Experimental Study of Blast-Induced Vibration Characteristics Based on the Delay-Time Errors of Detonator

The delay-time of detonators in hole-by-hole blasting is generally calculated accurately considering they have great influence on the blasting effect, such as blasting vibration and blasting slungshot. The high-precision nonel detonator and digital electronic detonator are been commonly used because...

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Main Authors: Ping Wang, Yuanjun Ma, Yongjian Zhu, Jun Zhu
Format: Article
Language:English
Published: Wiley 2020-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2020/8877409
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author Ping Wang
Yuanjun Ma
Yongjian Zhu
Jun Zhu
author_facet Ping Wang
Yuanjun Ma
Yongjian Zhu
Jun Zhu
author_sort Ping Wang
collection DOAJ
description The delay-time of detonators in hole-by-hole blasting is generally calculated accurately considering they have great influence on the blasting effect, such as blasting vibration and blasting slungshot. The high-precision nonel detonator and digital electronic detonator are been commonly used because of their accuracy of delay-time. However, each detonator has an allowable error range of delay-time due to the difference in manufacturing process. In the initiation network, the errors of delay-time often accumulate gradually as the number of detonators increases. Therefore, theoretical delay-time and actual delay-time with error in the detonating network were discussed based on the delay-time errors of detonators. The single-factor variable method was used to carry out the comparative test in deep hole blasting. The results showed that the particle peak vibration velocity (PPV) was 13.1783 cm/s and 3.4856 cm/s with a drop of 73.55% in comparison with a nonel detonator and digital electronic detonator, which proved that hole-by-hole blasting in the high-precision nonel detonator network was not achieved due to the delay error of detonators. Furthermore, the location distribution map of holes where the same section of detonators might occur was obtained. Finally, the probability of blasting in the same section changes with the number of blast holes was discovered by theoretical analysis, which provided a basis for accurate hole-by-hole blasting.
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spelling doaj-art-9e241e596e534b30a0d07c655fd62aba2025-02-03T01:28:17ZengWileyAdvances in Civil Engineering1687-80861687-80942020-01-01202010.1155/2020/88774098877409Experimental Study of Blast-Induced Vibration Characteristics Based on the Delay-Time Errors of DetonatorPing Wang0Yuanjun Ma1Yongjian Zhu2Jun Zhu3Work Safety Key Lab on Prevention and Control of Gas and Roof Disasters for Southern Goal Mines, Hunan University of Science and Technology, Xiangtan 411201, ChinaState Key Laboratory of Hydraulics and Mountain River Engineering, College of Water Resource and Hydropower, Sichuan University, Chengdu 610065, ChinaSchool of Resource & Environment and Safety Engineering, Hunan University of Science and Technology, Xiangtan, Hunan 411201, ChinaState Key Laboratory of Hydraulics and Mountain River Engineering, College of Water Resource and Hydropower, Sichuan University, Chengdu 610065, ChinaThe delay-time of detonators in hole-by-hole blasting is generally calculated accurately considering they have great influence on the blasting effect, such as blasting vibration and blasting slungshot. The high-precision nonel detonator and digital electronic detonator are been commonly used because of their accuracy of delay-time. However, each detonator has an allowable error range of delay-time due to the difference in manufacturing process. In the initiation network, the errors of delay-time often accumulate gradually as the number of detonators increases. Therefore, theoretical delay-time and actual delay-time with error in the detonating network were discussed based on the delay-time errors of detonators. The single-factor variable method was used to carry out the comparative test in deep hole blasting. The results showed that the particle peak vibration velocity (PPV) was 13.1783 cm/s and 3.4856 cm/s with a drop of 73.55% in comparison with a nonel detonator and digital electronic detonator, which proved that hole-by-hole blasting in the high-precision nonel detonator network was not achieved due to the delay error of detonators. Furthermore, the location distribution map of holes where the same section of detonators might occur was obtained. Finally, the probability of blasting in the same section changes with the number of blast holes was discovered by theoretical analysis, which provided a basis for accurate hole-by-hole blasting.http://dx.doi.org/10.1155/2020/8877409
spellingShingle Ping Wang
Yuanjun Ma
Yongjian Zhu
Jun Zhu
Experimental Study of Blast-Induced Vibration Characteristics Based on the Delay-Time Errors of Detonator
Advances in Civil Engineering
title Experimental Study of Blast-Induced Vibration Characteristics Based on the Delay-Time Errors of Detonator
title_full Experimental Study of Blast-Induced Vibration Characteristics Based on the Delay-Time Errors of Detonator
title_fullStr Experimental Study of Blast-Induced Vibration Characteristics Based on the Delay-Time Errors of Detonator
title_full_unstemmed Experimental Study of Blast-Induced Vibration Characteristics Based on the Delay-Time Errors of Detonator
title_short Experimental Study of Blast-Induced Vibration Characteristics Based on the Delay-Time Errors of Detonator
title_sort experimental study of blast induced vibration characteristics based on the delay time errors of detonator
url http://dx.doi.org/10.1155/2020/8877409
work_keys_str_mv AT pingwang experimentalstudyofblastinducedvibrationcharacteristicsbasedonthedelaytimeerrorsofdetonator
AT yuanjunma experimentalstudyofblastinducedvibrationcharacteristicsbasedonthedelaytimeerrorsofdetonator
AT yongjianzhu experimentalstudyofblastinducedvibrationcharacteristicsbasedonthedelaytimeerrorsofdetonator
AT junzhu experimentalstudyofblastinducedvibrationcharacteristicsbasedonthedelaytimeerrorsofdetonator