Evaluation of the Factors Controlling Concentration of Non-Condensable Gases and Their Possible Impact on the Performance of Geothermal Systems: Case Study of Olkaria Wells in the Kenyan Rift Valley — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Evaluation of the Factors Controlling Concentration of Non-Condensable Gases and Their Possible Impact on the Performance of Geothermal Systems: Case Study of Olkaria Wells in the Kenyan Rift Valley
Kenya Electricity Generating Company—KenGen, Naivasha, Kenya
,
Department of Geology, University of Nairobi, Nairobi, Kenya
,
Department of Geology, University of Nairobi, Nairobi, Kenya
,
Department of Geology, University of Nairobi, Nairobi, Kenya
,
School of Pure and Applied Sciences, Kenyatta University, Nairobi, Kenya
1 Kenya Electricity Generating Company—KenGen, Naivasha, Kenya
2 Department of Geology, University of Nairobi, Nairobi, Kenya
3 Department of Geology, University of Nairobi, Nairobi, Kenya
4 Department of Geology, University of Nairobi, Nairobi, Kenya
5 School of Pure and Applied Sciences, Kenyatta University, Nairobi, Kenya
The Olkaria geothermal field is located in the Kenyan Rift valley, about 120 km from Nairobi. Development of geothermal resources in the Olkaria area, a high temperature field, started in the early 1950s. In the subsequent years numerous expansions have been carried out with additional power plants being installed in Olkaria. These include a binary plant at Olkaria South West (Olkaria III) in 2000, a condensing plant at Olkaria North East (Olkaria II) in 2003, another binary plant at Olkaria North West (Oserian) in 2004 and finally condensing plants in the year 2014 within East production field (EPF) and Olkaria Domes (OD) areas. The total generation from this field is about 730 Mw. The study considered samples from 4 producing wells from 3 fields of the Olkaria geothermal area (OW-44 from the Olkaria East, OW-724A from the Olkaria North East, and OW-914 and OW-915 from the Olkaria Domes field). The chemical data were first analyzed using SOLVEQ. This helped in the determination of the equilibrium state of the system, the reservoir temperatures and the total moles to be run through CHILLER. The run CHILLER considered the processes that have been proven to be occurring in the Olkaria field i.e ., boiling and condensing processes, fluid-fluid mixing rocks and titration resulting from water-rock interaction. The effects on gas evolution were evaluated based on the resulting recalculated gas pressures. The results indicate that the gas species are not in equilibrium with the mineral assemblages. The CHILLER evaluation shows boiling as the major process leading to the evolution of gases. OW-44 had the least gas concentrations, arising from the considered reservoir processes due to degassing, and near surface boiling, besides the removal of NH 3 , H 2 and H 2 S are through the reaction with steam condensate. The gas breakout is most likely in OW-914 and least in OW-44. The study proposes different reservoir management strategies for the different parts of the Olkaria geothermal field. That is by increasing hot reinjection in the eastern sector around well OW-44. The reservoir around OW-914 is to be managed by operating the wells at a minimum flow rate (or even to close them) or the use of chemical inhibitors to prevent calcite scaling.
KeywordsGeothermal EnergyGases and Their Impact on Well PerfomanceOlkaria WellsKenyan Rift Valley
West Japan Engineering Consultants Inc. (2009) The Olkaria Optimization Study (Phase II)—Final Reservoir Analysis Report. West Japan Engineering Consultants Inc., Fukuoka, 301 p.
Arnórsson, S., Angcoy, E.C., Bjarnason, J.O., Giroud, N., Gunnarsson, I., Kaasalainen, H., Karingithi, C. and Stefánsson, A. (2010) Gas Chemistry of Volcanic Geothermal Systems. Proceedings of the World Geothermal Congress 2010, Bali, 25-29 April 2010, 12 p.
Angcoy, E.C. (2010) Geochemical Modeling of the High-Temperature Mahanagdong Geothermal Field, Leyte, Philippines. MSc Thesis, UNU-GTP, Report 1, University of Iceland, Reykjavík, 71 p.
Giroud, N. and Arnórsson, S. (2005) Estimation of Long-Term CO2 and H2S Release during Operation of Geothermal Power Plants. Proceedings of the World Geothermal Congress 2005, Antalya, 24-29 April 2005, 6 p.
