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硅酸盐通报 ›› 2024, Vol. 43 ›› Issue (1): 16-26.

• 水泥混凝土 • 上一篇    下一篇

碳酸钙晶须混杂聚乙烯纤维增强水泥基复合材料力学性能研究

陈月顺, 汤成宇   

  1. 湖北工业大学土木建筑与环境学院,武汉 434000
  • 收稿日期:2023-07-21 修订日期:2023-09-21 出版日期:2024-01-15 发布日期:2024-01-16
  • 通信作者: 汤成宇,硕士研究生。E-mail:tcy17786534740@163.com
  • 作者简介:陈月顺(1975—),男,博士,教授。主要从事高性能混凝土方面的研究。E-mail:yueshunchen@163.com

Mechanical Properties of Calcium Carbonate Whisker Hybrid Polyethylene Fiber Reinforced Cement-Based Composite

CHEN Yueshun, TANG Chengyu   

  1. School of Civil Engineering, Architecture and Environment, Hubei University of Technology, Wuhan 434000, China
  • Received:2023-07-21 Revised:2023-09-21 Online:2024-01-15 Published:2024-01-16

摘要: 为研究碳酸钙晶须掺量对聚乙烯纤维增强水泥基复合材料(PE-ECC)力学性能及微观结构的影响,设计了4组不同碳酸钙晶须掺量的PE-ECC试件,对其进行抗压性能试验、抗拉性能试验、三点弯曲断裂性能试验,并使用XRD、SEM、NMR技术对其微观结构进行研究。结果表明,碳酸钙晶须对PE-ECC有增强增韧作用,随着碳酸钙晶须掺量增加,这种增强增韧作用呈先增大后减小的趋势,当碳酸钙晶须掺量为1%(体积分数)时,PE-ECC的抗压性能、拉伸性能、断裂性能提升最佳。适量的碳酸钙晶须能填充基体,减少少害孔及多害孔数量,改善孔隙结构。

关键词: 水泥基复合材料, 碳酸钙晶须, PE纤维, 拉伸性能, 断裂性能, 微观结构

Abstract: In order to study the influence of calcium carbonate whisker with different content on the mechanical properties and microstructure of polyethylene fiber reinforced cement-based composite(PE-ECC), four groups of PE-ECC specimens with different content of calcium carbonate whisker were designed, and the compressive properties, tensile properties and three-point bending fracture properties were tested on them. The microstructure was studied by XRD, SEM and NMR. The results show that calcium carbonate whisker can strengthen and toughen PE-ECC. With the increase of calcium carbonate whisker content, the strengthening and toughening effects first increase and then decrease. When the content of calcium carbonate whisker is 1% (volume fraction), the compressive properties, tensile properties and fracture properties of PE-ECC are improved best. Appropriate amount of calcium carbonate whisker can fill the matrix, reduce the number of less and more damaged pores, and improve pore structure.

Key words: cement-based composite, calcium carbonate whisker, PE fiber, tensile property, fracture property, microstructure

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