1887

Abstract

Summary

Shale gas fluids geochemical reactivity is important to understand if we are to sustainably produce shale gas and also to reduce the risk of scaling during production. To assess the reason for the increase in salt concentration in the flowback water and to predict the scaling tendency during the whole process, a shale gas geochemical study has been carried out. Additionally, to better understand the transportation mechanisms for fluids within shale system and to match the volume of flowback water occurring in observed shale gas cases, some fractured shale gas models have been developed. According to the geochemical study, the conclusion is drawn that the scaling risk could be very serious due to the high salinity of the typical flowback water and the mixing between fracture fluid and formation water can account for the evolving salinity of the water that flows back. From this shale modelling study it can be shown that when the fracture fluid can propagate within the reservoir (either through the secondary fractures or the natural fracture network), there will be less fracture fluid produced back and there will be greater mixing with the in situ brine.

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/content/papers/10.3997/2214-4609.201601136
2016-05-30
2024-04-27
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References

  1. RAE (The Royal Society and The Royal Academy of Engineering)
    [2012] Shale gas extraction in the UK: a review of hydraulic fracturing. Issued: June 2012 DES2597, www.royalsociety.org.
    [Google Scholar]
  2. Blauch, M.E., Myers, R.R. Moore, T.R. Lipinski, B.A. and Houston, N.A.
    [2009] Marcellus Shale post-frac flowback waters: Where is all the salt coming from and what are the implications. SPE 125740.
    [Google Scholar]
  3. Zhang, X., Du, C., Deimbacher, F., Crick, M., Harikesavanallur, A.
    [2009] Sensitivity Studies of Horizontal Wells with Hydraulic Fractures in Shale Gas Reservoirs. IPTC 13338.
    [Google Scholar]
  4. Mossop, G.D. and Shetsen, I.
    [1994] The Geological Atlas of the Western Canada Sedimentary Basin.Alberta Geological Survey.
    [Google Scholar]
  5. Ghanbari, E., Abbasi, M.A., Dehghanpour, H. and Bearinger, D.
    [2013] Flowback volumetric and chemical analysis for evaluating load recovery and its impact on early-time production. SPE 167165.
    [Google Scholar]
  6. Rogers, S., Elmo, D., Dunphy, R., Bearinger, D.
    [2010] Understanding Hydraulic Fracture Geometry and Interactions in the Horn River Basin through DFN and Numerical Modeling. SPE 137488, Canadian Unconventional Resources and International Petroleum Conference, Calgary, Alberta, Canada.
    [Google Scholar]
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