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Full-scale physical modelling of fissure grouting in deep underground rocks

机译:深部地下岩石裂缝灌浆的全尺寸物理模拟

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摘要

Parameters predetermination and grouting quality evaluation are of vitally importance issues for rock grouting. Because of emerged new features (e.g. high groundwater pressure) in deep underground rocks with depth of more than 1000 m, estimations on grouting parameters should be reexamined. Due to various aspects of the grout flow especially small sizes of major factors, full-scale physical modelling is considerably suitable for bridging the gaps between theoretical investigations and field works. In this paper, a full-scale physical modelling system is developed to investigate fissure grouting with high pressure in deep underground rocks such as deep coal mining. Developed modelling equipment can run smoothly under high grouting pressure (up to 45 MPa) and high groundwater pressure (up to 15 MPa). The aperture of fissure ranges from 0.2 mm to 8 mm. Surface roughness of the fissure, flow rate of grouts, initial viscosity of grouts to be injected, grouting pressure and time, groundwater, penetration length and permeability of grouted fissures can be qualitatively estimated or quantitatively evaluated.For evaluating whether a lower final grouting pressure could be acceptable in treatment of deep rocks with depth of around 1000 m via pre-grouting from the surface, both experimental trials based on developed physical modelling system and field study are carried out. Because of greatly increased gravity of grouts column in vertical holes, observed results offer a strong support to predetermination of a lowered final pre-grouting pressure (i.e. at 2 times of that of groundwater) within favorable reduced permeability in deep rocks. Measured effective penetrations are just 65-80% of maximum penetrations might due to adverse impacts of the groundwater with high pressure. It also reveals that grouted fissures can successfully stop predefined groundwater (i.e. 10 MPa), provided the length of well-grouted fissure is no less than 0.5 m in model tests. The results might call our special attentions to not only the adverse impacts of groundwater, but also the favorable effects on final grouting pressure caused by increased depth in pre-grouting in deep underground rocks.
机译:参数预先确定和注浆质量评估对于岩石注浆至关重要。由于在深度超过1000 m的深层地下岩石中出现了新的特征(例如高地下水压力),因此应重新检查注浆参数的估算值。由于灌浆流动的各个方面,尤其是主要因素的规模较小,因此,全面的物理建模非常适合弥合理论研究与现场工作之间的差距。本文开发了一个全面的物理建模系统,以研究深部地下岩石(例如深部煤矿)中的高压裂隙灌浆。开发的建模设备可以在高灌浆压力(最高45 MPa)和高地下水压力(最高15 MPa)下平稳运行。裂缝的孔径范围为0.2毫米至8毫米。裂缝的表面粗糙度,灌浆的流速,注入的灌浆的初始粘度,灌浆压力和时间,地下水,灌浆裂缝的渗透长度和渗透性可以定性评估或定量评估,以评估是否可以降低最终灌浆压力通过表面预灌浆处理深度约1000 m的深层岩石是可以接受的,这两项实验都是基于已开发的物理建模系统进行的试验和现场研究。由于灌浆柱在垂直孔中的重力大大增加,观察到的结果为在较低的深部岩石渗透率内降低最终预灌浆压力(即是地下水压力的2倍)的预先确定提供了有力的支持。测得的有效渗透率仅为最大渗透率的65-80%,这可能是由于高压地下水对地下水的不利影响所致。这也表明,只要在模型试验中良好注浆的裂缝的长度不小于0.5 m,注浆裂缝就可以成功地停止预定的地下水(即10 MPa)。研究结果可能引起我们的特别关注,不仅是地下水的不利影响,还包括深部地下岩石中预灌浆深度的增加对最终灌浆压力的有利影响。

著录项

  • 来源
    《Tunnelling and underground space technology》 |2019年第7期|249-261|共13页
  • 作者单位

    Sichuan Univ, Coll Water Resource & Hydropower, Chengdu 610065, Sichuan, Peoples R China|Sichuan Univ, State Key Lab Hydraul & Mt River Engn, Chengdu 610065, Sichuan, Peoples R China;

    Sichuan Univ, Coll Water Resource & Hydropower, Chengdu 610065, Sichuan, Peoples R China|Sichuan Univ, State Key Lab Hydraul & Mt River Engn, Chengdu 610065, Sichuan, Peoples R China;

    China Coal Technol & Engn Grp Corp, Beijing 100013, Peoples R China|Natl Engn Lab Deep Shaft Construct Technol Coal M, Beijing 100013, Peoples R China;

    China Coal Technol & Engn Grp Corp, Beijing 100013, Peoples R China|Natl Engn Lab Deep Shaft Construct Technol Coal M, Beijing 100013, Peoples R China;

    China Coal Technol & Engn Grp Corp, Beijing 100013, Peoples R China|Natl Engn Lab Deep Shaft Construct Technol Coal M, Beijing 100013, Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Rock fissure grouting; Physical modelling; Final grouting pressure; High groundwater pressure; Deep underground engineering;

    机译:裂隙灌浆;物理建模;最终灌浆压力;地下水高压力;深层地下工程;

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