• 제목/요약/키워드: Allowable Charge Weight

검색결과 11건 처리시간 0.025초

계단식 발파에 있어서 자유면 전.후방의 지반진동에 관한 연구 (A Study on the Ground Vibration of the Front and the Back Direction of the Free Face in the Bench Blasting)

  • 기경철;김일중
    • 화약ㆍ발파
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    • 제20권2호
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    • pp.21-31
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    • 2002
  • We did bench blasting upon the natural rock which it's uniaxial compressive strength was about $1,420~1,476kgf/\textrm{cm}^2$. This is the results we inferred after measuring, analyzing the ground vibration velocity of the front and back direction from the free face of the bench blasting. We have to induce the square and cube root scaled equation and the general equation to guarantee confidence upon the data when analyzing the measurement data of the test blasting. The variable distance is in reverse proportion to the permitted ground vibration velocity. The shorter is the exploding point to a protection structure, the bigger is the reflection that the direction of the free face experts the ground vibration velocity, The ground vibration velocity front of the free face tends become reduced about 38~46% compare with back of the free face in the range that the permitted ground vibration velocity is 2.0~5.0mm/sec. In case of 2.0mm/sec, when a protection structure is within about 95m, the max. allowable charge weight per delay on positing front of the free face can be more used about 2.61 times than that on positing back of the free face, in case of 3.0mm/sec within about 78m more about 2.38 times, in case of 5.0mm/sec within 60m more about 2.10 times. In case of 2.0~5.0mm/sec when a protection structure is within about 200m front from the free face, the max. allowable charge weight per delay can become about 1.52 times than the case on back to the free face.

신뢰성지수를 이용한 효율적인 발파설계 (An Efficient Blast Design using Reliability Index)

  • 박연수;박선준;강성후
    • 소음진동
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    • 제8권5호
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    • pp.821-831
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    • 1998
  • The actual ground vibrations due to NATM and foundation blasting at Seoul(weathered rock), Pusan(weathered rock) and Youngkwang(quartz andesite) have been measured, and the data were analyzed using reliability index($\beta$) to determinate the vibration equations and the maximum charge weight for efficient blast. These were suggested with the division of ultimate limit state($\beta$=0), serviceability limit state($\beta$=1.28) and safety state($\beta$=3), respectively. The reliability index 0 mean 50% data line obtained by the least squares best-fit line. The reliability index 1.28 and 3 represent bounds below 90% and 99.9% of the data, respectively. In this study, reliability index $\beta$=1.28 with security and economy was suggested. The maximum charge weight equations for efficient blast were obtained in W=(Vc/384.90)1.5151.D3(Seoul), W=(Vc/579.82)1.4706.D3(Pusan). W=(Vc/1654.01)1.3456.D3(Youngkwang), and the blast vibration equatiions in V=385(SD)-1.98(Seoul), V=580(SD)-2.04(Pusan), V=1654(SD)-2.23(Youngkwang), respectively. From this study, inference and analysis methods of vibration equations using reliability theory were established.

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발파진동 예측식을 이용한 안전장약량 산정문제에 관하여 (On the Determination of Safe Charge Weigth from the Several Predictive Equations of Blast Vibration)

  • 김일중;김영석
    • 터널과지하공간
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    • 제5권2호
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    • pp.89-94
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    • 1995
  • Regression analysis and a comparative study were carried out for 52 blast vibration data which were monitored by changing the monitoring distance and charge per delay. The results are as follows: 1) The square and cube root scalings and general equation which have a confidence level at the point of 90% and 99% are V90=33300(SD)-2.026 , V90=23600(SD)-1.993, V90=26300W0.755 R-2.007 and V99=48400(SD)-2.026, V99=34000(SD)-1.993 , V99=38100W0.755R-2.007, respectively. 2) There is need to decide the allowable max. charge weight per delay considering the cross points comparatively of the nomogram constructed using several predictived equations. 3) It is necessary to derive the predictive equation on the basis of blast vibration level monitored in field and to decide safe vibration level and the confidence level.

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인공지진 발생을 위한 대규모 시추공 시험발파 사례연구 (A Case Study on a Large Scale Borehole Test Blasting to Generate Man-made Earthquake)

