1.太原理工大学 土木工程学院,太原 030024
2.武汉大学 土木建筑工程学院,武汉 430072
赵建斌(1983- ),男,博士生,高级工程师,主要从事岩土工程与公路路基研究,E-mail:zjbhust@hotmail.com。
郑俊杰(通信作者),男,教授,博士生导师,E-mail:zhengjj@hust.edu.cn。
收稿:2022-05-17,
纸质出版:2023-08-25
移动端阅览
赵建斌, 白晓红, 郑俊杰, 等. 加筋土桥台柔性复合结构设计方法[J]. 土木与环境工程学报, 2023,45(4):1-9.
ZHAO Jianbin, BAI Xiaohong, ZHENG Junjie, et al. Design method of geosynthetic reinforced soil-integrated bridge system[J]. Journal of Civil and Environmental Engineering, 2023, 45(4): 1-9.
赵建斌, 白晓红, 郑俊杰, 等. 加筋土桥台柔性复合结构设计方法[J]. 土木与环境工程学报, 2023,45(4):1-9. DOI: 10.11835/j.issn.2096-6717.2022.067.
ZHAO Jianbin, BAI Xiaohong, ZHENG Junjie, et al. Design method of geosynthetic reinforced soil-integrated bridge system[J]. Journal of Civil and Environmental Engineering, 2023, 45(4): 1-9. DOI: 10.11835/j.issn.2096-6717.2022.067.
加筋土桥台柔性复合结构(简称GRS-IBS)作为加筋土的一种改进技术,可有效控制路—桥过渡段差异沉降,以减少“桥头跳车”现象的发生。但目前GRS-IBS结构多参照加筋土挡墙进行设计,由于二者承载特性存在差异,其设计方法有待完善。以山西省太行一号风景道K43+175处桥梁工程为例,借鉴相关规范和标准进行GRS-IBS结构设计,并采用FLAC
3D
建立有限差分数值模型进行数值分析,分别对桥台变形、筋材和墙面板受力进行验算,以确保工程结构安全。结果表明:GRS-IBS结构设计除需进行结构内部和外部稳定性验算外,还需采用FHWA推荐的计算方法对结构承载力和筋材拉力进行验算;采用现浇混凝土墙面板的GRS-IBS结构能满足相关规范对路桥过渡段不均匀沉降控制的技术要求,但为保证工程结构安全,需对墙面板顶部进行局部加强设计;GRS-IBS结构墙面板最大拉应力位于桥台中部偏下位置,建议在现浇混凝土墙面板受拉侧配置一定数量的钢筋,以避免混凝土产生开裂破坏。
As an improved technique of reinforced soil
the geosynthetic reinforced soil-integrated bridge system(GRS-IBS) could reduce the differential settlement at the roadbed-bridge transition section so as to avoid “bridgehead bump” effectively. But at present
GRS-IBS structure is mostly designed with reference to reinforced earth retaining wall
and its design method needs to be improved on account of the difference in bearing characteristics between two structures. Considering this
based on a bridge in Taihang No.1 Tourism Road K43+175 in Shanxi Province
the GRS-IBS was designed referring to the relevant specifications
and a Finite difference numerical model in the same condition was also established by FLAC3D to analyze the abutment deformation
the geogrid tensile force and the panel stress respectively to guarantee the safety of engineering structure. The results show that not only the internal and external stability of GRS-IBS should be validated
but also the bearing capacity and the geogrid tensile force should be checked using the formula recommended by FHWA; the GRS-IBS structure with cast-in-place concrete panel could meet the requirement of relevant specifications for the differential settlement at the roadbed-bridge transition section
but the top of the panel should be reinforced to ensure the safety of engineering structure; the maximum tensile stress of the panel with GRS-IBS structure was located in its lower part
and the reinforcement was suggested on the tension side to avoid concrete cracking.
冯忠居 , 方贻立 , 龚坚城 , 等 . 高等级公路桥头跳车的危害及其机理的分析 [J]. 西安公路交通大学学报 , 1999 , 19 ( 4 ): 33 - 35 .
FENG Z J , FANG Y L , GONG J C , et al . Analysis of the harmful effect of vehicle bump at bridge head of the highway and its mechanism [J]. Journal of Xi ,an Highway University, 1999 , 19 ( 4 ): 33 - 35 . (in Chinese)
郑俊杰 , 张军 , 马强 , 等 . 路桥过渡段桩承式加筋路堤现场试验研究 [J]. 岩土工程学报 , 2012 , 34 ( 2 ): 355 - 362 .
