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MODERN TUNNELLING TECHNOLOGY 2024, Vol. 61 Issue (6) :191-199    DOI:
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Study on Surface Vibration Velocity Characteristics and Settlement Patterns Induced by Tunnel Blasting Construction
(1. State Key Laboratory of Intelligent Geotechnics and Tunnelling, Shenzhen 518060; 2. Key Laboratory of Coastal Urban Resilient Infrastructures (Shenzhen University), Ministry of Education, Shenzhen 518060; 3. College of Civil and Transportation Engineering,Shenzhen University, Shenzhen 518060; 4. Sinohydro Bureau 14th Co Ltd, Kunming 650041)
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Abstract To investigate the correlation between surface settlement patterns and tunnel blasting vibrations, a case study was conducted on the eastern tunnel of the Zhuhai Xingye Express Line (north section). Real-time monitoring and analysis were performed on the vibration velocity and frequency induced by tunnel blasting excavation. Additionally, tunnel structural reliability analysis was conducted using Copula theory. The results show that within different horizontal distance ranges from the blast center, vertical (Z) vibration velocities at monitoring points exceed radial(X) and tangential (Y) vibration velocities, while the frequency remains relatively stable. The maximum uplift and settlement occur on the left line of the tunnel, and monitoring points located between the left and right tunnel lines exhibit significant settlement variations, necessitating focused attention during construction. The Frank Copula function is recommended for constructing dependence models for tunnel structural reliability analysis, while the Clayton Copula is unsuitable for modeling surface settlement. In practical engineering, the optimal Copula function should be selected based on specific data characteristics to accurately represent parameter dependency relationships.
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Articles by authors
LI Junhong1
2
3 SHEN Jun1
2
3 BAO Xiaohua1
2
3 CHEN Xiangsheng1
2
3 XU Zhihao1
2
3 XIE Hailin4
KeywordsBlasting vibration   Blasting monitoring   Vibration velocity   Copula function     
Abstract: To investigate the correlation between surface settlement patterns and tunnel blasting vibrations, a case study was conducted on the eastern tunnel of the Zhuhai Xingye Express Line (north section). Real-time monitoring and analysis were performed on the vibration velocity and frequency induced by tunnel blasting excavation. Additionally, tunnel structural reliability analysis was conducted using Copula theory. The results show that within different horizontal distance ranges from the blast center, vertical (Z) vibration velocities at monitoring points exceed radial(X) and tangential (Y) vibration velocities, while the frequency remains relatively stable. The maximum uplift and settlement occur on the left line of the tunnel, and monitoring points located between the left and right tunnel lines exhibit significant settlement variations, necessitating focused attention during construction. The Frank Copula function is recommended for constructing dependence models for tunnel structural reliability analysis, while the Clayton Copula is unsuitable for modeling surface settlement. In practical engineering, the optimal Copula function should be selected based on specific data characteristics to accurately represent parameter dependency relationships.
KeywordsBlasting vibration,   Blasting monitoring,   Vibration velocity,   Copula function     
Cite this article:   
LI Junhong1, 2, 3 SHEN Jun1 etc .Study on Surface Vibration Velocity Characteristics and Settlement Patterns Induced by Tunnel Blasting Construction[J]  MODERN TUNNELLING TECHNOLOGY, 2024,V61(6): 191-199
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http://www.xdsdjs.com/EN/      或     http://www.xdsdjs.com/EN/Y2024/V61/I6/191
 
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[2] YANG Zhao.Study on Influence Law of Blasting Vibration and Vibration Reduction Technology in Urban Tunnelling[J]. MODERN TUNNELLING TECHNOLOGY, 2021,58(6): 225-232
[3] YE Hongyu1 YANG Xiaolin1,2 ZHUO Yue3.Numerical Simulation of the Propagation Law of Blast-induced Vibration in the Tunnel under Frequent Blasting[J]. MODERN TUNNELLING TECHNOLOGY, 2020,57(2): 149-156
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[7] ZOU Xinkuan1,2 PAN Qiang2 WANG Wei1 ZHANG Jichun2 YUE Heng2,3.Experimental Study of the Vibration Absorption Mechanism of Staged Wedge-Cut Blasting Technology[J]. MODERN TUNNELLING TECHNOLOGY, 2017,54(4): 186-192
[8] 吕Zhen-Li-1 , Sun-Jin-Shan-2, Zuo-Chang-Qun-2.On the Particle Vibration Rule of Rock Surrounding a Deeply Buried Circular Tunnel Under a Blasting Seismic Wave[J]. MODERN TUNNELLING TECHNOLOGY, 2014,51(1): 38-44
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