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Ultraductile waterborne epoxy-concrete composite repair material: Epoxy-fiber synergistic effect on flexural and tensile performance.

Authors :
Pang, Bo
Jin, Zuquan
Zhang, Yunsheng
Xu, Lei
Li, Mengyuan
Wang, Chencui
Zhang, Yu
Yang, Yane
Zhao, Peng
Bi, Jinxu
Zhu, Weiwei
Shen, Yang
Liu, Guojian
Zhu, Panpan
Song, Xiaoyun
Source :
Cement & Concrete Composites. May2022, Vol. 129, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

With the extension of service time, infrastructure is in growing urgency for repair and reinforcement due to its deterioration in safety and durability over the years. Normal cement concrete has shortcomings, e.g., high brittleness and low flexural-tensile strength, that fail to meet the requirements of construction repair. In this paper, a novel waterborne epoxy-concrete composite repair material (WECM) was prepared by using self-synthesized water-based epoxy resin based on the molecular structure-activity relationship. The mechanisms of waterborne epoxy (WEP) and WEP-fiber synergy on the improvement of concrete performance were clarified. The results show that the defects of high brittleness and poor ductility of concrete are significantly improved by WEP and that the ductility of WECM is increased by 300%–600% compared with the control concrete. The fiber and WEP in the WECM exhibited a synergistic effect on the tensile strength, ductility, and crack resistance of concrete in which the fiber coating layer mixed with WEP and embedded cement particles (inlay) provided fiber protection as well as an interfacial bonding enhancement. The P/C of 0.2 is the turning point of the flexural and tensile strength of the WECM, which is related to the continuous phase formation of the WEP-interpenetrating polymer network (WEP-IPN). [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09589465
Volume :
129
Database :
Academic Search Index
Journal :
Cement & Concrete Composites
Publication Type :
Academic Journal
Accession number :
156287508
Full Text :
https://doi.org/10.1016/j.cemconcomp.2022.104463