• Title/Summary/Keyword: 터널발파

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A case study on the effect of blasting conditions on ground vibration (발파조건이 지반진동에 미치는 영향에 관한 사례 연구)

  • 고영선;김종우
    • Tunnel and Underground Space
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    • v.9 no.1
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    • pp.12-19
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    • 1999
  • In this study, ground vibrations of a surface blasting for golf links and a tunnel blasting for highway construction were measured to investigate the effect of blasting conditions such as total charge and distance from blasting point. In surface blasting, site factor K and n were 74.1 and -1.37, respectively, which were analyzed by means of cube root scaled distance. The more were measuring distance, the higher were absolute value of K and n. Principal frequency was in range of 5~60 Hz in surface blasting, where that of 80 percent was in range of 10~30 Hz. On the other hand it was in range of 25~98 Hz in tunnel blasting, which showed higher than of surface blasting.

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소단면 터널에서 에멀젼폭약의 사압현상과 대책

  • Min, Hyeong-Dong;Jeong, Min-Su;Jin, Yeon-Ho;Park, Yun-Seok
    • Proceedings of the KSEE Conference
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    • 2008.10a
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    • pp.17-28
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    • 2008
  • 국책사업이나 SOC의 확충을 위한 도로 및 철도의 건설에서 적용되는 터널의 단면크기를 보면, $50m^2$에서부터 $100m^2$이상의 중 대단면 터널이 주를 이루고 있으나, 전력구, 통신구, 소규모로 운영되는 광산의 채광용 터널, 용수를 위한 도수로터널 등 특수한 용도로 설계, 시공되고 있는 터널에서는 $20m^2$이하의 단면크기를 갖는 경우가 있다. 이러한 소단면 터널의 경우에는 협소한 작업공간으로 인하여 적용공법 뿐만 아니라 장비의 사용 또한 제약을 받게 되어 작업효율이 저하되고 공사기간이 늘어나게 되는 등 여러 가지 문제점을 안고 있다. 특히, 에멀젼 폭약을 사용하는 발파에서 먼저 기폭된 발파공의 충격압력에 의해 인접공의 폭약이 예비압축(Precompression)되어 사압현상을 일으키고 잔류약을 발생시키는 사례가 종종 발생하고 있다. 사압현상은 당해 발파의 실패와 함께 2차적인 사고의 위험요인이 될 수 있으므로 이를 방지하기 위한 대책을 수립하여야 한다. 이를 위해 기존 문헌을 통하여 사압현상의 원인과 발생 가능성을 검토하였고, 국내에서 주로 사용되는 에멀전폭약의 수중 내충격성시험과 충격압력 전달시험을 실시하여 사압현상의 발생정도를 측정하였으며, 사압현상이 발생한 소단면 터널현장을 대상으로 대책을 수립하여 적용하였다. 심발방법을 변경하여 전단의 충격압력을 견딜 수 있는 공간격을 확보하고 뇌관의 초시간격을 적절하게 배치한 발파패턴을 적용한결과, 사압현상을 억제하고 잔류약의 발생을 감소시켜 계획 굴진장을 확보하고 파쇄석의 크기를 감소시키는 등 양호한 결과를 얻을 수 있었다.

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A Study on the Determination of Suitable Specific Charge in Tunnel Blasting Design (터널발파설계에서 적정장약량산정에 관한 연구)

  • Jeong, Dong-Ho;Kim, Seon-Hong;Bae, Hyo-Jin;Seok, Jin-Ho;Choo, Yong-Beom
    • Journal of Korean Tunnelling and Underground Space Association
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    • v.3 no.1
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    • pp.21-26
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    • 2001
  • Till now a lot of studies has been performed to increase the efficiency of tunnel blasting. Nevertheless there are still uncertainties of input parameter to determine the specific charge. In order to solve this problem, the rock types and the charges of 17 road tunnel sites were analyzed. As a result of these analyses an empirical formula depending on rock type and charge was developed. Through this formula rational tunnel blasting will be designed by quantitative method rather than by assumption.

