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硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (7): 2408-2418.DOI: 10.16552/j.cnki.issn1001-1625.2026.0062

• 资源综合利用 • 上一篇    下一篇

回收风机叶片纤维与玻璃纤维对硅酸盐水泥性能的影响

余哲俊1,2(), 王景然1,2(), 张锦化1,2, 韩兵强1,2, 倪月娥1,2   

  1. 1.武汉科技大学先进耐火材料国家重点实验室,武汉 430081
    2.武汉科技大学材料科学与工程学院,武汉 430081
  • 收稿日期:2026-01-15 修订日期:2026-03-02 出版日期:2026-07-15 发布日期:2026-08-13
  • 通信作者: 王景然,博士,副教授。E-mail:wangjingran@wust.edu.cn
  • 作者简介:余哲俊(2000—),男,硕士研究生。主要从事水泥材料方面的研究。E-mail:2456120680@qq.com
  • 基金资助:
    国家自然科学基金项目(U21A2058);国家自然科学基金项目(51802235);湖北省科学技术厅2023年科技人才服务企业项目(2023DJC087);湖北省科技计划项目(2024CSA075)

Effects of Recycled Wind Turbine Blade Fibers and Glass Fibers on Properties of Portland Cement

YU Zhejun1,2(), WANG Jingran1,2(), ZHANG Jinhua1,2, HAN Bingqiang1,2, NI Yue’e1,2   

  1. 1.State Key Laboratory of Advanced Refractories,Wuhan University of Science and Technology,Wuhan 430081,China
    2.School of Materials Science and Engineering,Wuhan University of Science and Technology,Wuhan 430081,China
  • Received:2026-01-15 Revised:2026-03-02 Published:2026-07-15 Online:2026-08-13

摘要:

为解决废弃风机叶片的固废处理难题,并探究其在建筑材料中的高价值化利用潜力,本文对比分析了不同掺量(0.5%、1.0%、1.5%,质量分数)的回收风机叶片纤维(RWTBF)和玻璃纤维对硅酸盐水泥水化进程的影响,重点探究了两种纤维对水泥基体力学性能和显微结构的作用规律。结果表明,两种纤维的引入均延长了水泥的初凝和终凝时间,对早期水化过程产生了一定缓凝作用。在力学性能方面,回收风机叶片纤维表现出更显著的增强效果。28 d龄期时,添加1.5%回收纤维组的抗折强度达11.7 MPa,显著优于对照组的8.8 MPa及同等掺量玻璃纤维组的9.4 MPa。同时,相较于对照组68.7 MPa的抗压强度,添加1.5%回收纤维组提升至71.4 MPa,同等掺量的玻璃纤维组的抗压强度提升至70.9 MPa。微观结构分析显示,与玻璃纤维相比,回收风机叶片纤维在水泥基体中构建了更有效的网络结构,从而大幅提高了净浆的抗折强度。回收风机叶片纤维用于水泥胶凝材料不仅能有效提升材料性能,还为解决风电废弃物的高值化回收利用提供了可行途径。

关键词: 硅酸盐水泥, 回收风机叶片纤维, 玻璃纤维, 水化产物, 力学性能, 显微结构

Abstract:

To tackle the disposal dilemma of decommissioned wind turbine blades and explore their potential for high-value utilization in construction materials, this study comparatively analyzed the effects of recycled wind turbine blade fibers (RWTBF) and glass fibers at different dosages (0.5%, 1.0%, and 1.5%, mass fraction) on the hydration process of Portland cement. The research focused on the effects of these two fiber types on the mechanical properties and microstructure of the cement matrix. The results indicate that the incorporation of both fibers prolongs the initial and final setting time of the cement, exerting a slight retarding effect on the early hydration process. Regarding mechanical performance, RWTBF demonstrates a more pronounced reinforcing effect. At 28 d, the specimens with 1.5% RWTBF achieve a peak flexural strength of 11.7 MPa, significantly outperforming the 8.8 MPa of the control group and the 9.4 MPa of the equivalent glass fiber group. Concurrently, compared to the baseline compressive strength of 68.7 MPa for the control group, the compressive strength of the 1.5% RWTBF group increases to 71.4 MPa, while that of the equivalent glass fiber group rises to 70.9 MPa. Microstructural analysis reveals that, compared to glass fibers, RWTBF constructs a more effective network structure within the cement matrix, thereby substantially enhancing the flexural strength of the paste. In conclusion, the application of RWTBF in cementitious materials not only effectively improves material performance but also provides a viable pathway for the high-value recycling of wind energy waste.

Key words: Portland cement, recycled wind turbine blade fiber, glass fiber, hydration product, mechanical property, microstructure

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