吉林大学学报(工学版) ›› 2025, Vol. 55 ›› Issue (7): 2203-2211.doi: 10.13229/j.cnki.jdxbgxb.20231161
• 材料科学与工程 • 上一篇
Yao-gang TIAN1(
),Jing JIANG1,Cheng ZHAO2,Xiao-min YANG3,Jun ZHANG4,Kan JIA1
摘要:
为探究高温对水性环氧树脂(WER)改性水泥砂浆的影响,本文对经不同温度(25、100、150、200和300 ℃)处理、不同WER掺量(0%、2%、3%和4%)的改性高早强砂浆的力学性能、阻尼性能、结构和组分进行了分析。结果表明,WER会延缓水泥水化反应,降低砂浆早期强度。但随着水泥继续水化和WER固化成膜,聚合物膜联结水化产物形成三维网络结构,构成分散性阻尼单元,进而增强砂浆的抗折强度、黏结强度和阻尼性能。尤其是当WER掺量为3%时,砂浆性能更好,能够满足水泥基快速修补材料对早期强度的要求。随着温度升高,砂浆宏观性能衰减,而WER较好的耐高温性和亲水性,有利于减轻砂浆力学强度和阻尼性能的劣化,改善其高温稳定性,这一规律在低于200 ℃范围内尤其明显。
中图分类号:
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