Determination and application study of optimal delay time for tunnel millisecond blasting based on interference vibration reduction method

Chuanpeng Liu, Yanqi Song, Fuxin Shen, Junjie Zheng, Zhixin Shao, Juntao Yang
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Abstract

In tunnel excavation, blasting is widely adopted as an efficient excavation method. However, the influence of vibration on tunnel surrounding rock and support structures during the blasting process cannot be ignored. In this study, based on the background of tunnel blasting construction, we theoretically analyze the reasonable range for selecting the optimal delay time, considering the wave superposition cancellation effect and rock fragmentation effect. We use field measured single-hole waveform and calculate superimposed predicted waveforms for different delay time through linear superposition. This allows us to determine the optimal delay time; it is then validated through numerical simulation and field experiment. The results indicate that, based on the principles of interference vibration reduction and rock fragmentation, the optimal delay time in theory should be in the range of 6.14–8.06 ms. By performing superposition calculation on the measured single-hole waveforms, we determined that the optimal delay time for continuous detonation of cut-holes is 7 ms. The delay time of 7 ms falls within a reasonable millisecond range and it is consistent with the results of numerical simulation. When the optimal delay time was applied to field blasting, the measured vibration waveforms exhibited uniform distribution. Compared to blasting without delay, the peak vibration velocity of the cut-holes decreased from 2.08 cm/s to 0.20 cm/s, and the dominant frequency band shifted from 20 Hz–60 Hz to 30 Hz–120 Hz. This achieved the desired effects of reducing vibration and enhancing frequency. These findings can serve as a reference for future similar engineering projects.
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基于干扰减振法的隧道毫秒爆破最佳延迟时间的确定与应用研究
在隧道开挖中,爆破作为一种高效的开挖方法被广泛采用。然而,爆破过程中振动对隧道围岩和支护结构的影响不容忽视。本研究以隧道爆破施工为背景,考虑波叠加抵消效应和岩石破碎效应,从理论上分析了选择最佳延迟时间的合理范围。我们利用现场测量的单孔波形,通过线性叠加计算出不同延迟时间的叠加预测波形。这样我们就能确定最佳延迟时间,然后通过数值模拟和现场实验进行验证。结果表明,根据减少干扰振动和岩石破碎的原理,理论上最佳延迟时间应在 6.14-8.06 ms 之间。通过对测量到的单孔波形进行叠加计算,我们确定切孔连续起爆的最佳延迟时间为 7 ms。7 毫秒的延迟时间在合理的毫秒范围内,并且与数值模拟的结果一致。将最佳延迟时间应用于现场爆破时,测得的振动波形呈均匀分布。与无延迟爆破相比,切孔的峰值振动速度从 2.08 厘米/秒降至 0.20 厘米/秒,主频带从 20 赫兹-60 赫兹变为 30 赫兹-120 赫兹。这达到了减少振动和提高频率的预期效果。这些研究结果可为今后类似的工程项目提供参考。
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