硅酸盐通报 ›› 2026, Vol. 45 ›› Issue (7): 2561-2572.DOI: 10.16552/j.cnki.issn1001-1625.2025.1285
申彦利1,2(
), 魏冠超1, 王鹏1(
), 王嘉炜1, 徐磊3, 王辉3, 王志岭3, 卫爱魁3
收稿日期:2025-12-23
修订日期:2026-02-11
出版日期:2026-07-15
发布日期:2026-08-13
通信作者:
王 鹏,博士,讲师。E-mail:wangpeng269@hebeu.edu.cn作者简介:申彦利(1977—),男,博士,教授。主要从事固废路基材料的研究。E-mail:shenyanli@hebeu.edu.cn
基金资助:
SHEN Yanli1,2(
), WEI Guanchao1, WANG Peng1(
), WANG Jiawei1, XU Lei3, WANG Hui3, WANG Zhiling3, WEI Aikui3
Received:2025-12-23
Revised:2026-02-11
Published:2026-07-15
Online:2026-08-13
摘要:
为实现废旧道路混凝土再生骨料在道路基层中的资源循环利用,采用试验分析和人工智能相结合的方法,研究不同水泥掺量(3.50%、4.50%、5.50%,质量分数)和再生骨料掺量(4.15%、56.20%、78.10%、100.00%,质量分数)对废旧道路混凝土再生骨料水泥稳定碎石的最大干密度、最佳含水率、无侧限抗压强度、抗压回弹模量和劈裂强度的影响,基于机器学习与遗传算法(GA)构建再生骨料水泥稳定碎石7、90 d无侧限抗压强度预测和级配优化模型。结果表明:水泥掺量越高,再生骨料水泥稳定碎石的力学性能越好;再生骨料掺量提高会降低水泥稳定碎石的最大干密度并提高最佳含水率;适量再生骨料可提升水泥稳定碎石的7、90 d无侧限抗压强度和90 d劈裂强度,而抗压回弹模量随再生骨料掺量的增加逐渐降低,当再生骨料掺量为78.10%、水泥掺量为5.50%时,7、90 d无侧限抗压强度代表值分别为4.24、7.07 MPa,90 d劈裂强度与抗压回弹模量分别为0.64、1 925 MPa,均满足相关规范要求。根据再生骨料水泥稳定碎石力学性能的分析结果,选择随机森林模型结合遗传算法的方式进行级配优化,得到最优配合比下7 d无侧限抗压强度预测值为5.82 MPa。
中图分类号:
申彦利, 魏冠超, 王鹏, 王嘉炜, 徐磊, 王辉, 王志岭, 卫爱魁. 再生骨料水泥稳定碎石力学性能分析与最优配合比预测[J]. 硅酸盐通报, 2026, 45(7): 2561-2572.
SHEN Yanli, WEI Guanchao, WANG Peng, WANG Jiawei, XU Lei, WANG Hui, WANG Zhiling, WEI Aikui. Mechanical Properties Analysis and Optimal Mix Proportion Prediction of Cement-Stabilized Crushed Stone with Recycled Aggregate[J]. BULLETIN OF THE CHINESE CERAMIC SOCIETY, 2026, 45(7): 2561-2572.
