硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (4): 1445-1458.DOI: 10.16552/j.cnki.issn1001-1625.2025.0923
苑晓青1,2(
), 赵祥铭1,2, 牛岑岑1,2(
), 刘田田1,2, 勾乙林1,2
收稿日期:2025-09-16
修订日期:2025-10-29
出版日期:2026-04-20
发布日期:2026-05-14
通信作者:
牛岑岑,高级工程师。E-mail:niucencen@jlu.edu.cn作者简介:苑晓青(1984—),女,教授。主要从事土体工程地质方面的研究。E-mail:yuanxiaoqing@jlu.edu.cn
基金资助:
YUAN Xiaoqing1,2(
), ZHAO Xiangming1,2, NIU Cencen1,2(
), LIU Tiantian1,2, GOU Yilin1,2
Received:2025-09-16
Revised:2025-10-29
Published:2026-04-20
Online:2026-05-14
摘要:
针对吉林省延边地区膨胀土因胀缩变形与力学性能劣化引发的工程地质灾变问题,本文以电石渣为固化材料开展膨胀土改良研究。通过自由膨胀率、无荷载膨胀率和膨胀力试验探讨电石渣改良膨胀土的膨胀特性,通过无侧限抗压强度、直接剪切和水稳定性试验研究电石渣改良膨胀土强度和水稳定特性,通过界限含水率、电导率、pH值、粒度分布、X射线衍射和扫描电子显微镜测试探讨电石渣改良膨胀土机制。结果表明:掺入电石渣能抑制膨胀土的膨胀特性,提升土体的强度和水稳定性,8%(质量分数)的电石渣改良效果最佳;电石渣与膨胀土发生离子交换反应,颗粒发生絮凝团聚,促使改良膨胀土的黏土颗粒含量降低,砂粒含量增加,塑性指数降低;电石渣的高pH值为火山灰反应提供适宜的碱性环境,促进了水化硅酸钙和水化硅铝酸钙的生成;碳酸化生成的碳酸钙与水化产物共同作用,通过胶结和硬化土颗粒形成致密的整体结构,从而提高改良膨胀土的强度。
中图分类号:
苑晓青, 赵祥铭, 牛岑岑, 刘田田, 勾乙林. 电石渣改良膨胀土工程特性与微观机理研究[J]. 硅酸盐通报, 2026, 45(4): 1445-1458.
YUAN Xiaoqing, ZHAO Xiangming, NIU Cencen, LIU Tiantian, GOU Yilin. Engineering Characteristics and Microscopic Mechanism of Expansive Soil Improved by Carbide Slag[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2026, 45(4): 1445-1458.
| Natural water content/% | Liquidlimit/% | Plasticlimit/% | Plasticityindex/% | Maximum dry density/(g·cm-3) | Optimalmoisturecontent/% | Naturaldensity/(g·cm-3) | Freeexpansion rate/% | pH value |
|---|---|---|---|---|---|---|---|---|
| 20.61 | 50.29 | 25.07 | 25.22 | 1.675 | 19.513 | 2.02 | 71 | 7.3 |
表1 膨胀土的基本物理化学指标
Table 1 Basic physical and chemical indicators of expansive soil
| Natural water content/% | Liquidlimit/% | Plasticlimit/% | Plasticityindex/% | Maximum dry density/(g·cm-3) | Optimalmoisturecontent/% | Naturaldensity/(g·cm-3) | Freeexpansion rate/% | pH value |
|---|---|---|---|---|---|---|---|---|
| 20.61 | 50.29 | 25.07 | 25.22 | 1.675 | 19.513 | 2.02 | 71 | 7.3 |
| Composition | Illite-smectite mixed layer | Illite | Kaolinite | Quartz | K-feldspar | Plagioclase | Hematite |
|---|---|---|---|---|---|---|---|
| Mass fraction/% | 29.1 | 8.5 | 1.2 | 38.1 | 9.5 | 13.0 | 0.6 |
表2 膨胀土的矿物成分
Table 2 Mineral composition of expansive soil
| Composition | Illite-smectite mixed layer | Illite | Kaolinite | Quartz | K-feldspar | Plagioclase | Hematite |
|---|---|---|---|---|---|---|---|
| Mass fraction/% | 29.1 | 8.5 | 1.2 | 38.1 | 9.5 | 13.0 | 0.6 |
| Degree of expansion | Free expansion rate/% | Montmorillonite content/% | Cation exchange capacity/(mmol·kg-1) |
|---|---|---|---|
| Strong | ≥90 | ≥27 | ≥360 |
| Moderate | 60~90 | 17~27 | 260~360 |
| Weak | 40~60 | 7~17 | 170~260 |
表3 膨胀土的膨胀潜势分级
Table 3 Expansive potential classification of expansive soil
| Degree of expansion | Free expansion rate/% | Montmorillonite content/% | Cation exchange capacity/(mmol·kg-1) |
|---|---|---|---|
| Strong | ≥90 | ≥27 | ≥360 |
| Moderate | 60~90 | 17~27 | 260~360 |
| Weak | 40~60 | 7~17 | 170~260 |
| Composition | SiO2 | Fe2O3 | Al2O3 | CaO | MgO | SO3 | Loss on ignition | Moisture | Other |
|---|---|---|---|---|---|---|---|---|---|
| Mass fraction/% | 1.53 | 0.45 | 1.93 | 67.95 | 0 | 0.31 | 25.75 | 0.50 | 1.58 |
表4 电石渣的主要化学成分
Table 4 Main chemical composition of carbide slag
| Composition | SiO2 | Fe2O3 | Al2O3 | CaO | MgO | SO3 | Loss on ignition | Moisture | Other |
|---|---|---|---|---|---|---|---|---|---|
| Mass fraction/% | 1.53 | 0.45 | 1.93 | 67.95 | 0 | 0.31 | 25.75 | 0.50 | 1.58 |
| CS content/% | Strength of specimen after28 d of curing/kPa | Strength after immersion for 1 d/kPa | Water stabilitycoefficient/% |
|---|---|---|---|
| 2 | 389 | 124 | 31.9 |
| 4 | 749 | 458 | 61.1 |
| 6 | 1 187 | 847 | 71.4 |
| 8 | 1 342 | 1 039 | 77.4 |
表5 水稳定性试验结果
Table 5 Water stability test results
| CS content/% | Strength of specimen after28 d of curing/kPa | Strength after immersion for 1 d/kPa | Water stabilitycoefficient/% |
|---|---|---|---|
| 2 | 389 | 124 | 31.9 |
| 4 | 749 | 458 | 61.1 |
| 6 | 1 187 | 847 | 71.4 |
| 8 | 1 342 | 1 039 | 77.4 |
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