Origin of sulfate-rich fluids in the Early Triassic Montney Formation, Western Canadian Sedimentary Basin

被引:13
|
作者
Liseroudi, Mastaneh H. [1 ]
Ardakani, Omid H. [1 ,2 ]
Sanei, Hamed [3 ]
Pedersen, Per K. [1 ]
Stern, Richard A. [4 ]
Wood, James M. [5 ]
机构
[1] Univ Calgary, Dept Geosci, 2500 Univ Dr NW, Calgary, AB T2N 1N4, Canada
[2] Geol Survey Canada, 3303 33rd St NW, Calgary, AB T2L 2A7, Canada
[3] Aarhus Univ, Dept Geosci, Hoegh Guldbergs Gade 2,Bldg 1671,223, DK-8000 Aarhus C, Denmark
[4] Univ Alberta, Canadian Ctr Isotop Microanal, Dept Earth & Atmospher Sci, Edmonton, AB T6G 2E3, Canada
[5] Calaber1 Resources, Calgary, AB, Canada
关键词
Anhydrite; Barite; Diagenesis; Stable isotopes; Strontium isotopes; Secondary ion mass spectrometry (SIMS); Devonian evaporites; PEACE RIVER ARCH; FORMATION WATERS; SULFUR-ISOTOPE; ALBERTA BASIN; HYDROTHERMAL DOLOMITE; SEAWATER SULFATE; KHUFF FORMATION; ORGANIC-MATTER; MARINE SULFATE; STABLE SULFUR;
D O I
10.1016/j.marpetgeo.2020.104236
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
This study investigates diagenetic and geochemical processes that control regional distribution and formation of sulfate minerals (i.e., anhydrite and barite) in the Early Triassic Montney Formation in the Western Canadian Sedimentary Basin. The generation of H2S in hydrocarbon reservoirs is often associated with the dissolution of sulfate minerals, as a major source of sulfate required for sulfate-reducing reactions. The formation of pervasive late diagenetic anhydrite and barite in the high H2S zone of the Montney Formation is therefore contrary to the normal paragenetic sequence of sour gas reservoirs. Petrographic observations revealed early and late anhydrite and barite cement. The early fine-crystalline anhydrite cement is dominant in northeastern British Columbia (low H2S zone), while the late-stage coarse-crystalline cement and fracture/vug-filling anhydrite are dominant in Alberta (high H2S zone). The bulk isotopic values (delta S-34: + 2.9 to +24.7 parts per thousand V-CDT, delta O-18: -11.2 to +15.7 parts per thousand V-SMOW) suggest that sulfate-rich fluids originated mainly from modified Triassic connate water was the origin of early anhydrite. In contrast, the SIMS isotopic values of late anhydrite (delta S-34: + 18.5 to + 37 parts per thousand V-CDT, delta O-18: +12 to +22 parts per thousand V-SMOW) and barite cement (delta S-34: +23.3 to +39 parts per thousand V-CDT, delta O-18: +13.2 to +18.7 parts per thousand V-SMOW) as well as fracture/vug-filling anhydrite (delta S-34: + 23.5 to +24.7 parts per thousand V-CDT, delta O-18: +13.3 to +14.7 parts per thousand V-SMOW) from Alberta represents a mixed isotopic signature of Triassic connate water and contribution of dissolved sulfate-rich fluids derived from dissolution of Devonian evaporites. The Sr-87/Sr-86 isotope ratios of the fracture/vug-filling anhydrite (0.7092-0.7102) are highly radiogenic suggesting extensive water/rock interactions between sulfate-rich fluids and siliciclastic and basement rocks. The similar isotopic composition of the late anhydrite/barite and fracture/vug-filling anhydrite in western Alberta with Devonian evaporites isotopic signature, and the highly radiogenic Sr-87/Sr-86 ratio further supports sulfate-bearing fluids were mainly originated from underlying Devonian evaporites and migrated upwards through deep-seated faults/fractures to the Montney Formation.
引用
收藏
页数:17
相关论文
共 50 条
  • [21] Petrographic and Molecular Characterization of Organic-Rich Mudstones with Petroleum Generative Potential from The Lower Triassic Montney Formation, Western Canada
    Becerra, Daniela
    Stasiuk, Lavern
    Clarkson, Christopher R.
    Carvajal-Ortiz, Humberto
    Ghanizadeh, Amin
    Moslow, Thomas
    ACS OMEGA, 2024, 9 (49): : 48089 - 48111
  • [22] Post-well stimulation allocation of commingled production using geochemical fingerprinting techniques in unconventional reservoirs: A review of methods, and a case study of the Montney Formation, Western Canadian Sedimentary Basin
    Ocubalidet, Seare
    Carvajal-Ortiz, Humberto
    Gentzis, Thomas
    INTERNATIONAL JOURNAL OF COAL GEOLOGY, 2020, 224
  • [23] Regional trends in molecular isotope ratios of gases from drilling fluids in the Western Canadian Sedimentary Basin.
    Tilley, BJ
    Muehlenbachs, K
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2001, 222 : U484 - U484
  • [24] Sedimentary structures of microbial carbonates in the fourth member of the Middle Triassic Leikoupo Formation, Western Sichuan Basin, China
    Wang, Yuanchong
    Shi, Kaibo
    Liu, Bo
    SCIENTIFIC REPORTS, 2023, 13 (01)
  • [25] GEOCHEMISTRY AND ORIGIN OF FORMATION WATERS IN WESTERN CANADA SEDIMENTARY BASIN .2. ALKALI METALS
    BILLINGS, GK
    HITCHON, B
    SHAW, DR
    CHEMICAL GEOLOGY, 1969, 4 (1-2) : 211 - &
  • [26] Sedimentary structures of microbial carbonates in the fourth member of the Middle Triassic Leikoupo Formation, Western Sichuan Basin, China
    Yuanchong Wang
    Kaibo Shi
    Bo Liu
    Scientific Reports, 13
  • [27] Evidence of Hydrocarbon Generation and Overpressure Development in an Unconventional Reservoir Using Fluid Inclusion and Stable Isotope Analysis From the Early Triassic, Western Canadian Sedimentary Basin
    Kingston, Andrew
    Ardakani, Omid H.
    Watt, Elizabeth
    Samson, Iain M.
    FRONTIERS IN EARTH SCIENCE, 2022, 10
  • [28] ORIGIN AND EVOLUTION OF FORMATION WATERS, ALBERTA BASIN, WESTERN CANADA SEDIMENTARY BASIN .2. ISOTOPE SYSTEMATICS AND WATER MIXING
    CONNOLLY, CA
    WALTER, LM
    BAADSGAARD, H
    LONGSTAFFE, FJ
    APPLIED GEOCHEMISTRY, 1990, 5 (04) : 397 - 413
  • [29] The Origin of Quartz Cement in the Upper Triassic Second Member of the Xujiahe Formation Sandstones, Western Sichuan Basin, China
    Ren, Jie
    Lv, Zhengxiang
    Wang, Honghui
    Wu, Jianmeng
    Zhang, Shunli
    WATER, 2021, 13 (14)
  • [30] Reservoir characterization and origin of tight gas sandstones in the Upper Triassic Xujiahe formation, Western Sichuan Basin, China
    Gong L.
    Zeng L.
    Gao Z.
    Zhu R.
    Zhang B.
    Journal of Petroleum Exploration and Production Technology, 2016, 6 (3) : 319 - 329