Capability of the Stochastic Seismic Inversion in Detecting the Thin Beds: a Case Study at One of the Persian Gulf Oilfields
The aim of seismic inversion is mapping all of the subsurface structures from seismic data. Due to the band-limited nature of the seismic data, it is difficult to find a unique solution for seismic inversion. Deterministic methods of seismic inversion are based on try and error techniques and provid...
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doaj-b882e4c80eff4c919f1fc96990aab7062020-11-25T00:29:06ZengPetroleum University of TechnologyIranian Journal of Oil & Gas Science and Technology2345-24122345-24202018-07-017311710.22050/ijogst.2018.120334.143974815Capability of the Stochastic Seismic Inversion in Detecting the Thin Beds: a Case Study at One of the Persian Gulf OilfieldsMostafa Zare0Abbdolrahim javaherian1Mehdi Shabani2M.S. Student of Petroleum Engineering-Exploratiopn, Department of Petroleum Engineering, Amirkabir University of Technology, Tehran, IranProfessor, Formerly Institute of Geophysics, University of Tehran, Presently Department of Petroleum Engineering, Amirkabir University of Technology, Tehran, IranAssistant Professor, Department of Petroleum Engineering, Amirkabir University of Technology, Tehran, IranThe aim of seismic inversion is mapping all of the subsurface structures from seismic data. Due to the band-limited nature of the seismic data, it is difficult to find a unique solution for seismic inversion. Deterministic methods of seismic inversion are based on try and error techniques and provide a smooth map of elastic properties, while stochastic methods produce high-resolution maps of elastic properties with the same probability. The current paper studies a stochastic method of seismic inversion which was applied to one of the Persian Gulf oilfields. Joint posterior distribution of elastic properties was calculated using Bayesian principle; then a sequential Gaussian simulation technique was performed to decompose the global probability function of elastic properties into some local probability functions at each trace location. The sampling of the local probability functions was performed, and two hundred realizations of the elastic properties were generated. The results of the stochastic inversion were found to be capable of modeling heterogeneities of the reservoir. The generated realizations provided the possibility to uncertainties assessment by calculating the variance of the elastic properties. It was found out that the uncertainty increased in locations far away from the well. Moreover, stochastic inversion, unlike deterministic one, was found to be capable of detecting thin beds (3.5 to 5.7 m) embedded within the reservoir.http://ijogst.put.ac.ir/article_74815_3b35bc6a3fe71db4eade792d9228570c.pdfStochastic inversiondeterministic inversionBayesian frameworksequential Gaussian simulationthin bed detection |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mostafa Zare Abbdolrahim javaherian Mehdi Shabani |
spellingShingle |
Mostafa Zare Abbdolrahim javaherian Mehdi Shabani Capability of the Stochastic Seismic Inversion in Detecting the Thin Beds: a Case Study at One of the Persian Gulf Oilfields Iranian Journal of Oil & Gas Science and Technology Stochastic inversion deterministic inversion Bayesian framework sequential Gaussian simulation thin bed detection |
author_facet |
Mostafa Zare Abbdolrahim javaherian Mehdi Shabani |
author_sort |
Mostafa Zare |
title |
Capability of the Stochastic Seismic Inversion in Detecting the Thin Beds: a Case Study at One of the Persian Gulf Oilfields |
title_short |
Capability of the Stochastic Seismic Inversion in Detecting the Thin Beds: a Case Study at One of the Persian Gulf Oilfields |
title_full |
Capability of the Stochastic Seismic Inversion in Detecting the Thin Beds: a Case Study at One of the Persian Gulf Oilfields |
title_fullStr |
Capability of the Stochastic Seismic Inversion in Detecting the Thin Beds: a Case Study at One of the Persian Gulf Oilfields |
title_full_unstemmed |
Capability of the Stochastic Seismic Inversion in Detecting the Thin Beds: a Case Study at One of the Persian Gulf Oilfields |
title_sort |
capability of the stochastic seismic inversion in detecting the thin beds: a case study at one of the persian gulf oilfields |
publisher |
Petroleum University of Technology |
series |
Iranian Journal of Oil & Gas Science and Technology |
issn |
2345-2412 2345-2420 |
publishDate |
2018-07-01 |
description |
The aim of seismic inversion is mapping all of the subsurface structures from seismic data. Due to the band-limited nature of the seismic data, it is difficult to find a unique solution for seismic inversion. Deterministic methods of seismic inversion are based on try and error techniques and provide a smooth map of elastic properties, while stochastic methods produce high-resolution maps of elastic properties with the same probability. The current paper studies a stochastic method of seismic inversion which was applied to one of the Persian Gulf oilfields. Joint posterior distribution of elastic properties was calculated using Bayesian principle; then a sequential Gaussian simulation technique was performed to decompose the global probability function of elastic properties into some local probability functions at each trace location. The sampling of the local probability functions was performed, and two hundred realizations of the elastic properties were generated. The results of the stochastic inversion were found to be capable of modeling heterogeneities of the reservoir. The generated realizations provided the possibility to uncertainties assessment by calculating the variance of the elastic properties. It was found out that the uncertainty increased in locations far away from the well. Moreover, stochastic inversion, unlike deterministic one, was found to be capable of detecting thin beds (3.5 to 5.7 m) embedded within the reservoir. |
topic |
Stochastic inversion deterministic inversion Bayesian framework sequential Gaussian simulation thin bed detection |
url |
http://ijogst.put.ac.ir/article_74815_3b35bc6a3fe71db4eade792d9228570c.pdf |
work_keys_str_mv |
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