• Title/Summary/Keyword: Electric Detonator

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A Method for the Analysis of the Radiowave Receiving Characteristics of the Electric Detonator (전기뇌관의 전파 수신특성 분석방법)

  • Kim, Mi-Sun;Park, Jin-Seok;Ahn, Bierng-Chearl
    • Journal of Korea Society of Industrial Information Systems
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    • v.14 no.1
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    • pp.9-16
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    • 2009
  • In this paper, a method is proposed for the analysis of radiowave receiving characteristics of an ammunition with electric detonator. In this method, an ammunition with electric detonator is modelled as a receiving antenna with its gain obtained by computer simulation or measurement. The induced radiowave power is obtained by inserting the gain of the electric detonator in the antenna coupling formula. Radiowave receiving characteristics at very close distances are obtained by Treasuring the transmission coefficient between a half-wave dipole and the electric detonator model. Radiowave receiving characteristics of the electric detonator in a 105mm tank ammunition are obtained using the proposed method and the safety of the 900 MHz RFID reader on the detonator is assessed.

Non-electric Detonator Initiation System Using Spark Trigger (스파크 트리거에 의한 비전기식 뇌관의 기폭 시스템)

  • Yu, Seon-Jin;Kang, Dae-Jin;Kim, Nam-Soo;Jang, Hyong-Doo;Yang, Hyung-Sik
    • Explosives and Blasting
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    • v.29 no.1
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    • pp.48-52
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    • 2011
  • Non-electric detonator has been used in underground excavations because of its strong resistance against electric impacts. However, electric detonator is often used to initiate the non-electric detonator instead of using an exclusive non-electric blasting machine due to economical reason. Spark Trigger is introduced as a solution of unexpected explosive hazard from using an electric detonator as an initiator of non-electric system. Since Spark Trigger System does not need expensive tube and no plastic waste is left, this system is proved to be more economical and eco-friendly initiate system than the standard non-electric initiating system.

Blasting Utilizing Non-electric Detonator and Its Principle Planning and Operation (비전기 뇌관의 발파와 기본 설계 및 시공)

  • Choi Young-Cheon
    • Explosives and Blasting
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    • v.22 no.4
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    • pp.23-29
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    • 2004
  • Non-electric detonator was developed to improve the blasting efficiency of electric detonator. It is increasingly utilized in surface and tunnel blasting due to its safety in external electric shock, precise delayed time, and decrease in blasting vibration and noise. The paper describes the detonating system of non-electric detonator, principle operating and planning methods, and case history so that it can be contributed to improve blasting technology.

Tunnel Blasting case by Combination of Electronic Detonator and Non-electric Detonator (전자뇌관과 비전기뇌관을 조합한 터널발파 시공사례)

  • Lee, Min Su;Kim, Hee Do;Lee, Hyo;Lee, Jun Won
    • Explosives and Blasting
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    • v.36 no.1
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    • pp.34-38
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    • 2018
  • It proceed the trial test by applying blasting system with combination of electronic detonator and non-electric detonator(Supex Blasting Method) for the purpose of preventing the over-break as well as controling the blasting vibration and noisy at the site of Boseong-Imseongri railroad section ${\bigcirc}{\bigcirc}$. As a result of that, the blasting vibration and noisy was measured within the allowable standard of vibration. In conclusion, the combination of electronic detonator and non-electric detonator can not only reduce come construction cost, level of vibration and noisy but also get the prevention effect for Public resentment and minimize the rock-damage through over break control.

A Comparative Study on the Characteristics of Vibration Propagation during Open-Pit Blasting using Electric and Electronic Detonators (전기 및 전자뇌관을 이용한 노천발파 시 진동전파 특성에 관한 비교 연구)

  • Lee, Ki-Keun;Lee, Chun-Sik;Hwang, Nam-Sun;Lee, Dong-Hee
    • Explosives and Blasting
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    • v.37 no.1
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    • pp.24-33
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    • 2019
  • Recently, Electronic Detonators have gradually increased their performance for various purposes such as vibration control and improved Fragmentation. This study analyzed the vibration estimation equations of electric and electronic detonator blast by comprehensive analysis of the vibration data collected during electric and electronic detonator blast waves at the comparison sites of urban areas, geology and soil conditions, stone quarries and mines in different areas of Korea from June 2017 to December 2018. It has been confirmed that electronic detonator blast can meet the criteria for allowing vibration even if maximum charge weight per delay is increased by 1.5 times compared to the electric detonator blast.

Utilization of Non-electric Detonator for the Safety of the Tunnel Blasting Site (터널발파 현장의 안전성 확보를 위한 비전기뇌관 활용방안)

  • Choi, Hyung-Bin
    • Explosives and Blasting
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    • v.32 no.3
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    • pp.26-36
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    • 2014
  • A survey for understanding the opinion about the safety and economy of different types of detonators used in domestic tunnel construction was carried out for total 345 people in related areas. From the result, it was found that 86.7% of the surveyed people felt non-electric detonator was safe. From the experimental points that the cost of detonators is in charge of 8.1% in overall tunnel blasting cost, and the utilization of non-electric detonators will also contribute to the prevention of blasting accidents by the electrical safety, this study can help providing opinions and basic data collected from related areas to manufacturing companies, police department, and companies ordering tunnel construction.