| Aggregate | Apparent density/(g·cm-3) | Water absorption/% | Needle sheet mass fraction/% | Crushing value/% | ||||||
|---|---|---|---|---|---|---|---|---|---|---|
19.00~ 26.50 mm | 9.50~< 19.00 mm | 4.75~< 9.50 mm | 19.00~ 26.50 mm | 9.50~< 19.00 mm | 4.75~< 9.50 mm | 19.00~ 26.50 mm | 9.50~< 19.00 mm | 4.75~< 9.50 mm | 9.50~ 13.20 mm | |
| Natural aggregate | 2.777 | 2.725 | 2.736 | 1.38 | 0.49 | 0.81 | 6.9 | 8.7 | 13.9 | 23.10 |
| Recycled aggregate | 2.643 | 2.659 | 2.649 | 2.29 | 2.97 | 3.72 | 8.1 | 15.8 | 17.1 | 24.50 |
表 1 粗集料性能
Table 1 Properties of coarse aggregate
| Aggregate | Apparent density/(g·cm-3) | Water absorption/% | Needle sheet mass fraction/% | Crushing value/% | ||||||
|---|---|---|---|---|---|---|---|---|---|---|
19.00~ 26.50 mm | 9.50~< 19.00 mm | 4.75~< 9.50 mm | 19.00~ 26.50 mm | 9.50~< 19.00 mm | 4.75~< 9.50 mm | 19.00~ 26.50 mm | 9.50~< 19.00 mm | 4.75~< 9.50 mm | 9.50~ 13.20 mm | |
| Natural aggregate | 2.777 | 2.725 | 2.736 | 1.38 | 0.49 | 0.81 | 6.9 | 8.7 | 13.9 | 23.10 |
| Recycled aggregate | 2.643 | 2.659 | 2.649 | 2.29 | 2.97 | 3.72 | 8.1 | 15.8 | 17.1 | 24.50 |
| Aggregate | Apparent density/(g·cm-3) | Water absorption/% |
|---|---|---|
| Natural aggregate | 2.757 | 2.41 |
| Recycled aggregate | 2.719 | 2.74 |
表2 细集料性能
Table 2 Properties of fine aggregate
| Aggregate | Apparent density/(g·cm-3) | Water absorption/% |
|---|---|---|
| Natural aggregate | 2.757 | 2.41 |
| Recycled aggregate | 2.719 | 2.74 |
| Testing index | Chloride mass fraction/% | Stability/% | Setting time/min | Flexural strength/MPa | Compressive strength/MPa | |||
|---|---|---|---|---|---|---|---|---|
| Initial | Final | 3 d | 28 d | 3 d | 28 d | |||
| Measured value | 0.048 | 0.2 | 264 | 437 | 4.7 | Qualified | 16.8 | Qualified |
表3 P·SS 32.5钢渣矿渣硅酸盐水泥指数指标
Table 3 Index indicators of P·SS 32.5 steel slag granulated blast furnace slag portland cement
| Testing index | Chloride mass fraction/% | Stability/% | Setting time/min | Flexural strength/MPa | Compressive strength/MPa | |||
|---|---|---|---|---|---|---|---|---|
| Initial | Final | 3 d | 28 d | 3 d | 28 d | |||
| Measured value | 0.048 | 0.2 | 264 | 437 | 4.7 | Qualified | 16.8 | Qualified |
| Gradation | Cement mass fraction/% | Total recycled aggregate mass fraction/% | Recycled aggregate mass fraction of different particle sizes/% | |||
|---|---|---|---|---|---|---|
| 0~<4.75 mm | 4.75~<9.50 mm | 9.50~<19.00 mm | 19.00~26.50 mm | |||
| RACS-0 | 4.50 | 4.15 | 0 | 0 | 3.00 | 1.15 |
| RACS-1 | 4.50 | 56.20 | 27.00 | 8.00 | 12.00 | 9.20 |
| RACS-2 | 4.50 | 78.10 | 27.00 | 14.00 | 21.00 | 16.10 |
| RACS-3 | 4.50 | 100.00 | 27.00 | 20.00 | 30.00 | 23.00 |
