|本期目录/Table of Contents|

[1]应敬伟,钱邵同,覃盛昆.双轴受压下再生混凝土氯离子扩散规律[J].建筑科学与工程学报,2021,38(02):90-98.[doi:10.19815/j.jace.2020.09028]
 YING Jing-wei,QIAN Shao-tong,QIN Sheng-kun.Chloride Diffusion Law in Recycled Concrete Under Biaxial Compression[J].Journal of Architecture and Civil Engineering,2021,38(02):90-98.[doi:10.19815/j.jace.2020.09028]
点击复制

双轴受压下再生混凝土氯离子扩散规律(PDF)
分享到:

《建筑科学与工程学报》[ISSN:1673-2049/CN:61-1442/TU]

卷:
38卷
期数:
2021年02期
页码:
90-98
栏目:
出版日期:
2021-03-25

文章信息/Info

Title:
Chloride Diffusion Law in Recycled Concrete Under Biaxial Compression
文章编号:
1673-2049(2021)02-0090-09
作者:
应敬伟1,2,钱邵同1,覃盛昆1,3
1. 广西大学 土木建筑工程学院,广西 南宁 530004; 2. 广西大学 工程防灾与结构安全教育部重点实验室, 广西 南宁 530004; 3. 广西大学 广西防灾减灾与工程安全重点实验室,广西 南宁 530004
Author(s):
YING Jing-wei1,2, QIAN Shao-tong1, QIN Sheng-kun1,3
1. College of Civil Engineering and Architecture, Guangxi University, Nanning 530004, Guangxi, China; 2. Key Laboratory of Engineering Disaster Prevention and Structural Safety of Ministry of Education, Guangxi University, Nanning 530004, Guangxi, China
关键词:
再生混凝土 氯离子扩散系数 双轴受压 应力比 孔隙结构
Keywords:
recycled concrete chloride diffusion coefficient biaxial compression stress ratio pore structure
分类号:
TU528
DOI:
10.19815/j.jace.2020.09028
文献标志码:
A
摘要:
为了研究复杂应力状态下再生混凝土的氯离子传输特性,首先通过破碎不同水灰比的母体混凝土得到不同性能的再生粗骨料,并对天然混凝土和不同性能再生混凝土进行双轴受压试验。然后利用电场加速氯离子扩散和双轴受压装置测试了不同类型再生骨料混凝土和天然骨料混凝土在不同应力水平和不同应力比下的氯离子扩散系数,并利用压汞仪测试了混凝土内部的微观孔隙结构。最后建立了考虑双轴应力水平、再生骨料吸水率和粗骨料体积分数的再生混凝土氯离子扩散系数理论模型,并进行了试验验证。结果表明:来自不同母体混凝土的再生骨料中的附着老砂浆具有不同的孔隙结构,再生混凝土中老砂浆的孔隙率随着母体混凝土水灰比的增加而变大,进而影响再生混凝土的氯离子扩散性; 应力比相同时,随着双轴受压应力水平的增加,再生混凝土氯离子扩散系数普遍呈现先下降再上升的趋势,在应力水平约为0.5时再生混凝土氯离子扩散系数出现最小值; 在双轴受压荷载作用下,母体混凝土水灰比分别为0.4,0.5,0.6的再生混凝土氯离子扩散系数最多分别下降到无荷载时的0.76%,0.78%,0.78%。
Abstract:
In order to study the chloride ion transport characteristics of recycled concrete under complex stress state. Firstly, recycled coarse aggregate with different properties was obtained by crushing the parent concrete with different water cement ratio, and biaxial compression tests were carried out on natural concrete and recycled concrete with different properties, then combined with electric field to accelerate chloride diffusion and biaxial compression device, the chloride diffusion coefficients of different types of recycled aggregate concrete and natural aggregate concrete under different load levels and stress ratios were tested. The micro pore structure of the concrete was tested by mercury porosimeter. Finally, a theoretical model of the chloride diffusion coefficient of recycled concrete considering biaxial stress level, water absorption of recycled aggregate and volume fraction of coarse aggregate was established and verified experimentally. The results show that the attached old mortars in the recycled aggregates from different parent concretes have different pore structures, and the porosity of old mortar in recycled concrete increases with the increase of water cement ratio of parent concrete, which will affect the chloride ion diffusivity of the recycled concrete. For the same stress ratio, with the increase of biaxial load stress level, the chloride ion diffusion coefficient of recycled concrete generally shows the trend of decreasing first and then rising, and the chloride ion diffusion coefficient of recycled concrete appears the minimum when the stress level ratio is about 0.5. Under biaxial compressive load, chloride ion diffusion coefficient of recycled concrete from parent concrete with water cement ratio of 0.4, 0.5 and 0.6 decreases to 0.76%, 0.78% and 0.78% at most than that without load, respectively.

