Register      Login
The APPEA Journal The APPEA Journal Society
Journal of Australian Energy Producers
RESEARCH ARTICLE

The Neoproterozoic Gillen Formation, Amadeus Basin, central Australia: an intra-salt petroleum system and viable exploration target?

Phillip S. Plummer
+ Author Affiliations
- Author Affiliations

Visiting Research Fellow, Department of Earth Sciences, University of Adelaide, Adelaide, South Australia, 5005, Australia. Email: phil.plummer@adelaide.edu.au

The APPEA Journal 61(1) 236-252 https://doi.org/10.1071/AJ20040
Submitted: 16 November 2020  Accepted: 21 January 2021   Published: 2 July 2021

Abstract

The Gillen Formation, the basal component of the lower Neoproterozoic Bitter Springs Group, occurs throughout the Amadeus Basin of central Australia and comprises a basal sequence of black shales and stromatolitic dolostones overlain by an evaporitic sequence of a thick halite sandwiched between two anhydrite/dolomite units. These Gillen lithologies include potential source, reservoir and seal units for petroleum, suggesting an analogy could be drawn with the prolific evaporitic Ara Group Petroleum System of South Oman. Although well data penetrating the Gillen Formation are very limited, organic-rich shales have been penetrated in both the north and south of the basin, while both well and seismic data indicate the ubiquitous presence of sealing evaporites across the basin. The Ara Group Petroleum System spans the Neoproterozoic–Cambrian boundary and is blessed with carbonate reservoirs composed of metazoan ‘reefs’ comprising Cloudina and Namacalathus, which provide an open framework porosity approaching 50%. By contrast, the Gillen Formation was deposited during the Tonian Period of the Neoproterozoic, some 300–350 million years older than the Ara Group, and has reservoir facies limited to stromatolitic carbonates with fenestral to vuggy porosities that are typically less than 15%. Nevertheless, seismic data reveal numerous intra-evaporite opportunities within the Gillen Formation that, seismically, are virtually indistinguishable from those being exploited in South Oman, suggesting that a Gillen Intra-Salt Petroleum System is a viable exploration target throughout a majority of the Amadeus Basin.

Keywords: Amadeus Basin, Ara Group Petroleum System, carbonate stringers, evaporites, halotectonics, exploration target, Gillen Formation, intra-salt petroleum system, Neoproterozoic, salt seal, shaley source rocks, South Oman analogy, stromatolitic reservoirs.

Phillip S. Plummer is a Chartered Geologist and Exploration Geoscientist with over three and a half decades of experience in the international upstream oil and gas industry. After graduating with a PhD from the University of Adelaide, he joined Shell International in 1980 for whom he interpreted seismic data in exploration ventures in Holland, Oman, Tanzania and Gabon. The industry downturn of the mid–late 1980s saw him consulting in Adelaide, Sydney, Melbourne and New Zealand before becoming Head of Resource Management for the Seychelles National Oil Company where, throughout the 1990s, he promoted the petroleum potential of the Seychelles offshore to the international oil industry. Returning to Australia, he joined Santos Ltd in 2000, initially reviewing the petroleum potential of the Perth Basin before exploring for stratigraphic gas in the Cooper/Eromanga Basin. Moving into oil exploration, he studied the geochemistry of oils from the Cooper/Eromanga Basin, finding that their gas chromatography trace profile shapes indicate the organic maturity of the parent source rock rather than its depositional environment, a finding that provided a new slant to the exploration effort. His final move with Santos was to evaluate the petroleum potential of the Neoproterozoic succession in the Amadeus Basin of central Australia and develop frontier exploration opportunities. For the past three years, he has held the position of Visiting Research Fellow in the Department of Earth Sciences at the University of Adelaide, where he continues his research on Neoproterozoic stratigraphy, both in the Amadeus Basin and in the Flinders Ranges of South Australia.