| RACS-4 | 3.50 | 56.20 | 27.00 | 8.00 | 12.00 | 9.20 |
| RACS-5 | 3.50 | 78.10 | 27.00 | 14.00 | 21.00 | 16.10 |
| RACS-6 | 3.50 | 100.00 | 27.00 | 20.00 | 30.00 | 23.00 |
| RACS-7 | 5.50 | 56.20 | 27.00 | 8.00 | 12.00 | 9.20 |
| RACS-8 | 5.50 | 78.10 | 27.00 | 14.00 | 21.00 | 16.10 |
| RACS-9 | 5.50 | 100.00 | 27.00 | 20.00 | 30.00 | 23.00 |
表4 试件分组与材料掺量
Table 4 Specimen grouping and material content
| Gradation | Cement mass fraction/% | Total recycled aggregate mass fraction/% | Recycled aggregate mass fraction of different particle sizes/% | |||
|---|---|---|---|---|---|---|
| 0~<4.75 mm | 4.75~<9.50 mm | 9.50~<19.00 mm | 19.00~26.50 mm | |||
| RACS-0 | 4.50 | 4.15 | 0 | 0 | 3.00 | 1.15 |
| RACS-1 | 4.50 | 56.20 | 27.00 | 8.00 | 12.00 | 9.20 |
| RACS-2 | 4.50 | 78.10 | 27.00 | 14.00 | 21.00 | 16.10 |
| RACS-3 | 4.50 | 100.00 | 27.00 | 20.00 | 30.00 | 23.00 |
| RACS-4 | 3.50 | 56.20 | 27.00 | 8.00 | 12.00 | 9.20 |
| RACS-5 | 3.50 | 78.10 | 27.00 | 14.00 | 21.00 | 16.10 |
| RACS-6 | 3.50 | 100.00 | 27.00 | 20.00 | 30.00 | 23.00 |
| RACS-7 | 5.50 | 56.20 | 27.00 | 8.00 | 12.00 | 9.20 |
| RACS-8 | 5.50 | 78.10 | 27.00 | 14.00 | 21.00 | 16.10 |
| RACS-9 | 5.50 | 100.00 | 27.00 | 20.00 | 30.00 | 23.00 |
| Gradation | Cement mass fraction/% | Total recycled aggregate mass fraction/% | Maximum dry density/ (g·cm-3) | Optimal moisture mass fraction/% |
|---|---|---|---|---|
| RACS-0 | 4.50 | 4.15 | 2.381 5 | 5.64 |
| RACS-1 | 4.50 | 56.20 | 2.261 0 | 6.16 |
| RACS-2 | 4.50 | 78.10 | 2.227 3 | 6.46 |
| RACS-3 | 4.50 | 100.00 | 2.215 3 | 7.16 |
| RACS-4 | 3.50 | 56.20 | 2.258 7 | 6.04 |
| RACS-5 | 3.50 | 78.10 | 2.223 2 | 6.40 |
| RACS-6 | 3.50 | 100.00 | 2.214 3 | 7.02 |
| RACS-7 | 5.50 | 56.20 | 2.268 2 | 6.72 |
| RACS-8 | 5.50 | 78.10 | 2.240 9 | 7.16 |
| RACS-9 | 5.50 | 100.00 | 2.238 9 | 7.23 |
表 5 击实试验方案及结果
Table 5 Compaction test plan and results
| Gradation | Cement mass fraction/% | Total recycled aggregate mass fraction/% | Maximum dry density/ (g·cm-3) | Optimal moisture mass fraction/% |
|---|---|---|---|---|
| RACS-0 | 4.50 | 4.15 | 2.381 5 | 5.64 |
| RACS-1 | 4.50 | 56.20 | 2.261 0 | 6.16 |
| RACS-2 | 4.50 | 78.10 | 2.227 3 | 6.46 |
| RACS-3 | 4.50 | 100.00 | 2.215 3 | 7.16 |
| RACS-4 | 3.50 | 56.20 | 2.258 7 | 6.04 |
| RACS-5 | 3.50 | 78.10 | 2.223 2 | 6.40 |
| RACS-6 | 3.50 | 100.00 | 2.214 3 | 7.02 |
| RACS-7 | 5.50 | 56.20 | 2.268 2 | 6.72 |
| RACS-8 | 5.50 | 78.10 | 2.240 9 | 7.16 |
| RACS-9 | 5.50 | 100.00 | 2.238 9 | 7.23 |
| Gradation | Cement mass fraction/% | Total recycled aggregate mass fraction/% | 7 d unconfined compressive strength representative value/MPa | 90 d unconfined compressive strength representative value/MPa |
|---|---|---|---|---|