参考文献/References:

[1] TOPCU I B,GUNCAN N F.Using Waste Concrete as Aggregate[J].Cement and Concrete Research,1995,25(7):1385-1390.
[2]NASSAR R U D,SOROUSHIAN P.Use of Recycled Aggregate Concrete in Pavement Construction[J].Journal of Solid Waste Technology and Management,2016,42(2):137-144.
[3]SHABAN W M,YANG J,SU H,et al.Quality Improvement Techniques for Recycled Concrete Aggregate:A Review[J].Journal of Advanced Concrete Technology,2019,17(4):151-167.
[4]BUI P T,OGAWA Y,DOI N,et al.Properties of Steam-cured Fly Ash Concrete Using Porous Ceramic Waste Aggregate[J].ACI Symposium Publication,2015,303:323-336.
[5]NAKHI A,ALHUMOUD J.Effects of Recycled Aggregate on Concrete Mix and Exposure to Chloride[J].Advances in Materials Science and Engineering,2019:7605098.
[6]SRUBAR W V.Stochastic Service-life Modeling of Chloride-induced Corrosion in Recycled-aggregate Concrete[J].Cement & Concrete Composites,2015,55:103-111.
[7]EVANGELISTA L,BRITO J D.Durability Performance of Concrete Made with Fine Recycled Concrete Aggregates[J].Cement & Concrete Composites,2010,32(1):9-14.
[8]应敬伟,肖建庄.再生骨料取代率对再生混凝土耐久性的影响[J].建筑科学与工程学报,2012,29(1):56-62.
YING Jing-Wei,XIAO Jian-Zhuang.Influence of Recycled Aggregate Replacement Ratio on Durability of Recycled Aggregate Concrete[J].Journal of Architecture and Civil Engineering,2012,29(1):56-62.
[9]LIM C C,GOWRIPALAN N,SIRIVIVATNANON V.Microcracking and Chloride Permeability of Concrete Under Uniaxial Compression[J].Cement & Concrete Composites,2000,22(5):353-360.
[10]TANG J,WU J,WANG W,et al.Effect of Curing Age on Chloride Diffusion Coefficient of Recycled Aggregate Concrete Subjected to Compressive Stresses[J].Transactions of Nanjing University of Aeronautics and Astronautics,2018,35(2):326-333.
[11]ZHOU Q,LU C,WANG W,et al.Effect of Fly Ash and Sustained Uniaxial Compressive Loading on Chloride Diffusion in Concrete[J].Journal of Building Engineering,2020,31:101394.
[12]WANG H L,DAI J G,SUN X Y,et al.Time-dependent and Stress-dependent Chloride Diffusivity of Concrete Subjected to Sustained Compressive Loading[J].Journal of Materials in Civil Engineering,2016,28(8):4016059.
[13]WANG J,BASHEER P A M,NANUKUTTAN S V,et al.Influence of Compressive Loading on Chloride Ingress Through Concrete[C]//CERAI.Proceedings of Civil Engineering Research in Ireland Conference 2014.Belfast:CERAI,2014:1-6.
[14]WANG W J,WU J,WANG Z,et al.Chloride Diffusion Coefficient of Recycled Aggregate Concrete Under Compressive Loading[J].Materials and Structures,2016,49(11):4729-4736.
