(4), 479.
35 Liu J R. Study on the bond behavior between non-uniform corrosion steel bar and concrete under sustained load. Master's Thesis, Qingdao Technological University, China, 2021 (in Chinese).
刘继睿. 持续荷载作用下非均匀锈蚀钢筋与混凝土间粘结性能的研究.硕士学位论文,青岛理工大学, 2021.
36 Mo Q W, Shang H S, Xu Q W. Building Science, 2021, 51(14), 112 (in Chinese).
莫齐伟,商怀帅,徐芹文. 建筑结构, 2021, 51(14), 112.
37 Yoon S, Wang K J, Weiss W J, et al. ACI Materials Journal, 2000, 97, 637.
38 Williamson S J, Clark L A. Structural Engineering International, 2002, 12(2),117.
39 Yao H. Research on durability and bond stress damage of reinforcement and concrete under salt corrosion and freeze-thaw cycles. Master's Thesis, Changchun Institute of Technology, 2019 (in Chinese).
姚焕. 盐蚀及冻融循环作用下持载钢筋混凝土耐久性及粘结应力损伤研究.硕士学位论文,长春工程学院, 2019.
40 Kong Z Y. Research of the bonding property between steel and concrete under sustained compressive loading after single-side salt freezing. Master's Thesis, Yantai University, China, 2023 (in Chinese).
孔政宇. 持压荷载作用下单面盐冻混凝土-钢筋粘结性能的研究.硕士学位论文,烟台大学, 2023.
41 Jiang J S, Yang H F, Deng Z H, et al. Construction and Building Materials, 2022, 318,125954.
42 Su T, Huang Z F, Yuan J F, et al. Journal of Materials in Civil Enginee-ring, 2022, 34(10), 04022257.
43 Meng X X. Experimental study on bond behavior between steel rebars and recycled concrete after freeze-thaw cycles. Master's Thesis, Harbin Institute of Technology, China, 2006 (in Chinese).
孟祥鑫. 冻融循环后钢筋与再生混凝土粘结性能试验研究.硕士学位论文,哈尔滨工业大学, 2016.
44 Li X S. The experimental study on property of bond-slip between steel and freezing-thawing concrete with repeated load. Master's Thesis, Harbin Institute of Technology, 2006 (in Chinese).
李兴盛. 重复加载下钢筋与冻融混凝土间粘结滑移性能试验研究.硕士学位论文,哈尔滨工业大学, 2006.
45 Lin H W, Zhao Y X, Josko O, et al. Engineering Structures, 2017, 140(6), 390.
46 Li S L, Xie Z L, Shang H S, et al. Journal of Qingdao University of Technology, 2022, 43(3),1.
李树良, 解宗龙, 商怀帅, 等. 青岛理工大学学报, 2022, 43(3),1(in Chinese).
47 Xu Y Z. Study on bond behavior of frozen-thawed concrete under cyclic loading. Master's Thesis, Xi'an University of Architecture and Technology, China, 2013 (in Chinese).
徐颖哲. 反复荷载作用下钢筋与冻融损伤混凝土粘结性能的试验研究.硕士学位论文,西安建筑科技大学, 2013.
48 Yang L. Experimental research on bond behaviors between frozen-thawed concrete and deformed steel bars under cyclic loading. Master's Thesis, Xi'an University of Architecture and Technology, China, 2014 (in Chinese).
杨龙. 反复荷载作用下冻融混凝土与变形钢筋粘结性能试验研究.硕士学位论文,西安建筑科技大学, 2014.
49 Fang C Q, Du J W, Pan H Y. China Concrete and Cement Products, 2005(5), 11 (in Chinese).
方从启, 杜嘉伟, 潘洪源. 混凝土与水泥制品, 2005(5), 11.
50 Lv C M. Bond strength between corroded bars and concrete under monotonic and cycle loads. Master's Thesis, Dalian University of Technology, China, 2018 (in Chinese).
吕昌明. 单调与反复荷载下锈蚀钢筋-混凝土的粘结强度.硕士学位论文,大连理工大学, 2018.
51 Shang H S, Chai X. Engineering structures, 2021, 247,113112.
52 Shang H S, Zhou J H, Yang G T. Construction and Building Materials, 2021, 305, 124658.
53 Wu T. Experimental study on bond performance between carbonized concrete and deformed bars under cyclic loading. Master's Thesis, Xi'an University of Architecture and Technology, China, 2014 (in Chinese).
吴桐. 反复荷载作用下碳化混凝土与变形钢筋粘结性能试验研究.硕士学位论文,西安建筑科技大学, 2014.
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