| RACS-0 | 4.50 | 4.15 | 4.04 | 5.03 |
| RACS-1 | 4.50 | 56.20 | 4.10 | 5.61 |
| RACS-2 | 4.50 | 78.10 | 4.18 | 6.43 |
| RACS-3 | 4.50 | 100.00 | 3.54 | 4.89 |
| RACS-4 | 3.50 | 56.20 | 3.54 | 4.90 |
| RACS-5 | 3.50 | 78.10 | 3.78 | 5.19 |
| RACS-6 | 3.50 | 100.00 | 3.19 | 4.37 |
| RACS-7 | 5.50 | 56.20 | 4.17 | 6.37 |
| RACS-8 | 5.50 | 78.10 | 4.24 | 7.07 |
| RACS-9 | 5.50 | 100.00 | 3.87 | 6.00 |
表 6 无侧限抗压强度试验结果
Table 6 Test results of unconfined compressive strength
| Gradation | Cement mass fraction/% | Total recycled aggregate mass fraction/% | 7 d unconfined compressive strength representative value/MPa | 90 d unconfined compressive strength representative value/MPa |
|---|---|---|---|---|
| RACS-0 | 4.50 | 4.15 | 4.04 | 5.03 |
| RACS-1 | 4.50 | 56.20 | 4.10 | 5.61 |
| RACS-2 | 4.50 | 78.10 | 4.18 | 6.43 |
| RACS-3 | 4.50 | 100.00 | 3.54 | 4.89 |
| RACS-4 | 3.50 | 56.20 | 3.54 | 4.90 |
| RACS-5 | 3.50 | 78.10 | 3.78 | 5.19 |
| RACS-6 | 3.50 | 100.00 | 3.19 | 4.37 |
| RACS-7 | 5.50 | 56.20 | 4.17 | 6.37 |
| RACS-8 | 5.50 | 78.10 | 4.24 | 7.07 |
| RACS-9 | 5.50 | 100.00 | 3.87 | 6.00 |
| Gradation | Cement mass fraction/% | Total recycled aggregate mass fraction/% | 90 d compressive resilience modulus/MPa |
|---|---|---|---|
| RACS-0 | 4.50 | 4.15 | 2 278 |
| RACS-1 | 4.50 | 56.20 | 2 169 |
| RACS-2 | 4.50 | 78.10 | 1 855 |
| RACS-3 | 4.50 | 100.00 | 1 616 |
| RACS-4 | 3.50 | 56.20 | 2 024 |
| RACS-5 | 3.50 | 78.10 | 1 742 |
| RACS-6 | 3.50 | 100.00 | 1 447 |
| RACS-7 | 5.50 | 56.20 | 2 258 |
| RACS-8 | 5.50 | 78.10 | 1 925 |
| RACS-9 | 5.50 | 100.00 | 1 729 |
表 7 90 d抗压回弹模量试验结果
Table 7 Test results of 90 d compressive resilience modulus
| Gradation | Cement mass fraction/% | Total recycled aggregate mass fraction/% | 90 d compressive resilience modulus/MPa |
|---|---|---|---|
| RACS-0 | 4.50 | 4.15 | 2 278 |
| RACS-1 | 4.50 | 56.20 | 2 169 |
| RACS-2 | 4.50 | 78.10 | 1 855 |
| RACS-3 | 4.50 | 100.00 | 1 616 |
| RACS-4 | 3.50 | 56.20 | 2 024 |
| RACS-5 | 3.50 | 78.10 | 1 742 |
| RACS-6 | 3.50 | 100.00 | 1 447 |
| RACS-7 | 5.50 | 56.20 | 2 258 |
| RACS-8 | 5.50 | 78.10 | 1 925 |
| RACS-9 | 5.50 | 100.00 | 1 729 |
| Gradation | Cement mass fraction/% | Total recycled aggregate mass fraction/% | 90 d splitting strength/MPa |
|---|---|---|---|
| RACS-0 | 4.50 | 4.15 | 0.54 |
| RACS-1 | 4.50 | 56.20 | 0.56 |
| RACS-2 | 4.50 | 78.10 | 0.63 |
| RACS-3 | 4.50 | 100.00 | 0.55 |
| RACS-4 | 3.50 | 56.20 | 0.51 |
| RACS-5 | 3.50 | 78.10 | 0.57 |
| RACS-6 | 3.50 | 100.00 | 0.50 |
| RACS-7 | 5.50 | 56.20 | 0.58 |
| RACS-8 | 5.50 | 78.10 | 0.64 |
| RACS-9 | 5.50 | 100.00 | 0.56 |
表8 90 d劈裂强度试验结果
Table 8 Test results of 90 d splitting strength
