Generic placeholder image

Recent Patents on Engineering

Editor-in-Chief

ISSN (Print): 1872-2121
ISSN (Online): 2212-4047

General Research Article

Study on Influencing Factors of Liquid Carbon Dioxide Blasting in Rock Cutting

Author(s): Jianwei Li, Guiwen Zhang, Huadong Liu, Shanglong Zhang* and Xuansheng Cheng*

Volume 18, Issue 9, 2024

Published on: 31 October, 2023

Article ID: e311023222979 Pages: 12

DOI: 10.2174/0118722121253606231026063551

Price: $65

Abstract

Background: At present, although some scholars have studied liquid carbon dioxide blasting, there are still some problems to be solved, such as the influencing factors of the liquid carbon dioxide blasting effect. Based on the project of Jiu’e railway, this paper studies the influencing factors of liquid carbon dioxide blasting in rock cutting.

Objective: The patent study aims to show the influence of different blasting hole depths and jet directions on the effect of liquid carbon dioxide blasting and fracture development.

Methods: Considering the influence of jet direction and different blasting hole depth on liquid carbon dioxide blasting in rock cutting, the fracture development law at different blasting hole depths is analyzed, the stress characteristics of jet direction and non-jet direction are discussed, and fracture development process is analyzed in detail from the viewpoint of energy. Moreover, related patents on liquid carbon dioxide blasting devices are also reviewed. The research on law of fracture development and optimal blasting hole depth is the highlight of this paper.

Results: The influence of different blasting hole depths, jet directions on effect of liquid carbon dioxide blasting and fracture development is analyzed, When the depth of blasting hole is 2.5 m, the fractures can extend to bench surface but cannot extend to the bottom of the excavation surface. When the hole depth is 5.0 m, the fractures cannot extend to the bench surface. The fractures can be extended to the bottom of the excavation face and the bench surface when the blasting hole depth is 4.0. Moreover, the liquid carbon dioxide blasting can effectively blast the rock cutting, and the optimal blasting hole depth is 4 m.

Conclusion: Through the analysis results, considering the influencing factors of fracture number, fracture length and consumption of blasting energy, a blasting hole depth of 4 m is considered the best option.

