• 제목/요약/키워드: Rock bolt

검색결과 110건 처리시간 0.028초

깊은 굴착에서 파쇄대를 갖는 연암 및 경암 지층의 지반 거동분석 사례연구 (Case Study of Ground Behavior Analysis of Soft and Hard Rock Layers with Fractured Zones in Deep Excavation)

  • 김성욱;한병원
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2008년도 춘계 학술발표회 초청강연 및 논문집
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    • pp.521-532
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    • 2008
  • Supporting system design and construction management for the soft and hard rock layers with fractured zones are very important theme for the safety of temporary retaining wall, surrounding ground and structures in the urban deep excavation for the construction of subway, railway, building etc. The prevailing design method of supporting system for the soft and hard rock layers in the deep excavation is mostly carrying out by simplification without proper consideration for the characteristic of rock discontinuities. Therefore the behaviors of rock discontinuities and fractured zones dominate the whole safety of excavation work in the real construction stage, serious disaster due to the failure of temporary retaining wall can be induced in the case of developing large deformations in the ground and large axial forces in the supporting system. This paper introduces examples of deep excavation where the soft and hard rock layers with fractured zones were designed to be supported by shotcrete and rock bolt, deformations of corresponding ground and supporting systems in the construction period and increments of axial force in the upper earth anchors and strut due to the these deformations were investigated through detailed analysis of measurement data, the results were so used for the management of consecutive construction that led to the safe and economical completion of excavation work. The effort of this article aims to improve and develop the technique of design and construction in the coming projects having similar ground condition and supporting method.

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Experimental investigation on bolted rock mass under static-dynamic coupled loading

  • Qiu, Pengqi;Wang, Jun;Ning, Jianguo;Shi, Xinshuai;Hu, Shanchao
    • Geomechanics and Engineering
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    • 제29권2호
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    • pp.99-111
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    • 2022
  • Instability of bolted rock mass has been a major hazard in the underground coal mining industry for decades. Developing effective support guidelines requires understanding of complex bolted rock mass failure mechanisms. In this study, the dynamic failure behavior, mechanical behavior, and energy evolution of a laboratory-scale bolted specimens is studied by conducting laboratory static-dynamic coupled loading tests. The results showed that: (1) Under static-dynamic coupled loading, the stress-strain curve of the bolted rock mass has a significant impact velocity (strain rate) correlation, and the stress-strain curve shows rebound characteristics after the peak; (2) There is a critical strain rate in a rock mass under static-dynamic coupled loading, and it decreases exponentially with increasing pre-static load level. Bolting can significantly improve the critical strain rate of a rock mass; (3) Compared with a no-bolt rock mass, the dissipation energy ratio of the bolted rock mass decreases exponentially with increasing pre-static load level, the ultimate dynamic impact energy and dissipation energy of the bolted rock mass increase significantly, and the increasing index of the ratio of dissipation energy increases linearly with the pre-static load; (4) Based on laboratory testing and on-site microseismic and stress monitoring, a design method is proposed for a roadway bolt support against dynamic load disturbance, which provides guidance for the design of deep underground roadway anchorage supports. The research results provide new ideas for explaining the failure behavior of anchorage supports and adopting reasonable design and construction practices.

고강도 강관을 적용한 SP-록볼트 개발 및 현장 적용을 위한 연구 (A study on the development and field application of SP-Rockbolt with high-strength steel pipe)

  • 신현강;정혁상;안동욱
    • 한국터널지하공간학회 논문집
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    • 제19권4호
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    • pp.651-668
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    • 2017
  • 터널 굴착에 따른 초기 안정성 확보를 위해 1차 지보재인 숏크리트와 록볼트를 가장 적절한 시기에 터널 굴착면 주면으로 타설하여야 한다. 이러한 지보재의 역할은 장 단기적인 터널 안정성에 매우 중요한 역할을 하기 때문이다. 여기서 록볼트는 터널 굴착시 응력이완에 따라 발생되는 외압을 축력으로 받아들여 터널 굴착면의 숏크리트에 전달하여 전체적인 안정성을 도모하는 중요한 지보재이다. 현재까지 록볼트의 재료는 현장 수급이 유리한 이형강봉을 많이 이용하였으나 최근들어 불확실한 품질의 중국산 자재의 시장진입과 록볼트 주면 모르타르 충전시 흘러내림에 의한 밀실한 충전불량, 용수에 의한 부식 등 다양한 문제점이 나타나고 있다. 특히, 현재의 설계기준상 이형강봉에 대한 기계적 성질의 기준은 있으나 그 외 섬유보강 플라스틱(FRP) 등이 사용될 수 있으나 명확한 기준은 제시되지 않고 있다. 그래서 새로운 소재로 개발되더라도 실제 현장 적용에 있어서는 해결해야 할 부분이 많다. 따라서, 본 연구에서는 상기의 기존 록볼트가 지니고 있는 여러 문제점을 해결, 개선하고자 Autobeam 재료를 이용한 고강도 강관 록볼트(Samrt Pipe-록볼트, 이하 SP-록볼트)를 개발한 내용을 다루고 있다. 개발된 록볼트의 성능평가를 위해 현장시험을 수행하고, 기존 모르타르 충전을 개선할 수 있는 충전재를 개발하여 록볼트의 성능을 더욱 향상하고자 하였다. 또한, 실무현장의 적용성 확보를 위해 설계 및 시공기준에 대한 연구를 수행하였다.