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Tunnel Blasting Design Suited to Given Specific Charge (비장약량 맞춤형 터널발파 설계방법)

  • Choi, Byung-Hee;Ryu, Chang-Ha;Jeong, Ju-Hwan
    • Explosives and Blasting
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    • v.27 no.2
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    • pp.33-41
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    • 2009
  • Specific charge, also called powder factor, is defined as the total explosive mass in a blast divided with the total volume or weight of rock to be fragmented. It is a well-known fact that change in explosive consumption per ton or per cubic meter of rock is always a good indication of changed rock conditions. In mining, it is common to use explosive consumption per ton of ore as a measure of the blastability for rock. On the contrary, in civil engineering, it is common to use explosive consumption per cubic meter of rock. In this paper, we adopt the definition of the civil engineering because we are mainly concerned with tunnel blasting. Up to now, although various methods for tunnel blast design have been proposed, there are so many cases in which the proposed methods do not work well. These may be caused by the differences in rock conditions between countries or regions, and can give a serious technical difficulty to a contractor. But if we know the specific charge for a given rock, then the blast design can become much more easier. In this respect, we suggest an algorithm for tunnel blast design that can exactly produce the predetermined specific charge as a result of the design. The algorithm is based on the concept of assigning different fixation factors to various parts of tunnel section, and may be used in combination with the known methods of tunnel blast design.

Analysis on the Characteristics of Rock Blasting-induced Vibration Based on the Analysis of Test Blasting Measurement Data (시험발파 계측자료 분석을 통한 암석 발파진동 특성 분석)

  • Son, Moorak;Ryu, Jaeha;Ahn, Sungsoo;Hwang, Youngcheol;Park, Duhee;Moon, Duhyeong
    • Journal of the Korean GEO-environmental Society
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    • v.16 no.9
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    • pp.23-32
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    • 2015
  • This study examined blast testing measurement data which had been obtained from 97 field sites in Korea to investigate the comprehensive characteristics of rock blasting-induced vibration focusing on the effect of excavation types (tunnel, bench) and rock types. The measurement data was from the testing sites mostly in Kangwon province and Kyungsang province and rock types were granite, gneiss, limestone, sand stone, and shale in the order of number of data. The study indicated that the blasting-induced vibration velocity was affected by the excavation types (tunnel, bench) and bench blasting induced higher velocity than tunnel blasting. In addition, the vibration velocity was also highly affected by the rock types and therefore, it can be concluded that rock types should be considered in the future to estimate a blasting-induced vibration velocity. Furthermore, the pre-existing criteria was compared with the results of this study and the comparison indicated that there was a discernable difference except for tunnel blasting results based on the square root scaling and therefore, further studies and interests, which include the effects of rock strength, joint characteristics, geological formation, excavation type, power type, measurement equipment and method, might be necessarily in relation to the estimation of blasting-induced vibration velocity in rock mass.

Study on the Stability of Over Break in Tunnel (여굴이 큰 터널의 안전성에 관한 연구)

  • Kim, Dong-Baek;Kwon, Ki-Jun
    • Journal of the Korean Society of Hazard Mitigation
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    • v.6 no.2 s.21
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    • pp.45-50
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    • 2006
  • When we build the tunnel, occasionally, the blasted section exceed the designed section because of geological properties and the lack of blasting technologies, and the exceed section is remained as over break after the construction of tunnel lining. When the underground water leaks with silt and clay through the cracks of rocks, the large over break cause a structural stability problem in tunnel, and the back charging of over break is very important subject, because the undoing of back charging cause the drop of crashed rocks and serious problem in the stability of tunnel lining. Therefore, the theory of blast is studied and purpose the structural analysis of back charging and propose the safe method about the drop of crashed rocks.

A Case study on the Application of Vibration Controlled Blasting Method (진동제어발파공법 적용 사례에 관한 연구)

  • 손영복;김재훈;원연호
    • Explosives and Blasting
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    • v.21 no.3
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    • pp.61-71
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    • 2003
  • 최근 도심지 굴착공법 선정시 주변환경에 대한 관심이 높아지면서 민원발생을 감안하여, 발파공법이 아닌 기계굴착공법(TBM, SHIELD 등) 등이 부분적으로 적용되고 있다. 그러나 이들 굴착공법들은 굴착조건의 변화에 따라 적용 한계성이 있고, 한계구간이 직면할시 시공성이 극히 떨어지거나 적용 자체가 불가능하게 된다. 이에 따라, 공사기간의 연장, 공사비의 증가 및 적용자체가 불가 할 경우는 공사중단에 이르게 되어 시공과정에서 다른 굴착공법으로 전환되는 사례가 빈번히 발생되고 있다. 따라서 본 사례는 도심지 터널구간으로 당초 할암공법으로 설계되었으나 암반의 강도가 높고 굴착단면적이 협소하여 할암공법이 적용될 수 없었다. 이에 대한 대안공법으로 TBM이나 기타 장비에 의한 기계굴착공법을 검토하였으나, 터널연장이 짧고 터널노선의 곡선부 반경이 작아 대형장비의 투입이 어려운 굴착조건 때문에 최종적으로 폭약을 이용한 발파굴착 공법을 선정하였다. 그러나 발파공법은 진동 및 소음이 필연적으로 수반되기 때문에, 주변 환경공해가 허용하는 범위 내에서 최대한의 시공성과 안전성 여부를 판단하기 위하여 발파진동 및 소음의 허용수준을 설정한 후 시험발파를 실시하였으며, 그 결과에 따라 진동제어발파공법을 적용하였다.