Karingithi, C.W. (2002) Hydrothermal Mineral Buffers Controlling Reactive Gases Concentration in the Greater Olkaria Geothermal System, Kenya. MSc Thesis, UNU-GTP, Report 2, University of Iceland, Reykjavík, 51 p.
Akin, T., Guney, A. and Kargi, H. (2015) Modeling of Calcite Scaling and Estimation of Gas Breakout Depth in a Geothermal Well by Using PHREEQC. Proceedings of the 40th Workshop on Geothermal Reservoir Engineering, Stanford, 26-28 January 2015, 8 p.
Haizlip, J.R., Guney, A., Tut Haklidir, F.S. and Garg, S.K. (2012) The Impact of High Non Condensable Gas Concentrations on Well Performance—Kizildere Geothermal Reservoir, Turkey. Proceedings of the 37th Workshop on Geothermal Reservoir Engineering, Stanford, 30 January-1 February 2012, 6 p.
Gudmundsson, B.T. and Arnórsson, S. (2002) Geochemical Monitoring of the Krafla and Námafjall Geothermal Areas, N-Iceland. Geothermics, 31, 195-243. http://dx.doi.org/10.1016/S0375-6505(01)00022-0
ármannsson, H. (2003) CO2 Emission from Geothermal Plants. Proceedings of the International Conference on Multiple Integrated Uses of Geothermal Resources, Reykjavik, 14-17 September 2003, 56-62.
Reed, M.H., Spycher, N.F. and Palandri, J. (2012) SOLVEQ-XPT: A Computer Program for Computing Aqueous-Mineral-Gas Equilibria. University of Oregon, Department of Geological Sciences, Eugene, 43 p.
Reed, M.H., Spycher, N.F. and Palandri, J. (2012) Users Guide for CHIM-XPT: A Program for Computing Reaction Processes in Aqueous-Mineral-Gas Systems and MINTAB Guide (Ver 2.43). University of Oregon, Department of Geological Sciences, Eugene, 73 p.
Bienkowski, R., Torres-Alvarado, I.S. and Hinderer, M. (2003) Genese hochsaurer Fluide im Geothermalfeld von Los Humeros, Zentral-Mexiko. MSc Thesis, Institut für Angewandte Geowissenschaften, Technische Universitat Darmstadt, Diplomarbeit, 89 p.
Lagat, J., Arnórsson, S. and Franzson, H. (2005) Geology, Hydrothermal Alteration and Fluid Inclusion Studies of Olkaria Domes Geothermal Field, Kenya. Proceedings of the World Geothermal Congress 2005, Antalya, 24-29 April 2005, 14 p.
KenGen (1999) Conceptualized Model of the Olkaria Geothermal Field. Internal Report No. 10, Kenya Electricity Generating Company Ltd. (Ken Gen), Nairobi, 46 p.
Naylor, W.I. (1972) The Geology of the Eburru and Olkaria Geothermal Projects. United Nations Development Programme, Report No. 01, 52 p.
Virkir (1980) Geothermal Development at Olkaria. Virkir Consulting Group, Report No. 09 Prepared for Kenya Power Company, 40 p.
Clarke, M.C.G., Woodhall, D.G., Allen, D. and Darling, G. (1990) Geological, Volcanological and Hydogeological Controls of the Occurrence of Geothermal Activity in the Area Surrounding Lake Naivasha, Kenya. Report, Ministry of Energy, Nairobi, 138 p.
Mungania, J. (1992) Preliminary Field Report on Geology of Olkaria Volcanic Complex with Emphasis on Domes Area Field Investigations. Internal Report No. 11, Kenya Power Company, Nairobi, 37 p.
Omenda, P.A. (2000) Anatectic Origin for Comendite in Olkaria Geothermal Field, Kenya Rift; Geochemical Evidence for Syenitic Protholith. African Journal of Science and Technology, 1, 39-47.
Shackleton, R.M. (1986) Precambrian Collision Tectonics in Africa. In: Coward, M.P. and Ries, A.C., Eds., Collision Tectonics, Special Publications Vol. 19, Geological Society, London, 329-349. http://dx.doi.org/10.1144/gsl.sp.1986.019.01.19
Smith, M. and Mosley, P. (1993) Crustal Heterogeneity and Basement Influence on the Development of the Kenya Rift, East Africa. Tectonics, 12, 591-606. http://dx.doi.org/10.1029/92TC01710
Omenda, P.A. (1994) Geological Control on the Reservoir Characteristics of Olkaria West Geothermal Field, Kenya. Proceedings of the 19th Workshop on Geothermal Reservoir Engineering, Stanford, 18-20 January 1994, 125-129.
