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The Exshaw Formation: a Devonian/Mississippian Hydrocarbon Source in the Western Canada Basin

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Petroleum Source Rocks

Part of the book series: Casebooks in Earth Sciences ((CASEBOOKS))

Abstract

The Devonian-Mississippian period marks a time of extensive development of black shale deposition within epeiric seaways. These source systems have been attributed with generating a large portion of the proven reserves around the world. One of these source systems, the Exshaw Formation of the Western Canada basin, is examined in this chapter.

The Exshaw Formation consists of two members, a lower shale-dominated member and an upper siltstone to silty limestone member. The lower member contains the organic-rich, oil-prone, black shale facies of the Exshaw Formation. The Exshaw black shales were deposited beneath an upwelling zone that extended along the western margin of the Devonian/Mississippian craton.

During deposition of the Exshaw Formation shales bottom waters apparently varied between dysaerobic to anoxic and the seaway may at times have been stratified. Variations in the preservation potential appears to have been the primary influence on the degree of organic enrichment and the oil-proneness of the preserved organic matter. Maximum burial depths in the Western Canada basin were reached in the Eocene and subsequent uplift and erosion indicates that the Exshaw black shales are at present not generating and expelling hydrocarbons.

The Exshaw Formation has been suggested as one of the primary sources for the Early Cretaceous heavy oil deposits in the Mannville Group. The Exshaw may also have contributed locally to several Devonian and Mississippian reservoired oils. The volumetric significance of the generated and trapped hydrocarbons from the Exshaw Formation is uncertain as a result of mixing with hydrocarbons from other source systems in each accumulation. It is clear, however, that the Exshaw Formation black shales are one of the primary sources in the Western Canada basin.

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References

  • Allan J, Creaney S (1991) Oil families of the Western Canada basin. Bull Can Petrol Geol 39: 107–122

    Google Scholar 

  • Arthur MA, Schlanger SO, Jenkyns HC (1987) The Cenomanian-Turonian oceanic anoxic event, II: Palaeoceanographic controls on organic-matter production and preservation. In: Brooks J, Fleet AJ (eds) Marine petroleum source rocks, Geol Soc, London, Spec Publ 26: 401–420

    Google Scholar 

  • Bally AW, Gordy PL, Stewart GA, (1966) Structure, seismic data, and orogenic evolution of the southern Canadian Rocky Mountains. Bull Can Petrol Geol 14: 337–381

    Google Scholar 

  • Beaumont CR, Boutilier AS, MacKenzie AS, Rullkötter J (1985) Isomerization and aromatization of hydrocarbons and the paleothermometry and burial history of the Alberta basin. Am Assoc Petrol Geol Bull 69: 546–566

    Google Scholar 

  • Berner RA, Raiswell R (1983) Burial of organic carbon and pyrite sulfur in sediments over Phanerozoic time: a new theory. Geochim Cosmochim Acta 47: 855–862

    Article  Google Scholar 

  • Bissada, KK, (1982) Geochemical constraints on petroleum generation and migration — a review. Proc 2nd ASCOPE Conf, Manila, Oct, 1981, pp 69–87

    Google Scholar 

  • Brooks PW, Snowdon LR, Osadetz KG (1987) Carlson CG, Christopher JE (eds) Families of oils in southeastern Saskatchewan. 5th North Dakota Geol Soc and Saskatchewan Geol Soc Williston Basin Int Symp Proc, pp 253–264

    Google Scholar 

  • Brooks PW, Fowler MG, MacQueen RW (1989) Biomarker geochemistry of Cretaceous oil sands, heavy oils and Paleozoic carbonate trend bitumens, Western Canada basin. In: Meyer RF, Wiggins EJ (eds) 4th UNITAR/UNDP Int Conf on heavy crudes and tar sands 2: 593–606

    Google Scholar 

  • Cook FA, Green AG, Simony PS, Price RA, Parrish RR, Milkereit B, Gordy PL, Brown RL, Coflin KC, Patenaude C (1988) Lithoprobe seismic reflection structure of the southeastern Canadian Cordillera: initial results. Tectonics 7: 157–180

    Article  Google Scholar 

  • Creaney S, Allan J (1990) Hydrocarbon generation and migration in the Western Canada sedimentary basin. In: Brooks J (ed) Classic petroleum provinces. Geol Soc, London, Spec Publ 50: 189–202

    Google Scholar 

  • Demaison G, Huizinga BJ (1991) Genetic classification of petroleum systems. Am Assoc Petrol Geol Bull 75: 1626–1643

    Google Scholar 

  • Didyk BM, Simoneit BRT, Brasseil SC, Eglinton G (1978) Organic geochemical indicators of paleoenvironmental conditions of sedimentation. Nature 272: 216–222

