Paleo-biodegradation and hydrocarbon mixing in a major hybrid petroleum reservoir
-
Published:2023-03-16
Issue:1
Volume:13
Page:
-
ISSN:2045-2322
-
Container-title:Scientific Reports
-
language:en
-
Short-container-title:Sci Rep
Author:
Cesar Jaime,Ardakani Omid H.,Watt Elizabeth,Song Yishu,Kingston Andrew,Ahad Jason M. E.
Abstract
AbstractSome of the parental material for hydrocarbons produced from low-permeability reservoirs in Western Canada corresponds to thermal products from biodegraded oil. This has been proved by the occurrence of framboidal pyrite, which is often formed during microbial sulfate reduction (MSR). In addition, the identified pyrite framboids are associated with the presence of phosphorus (P). Phosphorus (as phosphate) is a key nutrient and energy carrier for sulfate-reducing bacteria. The pyrite-P assemblage occurs embedded in solid bitumen (thermal residue), which confirms that migrated hydrocarbons provided the environment for microbial growth. Molecular products of severe biodegradation such as 17-nortricyclic terpanes were also detected. Biodegradation effects have been masked not only by thermal degradation of biodegraded oil during maximum burial, but also due to hydrocarbon mixing with late gas-condensate charges. Suitable conditions for biodegradation (< 80 °C, basin uplift) occurred during the Early Cretaceous. The confirmation of paleo-biodegradation means that there was a significant hydrocarbon loss that we have not accounted for. Likewise, MSR and Early Cretaceous seawater sulfate might have played an important role in the generation of the hydrogen sulfide (H2S) detected today.
Funder
Natural Resources Canada
Publisher
Springer Science and Business Media LLC
Subject
Multidisciplinary
Reference61 articles.
1. Jiang, S., Chen, L., Wu, Y., Jiang, Z. & McKenna, E. Hybrid plays of Upper Triassic Chang7 lacustrine source rock interval of yanchang formation, ordos basin, China. J. Pet. Sci. Eng. 159, 182–196 (2017). 2. Wood, J. & Sanei, H. Secondary migration and leakage of methane from a major tight-gas system. Nat. Commun. 7(13614), 1–9 (2016). 3. Ducros, M., Sassi, W., Vially, R., Euzen, T., Crombez, V. 2-D basin modeling of the Western Canada sedimentary basin across the Montney-Doig system: implications for hydrocarbon migration pathways and unconventional resources potential In Petroleum systems analysis—case studies. (eds. AbuAli, M.A., Moretti, I., Nordgård Bolås, H.M) 117–134 (AAPG Memoir 114, 2017). 4. Cesar, J., Becker, V. & Mayer, B. Organic and isotope geochemistry analysis of petroleum condensates from the unconventional portion of the montney formation Western Canada. Fuel 282, 118879 (2020). 5. Euzen, T., Watson, N., Fowler, M., Mort, A. & Moslow, T. F. Petroleum distribution in the Montney hybrid play: Source, carrier bed, and structural controls. AAPG Bull. 105, 1867–1892 (2021).
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|