Polygonal Fault System in the Paleogene of the Magallanes Foreland Basin, Southern Chile


Conference Paper


Jesús Pinto, Danilo Gonzalez, Ángel P. González, Ricardo A. Zapata, Pablo Mella
Conference: Unconventional Resources Technology Conference (URTEC), 2018


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Cite

APA   Click to copy
Pinto, J., Gonzalez, D., González, Á. P., Zapata, R. A., & Mella, P. (2018). Polygonal Fault System in the Paleogene of the Magallanes Foreland Basin, Southern Chile. In Conference: Unconventional Resources Technology Conference (URTEC). https://doi.org/10.15530/urtec-2018-2903108


Chicago/Turabian   Click to copy
Pinto, Jesús, Danilo Gonzalez, Ángel P. González, Ricardo A. Zapata, and Pablo Mella. “Polygonal Fault System in the Paleogene of the Magallanes Foreland Basin, Southern Chile.” In Conference: Unconventional Resources Technology Conference (URTEC), 2018.


MLA   Click to copy
Pinto, Jesús, et al. “Polygonal Fault System in the Paleogene of the Magallanes Foreland Basin, Southern Chile.” Conference: Unconventional Resources Technology Conference (URTEC), 2018, doi:10.15530/urtec-2018-2903108.


BibTeX   Click to copy

@conference{jes2018a,
  title = {Polygonal Fault System in the Paleogene of the Magallanes Foreland Basin, Southern Chile},
  year = {2018},
  doi = {10.15530/urtec-2018-2903108},
  author = {Pinto, Jesús and Gonzalez, Danilo and González, Ángel P. and Zapata, Ricardo A. and Mella, Pablo},
  booktitle = {Conference: Unconventional Resources Technology Conference (URTEC)}
}

Abstract

          We interpret a discrete, stratigraphic fault-deformed interval in the Paleocene-Eocene of the Magallanes foreland basin as a widespread polygonal fault system (PFS). Based on the integration of 3D-seismic attribute analysis, drill core evaluation and micro-seismic data, the purpose of the present work is twofold: (1) to describe the widespread and well-developed PFS, and (2) to highlight its potential effects on the Paleogene petroleum system of the Basin.
        The deformed interval is bounded by relatively undisturbed and continuous reflections, more likely coinciding with important stratigraphic surfaces or horizons. It is characterized by normal faults with small throws (<40 m) that form polygonal patterns in map view. The polygons are largely rectangular to pentagonal in shape and may range from 0.5 up to 3 km across; the largest polygons tend to occur toward the foredeep domain. Faults are normal and have no preferred directions, which together with their strata-bounded nature and geometry relationships of the faults, suggest an early diagenetic rather than a tectonic origin for the system. In drill cores, single or conjugate set of faults occur and they display striations with no filling material between fault planes. Polygonal faults locally crosscut amplitude anomalies associated with post-depositional sand remobilization and injection.
             Because the Paleogene PFS extend for more than 20000 km2 and their formation is dependent, among other factors, on grain-size and lithology, they are useful as a basin-wide correlation tool. Although the PFS apparently exert no control over the size and orientation of induced hydraulic fractures in the study area, they probably do affect the geometry and extension of reservoirs. In addition, the combination of polygonal and tectonic faults might control sealing capacity of caprock and hence fluid flow patterns on a regional scale. Thus, an understanding of the timing and distribution of the PFS in the Magallanes basin may provide important clues about petroleum migration, compartmentalization history and future well and reservoir management for unconventional resource plays.