Review on gas flow and recovery in unconventional porous rocks

Duanlin Lin, Jinjie Wang, Bin Yuan, Yinghao Shen

Abstract view|588|times       PDF download|186|times

Abstract


This study summarizes gas flow process in unconventional porous rocks, including the transportation in tight or shale reservoirs and the spontaneous imbibition happened in them. Fluids flow is greatly affected by the pore structure together with the pore size distribution of porous media. The MRI and BET measurement show peaks in pore throat radius ranging from 2 to 20 nm, whereas the diameter for methane and helium are 0.38 and 0.26 nm, respectively. Yet for different types of reservoir, distinct mechanisms should be utilized based on the flow regimes. Besides, experimental measurement techniques for conventional reservoirs are no long accurate enough for most of the unconventional reservoirs. New attempts have been implemented to obtain more valuable data for accurate reservoir prediction. By reviewing large numbers of articles, a clear and comprehensive map on the gas flow and recovery in unconventional reservoirs is made. Factors influencing the gas flow and recovery are investigated in detail for mathematical simulation process. Reservoir conditions and the sweep efficiency play an important role during gas production process. Besides, adsorbed gas contributes a lot to the total gas recovery. The overall investigations suggest that many parameters that influence the gas flow in unconventional porous rocks should be taken into consideration during the evaluation. Among them, permeability, adsorbed gas dynamics, stimulated reservoir volume as well as the unstimulated reservoir volume, and imbibition effect are the most important ones. This study provides valuable data and reasonable exploitations for characterizing gas flow and recovery in unconventional porous rocks.

Cited as: Lin, D., Wang, J., Yuan, B., et al. Review on gas flow and recovery in unconventional porous rocks. Advances in Geo-Energy Research, 2017, 1(1): 39-53, doi: 10.26804/ager.2017.01.04


Keywords


Unconventional rocks, gas flow, enhancing recovery, imbibition, fracture

Full Text:

PDF

References


Behmanesh, H., Clarkson, C.R., Tabatabaie, S.H., et al. Impact of distance-of-investigation calculations on rate-transient analysis of unconventional gas and light-oil reservoirs: New formulations for linear flow. J. Can. Pet. Technol. 2015, 54(6): 509-519.

Behrang, A., Kantzas, A. A hybrid methodology to predict gas permeability in nanoscale organic materials; a combination of fractal theory, kinetic theory of gases and Boltzmann transport equation. Fuel 2017, 188: 239-245.

Bennion, D.B., Thomas, F.B. Formation damage issues impacting the productivity of low permeability, low initial water saturation gas producing formations. J. Energy Res. Technol. 2005, 127(3): 240-247.

Bertoncello, A., Wallace, J., Blyton, C., et al. Imbibition and water blockage in unconventional reservoirs: Well-management implications during flowback and early production. Spectra Anal. 2014, 17(4): 497-506.

Beskok, A., Karniadakis, G.E. A model for flows in channels, pipes, and ducts at micro and nano scales. Microscale Thermophys. Eng. 1999, 3(1): 43-77.

Brown, G.P., DiNardo, A., Cheng, G.K., et al. The flow of gases in pipes at low pressures. J. Appl. Phys. 1946, 17(10): 802-813.

Bustin, A.M.M., Bustin, R.M. Importance of rock properties on the producibility of gas shales. Int. J. Coal Geol. 2012, 103: 132-147.

Cai, J., Ghanbarian, B., Xu, P., et al. Virtual special issue: Advanced theoretical and numerical approaches and applications to enhanced gas recovery. J. Nat. Gas Sci. Eng. 2017, 37: 579-583.

Cai, J., Yu, B. Advances in studies of spontaneous imbibition in porous media. Adv. Mech. 2012, 42(6): 735-754.

Cai, J.C., Perfect, E., Cheng, C.L., et al. Generalized modeling of spontaneous imbibition based on Hagen-Poiseuille flow in tortuous capillaries with variably shaped apertures. Langmuir 2014, 30(18): 5142-5151.

Cai, J.C., Yu, B.M. Prediction of maximum pore size of porous media based on fractal geometry. Fractals 2010, 18(4): 417-423.

Cai, J.C., Yu, B.M. A discussion of the effect of tortuosity on the capillary imbibition in porous media. Transp. Porous Media 2011, 89(2): 251-263.

