The nature and origins of decametre-scale porosity in Ordovician carbonate rocks, Halahatang oilfield, Tarim Basin, China

Author:

Ukar Estibalitz1ORCID,Baqués Vinyet1,Laubach Stephen E.1,Marrett Randall2ORCID

Affiliation:

1. Bureau of Economic Geology, Jackson School of Geosciences, The University of Texas at Austin, University Station Box X, Austin, TX 78713-8924, USA

2. PO Box 432, Island Park, ID 83429, USA

Abstract

At >7 km depths in the Tarim Basin, hydrocarbon reservoirs in Ordovician rocks of the Yijianfang Formation contain large cavities (c. 10 m or more), vugs, fractures and porous fault rocks. Although some Yijianfang Formation outcrops contain shallow (formed near surface) palaeokarst features, cores from the Halahatang oilfield lack penetrative palaeokarst evidence. Outcrop palaeokarst cavities and opening-mode fractures are mostly mineral filled but some show evidence of secondary dissolution and fault rocks are locally highly (c. 30%) porous. Cores contain textural evidence of repeated formation of dissolution cavities and subsequent filling by cement. Calcite isotopic analyses indicate depths betweenc. 220 and 2000 m. Correlation of core and image logs shows abundant cement-filled vugs associated with decametre-scale fractured zones with open cavities that host hydrocarbons. A Sm–Nd isochron age of 400 ± 37 Ma for fracture-filling fluorite indicates that cavities in core formed and were partially cemented prior to the Carboniferous, predating Permian oil emplacement. Repeated creation and filling of vugs, timing constraints and the association of vugs with large cavities suggest dissolution related to fractures and faults. In the current high-strain-rate regime, corroborated by velocity gradient tensor analysis of global positioning system (GPS) data, rapid horizontal extension could promote connection of porous and/or solution-enlarged fault rock, fractures and cavities.Supplementary material:Stable isotopic analyses and the velocity gradient tensor and principal direction and magnitude calculation are available athttps://doi.org/10.6084/m9.figshare.c.4946046Thematic collection:This article is part of the The Geology of Fractured Reservoirs collection available at:https://www.lyellcollection.org/cc/the-geology-of-fractured-reservoirs

Funder

CNPC Chuanqing Drilling Engineering Company Limited

Chemical Sciences, Geosciences, and Biosciences Division

Publisher

Geological Society of London

Subject

Geology

Reference131 articles.

1. Ahr, W.M. 2011. Geology of Carbonate Reservoirs: the Identification, Description and Characterization of Hydrocarbon Reservoirs in Carbonate Rocks. Wiley, New York.

2. Karst porosity estimations from archive cave surveys – studies in the Buda Thermal Karst System (Hungary);Albert;International Journal of Speleology,2015

3. Allmendinger, R.W. , Cardozo, N. and Fisher, D.M. 2012. Structural Geology Algorithms: Vectors and Tensors. Cambridge University Press, Cambridge.

4. Anderson, E.M. 1951. The Dynamics of Faulting and Dyke Formation with Applications to Britain. Hafner, New York.

5. Bagrintseva, K.I. , Dmitrievsky, A.N. and Bochko, R.A. 1989. Atlas of Carbonate Reservoir Rocks of the Oil and Gas Fields of the East European and Siberian Platforms. VNIGNI, Moscow, Russia.

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