Quantitative calculation for the dissipated energy of fault rock burst based on gradient-dependent plasticity

Xuebin Wang, Shuhong Dai, Long Hai

分享

计量
  • 文章访问数:  205
  • HTML全文浏览量:  68
  • PDF下载量:  14
  • 被引次数: 0

目录

    Cite this article as:

    Xuebin Wang, Shuhong Dai, and Long Hai, Quantitative calculation for the dissipated energy of fault rock burst based on gradient-dependent plasticity, J. Univ. Sci. Technol. Beijing , 11(2004), No. 3, pp.197-201.
    Xuebin Wang, Shuhong Dai, and Long Hai, Quantitative calculation for the dissipated energy of fault rock burst based on gradient-dependent plasticity, J. Univ. Sci. Technol. Beijing , 11(2004), No. 3, pp.197-201.
    引用本文 PDF XML SpringerLink
    Mineral

    Quantitative calculation for the dissipated energy of fault rock burst based on gradient-dependent plasticity

    基金项目: 

    This work was financially supported by the National Natural Science Foundation of China (No.50309004).

      通信作者:

      Xuebin Wang E-mail: wxbbb@263.net

    The capacity of energy absorption by fault bands after rock burst was calculated quantitatively according to shear stressshear deformation curves considering the interactions and interplaying among microstructures due to the heterogeneity of strain softening rock materials. The post-peak stiffness of rock specimens subjected to direct shear was derived strictly based on gradientdependent plasticity, which can not be obtained from the classical elastoplastic theory. Analytical solutions for the dissipated energy of rock burst were proposed whether the slope of the post-peak shear stress-shear deformation curve is positive or not. The analytical solutions show that shear stress level, confining pressure, shear strength, brittleness, strain rate and heterogeneity of rock materials have important influence on the dissipated energy. The larger value of the dissipated energy means that the capacity of energy dissipation in the form of shear bands is superior and a lower magnitude of rock burst is expected under the condition of the same work done by external shear force. The possibility of rock burst is reduced for a lower softening modulus or a larger thickness of shear bands.

     

    Mineral

    Quantitative calculation for the dissipated energy of fault rock burst based on gradient-dependent plasticity

    Author Affilications
    • Funds: 

      This work was financially supported by the National Natural Science Foundation of China (No.50309004).

    • Received: 26 May 2003;
    The capacity of energy absorption by fault bands after rock burst was calculated quantitatively according to shear stressshear deformation curves considering the interactions and interplaying among microstructures due to the heterogeneity of strain softening rock materials. The post-peak stiffness of rock specimens subjected to direct shear was derived strictly based on gradientdependent plasticity, which can not be obtained from the classical elastoplastic theory. Analytical solutions for the dissipated energy of rock burst were proposed whether the slope of the post-peak shear stress-shear deformation curve is positive or not. The analytical solutions show that shear stress level, confining pressure, shear strength, brittleness, strain rate and heterogeneity of rock materials have important influence on the dissipated energy. The larger value of the dissipated energy means that the capacity of energy dissipation in the form of shear bands is superior and a lower magnitude of rock burst is expected under the condition of the same work done by external shear force. The possibility of rock burst is reduced for a lower softening modulus or a larger thickness of shear bands.

     

    Relative Articles

    Zheng-gen Liu, Man-sheng Chu, Hong-tao Wang, Wei Zhao, Xiang-xin Xue. Effect of MgO content in sinter on the softening–melting behavior of mixed burden made from chromium-bearing vanadium–titanium magnetite [J]. 矿物冶金与材料学报(英文版). DOI: 10.1007/s12613-016-1207-2

    View details

    Xuebin Wang, Xiaobin Yang, Zhihui Zhang, Yishan Pan. Dynamic analysis of fault rockburst based on gradient-dependent plasticity and energy criterion [J]. 矿物冶金与材料学报(英文版).

    View details

    Wenhuai Tian, Hongye Gao, Ailing Fan, Xiaoou Shan, Qi Sun. Dynamic recrystallization of electroformed copper liners of shaped charges in high-strain-rate plastic deformation [J]. 矿物冶金与材料学报(英文版).

    View details

    Di Tang, Qingwu Cai, Yueqin Li, Yumei Pu, Yuzhou Zhu. Recrystallization of High Carbon Steel during High Strain Rate [J]. 矿物冶金与材料学报(英文版).

    View details

    Fuming Wang, Li Tang, J-J. Esser, W Bleck. Static Softening Behaviour of Hot-worked Austenite in Microalloyed Structural Steel StE460 [J]. 矿物冶金与材料学报(英文版).

    View details

    /

    返回文章
    返回