Graphical Abstract

[1]
Z.P. Song, S.H. Li, J.B. Wang, Z.Y. Sun, and J. Liu, "Determination of equivalent blasting load considering millisecond delay effect", Geomech. Eng., vol. 15, no. 2, pp. 745-754, 2018.
[2]
S.B. Yu, "Limit analysis of a shallow subway tunnel with staged construction", Geomech. Eng., vol. 15, no. 5, pp. 1039-1046, 2018.
[3]
C.J. Peng, and L. Zhang, "A disposable carbon dioxide cracker with intelligent control system", C.N. Patent 208269737U, 2017.
[4]
X.F. Wang, Y.Y. Wei, and Q. Zhang, "A liquid carbon dioxide cracker with arresting device", C.N. Patent 116007444A, 2018.
[5]
Y. Yang, Z.J. Wang, and Y. Wang, "A liquid carbon dioxide blasting method suitable for open-pit high steps", C.N. Patent 115979085A, 2020.
[6]
H.D. Chen, Z.F. Wang, X. Chen, X.J. Chen, and L.G. Wang, "Increasing permeability of coal seams using the phase energy of liquid carbon dioxide", J CO2 Utilization, vol. 19, pp. 112-119, 2017.
[http://dx.doi.org/10.1016/j.jcou.2017.03.010]
[7]
D.C. Zhou, Research on the amount of liquid filled effect on fracturing outburst elimination by phase transformation of liquid CO2., Henan Polytechnic University: Jiaozuo, China, 2016.
[8]
J. Xia, B. Dou, H. Tian, J. Zheng, G. Cui, and M. Kashif, "Research on initiation of carbon dioxide fracturing pipe using the liquid carbon dioxide phase-transition blasting technology", Energies, vol. 14, no. 3, p. 521, 2021.
[http://dx.doi.org/10.3390/en14030521]
[9]
X.H. Zhou, J.L. Men, D.P. Song, and C.Y. Li, "Research on optimal borehole parameters of antireflection in coal seam by liquid CO2 blasting", Yanshi Lixue Yu Gongcheng Xuebao, vol. 35, no. 3, pp. 524-529, 2016.
[http://dx.doi.org/10.13722/j.cnki.jrme.2015.0319]
[10]
P. Pal Roy, C. Sawmliana, N.K. Bhagat, and M. Madhu, "Induced caving by blasting: Innovative experiments in blasting gallery panels of underground coal mines of India", Trans. Inst. Min. Metall., A Min. Technol., vol. 112, no. 1, pp. 57-63, 2003.
[http://dx.doi.org/10.1179/037174503225011036]
[11]
N. Vidanovic, "Application of unconventional methods of underground premises construction in coal mines", Technics Technologies Education Mangement-TTEM, vol. 2011, no. 6, pp. 861-865, 2011.
[12]
Z.F. Wang, H.J. Li, X.E. Chen, L. Zhao, and D.C. Chou, "Study on hole layout of liquid CO2 phase-transforming fracture technology for permeability improvement of coal seam", Journal of China Science and Technology, vol. 11, no. 9, pp. 11-16, 2015.
[http://dx.doi.org/10.11731/j.issn.1673-193x.2015.09.002]
[13]
X. Bai, Research on mechanism and application of liquid carbon dioxide phase change jet fracturing coal seam to increase gas permeability., Chongqing University: Chongqing, China, 2019.
[14]
Z. Bennour, T. Ishida, Y. Nagaya, Y. Chen, Y. Nara, Q. Chen, K. Sekine, and Y. Nagano, "Crack extension in hydraulic fracturing of shale cores using viscous oil, water, and liquid carbon dioxide", Rock Mech. Rock Eng., vol. 48, no. 4, pp. 1463-1473, 2015.
[http://dx.doi.org/10.1007/s00603-015-0774-2]
[15]
K.M. Sun, and L.W. Xin, "Expermental study on fracture mechanism of coal caused by supercritical CO2 explosion", Explosion and Shock Waves, vol. 38, no. 02, pp. 302-308, 2018.
[http://dx.doi.org/10.11883/bzycj-2016-0230]
[16]
F. Zhang, H. Liu, Y. Wu, J. Li, H. Yu, X. Wang, B.T. Guo, and Y. Yuan, "General design and thermodynamic analysis of a supercritical carbon dioxide cannon", J. Therm. Sci., vol. 30, no. 8, pp. 1-10, 2020.
[17]
Y Han, X L Guo, and X P Long, "High temperature and high pressure equation of state of carbon dioxide", Chinese Journal of Energetic Materials, vol. 24, pp. 0462-0468, 2016.
[18]
K.P. Zhou, B. Ke, J.L. Li, Y.N. Zhang, and L. Cheng, "Pressure dynamic response and explosion energy of liquid carbon dioxide blasting system", Blasting, vol. 34, no. 3, pp. 7-13, 2017.
[http://dx.doi.org/10.3963/j.issn.1001-487X.2017.03.002]
[19]
Y. Guo, "Thermodynamic properties of liquid carbon dioxide blasting system in process of phase transformation", Blasting, vol. 35, no. 04, pp. 108-115, 2018.
[http://dx.doi.org/10.3963/j.issn.1001-487X.2018.04.020]
[20]
G.H. Liu, H.L. Wang, and Y.X. Wu, "Shaft blasting vibration and CO2 fracturing vibration signals by wavelet packet analysis", Safety in Coal Mines, vol. 49, no. 09, pp. 233-237, 2018.
[21]
Q.Y. Li, G. Chen, D.Y. Luo, H.P. Ma, and Y. Liu, "An experimental study of a novel liquid carbon dioxide rock-breaking technology", Int. J. Rock Mech. Min. Sci., vol. 128, p. 104244, 2020.
[http://dx.doi.org/10.1016/j.ijrmms.2020.104244]
[22]
X. Shen, Z.Q. Li, R.L. Hu, and W. Gao, "Response spectrum analysis of carbon dioxide phase change cracking signal", Diqiu Kexue Yu Huanjing Xuebao, vol. 40, no. 05, pp. 645-651, 2018.
[23]
G. Chen, Q.Y. Li, X.X. Liu, Z.Y. Wu, and J. Ma, "Research on energy distribution characters about liquid CO2 phase-transition broken rock vibration signal", Blasting, vol. 35, no. 02, pp. 155-163, 2018.
[http://dx.doi.org/10.3963/j.issn.1001-487X.2018.02.027]
[24]
Y.J. Yang, and X. Zhu, "Experimental study on vibration attenuation law of liquid CO2 gas blasting rock", Subgrade Engineering, vol. 01, pp. 104-108, 2021.
[http://dx.doi.org/10.13379/j.issn.1003-8825.202007010]
[25]
X.M. Guan, Q.K. Nie, H.W. Li, and J.Y. An, "Research overview on dynamic response and damage of existing structure under tunnel blasting vibration", Tumu Gongcheng Xuebao, vol. 52, pp. 151-158, 2019.
[http://dx.doi.org/10.15951/j.tmgcxb.2019.s1.021]
[26]
A. Erdi, Y.R. Zheng, X.T. Feng, and Y. Cong, "Relationship between particle micro and macro mechanical parameters of parallel-bond model", Yantu Lixue, vol. 39, no. 4, pp. 1289-1301, 2018.
[http://dx.doi.org/10.16285/j.rsm.2016.0900]
[27]
C. Shi, Q. Zhang, and S.N. Wang, "Numerical simulation technology and application with particle flow code (PFC5.0)", Yantu Lixue, vol. 39, p. 43, 2018.

Rights & Permissions Print Cite
© 2025 Bentham Science Publishers | Privacy Policy