Thompson, A.O. and Dodson, R.G. (1963) Geology of the Naivasha Area. Geological Survey Kenya, Report No. 55, 88 p.
Ofwona, C.O. (2002) A Reservoir Study of Olkaria East Geothermal System, Kenya. MSc Thesis, UNU-GTP, University of Iceland, Reykjavík, Report No. 1, 74 p.
Ambusso, W.J. and Ouma, P.A. (1991) Thermodynamic and Permeability Structure of Olkaria Northeast Field: Olkaria Fault. Geothermal Resource Council Transactions, 15, 237-242.
Ouma, P.A. (1999) Reservoir Engineering Report for Olkaria Domes Field. Internal Report No. 14, Kenya Electricity Generating Company Ltd. (Ken Gen), Nairobi, 54 p.
Karingithi, C.W. (2000) Geochemical Characteristics of the Greater Olkaria Geothermal Field, Kenya. Report 9 in: Geothermal Training in Iceland 2000. UNU-GTP, Reykjavík, 165-188.
Wambugu, J.M. (1995) Geochemical Update of Olkaria West Geothermal Field. Internal Report No. 5, Kenya Power Company Ltd., Nairobi, 40 p.
KenGen (2014) Revised Geochemical Model of the Olkaria Geothermal Field. Internal Report No. 1, Kenya Electricity Generating Company Ltd. (Ken Gen), Nairobi, 23 p.
Wamalwa, R., Nyamai, C.M., Ambusso, W. and Mulwa, J. (2014) Structural Controls on the Chemistry and Output of the Wells in the Olkaria Geothermal Field, Rift Valley, Kenya. Proceedings of the 5th African Rift Geothermal (ARGeo-C5), Arusha, 27 October-2 November 2014, 11 p.
Arnórsson, S., Bjarnason, J.?., Giroud, N., Gunnarsson, I. and Stefánsson, A. (2006) Sampling and Analysis of Geothermal Fluids. Geofluids, 6, 203-216. http://dx.doi.org/10.1111/j.1468-8123.2006.00147.x
Stefánsson, A., Arnórsson, S. and Bjarnason, J.?. (2007) Fluid-Fluid Interaction in Geothermal Systems. Reviews in Mineralogy & Geochemistry, 65, 259-312. http://dx.doi.org/10.2138/rmg.2007.65.9
Holland, T.J.B. and Powell, R. (1990) An Enlarged and Updated Internally Consistent Thermodynamic Dataset with Uncertainties and Correlations: The System K2O-Na2O-CaO-MgO-MnO-FeO-Fe2O3-Al2O3-TiO2-SiO2-C-H2-O2. Journal of Metamorphic Geology, 8, 89-124. http://dx.doi.org/10.1111/j.1525-1314.1990.tb00458.x
Robie, R.A. and Hemingway, B.S. (1995) Thermodynamic Properties of Minerals and Related Substances at 298.15 K and 1 Bar (105 Pascals) Pressures and at Higher Temperatures. US Geological Survey Bulletin, 2131, 461 p.
Fernandez-Prini, R., Alvarez, J.L. and Harvey, A.H. (2003) Henry’s Constants and Vapour-Liquid Distribution Constants for Gaseous Solutes in H2O and D2O at High Temperatures. Journal of Physical and Chemical Reference Data, 32, 903-916. http://dx.doi.org/10.1063/1.1564818
Simsek, S., Parlaktuna, M. and Ak?n, S. (2009) Data Gathering and Evaluation of Kizildere Geothermal Field. Report for Zorlu Energy, 13 p.
Moya, P. and Yock, A. (2005) First Eleven Years of Exploitation at the Miravalles Geothermal Field. Proceedings of the 30th Workshop on Geothermal Reservoir Engineering, Stanford, 31 January-2 February 2005, 8 p.
Moya, P. and Sánchez, E. (2005) Non-Condensable Gases at the Miravalles Geothermal Field. Proceedings of the 30th Workshop on Geothermal Reservoir Engineering, Stanford, 31 January-2 February 2005, 11 p.