Journal of Shanghai Jiao Tong University (Science) ›› 2019, Vol. 24 ›› Issue (2): 196-203.doi: 10.1007/s12204-019-2050-1
Previous Articles Next Articles
ZHANG Shuo (张硕), LIAO Chencong* (廖晨聪), ZHANG Qi (张琪), ZHEN Liang (甄亮)
Online:
2019-04-30
Published:
2019-04-01
Contact:
LIAO Chencong* (廖晨聪)
E-mail:billaday@sjtu.edu.cn
CLC Number:
ZHANG Shuo (张硕), LIAO Chencong* (廖晨聪), ZHANG Qi (张琪), ZHEN Liang (甄亮). Elastoplastic Model for Soils Considering Structure and Overconsolidation[J]. Journal of Shanghai Jiao Tong University (Science), 2019, 24(2): 196-203.
[1] | ZHU H H, YE B, CAI Y C, et al. An elasto-viscoplasticmodel for soft rock around tunnels considering overconsolidationand structure effects [J]. Computers andGeotechnics, 2013, 50: 6-16. |
[2] | LI M G, ZHANG Z J, CHEN J J, et al. Zoned andstaged construction of an underground complex inShanghai soft clay [J]. Tunnelling and UndergroundSpace Technology, 2017, 67: 187-200. |
[3] | LI M G, CHEN J J, WANG J H, et al. Comparativestudy of construction methods for deep excavationsabove shield tunnels [J]. Tunnelling and UndergroundSpace Technology, 2018, 71: 329-339. |
[4] | YE B, YE G L, ZHANG F, YASHIMA A. Experimentand numerical simulation of repeated liquefactionconsolidationof sand [J]. Soils and Foundations, 2007,47(3): 547-558. |
[5] | YAO Y P, HOU W, ZHOU A N. UH model: Threedimensionalunified hardening model for overconsolidatedclays [J]. G′eotechnique, 2009, 59(5): 451-469. |
[6] | YIN Z Y, KARSTUNEN M, CHANG C S, et al. Modelingtime-dependent behavior of soft sensitive clay [J].Journal of Geotechnical and Geoenvironmental Engineering,2011, 137(11): 1103-1113. |
[7] | SUN D A, ZHANG J R, GAO Y, et al. Influence ofsuction history on hydraulic and stress-strain behaviorof unsaturated soils [J]. International Journal ofGeomechanics, 2016, 16(6): D4015001. |
[8] | WHITTLE A J, KAVVADAS M J. Formulation ofMIT-E3 constitutive model for overconsolidated clays[J]. Journal of Geotechnical Engineering, 1994, 120(1):173-198. |
[9] | HASHIGUCHI K, CHEN Z P. Elastoplastic constitutiveequation of soils with the subloading surfaceand rotational hardening [J]. International Journal forNumerical and Analytical Methods in Geomechanics,1998, 22(3): 197-227. |
[10] | NAKAI T, HINOKIO M. A simple elastoplastic modelfor normally and overconsolidated soils with unifiedmaterial parameters [J]. Soils and Foundations, 2004,44(2): 53-70. |
[11] | KAVVADAS M, AMOROSI A. A constitutive modelfor structured soils[J]. G′eotechnique, 2000, 50(3): 263-273. |
[12] | LIU M D, CARTER J P. Modelling the destructuringof soils during virgin compression [J]. G′eotechnique,2000, 50(4): 479-483. |
[13] | LIUM D, CARTER J P. A structured Cam Clay model[J]. Canadian Geotechnical Journal, 2002, 39(6): 1313-1332. |
[14] | ZHU E Y, YAO Y P. Structured UH model for clays[J].Transportation Geotechnics, 2015, 3: 68-79. |
[15] | ASAOKA A, NAKANO M, NODA T. Superloadingyield surface concept for highly structured soil behavior[J]. Soils and Foundations, 2000, 40(2): 99-110. |
[16] | ASAOKA A, NAKANO M, NODA T, et al. Delayedcompression/consolidation of natural clay dueto degradation of soil structure [J]. Soils and Foundations,2000, 40(3): 75-85. |
[17] | ROSCOE K H, SCHOFIELD A N, THURAIRAJAHA. Yielding of clays in states wetter than critical [J].G′eotechnique, 1963, 13(3): 211-240. |
[18] | MATSUOKA H, NAKAI T. Stress-deformation andstrength characteristics of soil under three differentprincipal stresses [J]. Proceedings of the Japan Societyof Civil Engineers, 1974, 232(9): 59-70. |
[19] | YAO Y P, SUN D A. Application of Lade’s criterion toCam-clay model [J]. Journal of Engineering Mechanics,2000, 126(1): 112-119. |
[20] | YAO Y P, ZHOU A N, LU D C. Extended transformedstress space for geomaterials and its application[J]. Journal of Engineering Mechanics, 2007, 133(10):1115-1123. |
