Calculation Method of Shale Oil Fluid Component Content Based on Nuclear Magnetic Resonance T2 Distribution

Shale oil reservoirs, characterized by the complex occurrence state of fluid and complex mineral compositions, are difficult to accurately determine the fluid component content. Therefore, a method to determine the fluid component content of shale oil combining with continuous wavelet transform (CWT...

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Main Authors: LIU Jilong, XIE Ranhong, WEI Hongyuan, XU Chenyu, JIN Guowen, ZHENG Di, WANG Shaoxiang
Format: Article
Language:zho
Published: Editorial Office of Well Logging Technology 2023-10-01
Series:Cejing jishu
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Online Access:https://www.cnpcwlt.com/#/digest?ArticleID=5523
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author LIU Jilong
XIE Ranhong
WEI Hongyuan
XU Chenyu
JIN Guowen
ZHENG Di
WANG Shaoxiang
author_facet LIU Jilong
XIE Ranhong
WEI Hongyuan
XU Chenyu
JIN Guowen
ZHENG Di
WANG Shaoxiang
author_sort LIU Jilong
collection DOAJ
description Shale oil reservoirs, characterized by the complex occurrence state of fluid and complex mineral compositions, are difficult to accurately determine the fluid component content. Therefore, a method to determine the fluid component content of shale oil combining with continuous wavelet transform (CWT) and Gaussian distribution function is proposed in this paper. Based on the focused ion beam scanning electron microscopy experiments, a digital shale core containing inorganic pore water, organic pore oil, matrix, pyrite, and organic matter is obtained. On this basis, the random walk method is used to simulate the nuclear magnetic resonance response of the pore fluids at different echo spacing. The echo data is inversed for the T2 distributions of inorganic pore water, organic pore oil, and organic matter as well as the T2 distribution of all fluid components. For the T2 distribution of all fluid components, the CWT is carried out, and a two-dimensional wavelet coefficient matrix can be obtained. By identifying spectral peaks, the positions and shape parameters of spectral peaks at different scales in the wavelet space are determined. The T2 distribution for all fluid components is decomposed by the constructed Gaussian distribution functions of different scales. The optimal decomposed result is used to calculate the fluid content of shale oil. The contents of fluid components calculated by proposed method with the numerical simulation based on random walk method at different echo spacing are compared. The result indicates that the absolute error between them is relatively low at different echo spacing. The effectiveness of the proposed method is verified. This method can provide technical support for the exploration and development of shale oil.
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institution OA Journals
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publishDate 2023-10-01
publisher Editorial Office of Well Logging Technology
record_format Article
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spelling doaj-art-e6f6896afd8d4c39ad8e74d99884d4e92025-08-20T01:55:22ZzhoEditorial Office of Well Logging TechnologyCejing jishu1004-13382023-10-0147553354110.16489/j.issn.1004-1338.2023.05.0021004-1338(2023)05-0533-09Calculation Method of Shale Oil Fluid Component Content Based on Nuclear Magnetic Resonance T2 DistributionLIU Jilong0XIE Ranhong1WEI Hongyuan2XU Chenyu3JIN Guowen4ZHENG Di5WANG Shaoxiang6College of Geophysics, China University of Petroleum (Beijing), Beijing 102249, ChinaCollege of Geophysics, China University of Petroleum (Beijing), Beijing 102249, ChinaCollege of Geophysics, China University of Petroleum (Beijing), Beijing 102249, ChinaCollege of Geophysics, China University of Petroleum (Beijing), Beijing 102249, ChinaCollege of Geophysics, China University of Petroleum (Beijing), Beijing 102249, ChinaHuabei Branch, China National Logging Corporation, Renqiu, Hebei 062550, ChinaMarket Production Department, China National Logging Corporation, Xi’an, Shaanxi 710077, ChinaShale oil reservoirs, characterized by the complex occurrence state of fluid and complex mineral compositions, are difficult to accurately determine the fluid component content. Therefore, a method to determine the fluid component content of shale oil combining with continuous wavelet transform (CWT) and Gaussian distribution function is proposed in this paper. Based on the focused ion beam scanning electron microscopy experiments, a digital shale core containing inorganic pore water, organic pore oil, matrix, pyrite, and organic matter is obtained. On this basis, the random walk method is used to simulate the nuclear magnetic resonance response of the pore fluids at different echo spacing. The echo data is inversed for the T2 distributions of inorganic pore water, organic pore oil, and organic matter as well as the T2 distribution of all fluid components. For the T2 distribution of all fluid components, the CWT is carried out, and a two-dimensional wavelet coefficient matrix can be obtained. By identifying spectral peaks, the positions and shape parameters of spectral peaks at different scales in the wavelet space are determined. The T2 distribution for all fluid components is decomposed by the constructed Gaussian distribution functions of different scales. The optimal decomposed result is used to calculate the fluid content of shale oil. The contents of fluid components calculated by proposed method with the numerical simulation based on random walk method at different echo spacing are compared. The result indicates that the absolute error between them is relatively low at different echo spacing. The effectiveness of the proposed method is verified. This method can provide technical support for the exploration and development of shale oil.https://www.cnpcwlt.com/#/digest?ArticleID=5523shale oilnuclear magnetic resonancenumerical simulationcontinuous wavelet transformfluid component content
spellingShingle LIU Jilong
XIE Ranhong
WEI Hongyuan
XU Chenyu
JIN Guowen
ZHENG Di
WANG Shaoxiang
Calculation Method of Shale Oil Fluid Component Content Based on Nuclear Magnetic Resonance T2 Distribution
Cejing jishu
shale oil
nuclear magnetic resonance
numerical simulation
continuous wavelet transform
fluid component content
title Calculation Method of Shale Oil Fluid Component Content Based on Nuclear Magnetic Resonance T2 Distribution
title_full Calculation Method of Shale Oil Fluid Component Content Based on Nuclear Magnetic Resonance T2 Distribution
title_fullStr Calculation Method of Shale Oil Fluid Component Content Based on Nuclear Magnetic Resonance T2 Distribution
title_full_unstemmed Calculation Method of Shale Oil Fluid Component Content Based on Nuclear Magnetic Resonance T2 Distribution
title_short Calculation Method of Shale Oil Fluid Component Content Based on Nuclear Magnetic Resonance T2 Distribution
title_sort calculation method of shale oil fluid component content based on nuclear magnetic resonance t2 distribution
topic shale oil
nuclear magnetic resonance
numerical simulation
continuous wavelet transform
fluid component content
url https://www.cnpcwlt.com/#/digest?ArticleID=5523
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