|本期目录/Table of Contents|

[1]王 欢,曹素娟,李宝宝.不同固结条件下改良弱膨胀土微观分析[J].建筑科学与工程学报,2023,40(04):163-170.[doi:10.19815/j.jace.2021.08038]
 WANG Huan,CAO Sujuan,LI Baobao.Microscopic analysis of improved weak expansive soil under different consolidation conditions[J].Journal of Architecture and Civil Engineering,2023,40(04):163-170.[doi:10.19815/j.jace.2021.08038]
点击复制

不同固结条件下改良弱膨胀土微观分析(PDF)
分享到:

《建筑科学与工程学报》[ISSN:1673-2049/CN:61-1442/TU]

卷:
40卷
期数:
2023年04期
页码:
163-170
栏目:
岩土工程
出版日期:
2023-07-10

文章信息/Info

Title:
Microscopic analysis of improved weak expansive soil under different consolidation conditions
文章编号:
1673-2049(2023)04-0163-08
作者:
王 欢,曹素娟,李宝宝
(河南大学 土木建筑学院,河南 开封 475004)
Author(s):
WANG Huan, CAO Sujuan, LI Baobao
(School of Civil and Architectural Engineering, Henan University, Kaifeng 475004, Henan, China)
关键词:
改良膨胀土 粉土质砂 微观特性 分形维数
Keywords:
improved expansive soil silty sand microscopic characteristic fractal dimension
分类号:
TU443
DOI:
10.19815/j.jace.2021.08038
文献标志码:
A
摘要:
为研究黄泛区粉土质砂改良新乡地区弱膨胀土的改良效果,利用固结试验以及环境扫描电子显微镜试验分析了膨胀土及粉土质砂改良膨胀土的固结压缩特性及微观结构特性,对不同固结压力下的膨胀土、改良膨胀土微观结构进行定性分析,通过IPP和MATLAB软件对土体孔隙分形变化特征做定量分析。结果表明:土体的压缩特性主要与土体内部颗粒间排列形式、紧密程度及孔隙的分布等有关,随着固结压力的逐级增大,两种土样的孔隙比、压缩系数均呈现逐渐减小的趋势,且同一固结压力下改良膨胀土的孔隙比小于膨胀土,压缩系数大于膨胀土,表明改良膨胀土的结构压缩性优于膨胀土; 对不同试验条件下的微观结构进行对比分析发现,两种土样孔隙分布具有明显的分形特性,在一定范围内,随着固结压力的逐级增大,膨胀土、改良膨胀土的孔隙分形维数逐渐增大,且改良膨胀土的分形维数大于膨胀土,但变化范围小于膨胀土,说明改良膨胀土内部孔隙结构分布复杂、结构更稳定,黄泛区粉土质砂可以显著改善新乡地区弱膨胀土的固结压缩特性。
Abstract:
In order to study the improvement effect of silty sand on weak expansive soil in Xinxiang area, the consolidation compression characteristics and microstructure characteristics of expansive soil and silty sand modified expansive soil were analyzed by consolidation test and environmental scanning electron microscope test. The microstructure of expansive soil and modified soil under different consolidation pressures was qualitatively analyzed. The fractal variation characteristics of soil pores were quantitatively analyzed by IPP and MATLAB software. The results show that the compression characteristics of soil are mainly related to the arrangement form, compactness and pore distribution of particles in the soil. With the gradual increase of consolidation pressure, the void ratio and compression coefficient of the two kinds of soil samples show a decreasing trend, and the void ratio of the improved expansive soil is less than that of the expansive soil under the same consolidation pressure, while the compression coefficient is greater than that of the expansive soil, which indicates that the structural compressibility of the improved expansive soil is better than that of the expansive soil. Through the comparative analysis of the microstructure under different test conditions, it is found that the pore distribution of two kinds of soil samples has obvious fractal characteristics. Within a certain range, with the gradual increase of consolidation pressure, the pore fractal dimension of expansive soil and improved expansive soil increases gradually, the fractal dimension of improved expansive soil is greater than that of expansive soil, but the variation range is less than that of expansive soil, which indicates that the pore structure distribution of improved expansive soil is complex and the structure is more stable. The silt sand in the Yellow River flooding area can significantly improve the consolidation and compression characteristics of weak expansive soil in Xinxiang area.

