Through uniaxial compressive test on sulfate-corroded concrete specimens after loading, we investigated the influences of load level and sulfate solution concentration on the mechanical properties and erosion mechanism. Furthermore, we compared the mechanical properties with those of high strength concrete. Results revealed that 1) with the increase of load level, the peak stress, elastic modulus and peak strain of non-corroded specimens decreased, whereas the peak stress and elastic modulus of specimens corroded by sulfate solutions of 5% or 10% concentration decreased while peak strain increased; 2) when load level remained constant, as solution concentration increased, the peak stress and elastic modulus of specimens decreased, and the peak strain increased; 3) as load level and solution concentration increased, the stress-strain curves of ordinary concrete and high strength concrete plumped gradually, and the main mechanical indices of ordinary concrete changed more significantly than those of high strength concrete. The research results can provide certain reference basis for the design of pre-damaged concrete structures under sulfate environment.
Key words
high strength concrete /
mechanical properties /
loading /
sulfate corrosion /
ordinary concrete
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References
[1] SCHNEIDER U, PIASTA W G. The Behavior of Concrete under Na2SO4 Solution Attack and Sustained Compression or Bending[J]. Magazine of Concrete Research, 1991, 43(157): 281-289.
[2] SCHNEIDER U,CHEN S W.The Chemo-mechanical Effect and the Mechano-chemical Effect on High-performance Concrete Subjected to Stress Corrosion[J]. Cement and Concrete Research, 1998, 28(4): 509-522.
[3] SCHNEIDER U, CHEN S W. Modeling and Empirical Formulas for Chemical Corrosion and Stress Corrosion of Cementitious Materials[J]. Materials and Structures, 1998, 31(10): 662- 668.
[4] JASON L, HUERTA A, PIJAUDIER-CABOT G, et al. An Elastic Plastic Damage Formulation for Concrete: Application to Elementary Tests and Comparison with an Isotropic Damage Model[J]. Computer Methods in Applied Mechanics and Engineering, 2006, 195(52): 7077-7092.
[5] 陈朝晖, 黄 河, 颜文涛,等. 腐蚀混凝土单轴受压力学性能研究[J].华中科技大学学报, 2008, 36(3): 38-41.
[6] BASSUONI M T, NEHD M L. Durability of Self-consolidating Concrete to Sulfate Attack under Combined Cycle Environments and Flexural Loading[J]. Cement and Concrete Research,2009,39(3):206-226.
[7] GAO Jian-ming,YU Zhen-xin,SONG Lu-guang, et al. Durability of Concrete Exposed to Sulfate Attack under Flexural Loading and Drying-wetting Cycles[J]. Construction and Building Materials, 2013, 39(2): 33-38.
[8] 陈 达, 廖迎媂, 侯利军, 等. 受硫酸盐侵蚀水泥基材料力学性能及本构模型[J].建筑材料学报, 2013, 16(6): 936-941.
[9] 肖诗云, 张 剑. 荷载历史对混凝土动态受压损伤特性影响试验研究[J]. 水利学报, 2010, 41 (8): 943-952.
[10]闫东明, 刘康华, 李贺东,等. 带初始损伤混凝土的动态抗压性能研究[J]. 水利学报, 2015, 46(9): 1110-1117.
[11]刘 亚,逯静洲,朱孔峰,等.高强混凝土经轴压和硫酸盐侵蚀后的力学性能[J]. 长江科学院院报, 2017, 34(10):134-138.
[12]过镇海, 张秀琴, 张达成, 等.混凝土应力-应变全曲线的试验研究[J]. 建筑结构学报, 1982, 3(1): 1-12.