Experimental evaluation of the active tension bolt

  • Kim, Sang-Hwan;Song, Ki-Il;Park, Jae-Hyun
    • Geomechanics and Engineering
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    • 제11권2호
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    • pp.177-195
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    • 2016
  • To secure the stability of geotechnical infrastructures and minimize failures during the construction process, a number of support systems have been introduced in the last several decades. In particular, stabilization methods using steel bars have been widely used in the field of geotechnical engineering. Rock bolt system is representative support system using steel bars. Pre-stressing has been applied to enhance reinforcement performance but can be released because of the failure of head or anchor sections. To overcome this deficiency, this paper proposes an innovative support system that can actively reinforce the weak ground along the whole structural element by introducing an active tension bolt containing a spring unit to the middle of the steel bar to increase its reinforcement capacity. In addition, the paper presents the support mechanism of the active tension bolt based on a theoretical study and employs an experimental study to validate the performance of the proposed active tension bolt based on a down-scaled model. To examine the feasibility of the active tension unit in a pillar, the paper considers a pullout test and a small-scale experimental model. The experimental results suggest the active tension bolt to be an effective support system for pillar reinforcement.

해머 타격 반사법을 이용한 현장 록볼트 건전도 평가 (Integrity evaluation of rock bolts in the field by using hammer-impact reflection method)

  • 유정동;배명호;이용준;민복기;이인모;이종섭
    • 한국터널지하공간학회 논문집
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    • 제11권1호
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    • pp.47-56
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    • 2009
  • 록볼트는 숏크리트와 함께 지하구조물의 주지보재로써 중요한 역할을 수행한다. 따라서 록볼트에 발생된 공동결함은 지하구조물의 안정성에 영향을 줄 수 있다. 최근 록볼트 건전도 평가를 위한 비파괴 검사 방법들 중 피에조 디스크 엘리먼트와 음향방출센서를 사용하는 유도초음파의 투과법과 반사법이 우수한 결과를 보여 주었다. 하지만 피에조 디스크 엘리먼트에서 발생되는 파는 현장에 적용하기에 부족한 에너지의 크기를 가진다. 또한 투과법의 경우 현장에서 록볼트 시공시 피에조 디스크 엘리먼트를 철근 끝단에 설치하여 시공하여야 한다. 본 연구의 목적은 충분한 에너지를 발생시킬 수 있는 유도초음파의 반사법을 개발하고 이를 현장에 시공된 록볼트의 건전도를 경가에 적용하는 것이다. 본 연구는 실내실험과 현장실험으로 수행되었다. 충분한 에너지를 갖는 유도초음파를 록볼트 두부에 자국정을 대고 해머로 타격하여 발생시켰으며, 이를 음향방출센서로 수신하였다. 측정된 신호의 분석을 위해 웨이브렛 변환을 이용하였다. 웨이브렛 변환의 최고점으로부터 에너지 속도를 산정하여 록볼트의 건전도를 평가하였다. 유도초음파의 에너지 속도는 실내에 설치된 록볼트 실험체와 현장에 시공된 록볼트의 결함비율이 증가함에 따라 증가하는 것으로 나타났다. 본 연구의 결과는 해머 타격방법이 현장에서 록볼트 건전도 평가에 유용한 방법이 될 수 있음을 보여 준다.

