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Evaluation of the saturation of carbonate reservoirs by combining the nuclear magnetic resonance logging and the Thomeer model |
CHEN Xing-He1,2( ), ZHANG Chao-Mo1,2( ), ZHU Lin-Qi1,3, ZHANG Chong1,2, ZHANG Zhan-Song1,2, GUO Jian-Hong1,2 |
1. College of Geophysics and Petroleum Resources,Yangtze University,Wuhan 430100,China 2. Key Laboratory of Exploration Technologies for Oil and Gas Resources,Ministry of Education,Yangtze University,Wuhan 430100,China 3. Institute of Deep-sea Science and Engineering,Chinese Academy of Science,Sanya 572000,China |
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Abstract Carbonate reservoirs have various pores and complex pore structures.However,the microstructure of rocks cannot be characterized using conventional saturation evaluation models,making it extremely difficult to perform the saturation evaluation of carbonate reservoirs.Given this,this study proposed a Thomeer saturation model combined with the nuclear magnetic resonance (NMR) logging based on the data of capillary pressure curves and NMR logging.Specifically,information about the structure of the pore system in the mercury injection data was analyzed,and then the capillary pressure curves of multiple pore types were obtained through fitting using the Thomeer function.Finally,the complex pore structure was characterized using multiple Thomeer curves.The NMR logging is the only logging method that can continuously and quantitatively characterize the pore structure of reservoirs.The Thomeer parameters Bv,Pd,and G and the modal element Porositon of the maximum pore throat diameter were calculated using the logarithmic mean of T2 transverse relaxation time for NMR (T2LM) and the NMR total porosity (MPHS),as well as the classification of pore throat R35.Accordingly,the saturation evaluation model for carbonates reservoirs with complex pore structures was constructed.This model allows for the continuous evaluation of formation pore structure that cannot be achieved using experimental methods.This model was applied to the saturation evaluation of the carbonate reservoirs with complex pore structures in oilfield X in the Middle East.By comparison with the J function model and Archie's formula,this model decreased the relative error from 0.496 and 0.442,respectively to 0.272,better characterized the variation trend,and achieved encouraging application effects regardless of the saturation of reservoirs.Therefore,this model can minimize the impacts of carbonate reservoirs with complex pore structures and improve the precision of the reservoir saturation evaluation.
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Received: 19 November 2021
Published: 24 February 2023
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Corresponding Authors:
ZHANG Chao-Mo
E-mail: 1637715221@qq.com;zhangcm@yangtzeu.edu.cn
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Porosity-permeability relationship of rock core
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Thomeer schematic diagram
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Parameter extraction diagram of Thomeer jacobian determinant method
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Relationship between T2LM and Porositon
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Relationship between Porositon and Pd1
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Relationship between MPHS and Bv1
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Relationship between Pd1 and G1
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参数 | 计算公式 | Porositon | | Bv1 | Bv1=120.98×MPHS-0.6085 | Pd1 | Pd1=P-1.0344×101.8 | G1 | G1= ×10-3.1962 |
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Thomeer curve 1 parameter calculation formula
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Petrophysical rock typing result based on R35 parameter slope method
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岩石物理分类 | R35/μm | 1 | >8.94 | 2 | 5.91~8.94 | 3 | 2.45~5.91 | 4 | <2.45 |
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Boundaries of petrophysical rock typing
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岩石物理分类 | Pd2 /MPa | G2 | 1 | 1.045 | 0.296 | 2 | 24.187 | 0.329 | 3 | 19.563 | 0.418 | 4 | 26.371 | 0.233 |
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Thomeer curve 2 parameters values of different petrophysical rock typing
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条件 | 体系 | 接触角θ/ (°) | 界面张力σ/ (mN·m-1) | σcosθ/ (mN·m-1) | 实验室 | 空气—水 | 0 | 72 | 72 | 油—水 | 30 | 48 | 42 | 空气—汞 | 140 | 480 | 367 | 油藏 | 水—油 | 30 | 30 | 26 | 油—气 | 0 | 50 | 50 | 气—水 | 0 | 44.6 | 44.6 |
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Common interfacial tension and wetting angle
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J-function of average capillary pressure curve
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Log interpretation results of some intervals in well MXX(track 7 is the saturation calculation result of the method proposed in this paper, and track 8 is the saturation calculation result of the J function method, track 9 is the saturation calculation result of the Archie’s formulas)
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Comparative analysis of effects undert the accuracy of ±5% a—Thomeer saturation model for combined nuclear magnetic resonance logging;b—J function saturation model;c—Archie formula saturation model
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