A Case Study on Blasting at the Tunnel Excavation in an Adjacent Section of a Subway Station (지하철역 인접구간에서의 터널 발파굴착 사례)

  • Lee, Hyo;Kim, Jeoung-Hwan;Hwang, Nam-Sun
    • Explosives and Blasting
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    • v.40 no.2
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    • pp.25-34
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    • 2022
  • Recently, there has been an increasing number of cases of improving constructability by using electronic detonators with precise delay time in tunnel blasting sites. This case is a case of conducting test blasting using with non-electric detonator and electronic detonator at the site of 『Seoul Metropolitan Area Express Railroad Route A Private Investment Project Section 00』 that requires careful management of vibration and noise. Although this site was designed with a non-electric detonator, it was attempted to improve the advance rate and control vibration and noise by mixing the non-electric detonator and the electronic detonator due to the decrease in the advance rate. As a result of the blasting, the target value was achieved with an advance rate of about 85% and a maximum measured value of vibration and noise is 0.215cm/sec and 73.22dB(A) which were measured below regulatory standards. As blasting works in downtown areas, it is necessary to designate measurement and management objects to continuously manage vibration and noise.

Comparative Study on the Characteristics of Ground Vibrations Produced from Borehole Blast Tests Using Electronic and Electric Detonators (전자뇌관과 전기뇌관을 사용한 시추공 발파시험에서의 지반진동 특성에 관한 비교 연구)

  • Choi, Hyung-Bin;Won, Yeon-Ho
    • Explosives and Blasting
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    • v.28 no.2
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    • pp.37-49
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    • 2010
  • Ground vibration caused by blasting in the urban area close to structures can give some indirect damage to human body and may lead to structural damage to buildings. At the stage of design or when complaints were filed by residents, the test blasting in borehole, which is most practical for expressing simple vibration wave form quantitatively, is usually chosen for assessing the degree of damage to structures. In this paper, some lessons gained from the application of electronic detonator triggering system in borehole test blasting are presented. The difference in delay time of detonator when borehole is blasted by electronic detonator and electric detonator are discussed. The peak particle velocities measured at the structure embedded in the similar rock layer to main line of tunnel at test site and measured at the road surface just above the tunnel having different overburden layers were analysed to draw their relationship. By comparing the results with those appearing in some published literatures, the usefulness of the borehole test blasting and the importance of delay time of detonator are addressed.

Optimum Delay Time of Electronic Detonator using Blast-induced Vibration Waveform Composition (발파진동 파형합성을 이용한 전자뇌관의 최적지연초시에 관한 연구)

  • Yoon, Ji-sun;Kim, Do-hyun
    • Journal of Korean Tunnelling and Underground Space Association
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    • v.8 no.2
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    • pp.129-139
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    • 2006
  • When blasting by imposing the time difference between two adjacent charge holes, the mutual interference phenomenon occurs depending the feature of blast. This interference phenomenon of blast amplifies or compensates the blast-induced vibration depending on the overlapping mechanism. Thus, this experiment aims at finding out the optimum delay time by measuring the blast vibration data from the single hole blast during the blasting test and composing each blasting waveform, and at proving the its efficiency by applying the composition delay time in the entire cross section. The experiment showed that the blasting-induced vibration was reduced by endowing an optimum delay time of electronic detonator appropriate to the rock quality of construction site compared to the typical delay time (20, 25ms) of existing detonator (non-electric and electric detonator). From these results, the excavation efficiency using blasting could be enhanced..

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Control Effect of Vibration According to the Application Ratio of Electronic Detonator for Tunnel Blasting (터널발파시 전자뇌관 적용 비율에 따른 진동저감 효과 연구)

  • JongWoo Lee;TaeHyun Hwang;NamSoo Kim;KangIl Lee
    • Explosives and Blasting
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    • v.42 no.1
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    • pp.1-11
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    • 2024
  • Through existing research and construction cases during tunnel blasting, the electronic blasting method is reported to be more effective in reducing blast vibration than the normal blasting method. However, due to the high price of electronic detonators, they are only used in some blasting sites where security objects are located nearby. Accordingly, this study performed tunnel blasting tests by adjusting the ratio of electronic and non-electronic detonators. And through the research results, the reduction effect of blasting vibration according to the detonator ratio was evaluated. The research results showed that the reduction effect of blast vibration was greatest when 100% electronic detonator was applied. In addition, when more than 52% of the electronic detonator was applied, it was found that the reduction effect was similar to the reduction effect when 100% of the detonator was used.