中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Investigation of 3D Printing Sand Core Technology on the Mechanical Behaviors of Soft-Hard Interbedded Rock Masses

文献类型:期刊论文

作者Tian, Yun1; Wu, Faquan1; He, Linkai1; Tian, Hongming2; Huang, Man1; Chen, Weizhong2
刊名JOURNAL OF MATERIALS IN CIVIL ENGINEERING
出版日期2023-12-01
卷号35期号:12页码:15
关键词Three-dimensional (3D) printing sand core technology Soft-hard interbedded rock Deformation behavior Failure mode Anisotropic behaviors
ISSN号0899-1561
DOI10.1061/JMCEE7.MTENG-15675
英文摘要Three-dimensional (3D) printing has been increasingly applied to experimental research in geotechnical engineering. In this paper, standard cylinder specimens with high and low strength were prepared using 3D-printing sand core technology. The elastic-plastic and rheological mechanical behaviors were experimentally studied. In addition, the similarity and limitations were verified through comparison with natural sandstone, slate, sand-gypsum, claystone, etc. On this basis, a new way to prepare soft-hard interbedded layered rock in geotechnical mechanics was developed. Considering the features of layered rock and the principle of 3D printing, cylindrical and cubic specimens of soft-hard interlayered rock mass with different inclination angles were prepared by controlling the binder content layer by layer. The deformation and strain differences between the soft and hard phases were verified through digital image correlation. In this case, the anisotropic failure evolution mode of soft-hard interbedded rock mass was revealed by the images captured. The structural anisotropy behaviors of 3D-printed soft-hard interbedded rock was also studied. The results agree well with the published experimental and theoretical results. This study introduces a broad prospect of 3D printing sand core technology for future experimental mechanical research on a soft-hard interbedded layered rock mass in geotechnical engineering. This study developed a new method for preparing soft-hard interbedded rock masses based on 3D printing sand core technology. The elastic-plastic and rheological characteristics of 3D-printed soft rock, hard rock, and soft-hard interbedded rock were investigated and compared with a natural layered rock mass. Moreover, the deformation and strain differences between the soft and hard phases were verified from a mesoscopic perspective. The structural anisotropy behaviors and anisotropic failure mode of soft-hard interbedded rock mass were revealed. The results agreed well with the published experimental and theoretical results. Thus, specimens with complex structures, such as soft-hard interbedded rock mass, could be prepared with 3D printing sand core technology. As a result, the mechanical parameters of 3D-printed specimens were close to those of sandy mudstone and claystone rock masses, while the trends of the stress-strain curves of 3D-printed specimens were consistent with natural sandstone rock masses. This study brings a broad prospect for future investigation of the soft-hard interbedded layered rock mass in actual geotechnical engineering.
资助项目The authors gratefully acknowledge the support of the National Natural Science Foundation of China (Grant Nos. 42207199, 52179113, and 42002275), Scientific Research Fund of Zhejiang Provincial Education Department (Grant No. Y202248582), and Zhejiang Post[42207199] ; The authors gratefully acknowledge the support of the National Natural Science Foundation of China (Grant Nos. 42207199, 52179113, and 42002275), Scientific Research Fund of Zhejiang Provincial Education Department (Grant No. Y202248582), and Zhejiang Post[52179113] ; The authors gratefully acknowledge the support of the National Natural Science Foundation of China (Grant Nos. 42207199, 52179113, and 42002275), Scientific Research Fund of Zhejiang Provincial Education Department (Grant No. Y202248582), and Zhejiang Post[42002275] ; National Natural Science Foundation of China[Y202248582] ; Scientific Research Fund of Zhejiang Provincial Education Department[ZJ2022155] ; Scientific Research Fund of Zhejiang Provincial Education Department[ZJ2022156] ; Zhejiang Postdoctoral Scientific Research Project
WOS研究方向Construction & Building Technology ; Engineering ; Materials Science
语种英语
WOS记录号WOS:001084886200039
出版者ASCE-AMER SOC CIVIL ENGINEERS
源URL[http://119.78.100.198/handle/2S6PX9GI/39820]  
专题中科院武汉岩土力学所
通讯作者Huang, Man
作者单位1.Shaoxing Univ, Sch Civil Engn, Key Lab Rock Mech & Geohazards Zhejiang Prov, Shaoxing 312000, Zhejiang, Peoples R China
2.Chinese Acad Sci, Inst Rock & Soil Mech, State Key Lab Geomech & Geotech Engn, Wuhan 430071, Hubei, Peoples R China
推荐引用方式
GB/T 7714
Tian, Yun,Wu, Faquan,He, Linkai,et al. Investigation of 3D Printing Sand Core Technology on the Mechanical Behaviors of Soft-Hard Interbedded Rock Masses[J]. JOURNAL OF MATERIALS IN CIVIL ENGINEERING,2023,35(12):15.
APA Tian, Yun,Wu, Faquan,He, Linkai,Tian, Hongming,Huang, Man,&Chen, Weizhong.(2023).Investigation of 3D Printing Sand Core Technology on the Mechanical Behaviors of Soft-Hard Interbedded Rock Masses.JOURNAL OF MATERIALS IN CIVIL ENGINEERING,35(12),15.
MLA Tian, Yun,et al."Investigation of 3D Printing Sand Core Technology on the Mechanical Behaviors of Soft-Hard Interbedded Rock Masses".JOURNAL OF MATERIALS IN CIVIL ENGINEERING 35.12(2023):15.

入库方式: OAI收割

来源:武汉岩土力学研究所

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