Naval Architecture, Ocean and Civil Engineering

Mechanical Characteristics and Stress and Strain Analysis of Concrete with Bonding Interface Under Impact Load

Expand
  • 1. School of Civil Engineering, Central South University, Changsha 410075, China
    2. School of Materials Science and Engineering, Hunan Institute of Technology, Hengyang 421002, Hunan, China
    3. State Key Laboratory of Traction Power, Southwest Jiaotong University, Chengdu 610031, China

Received date: 2021-09-10

  Online published: 2022-10-09

Abstract

To study the dynamic mechanical characteristic of steam cured concrete and self-compacting concrete bonding interface, a split Hopkinson pressure bar (SHPB) test was used to evaluate the dynamic properties of concrete with a bonding interface. The failure pattern and the characteristics of stress-strain curves and a constitutive model of concrete with a bonding interface were discussed. The results show that the impact destructions are associated with two forms of failures, i.e., the interface separation failure and concrete crushed failure. In interface separation failure, the peak stress, dynamic increase factor (DIF), peak strain, and impact toughness of concrete with a bonding interface increase with the increase of strain rate, and the concrete with a bonding interface shows a stronger strain rate sensitivity. In concrete crushed failure, there exist debonding deformation and crush deformation exist simultaneously. With the increase of strain rate, the accumulation and development of crack at the interface could make the interface zone play an energy relieving role in concrete with a bonding interface. The peak stress and the DIF of concrete with a bonding interface remain unchanged, while the peak strain and impact toughness both increase. The calculated data by the established dynamic constitutive model are similar to the experimental results, especially before the ultimate state of strain stress curves.

Cite this article

ZHAO Hong, XIE Youjun, LONG Guangcheng, LI Ning, ZHANG Jiawei, CHENG Zhiqing . Mechanical Characteristics and Stress and Strain Analysis of Concrete with Bonding Interface Under Impact Load[J]. Journal of Shanghai Jiaotong University, 2022 , 56(9) : 1208 -1217 . DOI: 10.16183/j.cnki.jsjtu.2021.343

