Model for Predicting Horizontal Well Transient Productivity in the Bottom-Water Reservoir with Finite Water Bodies

Author:

Jia Xiaofei12,Sun Zhaobo3,Lei Guanglun14,Yao Chuanjin14ORCID

Affiliation:

1. School of Petroleum Engineering, China University of Petroleum (East China), Qingdao 266580, China

2. China National Offshore Oil Corporation, China Limited, Tianjin Branch, Tianjin 300459, China

3. China National Offshore Oil Corporation, International Limited, Beijing 100029, China

4. Key Laboratory of Unconventional Oil & Gas Development (China University of Petroleum (East China)), Ministry of Education, Qingdao 266580, China

Abstract

To better understand the horizontal well transient productivity in the bottom-water reservoir with finite water bodies, the horizontal well transient productivity model for the bottom-water reservoir with finite water-body multiple was developed using Green’s function and potential superposition method. Laplace transforms, Fourier transforms, superposition of point source, and Duhamel principle were used to obtain the transient productivity of the horizontal well, and the transient productivity of the horizontal well in real space was obtained by the Stehfest numerical inversion method. The typical pressure response curve and dimensionless productivity curves were plotted. The effects of the water-body multiple, the distance between the horizontal well and oil–water contact, and the skin factor, were analyzed. Six main flowing stages were divided for horizontal wells in the bottom-water reservoir with finite water bodies. When the water body multiples are zero or tend to infinity, the results obtained from the model are consistent with the calculations by the conventional top-bottom closed reservoir model or infinite rigid bottom-water reservoir model, respectively, and the pressure dynamic for the finite water body falls in between both. With the increase in the water body multiples and the decrease in distance between the horizontal well and the oil–water contact, and the horizontal well productivity decreases slowly. With the increase in the skin factor, the initial productivity decreases; moreover, the skin factor has a great influence on the initial productivity of the horizontal well, while the later influence gradually decreases. Accurate horizontal well productivity prediction in the bottom-water reservoir with finite water bodies provides a strong basis for horizontal well deployment, design optimization, and formulation of development policy.

Funder

National Science and Technology Major Project

CNOOC Science and Technology Major Project

Fundamental Research Funds for the Central Universities

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference39 articles.

1. Giger, F.M. (1986, January 5). Analytic 2-D models of water cresting before the breakthrough of horizontal wells. Proceedings of the SPE Annual Technical Conference and Exhibition, New Orleans, LA, USA.

2. Pressure transient behavior of horizontal wells with and without gas cap or aquifer;Kuchuk;SPE Form. Eval.,1991

3. Zhang, P., and Wen, X.H. (2008, January 21–24). Existence of flow barriers improves horizontal well production in bottom-water reservoirs. Proceedings of the SPE Annual Technical Conference and Exhibition, Denver, CO, USA.

4. The critical rate of horizontal wells in bottom-water reservoirs with an impermeable barrier;Yue;Petrol. Sci.,2012

5. A method to calculate the critical production of horizontal wells in bottom water reservoir;Deng;Well Test.,2022

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