  • 정주환;최병희;류창하;민형동;최형빈
    • 화약ㆍ발파
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    • 제27권2호
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    • pp.48-55
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    • 2009
  • 지진 발생시 진앙 추적에 필요한 지각구조 특성 규명과정에서는 인공지진을 발생시킬 필요가 있다. 이런 정도의 큰 지반진동은 대규모 시추공 발파를 통해 발생시킬 수 있으나 이와 같은 대규모 발파는 대부분 주변에 대한 환경적인 악영향을 미치게 된다. 이런 맥락에서 시추공 시험발파를 통해 발파장소 주변의 다양한 구조물에 영향이 없는 최대 장약량을 결정하였다. 시험발파에서는 젤라틴 다이너마이트 400kg을 사용하였다. 시험 결과 측정된 자료로부터 지반진동 수준에 대한 예측식을 유도하였다. 주거용 구조물에 대한 지반진동 허용수준을 3.0mm/s로 설정하였을 때 발파장소 부근의 군용 구조물을 고려한 경우에는 사용 가능한 최대 장약량이 677kg으로 나타났다. 하지만 군용건물들을 고려하지 않고 인근부락의 오래된 건물들을 기준으로 할 때는 최대 2100kg의 폭약을 사용할 수 있는 것으로 나타났다.

암반발파 및 파쇄로 인한 진동값 측정과 분석 (Analysis of Measured Vibration Data due to Rock Blasting and Crushing)

  • 문가은;임홍철
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2015년도 추계 학술논문 발표대회
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    • pp.177-178
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    • 2015
  • Various vibration caused by construction vehicles and equipment movement, rock blasting, and crushing obstacle occurs inevitably in construction sites. In this study, we measured the impact of vibration by blasting rock at construction sites, rock crushing, concrete crushing. The measuring instrument was installed in adjacent buildings and observed that blasting vibration differs depending on the charge weight, blasting distance, and the measuring position. The observation was maintained by allowable peak particle velocity standard according to each standards and references.

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서울 지하철 건설의 발파기술 발전 (ON THE DEVELOPMENT OF EXPLOSION TECHNOLOGY IN SEOUL METRO SUBWAY CONSTRUSTION)

  • 許眞
    • 화약ㆍ발파
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    • 제18권1호
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    • pp.59-70
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    • 2000
  • The blasting work to construct a subway in seoul, korea have often cased increased neighbor's complaints because of ground vibration. In order to prevent the demage to the stucture it was necessary to predict the level of blasting induced vibration and to determine the maximum charge weigh per delay with an allowable vibration level. The effect of blasting pattem, rock strength and different explosive on the blast-induced ground vibration was studied to determine the maximum charage weight per delay within a given vibration level. The blasting vibration equation from over 100 test data was obtained, V= K(D/W(equation omitted), where the values for n and K are estimated to be 1.7 to 1.5 and 48 to 138 respectively.

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도심지 발파에서 발파진동치의 크기에 영향을 미치는 제요소 (Some factors affecting level of blasting-induced vibration in urban area)

  • Huh, Ginn;Lim, Han uk
    • 기술사
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    • 제23권2호
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    • pp.81-93
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    • 1990
  • 서울 지하철 3,4호선은 고층빌딩, 각종 상점및 문화재등이 위치하고 있는 도심지를 통과하기 때문에 발파로 인한 지반의 진동이 이들 시설물 및 인체에 큰 영향을 미치고 있다. 따라서 지반 진동으로 인한 피해를 방지하기 위하여 발파진동치의 크기를 여측하고, 또 주어진 한계치내에서 지반당 최대 장약량을 산정함으로써 시설물의 피해 방지와 아울러 효과적인 시공을 도모토록 하는데 본 연구의 목적이 있다. 이를 위하여 3,4호선 건설 예정지를 자유면의 수에 따라 1) 오푼컷트 공법에서 바닥파기, 2) 오푼컷트 공법에서 계단발파, 3) 턴널의 심발 발파, 4)심발 발파후의 틴널발파등으로 나누고, 한국에서 생산되는 폭약중 제란틴, 초안폭약, 함수폭약을 위 4가지 조건과 암질이 서로 다른곳 10개 지역을 선정하여 시험발파를 하면서 Sprengneter, VME, Rion 등 진동 측정기로 측정하여, 다음과 같은 결과식을 구하였다. V=K(D / Wb)$^{-n}$ 에서 n 및 k는 각각 1.60-l.78, 48-138이다. 따라서 위 결과식을 이용하여 현장에서 쉽게 장약량등 발파방법을 결정할 수 있도록 nomogram 등을 제시하였다. 이상의 연구 결과를 토대로 효과적인 건설을 할 수 있었기에 금반 그 내역을 발표코저 한다.

