TY - JOUR
T1 - Zero-dimensional simulation of discharge channel properties during underwater electrical wire explosion
AU - Chao, Youchuang
AU - Han, Ruoyu
AU - Li, Xingwen
AU - Wu, Jian
AU - Qiu, Aici
PY - 2014/10/31
Y1 - 2014/10/31
N2 - To understand the physical mechanism of underwater electrical wire explosion (UEWE), we established a simple and practical numerical simulation method to describe the hydrodynamics properties of discharge plasma channel (DPC) in UEWE. The model is based on the ideal hydrodynamics equation set, and uses the arbitrary discontinuity propagation theory to describe the interaction between DPC and surrounding water. In the simulations, electrical conductivity data obtained from America Sandia National Laboratories and ideal equation of state (EOS) were adopted, and the Tucker resistivity-specific action model and Sariksov 0-D thermodynamical (ThD) model were introduced to calculate the initial state of DPC. Moreover, some reported experimental data were used as the input in the simulation, and the results calculated using the proposed model were in good accordance with the existed experimental data and MHD simulation results. In addition, according to our simulation, the pressure, temperature, and expansion velocity of DPC reach up to 6 GPa, 3 eV, and 1 100 m/s, respectively.
AB - To understand the physical mechanism of underwater electrical wire explosion (UEWE), we established a simple and practical numerical simulation method to describe the hydrodynamics properties of discharge plasma channel (DPC) in UEWE. The model is based on the ideal hydrodynamics equation set, and uses the arbitrary discontinuity propagation theory to describe the interaction between DPC and surrounding water. In the simulations, electrical conductivity data obtained from America Sandia National Laboratories and ideal equation of state (EOS) were adopted, and the Tucker resistivity-specific action model and Sariksov 0-D thermodynamical (ThD) model were introduced to calculate the initial state of DPC. Moreover, some reported experimental data were used as the input in the simulation, and the results calculated using the proposed model were in good accordance with the existed experimental data and MHD simulation results. In addition, according to our simulation, the pressure, temperature, and expansion velocity of DPC reach up to 6 GPa, 3 eV, and 1 100 m/s, respectively.
KW - DPC
KW - Discontinuity propagation theory
KW - EOS
KW - Electrical conductivity
KW - Numerical simulation
KW - UEWE
UR - https://www.scopus.com/pages/publications/84909953071
U2 - 10.13336/j.1003-6520.hve.2014.10.024
DO - 10.13336/j.1003-6520.hve.2014.10.024
M3 - Article
AN - SCOPUS:84909953071
SN - 1003-6520
VL - 40
SP - 3112
EP - 3118
JO - Gaodianya Jishu/High Voltage Engineering
JF - Gaodianya Jishu/High Voltage Engineering
IS - 10
ER -