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Structure instability forecasting and analysis of giant rock pillars in steeply dipping thick coal seams 被引量:9
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作者 Xing-ping Lai Huan Sun +3 位作者 Peng-fei Shan Ming Cai Jian-tao Cao Feng Cui 《International Journal of Minerals,Metallurgy and Materials》 SCIE EI CAS CSCD 2015年第12期1233-1244,共12页
Structure stability analysis of rock masses is essential for forecasting catastrophic structure failure in coal seam mining. Steeply dipping thick coal seams (SDTCS) are common in the Urumqi coalfield, and some dyna... Structure stability analysis of rock masses is essential for forecasting catastrophic structure failure in coal seam mining. Steeply dipping thick coal seams (SDTCS) are common in the Urumqi coalfield, and some dynamical hazards such as roof collapse and mining-induced seismicity occur frequently in the coal mines. The cause of these events is mainly structure instability in giant rock pillars sand- wiched between SDTCS. Developing methods to predict these events is important for safe mining in such a complex environment. This study focuses on understanding the structural mechanics model of a giant rock pillar and presents a viewpoint of the stability of a trend sphenoid fractured beam (TSFB). Some stability index parameters such as failure surface dips were measured, and most dips were observed to be between 46° and 51°. We used a digital panoramic borehole monitoring system to measure the TSFB's height (△H), which varied from 56.37 to 60.50 m. Next, FLAC^3D was used to model the distribution and evolution of vertical displacement in the giant rock pillars; the results confirmed the existence of a TSFB structure. Finally, we investigated the acoustic emission (AE) energy accumulation rate and observed that the rate commonly ranged from 20 to 40 kJ/min. The AE energy accumulation rate could be used to anticipate impeding seismic events related to structure failure. The results presented provide a useful approach for forecasting catastrophic events related to structure instability and for developing hazard prevention technology for mining in SDTCS. 展开更多
关键词 coal mining structural instability rock pillars forecasting acoustic emission (AE) steeply dipping coal beds
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Stress distribution and surrounding rock control of mining near to the overlying coal pillar in the working face 被引量:8
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作者 Rui Gao Bin Yu Xiangbin Meng 《International Journal of Mining Science and Technology》 SCIE EI CSCD 2019年第6期881-887,共7页
The occurrence of overlying coal pillar(OCP)exerts a strong effect on the stress and strain distribution of the surrounding rock in the stope.In this paper,the stress distribution characteristics are analyzed via the ... The occurrence of overlying coal pillar(OCP)exerts a strong effect on the stress and strain distribution of the surrounding rock in the stope.In this paper,the stress distribution characteristics are analyzed via the numerical calculation with the account of OCP presence or absence.In addition,this study revealed the joint effect of side pressure relief area of the goaf and stress concentration in OCP on the final stress distribution.Furthermore,the rules of abutment stress distribution affected by three influencing factors,namely horizontal-vertical distances between OCP and working face and buried depth of OCP,are analyzed.The functional model linking the peak stress of surrounding rock with the above influencing factors is developed.The field application of the above results proved that the rib spalling and deformation of a 2.95 m-high and 5.66 m-wide roadway could be efficiently controlled by rationally adjusting working states of the support,and adopting the hydraulic prop coordinated with the p type metal beam and anchor cable to strengthen the surrounding rock of working face and roadway,respectively.The proposed measures are considered appropriate to satisfy the safe operation requirements. 展开更多
关键词 Overlying coal pillar(OCP) Stress distribution Influencing factors SURROUNDING rock control
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Surrounding rock control of gob-side entry driving with narrow coal pillar and roadway side sealing technology in Yangliu Coal Mine 被引量:7
