期刊文献+

Lateral Pressure of RC Silos with Static and Dynamic Granular Materials

Lateral Pressure of RC Silos with Static and Dynamic Granular Materials
下载PDF
导出
摘要 This paper aims at analyzing material-induced lateral pressure of RC cylinder silo in both static and dynamic condition using the finite element method( FEM). In the finite element software ABAQUS,concrete material is modeled by concrete damaged plasticity model,and stored materials in silo is modeled by the hypoplastic theory.In terms of numerical model,shell elements( S4R) and solid elements( C3D8) are applied for model silo wall and stored materials respectively. The interaction between silo wall and stored materials is simulated by Coulomb friction model and penalty contact constrain provided by ABAQUS.The numerical results are verified with the existing experimental data that are designed to ensure the validation of such numerical model using FEM and it obtains good agreements between numerical results and experimental data. Then the material parameters are analyzed in both static and dynamic condition.According to the analysis,it is clear that critical friction angle,initial void ratio and minimum void ratio have an obvious effect on static lateral pressure while all the material parameters affect dynamic lateral pressure at different levels. In addition,differences of silo wall between elastic and plastic state are analyzed in dynamic condition. The numerical results show that it contributes to increasing dynamic pressure when silo wall enters into the plastic state. Finally,this paper discusses the time-history lateral pressure at different heights along silo wall,and analytical results indicate that larger acceleration values play main roles in producing the maximum lateral pressure at higher part of the silo wall. This paper aims at analyzing material-induced lateral pressure of RC cylinder silo in both static and dynamic condition using the finite element method( FEM). In the finite element software ABAQUS,concrete material is modeled by concrete damaged plasticity model,and stored materials in silo is modeled by the hypoplastic theory.In terms of numerical model,shell elements( S4R) and solid elements( C3D8) are applied for model silo wall and stored materials respectively. The interaction between silo wall and stored materials is simulated by Coulomb friction model and penalty contact constrain provided by ABAQUS.The numerical results are verified with the existing experimental data that are designed to ensure the validation of such numerical model using FEM and it obtains good agreements between numerical results and experimental data. Then the material parameters are analyzed in both static and dynamic condition.According to the analysis,it is clear that critical friction angle,initial void ratio and minimum void ratio have an obvious effect on static lateral pressure while all the material parameters affect dynamic lateral pressure at different levels. In addition,differences of silo wall between elastic and plastic state are analyzed in dynamic condition. The numerical results show that it contributes to increasing dynamic pressure when silo wall enters into the plastic state. Finally,this paper discusses the time-history lateral pressure at different heights along silo wall,and analytical results indicate that larger acceleration values play main roles in producing the maximum lateral pressure at higher part of the silo wall.
出处 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2015年第4期92-98,共7页 哈尔滨工业大学学报(英文版)
基金 Sponsored by the National Natural Science Foundation of China(Grant No.51478033,51179029)
关键词 RC cylinder silo static lateral pressure dynamic lateral pressure hypoplastic theory FEM RC cylinder silo static lateral pressure dynamic lateral pressure hypoplastic theory FEM
  • 相关文献

参考文献17

  • 1Carson J W. Limits of silo design codes. Practice Periodical on Structure Design and Construction, 2014, 19 ( 1): 1 - 7 .
  • 2Yang Hong, Yang Daiheng, Zhao Yang. Three-dimensional finite element simulation of static granular material pressure for steel silos. Journal of Zhejiang University (Engineering Science), 2011,45(8): 1423-1429.
  • 3Wan Xuewen, Yang Zhaojian, Shu Xuefeng, et al. The static contact statuses between granular materials and flat-bottomed steel silos. Powder Technology, 2013, 235: 1053-1059.
  • 4Ayuga F, Guaita M. Static and dynamic silo loads using finite element models. Structures and Environment, 2001, 78(3) :299-308.
  • 5Nateghi F, Yakhchalian M. Seismic behaviors of reinforced concrete silos considering granular material-structure interaction.Procedia Engineering, 2011 , 14: 3050-3058.
  • 6Herle N A, Hypoplastic I. Model for cohesive soils with elastic strain range. Mechanics of Cohesive Materials, 1997,2(4): 279-299.
  • 7Holler S, Meskouris K. Granular material silos under dynamic excitation: numerical simulation and experimental validation. Journal of Structure Engineering, 2006, 132 ( 10): 1573-1579.
  • 8Hibbitt, Karlsson & Sorensen, Inc. ABAQUS User's Manual-Version 6. 8. 1. Rhode Island: Hibbit, Karlsson& Sorenson, Inc., 2002.
  • 9Zhang Lujian. Studying of shaking table test on the model of cylindrical-supporting groups silo structures. Henan: Henan University of Technology, 2010.
  • 10Wagnerand R, Meskouris K. Numerical simulation of granular material silosunder earth quake excitation. European Congress on Computational Methods in Applied Sciences and Engineering. Barcelona, 2000.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部