References

[1] LI N, LONG G C, FU Q, et al. Dynamic mechanical characteristics of filling layer self-compacting concrete under impact loading[J]. Archives of Civil and Mechanical Engineering, 2019, 19(3): 851-861.
[2] WANG M, XIE Y J, LONG G C, et al. Microhardness characteristics of high-strength cement paste and interfacial transition zone at different curing regimes[J]. Construction and Building Materials, 2019, 221: 151-162.
[3] 谢友均, 王猛, 马昆林, 等. 不同养护温度下蒸养混凝土的冲击性能[J]. 建筑材料学报, 2020, 23(3): 521-528.
[3] XIE Youjun, WANG Meng, MA Kunlin, et al. Impact mechanical characteristics of steam cured concrete under different curing temperatures[J]. Journal of Building Materials, 2020, 23(3): 521-528.
[4] XIE Y J, WANG X, LONG G C, et al. Quantitative analysis of the influence of subfreezing temperature on the mechanical properties of steam-cured concrete[J]. Construction and Building Materials, 2019, 206: 504-511.
[5] WANG X, XIE Y J, LONG G C, et al. Mechanical evolutionary behavior of steam-cured concrete under the coupling effect of flexural fatigue and minus temperature[J]. Structural Concrete, 2021, 22(5): 3008-3025.
[6] LI N, LONG G C, FU Q, et al. Effects of freeze and cyclic flexural load on mechanical evolution of filling layer self-compacting concrete[J]. Construction and Building Materials, 2019, 200: 198-208.
[7] 龙广成, 杨振雄, 白朝能, 等. 荷载-冻融耦合作用下充填层自密实混凝土的耐久性及损伤模型[J]. 硅酸盐学报, 2019, 47(7): 855-864.
[7] LONG Guangcheng, YANG Zhenxiong, BAI Chao-neng, et al. Durability and damage constitutive model of filling layer self-compacting concrete subjected to coupling action of freeze-thaw cycles and load[J]. Journal of the Chinese Ceramic Society, 2019, 47(7): 855-864.
[8] 龙广成, 刘赫, 马昆林, 等. 考虑冻融作用的混凝土单轴压缩损伤本构模型[J]. 中南大学学报(自然科学版), 2018, 49(8): 1884-1892.
[8] LONG Guangcheng, LIU He, MA Kunlin, et al. Uniaxial compression damage constitutive model of concrete subjected to freezing and thawing[J]. Journal of Central South University (Science and Technology), 2018, 49(8): 1884-1892.
[9] 马昆林, 龙广成, 谢友均. CRTS III 型板式无砟轨道充填层自密实混凝土碳化及力学性能演变的研究[J]. 铁道科学与工程学报, 2012, 9(6): 42-47.
[9] MA Kunlin, LONG Guangcheng, XIE Youjun. Carbonation and mechanics evolvement of self-consolidating concrete used in CRTS III type slab ballastless track filling layer[J]. Journal of Railway Science and Engineering, 2012, 9(6): 42-47.
[10] LI X, ZHANG S, LIU J. Research on CRTS III ballastless track slab cracks of high-speed railway[J]. Applied Mechanics and Materials, 2013, 443: 69-73.
[11] 徐宏, 曹新刚. 严寒地区CRTS III 型轨道板翘曲变形分析研究[J]. 铁道工程学报, 2019, 36(5): 20-24.
[11] XU Hong, CAO Xingang. Research on the warping deformation of CRTS III type track plate in severe cold area[J]. Journal of Railway Engineering Society, 2019, 36(5): 20-24.
[12] 何燕平. CRTS III 型板式无砟轨道疲劳特性研究[D]. 成都: 西南交通大学, 2011.
[12] HE Yanping. Study on fatigue property of the CRTS III slab track[D]. Chengdu: Southwest Jiaotong University, 2011.
[13] ZENG Z P, WANG J D, SHEN S W, et al. Experimental study on evolution of mechanical properties of CRTS III ballastless slab track under fatigue load[J]. Construction and Building Materials, 2019, 210: 639-649.
[14] ZHU K T, ZENG Z P, WU B, et al. Influence of interface bond damage on the mechanical properties of CRTS III slab track[C]// International Conference on Electronic. Dordrecht, the Netherlands: Atlantis Press, 2016: 1795-1800.
[15] 尤明庆, 苏承东. 平台圆盘劈裂的理论和试验[J]. 岩石力学与工程学报, 2004(1): 170-174.
[15] YOU Mingqing, SU Chengdong. Split test of flattened rock disk and related theory[J]. Chinese Journal of Rock Mechanics and Engineering, 2004(1): 170-174.
[16] FU Q, XU W R, LI D, et al. Dynamic compressive behaviour of hybrid basalt-polypropylene fibre-reinforced concrete under confining pressure: Experimental characterisation and strength criterion[J]. Cement and Concrete Composites, 2021, 118: 103954.
[17] FU Q, BU M X, XU W R, et al. Comparative analysis of dynamic constitutive response of hybrid fibre-reinforced concrete with different matrix strengths[J]. International Journal of Impact Engineering, 2021, 148: 103763.
[18] 蒋文祺. 混凝土材料冲击破碎特征及能耗试验研究[D]. 西安: 长安大学, 2018.
[18] JIANG Wenqi. Experimental study on impact fragmentation and energy consumption of concrete materials[D]. Xi’an: Chang’an University, 2018.
[19] 王世鸣, 李夕兵, 宫凤强, 等. 静载和动载下不同龄期混凝土力学特性的试验研究[J]. 工程力学, 2013, 30(2): 143-149.
[19] WANG Shiming, LI Xibing, GONG Fengqiang, et al. Experimental study on mechanical properties of different ages concrete under static and dynamic load[J]. Engineering Mechanics, 2013, 30(2): 143-149.
[20] CHEN X D, SHAO Y, XU L Y, et al. Experimental study on tensile behavior of cement paste, mortar and concrete under high strain rates[J]. Journal of Wuhan University of Technology (Materials Science Edition), 2015, 30(6): 1268-1273.
[21] 聂良学, 许金余, 任韦波, 等. 不同温度及加载速率对混凝土冲击变形韧性影响[J]. 振动与冲击, 2015, 34(6): 67-71.
[21] NIE Liangxue, XU Jinyu, REN Weibo, et al. Effects of temperature and impact velocity on impact deformation and toughness of concrete[J]. Journal of Vibration and Shock, 2015, 34(6): 67-71.
[22] 吴政, 张承娟. 单向荷载作用下岩石损伤模型及其力学特性研究[J]. 岩石力学与工程学报, 1996(1): 55-61.
[22] WU Zheng, ZHANG Chengjuan. Investigation of rock damage model and its mechanical behaviour[J]. Chinese Journal of Rock Mechanics and Engineering, 1996(1): 55-61.
[23] 龙广成, 李宁, 薛逸骅, 等. 冲击荷载作用下掺橡胶颗粒自密实混凝土的力学性能[J]. 硅酸盐学报, 2016, 44(8): 1081-1090.
[23] LONG Guangcheng, LI Ning, XUE Yihua, et al. Mechanical properties of self-compacting concrete incorporating rubber particles under impact load[J]. Journal of the Chinese Ceramic Society, 2016, 44(8): 1081-1090.
Outlines

/