Study on the Frost Resistance of Composite Limestone Powder Concrete against Coupling Effects of Sulfate Freeze–Thaw

Author:

Zhang Mingming1,Lv Henglin123,Zhou Shuchun13,Wu Yuanzhou13,Zheng Xiaowei13ORCID,Yan Qiyao1

Affiliation:

1. School of Mechanics and Civil Engineering, China University of Mining and Technology, Xuzhou 221116, China

2. Jiangsu Collaborative Innovation Center of Building Energy-Saving and Construction Technology, Jiangsu Vocational Institute of Architectural Technology, Xuzhou 221116, China

3. Key Laboratory of Engineering Environmental Impact and Structural Safety, China University of Mining and Technology, Xuzhou 221116, China

Abstract

Concrete in saline or coastal settings exposed to freezing temperatures is frequently affected by coupling actions of sulfate assault and freeze–thaw degradation, reducing the service life of concrete structures significantly. This study conducted an accelerated freeze–thaw cycle test in pure water and Na2SO4 solution with a mass proportion of 5% to examine the coupling impact of sulfate freeze–thaw on the frost resistance of composite limestone powder (CLP) concrete. Combined with SEM and XRD methods, the performance degradation mechanisms of composite limestone powder (CLP) concrete in coupling sulfate freeze–thaw conditions were analyzed with a microscopic point of view. The findings demonstrated that limestone powder has a filling effect but the activity is low. When the content is 10~20%, the chemical response is higher than the physical response. The pozzolanic effect of fly ash and slag can improve the pore structure and improve the compactness of concrete. The “superposition effect” of limestone powder, fly ash, and slag can improve the frost resistance of CLP concrete. The scenario of salt freezing cycles has negative effects that are worse than those of water freezing cycles on the antifreeze performance of CLP concrete, including apparent morphology, mass loss, relative dynamic modulus of elasticity, and compressive strength. Sulfate’s activation effect boosts slag’s activity effect, which significantly promotes the antifreeze performance of concrete subjected to salt frozen cycles over water frozen cycles. The freeze–thaw damage model of CLP concrete under coupling sulfate freeze–thaw is established through theorem analysis and experiment statistics, laying a theoretical framework for the popularization and use of this concrete.

Funder

Graduate Innovation Program of China University of Mining and Technology

Research Funds for JiangSu Collaborative Innovation Centre for Building Energy Saving and Construction Technology

Publisher

MDPI AG

Subject

Building and Construction,Civil and Structural Engineering,Architecture

Reference51 articles.

1. Golaszewski, J., Golaszewska, M., and Cygan, G. (2022). Performance of ordinary and self-compacting concrete with limestone after freeze-thaw cycles. Buildings, 12.

2. Junfang, H.U.O., Zhang, S., Jian, W.E.I., Qi, C.U.I., and Hua, P.A.N. (2016, January 25–26). Experimental study on impermeability of concrete mixed with limestone powder. Proceedings of the International Conference on Architectural Engineering and Civil Engineering (AECE) 2016, Singapore.

3. Durability of biomass fly ash concrete: Freezing and thawing and rapid chloride permeability tests;Wang;Fuel,2008

4. Chen, T. (2012, January 6–8). Study on full-slag concrete feasibility. Proceedings of the 2nd International Conference on Advanced Engineering Materials and Technology (AEMT), Zhuhai, China.

5. Degradation of the bond performance between composite limestone powder concrete and steel bars under a sulfate freeze-thaw environment;Wu;Constr. Build. Mater.,2023

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