Wu Zhilin, Rao Pingping, Nimbalkar Sanjay, Chen Qingsheng, Cui Jifei, Ouyang Peihao
Department of Civil Engineering, University of Shanghai for Science and Technology, 516 Jungong Road, Shanghai 200093, China.
School of Civil and Environmental Engineering, University of Technology Sydney, 15 Broadway, Ultimo, NSW 2007, Australia.
Materials (Basel). 2022 Mar 17;15(6):2239. doi: 10.3390/ma15062239.
A semi-analytical solution for forecasting the soil behavior induced by lightning strikes is of great engineering significance to calculate the radius of the soil plastic zone. In this paper, a simplified two-stage method is employed to solve the shock wave pressure and the radius of the soil plastic zone. The solution is verified against experimental data. Using the present model, the major factors dominating the shock wave pressure and the radius of the soil plastic zone are investigated. The results show that (1) the radius of the soil plastic zone () induced by lightning decreases monotonically with cohesion () and internal friction angle (), while has a better effect on soil properties than does; (2) increasing the initial radius of the plasma channel () can reduce the pressure () and increasing has a nonnegligible effect on ; with increasing by 100%, the radius of the soil plastic zone increases by 47.9-59.7%; (3) the plasma channel length () has a significant influence on and , especially when is at a relatively low level; (4) the induced by lightning decreases exponentially with attenuation coefficient (); (5) the wavefront time is a major factor while the half-value time is a minor factor for the shock wave pressure induced by plasma explosives.
预测雷击引起的土壤行为的半解析解对于计算土壤塑性区半径具有重要的工程意义。本文采用一种简化的两阶段方法来求解冲击波压力和土壤塑性区半径。该解通过实验数据进行了验证。利用当前模型,研究了主导冲击波压力和土壤塑性区半径的主要因素。结果表明:(1)雷击引起的土壤塑性区半径()随黏聚力()和内摩擦角()单调减小,而对土壤性质的影响比更显著;(2)增加等离子体通道的初始半径()可降低压力(),且增加对有不可忽略的影响;当增加100%时,土壤塑性区半径增加47.9 - 59.7%;(3)等离子体通道长度()对和有显著影响,尤其是当处于相对较低水平时;(4)雷击引起的随衰减系数()呈指数下降;(5)对于等离子体炸药引起的冲击波压力,波前时间是主要因素,而半值时间是次要因素。