[15]洪 雷,彭 超.单向荷载及冻融循环对氯离子渗透性的影响[J].建筑材料学报,2012,15(2):255-259.
HONG Lei,PENG Chao.Influence of Unilateral Load and Freeze-thaw Cycle on Chloride Permeability[J].Journal of Building Materials,2012,15(2):255-259.
[16]洪 雷,程 伟,王淑梅.双向压荷载对高性能混凝土氯离子渗透性的影响[J].建筑材料学报,2012,15(6):852-856.
HONG Lei,CHENG Wei,WANG Shu-mei.Influence of Two-way Load on Chloride Permeability of High Performance Concrete[J].Journal of Building Materials,2012,15(6):852-856.
[17]CHENG X,PENG J,CAI C S,et al.Experimental Study on Chloride Ion Diffusion in Concrete Under Uniaxial and Biaxial Sustained Stress[J].Materials,2020,13(24):5717.
[18]KUMAR MEHTA P,MONTEIRO P J M.Concrete:Microstructure,Properties,and Materials[M].4th ed.New York:McGraw-Hill Education,2014.
[19]TANG L,NILSSON L O.Rapid Determination of the Chloride Diffusivity in Concrete by Applying an Electrical Field[J].ACI Materials Journal,1992,89(1):49-53.
[20]TANAKA K,KURUMISAWA K.Development of Technique for Observing Pores in Hardened Cement Paste[J].Cement and Concrete Research,2002,32(9):1435-1441.
[21]ABELL A B,WILLIS K L,LANGE D A.Mercury Intrusion Porosimetry and Image Analysis of Cement-based Materials[J].Journal of Colloid and Interface Science,1999,211(1):39-44.
[22]吴中伟,廉慧珍.高性能混凝土[M].北京:中国铁道出版社,1999.
WU Zhong-wei,LIAN Hui-zhen.High Performance Concrete[M].Beijing:China Railway Publishing House,1999.
[23]LEITE M B,MONTEIRO P J M.Microstructural Analysis of Recycled Concrete Using X-ray Microtomography[J].Cement and Concrete Research,2016,81:38-48.
[24]YING J,ZHOU B,XIAO J.Pore Structure and Chloride Diffusivity of Recycled Aggregate Concrete with Nano-SiO2 and Nano-TiO2[J].Construction and Building Materials,2017,150:49-55.
[25]施惠生,张林涛,吴 凯,等.不同集料界面过渡区对氯离子传输特性的影响[J].东南大学学服:自然科学版,2018,48(6):1170-1176.
SHI Hui-sheng,ZHANG Lin-tao,WU Kai,et al.Influence of Interface Transition Zone of Different Aggregates on Chloride Transport Properties[J].Journal of Southeast University:Natural Science Edition,2018,48(6):1170-1176.
[26]WANG H L,DAI J G,SUN X Y,et al.Time-dependent and Stress-dependent Chloride Diffusivity of Concrete Subjected to Sustained Compressive Loading[J].Journal of Materials in Civil Engineering,2016,28(8):04016059.
[27]杜修力,金 浏,张仁波.力学荷载对混凝土中氯离子渗透扩散行为影响述评[J].建筑结构学报,2016,37(1):107-125.
DU Xiu-li,JIN Liu,ZHANG Ren-bo.Review on Effect of External Mechanical Loadings on Chloride Penetration and Diffusion into Concrete[J].Journal of Building Structures,2016,37(1):107-125.