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터널굴착에서 다단식 발파기에 의한 전단면 발파의 적용성 연구 (Application of Full-Face Round by Sequential Blasting Machine in Tunnel Excavation)

  • 조영동;이상은;임한욱
    • 화약ㆍ발파
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    • 제13권1호
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    • pp.20-31
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    • 1995
  • Many methods and techniques to reduce ground vibrations are well known. Some of them are to adopt electric milisecond detonators with a sequential blasting machine or an initiating system with an adequate number of delay intervals. The types of electric detonators munufactured in Korea include instantaneous, decisecond and milisecond delays byt numbers of delay intervals are only limite from No.1 to No.20 respectively. It is not sufficient to control accurately milisecond time with these detonators in tunnel excavation. Sequential fire time refers to adding an external time delay to a detonators norminal firing time to obtain sequential initiation and it is determined by sequential timer setting. To reduce the vibration level, sequential blasting machine with decisecond detonatore was adopted. A total of 134 blasting was recorded at various sites. Blast-to-structure distances ranged from 20.3 to 42.0 meter, where charge weight varied from 0.25 to 0.75 kg per delay. The results can be summarized as follow : 1. The effects of sequential blasting machine on the vibration level are discussed. The vibration level by S.B.M. are decreased approximately 14.38~18.05 to compare to level of conventional blasting and cycle time per round can be saved. 2. The empirical equations of particle velocity were obtained in S,B.M. and conventional blastin. $V=K(D/W^{1/3})-n$. where the values for n and k are estimated to be 1.665 to 1.710 and 93.59 to 137 respectively. 3. The growth of cracks due to vibrations are found but the level fall to within allowable value.

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인접지역의 깊은 터파기 굴착에서 변위 및 응력의 계측 (Displacement and Stress Monitoring for Excavation Deep Foundation)

  • 원연호
    • 화약ㆍ발파
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    • 제17권1호
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    • pp.27-55
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    • 1999
  • The excavation works for deep foundation in urban areas have recently increased complaints of blasting vibration and settlement of ground level. Foundation must be excavated approximately up to 24-28m depths from the surface. The roads and subway line pass through the excavation area. The Dae-chung station is also located at the nearest distance 5-35m from the working site. To protect subway station and adjacient some structures from blasting and settlement, the level of ground vibration, displacements and stress were monitored and analyzed. The results can be summarized as follows ; 1. An empirical particle velocity equation were obtained by test blasts at Nassan Missi 860 Office tel construction site. $V{\;}={\;}K(D/\sqrt{W})^{-n}$, where the values for n and k are estimated tobe 0.371 and 1.551. From this ground vibration equation, the max. charge weight per delay time against distance from blasting point is calculated. Detailed blasting method is also presented. 2. To measure the horizontal displacement in directions perpendicular to the borehole axis, 6 inclinometers installed around working sites. The displacement at the begining was comparatively high because the installation of struts was delayed, but after its installation the values showed a stable trend. Among them, the displacement by 3 inclinometers installed on a temporary parking area showed comparatively high values, for example, the displacement measured at hole No. IC-l recoded the max. 47.04mm for 6 months and at hole No. IC-2 recorded the max. 57.33mm for 7 months. So, all of these data was estimated below a safe standard value 103mm. 3. Seven strain gauge meter was installed of measure the magnitude and change of stress acted on structs. The measured value of maximum stress was $-465{\;}kgf/\textrm{cm}^2,{\;}-338.4{\;}kgf/\textrm{cm}^2,{\;}302.3{\;}kgf/\textrm{cm}^2$ respectively. In compareto the allowable stress level of steel, they are estimated to be safe.

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터널굴착에서 다단식 발파기에 의한 전단면 발파의 적용성 연구 (Application of Full-Face Round by Sequential Blasting Machine in Tunnel Excavation)

  • 조영동;이상은;임한욱
    • 터널과지하공간
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    • 제4권2호
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    • pp.132-143
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    • 1994
  • Many methods and techniques to reduce ground vibrations are well known. Some of them are to adopt electric millisecond detonators with a sequential blasting machine or an initiating system with an adequate number of delay intervals. The types of electric detonators manufactured in korea include instantaneous, decisecond and millisecond delays but numbers of delay intervals are only limited from No.1 to No.20 respectively. It is not sufficient to control accurately millisecond time with these detonators in tunnel excavation. Sequential fire time refers to adding an external time delay to a detonators norminal firing time to obtain sequential initiation and it is determined by sequential timer setting. To reduce the vibration level, sequential blasting machine(S.B.M) with decisecond detonators was adopted. A total of 134 blasts was recorede at various sites. Blast-to-structure distances ranged from 20.3 to 42.0 meter, where charge weight varied from 0.24 to 0.75 kg per delay. The results can be summarized as follow: 1. The effects of sequential blasting machine on the vibration level are discussed. The vibration level by S.B.M are decreased approximately 14.38~18.05% compare to level of conventional blasting and cycle time per round can be saved. 2. The empirical equations of particle velocity were obtained in S.B.M and conventional blasting. V=K(D/W1/3)-n, where the values for n and k are estimated to be 1.665 to 1.710 and 93.59 to 137 respectively. 3. The growth of cracks due to vibrations are found but the level fall to within allowable value.

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