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作者 Zha Wenhua Shi Hao +1 位作者 Liu San Kang Changhao 《International Journal of Mining Science and Technology》 SCIE EI CSCD 2017年第5期819-823,共5页
Gob-side entry driving can increase coal recovery ratio, and it is implied in many coal mines. Based on geological condition of 10416 working face tailentry in Yangliu Coal Mine, the surrounding rock deformation chara... Gob-side entry driving can increase coal recovery ratio, and it is implied in many coal mines. Based on geological condition of 10416 working face tailentry in Yangliu Coal Mine, the surrounding rock deformation characteristics of gob-side entry driving with narrow coal pillar is analysed, reasonable size of coal pillar and reasonable roadway excavation time after mining are achieved. Surrounding rock control technology and effective roadway side sealing technology are proposed and are taken into field practice. The results showed that a safer and more efficient mining of working face can be achieved. In addition, results of this paper also have important theoretical significance and valuable reference for surrounding rock control technology of gob-side entry driving with narrow coal pillar under special geological condition. 展开更多
关键词 Narrow coal pillar Gob-side ENTRY driving SURROUNDING rock control ROADWAY SIDE sealing technology
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Limitations and potential design risks when applying empirically derived coal pillar strength equations to real-life mine stability problems 被引量:4
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作者 Russell Frith Guy Reed 《International Journal of Mining Science and Technology》 EI CSCD 2019年第1期17-25,共9页
The method of determining coal pillar strength equations from databases of stable and failed case histories is more than 50 years old and has been applied in different countries by different researchers in a range of ... The method of determining coal pillar strength equations from databases of stable and failed case histories is more than 50 years old and has been applied in different countries by different researchers in a range of mining situations. While common wisdom sensibly limits the use of the resultant pillar strength equations and methods to design scenarios that are consistent with the founding database, there are a number of examples where failures have occurred as a direct result of applying empirical design methods to coal pillar design problems that are inconsistent with the founding database. This paper explores the reasons why empirically derived coal pillar strength equations tend to be problem-specific and should be considered as providing no more than a pillar strength ‘‘index." These include the non-consideration of overburden horizontal stress within the mine stability problem, an inadequate definition of supercritical overburden behavior as it applies to standing coal pillars, and the non-consideration of overburden displacement and coal pillar strain limits. All of which combine to potentially complicate and confuse the back-analysis of coal pillar strength from failed cases. A modified coal pillar design representation and model are presented based on coal pillars acting to reinforce a horizontally stressed overburden, rather than suspend an otherwise unstable self-loaded overburden or section, the latter having been at the core of historical empirical studies into coal pillar strength and stability. 展开更多
关键词 coal pillar design pillar strength OVERBURDEN MECHANICS LIMITATIONS of pillar design
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Coal pillar design when considered a reinforcement problem rather than a suspension problem 被引量:2
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作者 Russell Frith Guy Reed 《International Journal of Mining Science and Technology》 SCIE EI CSCD 2018年第1期11-19,共9页
