硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (7): 2250-2259.DOI: 10.16552/j.cnki.issn1001-1625.2026.0059
收稿日期:2026-01-16
修订日期:2026-02-10
出版日期:2026-07-15
发布日期:2026-08-13
通信作者:
张 博,博士,副教授。E-mail:zbbjxauat522@126.com作者简介:马 越(2001—),男,硕士研究生。主要从事混凝土耐久性方面的研究。E-mail:312303482@qq.com
基金资助:
MA Yue(
), ZHANG Bo(
), WU Shoujun, LIU Yanyu, LIU Biao, HE Wei
Received:2026-01-16
Revised:2026-02-10
Published:2026-07-15
Online:2026-08-13
摘要:
寒区海洋环境下,混凝土常受氯盐侵蚀、冻融及干湿循环耦合作用,对混凝土结构安全造成严重威胁。本文通过盐冻循环、盐冻-干湿循环试验,研究了不同环境下普通混凝土(NC)与钢纤维混凝土(SFRC)的质量损失率、相对动弹性模量、抗折强度损失率和弯曲韧性演变规律,在此基础上结合SEM微观分析,探究SFRC在盐冻-干湿循环下的损伤机理。结果表明,盐冻-干湿循环会显著加速混凝土性能的劣化,盐冻-干湿循环4次后,NC的相对动弹性模量降至60%以下,NC与SFRC的抗折强度分别降低33.3%与29.5%,钢纤维的加入能提高混凝土在盐冻-干湿环境下的耐久性。SFRC的弯曲韧性随循环次数的增加而下降,盐冻-干湿循环4次后其峰值荷载下降27.6%,双峰特征趋于消失,纤维-水泥界面过渡区的劣化是影响其弯曲性能的主要因素。盐冻-干湿循环形成的裂缝扩展、侵蚀离子扩散、化学侵蚀的交替过程造成混凝土物理力学性能的退化。
中图分类号:
马越, 张博, 吴守军, 刘彦钰, 刘彪, 贺维. 盐冻-干湿循环下钢纤维混凝土耐久性研究[J]. 硅酸盐通报, 2026, 45(7): 2250-2259.
MA Yue, ZHANG Bo, WU Shoujun, LIU Yanyu, LIU Biao, HE Wei. Durability Analysis of Steel Fiber Reinforced Concrete under Coupled Salt Freeze-Thaw and Dry-Wet Cycles[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2026, 45(7): 2250-2259.
| Fiber type | Length/mm | Length-to-diameter ratio | Cross-sectional area/mm2 | Tensile strength/MPa |
|---|---|---|---|---|
| Corrugated steel fiber | 42.76 | 47.74 | 0.648 | 550 |
表1 钢纤维基本参数
Table 1 Basic properties of steel fibers
| Fiber type | Length/mm | Length-to-diameter ratio | Cross-sectional area/mm2 | Tensile strength/MPa |
|---|---|---|---|---|
| Corrugated steel fiber | 42.76 | 47.74 | 0.648 | 550 |
| Sample No. | Mix proportion/(kg·m-3) | |||||
|---|---|---|---|---|---|---|
| Water | Cement | Fine aggregate | Coarse aggregate | Superplasticizer | Corrugated steel fiber | |
| NC | 180 | 360 | 802 | 1 108 | 2.16 | 0 |
| SFRC | 180 | 360 | 842 | 912 | 5.04 | 152 |
表2 试件配合比
Table 2 Mix proportion of specimens
| Sample No. | Mix proportion/(kg·m-3) | |||||
|---|---|---|---|---|---|---|
| Water | Cement | Fine aggregate | Coarse aggregate | Superplasticizer | Corrugated steel fiber | |
| NC | 180 | 360 | 802 | 1 108 | 2.16 | 0 |
| SFRC | 180 | 360 | 842 | 912 | 5.04 | 152 |
| Sample No. | Cycling regime |
|---|---|
| F-NC/F-SFRC | Salt freeze-thaw cycles |
| FD-NC/FD-SFRC | Coupled salt freeze-thaw-dry-wet cycles |
表3 试件编号及循环制度
Table 3 Specimen numbering and cycling system
| Sample No. | Cycling regime |
|---|---|
| F-NC/F-SFRC | Salt freeze-thaw cycles |
| FD-NC/FD-SFRC | Coupled salt freeze-thaw-dry-wet cycles |
图10 不同环境下钢纤维与基体界面过渡区的SEM照片及EDS点扫结果
Fig.10 SEM images and EDS point scan result of steel fiber-matrix interfacial transition zone under different environments
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