Theoretical and numerical investigation of the effects of in-situ stresses and dual-borehole combinations in eccentric decoupled charge blasting

Yao Yin , Minxing Song , Yu Feng , Zhongqiang Liu , Xiaohui Chen , Qing Sun
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Abstract

Eccentric decoupled charge (EDC) blasting is a widely used technique for rock fragmentation and tunnel excavation, yet the underlying rock damage mechanisms, particularly in relation to in-situ stresses and multi-borehole combinations, remain underexplored. First, we developed an analytical model for single-borehole EDC blasting, providing insights into the theoretical relationship between the formation of different rock damage zones around the borehole and various influencing factors, including decoupling coefficient, in-situ stress, rock and explosive properties, and peak blast pressure. Using a finite element fluid-solid coupling algorithm, we performed numerical simulations for a simple case of single-borehole EDC blasting, verifying the effectiveness of the adopted numerical approach. We then performed numerical simulations for dual-borehole EDC blasting with varying in-situ stress conditions and borehole combinations. The results indicate that: (1) rock damage is primarily concentrated on the eccentric side of the borehole due to its smaller decoupling coefficients and the resulting larger peak blast pressure; (2) the formation of through cracks between two boreholes is highly dependent on the relative angle φ between them, while the extent and direction of the cracks are largely controlled by the application of in-situ stress. This work provides a theoretical basis and reference for optimizing the design of multi-borehole contour blasting in deep rock excavation under significant in-situ stresses, facilitating desired crack propagation while minimizing damage to the surrounding rock.
偏心不耦合装药爆破中地应力和双孔组合影响的理论与数值研究
偏心不耦合装药(EDC)爆破是一种广泛应用于岩石破碎和隧道开挖的技术,但其潜在的岩石损伤机制,特别是与地应力和多孔组合的关系,仍未得到充分研究。首先,我们建立了单孔EDC爆破的分析模型,深入了解了孔周围不同岩石损伤区形成与各种影响因素(包括解耦系数、地应力、岩石和炸药性质以及峰值爆破压力)之间的理论关系。利用有限元流固耦合算法,对一个简单的单孔EDC爆破进行了数值模拟,验证了所采用数值方法的有效性。然后,我们对不同地应力条件和钻孔组合的双孔EDC爆破进行了数值模拟。结果表明:(1)钻孔偏心侧由于解耦系数较小,峰值爆破压力较大,岩石损伤主要集中在偏心侧;(2)孔间贯通裂缝的形成高度依赖于孔间的相对夹角φ,而贯通裂缝的范围和方向在很大程度上受地应力作用的控制。为大地应力条件下深部岩石开挖多孔轮廓爆破优化设计提供了理论依据和参考依据,在保证裂纹扩展的同时尽量减少对围岩的破坏。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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