研究机械性能和孔隙结构的进化过程,蒸汽固化高强度混凝土在冷解周期下的研究
Runfang Zhou1, Haitao Mao2, Shuai Yang1
1College of Urban and Rural Construction, Shanxi Agricultural University, Taigu, 030801, Shanxi, China.
Scientific reports
|November 11, 2024
概括
蒸汽固化通过增加孔隙性,对高强度混凝土 (HC) 的抗性产生负面影响. 与标准固化混凝土相比,蒸汽固化混凝土在冷解周期中表现出更大的损伤.
科学领域:
- 土木工程 土木工程是指土木工程.
- 材料科学 材料科学 材料科学
- 混凝土技术 混凝土技术
背景情况:
- 高强度混凝土 (HC) 被广泛使用,但其孔隙结构对环境压力下性能的影响尚未完全理解.
- 固化条件和冷解周期对HC孔隙结构演变的影响需要进一步研究.
研究的目的:
- 在不同的固化条件下系统地研究HC的抗性.
- 分析孔隙结构的演变及其在冷解周期期间对机械性能的影响.
- 在HC中使用碎形维度分析评估冷解损伤.
主要方法:
- 在标准和蒸汽固化条件下,将HC标本暴露在结解周期中.
- 测量质量损失率,压力强度和相对动态弹性模量.
- 使用低场核磁共振 (NMR) 和碎形维度分析孔隙结构演变.
主要成果:
- 蒸汽固化方案增加了HC的孔隙性,对抗的耐寒性产生了负面影响.
- 蒸汽固化高强度混凝土 (SMHC) 经过冷解周期后,比标准固化高强度混凝土 (SDHC) 具有更高的降解率和更大的恶化.
- 孔隙结构的变化,量化为碎形维度,与机械性能降解相关.
结论:
- 固化条件显著影响HC孔隙结构和随后的抗能力.
- 与标准固化相比,蒸汽固化导致HC更容易受到冷解损伤.
- 了解毛孔结构的演变对于预测和减轻HC结解损害至关重要.
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