References

Adderley  D. (2014 ). Mt Kitty-1 Basic Well Completion Report. Santos Ltd. Northern Territory Geological Survey Report PR2015-0010.

Al Rajaibi, I. M., Hollis, C., and Macquaker, J. H. (2015). Origin and variability of a terminal Proterozoic primary silica precipitate, Athyl Silicilyte, South Oman Salt Basin, Sultanate of Oman. Sedimentology 62, 793–825.
Origin and variability of a terminal Proterozoic primary silica precipitate, Athyl Silicilyte, South Oman Salt Basin, Sultanate of Oman.Crossref | GoogleScholarGoogle Scholar |

Al-Siyabi, H. A. (2005). Exploration history of the Ara intrasalt carbonate stringers in the South Oman Salt Basin. GeoArabia 10, 39–72.

Allen, H.-J., and Haines, P. W. (2019). F52644-F52652: Tonian stromatolite Tungussia erecta in the Pollock Hills, Amadeus Basin, Western Australia. Geological Survey of Western Australia Palaeontological Report 2019/1, 4pp.

Amthor, J. E., Ramseyer, K., Faulkner, T., and Lucas, P. (2005). Stratigraphy and sedimentology of a chert reservoir at the Precambrian-Cambrian boundary: The Al Shoumou Silicilyte. South Oman Salt Basin. 10, 89–122.

Bell, R. M. (1983). Bluebush No. 1, O.P.189 Northern Territory: Final Well Report. Magellan Petroleum Australia Pty. Ltd. Northern Territory Geological Survey Report PR1983-0037.

Benbow, D. D., and Lawson, W. (1969). Well Completion Report, East Mereenie No.4. Exoil (N.T.) Pty. Ltd. Northern Territory Geological Survey Report PR1969-0005.

Bosak, T., Liang, B., Sim, M. S., and Petroff, A. P. (2009). Morphological record of oxygenic photosynthesis in conical stromatolites. Proceedings of the National Academy of Sciences USA 106, 10939–10943.
Morphological record of oxygenic photosynthesis in conical stromatolites.Crossref | GoogleScholarGoogle Scholar |

Camacho, A., Compston, W., McCulloch, M., and McDougall, I. (1997). Timing and exhumation of eclogite facies shear zones, Musgrave Block, central Australia. Journal of Metamorphic Geology 15, 735–751.
Timing and exhumation of eclogite facies shear zones, Musgrave Block, central Australia.Crossref | GoogleScholarGoogle Scholar |

Clarke, D. (1974). Heavitree Quartzite stratigraphy and structure near Alice Springs, N.T. Northern Territory Geological Survey Technical Report GS1974-009.

Close, D. F., Edgoose, C. J., and Scrimgeour, I. R. (2005). The Tjauwata Group: a late Mesoproterozoic rift succession underlying the southwestern Amadeus Basin. In: Central Australian Basins Symposium Abstracts, Alice Springs. Northern Territory Geological Survey, 39–40.

Edgoose, C. J. (2013). Chapter 23: Amadeus Basin. In: ‘Geology and Mineral Resources of the Northern Territory’. (Compilers M. Ahmad and T. J. Munson) Northern Territory Geological Survey Special Publication 5, 23:1–23:70.

Gibson, H. J., Duddy, I. R., Ambrose, G. J., and Marshall, T. R. (2007). Regional perspectives on new and reviewed thermal history data from central Australian basins. In: ‘Central Australian Basins Symposium Proceedings, Alice Springs, August 2005’. (Eds T. J. Munson and G. J. Ambrose) Northern Territory Geological Survey Special Publication 2, 11–35.

