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The optimization of hydraulic calculations for regional integrated modeling

Authors: R.N. Galimov, V.P. Shakshin, S.V. Lomovskikh, I.G. Khamitov (SamaraNIPIneft LLC, RF, Samara), A.E. Manasyan (Samaraneftegaz JSC, RF, Samara)

Key words: regional integrated modeling, multiphase hydrocarbon flow, oil and gas transportation.

The paper considers the method of hydraulic calculations in horizontal and inclined pipelines actually applied within the frames of regional integrated modeling, as well as in boreholes of production and injection wells. The authors have performed the comparison of the results achieved using this method with the analogous results achieved using Pipesim software. The average discrepancy between the input data in both software makes less than 1%. Basing upon the example of Samaraneftegaz JSC it was illustrated that the speed of calculations using this applied method is 20 times higher than the speed of analogous calculations through Pipesim 2003, that opens new possibilities in automated solution of optimization targets within the production company (search of optimum network lengths, selection of pipe diameters, connection of new wells and licensed areas).

References

1. Beliakova N., Van Berkel J.T., Kulawski G.J., et al., The Netherlands Hydrocarbon

Field Planning Tool for medium to long term production forecasting from oil

and gas fields using integrated subsurface - surface models, SPE 65160, 2000.

2. Ageh E.A., Adegoke A., Uzoh O.J., Using Integrated Production Modeling

(IPM) as an optimization tool for field development and management, SPE

140625, 2010.

3. Khasanov M.M., Surtaev V.N., Tarasov P.A. et al., Neftyanoe khozyaystvo – Oil

Industry, 2008, no. 11, pp. 71-75.

4. Karimov M.R., Ismagilov R.R., Zagurenko T.G. et al., Neftyanoe khozyaystvo –

Oil Industry, 2009, no. 11, pp. 64-77.

5. Nekipelov Yu.V., Latkin K.E., Ismagilov R.R. et al., Neftyanoe khozyaystvo – Oil

Industry, 2010, no. 8, pp. 6-9.

6. Atnagulov A., Ismagilov R., Nekipelov Y., Kireev G., Optimizing methods of

profitability assessment and well cluster drilling rating with account of capital

expenditures, SPE 136153, 2010.

7. Ismagilov A.F., Belkina E.Yu., Pavlov V.A. et al., Neftyanoe khozyaystvo – Oil Industry,

2010, no. 8, pp. 10-12.

8. Lomovskikh S., Smyslov V., Sukhov E. et al., Optimization of produced water

dumping using conceptual model of field infrastructure, SPE 138078, 2010.

9. Pipesim Suite User Guide, Schlumberger.

10. Brill J.P., Mukherjee H., Multiphase flow in wells, SPE, 1999.

11. Aziz Khalid, Govier George W., Fogarasi Maria, Pressure drop in wells producing

oil and gas, Canadian Petroleum Technology, 1972, V. 11, no. 3,

pp. 38-48.

12. Chierici G.L., Ciucci G.M., Sclocchi G., Two-Phase vertical flow in oil

wells – prediction of pressure drop, Petroleum Technology, 1974, V. 26, no.

8, pp. 927-938.

13. Beggs D.H., Brill J.P., A Study of two-phase flow in inclined pipes, Petroleum

Technology, 1973, V. 25, no. 5, pp. 607-617.

14. Mukherjee H., Brill J.P., Pressure drop correlations for inclined two-phase

flow, Energy Res. Tech., 1985, V. 107, pp. 549.

Key words: regional integrated modeling, multiphase hydrocarbon flow, oil and gas transportation.

The paper considers the method of hydraulic calculations in horizontal and inclined pipelines actually applied within the frames of regional integrated modeling, as well as in boreholes of production and injection wells. The authors have performed the comparison of the results achieved using this method with the analogous results achieved using Pipesim software. The average discrepancy between the input data in both software makes less than 1%. Basing upon the example of Samaraneftegaz JSC it was illustrated that the speed of calculations using this applied method is 20 times higher than the speed of analogous calculations through Pipesim 2003, that opens new possibilities in automated solution of optimization targets within the production company (search of optimum network lengths, selection of pipe diameters, connection of new wells and licensed areas).

References

1. Beliakova N., Van Berkel J.T., Kulawski G.J., et al., The Netherlands Hydrocarbon

Field Planning Tool for medium to long term production forecasting from oil

and gas fields using integrated subsurface - surface models, SPE 65160, 2000.

2. Ageh E.A., Adegoke A., Uzoh O.J., Using Integrated Production Modeling

(IPM) as an optimization tool for field development and management, SPE

140625, 2010.

3. Khasanov M.M., Surtaev V.N., Tarasov P.A. et al., Neftyanoe khozyaystvo – Oil

Industry, 2008, no. 11, pp. 71-75.

4. Karimov M.R., Ismagilov R.R., Zagurenko T.G. et al., Neftyanoe khozyaystvo –

Oil Industry, 2009, no. 11, pp. 64-77.

5. Nekipelov Yu.V., Latkin K.E., Ismagilov R.R. et al., Neftyanoe khozyaystvo – Oil

Industry, 2010, no. 8, pp. 6-9.

6. Atnagulov A., Ismagilov R., Nekipelov Y., Kireev G., Optimizing methods of

profitability assessment and well cluster drilling rating with account of capital

expenditures, SPE 136153, 2010.

7. Ismagilov A.F., Belkina E.Yu., Pavlov V.A. et al., Neftyanoe khozyaystvo – Oil Industry,

2010, no. 8, pp. 10-12.

8. Lomovskikh S., Smyslov V., Sukhov E. et al., Optimization of produced water

dumping using conceptual model of field infrastructure, SPE 138078, 2010.

9. Pipesim Suite User Guide, Schlumberger.

10. Brill J.P., Mukherjee H., Multiphase flow in wells, SPE, 1999.

11. Aziz Khalid, Govier George W., Fogarasi Maria, Pressure drop in wells producing

oil and gas, Canadian Petroleum Technology, 1972, V. 11, no. 3,

pp. 38-48.

12. Chierici G.L., Ciucci G.M., Sclocchi G., Two-Phase vertical flow in oil

wells – prediction of pressure drop, Petroleum Technology, 1974, V. 26, no.

8, pp. 927-938.

13. Beggs D.H., Brill J.P., A Study of two-phase flow in inclined pipes, Petroleum

Technology, 1973, V. 25, no. 5, pp. 607-617.

14. Mukherjee H., Brill J.P., Pressure drop correlations for inclined two-phase

flow, Energy Res. Tech., 1985, V. 107, pp. 549.



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