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Research Article

Numerical study on particle-carrying ability of liquid nitrogen jet

ORCID Icon, , ORCID Icon &
Pages 4256-4274 | Received 29 Oct 2021, Accepted 15 Mar 2022, Published online: 17 May 2022

References

  • Bennon, W. D., and F. P. Incropera. 1987. A continuum model for momentum, heat and species transport in binary solid-liquid phase change systems—I. Model formulation. International Journal of Heat and Mass Transfer 30 (10):2161–70. doi:10.1016/0017-9310(87)90094-9.
  • Cai, C., Z. Huang, G. Li, and F. Gao. 2015. Particle velocity distributions of abrasive liquid nitrogen jet and parametric sensitivity analysis. Journal of Natural Gas Science & Engineering 27:1657–66. doi:10.1016/j.jngse.2015.10.030.
  • Cai, C., Z. Huang, G. Li, F. Gao, J. Wei, and R. Li. 2016. Feasibility of reservoir fracturing stimulation with liquid nitrogen jet. Journal of Petroleum Science & Engineering 144:59–65. doi:10.1016/j.petrol.2016.02.033.
  • Chuchottaworn, P., and K. Asano. 2006. Calculation of drag coefficients of an evaporating or a condensing droplet. Journal of Chemical Engineering of Japan 18 (1):91–94. doi:10.1252/jcej.18.91.
  • Fairhurst, R. M., 1982. Abrasive water jet cutting.
  • Grundmann, S., G. Rodvelt, G. Dials, and R. Allen, 1998. Cryogenic nitrogen as a hydraulic fracturing fluid in the devonian shale, SPE Eastern regional meeting.
  • Karakurt, I., G. Aydin, and K. Aydiner. 2012. An experimental study on the depth of cut of granite in abrasive waterjet cutting. Materials and Manufacturing Processes 27 (5):538–44. doi:10.1080/10426914.2011.593231.
  • Lemmon, E. W., and R. T. Jacobsen. 2004. Viscosity and thermal conductivity equations for nitrogen, oxygen, argon, and air. International Journal of Thermophysics 25 (1):21–69. doi:10.1023/B:IJOT.0000022327.04529.f3.
  • Li, G., Z. Huang, S. Tian, and Z. Shen. 2010. Research and application of water jet technology in well completion and stimulation in China. Petroleum Science 7 (2):239–44. doi:10.1007/s12182-010-0009-9.
  • Li, Z., H. Xu, and C. Zhang. 2016. Liquid nitrogen gasification fracturing technology for shale gas development. Journal of Petroleum Science and Engineering 138:253–56. doi:10.1016/j.petrol.2015.10.033.
  • Liu, E., D. Li, W. Li, Y. Liao, M. Azimi, W. Liu, and M. Azimi. 2021. Erosion simulation and improvement scheme of separator blowdown system —— A case study of Changning national shale gas demonstration area. Journal of Natural Gas Science and Engineering 88 (1):103856. doi:10.1016/j.jngse.2021.103856.
  • McDaniel, B. W., S. Grundmann, W. Kendrick, D. Wilson, and S. Jordan. 1997. Field applications of cryogenic nitrogen as a hydraulic fracturing fluid. Jpt Journal of Petroleum Technology 50 (3):38–39.
  • Middleton, R. S., J. W. Carey, R. P. Currier, J. D. Hyman, Q. Kang, S. Karra, J. Jiménez-Martínez, M. L. Porter, and H. S. Viswanathan. 2015. Shale gas and non-aqueous fracturing fluids: Opportunities and challenges for supercritical CO2. Applied Energy 147:500–09. doi:10.1016/j.apenergy.2015.03.023.
  • Momber, A. W., and R. Kovacevic. 1997. Test parameter analysis in abrasive water jet cutting of rocklike materials. International Journal of Rock Mechanics and Mining Sciences 34 (1):17–25. doi:10.1016/S1365-1609(97)80030-5.
  • Morsi, S. A., and A. J. Alexander. 1972. An investigation of particle trajectories in two-phase flow systems[J]. Journal of Fluid Mechanics Digital Archive (JFM).55 (2):193–0.
