A New Method for Mobility Logging Evaluation Based on Flowing Porosity in Shale Oil Reservoirs

Author:

Shen Bo12,Tao Yunhe3,Wang Gang4,Fan Haitao4,Wang Xindong5,Sun Ke6

Affiliation:

1. Key Laboratory of Exploration Technologies for Oil and Gas Resources of Ministry of Education, Yangtze University, Wuhan 430010, China

2. Geophysics and Oil Resource Institute, Yangtze University, Wuhan 430010, China

3. Southwest Branch, CNPC Logging Company Limited, Chongqing 400021, China

4. Research Institute of Exploration and Development, Xinjiang Oilfield Company, CNPC, Karamay 834000, China

5. Materials and Equipment Center of CNPC Well Logging Co., Ltd., Xi’an 710200, China

6. Libarary, Yangtze University, Wuhan 430010, China

Abstract

Shale oil reservoirs differ from conventional reservoirs in several aspects, including the sedimentary model, accumulation mechanism, and reservoir characteristics, which pose significant challenges to their exploration and development. Therefore, identifying the location of optimal spots is crucial for the successful exploration and development of shale oil reservoirs. Mobility, particularly in low-permeability shale oil reservoirs with nano-scale pores, is a crucial petrophysical property that determines the development plan. However, two-dimensional nuclear magnetic resonance (2D-NMR) is expensive and has limited applicability, although it can estimate shale oil mobility. Hence, it is of great significance to find a precise method for evaluating shale oil mobility using conventional logging. In this paper, we propose a new method for assessing shale oil mobility based on free oil porosity derived from the difference in flowing porosity detected at different ranges of logging, utilizing the Maxwell conductivity model and conductivity efficiency theory. Our study shows that longitudinal-T2 (T1-T2) NMR logging can accurately evaluate the mobility of shale oil. This is demonstrated by comparing the processing results obtained from our proposed method with those from 2D-NMR and laboratory NMR experiments. The predicted results based on conventional well logs also show good agreement with experimental results, confirming the effectiveness and reliability of our new method. Our proposed method carries reference significance for evaluating shale oil reservoir quality. 

Funder

National Natural Science Foundation of China

Publisher

MDPI AG

Subject

Process Chemistry and Technology,Chemical Engineering (miscellaneous),Bioengineering

Reference52 articles.

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4. Emmanuel, O.O., and Sonnenberg, S.A. (2013, January 12–14). Geologic characterization and the depositional environment of the middle Devonian Marcellus shale, Appalachian Basin, NE USA. Proceedings of the Unconventional Resources Technology Conference, Denver, CO, USA.

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