ZHENG J J , ZHANG J , MA Q , et al . Experimental investigation of geogrid-reinforced and pile-supported embankment at bridge approach [J]. Chinese Journal of Geotechnical Engineering , 2012 , 34 ( 2 ): 355 - 362 . (in Chinese)
李俊 , 卫星 , 唐朝勇 , 等 . 桥梁养护2020年度研究进展 [J]. 土木与环境工程学报(中英文) , 2021 , 43 ( Sup1 ): 190 - 197 .
LI J , WEI X , TANG C Y , et al . State-of-the-art review of bridge maintenance in 2020 [J]. Journal of Civil and Environmental Engineering , 2021 , 43 ( Sup1 ): 190 - 197 . (in Chinese)
罗敏敏 , 徐超 , 杨子凡 . 土工合成材料加筋土柔性桥台复合结构及应用 [J]. 土木工程学报 , 2019 , 52 ( Sup1 ): 226 - 232 .
LUO M M , XU C , YANG Z F . Geosynthetic reinforced soil-integrated bridge system and its applications [J]. China Civil Engineering Journal , 2019 , 52 ( Sup1 ): 226 - 232 . (in Chinese)
ADAMS M , KETCHART K , RUCKMAN A , et al . Reinforced soil for bridge support applications on low-volume roads [J]. Transportation Research Record: Journal of the Transportation Research Board , 1999 , 1652 ( 1 ): 150 - 160 .
NICKS J E , ADAMS M T , STABILE T , et al . Thermal interaction of a geosynthetic reinforced soil integrated bridge system in St. Lawrence County, NY [C]// Geotechnical Frontiers 2017 . March 12-15, 2017 , Orlando, Florida. Reston , VA, USA : American Society of Civil Engineers , 2017 : 84 - 93 .
徐超 , 罗敏敏 , 任非凡 , 等 . 加筋土柔性桥台复合结构抗震性能的试验研究 [J]. 岩土力学 , 2020 , 41 ( Sup1 ): 179 - 186, 194 .
XU C , LUO M M , REN F F , et al . Experimental study on seismic behaviour of reinforced soil flexible abutment composite structures [J]. Rock and Soil Mechanics , 2020 , 41 ( Sup1 ): 179 - 186, 194 . (in Chinese)
ZHENG Y W , FOX P J , SHING P B , et al . Physical model tests of half-scale geosynthetic reinforced soil bridge abutments. I: Static loading [J]. Journal of Geotechnical and Geoenvironmental Engineering , 2019 , 145 ( 11 ): 04019094 .
ZHANG J , JIA Y F , GUO W H , et al . Experimental study on the load bearing behavior of geosynthetic reinforced soil bridge abutments with different facing conditions [J]. Geotextiles and Geomembranes , 2022 , 50 ( 4 ): 632 - 643 .
TALEBI M , MEEHAN C L , CACCIOLA D V , et al . Design and construction of a geosynthetic reinforced soil integrated bridge system [C]// Geo-Congress 2014 . February 23-26, 2014 , Atlanta, Georgia . Reston, VA, USA : American Society of Civil Engineers , 2014 : 4176 - 4190 .
ADAMS M , NICKS J , STABILE T , et al . Geosynthetic reinforced soil integrated bridge system, interim implementation guide [R]. McLean : The US Federal Highway Administration , 2012 .
南京库伦软件技术有限公司 . Geo5岩土软件 [CP]. 南京 , 2022 .
Nanjing Kulun Software CO., LTD . Geo5 Geotechnique Software [CP]. Nanjing , 2022 .
李立 , 郑俊杰 , 曹文昭 , 等 . 考虑地基土流变性的桩承式加筋土挡墙拓宽路基数值模拟 [J]. 土木与环境工程学报(中英文) , 2020 , 42 ( 2 ): 65 - 72 .
LI L , ZHENG J J , CAO W Z , et al . Numerical analysis of widening subgrade using pile-supported reinforced-earth wall considering rheological characteristics of subsoil [J]. Journal of Civil and Environmental Engineering , 2020 , 42 ( 2 ): 65 - 72 . (in Chinese)
陈育民 , 徐鼎平 . FLAC/FLAC3D基础与工程实例 [M]. 2版 . 北京 : 中国水利水电出版社 , 2013 .
CHEN Y M , XU D P . Basics and Engineering Examples of FLAC/FLAC3D [M]. 2nd edition . Beijing : China Water Power Press , 2013 . (in Chinese)
0
浏览量
7
下载量
1
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621