[21] | BECKER D E, CROOKS J H A, BEEN K, et al.Work as a criterion for determining in situ and yieldstresses in clays [J]. Canadian Geotechnical Journal,1987, 24(4): 549-564. |
[22] | YE G L, YE B. Investigation of the overconsolidationand structural behavior of Shanghai clays by elementtesting and constitutive modeling [J]. UndergroundSpace, 2016, 1(1): 62-77. |
[23] | YE G L, YE B, ZHANG F. Strength and dilatancy ofoverconsolidated clay in drained true triaxial tests [J].Journal of Geotechnical and Geoenvironmental Engineering,2014, 140(4): 06013006 |
[1] | CAO Bingquan1,2,3 (曹炳全), HE Yuesheng1,2,3∗ (贺越生), ZHUANG Hanyang4 (庄瀚洋), YANG Ming1,2,3 (杨 明). Infrastructure-Based Vehicle Localization System for Indoor Parking Lot Using RGB-D Cameras [J]. J Shanghai Jiaotong Univ Sci, 2023, 28(1): 61-69. |
[2] | BAI Qingsong, WU Yang, HOU Li. Atomization Characteristics Analysis and Structure Optimization of an Aviation Fuel Nozzle [J]. Journal of Shanghai Jiao Tong University, 2023, 57(1): 84-92. |
[3] | WANG Yanlin, GUO Qi, SUN Shanshan, WEI Sihao, XU Ning. Discrete Element Simulation and Analysis of Ice-Inclined Structure Interaction [J]. Journal of Shanghai Jiao Tong University, 2022, 56(9): 1168-1175. |
[4] | LU Linhai, WU Chaojun, SUN Jiecheng, CAI Hao, YE Guanlin. Micropore Characteristics and CT Seepage Test of Jinan Red Clay with a Strong Vertical Permeability [J]. Journal of Shanghai Jiao Tong University, 2022, 56(9): 1218-1226. |
[5] | NI Yangfan, YANG Yuanyuan, XIE Zhe, ZHENG Dezhong, WANG Weidong. Multi-Feature Extraction of Pulmonary Nodules Based on LSTM and Attention Structure [J]. Journal of Shanghai Jiao Tong University, 2022, 56(8): 1078-1088. |
[6] | LI Jianjun, ZHU Wenfeng, SUN Haitao, LI Yuanhui, WANG Shunchao. Method of Curing Deformation Prediction and Surface Reconstruction Compensation for Roller-Hemming Structures with Dissimilar Materials [J]. Journal of Shanghai Jiao Tong University, 2022, 56(7): 965-976. |
[7] | CAI Shuyu∗ (蔡舒妤), SHI Lizhong (师利中). Airframe Damage Region Division Method Based on Structure Tensor Dynamic Operator [J]. J Shanghai Jiaotong Univ Sci, 2022, 27(6): 757-767. |
[8] | HUANG Yinghao1,2 (黄颖浩), WU Yi3 (吴怡), YAO Lixiu2 (姚莉秀), CAI Yunze1,2∗ (蔡云泽). A Class of Distributed Variable Structure Multiple Model Algorithm Based on Posterior Information of Information Matrix [J]. J Shanghai Jiaotong Univ Sci, 2022, 27(5): 671-679. |
[9] | LIN Zhangpeng, YU Haidong, YUAN Ke. Model of Assembly Deviation of Irregular Large Thin-Walled Structures Based on Higher-Order Composite Shell Element [J]. Journal of Shanghai Jiao Tong University, 2022, 56(5): 584-593. |
[10] | ZHOU Jie, REN Junjie. Water Migration and Deformation Characteristics of Coastal Complex Strata in Artificial Freezing Process [J]. Journal of Shanghai Jiao Tong University, 2022, 56(5): 675-683. |
[11] | HUANG Chengjun, ZHU Tianyi, SONG Xiaobing. In-Plane Yield Criterion of Steel-Concrete-Steel Unit Panel [J]. Journal of Shanghai Jiao Tong University, 2022, 56(4): 422-430. |
[12] | HU Yayuan, WANG Aqiang. Analysis of 1-D Consolidation of Double-Layered Saturated Porous-Fissured Clay Foundation [J]. Journal of Shanghai Jiao Tong University, 2022, 56(4): 443-453. |
[13] | LI Zeyao, ZHOU Jie, TIAN Wanjun, PEI Wansheng. Accumulative Plastic Deformation of Saturated Soft Clay Under Variable Frequency Cyclic Loading for Subway [J]. Journal of Shanghai Jiao Tong University, 2022, 56(4): 454-463. |
[14] | YANG Pufan (杨朴凡), HUANG Hongxin (黄洪鑫) WEI Siji (卫思霁), YAO Yuan (姚 远), ZHANG Zhinan∗ (张执南). Design of a Low Respiratory Resistance Mask for COVID-19 [J]. J Shanghai Jiaotong Univ Sci, 2022, 27(4): 543-551. |
[15] | LI Yu, YANG Daoyong, LIU Lingya, WANG Yiyin. Underwater Image Enhancement Based on Generative Adversarial Networks [J]. Journal of Shanghai Jiao Tong University, 2022, 56(2): 134-142. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||