相似文献/References:

[1]丁发兴,方常靖,龚永智,等.再生混凝土单轴力学性能指标统一计算方法[J].建筑科学与工程学报,2014,31(04):16.
 DING Fa-xing,FANG Chang-jing,GONG Yong-zhi,et al.Unified Calculation Method of Uniaxial Mechanical Performance Index of Recycled Concrete[J].Journal of Architecture and Civil Engineering,2014,31(02):16.
[2]丁 陶,肖建庄.基于振动台试验的预制再生混凝土框架后浇边节点分析[J].建筑科学与工程学报,2013,30(03):78.
 DING Tao,XIAO Jian-zhuang.Analysis of Cast-in-situ Exterior Joints of Precast Recycled Aggregate Concrete Frame by Shaking Table Tests[J].Journal of Architecture and Civil Engineering,2013,30(02):78.
[3]肖建庄,郑世同,王 静.再生混凝土长龄期强度与收缩徐变性能[J].建筑科学与工程学报,2015,32(01):21.
 XIAO Jian-zhuang,ZHENG Shi-tong,WANG Jing.Long-term Strength, Shrinkage and Creep Properties of Recycled Aggregate Concrete[J].Journal of Architecture and Civil Engineering,2015,32(02):21.
[4]肖建庄,刘 胜,TRESSERRAS Joan.钢管/GFRP管约束再生混凝土柱偏心受压试验[J].建筑科学与工程学报,2015,32(02):21.
 XIAO Jian-zhuang,LIU Sheng,TRESSERRAS Joan.Eccentric Loading Test on Recycled Aggregate Concrete Columns Confined by Steel Tube/GFRP Tube[J].Journal of Architecture and Civil Engineering,2015,32(02):21.
[5]谢建和,李自坚,孙明炜.硅粉对纤维橡胶再生混凝土抗压性能影响试验[J].建筑科学与工程学报,2016,33(03):72.
 XIE Jian-he,LI Zi-jian,SUN Ming-wei.Experiment About Influence of Silica Fume on Compressive Performance of Fiber Reinforced Rubber Recycled Concrete[J].Journal of Architecture and Civil Engineering,2016,33(02):72.
[6]肖建庄,李宏,亓萌.基于静载强度分布的再生混凝土疲劳强度预测[J].建筑科学与工程学报,2010,27(04):7.
 XIAO Jian-zhuang,LI Hong,QI Meng.Fatigue Strength Prediction of Recycled Aggregate ConcreteBased on Static Strength Distribution[J].Journal of Architecture and Civil Engineering,2010,27(02):7.
[7]肖建庄,朱永明,王璞瑾,等.再生混凝土U型叠合梁抗剪性能[J].建筑科学与工程学报,2012,29(02):1.
 XIAO Jian-zhuang,ZHU Yong-ming,WANG Pu-jin,et al.Shear Behavior of Recycled Concrete U-shaped Composite Beams[J].Journal of Architecture and Civil Engineering,2012,29(02):1.
[8]肖建庄,黄运标,郑永朝.高温后再生混凝土的残余抗折强度[J].建筑科学与工程学报,2009,26(03):32.
 XIAO Jian-zhuang,HUANG Yun-biao,ZHENG Yong-chao.Residual Flexural Strength of Recycled ConcreteAfter Elevated-temperatures[J].Journal of Architecture and Civil Engineering,2009,26(02):32.
[9]肖建庄,雷斌.再生混凝土碳化模型与结构耐久性设计[J].建筑科学与工程学报,2008,25(03):66.
 XIAO Jian-zhuang,LEI Bin.Carbonation Model and Structural Durability Design for Recycled Concrete[J].Journal of Architecture and Civil Engineering,2008,25(02):66.
[10]郭 凯,马浩辉,王 强.氧化石墨烯对再生混凝土界面过渡区的影响[J].建筑科学与工程学报,2018,35(05):217.
 GUO Kai,MA Hao-hui,WANG Qiang.Effect of Graphene Oxide on Interfacial Transition Zone of Recycled Concrete[J].Journal of Architecture and Civil Engineering,2018,35(02):217.

备注/Memo

备注/Memo:
收稿日期:2020-09-17
基金项目:国家自然科学基金项目(51768005); 广西自然科学基金项目(2018GXNSFAA281333)
作者简介:应敬伟(1983-),男,河南漯河人,副教授,工学博士,E-mail:yingjingwei@126.com。
更新日期/Last Update: 2021-03-20