    Article  Google Scholar 

  • Espitalie J, Laporte JL, Madec M, Marquis F, Leplat P, Poulet J, Boutefeu A (1977) Méthode rapide de caractérisation des roches mères de leur potentiel pétrolier et de leur degré d’évolution. Rev Inst Français du Pétrole 32: 23–42

    Google Scholar 

  • Grantham PJ, Wakefield LL (1988) Variations in sterane carbon number distributions of marine source rock derived crude oils through geological time. Org Geochem 12: 61–73

    Article  Google Scholar 

  • Harker P, McLaren DJ (1958) The Devonian-Mississippian boundary in the Alberta Rocky Mountains. In: Goodman AJ (ed) Jurassic and Carboniferous of western Canada. Am Assoc Petrol Geol John Andrew Allan Mem Vol, pp 244–259

    Google Scholar 

  • Henrichs SM, Reeburgh WS (1987) Anaerobic mineralization of marine sediment organic matter: rates and the role of anaerobic processes in the oceanic carbon economy. Geomicrobiol J 5: 191–237

    Article  Google Scholar 

  • Herbert TD, Fischer AG (1986) Milankovitch climatic origin of mid-Cretaceous black shale rhythms in central Italy. Nature 321: 739–743

    Article  Google Scholar 

  • Jessop AM (1992) Thermal input from the basement of the Western Canada sedimentary basin. Bull Can Petrol Geol 40: 198–206

    Google Scholar 

  • Johnson JG, Sandberg CA (1988) Devonian eustatic events in the western United States and their biostratigraphic responses. In: McMillan NJ, Embry AF, Glass DJ (eds) Devonian of the world. Can Soc Petrol, Calgary, Geol Mem 14: 9–22

    Google Scholar 

  • Johnson JG, Klapper G, Sandberg CA (1985) Devonian eustatic fluctuations in Euramerica. Geol Soc Am Bull 96: 567–587

    Article  Google Scholar 

  • Jones FW, Majorowicz JA, Linville A, Osadetz KG (1986) The relationship of hydrocarbon occurrences to geothermal gradients and time-temperature indices in Mesozoic formations of southern Alberta. Bull Can Petrol Geol 34: 226–239

    Google Scholar 

  • Klemme HD, Ulmishek GF (1991) Effective petroleum source rocks of the world: stratigraphic distribution and controlling depositional factors. Am Assoc Petrol Geol Bull 75: 1809–1851

    Google Scholar 

  • Lee C (1992) Controls on organic carbon preservation: the use of stratified water bodies to compare intrinsic rates of decomposition in oxic and anoxic systems. Geochim Cosmochim Acta 56: 3323–3335

    Article  Google Scholar 

  • Leenheer MJ (1984) Mississippian Bakken and equivalent formations as source rocks in the Western Canada basin. Org Geochem 6: 521–533

    Article  Google Scholar 

  • Leventhal JS (1987) C and S relationships in Devonian shales from the Appalachian basin as an indicator of environment of deposition. Am J Sci 287: 33–49

    Article  Google Scholar 

  • Macqueen RW, Sandberg CA (1970) Stratigraphy, age, and interregional correlation of the Exshaw Formation, Alberta Rocky Mountains. Bull Can Petrol Geol 18: 32–66

    Google Scholar 

  • Majorowicz JA, Rahman M, Jones FW, McMillan NJ (1985) The paleogeothermal and present thermal regimes of the Alberta basin and their significance for petroleum occurrences. Bull Can Petrol Geol 33: 12–21

    Google Scholar 

  • Majorowicz JA, Jones FW, Ertman ME, Osadetz KG, Stasiuk LD (1990) Relationship between thermal maturation gradients, geothermal gradients and estimates of thickness of the eroded foreland section, southern Alberta Plains, Canada. Mar Petrol Geol 7: 138–152

    Article  Google Scholar 

  • McConnell RG (1887) Report on the geological structure of a portion of the Rocky Mountains. Geol Surv Can Annu Rep 2: 1–41

    Google Scholar 

  • Macdonald DE (1985) Sedimentary phosphate rock in Alberta and southeastern British Columbia: resource potential, the industry, technology and research needs. CIM Bull 81: 46–52

    Google Scholar 

  • Osadetz KG, Brooks PW, Snowdon LR (1992) Oil families and their sources in Canadian Williston basin, (southeastern Saskatchewan and southwestern Manitoba). Bull Can Petrol Geol 40: 254–273

    Google Scholar 

  • Parrish JT (1982) Upwelling and petroleum source beds, with reference to the Paleozoic. Am Assoc Petrol Geol Bull 66: 750–774

    Google Scholar 

  • Podruski JA, Barclay JE, Hamblin AP, Lee PJ, Osadetz KG, Procter RM, Taylor GC (1988) Conventional oil resources of western Canada, Part 1: Resource endowment. Geol Surv Can Pap 87–26