| Gradation | Cement mass fraction/% | Total recycled aggregate mass fraction/% | 90 d splitting strength/MPa |
|---|---|---|---|
| RACS-0 | 4.50 | 4.15 | 0.54 |
| RACS-1 | 4.50 | 56.20 | 0.56 |
| RACS-2 | 4.50 | 78.10 | 0.63 |
| RACS-3 | 4.50 | 100.00 | 0.55 |
| RACS-4 | 3.50 | 56.20 | 0.51 |
| RACS-5 | 3.50 | 78.10 | 0.57 |
| RACS-6 | 3.50 | 100.00 | 0.50 |
| RACS-7 | 5.50 | 56.20 | 0.58 |
| RACS-8 | 5.50 | 78.10 | 0.64 |
| RACS-9 | 5.50 | 100.00 | 0.56 |
| [1] |
LOTFI S, EGGIMANN M, WAGNER E, et al. Performance of recycled aggregate concrete based on a new concrete recycling technology[J]. Construction and Building Materials, 2015, 95: 243-256.
DOI URL |
| [2] |
WANG L, WANG J L, QIAN X, et al. An environmentally friendly method to improve the quality of recycled concrete aggregates[J]. Construction and Building Materials, 2017, 144: 432-441.
DOI URL |
| [3] |
BRAVO M, DE BRITO J, PONTES J, et al. Durability performance of concrete with recycled aggregates from construction and demolition waste plants[J]. Construction and Building Materials, 2015, 77: 357-369.
DOI URL |
| [4] | 肖建庄, 沈剑羽, 段珍华, 等. 工程渣土资源化基础问题与低碳技术路径[J]. 科学通报, 2023, 68(21): 2722-2736. |
| XIAO J Z, SHEN J Y, DUAN Z H, et al. Basic problems and low-carbon technical path of construction spoil recycling[J]. Chinese Science Bulletin, 2023, 68(21): 2722-2736 (in Chinese). | |
| [5] | 李洁文, 马凌宇, 李桂芹. 粉煤灰和矿粉对混凝土力学与耐久性能的影响研究[J]. 当代化工, 2021, 50(3): 545-548. |
| LI J W, MA L Y, LI G Q. Study on the influence of fly ash and mineral powder on the mechanics and durability of concrete[J]. Contemporary Chemical Industry, 2021, 50(3): 545-548 (in Chinese). | |
| [6] |
XU Y F. In-situ shear strength of compacted demolition waste[J]. Powder Technology, 2019, 352: 72-78.
DOI |
| [7] | 王婷灏. 废旧道路材料混合再生基层材料力学性能研究[J]. 甘肃科学学报, 2019, 31(2): 92-96. |
| WANG T H. Study on material mechanics properties of waste road material mixing regeneration substratum[J]. Journal of Gansu Sciences, 2019, 31(2): 92-96 (in Chinese). | |
| [8] | 王稷良, 韩彬, 王忠涛. 再生集料特性及对水稳基层材料路用性能影响的研究现状[J]. 公路工程, 2025, 50(6): 149-157+175. |
| WANG J L, HAN B, WANG Z T. The research status of recycled aggregate properties and their influence on the road performance of cement-stabilized subbase materials[J]. Highway Engineering, 2025, 50(6): 149-157+175 (in Chinese). | |
| [9] | 孙吉书, 刘岚彬, 薛丹璇, 等. 基于多源异构的建筑垃圾再生料性能影响研究[J]. 硅酸盐通报, 2025, 44(3): 1091-1101. |
| SUN J S, LIU L B, XUE D X, et al. Performance impact of construction waste recycled materials based on multi source heterogeneity[J]. Bulletin of the Chinese Ceramic Society, 2025, 44(3): 1091-1101 (in Chinese). | |
| [10] |
蒋应军, 张 宇, 易 勇, 等. 环境荷载作用下掺建筑垃圾水泥稳定碎石的性能劣化规律[J]. 公路交通科技, 2024, 41(11): 66-77.
