Life Prediction of Reinforced Concrete in Saline Soil Based on Wiener Stochastic Process

被引:0
作者
Lu C. [1 ]
Wei Z. [2 ]
Qiao H. [1 ,3 ]
Xue C. [1 ]
Fu Y. [1 ]
机构
[1] School of Civil Eng., Lanzhou Univ. of Technol., Lanzhou
[2] State Key Lab. of Advanced Processing and Recycling of Non-ferrous Metals, Lanzhou Univ. of Technol., Lanzhou
[3] Western Center of Disaster Mitigation in Civil Eng. of Ministry of Education, Lanzhou Univ. of Technol., Lanzhou
来源
Gongcheng Kexue Yu Jishu/Advanced Engineering Sciences | 2021年 / 53卷 / 01期
关键词
Durability; Life prediction; Reinforced concrete; Saline soil; Wiener random process;
D O I
10.15961/j.jsuese.202000275
中图分类号
学科分类号
摘要
In view of the short durability life of concrete structure in Western saline soil area, the reinforced concrete specimens were buried on site in the saline soil area of Golmud, and non-destructive degradation indexes such as ultrasonic velocity, quality and steel resistance of specimens were periodically collected every 150 d. Damage and deterioration evaluation was analyzed from both macro and micro aspects through the evaluation parameters of dynamic elastic modulus ξa, quality evaluation parameters ξb, evaluation parameters of steel bars without corrosion ξc and SEM images. Wiener random process was selected for modeling and life prediction. The results showed that under the combined actions of corrosive ions and climate, the ξa and ξb values of concrete fluctuated with a slight increase in the early stage and an accelerated decline in the middle and late stages. The value of ξa was more sensitive to the change of concrete performance, and the value of ξc of the steel bar decreased linearly. The Cl-, SO42-, CO32- and other corrosive anions in the saline soil enter the concrete through diffusion and capillary adsorption, and form Friedel's salt, silica fume gypsum, ettringite, gypsum, calcium carbonate and other corrosive expansion crystals with concrete hydration products. From a microscopic point of view, it was observed that the corrosion products in the concrete were distributed in sticks, rods, fibers, and needles. On the other hand, the corrosion products of steel bar were accumulated in granular and cluster shape, and there were corrosion pits on the surface of steel bar. The Wiener stochastic process model could well predict the life of reinforced concrete in saline soil environment, and the life curves of concrete and steel bar changed in three stages. The concrete life value obtained by the quality and dynamic elastic modulus degradation index was higher than the steel bar life obtained by the resistance degradation index, and the life value obtained by the concrete relative dynamic elastic modulus was lower than the life value obtained by the relative quality degradation index. Service life of C35, C40 and C45 reinforced concrete in Golmud saline soil environment was approximately 4500 d, 5000 d and 5800 d, respectively. Copyright ©2021 Advanced Engineering Sciences. All rights reserved.
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页码:113 / 121
页数:8
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  • [1] Erika H, Miguel F, Hannele K, Erika H, Miguel F, Hannele K, Et al., Performance and durability of concrete under effect of multi-deterioration mechanisms[J], Journal of the Chinese Ceramic Society, 43, 10, pp. 1420-1429, (2015)
  • [2] Ali S M, Behzad T, Reza K K., An investigation on mechanical properties and durability of concrete containing silica fume and ely ash, Civil Engineering Journal, 2, 5, pp. 189-196, (2016)
  • [3] Taffese W Z, Sistonen E., Machine learning for durability and service-life assessment of reinforced concrete structures: Recent advances and future directions[J], Automation in Construction, 77, pp. 1-14, (2017)
  • [4] Li K F, Wang P P, Li Q W, Et al., Durability assessment of concrete structures in HZM sea link project for service life of 120 years, Materials & Structures, 49, 9, pp. 3785-3800, (2015)
  • [5] Liu Qiang, Huang Miansong, Jin Feng, Study on the durability and service life of concrete structure of coastal tunnel, Journal of Beijing Jiaotong University, 42, 6, pp. 1-8, (2018)
  • [6] Sideris K K, Anagnostopoulos N S., Durability of normal strength self-compacting concretes and their impact on service life of reinforced concrete structures, Construction and Building Materials, 41, pp. 491-497, (2013)
  • [7] Liu Jinliang, Jia Yanmin, Wang Jiawei, Et al., Prediction of the durable life of prestressed concrete structures eroded by chloride ions under salt freezing in seasonally frozen areas, Journal of Harbin Engineering University, 39, 10, pp. 1625-1632, (2018)
  • [8] Lei Mingfeng, Peng Limin, Shi Chenghua, Durability evaluation and life prediction of shield segment under coupling effect of chloride salt environment and load, Journal of Central South University(Natural Science Edition), 46, 8, pp. 3092-3099, (2015)
  • [9] Mei T Y, Wang J W, Wu L., Carbonation Life prediction of concrete railway bridges, Advanced Materials Research, 1065, pp. 1748-1751, (2014)
  • [10] Niu Ditao, Yuan Chengfang, Wang Chunfen, Et al., Carbonation service life prediction of reinforced concrete railway bridge based on durability test, Journal of Xi'an Aniversity of Architecture & Technology(Natural Science Edition), 43, 2, pp. 160-165, (2011)