강건설계를 이용한 층서두께 배열과 루프볼트 지보설계에 관한 연구 (A Study on the Stratum Thickness Arrangement and Roof Bolt Support Design using Robust Design)

  • 장명환
    • 터널과지하공간
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    • 제28권2호
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    • pp.142-155
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    • 2018
  • ${\bigcirc}{\bigcirc}$광산은 광체주변에 미고결된 층서가 불규칙하게 발달되어 있다. 본 연구는 효율적인 루프볼트(roof bolt) 시공을 위하여 불규칙한 층서의 두께를 체계적으로 배열하고 이에 대응하는 지보시스템을 제시한 것이다. 층서별 두께를 조합한 81개의 경우의 수를 강건설계에 의하여 9개의 사례로 한정하여 지보설계를 하였다. 각 사례에 대하여 천반하중으로 작용할 수 있는 하중고를 층서의 특성과 RMR에 의하여 결정하였다. 하중고에 의한 하중범위를 블록형상과 아치형상으로 가정하여 계산하였다. 두 방법의 평균하중으로 루프볼트의 지보력을 감안한 지보설계를 하였다. 지보설계에 대한 수치해석 결과 케이블 볼트는 선단정착 방식보다 전면접착 방식이 천반유지에 더 효과적인 것으로 분석되었다. 시공결과 천반의 컨트롤은 가능하였으나 갱도측벽의 변형으로 천반 전체가 하부로 조금씩 침강하는 현상을 보였다.

콘크리트보수용 접착제를 이용한 Anchor Bolt의 인발지지력 산정에 관한 실험적 연구 (Performance test of Chemical Anchor Bolts for Concrete Repair)

  • 김용곤
    • 한국안전학회지
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    • 제17권2호
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    • pp.85-91
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    • 2002
  • A research on the performance of retrofit anchors was conducted using adhesives for rehabilitation. From the pull-out tests of the chemical anchors, the effect of the hole diameter, spacer, temperature, moisture, embedment depth, and aging time were investigated. The spacer did not directly increased the pull-out load hilt increased post-yielding resistance therefore the ductility of the retrofit anchors. When the hole was cleaned and dried after the immersion, the pull-out load was greatly increased compared to the wet hole. A design equation was unposed depending on the embedment depth of the anchor bolt.

Optimal pre-conditioning and support designs of floor heave in deep roadways

  • Wang, Chunlai;Li, Guangyong;Gao, Ansen;Shi, Feng;Lu, Zhijiang;Lu, Hui
    • Geomechanics and Engineering
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    • 제14권5호
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    • pp.429-437
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    • 2018
  • In order to reduce deformation of roadway floor heave in deep underground soft rockmass, four support design patterns were analyzed using the Fast Lagrangian Analysis of Continua (FLAC)3D, including the traditional bolting (Design 1), the bolting with the backbreak in floor (Design 2), the full anchorage bolting with the backbreak in floor (Design 3) and the full anchorage bolting with the bolt-grouting backbreak in floor (Design 4). Results show that the design pattern 4, the full anchorage bolting with the bolt-grouting backbreak in floor, was the best one to reduce the deformation and failure of the roadway, the floor deformation was reduced at 88.38% than the design 1, and these parameters, maximum vertical stress, maximum horizontal displacement and maximum horizontal stress, were greater than 1.69%, 5.96% and 9.97%. However, it was perfectly acceptable with the floor heave results. The optimized design pattern 4 provided a meaningful and reliable support for the roadway in deep underground coal mine.

Investigating the supporting effect of rock bolts in varying anchoring methods in a tunnel

  • Wang, Hongtao;Li, Shucai;Wang, Qi;Wang, Dechao;Li, Weiteng;Liu, Ping;Li, Xiaojing;Chen, Yunjuan
    • Geomechanics and Engineering
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    • 제19권6호
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    • pp.485-498
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    • 2019
  • Pre-tensioned rock bolts can be classified into fully anchored, lengthening anchored and point anchored bolts based on the bond length of the resin or cement mortar inside the borehole. Bolts in varying anchoring methods may significantly affect the supporting effect of surrounding rock around a tunnel. However, thus far, the theoretical basis of selecting a proper anchoring method has not been thoroughly investigated. Based on this problem, 16 schemes were designed while incorporating the effects of anchoring length, pretension, bolt length, and spacing, and a systematic numerical experiment was performed in this paper. The distribution characteristics of the stress field in the surrounding rock, which corresponded to various anchoring scenarios, were obtained. Furthermore, an analytical approach for computing the active and passive strengthening index of the anchored surrounding rock is presented. A new fully anchoring method with pretension and matching technology are also provided. Then, an isolated loading model of the anchored surrounding rock was constructed. The physical simulation test for the bearing capacity of the model was performed with three schemes. Finally, the strengthening mechanism of varying anchoring methods was validated. The research findings in this paper may provide theoretical guidelines for the design and construction of bolting support in tunnels.