DOI |
| JIANG Y J, ZHANG Y, YI Y, et al. Performance degradation rules of cement-stabilized macadam with construction waste recycled aggregate under environmental loads[J]. Journal of Highway and Transportation Research and Development, 2024, 41(11): 66-77 (in Chinese). | |
| [11] | 张 宇, 蒋应军, 范江涛, 等. 掺建筑垃圾水泥稳定碎石力学强度增长规律与预测模型[J]. 硅酸盐通报, 2024, 43(10): 3755-3764. |
| ZHANG Y, JIANG Y J, FAN J T, et al. Mechanical strength growth law and prediction model of cement stabilized macadam with construction waste[J]. Bulletin of the Chinese Ceramic Society, 2024, 43(10): 3755-3764 (in Chinese). | |
| [12] | 褚 锋, 苏纪壮, 王瑞冰, 等. 掺铁尾矿砂水泥稳定碎石混合料性能的影响研究[J]. 武汉理工大学学报(交通科学与工程版), 2022, 46(5): 893-897. |
| CHU F, SU J Z, WANG R B, et al. Study on the influence of iron tailings sand cement stabilized macadam mixture[J]. Journal of Wuhan University of Technology (Transportation Science & Engineering), 2022, 46(5): 893-897 (in Chinese). | |
| [13] | 王文杰. 铁尾矿作为路面基层材料的适应性研究[J]. 山西建筑, 2023, 49(2): 147-151. |
| WANG W J. Study on adaptability of iron tailings as pavement base material[J]. Shanxi Architecture, 2023, 49(2): 147-151 (in Chinese). | |
| [14] | 都 伟, 张明欣, 王彦敏, 等. 废旧沥青混合料在路面基层中的应用研究进展[J]. 材料导报, 2024, 38( ): 290-294. |
| DU W, ZHANG M X, WANG Y M, et al. Research progress on the application of waste asphalt mixture in pavement base layer[J]. Materials Reports, 2024, 38(supplement 1): 290-294 (in Chinese). | |
| [15] |
NGO T Q, NGUYEN L Q, TRAN V Q. Novel hybrid machine learning models including support vector machine with meta-heuristic algorithms in predicting unconfined compressive strength of organic soils stabilised with cement and lime[J]. International Journal of Pavement Engineering, 2023, 24(2): 2136374.
DOI URL |
| [16] | 刘凯华, 郑佳凯, 谢维力, 等. 基于机器学习的再生混凝土配合比设计方法[J]. 湖南大学学报(自然科学版), 2023, 50(9): 88-96. |
| LIU K H, ZHENG J K, XIE W L, et al. Mixture design method of recycled aggregate concrete based on machine learning[J]. Journal of Hunan University (Natural Sciences), 2023, 50(9): 88-96 (in Chinese). | |
| [17] |
TABARSA A, LATIFI N, OSOULI A, et al. Unconfined compressive strength prediction of soils stabilized using artificial neural networks and support vector machines[J]. Frontiers of Structural and Civil Engineering, 2021, 15(2): 520-536.
DOI |
| [18] |
BREIMAN L. Random forests[J]. Machine Learning, 2001, 45(1): 5-32.