参考文献/References:

[1] 董均贵.干湿循环影响下膨胀土孔隙结构的核磁共振试验研究[D].广州:华南理工大学,2020.
DONG Jungui.Nuclear magnetic resonance test and analysis on pore structure of expansive soil effected by drying-wetting cycle[D].Guangzhou:South China University of Technology,2020.
[2]江 杰,侯凯文,欧孝夺,等.膨胀土地基中单桩承载特性非线性分析[J].应用基础与工程科学学报,2021,29(3):741-751.
JIANG Jie,HOU Kaiwen,OU Xiaoduo,et al.Nonlinear analysis of bearing characteristics of single pile in expansive soil[J].Journal of Basic Science and Engineering,2021,29(3):741-751.
[3]庄心善,周睦凯,陶高梁,等.循环荷载下发泡聚苯乙烯改良膨胀土动弹性模量与阻尼比试验研究[J].岩土力学,2021,42(9):2427-2436.
ZHUANG Xinshan,ZHOU Mukai,TAO Gaoliang,et al.Experimental study of dynamic elastic modulus and damping ratio of improved expansive soil under cyclic loading by expanded polystyrene[J].Rock and Soil Mechanics,2021,42(9):2427-2436.
[4]安爱军,廖靖云.基于核磁共振和扫描电镜的蒙内铁路膨胀土改良细观结构研究[J].岩土工程学报,2018,40(增2):152-156.
AN Aijun,LIAO Jingyun.Modified mesostructure of standard gange railway expansive soils of Mombasa-Nairobi based on nuclear magnetic resonance and scanning electron microscope[J].Chinese Journal of Geotechnical Engineering,2018,40(S2):152-156.
[5]刘祖强,罗红明,郑 敏,等.南水北调渠坡膨胀土胀缩特性及变形模型研究[J].岩土力学,2019,40(增1):409-414.
LIU Zuqiang,LUO Hongming,ZHENG Min,et al.Study on expansion-shrinkage characteristics and deformation model for expansive soils in canal slope of South-to-North Water Diversion Project[J].Rock and Soil Mechanics,2019,40(S1):409-414.
[6]骆赵刚,汪时机,杨振北.膨胀土湿干胀缩裂隙演化及其定量分析[J].岩土力学,2020,41(7):2313-2323.
LUO Zhaogang,WANG Shiji,YANG Zhenbei.Quantitative analysis of fracture evolution of expansive soils under wetting-drying cycles[J].Rock and Soil Mechanics,2020,41(7):2313-2323.
[7]边加敏.石灰改良膨胀土重塑后抗剪强度特性及应用[J].长江科学院院报,2020,37(10):103-109.
BIAN Jiamin.Remoulded lime-treated expansive soil:shear strength and application[J].Journal of Yangtze River Scientific Research Institute,2020,37(10):103-109.
[8]符策岭,曾召田,莫红艳,等.石灰改良膨胀土的工程特性试验研究[J].广西大学学报(自然科学版),2019,44(2):524-533.
FU Celing,ZENG Zhaotian,MO Hongyan,et al.Experimental study on the engineering characteristics of the improved expansive soils with lime[J].Journal of Guangxi University(Natural Science Edition),2019,44(2):524-533.
[9]韩 晶,王乐华,马 莉,等.水泥及石灰掺量对改良膨胀土抗剪强度的影响[J].人民黄河,2015,37(4):137-139,144.
HAN Jing,WANG Lehua,MA Li,et al.Effect on shear strength of improved expansive soil with addition amounts of cement and lime[J].Yellow River,2015,37(4):137-139,144.
[10]刘 磊,张文慧,卢子威,等.消石灰改良膨胀土室内试验研究[J].信阳师范学院学报(自然科学版),2016,29(1):139-142.
LIU Lei,ZHANG Wenhui,LU Ziwei,et al.Studies on lime treated expansive soil[J].Journal of Xinyang Normal University(Natural Science Edition),2016,29(1):139-142.
[11]XU L L,QU X M,LIU L J.Experimental study on expansion characteristics,frost heaving characteristics of EPS beads improved expansive soils[J].Advanced Materials Research,2013,742:80-84.
[12]SHE J B,LU Z,DUAN Y H,et al.Experimental study on the engineering properties of expansive soil treated with Al13[J].Scientific Reports,2020,10:13930.
[13]PURNAMA PUTRA P,AYU PARAMISWARI D,ILHAM A,et al.Expansive soil improvement of Glagahagung village,Purwoharjo sub-district,Banyuwangi district,which is chemically stabilized[J].MATEC Web of Conferences,2018,195:03009.
[14]ASHANGO A A,PATRA N R.Behavior of expansive soil treated with steel slag,rice husk ash,and lime[J].Journal of Materials in Civil Engineering,2016,28(7):06016008.
[15]张先伟,孔令伟,郭爱国,等.基于SEM和MIP试验结构性黏土压缩过程中微观孔隙的变化规律[J].岩石力学与工程学报,2012,31(2):406-412.
ZHANG Xianwei,KONG Lingwei,GUO Aiguo,et al.Evolution of microscopic pore of structured clay in compression process based on SEM and MIP test[J].Chinese Journal of Rock Mechanics and Engineering,2012,31(2):406-412.
[16]张季如,祝 杰,黄 丽,等.固结条件下软黏土微观孔隙结构的演化及其分形描述[J].水利学报,2008,39(4):394-400.
ZHANG Jiru,ZHU Jie,HUANG Li,et al.Evolution of micro pore structure of soft clay and its fractal features under consolidation[J].Journal of Hydraulic Engineering,2008,39(4):394-400.
[17]AL-MUKHTAR M,KHATTAB S,ALCOVER J F.Microstructure and geotechnical properties of lime-treated expansive clayey soil[J].Engineering Geology,2012,139-140:17-27.
[18]凡超文.黄泛区粉砂土改良弱膨胀土工程特性研究[D].开封:河南大学,2019.
FAN Chaowen.Study on engineering characteristics of improved weak expansive soil of silty sand along the yellow river[D].Kaifeng:Henan University,2019.
[19]邹志悝.南水北调中线工程总干渠潞王坟试验段膨胀岩工程地质特性研究[J].长江科学院院报,2009,26(11):85-88.
ZOU Zhili.Study on engineering geological properties of expansive rock of middle route of South to North Water Diversion Project[J].Journal of Yangtze River Scientific Research Institute,2009,26(11):85-88.
[20]膨胀土地区建筑技术规范:GB 50112—2013[S].北京:中国建筑工业出版社,2013.
Technical code for buildings in expansive soil regions:GB 50112—2013[S].Beijing:China Architecture & Building Press,2013.
[21]公路土工试验规程:JTG 3430—2020[S].北京:人民交通出版社,2020.
Test methods of soils for highway engineering:JTG 3430—2020[S].Beijing:China Communications Press,2020.