Cai, J.C., Yu, B.M., Zou, M.Q., et al. Fractal characterization of spontaneous co-current imbibition in porous media. Energy Fuels 2010, 24(3): 1860-1867.

Chen, S., Zhu, Y., Wang, H., et al. Shale gas reservoir characterisation: A typical case in the southern Sichuan basin of China. Energy 2011, 36(11): 6609-6616.

Cheng, Y. Pressure transient characteristics of hydraulically fractured horizontal shale gas wells. Paper SPE 149311 Presented at the SPE Eastern Regional Meeting, Colum-bus, Ohio, USA, 17-19 August, 2011.

Civan, F. Effective correlation of apparent gas permeability in tight porous media. Transp. Porous Media 2010, 82(2): 375-384.

Clarkson, C.R. Production data analysis of unconventional gas wells: Review of theory and best practices. Int. J. Coal Geol. 2013, 109: 101-146.

Clarkson, C., Qanbari, F. A semi-analytical method for forecasting wells completed in low permeability, under-saturated CBM reservoirs. J. Nat. Gas Sci. Eng. 2016a, 30: 19-27.

Clarkson, C.R., Qanbari, F. History matching and forecasting tight gas condensate and oil wells by use of an approximate semianalytical model derived from the dynamic-drainage-area concept. SPE Reserv. Eval. Eng. 2016b, 19(4): 540-552.

Coppens, M.O. The effect of fractal surface roughness on diffusion and reaction in porous catalysts-from fundamentals to practical applications. Catal. Today 1999, 53(2): 225-243.

Coppens, M.O., Dammers, A.J. Effects of heterogeneity on diffusion in nanopores-from inorganic materials to protein crystals and ion channels. Fluid Phase Equilib. 2006, 241(1-2): 308-316.

Curtis, M.E., Ambrose, R.J., Sondergeld, C.H. Structural characterization of gas shales on the micro-and nano-scales. Paper SPE 137693 Presented at the Canadian Unconventional Resources and International Petroleum Conference, Calgary, Alberta, Canada, 19-21 October, 2010.

Darabi, H., Ettehad, A., Javadpour, F., et al. Gas flow in ultra-tight shale strata. J. Fluid Mech. 2012, 710: 641-658.

Dehghanpour, H., Lan, Q., Saeed, Y., et al. Spontaneous imbibition of brine and oil in gas shales: Effect of water adsorption and resulting microfractures. Energy Fuels 2013, 27(6): 3039-3049.

Etminan, S.R., Javadpour, F., Maini, B.B., et al. Measurement of gas storage processes in shale and of the molecular diffusion coefficient in kerogen. Int. J. Coal Geol. 2014, 123: 10-19.

Fakcharoenphol, P., Kurtoglu, B., Kazemi, H., et al. The effect of osmotic pressure on improve oil recovery from fractured shale formations. Paper SPE 168998 Presented at the SPE Unconventional Resources Conference, The Woodlands, Texas, USA, 1-3 April, 2014.

Fathi, E., Akkutlu, I.Y. Matrix heterogeneity effects on gas transport and adsorption in coalbed and shale gas reservoirs. Transp. Porous Media 2009, 80(2): 281-304.

Freeman, C.M., Moridis, G.J., Blasingame, T.A. A numerical study of microscale flow behavior in tight gas and shale gas reservoir systems. Transp. Porous Media 2011, 90(1): 253-268.

Ge, H.K., Yang, L., Shen, Y.H., et al. Experimental inves-tigation of shale imbibition capacity and the factors influencing loss of hydraulic fracturing fluids. Pet. Sci. 2015, 12(4): 636-650.

Geng, L., Li, G., Zitha, P., et al. A diffusion-viscous flow model for simulating shale gas transport in nano-pores. Fuel 2016a, 181: 887-894.

Geng, L.D., Li, G.S., Zitha, P., et al. A fractal permeability model for shale gas flow through heterogeneous matrix systems. J. Nat. Gas Sci. Eng. 2016b, 35: 593-604.

Ghanbari, E., Abbasi, M.A., Dehghanpour, H., et al. Flowback volumetric and chemical analysis for evaluating load recovery and its impact on early-time production. Paper SPE 167165 Presented at the SPE Unconventional Resources Conference Canada, Calgary, Alberta, Canada, 5-7 November, 2013.