Glikson, A. Y., Stewart, A. J., Ballhaus, C. G., Clarke, G. L., Feeken, E. H. J., Leven, J. H., Sheraton, J. W., and Sun, S.-S. (1996). Geology of the western Musgrave Block, central Australia, with particular reference to the mafic-ultramafic Giles Complex. Australian Geological Survey Organisation Bulletin 239, 206pp

Gorter, J. D., Fenton, G. G., Dee, C. N., and Schroder, R. J. (1982). Mt Winter-1 Well Completion Report, Amadeus Basin, OP 178 Northern Territory. Pancontinental Petroleum Ltd. Northern Territory Geological Survey Report PR1982-0065.

Grey, K. (2005). Subdividing the Cryogenian of Australia using biostratigraphy. Central Australian Basins Symposium Abstracts, Alice Springs. Northern Territory Geological Survey, 19.

Grey, K., Allen, H.-F., Hill, A., and Haines, P. W. (2012). Neoproterozoic biostratigraphy of the Amadeus Basin. In: ‘Central Australian Basins Symposium III’. (Eds G. J. Ambrose and J. Scott) Petroleum Exploration Society of Australia Special Publication CD-Rom, 18pp.

Grosjean, E., Love, G. D., Stalvies, C., Fike, D. A., and Summons, R. E. (2009). Origin of petroleum in the Neoproterozoic–Cambrian South Oman Salt Basin. Organic Geochemistry 40, 8–110.
Origin of petroleum in the Neoproterozoic–Cambrian South Oman Salt Basin.Crossref | GoogleScholarGoogle Scholar |

Grotzinger, J., and Al-Rawahi, Z. (2014). Depositional facies and platform architecture of microbialite-dominated carbonate reservoirs, Ediacaran–Cambrian Ara Group, Sultanate of Oman. AAPG Bulletin 98, 1453–1494.
Depositional facies and platform architecture of microbialite-dominated carbonate reservoirs, Ediacaran–Cambrian Ara Group, Sultanate of Oman.Crossref | GoogleScholarGoogle Scholar |

Haines, P. W., and Allen, H.-J. (2020). World’s oldest regional salt seal in the Amadeus and Officer Basins: Implications for subsalt helium and hydrocarbons. Extended Abstracts: Advancing the Prospectivity of Western Australia. Geological Survey of Western Australia Record 2020/2, 10–13.

Jackson, K. S., McKirdy, D. M., and Deckelman, J. A. (1984). Hydrocarbon generation in the Amadeus Basin, central Australia. The APEA Journal 24, 42–65.

Korsch, P. D., and Lindsay, J. F. (1989). Relationships between deformation and basin evolution in the intracratonic Amadeus Basin, central Australia. Tectonophysics 158, 5–22.
Relationships between deformation and basin evolution in the intracratonic Amadeus Basin, central Australia.Crossref | GoogleScholarGoogle Scholar |

Kowalewski, I., Carpentier, B., Huc, A.-Y., Adam, P., Hanin, S., Albrecht, P., Wojciak, P., and Frewin, N. L. (2009). , and Al Ruwehy, N. An unconventional Neoproterozoic – Early Cambrian source rock interval in southern Oman: Implications for oil and gas generation. 14, 53–84.

Kukla, P., Reuning, L., Becker, S., Urai, J. L., and Schoenherr, J. (2011a). Distribution and mechanisms of overpressure generation and deflation in the late Neoproterozoic to early Cambrian South Oman salt basin. Geofluids 11, 349–361.
Distribution and mechanisms of overpressure generation and deflation in the late Neoproterozoic to early Cambrian South Oman salt basin.Crossref | GoogleScholarGoogle Scholar |

Kukla, P., Urai, J., Warren, J., Reuning, L., Becker, S., Schoenherr, J., Mohr, M., van Gent, H., Abe, S., Li, S., Desbois, G., Schleder, Z., and de Keijzer, M. (2011b). An integrated, multi-scale approach to salt dynamics and internal dynamics of salt structures. American Association of Petroleum Geologists Search and Discovery Article 40703. Available at http://www.searchanddiscovery.com/pdfz/documents/2011/40703kukla/ndx_kukla.pdf.html

