Numerical Analysis on Influence of Leakage Dissolution on Long-term Deformation of High Concrete Dam

WANG Shao-wei, BAO Teng-fei

Journal of Changjiang River Scientific Research Institute ›› 2020, Vol. 37 ›› Issue (6) : 62-69.

PDF(7922 KB)
PDF(7922 KB)
Journal of Changjiang River Scientific Research Institute ›› 2020, Vol. 37 ›› Issue (6) : 62-69. DOI: 10.11988/ckyyb.20190266
ENGINEERING SAFETY AND DISASTER PREVENTION

Numerical Analysis on Influence of Leakage Dissolution on Long-term Deformation of High Concrete Dam

  • WANG Shao-wei1,2, BAO Teng-fei2
Author information +
History +

Abstract

To quantitatively analyze the effect of leakage dissolution on the long-term deformation of high concrete dams, we put forward the method of applying the performance evolution law of concrete obtained from indoor rapid dissolution test to the on-site concrete dam engineering with accumulated Ca2+ loss as the intermediate index. On this basis, we established the variable parameters-based time-dependent constitutive model for dam concrete considering environmental damage factor, and derived the expression of viscoelastic strain increment. Calculation result of a high concrete arch dam unveil that the leakage dissolution of dam concrete leads to the increase of annual extreme values of dam displacement as well as the amplitude between annual maximum and minimum values. After 100 years of leakage dissolution, the radial displacement of dam crest increases by 1.7%, while the ratio of fitting mean square deviation to maximum displacement obtained by HST statistical model of measured displacement is 2.1%, indicating that the long-term displacement increment caused by leakage dissolution is easily concealed by the fluctuation of environmental loads and monitoring errors. Therefore, when studying the long-term deformation of concrete dams, it is not necessary to independently consider the influence of dam concrete’s leakage dissolution; but more attentions should be paid to the abnormality of the temporal-spatial characteristics of dam deformation behavior.

Key words

high concrete dam / leakage dissolution / long-term deformation / environmental damage factor / variable parameters-based time-dependent constitutive model

Cite this article

Download Citations
WANG Shao-wei, BAO Teng-fei. Numerical Analysis on Influence of Leakage Dissolution on Long-term Deformation of High Concrete Dam[J]. Journal of Changjiang River Scientific Research Institute. 2020, 37(6): 62-69 https://doi.org/10.11988/ckyyb.20190266

References

[1] 胡 江,马福恒,李子阳,等. 渗漏溶蚀混凝土坝力学性能的空间变异性研究综述[J]. 水利水电科技进展,2017,37(4):87-94.
[2] CARDE C, FRANQOIS R. Effect of the Leaching of Calcium Hydroxide from Cement Paste Mechanical and Physical Properties[J]. Cement and Concrete Research, 1997, 27(4):539-550.
[3] CARDE C, FRANQOIS R, TORRENTI J M. Leaching of Both Calcium Hydroxide and C-S-H from Cement Paste Modeling the Mechanical Behavior[J]. Cement and Concrete Research, 1996, 26(8):1257-1268.
[4] ROZIRE E, LOUKILI A, HACHEM R E,et al. Durability of Concrete Exposed to Leaching and External Sulphate Attacks[J]. Cement and Concrete Research, 2009, 39(12):1188-1198.
[5] 孔祥芝,陈改新,纪国晋. 大坝混凝土渗透溶蚀试验研究[J]. 混凝土,2013(10):53-56.
[6] 顾冲时,苏怀智,王少伟. 高混凝土坝长期变形特性计算模型及监控方法研究进展[J]. 水力发电学报,2016,35(5):1-14.
[7] 黄耀英,黄光明,吴中如,等. 基于变形监测资料的混凝土坝时变参数优化反演[J]. 岩石力学与工程学报,2007,26(增1):2941-2945.
[8] 徐卫亚,杨圣奇,褚卫江. 岩石非线性黏弹塑性流变模型(河海模型)及其应用[J]. 岩石力学与工程学报,2006,25(3):433-447.
[9] YANG W D, ZHANG Q Y, LI S C, et al. Time-dependent Behavior of Diabase and a Nonlinear Creep Model[J]. Rock Mechanics and Rock Engineering, 2014, 47(4):1211-1224.
[10]程 立,刘耀儒,潘元炜,等. 锦屏一级拱坝左岸边坡长期变形对坝体影响研究[J]. 岩石力学与工程学报,2016,35(增刊2):4040-4052.
[11]张强勇,杨文东,张建国,等. 变参数蠕变损伤本构模型及其工程应用[J]. 岩石力学与工程学报,2009,28(4):732-739.
[12]阎 岩,王思敬,王恩志. 基于西原模型的变参数蠕变方程[J]. 岩土力学,2010,31(10):3025-3035.
[13]CHEN L, WANG C P, LIU J F, et al. A Damage-mechanism-based Creep Model Considering Temperature Effect in Granite[J]. Mechanics Research Communications, 2014, 56(2):76-82.
[14]HUANG B, QIAN C X. Characterization and Stress-Strain Relationship of Leached Concrete[J]. Journal of the Chinese Ceramic Society, 2011, 39(1):87-91.
[15]王少伟,顾冲时,包腾飞. 基于MSC.Marc的高混凝土坝非线性时效变形量化的程序实现[J]. 中国科学:技术科学,2019,49(4):433-444.
[16]MSC Software Corporation. MSC Marc Vol. D:User Subroutines and Special Routines[K]. California, USA:MSC Software Corporation, 2005.
[17]胡 江. 混凝土坝老化病害及其影响的递进分析方法[D]. 南京:河海大学,2013.
[18]刘有志,张国新,程 恒,等. 特高拱坝谷幅缩窄成因及对大坝变形和应力的影响分析[C]// 贾金生,纪进旭,李洪泉,等.中国大坝协会2014学术年会论文集. 郑州:黄河水利出版社,2014:51-60.
[19]WU S Y,CAO W,ZHENG J.Analysis of Working Behavior of Jinping-I Arch Dam during Initial Impoundment[J].Water Science and Engineering,2016,9(3):240-248.
PDF(7922 KB)

Accesses

Citation

Detail

Sections
Recommended

/

Baidu
map