Determination of Elastic Modulus of Concrete at Ultra-early Age by Indentation Technique

被引:0
|
作者
Wang D. [1 ,2 ]
Zhao Q. [2 ]
Dong B. [1 ]
Yang Z. [1 ]
Yuan L. [3 ]
机构
[1] School of Civil Engineering and Architecture, Northeast Petroleum University, Daqing
[2] Hebei Province Engineering Research Center for Harmless Synergistic Treatment and Recycling of Municipal Solid Waste, Yanshan University, Qinhuangdao
[3] Shenzhen Guoyi Park Construction Co., Ltd., Research and Development Center, Shenzhen
关键词
concrete; elastic modulus; indentation technique; indenter; ultra-early age;
D O I
10.3969/j.issn.1007-9629.2023.11.012
中图分类号
学科分类号
摘要
Based on the principle of the indentation method, a test method for the ultra-early elastic modulus of concrete was proposed. The size of the specimen was designed by numerical analysis method, and the spherical conical indenter with a cone angle of 30° was selected as the test indenter for the ultra-early elastic modulus of concrete, the optimal indentation depth was 5 mm. Comparing with the ultrasonic method, the method was verified by changing the water-binder ratio of concrete and the amount of fly ash. The initial setting time is taken as the zero point and the earliest elastic modulus that can be measured by the traditional stress-strain method as the end point, the two-point line is used to predict the super-early elastic modulus of concrete. To compare with the experimentalresults of the indentation method, the errors are all within 30%. © 2023 Tongji University. All rights reserved.
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页码:1229 / 1236
页数:7
相关论文
共 29 条
  • [11] DELSAUTE B, BOULAY C, GRANJA J., Testing concrete E-modulus at very early ages through several techniques:An inter-laboratory comparison, Strain, 52, 2, pp. 91-109, (2016)
  • [12] STAQUET S, DELSAUTE B, DARQUENNES A, Et al., Design of a revisited TSTM system for testing concrete since setting time under free and restraint conditions [C], Proceedings of the Concrack 3—RILEM-JCI International Workshop on Crack Control of Mass Concrete and Related Issues Concerning Early-Age of Concrete Structures, pp. 99-110, (2012)
  • [13] LI Yifan, GUAN Xuemao, LIU Songhui, Et al., Influence of indentation points and deconvolution method on cement nanoindentation test, Journal of Building Materials, 24, 2, pp. 291-296, (2021)
  • [14] LI J Q, ZHANG W X, MONTEIRO P J M., Preferred orientation of calcium aluminosilicate hydrate compacts:Implications for creep and indentation, Cement and Concrete Research, 143, (2021)
  • [15] JIANG Junda, SHEN Jiyun, HOU Dongwei, Determination of fracture toughness of hydrated calcium silicate by nanoindentation, Journal of the Chinese Ceramic Society, 46, 8, pp. 1067-1073, (2018)
  • [16] WEI Ya, GAO Xiang, LIANG Siming, Identification and characterization of hydration products in hardened cement paste based on modulus mapping and nanoindentation, Journal of the Chinese Ceramic Society, 46, 8, pp. 1043-1052, (2018)
  • [17] LIU Dongxu, ZHANG Taihua, HUAN Yong, Development of macro-depth-sensing-indentation instrumentation, Chinese Journal of Theoretical and Applied Mechanics, 39, 3, pp. 350-355, (2007)
  • [18] OLIVER W C, PHARR G M., An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments, Journal of Materials Research, 7, 6, pp. 1564-1583, (1992)
  • [19] ZHANG Taihua, Micro/nano mechanics testing technology: Measurement, analysis, application and standardization of instrumented indentation, pp. 130-200, (2013)
  • [20] GAO Y F, XU H T, OLIVER W C, Effective elastic modulus of film-on-substrate systems under normal and tangential contact [J], Journal of the Mechanics and Physics of Solids, 56, pp. 402-416, (2008)