Current coal pillar design is the epitome of suspension design.A defined weight of unstable overburden material is estimated, and the dimensions of the pillars left behind are based on holding up that material to a pr... Current coal pillar design is the epitome of suspension design.A defined weight of unstable overburden material is estimated, and the dimensions of the pillars left behind are based on holding up that material to a prescribed factor of safety.In principle, this is no different to early roadway roof support design.However, for the most part, roadway roof stabilisation has progressed to reinforcement, whereby the roof strata is assisted in supporting itself.This is now the mainstay of efficient and effective underground coal production.Suspension and reinforcement are fundamentally different in roadway roof stabilisation and lead to substantially different requirements in terms of support hardware characteristics and their application.In suspension, the primary focus is the total load-bearing capacity of the installed support and ensuring that it is securely anchored outside of the unstable roof mass.In contrast, reinforcement recognises that roof de-stabilisation is a gradational process with ever-increasing roof displacement magnitude leading to ever-reducing stability.Key roof support characteristics relate to such issues as system stiffness, the location and pattern of support elements and mobilising a defined thickness of the immediate roof to create(or build) a stabilising strata beam.The objective is to ensure that horizontal stress is maintained at a level that prevents mass roof collapse.This paper presents a prototype coal pillar and overburden system representation where reinforcement, rather than suspension, of the overburden is the stabilising mechanism via the action of in situ horizontal stresses.Established roadway roof reinforcement principles can potentially be applied to coal pillar design under this representation.The merit of this is evaluated according to failed pillar cases as found in a series of published databases.Based on the findings, a series of coal pillar system design considerations for bord and pillar type mine workings are provided.This potentially allows a more flexible approach to coal pillar sizing within workable mining layouts, as compared to common industry practice of a single design factor of safety(Fo S) under defined overburden dead-loading to the exclusion of other relevant overburden stabilising influences. 展开更多
关键词 coal pillar design OVERBURDEN stability rock REINFORCEMENT Bord and pillar mining
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Physical model of overlying rock movement law in Yuwang coal mine
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作者 HUO Shusen TAO Zhigang +2 位作者 LIU Keyuan LI Yong HE Manchao 《Journal of Mountain Science》 SCIE CSCD 2024年第12期4323-4344,共22页
With the increase in mining depth,traditional coal mining methods not only waste coal resources but also seriously impact the stability of the roadway support structure during the collapse of the overburden rock.In co... With the increase in mining depth,traditional coal mining methods not only waste coal resources but also seriously impact the stability of the roadway support structure during the collapse of the overburden rock.In contrast,the top-cutting and depressurization technology utilizes the expansion effect of the rock effectively.This technology allows the rock body to collapse entirely,filling up the mining area through active intervention,which reduces the subsidence height of the overburden rock and significantly improves the coal extraction rate in the mining area.This study utilizes 3D seismic exploration technology to analyze the spatial distribution characteristics of fissure zones and rich zones of the rock strata in the mining area and investigate the movement law of overburdened rock during the coal seam mining process using the 110 mining method.It conducts numerical analysis combined with geomechanical modeling experiments to explore the movement law of the overburden rock under the influence of mining activities at Yuwang Coal Mine.The numerical analysis results indicate that the horizontal and vertical displacements of the rock body on the roof of the roadway are minimal when the angle of the slit is 75°.The overlying rock movement during the test is categorized by modeling the stress and strain fields into the following stages:fracture zone expansion,collapse zone gestation,rapid collapse zone development,and overlying rock stabilization.The rock on the cut side collapses more completely,breaking up and expanding to support the overburden,effectively reducing the depth of crack expansion and the extent of rock settlement and deformation.The integrity of the roadway roof remains intact during the rock collapse under NPR anchors.This study provides a scientific basis for understanding the movement law of overlying rock and for controlling the stability of the roadway perimeter rock in kilometer-deep underground mining. 展开更多