Lindsay, J. F. (1987). Upper Proterozoic evaporites in the Amadeus Basin, central Australia, and their role in basin tectonics. Geological Society of America Bulletin 99, 852–865.
Upper Proterozoic evaporites in the Amadeus Basin, central Australia, and their role in basin tectonics.Crossref | GoogleScholarGoogle Scholar |

Lindsay, J. F. and Korsch, R. J. (1991). The evolution of the Amadeus Basin, central Australia. In: ‘Geological and geophysical studies in the Amadeus Basin, central Australia’. (Eds R. J. Korsch and J. M. Kennard) Bureau of Mineral Resources Geology & Geophysics Bulletin 236, 7–32.

Marshall, T. (2003). Petroleum systems and source rocks in the Amadeus Basin, Northern Territory. In: ‘Queensland 2003 Exploration and Development’. (Ed. M. Cowie) Petroleum Exploration Society of Australia (Qld/NT) 2003 Symposium, 37–42.

Marshall, T. R. (2004). Review of source rocks in the Amadeus Basin. Northern Territory Geological Survey Record 2004-008, 42pp.

Marshall, T. R., and Wiltshire, R. G. (2007a). Evaporitic flow folds: Characterisation and mechanics from outcrop in the Amadeus Basin, central Australia. In: ‘Central Australian Basins Symposium Proceedings, Alice Springs, August 2005’. (Eds T. J. Munson and G. J. Ambrose) Northern Territory Geological Survey Special Publication 2, 147–171.

Marshall, T. R. and Wiltshire, R. G. (2007b). Outcrop evidence of a base-of-sequence detachment in the Amadeus Basin, central Australia. In: ‘Central Australian Basins Symposium Proceedings, Alice Springs, August 2005’. (Eds T. J. Munson and G. J. Ambrose) Northern Territory Geological Survey Special Publication 2, 172–182.

Marshall, T. R., Dyson, I. A., and Liu, K. (2007). Petroleum systems in the Amadeus Basin, central Australia: Were they all oil prone? In: ‘Central Australian Basins Symposium Proceedings, Alice Springs, August 2005’. (Eds T. J. Munson and G. J. Ambrose) Northern Territory Geological Survey Special Publication 2, 136–146.

Mattes, B. W., and Conway Morris, S. (1990). Carbonate/evaporite deposition in the Late Precambrian – Early Cambrian Ara Formation of Southern Oman. Geological Society of London Special Publication 49, 617–636.
Carbonate/evaporite deposition in the Late Precambrian – Early Cambrian Ara Formation of Southern Oman.Crossref | GoogleScholarGoogle Scholar |

McInnes, B., Darrah, T., Hilton, R., Boreham, C., Edwards, D., and Gusterhuber, J. (2017). Investigations into the highest reported He concentration in a natural gas sample: Mt Kitty, Amadeus Basin, Northern Territory. Abstracts of the Goldschmidt Conference, Paris, France. Available at https://goldschmidtabstracts.info/2017/2661.pdf

McTaggart, N. R., Pemberton, R. L., and Planalp, R. N. (1965). Well Completion Report, Mt Charlotte-1. Transoil (N.T.) Pty. Ltd. Northern Territory Geological Survey Report PR1965-0006.

Menpes, S. A. (1991). Murphy-1, EP 26 Northern Territory, Well Completion Report. Pacific Oil & Gas Pty. Ltd. Northern Territory Geological Survey Report PR1991-0021.

Menpes, S., Cremasco, D., and Hansberry, R. (2020). Geology and evolution of the Dukas structure, Amadeus Basin, Northern Territory. In: ‘Annual Geoscience Exploration Seminar Proceedings, Alice Springs’. (Ed. G. C. MacDonald) Northern Territory Geological Survey, 73–78.

