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基于JH-2模型分析的大断面隧道爆破衬砌结构动力响应特性研究

Study on the dynamic response characteristics of lining structures in large-section tunnel blasting using JH-2 model analysis.

作者信息

Li Fengting, Wu Ke, Li Shengrui, Wang Cao, Liu Yajun, Dou Zhongyu

机构信息

School of Civil Engineering and Water Conservancy, Shandong University, Jinan, 250061, Shandong, China.

Stecol Corporation Tianjin, Tianjin, 300384, China.

出版信息

Sci Rep. 2024 May 7;14(1):10506. doi: 10.1038/s41598-024-60918-6.

DOI:10.1038/s41598-024-60918-6
PMID:38714746
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11076607/
Abstract

The lining structures of tunnels are typically constructed using sprayed or cast concrete materials, and their performance and quality during tunnel excavation and blasting are crucial for the stability and safety of tunnels. Therefore, the safe distance between the lining structure and blasting source should be determined to avoid concrete damage caused by blasting vibrations. In this study, taking the subway tunnel of Danshan Station in Qingdao as an example, the JH-2 model is introduced as the constitutive model of the tunnel blasting simulation, and the JH-2 model parameters of the local surrounding rock are obtained by experiments, and finally the numerical simulation and theoretical verification are carried out to study the safety distance of shotcrete under various safety judgment standards. The results indicate that the JH-2 model can effectively simulate the propagation of stress waves under different media conditions, and the closer the strength parameters and pressure constant of the lining structure are to those of the surrounding rock, the safer the concrete-rock bonding interface. During tunnel blasting construction using the ring blasting method, the peak particle velocity (PPV) of the lining structure increases with an increase in the arch angle. Based on the numerical simulation results, we recommend that concrete lining be constructed at a distance of at least 62 m from the blasting source to avoid damage caused by vibrations. The effect of concrete tensile failure caused by longitudinal stress is much smaller than the damage to the bonding interface caused by the PPV and can be neglected.

摘要

隧道衬砌结构通常采用喷射或浇筑混凝土材料施工,其在隧道开挖爆破过程中的性能和质量对隧道的稳定性和安全性至关重要。因此,应确定衬砌结构与爆破源之间的安全距离,以避免爆破振动对混凝土造成损伤。本研究以青岛丹山站地铁隧道为例,引入JH - 2模型作为隧道爆破模拟的本构模型,通过试验获取局部围岩的JH - 2模型参数,最后进行数值模拟和理论验证,研究不同安全判定标准下喷射混凝土的安全距离。结果表明,JH - 2模型能够有效模拟不同介质条件下应力波的传播,衬砌结构的强度参数和压力常数与围岩越接近,混凝土 - 岩石粘结界面越安全。采用环形爆破法进行隧道爆破施工时,衬砌结构的峰值质点速度(PPV)随拱角增大而增大。基于数值模拟结果,建议混凝土衬砌施工时与爆破源的距离至少为62 m,以避免振动造成损伤。纵向应力引起的混凝土拉伸破坏的影响远小于PPV对粘结界面的损伤,可忽略不计。

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