基于弹粘塑性损伤模型和时变能量指数的深埋隧道开挖岩体能量演化过程研究

IF 5.6 1区 工程技术 Q1 ENGINEERING, GEOLOGICAL
Yaoru Liu, Rujiu Zhang, Shaokang Hou, Ling Zhu, Zhiyong Pang, Wenyu Zhuang
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引用次数: 0

摘要

了解隧道开挖过程中岩体能量演化过程对揭示深部地质灾害隐患具有重要意义。基于弹粘塑性损伤模型对连续隧道进行了一系列数值模拟,并引入随时间变化的能量指数、应变能密度(SED)和能量耗散率(EDR),分析了能量积累和释放的时空演化过程。随后,从能量的角度对岩爆和大挤压变形提出了一些新的见解。进一步讨论了开挖速率和导洞对能量演化的影响。结果表明:深埋隧道开挖总体上包含一个能量积累过程(一个SED峰)和两个能量释放过程(两个EDR峰);岩体能量在时间上表现为“释放-积累-再释放”的演化规律,在空间上表现为“深-浅-深”的迁移规律。开挖卸载效应、弹性应力重分布和粘塑性应变积累诱发了初始能量释放、能量积累和二次能量释放。岩爆具有不同的时空特征;在开挖前后出现两个EDR峰值,分别表示开挖工作面瞬时岩爆和侧壁延迟岩爆的可能性。降低开挖速度有助于降低SED峰值和EDR峰值,从而减轻岩爆的可能性;瞬态卸载引起的初始能量释放更为突然和显著,明显增加了瞬时岩爆的危险性。导洞有利于开挖工作面前方岩体能量的预集中,从而降低二次开挖时的能量峰值。研究结果为深部隧道岩爆及大变形的评价与控制提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of energy evolution process of rock mass during deep tunnel excavation based on elasto-viscoplastic damage model and time-dependent energy indices

Understanding the energy evolution process of rock mass during tunnel excavation is crucial for revealing the potential of deep geological hazards. A series of numerical simulations for continuous tunneling were conducted based on an elasto-viscoplastic damage model, and time-dependent energy indices, strain energy density (SED) and energy dissipation rate (EDR) were introduced to analyze the spatio-temporal evolutionary process of energy accumulation and release. Several new insights on rockburst and large squeezing deformation were subsequently proposed from an energy perspective. The influences of excavation rate and pilot tunnel on energy evolution were further discussed. Results indicate that deep tunnel excavation generally involves an energy accumulation process (a SED peak) and two energy release processes (two EDR peaks); the energy of rock mass exhibits a temporal evolution pattern of "release-accumulation-re-release" and a spatial migration pattern of "deep-shallow-deep." Initial energy release, energy accumulation, and secondary energy release are induced by excavation unloading effect, elastic stress redistribution, and viscoplastic strain accumulation. Rockbursts exhibit different spatio-temporal characteristics; two EDR peaks appear shortly before and after excavation, indicating the potential of instantaneous rockbursts at excavation face and delayed rockbursts at sidewalls, respectively. Reducing excavation rate helps to lower the SED peak and EDR peaks, thus mitigating the rockburst potential; transient unloading can cause a more sudden and significant initial energy release, obviously increasing the risk of instantaneous rockbursts. Pilot tunnel contributes to energy pre-concentration of rock mass ahead of excavation face, thereby decreasing energy peak upon secondary tunneling. The findings of this study provide theoretical basis for evaluation and control of rockburst and large deformation in deep tunnels.

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来源期刊
Acta Geotechnica
Acta Geotechnica ENGINEERING, GEOLOGICAL-
CiteScore
9.90
自引率
17.50%
发文量
297
审稿时长
4 months
期刊介绍: Acta Geotechnica is an international journal devoted to the publication and dissemination of basic and applied research in geoengineering – an interdisciplinary field dealing with geomaterials such as soils and rocks. Coverage emphasizes the interplay between geomechanical models and their engineering applications. The journal presents original research papers on fundamental concepts in geomechanics and their novel applications in geoengineering based on experimental, analytical and/or numerical approaches. The main purpose of the journal is to foster understanding of the fundamental mechanisms behind the phenomena and processes in geomaterials, from kilometer-scale problems as they occur in geoscience, and down to the nano-scale, with their potential impact on geoengineering. The journal strives to report and archive progress in the field in a timely manner, presenting research papers, review articles, short notes and letters to the editors.
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