Mercedes-Martin, R., Salas, R., and Arenas, C. (2013). Microbial-dominated carbonate platforms during Ladinian rifting: Analogical models for microbialite reservoirs (Catalan Basin, NE Spain). American Association of Petroleum Geologists Search and Discovery Article 50843, 27pp. Available at http://www.searchanddiscovery.com/documents/2013/50843mercedes/ndx_mercedes.pdf

Normington, V. J. (2017). Revised stratigraphy of drillholes CPDD001, CPDD002 and CPDD003, Pipeline Prospect, northeast Amadeus Basin. Northern Territory Geological Survey Record 2017-015, 15pp.

Normington, V. J., Donnellan, N., and Edgoose, C. (2015). Neoproterozoic evolution of the Amadeus Basin: Evidence from sediment provenance and mafic magmatism. In: ‘Annual Geoscience Exploration Seminar Proceedings, Alice Springs’. (Ed. G. C. MacDonald) Northern Territory Geological Survey Record 2015-002, 73–78.

Normington, V. J., Edgoose, C. J., Donnellan, N., Weisheit, A., and Verdel, C. (2019). New insights into the Neoproterozoic to early Palaeozoic stratigraphy, structure and palaeogeography of the Amadeus Basin, Northern Territory. In: ‘Annual Geoscience Exploration Seminar Proceedings, Alice Springs’. (Ed. G. C. MacDonald) Northern Territory Geological Survey, 129–134.

Pemberton, R. L. and McTaggart, N. R. (1965). Well Completion Report, Erldunda No.1. Exoil (N.T.) Pty. Ltd. Northern Territory Geological Survey Report PR1966-0002.

Plummer, P. (2015). Heavitree Quartzite, Amadeus Basin: Its place within the Centralian Superbasin. In: ‘Annual Geoscience Exploration Seminar Proceedings, Alice Springs’. (Ed. G. C. MacDonald) Northern Territory Geological Survey Record 2015-002, 83–91.

Pollastro, R. M. (1989). Ghaba Salt Basin Province and Fahud Salt Basin Province, Oman – Geological overview and total petroleum systems. US Geological Survey Bulletin 2167, 41pp.

Reuning, L., Schoenherr, J., Heimann, A., Urai, J. L., Littke, R., Kulka, P., and Rawahi, Z. (2009). Constraints on the diagenesis, stratigraphy and internal dynamics of the surface-piercing salt domes in the Ghaba Salt Basin (Oman): A comparison to the Ara Formation in the South Oman Salt Basin. GeoArabia 14, 83–120.

Scrimgeour, I. R. (2013). Chapter 13: Warumpi Province. In: ‘Geology and Mineral Resources of the Northern Territory’. (Compilers M. Ahmad and T. J. Munson) Northern Territory Geological Survey Special Publication 5, 13:1–13:21.

Seilchaer, A., Grazhdankin, D., and Legouta, A. (2003). Ediacaran biota: The dawn of animal life in the shadow of giant protists. Paleontological Research 7, 43–54.
Ediacaran biota: The dawn of animal life in the shadow of giant protists.Crossref | GoogleScholarGoogle Scholar |

Shaw, R. D., Senior, B. R., Offe, L. A., Stirzacker, J. F., Walton, D. G., Apps, H. E., and Freeman, M. J. (1985). Explanatory Notes Illogwa Creek SF 53-15. Bureau of Mineral Resources Geology & Geophysics, Australia 1:250 000 Geological Series (2nd edn.).

Shergold, J. H., Elphinstone, R., Laurie, J. R., Nicoll, R. S., Walter, M. R., Young, G. C., and Zang, W. (1991). Late Proterozoic and early Palaeozoic palaeontology and biostratigraphy of the Amadeus Basin. In: ‘Geological and geophysical studies in the Amadeus Basin, central Australia’. (Eds R. J. Korsch and J. M. Kennard) Bureau of Mineral Resources Geology & Geophysics Bulletin 236, 97–112.

