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低剂量醋酸乙烯酯-乙烯对普通硅酸盐水泥-硫铝酸盐水泥二元复合快速修补砂浆的改性机理

Modification Mechanism of Low-Dosage Vinyl Acetate-Ethylene on Ordinary Portland Cement-Sulfoaluminate Cement Binary Blended Rapid Repair Mortar.

作者信息

Wang Hecong, Zhu Yuxue, Li Ting, Li Xiaoning, Peng Shuai, Guo Jinzhu, Pei Xuqiang, Zhong Congchun, Yang Yihang, Ma Qiang, Zhang Zhonglun, Wu Minghui, Zhang Qunchao, Shi De'an, Song Zuobao

机构信息

CNBM Zhongyan Technology Co., Ltd., Beijing 100024, China.

China Building Materials Academy, Beijing 100024, China.

出版信息

Polymers (Basel). 2025 May 28;17(11):1501. doi: 10.3390/polym17111501.

Abstract

This study developed a vinyl acetate-ethylene rapid repair mortar (VAE-RRM) by using a binary blended cementitious system (ordinary Portland cement and sulfoaluminate cement) and vinyl acetate-ethylene (VAE) redispersible polymer powder. The effects of the polymer-to-cement ratio (P/C: 0~2.0%) on setting time, mechanical properties, interfacial bonding, and microstructure were systematically investigated. The results reveal that VAE delayed cement hydration via physical encapsulation and chemical chelation, extending the initial setting time to 182 min at P/C = 2.0%. At the optimal P/C = 0.9%, a synergistic organic-inorganic network enhanced flexural strength (14.62 MPa at 28 d, 34.0% increase) and interfacial bonding (2.74 MPa after interface treatment), though compressive strength decreased to 65.7 MPa due to hydration inhibition. Excessive VAE (P/C ≥ 1.5%) suppressed AFt/C-S-H growth, increasing harmful pores (>1 μm) and degrading performance. Microstructural analysis via scanning electron microscopy (SEM) and mercury intrusion porosimetry (MIP) demonstrates that VAE films bridged hydration products, filled interfacial transition zones (ITZ), and refined pore structures, reducing the most probable pore size from 62.8 nm (reference) to 23.5 nm. VAE-RRM 3 (P/C = 0.9%) exhibited rapid hardening (initial setting time: 75 min), high substrate recovery (83.3%), and low porosity (<10%), offering an efficient solution for urban infrastructure repair. This work elucidates the dual mechanisms of pore refinement and interface reinforcement driven by VAE, providing theoretical guidance for designing high-performance repair materials.

摘要

本研究通过使用二元混合胶凝体系(普通硅酸盐水泥和硫铝酸盐水泥)和醋酸乙烯 - 乙烯(VAE)可再分散聚合物粉末,开发了一种醋酸乙烯 - 乙烯快速修复砂浆(VAE - RRM)。系统研究了聚合物与水泥之比(P/C:0~2.0%)对凝结时间、力学性能、界面粘结和微观结构的影响。结果表明,VAE通过物理包裹和化学螯合延迟水泥水化,在P/C = 2.0%时将初凝时间延长至182分钟。在最佳P/C = 0.9%时,协同的有机 - 无机网络提高了抗折强度(28天龄期时为14.62 MPa,提高了34.0%)和界面粘结(界面处理后为2.74 MPa),尽管由于水化抑制抗压强度降至65.7 MPa。过量的VAE(P/C≥1.5%)抑制了钙矾石/ C - S - H的生长,增加了有害孔隙(>1μm)并使性能下降。通过扫描电子显微镜(SEM)和压汞法(MIP)进行的微观结构分析表明,VAE薄膜桥接了水化产物,填充了界面过渡区(ITZ)并细化了孔隙结构,将最可几孔径从62.8 nm(参考值)减小到23.5 nm。VAE - RRM 3(P/C = 0.9%)表现出快速硬化(初凝时间:75分钟)、高基体恢复率(83.3%)和低孔隙率(<10%),为城市基础设施修复提供了一种有效的解决方案。这项工作阐明了VAE驱动的孔隙细化和界面增强的双重机制,为设计高性能修复材料提供了理论指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d73/12156995/9e3e0949d3c0/polymers-17-01501-g001.jpg

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