Study on Rockburst Tendency of Deep Underground Engineering based on Multi-Factor Influence

IF 0.8 Q4 ENGINEERING, CIVIL
Zi Zhu, Fei Sun, Jiaqi Guo
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引用次数: 0

Abstract

Rockburst disaster seriously threatens the construction schedule of underground tunnel engineering and the safety of construction workers. Rockburst prediction has become one of the critical methods for evaluation of surrounding rock stability and safe construction of deep underground engineering. To further understand the occurrence mechanism of rockburst disaster and predict rockburst in underground engineering more accurately, firstly, the typical rockburst tendency criterion and the critical factors affecting the rockburst development process are systematically summarized and analyzed, and the main control factors reflecting the whole process of rockburst development are screened and analyzed: mechanics, brittleness, integrity, and energy storage factor. Secondly, according to the comprehensive consideration of the main control factors, based on the energy conversion and overall failure mechanism in the process of rock failure, a new multi-parameter rockburst tendency criterion is proposed by comprehensively considering the stress states of rock unit under different stress paths. Finally, the rockburst criterion proposed in this paper is applied to typical engineering cases to verify its rationality and accuracy. Based on a rockburst section in the Sangzhuling tunnel, the possible location of rockburst is simulated based on the 3D discrete element numerical simulation platform, and the rockburst criterion proposed in this paper is further verified by actual engineering. The results show that: the rockburst criterion considering the mechanical factor(σθ/σc), brittleness factor(σc/σt), integrity factor (Kv) and energy storage factor (Ue/U0) can comprehensively and truly reflect the rockburst development process; based on the rockburst tendency criterion proposed in this paper, the occurrence of rockburst in typical engineering cases is calculated and verified, and the predicted results are in good agreement with the actual situation; the numerical simulation of the typical rockburst section prediction in the Sangzhuling tunnel shows that the distribution characteristics of rockburst tendency based on the criterion in this paper are consistent with the on-site rockburst occurrence, and there is a strong rockburst tendency on the right of the tunnel vault, which further verifies the effectiveness and engineering applicability of the criterion in the rockburst tendency prediction. The results of the research can provide some reference for predicting the tendency of rockburst in deep underground engineering.
基于多因素影响的深部地下工程岩爆倾向研究
岩爆灾害严重威胁着地下隧道工程的施工进度和施工人员的安全。岩爆预测已成为评价深部地下工程围岩稳定性和安全施工的重要方法之一。为了进一步了解岩爆灾害的发生机理,更准确地预测地下工程中的岩爆,首先,系统地总结和分析了典型的岩爆倾向判据和影响岩爆发展过程的关键因素,筛选并分析了反映岩爆发展全过程的主要控制因素:力学、脆性、完整性和储能因素。其次,在综合考虑主要控制因素的基础上,基于岩石破坏过程中的能量转换和整体破坏机制,综合考虑不同应力路径下岩石单元的应力状态,提出了一种新的多参数岩爆倾向准则。最后,将本文提出的岩爆准则应用于典型工程实例,验证了其合理性和准确性。以桑珠岭隧道岩爆断面为例,利用三维离散元数值模拟平台,对岩爆可能发生的位置进行了模拟,并通过工程实例进一步验证了本文提出的岩爆判据。结果表明:考虑力学因子(σθ/σc)、脆性因子(σc/σt)、完整性因子(Kv)和储能因子(Ue/U0)的岩爆判据能够全面、真实地反映岩爆的发展过程;根据本文提出的岩爆倾向判据,对典型工程实例中的岩爆发生情况进行了计算和验证,预测结果与实际情况吻合较好;对桑珠岭隧道典型岩爆断面预测的数值模拟表明,基于本文准则的岩爆倾向分布特征与现场岩爆发生情况一致,隧道拱顶右侧有较强的岩爆趋势,进一步验证了该准则在岩爆倾向预测中的有效性和工程适用性。研究结果可为预测深部地下工程岩爆的发展趋势提供一定的参考。
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来源期刊
Electronic Journal of Structural Engineering
Electronic Journal of Structural Engineering Engineering-Civil and Structural Engineering
CiteScore
1.10
自引率
16.70%
发文量
0
期刊介绍: The Electronic Journal of Structural Engineering (EJSE) is an international forum for the dissemination and discussion of leading edge research and practical applications in Structural Engineering. It comprises peer-reviewed technical papers, discussions and comments, and also news about conferences, workshops etc. in Structural Engineering. Original papers are invited from individuals involved in the field of structural engineering and construction. The areas of special interests include the following, but are not limited to: Analytical and design methods Bridges and High-rise Buildings Case studies and failure investigation Innovations in design and new technology New Construction Materials Performance of Structures Prefabrication Technology Repairs, Strengthening, and Maintenance Stability and Scaffolding Engineering Soil-structure interaction Standards and Codes of Practice Structural and solid mechanics Structural Safety and Reliability Testing Technologies Vibration, impact and structural dynamics Wind and earthquake engineering. EJSE is seeking original papers (research or state-of the art reviews) of the highest quality for consideration for publication. The papers will be published within 3 to 6 months. The papers are expected to make a significant contribution to the research and development activities of the academic and professional engineering community.
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