双拱隧道结构爆破裂纹和振动的缓解策略

IF 5 Q1 ENGINEERING, MULTIDISCIPLINARY
Xianshun Zhou , Jin Chen , Xuemin Zhang , Kai Zhu , Yanyong Zhang , Jianbo Fei , Muhammad Irslan Khalid
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引用次数: 0

摘要

由于山区空间的限制,双隧道有时建得很近,甚至重叠。由于传播距离短,爆破振动放大,这种接近性对钻爆法隧道的结构稳定性提出了挑战。本文报道了双拱衬砌中混凝土裂缝跨越施工缝的爆破破坏案例。为了找出裂缝产生的原因,制定有效的减振措施,进行了现场监测和数值分析。具体而言,采用重启方法模拟MS1延迟50 ms后MS3延迟的第二峰值粒子速度(PPV)。研究发现,爆震波引起的隧道动拉应力与混凝土波阻抗与PPV的乘积呈线性关系。当爆破振动速度超过23.3 cm/s时,衬砌的拉应力超过C30混凝土的极限抗拉强度,导致所建隧道爆破面拱出现拉裂。为了控制过大的振动速度,设计了减震沟来减小冲击波的冲击。该沟槽长约15 m,宽约50 cm,高约450 cm,有效降低了振动速度,根据数值分析,平均降低率为52%。本研究的一个关键创新是现场实施和验证沟槽减轻振动的有效性。提出了一种可行的沟槽结构形式,克服了单沟槽在完全控制振动方面的局限性。为了进一步加强保护,我们采用了分区爆破和一个80厘米宽的辅助岩柱来加固中壁。本研究介绍了隧道爆破振动保护的新策略,为解决爆破引起的振动提供了创新的解决方案,并有效地减少了其影响,从而提高了安全性和结构稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mitigation strategies for blasting-induced cracks and vibrations in twin-arch tunnel structures
Due to space constraints in mountainous areas, twin tunnels are sometimes constructed very close to each other or even overlap. This proximity challenges the structural stability of tunnels built with the drill-and-blast method, as the short propagation distance amplifies blasting vibrations. A case of blasting damage is reported in this paper, where concrete cracks crossed construction joints in the twin-arch lining. To identify the causes of these cracks and develop effective vibration mitigation measures, field monitoring and numerical analysis were conducted. Specifically, a restart method was used to simulate the second peak particle velocity (PPV) of MS3 delays occurring 50 ms after the MS1 delays. The study found that the dynamic tensile stress in the tunnel induced by the blast wave has a linear relationship with the of the product of the concrete wave impedance and the PPV. A blast vibration velocity exceeding 23.3 cm/s resulted in tensile stress in the lining surpassing the ultimate tensile strength of C30 concrete, leading to tensile cracking on the blast-facing arch of the constructed tunnel. To control excessive vibration velocity, a mitigation trench was implemented to reduce blast wave impact. The trench, approximately 15 m in length, 50 cm in width, and 450 cm in height, effectively lowered vibration velocities, achieving an average reduction rate of 52% according to numerical analysis. A key innovation of this study is the on-site implementation and validation of the trench's effectiveness in mitigating vibrations. A feasible trench construction configuration was proposed to overcome the limitations of a single trench in fully controlling vibrations. To further enhance protection, zoned blasting and an auxiliary rock pillar, 80 cm in width, were incorporated to reinforce the mid-wall. This study introduces novel strategies for vibration protection in tunnel blasting, offering innovative solutions to address blasting-induced vibrations and effectively minimize their impact, thereby enhancing safety and structural stability.
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来源期刊
Defence Technology(防务技术)
Defence Technology(防务技术) Mechanical Engineering, Control and Systems Engineering, Industrial and Manufacturing Engineering
CiteScore
8.70
自引率
0.00%
发文量
728
审稿时长
25 days
期刊介绍: Defence Technology, a peer reviewed journal, is published monthly and aims to become the best international academic exchange platform for the research related to defence technology. It publishes original research papers having direct bearing on defence, with a balanced coverage on analytical, experimental, numerical simulation and applied investigations. It covers various disciplines of science, technology and engineering.
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