Sensitivity analysis of the early-age cracking risk in an immersed tunnel

2014 ◽  
Vol 15 (2) ◽  
pp. 179-190 ◽  
Author(s):  
Xian Liu ◽  
Yong Yuan ◽  
Quanke Su
2018 ◽  
Vol 2018 ◽  
pp. 1-16 ◽  
Author(s):  
G. M. Ji ◽  
T. Kanstad ◽  
Ø. Bjøntegaard

The high-strength/high-performance concretes are prone to cracking at early age due to low water/binder ratio. The replacement of cement with mineral additives such as fly ash and blast-furnace slag reduces the hydration heat during the hardening phase, but at the same time, it has significant influence on the development of mechanic and viscoelastic properties of early age concrete. Its potential benefit to minimize the cracking risk was investigated through a filed experiment carried out by the Norwegian Directorate of Roads. The temperature development and strain development of the early age concrete with/without the fly ash were measured for a “double-wall” structure. Based on experimental data and well-documented material models which were verified by calibration of restraint stress development in TSTM test, thermal-structural analysis was performed by finite element program DIANA to assess the cracking risk for concrete structures during hardening. The calculated and measured temperature and strain in the structure had good agreement, and the analysis results showed that mineral additives such as flay ash are beneficial in reducing cracking risk for young concrete. Furthermore, parameter studies were performed to investigate the influence of the two major factors: creep and volume change (autogenous shrinkage and thermal dilation) during hardening, on the stress development in the structure.


2014 ◽  
Vol 15 (1) ◽  
pp. 66-80 ◽  
Author(s):  
Xian Liu ◽  
Wei Jiang ◽  
Geert De Schutter ◽  
Yong Yuan ◽  
Quanke Su

2015 ◽  
Vol 94 ◽  
pp. 270-279 ◽  
Author(s):  
Thomas Meagher ◽  
Natallia Shanahan ◽  
Daniel Buidens ◽  
Kyle A. Riding ◽  
A. Zayed

2020 ◽  
Vol 5 ◽  
pp. 41-55
Author(s):  
Laurie Lacarriere ◽  
Alain Sellier ◽  
Pierre Souyris ◽  
Batian Kolani ◽  
Ponleu Chhun

The paper presents a summary of the work concerning the prediction of cracking risk in reinforced concrete structures at early age that has been carried out by our team at the LMDC laboratory during the last ten years. It focuses on the principles that must be taken into account in numerical simulations (evolution of characteristics, behaviour law, numerical implementation, effect of reinforcement, etc.) in order to be able to predict the cracking pattern caused in structures by the thermal loading induced by hydration at early ages


2020 ◽  
Vol 71 (7) ◽  
pp. 746-759
Author(s):  
Do Tu Anh ◽  
Ha Luan Minh ◽  
Nguyen Quang Thac ◽  
Tran Tam Duc ◽  
Tham Thang Quoc

This paper is concentrated on investigating the modern methods to evaluate the probability of cracking in urban tunnel structures during construction. The study considers the current standard methods for assessing reinforced concrete walls of an urban tunnel, which experienced early-age cracking. The results obtained using guidelines were compared with actual observations of crack widths in the urban tunnel wall. Examples of using specifications in wall design were also described. The proper method is highlighted with suggestions for a possible path for considering early-age thermal and shrinkage effects in urban reinforced concrete tunnel walls


2014 ◽  
Vol 638-640 ◽  
pp. 735-739
Author(s):  
Hai Bo Wang

In order to speed up the progress of the concrete dam construction, the concrete thick layers and short time intervals fast pouring method is proposed. The temperature cracking and stress safety of the dam under concrete fast pouring method is a big trouble. From the concrete cracking safety point of view, a concrete gravity dam is introduced as a case study, the influence of different thickness of layers, different time intervals and different pouring temperature on the temperature and thermal stress characteristics of the concrete dam at the early age as well as the cracking risk of the concrete are deeply studied. According to the analysis, the corresponding cracking prevention technology is put forward. The research provides a technical support for establishing the concrete temperature control criteria and the relevant temperature control measures for the concrete fast pouring method.


Sign in / Sign up

Export Citation Format

Share Document