  • Ounis, H., G. Ahmadi, and J. B. McLaughlin. 1991. Brownian diffusion of submicrometer particles in the viscous sublayer. Journal of Colloid and Interface Science 143 (1):266–77. doi:10.1016/0021-9797(91)90458-K.
  • Peng, S., Q. Chen, C. Shan, and D. Wang. 2019. Numerical analysis of particle erosion in the rectifying plate system during shale gas extraction. Energy Science & Engineering 7 (5):5. doi:10.1002/ese3.395.
  • Penny, G. S., M. W. Conway, and R. A. Schraufnagel. 1993. The evaluation of proppant transport and cleanup of foamed fluids used in hydraulic fracturing of shallow, water-sensitive reservoirs.
  • Peng S, Chen Q, Zhang C. 2020. Analysis of particle deposition in a new-type rectifying plate system during shale gas extraction[J]. Energy Science and Engineering 8 (3):702–717.
  • Sheng, M., G. Li, Z. Huang, S. Tian, and H. Qu. 2013. Experimental study on hydraulic isolation mechanism during hydra-jet fracturing. Experimental Thermal & Fluid Science 44 (1):722–26. doi:10.1016/j.expthermflusci.2012.09.014.
  • Soo, S.-L. 1990. Multiphase fluid dynamics. Science Press.
  • Span, R., E. W. Lemmon, R. T. Jacobsen, W. Wagner, and A. Yokozeki. 2000. A reference equation of state for the thermodynamic properties of nitrogen for temperatures from 63.151 to 1000 K and pressures to 2200 MPa. Journal of Physical & Chemical Reference Data 29 (6):1361–433. doi:10.1063/1.1349047.
  • Takemitsu, N. 1990. An analytical study of the standard k-epsilon model. Journal of Fluids Engineering 112 (6):192–98. doi:10.1115/1.2909387.
  • Vafai, K., and M. Sozen. 1990. Analysis of energy and momentum transport for fluid flow through a porous bed. Journal of Heat Transfer 112 (3):690–99. doi:10.1115/1.2910442.
  • Wu, X., Z. Huang, H. Song, S. Zhang, Z. Cheng, R. Li, H. Wen, P. Huang, and X. Dai, Variations of Physical and Mechanical Properties of Heated Granite After Rapid Cooling with Liquid Nitrogen[J]. Rock Mechanics and Rock Engineering 52(7).
  • Yi, L. P., M. Jia, X. G. Li, and Z. Z. Yang. 2019. Transient wellbore temperature and pressure calculation model for supercritical CO 2 jet fracturing. Energy Sources Part A Recovery Utilization and Environmental Effects 43(10):1–16.
  • Zhang, S., Z. Huang, P. Huang, X. Wu, C. Xiong, and C. Zhang. 2018a. Numerical and experimental analysis of hot dry rock fracturing stimulation with high-pressure abrasive liquid nitrogen jet. Journal of Petroleum Science and Engineering 163:156–65. doi:10.1016/j.petrol.2017.12.068.
  • Zhang, S., Z. Huang, H. Wang, et al.$3$2 2019. Experimental study on the rock-breaking characteristics of abrasive liquid nitrogen jet for hot dry rock[j]. Journal of Petroleum Science and Engineering 181:106166. doi:10.1016/j.petrol.2019.06.030.
  • Zhang, S., Z. Huang, H. Wang, H. Zhang, C. Zhang, and C. Xiong. 2018b. Thermal characteristics analysis with local thermal non-equilibrium model during liquid nitrogen jet fracturing for HDR reservoirs. Applied Thermal Engineering 143:482–92. doi:10.1016/j.applthermaleng.2018.07.088.
  • Zhang, S., Z. Huang, H. Zhang, Z. Guo, X. Wu, T. Wang, C. Zhang, and C. Xiong. 2018c. Experimental study of thermal-crack characteristics on hot dry rock impacted by liquid nitrogen jet. Geothermics 76:253–60. doi:10.1016/j.geothermics.2018.08.002.

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