Guo, C.H., Xu, J.C., Wu, K.L., et al. Study on gas flow through nano pores of shale gas reservoirs. Fuel 2015, 143: 107-117.

Haber, J. Manual on catalyst characterization. Pure Appl. Chem. 1991, 63(9): 1227-1246.

Hill, R.J., Jarvie, D.M., Zumberge, J., et al. Oil and gas geochemistry and petroleum systems of the Fort Worth basin. AAPG Bull. 2007, 91(4): 445-473.

Javadpour, F. Nanopores and apparent permeability of gas flow in mudrocks (shales and siltstone). J. Can. Pet. Technol. 2009, 48(8): 16-21.

Javadpour, F., Fisher, D., Unsworth, M. Nanoscale gas flow in shale gas sediments. J. Can. Pet. Technol. 2007, 46(10): 55-61.

Javadpour, F., McClure, M., Naraghi, M.E. Slip-corrected liquid permeability and its effect on hydraulic fracturing and fluid loss in shale. Fuel 2015, 160: 549-559.

Javadpour, F., Moravvej Farshi, M., Amrein, M. Atomic-force microscopy: A new tool for gas-shale characterization. J. Can. Pet. Technol. 2012, 51(4): 236-243.

Katsube, T. Shale permeability and pore-structure evolution characteristics. Nat. Resour. Can. 2000, 1: 1-9.

King, G.E. Hydraulic fracturing 101: What every repre-sentative, environmentalist, regulator, reporter, investor, university researcher, neighbor and engineer should know about estimating frac risk and improving frac performance in unconventional gas and oil wells. Paper SPE 152596 Presented at the SPE Hydraulic Fracturing Technology Conference, The Woodlands, Texas, USA, 6-8 February, 2012.

King Jr, H.E., Eberle, A.P., Walters, C.C., et al. Pore architecture and connectivity in gas shale. Energy Fuels 2015, 29(3): 1375-1390.

Klinkenberg, L. The permeability of porous media to liquids and gases. Paper API41200 Presented at the Drilling and Production Practice, New York, USA, 1 January, 1941.

Langmuir, I. The adsorption of gases on plane surface of glass, mica and platinum. J. Am. Chem. Soc. 1918, 40(9): 1361-1403.

Liu, D., Ge, H., Liu, J., et al. Experimental investigation on aqueous phase migration in unconventional gas reservoir rock samples by nuclear magnetic resonance. J. Nat. Gas Sci. Eng. 2016a, 36: 837-851.

Liu, X.J., Xiong, J., Liang, L.X. Investigation of pore structure and fractal characteristics of organic-rich Yanchang formation shale in central China by nitrogen adsorption/desorption analysis. J. Nat. Gas Sci. Eng. 2015, 22: 62-72.

Loucks, R.G., Reed, R.M., Ruppel, S.C., et al. Spectrum of pore types and networks in mudrocks and a descriptive classification for matrix-related mudrock pores. AAPG Bull. 2012, 96(6): 1071-1098.

Makhanov, K., Dehghanpour, H., Kuru, E. An experimental study of spontaneous imbibition in Horn River shales. Paper SPE 162650 Presented at the SPE Canadian Unconventional Resources Conference, Calgary, Alberta, Canada, 30 October-1 November, 2012.

Meng, M., Ge, H., Ji, W., et al. Monitor the process of shale spontaneous imbibition in co-current and counter-current displacing gas by using low field nuclear magnetic resonance method. J. Nat. Gas Sci. Eng. 2015a, 27: 336-345.

Meng, M., Ge, H., Ji, W., et al. Investigation on the variation of shale permeability with spontaneous imbibition time: Sandstones and volcanic rocks as comparative study. J. Nat. Gas Sci. Eng. 2015b, 27: 1546-1554.

Meng, M., Ge, H., Ji, W., et al. Research on the auto-removal mechanism of shale aqueous phase trapping using low field nuclear magnetic resonance technique. J. Pet. Sci. Eng. 2016, 137: 63-73.

Milliken, K.L., Rudnicki, M., Awwiller, D.N., et al. Organic matter-hosted pore system, Marcellus Formation (Devo-nian), Pennsylvania. AAPG Bull. 2013, 97(2): 177-200.

Moghanloo, R.G., Yuan, B., Ingrahama, N., et al. Applying macroscopic material balance to evaluate interplay between dynamic drainage volume and well performance in tight formations. J. Nat. Gas Sci. Eng. 2015, 27: 466-478.

