上海交通大学学报 ›› 2020, Vol. 54 ›› Issue (4): 413-420.doi: 10.16183/j.cnki.jsjtu.2020.04.010
张强1,2,卢朝辉1,2,赵然2,伦培元2
出版日期:2020-04-28
发布日期:2020-04-30
通讯作者:
伦培元,男,副研究员,电话(Tel.):18570028703;E-mail:276805672@qq.com.
作者简介:张强(1988-),男,湖南省永州市人,助理研究员,从事结构可靠度的研究.
基金资助:ZHANG Qiang 1,2,LU Zhaohui 1,2,ZHAO Ran 2,LUN Peiyuan 2
Online:2020-04-28
Published:2020-04-30
摘要: 根据断裂力学理论,建立了考虑初始缺陷的混凝土结构锈胀时间预测模型,以此为基础建立了结构寿命预测极限状态函数,并发展了基于三阶矩法的时变可靠度分析方法.研究结果表明:与Monte-Carlo方法对比,在计算结果较为吻合的情况下,本文方法减少了计算次数,提高了分析效率;在混凝土材料参数中,混凝土结构失效概率对保护层厚度的随机性和不确定性最为敏感,失效概率对随机变量概率分布类型敏感性较差.
中图分类号:
张强, 卢朝辉, 赵然, 伦培元. 基于初始缺陷的混凝土锈裂模型时变可靠度[J]. 上海交通大学学报, 2020, 54(4): 413-420.
ZHANG Qiang, LU Zhaohui, ZHAO Ran, LUN Peiyuan. Time-Varying Reliability of Rust Cracking Model Based on Initial Defect[J]. Journal of Shanghai Jiao Tong University, 2020, 54(4): 413-420.
| [1]ANGST U M. Challenges and opportunities in corrosion of steel in concrete[J]. Materials and Structures, 2018, 51(1): 1-20. [2]JIN W L, ZHAO Y X. Steel corrosion-induced concrete cracking[J]. Construction and Building Materials, 2016, 116: 273-280. [3]WONG H S, ZHAO Y X, KARIMI A R, et al. On the penetration of corrosion products from reinforcing steel into concrete due to chloride-induced corrosion[J]. Corrosion Science, 2010, 52: 2469-2480. [4]邵伟, 李镜培, 岳著文.氯离子侵蚀混凝土管桩寿命预测理论模型[J].硅酸盐学报, 2013, 41(5): 575-581. SHAO Wei, LI Jingpei, YUE Zhuwen. Service life prediction of concrete pipe pile due to chloride ion corrosion by modeling[J]. Journal of the Chinese Ceramic Society, 2013, 41(5): 575-581. [5]汪奔. 混凝土保护层锈胀开裂时间预测模型及细观裂纹扩展分析[D]. 成都: 西南交通大学, 2017. WANG Ben. A model for prediction of time to corrosion-induced concrete cover cracking and analysis of meso-crack propagation[D]. Chengdu: Southwest Jiaotong University, 2017. [6]DU X L, JIN L, ZHANG R B. Modeling the cracking of cover concrete due to non-uniform corrosion of reinforcement[J]. Corrosion Science, 2014, 89: 189-202. [7]ANDRADE C, ALONSO C, MOLINA F J. Cover cracking as a function of bar corrosion: Part I—Experimental test[J]. Materials and Structures, 1993, 26(8): 453-464. [8]MOLINA F J, ALONSO C, ANDRADE C. Cover cracking as a function of bar corrosion: Part 2—Numerical model[J]. Materials and Structures, 1993, 26(9): 532-548. [9]徐沛, 李敏辉, 张小刚. 钢筋混凝土结构保护层非均匀锈胀压力模型[J].深圳大学学报理工版, 2016, 33(6): 639-645. XU Pei, LI Minhui, ZHANG Xiaogang. Non-uniform steel corrosion expansive force model for the cover of reinforced concrete structure[J]. Journal of Shenzhen University Science and Engineering, 2016, 33(6): 639-645. [10]ZHANG X G, ZHAO Y G, LU Z H. Corrosion induced stress field and cracking time of reinforced concrete with initial defects: Analytical modeling and experimental investigation[J]. Corrosion Science, 2017, 120: 158-170. [11]樊玲, 卫军, 李江腾, 等. 基于氯离子时变扩散钢筋混凝土锈胀裂缝时变可靠度研究[J].湖南大学学报(自然科学版), 2014, 41(11): 67-73. FAN Ling, WEI Jun, LI Jiangteng, et al. Time-dependent corrosion reliability analysis considering on time-dependent chloride diffusion[J]. Journal of Hunan University (Natural Sciences), 2014, 41(11): 67-73. [12]周敏. 