透水混凝土中纤维素纳米原纤维:改善机械性能和耐久性

IF 3.4 3区 工程技术 Q2 CONSTRUCTION & BUILDING TECHNOLOGY Materials and Structures Pub Date : 2024-12-26 DOI:10.1617/s11527-024-02559-9
Jingchen Li, Weidong Cao, Ziqi Yan, Zunhao Zhan, Yingjian Li
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引用次数: 0

摘要

透水混凝土(PC)以其高渗透性而闻名,通常用于城市路面,有助于缓解城市热岛效应。然而,PC的低强度和耐久性限制了它的使用。本研究的目的是通过添加纤维素纳米原纤维(CNFs)来改善PC的力学性能和耐久性。结果表明,CNF显著提高了材料的抗压强度、抗弯强度和耐盐霜性能,当CNF含量为0.15%时性能最佳。在此浓度下,抗压强度和抗折强度分别提高了26.5%和25.8%,而渗透率则略微降低了10.2%。CNFs还提高了对盐诱导的冻融循环的抵抗力,减少了剥落,并保持了较高的动态弹性模量,特别是在0.1%和0.15%的剂量下。扫描电镜(SEM)分析表明,CNFs形成了更致密、更均匀的水合产物网络,增强了微观结构和界面结合。本研究证实了CNFs可以显著提高PC的力学性能和耐久性。
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Cellulose nanofibrils in pervious concrete: improving mechanical properties and durability

Pervious concrete (PC), commonly used in urban pavement, is known for its high permeability, which contributes to mitigating the urban heat island effect. However, the low strength and durability of PC limit its use. The objective of this study is to improve mechanical properties and durability of PC by adding cellulose nanofibrils (CNFs). The results showed that CNFs significantly enhanced compressive strength, flexural strength, and salt frost resistance, with optimal performance at 0.15% CNF. At this concentration, compressive and flexural strengths increased by 26.5% and 25.8%, respectively, despite a slight reduction of 10.2% in permeability. CNFs also improved resistance to salt-induced freeze–thaw cycles, reducing spalling and maintaining a higher value of the dynamic modulus of elasticity, particularly at 0.1% and 0.15% dosages. Scanning electron microscope (SEM) analyses revealed that CNFs create a denser, more uniform network of hydrated products, enhancing microstructure and interfacial bonding. This study confirms that CNFs can significantly enhance the mechanical properties and durability of PC.

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来源期刊
Materials and Structures
Materials and Structures 工程技术-材料科学:综合
CiteScore
6.40
自引率
7.90%
发文量
222
审稿时长
5.9 months
期刊介绍: Materials and Structures, the flagship publication of the International Union of Laboratories and Experts in Construction Materials, Systems and Structures (RILEM), provides a unique international and interdisciplinary forum for new research findings on the performance of construction materials. A leader in cutting-edge research, the journal is dedicated to the publication of high quality papers examining the fundamental properties of building materials, their characterization and processing techniques, modeling, standardization of test methods, and the application of research results in building and civil engineering. Materials and Structures also publishes comprehensive reports prepared by the RILEM’s technical committees.
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