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Information Journal Paper

Title

ESTIMATION OF TOTAL ORGANIC CARBON LOG USING GGEOCHEMICAL AND PETROPHYSICAL DATA BY ARTIFICIAL NEURAL NETWORKS IN AZADEGAN OIL FIELD

Pages

  100-110

Abstract

 The amount of total organic carbon (TOC) is one of the major geochemical parameters, which is used to evaluate hydrocarbon generation potential of source rocks. Measurement of such an important parameter requires performing tests on small-scale drill cuttings which is too expensive and time-consuming. Meanwhile, it is measured using a limited number of samples. However, PETROPHYSICAL DATA are accessible for all drilled wells in a hydrocarbon field. In this paper, ARTIFICIAL NEURAL NETWORK technology was used to estimate TOC from petrophysical logs. The correlation coefficient between the estimated and measured TOC data from Rock Eval pyrolysis is 71%, which is an acceptable value. The results of this study show that artificial intelligence is successful in estimating TOC data. Formation source rocks of the studied oilfield are Kazhdumi and Gadvan which constitute the main source rocks of Iran. The presented methodology is illustrated by using a case study from one well of Azadegan oil field in Abadan plain.

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    APA: Copy

    GHOLIPOUR, SIROUS, KADKHODAIE, ALI, & KAMALI, MOHAMMAD REZA. (2016). ESTIMATION OF TOTAL ORGANIC CARBON LOG USING GGEOCHEMICAL AND PETROPHYSICAL DATA BY ARTIFICIAL NEURAL NETWORKS IN AZADEGAN OIL FIELD. PETROLEUM RESEARCH, 25(85-2), 100-110. SID. https://sid.ir/paper/114672/en

    Vancouver: Copy

    GHOLIPOUR SIROUS, KADKHODAIE ALI, KAMALI MOHAMMAD REZA. ESTIMATION OF TOTAL ORGANIC CARBON LOG USING GGEOCHEMICAL AND PETROPHYSICAL DATA BY ARTIFICIAL NEURAL NETWORKS IN AZADEGAN OIL FIELD. PETROLEUM RESEARCH[Internet]. 2016;25(85-2):100-110. Available from: https://sid.ir/paper/114672/en

    IEEE: Copy

    SIROUS GHOLIPOUR, ALI KADKHODAIE, and MOHAMMAD REZA KAMALI, “ESTIMATION OF TOTAL ORGANIC CARBON LOG USING GGEOCHEMICAL AND PETROPHYSICAL DATA BY ARTIFICIAL NEURAL NETWORKS IN AZADEGAN OIL FIELD,” PETROLEUM RESEARCH, vol. 25, no. 85-2, pp. 100–110, 2016, [Online]. Available: https://sid.ir/paper/114672/en

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