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Vibrations induced by high initial stress release during underground excavations

机译:地下开挖过程中高初始应力释放引起的振动

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Excavation unloading under high initial stress is a typical dynamic process subjected to the combined effects of different factors. In this study, a mathematical physics method for a two-dimensional circular excavation was developed to investigate the mechanism involved in unloading vibration, which is capable of providing insights into the quantitative relationships between vibration features and correlative factors such as the initial stress, cross-sectional area of the tunnel, unloading rates and unloading paths. Then the dynamic unloading excavation process was implemented in the discrete element program PFC 2D for numerical analysis after verifications against the theoretical results. In particular, the characteristics of unloading waveform under high initial stress were investigated for various ratios of horizontal and vertical in situ stresses and aspect ratios of rectangular tunnels. The temporal and spatial characteristics of the excavation process can also be illustrated. In a practical project which considered the combined action of both the blast and unloading vibration, the finite difference program FLAC 3D was further adopted to investigate the contribution of unloading vibration to the character of the seismogram. Results are presented which indicate the 2D numerical analysis provides satisfactory approximation to the excavation process. While the peak particle velocity (PPV) is in direct proportion to the in situ stress variation, it decreases significantly along with the increase of unloading time. In addition, excavation by drill-and blast (D&B) method should be taken as a dynamic process of blast loading before unloading in a period of time, instead of instantaneous unloading. Although unloading vibration can be generated and significant damage around the tunnel can be induced in the process, distinct unloading vibration can only be generated under high in situ stress and unloading rate. (C) 2016 Elsevier Ltd. All rights reserved.
机译:高初始应力下的开挖卸荷是一个典型的动态过程,受到不同因素的综合作用。在这项研究中,开发了一种用于二维圆形开挖的数学物理方法,以研究涉及振动卸载的机制,该方法能够提供对振动特征与相关因素(例如初始应力,横向应力)之间的定量关系的见解。隧道的截面积,卸载率和卸载路径。然后在对理论结果进行验证之后,在离散元程序PFC 2D中进行了动态卸载开挖过程,以进行数值分析。特别地,研究了水平和垂直原地应力的各种比率以及矩形隧道的纵横比在高初始应力下的卸载波形特性。挖掘过程的时间和空间特征也可以说明。在考虑爆破和卸载振动共同作用的实际项目中,进一步采用有限差分程序FLAC 3D来研究卸载振动对地震图特征的影响。结果表明,二维数值分析为开挖过程提供了令人满意的近似值。虽然峰值粒子速度(PPV)与原位应力变化成正比,但随着卸载时间的增加,峰值速度显着下降。此外,应将钻爆法(D&B)开挖作为爆破加载的动态过程,而不是瞬时卸载,而是在一段时间内卸载。尽管在此过程中会产生卸载振动并在隧道周围引起明显的损坏,但只有在高现场应力和卸载速率下才能产生明显的卸载振动。 (C)2016 Elsevier Ltd.保留所有权利。

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