关键词 No coal pillar 3D seismic NPR anchor cable Numerical simulation Physical model Overlying rock mass Mechanical model
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Pillar design and coal burst experience in Utah Book Cliffs longwall operations 被引量:1
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作者 Christopher Mark Michael Gauna 《International Journal of Mining Science and Technology》 SCIE EI CAS CSCD 2021年第1期33-41,共9页
Longwall mining has existed in Utah for more than half a century.Much of this mining occurred at depths of cover that significantly exceed those encountered by most other US longwall operations.Deep cover causes high ... Longwall mining has existed in Utah for more than half a century.Much of this mining occurred at depths of cover that significantly exceed those encountered by most other US longwall operations.Deep cover causes high ground stress,which can combine with geology to create a coal burst hazard.Nearly every longwall mine operating within the Utah’s Book Cliffs coalfield has been affected by coal bursts.Pillar design has been a key component in the burst control strategies employed by mines in the Book Cliffs.Historically,most longwall mines employed double-use two-entry yield pillar gates.Double-use signifies that the gate system serves first as the headgate,and then later serves as the tailgate for the adjacent panel.After the 1996 burst fatality at the Aberdeen Mine,the inter-panel barrier design was introduced.In this layout,a wide barrier pillar protects each longwall panel from the previously mined panel,and each gate system is used just once.This paper documents the deep cover longwall mining conducted with each type of pillar design,together with the associated coal burst experience.Each of the six longwall mining complexes in the Book Cliffs having a coal burst history is described on a panel-by-panel basis.The analysis shows that where the mining depth exceeded 450 m,each design has been employed for about 38000 total m of longwall panel extraction.The double-use yield pillar design has been used primarily at depths less than 600 m,however,while the inter-panel barrier design has been used mainly at depths exceeding 600 m.Despite its greater depth of use,the inter-panel barrier gate design has been associated with about one-third as much face region burst activity as the double-use yield pillar design. 展开更多
关键词 LONGWALL Ground control coal burst pillar design Yield pillar
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Study on the disaster caused by the linkage failure of the residual coal pillar and rock stratum during multiple coal seam mining:mechanism of progressive and dynamic failure
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作者 Yunliang Tan Qing Ma +4 位作者 Xiaoli Liu Xuesheng Liu Derek Elsworth Ruipengg Qian Junlong Shang 《International Journal of Coal Science & Technology》 EI CAS CSCD 2023年第3期122-135,共14页
Multi-seam mining often leads to the retention of a significant number of coal pillars for purposes such as protection,safety,or water isolation.However,stress concentration beneath these residual coal pillars can sig... Multi-seam mining often leads to the retention of a significant number of coal pillars for purposes such as protection,safety,or water isolation.However,stress concentration beneath these residual coal pillars can significantly impact their strength and stability when mining below them,potentially leading to hydraulic support failure,surface subsidence,and rock bursting.To address this issue,the linkage between the failure and instability of residual coal pillars and rock strata during multi-seam mining is examined in this study.Key controls include residual pillar spalling,safety factor(f.),local mine stiffness(LMS),and the post-peak stiffness(k)of the residual coal pillar.Limits separating the two forms of failure,progressive versus dynamic,are defined.Progressive failure results at lower stresses when the coal pillar transitions from indefinitely stable(f,>1.5)to failing(f,<1.5)when the coal pillar can no longer remain stable for an extended duration,whereas sud-den(unstable)failure results when the strength of the pillar is further degraded and fails.The transition in mode of failure is defined by the LMS/k ratio.Failure transitions from quiescent to dynamic as LMS/k.<1,which can cause chain pillar instability propagating throughout the mine.This study provides theoretical guidance to define this limit to instability of residual coal pillars for multi-seam mining in similar mines. 展开更多