    Google Scholar 

  • Pratt LM (1984) Influence of paleoenvironmental factors on preservation of organic matter in Middle Cretaceous Greenhorn Formation, Pueblo, Colorado. Am Assoc Geol Bull 68: 1146–1159

    Google Scholar 

  • Richards BC, Higgins AC (1988) Devonian-Carboniferous boundary beds of the Palliser and Exshaw formations at Jura

    Google Scholar 

  • Creek, Rocky Mountains, southwestern Alberta. In: McMillan NJ, Embry AF, Glass DJ (eds) Devonian of the world. Can Soc Petrol, Calgary, Geol Mem 14: 399–412

    Google Scholar 

  • Robison VD (1992) Oil/Source correlations of Devonian and Mississippian reservoired oils in the Peace River Arch area of the Western Canada Basin. Am Assoc Petrol Geol Annu Conv Prog pp 110–111

    Google Scholar 

  • Sandberg CA (1967) Exshaw Formation of Devonian and Mississippian age in northwestern Montana. In: Sandberg CA (ed) Changes in stratigraphic nomenclature by the U.S. Geological Survey, 1966. US Geol Surv Bull 1253: A39–A41

    Google Scholar 

  • Sandberg CA, Poole FG, Johnson JG (1988) Upper Devonian of western United States. In: McMillan NJ, Embry AF, Glass DJ (eds) Devonian of the world, Can Soc Petrol Geol, Calgary, Mem 14: 183–220

    Google Scholar 

  • Savoy LE (1990) Sedimentary record of Devonian-Mississippian carbonate and black shale systems, southernmost Canadian Rockies and adjacent Montana. PhD Diss, Syracuse Univ, 226 pp

    Google Scholar 

  • Scotese CR (1984) Paleozoic paleomagnetism and the assembly of Pangea. In: Van der Voo R, Scotese CR, Bonhommet N (eds) Plate reconstruction from Paleozoic paleomagnetism. Am Geophys Union, Washington, DC, Geodyn Ser 12: 1–10

    Chapter  Google Scholar 

  • Scotese CR (1986) Basal Devonian, middle Emsian, and early Famennian maps. In: Roy S (ed) The Devonian: a portfolio of maps, 1978–1986. The Devonian Inst, Anchorage, pp 3–15

    Google Scholar 

  • Scotese CR, Van der Voo R, Barrett SF (1985) Silurian and Devonian base maps. Philos Trans R Soc Lond, Ser B, pp 57–77

    Google Scholar 

  • Smith AG, Hurley AM, Briden JC (1981) Phanerozoic palaeocontinental world maps. Univ Press, Cambridge 102 pp

    Google Scholar 

  • Tarling DH (1980) Upper Paleozoic continental distributions based on palaeomagnetic studies. In: Panchen AL (ed) The terrestrial environment and the origin of land vertebrates. Academic Press, London, pp 11–37

    Google Scholar 

  • ten Haven HL, de Leeuw JW, Rullkötter J, Sinninghe-Damsté JS (1987) Restricted utility of pristane/phytane ratio as a paleoenvironmental indicator. Nature 330: 641–643

    Article  Google Scholar 

  • Tissot BP, Weite DH (1984) Petroleum formation and occurrence. Springer, Berlin Heidelberg New York, 699 pp

    Google Scholar 

  • Tyson RV, Pearson TH (1991) Modern and ancient continental shelf anoxia: an overview. In: Tyson RV, Pearson TH (eds) Modern and ancient continental shelf anoxia. Geol Soc, London, Spec Pub 58: 1–24

    Google Scholar 

  • Warren PS (1937) Age of the Exshaw Shale in the Canadian Rockies. Am J Sci 33: 454–457

    Article  Google Scholar 

  • Westrich JT, Berner RA (1984) The role of sedimentary organic matter in bacterial sulfate reduction: the G model tested. Limnol Oceanogr 29: 236–249

    Article  Google Scholar 

  • Witzke BJ, Heckel PH (1988) Paleoclimatic indicators and inferred Devonian paleolatitudes of Euramerica. In: McMillan NJ, Embry AF, Glass DJ (eds) Devonian of the world. Can Soc Petrol Geol, London, Mem 14: 49–63

    Google Scholar 

  • Workum RH (1991) Peace River Arch Wabamun dolomite, tectonic or subaerial karst? Bull Can Petrol Geol 39: 54–56

    Google Scholar 

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Robison, V.D. (1995). The Exshaw Formation: a Devonian/Mississippian Hydrocarbon Source in the Western Canada Basin. In: Katz, B.J. (eds) Petroleum Source Rocks. Casebooks in Earth Sciences. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-78911-3_2

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  • DOI: https://doi.org/10.1007/978-3-642-78911-3_2

  • Publisher Name: Springer, Berlin, Heidelberg

  • Print ISBN: 978-3-642-78913-7

  • Online ISBN: 978-3-642-78911-3

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