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    Multiphysics Multicoupled Modeling of Rock Fragmentation under High-Voltage Electrical Pulse

    Source: International Journal of Geomechanics:;2024:;Volume ( 024 ):;issue: 009::page 04024176-1
    Author:
    Weikang Feng
    ,
    Pingping Rao
    ,
    Jifei Cui
    ,
    Peihao Ouyang
    ,
    Qingsheng Chen
    ,
    Sanjay Nimbalkar
    DOI: 10.1061/IJGNAI.GMENG-9298
    Publisher: American Society of Civil Engineers
    Abstract: In this research, the finite-element numerical software COMSOL Multiphysics is used to simulate the electric pulse rock-breaking process, and the novel numerical model takes into account the multiple fields of electrical, thermal, and mechanical physics. The electric field strength inside the rock under the action of the electric pulse is updated by the full coupling function of COMSOL (version 6.1) software, and the electric damage variable χ is used to describe the process of electric breakdown inside the rock, to simulate the formation of plasma channel in the process of electric pulse rock-breaking. The voltage change curves and plasma channel trajectories in the electric breakdown process of the model in this paper are compared with the literature to verify the accuracy of the model. The formation process of plasma channels captures the temperature and stress changes during the whole process of electric pulse rock-breaking, to reveal the mechanism of the electric pulse rock-breaking process. With the presence of conductive particles inside the rock, the particles can effectively promote the formation of plasma channels, increase the area of electrical damage, and improve rock-breaking efficiency. Before the formation of the plasma channel, the internal temperature of the rock is about 600 K, and the stress is about 10−2 MPa; when the channel is formed, the energy of the electric pulse is mainly concentrated in the plasma channel, and the temperature of the plasma channel rises to 104 K. When the maximum stress exceeds the critical stress of the rock, the rock undergoes fracture. Furthermore, an appropriate increase in the rise time of the electric pulse increases the speed and area of rock-breaking, subsequently improving the efficiency of rock fracture. The results of the numerical modeling in this paper help to better understand the mechanism of the electric pulse rock-breaking process, which is of great engineering significance for the development of new electric pulse rock-breaking technology in the realm of geotechnical engineering.
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      Multiphysics Multicoupled Modeling of Rock Fragmentation under High-Voltage Electrical Pulse

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4299345
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    • International Journal of Geomechanics

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    contributor authorWeikang Feng
    contributor authorPingping Rao
    contributor authorJifei Cui
    contributor authorPeihao Ouyang
    contributor authorQingsheng Chen
    contributor authorSanjay Nimbalkar
    date accessioned2024-12-24T10:40:21Z
    date available2024-12-24T10:40:21Z
    date copyright9/1/2024 12:00:00 AM
    date issued2024
    identifier otherIJGNAI.GMENG-9298.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4299345
    description abstractIn this research, the finite-element numerical software COMSOL Multiphysics is used to simulate the electric pulse rock-breaking process, and the novel numerical model takes into account the multiple fields of electrical, thermal, and mechanical physics. The electric field strength inside the rock under the action of the electric pulse is updated by the full coupling function of COMSOL (version 6.1) software, and the electric damage variable χ is used to describe the process of electric breakdown inside the rock, to simulate the formation of plasma channel in the process of electric pulse rock-breaking. The voltage change curves and plasma channel trajectories in the electric breakdown process of the model in this paper are compared with the literature to verify the accuracy of the model. The formation process of plasma channels captures the temperature and stress changes during the whole process of electric pulse rock-breaking, to reveal the mechanism of the electric pulse rock-breaking process. With the presence of conductive particles inside the rock, the particles can effectively promote the formation of plasma channels, increase the area of electrical damage, and improve rock-breaking efficiency. Before the formation of the plasma channel, the internal temperature of the rock is about 600 K, and the stress is about 10−2 MPa; when the channel is formed, the energy of the electric pulse is mainly concentrated in the plasma channel, and the temperature of the plasma channel rises to 104 K. When the maximum stress exceeds the critical stress of the rock, the rock undergoes fracture. Furthermore, an appropriate increase in the rise time of the electric pulse increases the speed and area of rock-breaking, subsequently improving the efficiency of rock fracture. The results of the numerical modeling in this paper help to better understand the mechanism of the electric pulse rock-breaking process, which is of great engineering significance for the development of new electric pulse rock-breaking technology in the realm of geotechnical engineering.
    publisherAmerican Society of Civil Engineers
    titleMultiphysics Multicoupled Modeling of Rock Fragmentation under High-Voltage Electrical Pulse
    typeJournal Article
    journal volume24
    journal issue9
    journal titleInternational Journal of Geomechanics
    identifier doi10.1061/IJGNAI.GMENG-9298
    journal fristpage04024176-1
    journal lastpage04024176-12
    page12
    treeInternational Journal of Geomechanics:;2024:;Volume ( 024 ):;issue: 009
    contenttypeFulltext
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