Odumabo, S.M., Karpyn, Z.T. Investigation of gas flow hin-drance due to fracturing fluid leakoff in low permeability sandstones. J. Nat. Gas Sci. Eng. 2014, 17: 1-12.

Palisch, T.T., Vincent, M., Handren, P.J. Slickwater fracturing: Food for thought. SPE Prod. Oper. 2010, 25(3): 327-344.

Penny, G.S., Dobkins, T.A., Pursley, J.T. Field study of completion fluids to enhance gas production in the Barnett shale. SPE Gas Technology Symposium, 2006.

Qin, Y., Wang, Y., Yang, X., et al. Experimental study on dynamic gas adsorption. Int. J. Min. Sci. Technol. 2012, 22(6): 763-767.

Ren, W.X., Li, G.S., Tian, S.C., et al. An analytical model for real gas flow in shale nanopores with non-circular cross-section. AlChE J. 2016, 62(8): 2893-2901.

Rezaee, R. Fundamentals of gas shale reservoirs. New Jersey, USA, John Wiley & Sons, 2015.

Roy, S., Raju, R., Chuang, H.F., et al. Modeling gas flow through microchannels and nanopores. J. Appl. Phys. 2003, 93(8): 4870-4879.

Roychaudhuri, B., Tsotsis, T.T., Jessen, K. An experimental investigation of spontaneous imbibition in gas shales. J. Pet. Sci. Eng. 2013, 111: 87-97.

Shen, Y., Ge, H., Li, C., et al. Water imbibition of shale and its potential influence on shale gas recovery-a comparative study of marine and continental shale formations. J. Nat. Gas Sci. Eng. 2016a, 35: 1121-1128.

Shen, Y., Ge, H., Su, S., et al. Imbibition characteristic of shale gas formation and water-block removal capability. Sci. Sin. Phys.. Mech. Astron. 2017, 47(11): 114609.

Shen, Y., Ge, H., Su, S., et al. Impact of capillary imbibition into shale on lost gas volume. Chem. Technol. Fuels Oils 2016b, 52(5): 536-541.

Sheng, M., Li, G., Tian, S., et al. A fractal permeability model for shale matrix with multi-scale porous structure. Fractals 2016, 24(1): 1650002.

Sheng, M., Li, G.S., Huang, Z.W., et al. Pore-scale modeling and analysis of surface diffusion effects on shale-gas flow low in kerogen pores. J. Nat. Gas Sci. Eng. 2015, 27: 979-985.

Soliman, M., Daal, J., East, L. Fracturing unconventional formations to enhance productivity. J. Nat. Gas Sci. Eng. 2012, 8: 52-67.

Sondergeld, C.H., Ambrose, R.J., Rai, C.S., et al. Micro-structural studies of gas shales. Paper SPE 131771 Presented at the SPE Unconventional Gas Conference, Pittsburgh, Pennsylvania, USA, 23-25 February, 2010.

Song, B., Economides, M.J., Ehlig-Economides, C.A. Design of multiple transverse fracture horizontal wells in shale gas reservoirs. Paper SPE 140555 Presented at the SPE Hydraulic Fracturing Technology Conference, The Woodlands, Texas, USA, 24-26 January, 2011.

Strapoc, D., Mastalerz, M., Schimmelmann, A., et al. Geochemical constraints on the origin and volume of gas in the New Albany Shale (Devonian-Mississippian), eastern Illinois Basin. AAPG Bull. 2010, 94(11): 1713-1740.

Thompson, S.L., Owens, W.R. A survey of flow at pressures. Vacuum 1975, 25(4): 151-156.

Wang, D., Butler, R., Liu, H., et al. Flow-rate behavior and imbibition in shale. SPE Reserv. Eval. Eng. 2011, 14(4): 485-492.

Wang, J., Dong, M., Yang, Z., et al. Investigation of methane desorption and its effect on the gas production process from shale: Experimental and mathematical study. Energy Fuels 2017, 31(1): 216.

Wang, J., Yang, Z., Dong, M., et al. Experimental and numer-ical investigation of dynamic gas adsorption/desorption-diffusion process in shale. Energy Fuels 2016a, 30(12): 10080-10091.

Wang, J.J., Wang, B.E., Li, Y.J., et al. Measurement of dynamic adsorption-diffusion process of methane in shale. Fuel 2016b, 172: 37-48.