DOI |
| [19] | 中华人民共和国交通运输部. 公路路面基层施工技术细则: [S]. 北京: 人民交通出版社, 2015. |
| Ministry of Transport of the People’s Republic of China. Technical guidelines for construction of highway roadbases: [S]. Beijing: China Communications Press, 2015 (in Chinese). | |
| [20] | 中华人民共和国交通运输部. 公路工程无机结合料稳定材料试验规程: [S]. 北京: 人民交通出版社, 2024. |
| Ministry of Transport of the People’s Republic of China. Test rules for stable materials of inorganic bond for highway engineering: [S]. Beijing: China Communications Press, 2024 (in Chinese). |
| [1] | 王富桓, 李艳杰, 吕浩平, 杨令强. 掺玻璃粉的改性聚丙烯纤维增强水泥基材料力学性能研究[J]. 硅酸盐通报, 2026, 45(7): 2397-2407. |
| [2] | 金子豪, 邹自勇, 贺行洋, 苏英, 陈淑琴. 湿磨碳化钢渣对磷建筑石膏性能及微观结构的影响[J]. 硅酸盐通报, 2026, 45(7): 2347-2356. |
| [3] | 肖伟, 李一航, 王栋琦, 钟祖良, 周仁, 朱开新. 硅灰-粉煤灰复掺对混凝土强度演化与抗渗性能的影响机理[J]. 硅酸盐通报, 2026, 45(7): 2419-2427. |
| [4] | 单志龙, 张云升, 张守祺, 张宇, 刘庆阳, 王友平. 钼酸钠复合溶液下预应力锈蚀钢绞线的再钝化研究[J]. 硅酸盐通报, 2026, 45(7): 2549-2560. |
| [5] | 余哲俊, 王景然, 张锦化, 韩兵强, 倪月娥. 回收风机叶片纤维与玻璃纤维对硅酸盐水泥性能的影响[J]. 硅酸盐通报, 2026, 45(7): 2408-2418. |
| [6] | 欧阳琦, 尹健, 李思娇, 陈怡豪, 覃宇航, 曾一. 复合降碱改性生态多孔混凝土抗硫酸盐侵蚀性能研究[J]. 硅酸盐通报, 2026, 45(7): 2290-2298. |
| [7] | 王月, 丛培良. 粉煤灰-电石渣-脱硫石膏胶凝材料力学性能与反应特性[J]. 硅酸盐通报, 2026, 45(7): 2438-2447. |
| [8] | 郝贠洪, 佟海岩, 王栋民, 孙浩, 杜根杰. 多因素交互作用下固废基生态矿区充填材料的制备及性能研究[J]. 硅酸盐通报, 2026, 45(7): 2466-2477. |
| [9] | 刘亚君, 薛善彬, 郑子昊, 史志浩, 王文焕. 冻融循环对硅烷改性ECC力学与吸水性能的影响[J]. 硅酸盐通报, 2026, 45(6): 1876-1891. |
| [10] | 赵天璞, 占雪芳, 刘晓军, 黄聃, 赵怡彬, 王皓磊. 基于正交试验的多元共混绿色ECC制备与性能预测[J]. 硅酸盐通报, 2026, 45(6): 1988-2001. |
| [11] | 肖庆一, 张紫腾, 马明晓, 荆文龙, 李子祎. 芦苇纤维增强流态粉煤灰的力学性能及微观结构分析[J]. 硅酸盐通报, 2026, 45(6): 2181-2190. |
| [12] | 吴言坤, 陈健, 郝建帅, 房奎圳. 钢渣-矿渣-水泥-脱硫石膏四元胶凝体系的水化硬化机理与性能优化研究[J]. 硅酸盐通报, 2026, 45(6): 2052-2062. |
| [13] | 程坤阳, 刘晓林, 冯元, 王彦鹏, 张蕊, 于本田. 多元复合固废胶凝体系的力学性能与收缩特性[J]. 硅酸盐通报, 2026, 45(6): 2041-2051. |
| [14] | 何彦辉, 王欢, 邹勇, 陈诚, 许芃, 何智浩. 碳化回收水泥混凝土粉末对泡沫混凝土性能的影响[J]. 硅酸盐通报, 2026, 45(6): 2063-2074. |
| [15] | 范鑫芳, 洪东波, 林亮亮, 郑爱钦, 王珏, 殷增斌. 微波烧结/热等静压制备Al2O3/SiCw复合陶瓷的微观组织与性能研究[J]. 硅酸盐通报, 2026, 45(6): 2113-2121. |
| 阅读次数 | ||||||
|
全文 |
|
|||||
|
摘要 |
|
|||||