raybet体育在线 院报 ›› 2025, Vol. 42 ›› Issue (4): 183-192.DOI: 10.11988/ckyyb.20240055

• 水工结构与材料 • 上一篇    下一篇

低碳超高性能混凝土单轴受压力学性能

黄乐(), 苏凯栋, 高奔浩, 池寅, 徐礼华   

  1. 武汉大学 土木建筑工程学院,武汉 430072
  • 收稿日期:2024-01-17 修回日期:2024-03-11 出版日期:2025-04-01 发布日期:2025-04-01
  • 作者简介:

    黄 乐(1990-),男,江西抚州人,副教授,博士,主要从事超高性能混凝土研究。E-mail:

  • 基金资助:
    国家自然科学基金项目(52378258); 湖北省自然科学基金项目(2022CFB604)

Mechanical Properties of Low-carbon Ultra-high Performance Concrete under Uniaxial Compression

HUANG Le(), SU Kai-dong, GAO Ben-hao, CHI Yin, XU Li-hua   

  1. School of Civil Engineering, Wuhan University, Wuhan 430072, China
  • Received:2024-01-17 Revised:2024-03-11 Published:2025-04-01 Online:2025-04-01

摘要: 为解决超高性能混凝土水泥用量成倍增加所带来的高碳排放问题,采用高炉矿渣、粉煤灰和硅灰等材料大掺量替代硅酸盐水泥,制备了一种低水泥含量的低碳超高性能混凝土(LC-UHPC)。考虑水泥替代率、钢纤维体积掺量和水胶比等3个因素,设计制作了11组共154个试件,通过不同龄期的立方体抗压试验、抗折试验与单轴受压试验研究了LC-UHPC破坏形态、基本强度与变形能力等力学性能的变化规律,并根据试验结果建立了单轴受压应力-应变全曲线数学方程。结果表明:LC-UHPC轴心受压破坏形态为剪切破坏,钢纤维掺入能明显改善LC-UHPC各项力学性能指标;与传统UHPC相比,LC-UHPC的水泥替代率最高可达70%,其28 d单轴抗压强度可达149.09 MPa;建立的轴心受压应力-应变曲线方程能够较好地预测LC-UHPC单轴受压下的力学响应全过程,可为LC-UHPC力学性能研究及其结构构件的设计计算提供有益参考。

关键词: 超高性能混凝土, 低水泥含量, 单轴受压试验, 力学性能, 应力-应变关系

Abstract:

To tackle the high carbon emissions issue resulting from doubling the cement dosage in ultra-high performance concrete (UHPC), a low-carbon ultra-high performance concrete (LC-UHPC) was developed by replacing a large proportion of Portland cement with granulated blast furnace slag, fly ash, and silica fume. Eleven groups in a total of 154 specimens were fabricated with three factors, namely, cement replace ratio, steel fiber volume content, and water-binder ratio taken into account. Through cube compression tests at different ages, flexural tests, and uniaxial compression tests, the mechanical properties of LC-UHPC, including failure patterns, basic strength, and deformation capacity, were analyzed. Based on the test results, a mathematical equation for the stress-strain curve under uniaxial compression was derived. Results indicated that the LC-UHPC displays shear failure mode under uniaxial compression. Moreover, the addition of steel fibers significantly enhances the mechanical properties of LC-UHPC. Compared with conventional UHPC, up to 70% of the cement in LC-UHPC can be replaced, and its 28-day compressive strength can reach 149.09 MPa. The established axial stress-strain equation can accurately predict the mechanical responses of LC-UHPC under uniaxial compression. This equation provides valuable insights for studying the mechanical properties of LC-UHPC and the design of related structural components.

Key words: low carbon ultra-high performance concrete, low cement content, uniaxial compression test, mechanical properties, stress-strain relation

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