Optimization of Tunnel Blasting Design by Finite Element Method (유한요소해석을 이용한 터널 발파설계의 최적화)

  • 이인모;최종원;김상균;김동현;이두화;김영욱
    • Journal of the Korean Geotechnical Society
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    • v.16 no.5
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    • pp.63-74
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    • 2000
  • 지하구조물 걸설시 발파에 의한 암반의 굴착공법이 일반적으로 사용된다. 그러나 발파에 의한 암반의 굴착은 잔존암반의 손상과 진동을 유발하는 문제점을 가지고 있다. 현재까지는 이러한 암반의 손상과 진동문제를 해결하기 위해 현장계측을 기초로한 경험적인 방법이 이용되어 왔으나 여러 가지 한계점을 지니고 있는 것이 현실이다. 따라서 수치해석에 의한 터널 발파의 모델링을 이용하면 이러한 한계점을 보완할수 있을 것이다. 본 논문에서는 발파에 의한 발파공 주위 암반의 거동을 유한요소해석을 이용하여 규명하고, 토로터널의 표준발파패턴을 기초로 하여 외과공 발파와 외곽공에 인접한 주변공 발파에 의한 암방의 손상의 손상을 비교하여 발파패턴의 적절성을 평가하고자 하였으며, 이를 근거응 발파에 의한 암반의 손상을 최소하기 위한 발파패턴의 최적화를 도모하였다.

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Tunnel Blast Design for Earthquake Accelerometer Installed Rapid Transit Railroads (지진가속도계가 설치된 고속철도 터널 인근의 발파설계)

  • Lee, Jong-Woo;Kim, Nam-Soo;Jung, Sang-Jun;Park, Chi-Myeon
    • Explosives and Blasting
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    • v.32 no.1
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    • pp.18-22
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    • 2014
  • KoRail establishes "Guideline for earthquake acceleration measuring instrument and operation." and applies the management of the rapid transit railroad. KoRail manages the trains by train driving patterns subjected to the train operating know-how for the safety against the earthquake hazards. This paper introduces the case studies on bench blast and tunnel blast designs considering a rapid transit railroad.

A fundamental study on the automation of tunnel blasting design using a machine learning model (머신러닝을 이용한 터널발파설계 자동화를 위한 기초연구)

  • Kim, Yangkyun;Lee, Je-Kyum;Lee, Sean Seungwon
    • Journal of Korean Tunnelling and Underground Space Association
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    • v.24 no.5
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    • pp.431-449
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    • 2022
  • As many tunnels generally have been constructed, various experiences and techniques have been accumulated for tunnel design as well as tunnel construction. Hence, there are not a few cases that, for some usual tunnel design works, it is sufficient to perform the design by only modifying or supplementing previous similar design cases unless a tunnel has a unique structure or in geological conditions. In particular, for a tunnel blast design, it is reasonable to refer to previous similar design cases because the blast design in the stage of design is a preliminary design, considering that it is general to perform additional blast design through test blasts prior to the start of tunnel excavation. Meanwhile, entering the industry 4.0 era, artificial intelligence (AI) of which availability is surging across whole industry sector is broadly utilized to tunnel and blasting. For a drill and blast tunnel, AI is mainly applied for the estimation of blast vibration and rock mass classification, etc. however, there are few cases where it is applied to blast pattern design. Thus, this study attempts to automate tunnel blast design by means of machine learning, a branch of artificial intelligence. For this, the data related to a blast design was collected from 25 tunnel design reports for learning as well as 2 additional reports for the test, and from which 4 design parameters, i.e., rock mass class, road type and cross sectional area of upper section as well as bench section as input data as well as16 design elements, i.e., blast cut type, specific charge, the number of drill holes, and spacing and burden for each blast hole group, etc. as output. Based on this design data, three machine learning models, i.e., XGBoost, ANN, SVM, were tested and XGBoost was chosen as the best model and the results show a generally similar trend to an actual design when assumed design parameters were input. It is not enough yet to perform the whole blast design using the results from this study, however, it is planned that additional studies will be carried out to make it possible to put it to practical use after collecting more sufficient blast design data and supplementing detailed machine learning processes.