The Research of Reservoir Forming Characteristics of Tight Sand Gas

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Abstract:

Tight sand gas is one of unconventional gas. Under the condition of the gradual depletion of conventional resources, unconventional resource is gradually paid more attention. Tight sand gas is divided into two types: pre-exiting deep gas and subsequent tight sand gas on the foundation of current research. Different types of accumulations having various characteristics, so describing and contrasting reservoir forming characteristics of two types of tight sand gas, analyze reservoir forming rules, can guide the future work of tight sand gas exploration.

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Advanced Materials Research (Volumes 998-999)

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1483-1486

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July 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] Li Jian, Wu Zhiyong, Zeng Daqian, et al. Exploration and development technology in deep-layer tight sandstone gas reservoir. Beijing: Petroleum Industry Press, 2002: 4-8.

Google Scholar

[2] Hu Wenrui, Zhai Guangming, Li Jingming. Engineering Sciences, 2010, 12(5): 25-29.

Google Scholar

[3] Elkins L E. The technology and economics of gas recovery from tight sands. New Mexico: SPE Production Technology Symposium, (1978).

Google Scholar

[4] Federal Energy Regulatory Commission. Natural gas policy act of 1978. Washington: Federal Energy Regulatory Commission, (1978).

DOI: 10.2172/6667639

Google Scholar

[5] Holditch S A. Journal of Petroleum Technology, 2006, 58(6): 86-93.

Google Scholar

[6] Spencer C W. Journal of Petroleum Geology, 1985, 37(7): 1308-1314.

Google Scholar

[7] Wyman R E. Gas recovery from tight sands. SPE 13940, (1985).

Google Scholar

[8] National Energy Administration. SY/T 6168-2009 Oil and gas industry standard of the People's Republic of China: The classification of gas pool. Beijing: Petroleum Industry Press, (2009).

Google Scholar

[9] National Energy Administration. SY/T 6832-2011 Oil and gas industry standard of the People's Republic of China: Geological evaluating methods for tight sandstone gas. Beijing: Petroleum Industry Press, (2011).

Google Scholar

[10] Zou Caineng, Tao Shizhen, Hou Lianhua, et al. Unconventional petroleum geology. Beijing: Geological Publishing House, 2011: 50-71, 86-92.

Google Scholar

[11] Guan Deshi, Niu Jiayu. Unconventional oil and gas geology in China. Beijing: Petroleum Industry Press, 1995: 60-85.

Google Scholar

[12] Dai Jinxing, Ni Yunyan, Wu Xiaoqi. Petroleum Exploration and Development, 2012, 39(3): 257-264.

Google Scholar

[13] Li Jianzhong, Guo Bingcheng, Zheng Min, et al. Natural Gas Geoscience, 2012, 23(4): 607-615.

Google Scholar

[14] Jiang Zhenxue, Lin Shiguo, Pang Xiongqi, et al. Petroleum Geology & Experiment, 2006, 28(3): 210-214, 219.

Google Scholar

[15] Zhang Jinchuan, Jin Zhijun. Accumulation mechanism and distribution prediction of deep basin gas. Beijing: Petroleum Industry Press, 2005: 82-83.

Google Scholar

[16] Jin Zhijun, Zhang Jinchuan, Wang Zhixin. Geological Review, 2003, 4(4): 400-407.

Google Scholar

[17] Gies R M. Gas history for a major Alberta Deep Basin gas trap, the Cadomin Formation. In: Masters J A, ed. Case study of a deep basin gas field, AAPG Memoir 38. Tulsa: AAPG, 1984. 115-140.

DOI: 10.1306/m38441c5

Google Scholar

[18] Masers J A. Lower Cretaceous oil and gas in Western Canada. In: Masters J A, ed. Case study of a deep basin gas field, AAPG Memoir 38. 1984. 1-34.

DOI: 10.1306/m38441c1

Google Scholar

[19] Wang Tao. Deep basin gas field in China. Beijing: Petroleum Industry Press, (2002).

Google Scholar

[20] Jin Zhijun, Zhang Jinchuan. Earth Science Frontiers, 2002, 9(3): 10.

Google Scholar