Simeonova, A. P., and Iasky, R. P. (2005). Seismic mapping, salt deformation, and hydrocarbon potential of the central western Officer Basin, Western Australia. Geological Survey of Western Australia Report 98, 51pp.

Southgate, P. N. (1986). A sedimentological model for the Loves Creek Member of the Bitter Springs Formation, northern Amadeus Basin. In: ‘Geological and geophysical studies in the Amadeus Basin, central Australia’. (Eds R. J. Korsch and J. M. Kennard) Bureau of Mineral Resources Geology & Geophysics Bulletin 236, 113–126.

Spaggiari, C. V., Haines, P. W., Tyler, I. M., Allen, H. J., de Souza Kovacs, N., and Maidment, D. (2016). Webb, WA Sheet SF 52-10 (2nd edn). Geological Survey of Western Australia, 1:250 000 Geological Series.

Stewart, A. J. (1969). Completion report BMR Alice Springs No.3 (Ringwood), Northern Territory. Bureau of Mineral Resources Record 1969/7.

Stewart, A. J. (1979). A barred-basin marine evaporite in the Upper Proterozoic of the Amadeus Basin, central Australia. Sedimentology 26, 33–62.
A barred-basin marine evaporite in the Upper Proterozoic of the Amadeus Basin, central Australia.Crossref | GoogleScholarGoogle Scholar |

Tull, S. (2013). Petroleum geology of the Ara Group. South Oman Salt Basin. Al Hajar: Geology Society of Oman Quarterly Newsletter 19, 10–17.

Wakelin-King, G. (1994). Proterozoic play challenges Amadeus Basin explorers. Oil & Gas Journal 92, 52–55.

Wakelin-King, G., and Austin, L. (1992). Magee-1, EP 38, Northern Territory: Well Completion Report. Pacific Oil & Gas Pty. Ltd. Northern Territory Geological Survey Report PR1992-0121.

Walter, M. R. (1972). Stromatolites and the biostratigraphy of the Australian Precambrian and Cambrian. Palaeontological Association of London, Special Papers in Palaeontology 11, 256pp.

Wyborn, L., Hazell, M., Page, R., Idnurm, M., and Sun, S. (1998). A newly discovered major Proterozoic granite alteration system in the Mount Webb region, central Australia, and implications for Cu-Au mineralisation. Australian Geological Survey Organisation Research Newsletter 28, 1–6.

Youles, I. P. (1966). Diamond drill report: Undoolya Gap copper prospect. Northern Territory Geological Survey Report GS1966-001.

Zhao, J. X., and McCulloch, M. T. (1993). Sm-Nd mineral isochron ages of Late Proterozoic dyke swarms in Australia: evidence for two distinctive events of mafic magmatism and crustal extension. Chemical Geology 109, 341–354.
Sm-Nd mineral isochron ages of Late Proterozoic dyke swarms in Australia: evidence for two distinctive events of mafic magmatism and crustal extension.Crossref | GoogleScholarGoogle Scholar |

Zhao, J. X., McCulloch, M. T., and Bennett, V. C. (1992). Sm-Nd and U-Pb zircon isotopic constraints on the provenance of sediments from the Amadeus Basin, central Australia: Evidence for REE fractionation. Geochimica Cosmchimica Acta 56, 921–940.
Sm-Nd and U-Pb zircon isotopic constraints on the provenance of sediments from the Amadeus Basin, central Australia: Evidence for REE fractionation.Crossref | GoogleScholarGoogle Scholar |

Zhao, J. X., McCulloch, M. T., and Korsch, R. J. (1994). Characterisation of a plume-related ~800 Ma magmatic event and its implications for basin formation in central-southern Australia. Earth & Planetary Science Letters 121, 349–367.
Characterisation of a plume-related ~800 Ma magmatic event and its implications for basin formation in central-southern Australia.Crossref | GoogleScholarGoogle Scholar |