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Research Article

Construction of sulfur-free gel breaker agent system and investigation on gel-breaking mechanism for association fracturing fluid

, , ORCID Icon, , , & show all
Pages 5665-5681 | Received 08 Dec 2021, Accepted 19 May 2022, Published online: 29 Jun 2022

References

  • Aali, J., and O. Rahmani. 2012. H2S—origin in south pars gas field from persian Gulf, Iran[J]. Journal of Petroleum Science and Engineering 86:217–24.
  • Barati, R., and J.-T. Liang. 2014. A review of fracturing fluid systems used for hydraulic fracturing of oil and gas wells[J]. Journal of Applied Polymer Science 131 (16). doi:10.1002/app.40735.
  • Boxue, P., W. Shuyan, C. Weiqi, H. Muhammad, and L. Huilin. 2020. Effects of flow behavior index and consistency coefficient on hydrodynamics of power-law fluids and particles in fluidized beds[J]. Powder Technology 366:249–60. doi:10.1016/j.powtec.2020.01.061.
  • Daye, W., C. Guangsheng, B. Yujie, X. Yang, Z. Zhang, et al. 2020. Experimental study on the causes and critical conditions of toxic gases in hydraulically fractured oil wells[J]. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 42(24):2963–71. doi:10.1080/15567036.2020.1808118.
  • Erkenbrecher, C. W., Jr, S. Nurnberg, and A. D. Breyla. 2015. A comparison of three nonoxidizing biocides and chlorine dioxide in treating marcellus shale production waters[J]. SPE Production & Operations 30 (4):368–74. doi:10.2118/174560-PA.
  • Fanbin, M., L. Miao, W. Shujun, et al. 2019. Encapsulation of potassium persulfate with ABS via coacervation for delaying the viscosity loss of fracturing fluid[J]. Journal of Applied Polymer Science 136(27). 47734.
  • Feng, Y., G. Zhaolong, Z. Jinlong, T. Zhiyu. 2018. Viscoelastic surfactant fracturing fluid for underground hydraulic fracturing in soft coal seams[J]. Journal of Petroleum Science and Engineering 169:646–53. doi:10.1016/j.petrol.2018.06.015.
  • Haiyang, W., X. Binwei, L. Yiyu, T. Gong, R. Zhang. 2017. Study on the propagation laws of hydrofractures meeting a faulted structure in the coal seam. Energies 10:654. doi:10.3390/en10050654.
  • Hongtao, Z., W. Xiaotong, S. Zongxiao, B. Zheng, K. Zhang. 2022. A review on mechanism and adaptive materials of temporary plugging agent for chemical diverting fracturing. Journal of Petroleum Science and Engineering 212:110256–68. doi:10.1016/j.petrol.2022.110256.
  • Jiang, Y., C. Weixiang, G. Baoshan, L. Yongjun, Q. Xiaohui, Y. Zhanwei, and Q. Wenlong. 2016. Supramolecular fluid of associative polymer and viscoelastic surfactant for hydraulic fracturing[J]. SPE Production & Operations 31 (4). 318–24
  • Jinfeng, L., F. Junyin, H. Hao, C.-Y. Li, S.-Z. Yang, J.-D. Gu, B.-Z. Mu. 2018. Decrease in viscosity of partially hydrolyzed polyacrylamide solution caused by the interaction between sulfide ion and amide group[J]. Journal of Petroleum Science and Engineering 170:738–43. doi:10.1016/j.petrol.2018.07.017.
  • Jinzhou, Z., B. Yang, M. Jincheng. 2018. A novel hydrophobic associative polymer by RAFT-MADIX copolymerization for fracturing fluids with high thermal stability[J]. Energy&Fuels 32 (3):3039–51.
  • Kamel, A., Z. Salem, R. Chemini, M. Khodja Khedidja Allia, and K. Allia. 2019. Characterization of natural sand proppant used in hydraulic fracturing fluids[J]. Particulate Science and Technology 37 (6):716–24. doi:10.1080/02726351.2018.1438542.
  • Luo, X., S. Wang, Z. Wang, Z. Jing, L. Mingming, Z. Zhai, and T. Han. 2015. Experimental investigation on rheological properties and friction performance of thickened CO2 fracturing fluid[J]. Journal of Petroleum Science and Engineering 133:410–20. doi:10.1016/j.petrol.2015.06.033.