关键词 Multi-seam mining Residual coal pillars rock stratum Linkage instability mechanism Local mine stiffness
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Coupling effects of coal pillars of thick coal seams in large-space stopes and hard stratum on mine pressure 被引量:11
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作者 Xia Binwei Jia Jinlong +2 位作者 Yu Bin Zhang Xuan Li Xiaolong 《International Journal of Mining Science and Technology》 SCIE EI CSCD 2017年第6期965-972,共8页
Concerning the issue of mine pressure behaviors occurred in fully mechanized caving mining of thick coal seams beneath hard stratum in Datong Mining Area, combined with thin and thick plate theory, the paper utilizes ... Concerning the issue of mine pressure behaviors occurred in fully mechanized caving mining of thick coal seams beneath hard stratum in Datong Mining Area, combined with thin and thick plate theory, the paper utilizes theoretical analysis, similar experiments, numerical simulations and field tests to study the influence of remaining coal pillars in Jurassic system goaf on hard stratum fractures, as well as mine pressure behaviors under their coupling effects. The paper concludes the solution formula of initial fault displacement in hard stratum caused by remaining coal pillars. Experiments prove that coupling effects can enhance mine pressure behaviors on working faces. When inter-layer inferior key strata fractures, mine pressure phenomenon such as significant roof weighting steps and increasing resistance in support.When inter-layer superior key strata fractures, the scope of overlying strata extends to Jurassic system goaf, dual-system stopes cut through, and remaining coal pillars lose stability. As a result, the bottom inferior key strata also lose stability. It causes huge impacts on working face, and the second mine pressure behaviors. These phenomena provide evidence for research on other similar mine strata pressure behaviors occurred in dual-system mines with remaining coal pillars. 展开更多
关键词 Dual system CAVING coal pillar HARD rock Broken INSTABILITY Mining pressure REVEAL
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Characteristics of stress distribution in floor strata and control of roadway stability under coal pillars 被引量:9
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作者 Tongqiang Xiao Bai Jianbiao +1 位作者 Xu Lei Zhang Xuebin 《Mining Science and Technology》 EI CAS 2011年第2期243-247,共5页
Given the difficulties encountered in roadway support under coal pillars,we studied the characteristics of stress distribution and their effect on roadway stability,using theoretical analysis and numerical simulation.... Given the difficulties encountered in roadway support under coal pillars,we studied the characteristics of stress distribution and their effect on roadway stability,using theoretical analysis and numerical simulation.The results show that,under a coal pillar,vertical stress in a floor stratum increases while horizontal stress decreases.We conclude that the increased difference between vertical and horizontal stress is an important reason for deformation of the surrounding rock and failures of roadways under coal pillars.Based on this,we propose control technologies of the surrounding rock of a roadway under a coal pillar,such as high strength and high pre-stressed bolt support,cable reinforcement support single hydraulic prop with beam support and reinforcement by grouting of the surrounding rock,which have been successfully applied in a stability control project of a roadway under a coal pillar. 展开更多
关键词 Close-distance seams coal pillar Stress distribution Roadway layout Surrounding rock control
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Focal mechanism caused by fracture or burst of a coal pillar 被引量:8
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作者 CAO An-ye DOU Lin-ming CHEN Guo-xiang GONG Si-yuan WANG Yu-gang LI Zhi-hua 《Journal of China University of Mining and Technology》 EI 2008年第2期153-158,共6页