相似文献/References:

[1]王 欢,曹义康,任俊玺.干湿循环对粉砂土改良膨胀土裂隙及强度影响[J].建筑科学与工程学报,2022,39(05):213.[doi:10.19815/j.jace.2021.07006]
 WANG Huan,CAO Yi-kang,REN Jun-xi.Influence of Dry-wet Cycle on Crack and Strength of Silty Sand Improved Expansive Soil[J].Journal of Architecture and Civil Engineering,2022,39(04):213.[doi:10.19815/j.jace.2021.07006]
[2]王 欢,张斐扬,曹义康,等.新乡地区改良膨胀土路用性能研究[J].建筑科学与工程学报,2024,41(05):163.[doi:10.19815/j.jace.2022.10048]
 WANG Huan,ZHANG Feiyang,CAO Yikang,et al.Research on road performance of improved expansive soil in Xinxiang area[J].Journal of Architecture and Civil Engineering,2024,41(04):163.[doi:10.19815/j.jace.2022.10048]

备注/Memo

备注/Memo:
收稿日期:2021-08-28
基金项目:河南省高等学校重点科研项目(18A580002); 开封市科技发展计划项目(1801004); 甘肃省交通运输厅科研项目(2013-07)
作者简介:王 欢(1982-),男,工学博士,讲师,硕士生导师,E-mail:happy_king0924@sina.com。
更新日期/Last Update: 2023-07-01