Investigations on the Environmental Characteristics and Cracking Control of Plateau Concrete

Author:

Hu Xiaochuan1,Liao Manping1,Li Ming2,Wang Fuqiang3ORCID,Lyu Xiang4ORCID,Zhuang Mei-Ling567

Affiliation:

1. The Civil Engineering Group Corporation of China Second Engineering Bureau Ltd., Beijing 101100, China

2. Jiangsu Sobute New Materials Co., Ltd., Nanjing 211103, China

3. School of New Energy, Harbin Institute of Technology at Weihai, Weihai 264209, China

4. China Construction Second Engineering Bureau Ltd., Beijing 100000, China

5. Water Resources Research Institute of Shandong Province, Jinan 250013, China

6. School of Civil Engineering, Shandong University, Jinan 250061, China

7. School of Transportation and Civil Engineering, Nantong University, Nantong 226019, China

Abstract

In the present study, first, the environmental challenges and cracking characteristics during the construction of plateau concrete on the Sichuan–Tibet route were revealed. Then, using a multi-field coupled shrinkage model with hydration temperature humidity constraints, the early and long-term cracking risks in the core of plateau pier bodies were investigated. Later, the effects of tensile strength, pouring interval age and adiabatic temperature rise on the cracking risk were analyzed. Finally, various control measures for high-altitude concrete cracking were proposed. The results indicated that the complex environment of the plateau led to different forms of cracks in the pier body, especially vertical cracks in the straight sections. The long-term risk of core cracking in the plateau pier body is significantly greater than the risk of early cracking. This risk was strongly influenced by factors such as the concrete tensile strength, pouring interval age and adiabatic temperature rise, which should be given more attention. Deformation compensation can significantly enhance the peak and residual deformation capacities of plateau concrete, with peak values greater than 900 με and residual deformation greater than 200 με at day 60, as well as its resistance to cracking. Strategies such as adopting radiant cooling techniques, improving construction techniques and implementing effective management measures can all play a vital role in improving the cracking resistance of highland concrete.

Funder

the CSCEC Technology R&D Program Funding Projects

the China Construction Science and Technology Innovation Platform Grant

Publisher

MDPI AG

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