As a regional, real-time and dynamic method, microseismic monitoring technology is quite an appropriate technology for forecasting geological hazards, such as rock bursts, mine tremors, coal and gas outbursts and can ... As a regional, real-time and dynamic method, microseismic monitoring technology is quite an appropriate technology for forecasting geological hazards, such as rock bursts, mine tremors, coal and gas outbursts and can even be used to prevent or at least reduce these disasters. The study of the focal mechanisms of different seismic sources is the prerequisite and basis for forecasting rock burst by microseismic monitoring technology. Based on the analysis on the mechanism and fracture course of coal pillars where rock bursts occur mostly, the equivalent point source model of the seismicity caused by a coal pillar was created. Given the model, the seismic displacement equation of a coal pillar was analyzed and the seismic mechanism was pointed out by seismic wave theory. The course of the fracture of the coal pillar was simulated closely in the laboratory and the equivalent microseismic signals of the fractures of the coal pillar were acquired using a TDS-6 experimental system. The results show that, by the pressure and friction of a medium near the seismic source, both a compression wave and a shear wave will be emitted and shear fracture will be induced at the moment of breakage. The results can be used to provide an academic basis to forecast and prevent rock bursts or tremors in a coal pillar. 展开更多
关键词 coal pillar rock burst MICROSEISMICITY FRACTURE focal mechanism point source model
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Stability of coal pillar in gob-side entry driving under unstable overlying strata and its coupling support control technique 被引量:11
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作者 Yuan Zhang Zhijun Wan +4 位作者 Fuchen Li Changbing Zhou Bo Zhang Feng Guo Chengtan Zhu 《International Journal of Mining Science and Technology》 SCIE EI 2013年第2期204-210,共7页
Considering the situation that it is difficult to control the stability of narrow coal pillar in gob-side entry driving under unstable overlying strata, the finite difference numerical simulation method was adopted to... Considering the situation that it is difficult to control the stability of narrow coal pillar in gob-side entry driving under unstable overlying strata, the finite difference numerical simulation method was adopted to analyze the inner stress distribution and its evolution regularity, as well as the deformation characteristics of narrow coal pillar in gob-side entry driving, in the whole process from entry driving of last working face to the present working face mining. A new method of narrow coal pillar control based on the triune coupling support technique (TCST), which includes that high-strength prestressed thread steel bolt is used to strain the coal on the goaf side, and that short bolt to control the integrity of global displacement zone in coal pillar on the entry side, and that long grouting cable to fix anchor point to constrain the bed separation between global displacement zone and fixed zone, is thereby generated and applied to the field production. The result indicates that after entry excavating along the gob under unstable overlying strata, the supporting structure left on the gob side of narrow coal pillar is basically invalid to maintain the coal-pillar stability, and the large deformation of the pillar on the gob side is evident. Except for the significant dynamic pressure appearing in the coal mining of last working face and overlying strata stabilizing process, the stress variation inside the coal pillar in other stages are rather steady, however, the stress expansion is obvious and the coal pillar continues to deform. Once the gob-side entry driving is completed, a global displacement zone on the entry side appears in the shallow part of the pillar, whereas, a relatively steady fixed zone staying almost still in gob-side entry driving and present working face mining is found in the deep part of the pillar. The application of TCST can not only avoid the failure of pillar supporting structure, but exert the supporting capacity of the bolting structure left in the pillar of last sublevel entry, thus to jointly maintain the stability of coal pillar. 展开更多
关键词 Gob-side entry driving Unstable surrounding rock coal pillar stability Surrounding rock control Coupling support
