Wang Yuxuan, Wu Jiehao
School of Civil Engineering and Architecture, Anhui University of Science and Technology, Huainan 232001, China.
Zhiruiyuan Traffic Consultation Limited Company, Chongqing 400030, China.
Polymers (Basel). 2024 Sep 22;16(18):2665. doi: 10.3390/polym16182665.
This study designs and uses water-borne epoxy resin (WBER) and curing agent (CA) to modify traditional cement-based grouting for tunnels. The purpose of this paper is to analyze the rheological and mechanical properties of composite grouting with different ratios of WBER and CA and analyze the modification mechanism by means of chemical characterization to explore the feasibility of WBER as a high-performance modifier for tunnel construction. The composite grouting is prepared by mixing cement paste with polymer emulsion. A series of experiments was carried out to investigate the effects of WBER and CA, including the slump test, viscosity, rheological curve, setting time, bleeding rate, grain size distribution, zeta potential, compressive and splitting tensile strength, X-ray diffraction(XRD), Fourier-transform infrared spectroscopy (FT-IR), and scanning electron microscopy (SEM), on the composite grout. The results show that WBER improves grout fluidity, which decreases in combination with CA, while also reducing the average particle size of the composite grout for a more rational size distribution. Optimal uniaxial (38.9%) and splitting tensile strength (48.7%) of the grout are achieved with a WBER to CA mass ratio of 2:1. WBER accelerates cement hydration, with the modification centered on the reaction between free Ca and polymer-OH, significantly enhancing the strength, fluidity, and stability of the polymer-modified composite grout compared to traditional cement-based grouting.
本研究设计并使用水性环氧树脂(WBER)和固化剂(CA)对传统的隧道水泥基灌浆材料进行改性。本文旨在分析不同比例的WBER和CA组成的复合灌浆材料的流变性能和力学性能,并通过化学表征分析改性机理,以探索WBER作为隧道施工高性能改性剂的可行性。复合灌浆材料是通过将水泥浆与聚合物乳液混合制备而成。开展了一系列实验来研究WBER和CA的影响,包括坍落度试验、粘度、流变曲线、凝结时间、泌水率、粒度分布、zeta电位、抗压强度和劈裂抗拉强度、X射线衍射(XRD)、傅里叶变换红外光谱(FT-IR)以及扫描电子显微镜(SEM)对复合灌浆材料的影响。结果表明,WBER提高了灌浆材料的流动性,与CA结合后流动性降低,同时还减小了复合灌浆材料的平均粒径,使其粒度分布更合理。当WBER与CA的质量比为2:1时,灌浆材料的单轴抗压强度(38.9%)和劈裂抗拉强度(48.7%)达到最佳。WBER加速了水泥水化,改性作用主要集中在游离Ca与聚合物-OH之间的反应,与传统水泥基灌浆材料相比,显著提高了聚合物改性复合灌浆材料的强度、流动性和稳定性。