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Mechanism of the in-hole detonation wave interactions in dual initiation with electronic detonators in bench blasting operation

机译:台孔爆破手术中电子雷管在双启动中的机制

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With the development of electronic detonators, the precise initiation timing has been controlled at the microsecond level, which are accurate enough to guarantee waveform collision at precise locations in hole. The accumulated energy effect by collision of two oppositely traveling in-hole detonation waves was proved theoretically based on impact dynamics theory. And the fragment size distributions and blasting vibration under different initiation modes with electronic detonators were also investigated by comparing the field test and numerical simulations results of bench blasting. The results show that the detonation products density near the collision point is increased, the particle velocity is reduced, and the kinetic energy is converted into pressure energy, the pressure near the collision point is greater than the sum of the strength of the two detonation waves, demonstrating the potential for an increase in fragmentation and throw. At the same time, the angle of the shock wave formed in the rock mass is deflected, changing from tilt to horizontal direction, direct the pressure toward to the bench face. The field test also indicated that the in-hole dual initiation method could cause both higher peak particle velocity and higher vibration frequency.
机译:随着电子雷管的发展,精确的启动定时已经控制在微秒水平,这足以保证在孔中精确位置的波形碰撞。基于冲击动力学理论,从理论上证明了两个相反行驶的内孔爆轰波的累积能效。还通过比较了台式爆破的现场测试和数值模拟,研究了与电子雷管不同启动模式下的片段大小分布和爆破振动。结果表明,在碰撞点附近的爆轰产物密度增加,粒子速度降低,动能被转换为压力,碰撞点附近的压力大于两个爆震波的强度之和,展示碎片和投掷增加的潜力。同时,在岩体中形成的冲击波的角度偏转,从倾斜转向水平方向,将压力引向到台面。现场测试还表明,孔的双启动方法可能导致较高的峰值粒子速度和更高的振动频率。

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