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A physical model study of surrounding rock failure near a fault under the influence of footwall coal mining 被引量:2
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作者 Shukun Zhang Lu Lu +1 位作者 Ziming Wang Shuda Wang 《International Journal of Coal Science & Technology》 EI CAS CSCD 2021年第4期626-640,共15页
A study of the deformation of the surrounding rock and coal pillars near a fault under the influence of mining is conducted on a physical model for the design of coal pillars to support and maintain the roofs of adjac... A study of the deformation of the surrounding rock and coal pillars near a fault under the influence of mining is conducted on a physical model for the design of coal pillars to support and maintain the roofs of adjacent fault roadways.This research is based on the 15101 mining face in the Baiyangling Coal Mine,Shanxi,China,and uses simulation tests similar to digital speckle test technology to analyse the displacement,strain and vertical stress fields of surrounding rocks near faults to determine the influence of the coal pillar width.The results are as follows.The surrounding rock of the roadway roof fails to form a balance hinge for the massive rock mass.The vertical displacement,vertical strain and other deformation of the surrounding rock near the fault increase steeply as the coal pillar width decreases.The steep increase in deformation corresponds to a coal pillar width of 10 m.When the coal pillar width is 7.5 m,the pressure on the surrounding rock near the footwall of the fault suddenly increases,while the pressure on the hanging wall near the fault increases by only 0.35 MPa.The stress of the rock mass of the hanging wall is not completely shielded by the fault,and part of the load disturbance is still transmitted to the hanging wall via friction.The width of the fault coal pillars at the 15101 working face is determined to be 7.5 m,and the monitoring data verify the rationality of the fault coal pillars. 展开更多
关键词 FAULT Mining roadway Surrounding rock coal pillar Physical model
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User-friendly finite element design of main entries, barrier pillars,and bleeder entries
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作者 William G.Pariseau Mark K.Larson +1 位作者 Heather E.Lawson Douglas R.Tesarik 《International Journal of Mining Science and Technology》 SCIE EI CSCD 2018年第1期3-10,共8页
This contribution describes development and application of a user-friendly finite element program,UT3PC, to address three important problems in underground coal mine design:(1) safety of main entries,(2) barrier pilla... This contribution describes development and application of a user-friendly finite element program,UT3PC, to address three important problems in underground coal mine design:(1) safety of main entries,(2) barrier pillar size needed for entry protection, and(3) safety of bleeder entries during the advance of an adjacent longwall panel.While the finite element method is by far the most popular engineering design tool of the digital age, widespread use by the mining community has been impeded by the relatively high cost of and the need for lengthy specialized training in numerical methods.Implementation of UT3PC overcomes these impediments in three easy steps.First, a material properties file is prepared for the considered site.Next, mesh generation is automatic through an interactive process.A third and last step is simply execution of the program.Examples using data from several western coal mines illustrate the ease of using the application for analysis of main entries, barrier pillars, and bleeder entry safety. 展开更多
关键词 Finite element coal MINE layout design MAIN ENTRIES BARRIER pillarS Bleeder ENTRIES
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Preliminary rib support requirements for solid coal ribs using a coal pillar rib rating(CPRR)
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作者 Khaled Mohamed Mark Van Dyke +2 位作者 Gamal Rashed Morgan MSears Robert Kimutis 《International Journal of Mining Science and Technology》 SCIE EI CAS CSCD 2021年第1期15-22,共8页