Wang, R., Zhang, K., Detpunyawat, P., et al. Analytical solu-tion of matrix permeability of organic-rich shale. Paper IPTC18627 Presented at the International Petroleum Technology Conference, Bangkok, Thailand, 14-16 November, 2016d.

Wang, Z.Y., Jin, X., Wang, X.Q., et al. Pore-scale geometry effects on gas permeability in shale. J. Nat. Gas Sci. Eng. 2016d, 34: 948-957.

Wu, K., Chen, Z., Li, X. Real gas transport through nanopores of varying cross-section type and shape in shale gas reservoirs. Chem. Eng. J. 2015a, 281: 813-825.

Wu, K., Li, X., Guo, C., et al. Adsorbed gas surface diffusion and bulk gas transport in nanopores of shale reservoirs with real gas effect-adsorption-mechanical coupling. Paper SPE 173201 Presented at the SPE Reservoir Simulation Symposium, Houston, Texas, USA, 23-25 February, 2015b.

Wu, K., Li, X., Wang, C., et al. Apparent permeability for gas flow in shale reservoirs coupling effects of gas diffusion and desorption. Paper URTeC1921039 Presented at the Unconventional Resources Technology Conference, Denver, Colorado, USA, 25-27 August, 2014.

Wu, K., Li, X., Wang, C., et al. Model for surface diffusion of adsorbed gas in nanopores of shale gas reservoirs. Ind. Eng. Chem. Res. 2015c, 54(12): 3225-3236.

Wu, K.L., Chen, Z.X., Li, X.F., et al. A model for multiple transport mechanisms through nanopores of shale gas reservoirs with real gas effect-adsorption-mechanic coupling. Int. J. Heat Mass Transf. 2016, 93: 408-426.

Yaich, E., Williams, S., Bowser, A., et al. A case study: The impact of soaking on well performance in the Marcellus. Paper URTeC2154766 Presented at the Unconventional Resources Technology Conference San Antonio, Texas, USA, 20-22 July, 2015.

Yang, F., Ning, Z.F., Liu, H.Q. Fractal characteristics of shales from a shale gas reservoir in the Sichuan Basin, China. Fuel 2014, 115: 378-384.

Yang, L., Ge, H., Shi, X., et al. The effect of microstructure and rock mineralogy on water imbibition characteristics in tight reservoirs. J. Nat. Gas Sci. Eng. 2016a, 34: 1461-1471.

Yang, L., Ge, H., Shi, X., et al. Experimental and numerical study on the relationship between water imbibition and salt ion diffusion in fractured shale reservoirs. J. Nat. Gas Sci. Eng. 2017, 38: 283-297.

Yang, Z.H., Wang, W.H., Dong, M.Z., et al. A model of dynamic adsorption-diffusion for modeling gas transport and storage in shale. Fuel 2016b, 173: 115-128.

Yao, J., Sun, H., Fan, D.Y., et al. Numerical simulation of gas transport mechanisms in tight shale gas reservoirs. Pet. Sci. 2013, 10(4): 528-537.

Yuan, B., Moghanloo, R.G., Wang, K., et al. An integrated approach for fracturing evaluation and optimization using rate-transient analysis and dynamic drainage volume. Paper SPE 182244 Presented at the SPE Asia Pacific Oil & Gas Conference and Exhibition, Perth, Australia, 25-27 October, 2016a.

Yuan, Y.D., Doonechaly, N.G., Rahman, S. An analytical model of apparent gas permeability for tight porous media. Transp. Porous Media 2016b, 111(1): 193-214.

Zhang, T., Ellis, G.S., Ruppel, S.C., et al. Effect of organic-matter type and thermal maturity on methane adsorption in shale-gas systems. Org. Geochem. 2012, 47: 120-131.

Zheng, Q., Yu, B., Duan, Y., et al. A fractal model for gas slippage factor in porous media in the slip flow regime. Chem. Eng. Sci. 2013, 87: 209-215.

Ziarani, A.S., Aguilera, R. Knudsen’s permeability correction for tight porous media. Transp. Porous Media 2012, 91(1): 239-260.


Refbacks

  • There are currently no refbacks.


Copyright (c) 2017 The Author(s)

Creative Commons License
This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.

Copyright ©2018. All Rights Reserved