钢筋腐蚀对桥梁结构耐久性影响的研究[J]. 兰州: 兰州交通大学, 2017. ZHOU Min. Research on the effects of the durability of reinforcement corrosion on bridge structures[D]. Lanzhou: Lanzhou Jiaotong University, 2017. [13]LIU Y P, WEYERS R E. Modeling the time-to-corrosion cracking in chloride conta-minated reinforced concrete structures[J]. ACI Materials Journal, 1998, 95(6): 675-681. [14]ESRA M G, KASIM M, ERHAN G, et al. Numerical modeling of time to corrosion induced cover cracking in reinforced concrete using soft-computing based methods [J]. Materials and Structures, 2015, 48(6): 1739-1756. [15]赵然.考虑初始缺陷形状的混凝土构件锈胀开裂可靠度研究[D].长沙: 中南大学, 2018. ZHAO Ran. Reliability analysis of cover cracking of concrete structure considering the shape of initial defect[D]. Changsha: Central South University, 2018. [16]XU S, MUHAMMAD A M, LI Q H. Determination of double-K fracture parameters using semi-circular bend test specimens[J]. Engineering Fracture Mechanics, 2016, 152: 58-71. [17]李靖, 丁晓唐, 丁力栋. 基于双K断裂模型的海水对混凝土断裂性能的影响研究[J].河北工程大学学报(自然科学版), 2018, 35(3): 6-10. LI Jing, DING Xiaotang, DING Lidong. Research on the effect of seawater on the fracture performance of concrete based on double-K model [J]. Journal of Hebei University of Engineering (Natural Science Edition), 2018, 35(3): 6-10. [18]ZHANG X G, WANG X Z, LU Z H, et al. Analysis model of non-uniform corrosion induced cracking of reinforced concrete structure[J]. Journal of Central South University, 2011, 18: 940-945. [19]吴相豪.海洋环境中钢筋混凝土构件锈胀开裂时间的解析解[J].上海海事大学学报, 2006, 27(3): 22-26. WU Xianghao. Analytical solution for cracking time of reinforced concrete structure due to corrosion expansion in marine environment[J]. Journal of Shanghai Maritime University, 2006, 27(3): 22-26. [20]HUGO G, JOSE C M, ANTONIO A H. An innovative adaptive sparse response surface method for structural reliability analysis [J]. Structural Safety, 2018, 73: 12-28. [21]LIU Y P, WEYERS R E. Comparison of guarded and unguarded linear polarization CCD devices with weight loss measurements[J]. Cement and Concrete Research, 2003, 33: 1093-1101. [22]ZHANG X G, WANG J, ZHAO Y G, et al. Time-dependent probability assessment for chloride induced corrosion of RC structures using the third-moment method [J]. Construction and Building Materials, 2015, 76: 232-244. [23]ZHAO Y G, ZHANG X Y, LU Z H. Complete mo-notonic expression of the fourth-moment normal transformation for structural reliability[J]. Computers & Structures, 2018, 196: 186-199. [24]ZHAO Y G, ZHANG X Y, LU Z H. A flexible distribution and its application in reliability engineering[J]. Reliability Engineering and System Safety, 2018, 176: 1-12. [25]ZHAO Y X, ZHANG X W, JIN W L. Influence of environment on the development of corrosion product-filled paste and a corrosion layer at the steel/concrete interface[J]. Corrosion Science, 2017, 124: 1-9. |
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