Researchers from the National Institute for Occupational Safety and Health(NIOSH)are developing a coal pillar rib rating(CPRR)technique to measure the integrity of coal ribs.The CPRR characterizes the rib composition ... Researchers from the National Institute for Occupational Safety and Health(NIOSH)are developing a coal pillar rib rating(CPRR)technique to measure the integrity of coal ribs.The CPRR characterizes the rib composition and evaluates its impact on the inherent stability of the coal ribs.The CPRR utilizes four parameters:rib homogeneity,bedding condition,face cleat orientation with respect to entry direction,and rib height.All these parameters are measurable in the field.A rib data collecting procedure and a simple sheet to calculate the CPRR were developed.The developed CPRR can be used as a rib quality mapping tool in underground coal mines and to determine the potential of local rib instabilities and support requirements associated with overburden depth.CPRR calculations were conducted for 22 surveyed solid coal ribs,mainly composed of coal units.Based on this study,the rib performance was classified into four categories.A preliminary minimum primary rib support density(PRSD)line was obtained from these surveyed cases.Two sample cases are presented that illustrate the data collection form and CPRR calculations. 展开更多
关键词 coal rib stability Rib support design coal pillar rib rating Rib quality mapping CPRR coal classification
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大倾角特厚煤层综放“分段-分层”复合开采煤柱失稳机制
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作者 刘用 杨耀 +6 位作者 王骁 王文强 吴学松 曹安业 陆祖军 杨涛 魏占全 《煤矿安全》 北大核心 2025年第1期146-154,共9页
为解决砚北煤矿大倾角特厚煤层综放“分段-分层”复合开采临空侧大能量微震频发、巷道大变形问题,采用理论分析、数值模拟和现场实测方法对区段煤柱承载应力特征、煤柱失稳机制开展研究;建立了复合开采煤柱承载力学模型,理论分析了煤柱... 为解决砚北煤矿大倾角特厚煤层综放“分段-分层”复合开采临空侧大能量微震频发、巷道大变形问题,采用理论分析、数值模拟和现场实测方法对区段煤柱承载应力特征、煤柱失稳机制开展研究;建立了复合开采煤柱承载力学模型,理论分析了煤柱宽度影响下承载应力分布主要以非对称马鞍形、非对称平台形及单峰形3种形式存在,确定了煤柱承载应力以非对称平台形呈现时更易失稳。模拟结果表明:倾斜分层开采超前支承压力影响下,区段煤柱处于高应力状态,应力变化速率最为显著,大倾角特厚煤层“分段-分层”复合开采局部应力集中是煤柱失稳的主要诱因;基于大倾角特厚煤层复合开采区段煤柱失稳机制、工作面冲击地压防控思路与重点区域,制定的以顶板深孔预裂爆破、煤体爆破组成的远近结合、分批卸压减震防冲方案,有效降低了临空侧应力、能量水平,显著减小巷道大变形,避免了大倾角特厚煤层“分段-分层”复合开采煤柱区冲击地压的发生。 展开更多
关键词 大倾角煤层 冲击地压 复合开采 区段煤柱 围岩稳定性 煤柱失稳
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三角煤柱孤岛工作面冲击地压防治技术研究
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作者 王文杰 陈理强 +1 位作者 董文卓 孙铄寒 《煤炭技术》 CAS 2025年第1期78-82,共5页
为解决近邻三角形煤柱孤岛工作面冲击地压防治问题,分析了国内该条件下导致冲击地压的研究现状;以唐山矿Y392工作面为研究对象,通过理论分析得出了以大埋深、上覆不规则煤柱、本层三角形煤柱、孤岛工作面冲击地压的主控因素;采用FLAC3D... 为解决近邻三角形煤柱孤岛工作面冲击地压防治问题,分析了国内该条件下导致冲击地压的研究现状;以唐山矿Y392工作面为研究对象,通过理论分析得出了以大埋深、上覆不规则煤柱、本层三角形煤柱、孤岛工作面冲击地压的主控因素;采用FLAC3D建立了数值模型,分析了本层三角形煤柱孤岛工作面的应力分布规律;提出了通过顶板预裂调控冲击地压主控因素的防冲方法;最后通过现场工程实践,建立并实施了以顶板预裂为主的冲击地压防治技术,通过应力法和钻屑法验证了顶板预裂对该条件下的冲击地压防控具有良好的效果。 展开更多
关键词 冲击地压 三角形煤柱 孤岛工作面 顶板预裂 数值模拟
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上分层遗留煤柱下方沿空巷道煤柱宽度优化设计
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作者 王永平 牟宗龙 +5 位作者 樊卫阁 辛龙泉 高波 巩思园 曹京龙 盖元 《煤矿现代化》 2025年第2期91-96,共6页
为提高煤柱稳定性和煤炭资源回收率,本文以杨村煤矿3332-2工作面为例,采用FLAC^(3D)数值模拟方法分析了巷道围岩应力和变形规律。结果表明:随着煤柱宽度的增加,巷道左侧峰值的应力集中程度明显增加,右侧峰值的应力集中程度略微降低;巷... 为提高煤柱稳定性和煤炭资源回收率,本文以杨村煤矿3332-2工作面为例,采用FLAC^(3D)数值模拟方法分析了巷道围岩应力和变形规律。结果表明:随着煤柱宽度的增加,巷道左侧峰值的应力集中程度明显增加,右侧峰值的应力集中程度略微降低;巷道顶部和右帮变形量减少,左帮变形量增加,底部变形量变化不大。综合考虑,随煤柱宽度改变,巷道应力与变形虽然有所变化,但均在可接受范围内,因此,3332-2运顺采用4m宽煤柱为宜。 展开更多
关键词 FLAC^(3D) 煤柱宽度 巷道围岩 应力
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非对称大巷煤柱区冲击地压防治技术研究
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作者 边戈 顾倩悦 +5 位作者 高红兵 曹安业 李煜 徐天 刘彦强 何俊江 《煤炭技术》 2025年第3期74-79,共6页
针对亭南煤矿深部盘区非对称大巷煤柱区域冲击地压防治问题,采用理论分析、数值模拟、现场实践等方法对大巷煤柱区煤柱稳定性、覆岩破断规律及不同采空状态下煤柱区应力分布特征进行分析,揭示大巷煤柱区煤体失稳冲击地压发生机理,制定... 针对亭南煤矿深部盘区非对称大巷煤柱区域冲击地压防治问题,采用理论分析、数值模拟、现场实践等方法对大巷煤柱区煤柱稳定性、覆岩破断规律及不同采空状态下煤柱区应力分布特征进行分析,揭示大巷煤柱区煤体失稳冲击地压发生机理,制定了煤柱区外围工作面停采区域卸压方案并用于现场实践,对防治效果进行检验。研究结果表明,大巷煤柱外围垂直应力随工作面采空持续升高,应力增量逐渐减小。通过防冲方案的实施,现场工程实践显示大巷煤柱区域顶板深孔爆破卸压提前释放了能量,易诱发冲击地压的大能量事件减少,为指导深部盘区非对称大巷煤柱区域冲击地压防治提供借鉴。 展开更多
关键词 大巷煤柱 停采区域 覆岩结构 应力分布 冲击地压
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动压作用下采空区巷道覆盖层及煤柱稳定性控制研究
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作者 赵新建 《山东煤炭科技》 2025年第2期32-37,共6页
动压作用影响下镇城底煤矿巷道变形严重,增加了巷道维护的难度。为提高巷道围岩稳定性,对直接顶板和矸石的压缩载荷以及顶板悬臂梁长度的影响规律进行了研究,建立了动压作用下采空区巷道覆盖层结构模型和煤柱应力模型,分析了直接顶板厚... 动压作用影响下镇城底煤矿巷道变形严重,增加了巷道维护的难度。为提高巷道围岩稳定性,对直接顶板和矸石的压缩载荷以及顶板悬臂梁长度的影响规律进行了研究,建立了动压作用下采空区巷道覆盖层结构模型和煤柱应力模型,分析了直接顶板厚度、硬度和变形对采空区稳定性的影响,提出了动压作用下采空区“槽梁”结构和煤柱稳定性的理论判据,基于镇城底矿22305综采工作面的地质条件,从切顶卸压、煤柱设计、围岩加固等方面采取优化措施。结果表明,采用注浆锚索梁对顶板进行加固,实施双向注浆锚索对窄煤柱进行加固,使煤柱宽度由15 m减小到4 m;巷道顶板和两帮变形分别为268 mm和105 mm,煤柱应力集中系数为1.20,有效实现了采空区巷道覆盖层及煤柱稳定性控制。 展开更多
关键词 上覆岩层稳定性 煤柱设计 围岩控制
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