  • Marriott Robert, A., P. Payman, J. Marrugo-Hernandez Juan, and R. Shaunak. 2016. Hydrogen sulfide formation in oil and gas[J]. NRC Research Press 94 (4). 406–13
  • Nediljka, G., B. Vladislav, T. Matko, and M. Petar. 2021. Fracturing fluids and their application in the republic of croatia[J]. Applied Sciences 11 (6). 2807.
  • Pirzadeh, P., K. L. Lesage, and R. A. Marriott. 2014. Hydraulic fracturing additives and the delayed onset of hydrogen sulfide in shale gas[J]. Energy & Fuels 28 (4):4993–5001. doi:10.1021/ef501059k.
  • Qiming, H., L. Shimin, W. Gang, B. Wu, Y. Zhang. 2019. Coalbed methane reservoir stimulation using guar-based fracturing fluid: A review[J]. Journal of Natural Gas Science and Engineering 66:107–25. doi:10.1016/j.jngse.2019.03.027.
  • Qiu, L., Y. Shen, T. Wang, and C. Wang. 2018. Rheological and fracturing characteristics of a novel sulfonated hydroxypropyl guar gum[J]. International Journal of Biological Macromolecules 117:974–82. doi:10.1016/j.ijbiomac.2018.05.072.
  • Reddy, B. R. 2014. Laboratory characterization of gel filter cake and development of nonoxidizing gel breakers for zirconium-crosslinked fracturing fluids[J]. SPE Journal 19 (4):662–73. doi:10.2118/164116-PA.
  • Shao, Y., J. Mao, B. Yang, J. Zhao, and X. Yang. 2020. High performance hydrophobic associated polymer for fracturing fluids with low-dosage[J]. Petroleum Chemistry 60 (2):219–25. doi:10.1134/S0965544120020115.
  • Sheng, X., H. Qiming, W. Gang, W. Bing, and L. Jun. 2021. Experimental study of the influence of water-based fracturing fluids on the pore structure of coal[J]. Journal of Natural Gas Science and Engineering 88: 103863.
  • Shimakura, H., N. Ogata, Y. Kawakita, K. Ohara, and S. Takeda. 2013. Determination of the structure of liquids containing free radical molecules: Inter-molecular correlations in liquid chlorine dioxide[J]. Molecular Physics 111 (8):1015–22. doi:10.1080/00268976.2012.762128.
  • Tian, J., J. Mao, W. Zhang, X. Yang, C. Lin, M. Cun, J. Mao, J. Zhao. 2019. Application of a Zwitterionic hydrophobic associating polymer with high salt and heat tolerance in brine-based fracturing Fluid[J]. Polymers 11(12):2005. doi:10.3390/polym11122005.
  • Wang, J., Y. Huang, Y. Zhang, F. Zhou, E. Yao, and R. Wang. 2020. Study of fracturing fluid on gel-breaking performance and damage to fracture conductivity[J]. Journal of Petroleum Science and Engineering 193:107443. doi:10.1016/j.petrol.2020.107443.
  • Xuan, X., W. Wei, P. Tao, and Y. Zhang. 2014. Preparation and Application of Sustained-Release Potassium Ferrate(VI)[J]. Journal of Chemistry 2014(12): 1–7.
  • Zhang, L., L. Zheng, P. Jingyang, P. Chunsheng, and S. Cui. 2016. Influence of hydrolyzed polyacrylamide (HPAM) molecular weight on the cross-linking reaction of the HPAM/Cr3+ system and transportation of the HPAM/Cr3+ system in microfractures[J]. Energy & Fuels 30 (11):9351–61. doi:10.1021/acs.energyfuels.6b02230.
  • Zhang, C., P. Wang, G. Song, and G. A. Seisenbaeva. 2018. Research on property of multicomponent thickening water fracturing fluid and application in low permeability oil reservoirs[J]. Journal of Chemistry 2018:1–10.
  • Zhao, Z., T. Liu, P. Luo, Y. Li, J. Liu, J. Cheng, Y. Yu. 2016. Performance and field implementation of a new fracturing fluid consisting of hydrophobically associating polyacrylamide and anionic surfactant[J]. Journal of Polymer Engineering 36(1):13–21. doi:10.1515/polyeng-2014-0344.

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