The design and simulation of new downhole vibration device about acoustic oil recovery technology

Yongjun Hou , Ran Zhou , Xiaokang Long , Peng Liu , Yunhao Fu

Petroleum ›› 2015, Vol. 1 ›› Issue (3) : 257 -263.

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Petroleum ›› 2015, Vol. 1 ›› Issue (3) :257 -263. DOI: 10.1016/j.petlm.2015.09.001
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The design and simulation of new downhole vibration device about acoustic oil recovery technology
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Abstract

More and more oilfields are using acoustic technology to enhance oil recovery. In order to know the mechanism of acoustic oil recovery technology, the sound radiator of a new downhole vibration device is modeled and analyzed. Based on the theoretical background, this paper firstly analyzes the acoustic mechanism for the oil reservoir and then makes a acoustic response analysis on the sound radiator model for frequency and time-domain investigation by using professional acoustic simulation software-LMS Virtual.lab Acoustics, finally calculates the acoustic transmission loss in the downhole oil reservoir. The research reveals that firstly, acoustic waves have influences on the oil & water fluidity in the oil reservoir, the oil pressure gradient and the interfacial tension of capillary; secondly, the acoustic radiation power and sound pressure of field point attain a peak on the natural frequency of the sound radiator; thirdly, with the acoustic impact, the sound pressure of oil reservoir would fluctuate so as to improve the oil recovery ratio; the last but not the least one is both the sound pressure of oil reservoir point and the transmission loss of rock have a positive correlation with the vibration frequency. Therefore, it is of great importance for the research of vibration frequency and structure optimization of sound radiator.

Keywords

Oil recovery ratio / The acoustic oil recovery technology / The sound radiator / LMS Virtual.lab Acoustics / The acoustic response analysis / The transmission loss

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Yongjun Hou, Ran Zhou, Xiaokang Long, Peng Liu, Yunhao Fu. The design and simulation of new downhole vibration device about acoustic oil recovery technology. Petroleum, 2015, 1(3): 257-263 DOI:10.1016/j.petlm.2015.09.001

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References

[1]

C. Huh, Improved Oil Recovery by Seismic Vibration:a Preliminary Assessment of Mechanisms, 2006, pp. 1-16. SPE103870.

[2]

M.S. Mullakaev, V.O. Abramov, A.V. Abramova, Development of ultrasonic equipment and technology for well stimulation and enhanced oil recovery, J. Petrol. Sci. Eng. 125 (2014) 201-208.

[3]

O.V. Abramov, V.O. Abramov, O.M. Gradov, M.S. Mullakaev, A.A. Pechkov, R. Wilken, A. Zolezzi, Ultrasonic application for stimulation of well productivity, in: Proceedings of the 11th Meeting of the European Society of Sonochemistry. La Grande-Motte, France, 2008 June 1-5, pp. 113-114.

[4]

V. Abramov, A. Abramova, V. Bayazitov, Yu Saltikov, Some applications of ultrasonic technology in the oil industry, in: Proceedings of the 13th Meeting of the European Society of Sonochemistry. Lviv, Ukraine, 2012 July, pp.22-23.

[5]

G.Т. Apasov, T.K. Apasov, Yu.A. Saltikov, R.Т. Apasov, A.V. Abramova, The factors affecting the efficiency of the effect of ultrasound on the nearwellbore area of formations in the Samotlor oil field, Sci. FEС 6 (2012) 53-56.

[6]

Lu Bin, Guan Jiteng, The research state and prospection of hydrodynamic sound source of high intensity, China Petrol. Mach. 30 (4) (2002) 45-48.

[7]

Ying Chongfu, Ultrasonics, Science Press, Beijing, 1990, pp. 495-506.

[8]

Guidong Luan, Jinduo Zhang, Renqian Wang, Thepiezoelectric Transducer and Transducer Array, Peking University Press, Beijing, 2005, pp. 21-291.

[9]

Jia Zhenyuan, Guo Qiangdong, Theory and Applicatios of Giant Magnetostrictive Microdisplacement Actuator, Science Press, Beijing, 2008, pp. 22-192.

[10]

Aiqun Xu, Downhole sound radiator for enhancing oil recovery, Chin. J. Mech. Eng. 44 (5) (2008) 220-225.

[11]

Li Zenggang, Zhan Fuliang, The Advanced Acoustic Examples of Simulation Application Based on Virtual. lab Acoustics, National Defense Industry Press, Beijing, 2014, 33-182.

[12]

T.D. Van golf-racht, Translation by Chen Zhongxiang. Engineering Foundation of Reservoir Cracks, Beijing, Petroleum Industry Press, 1989, pp. 51-258.

[13]

Huang Xutao, Liang Shuhuan, The study of the mechanism and characteristics of the acoustic oil production, Acta Petrol. Sin. 14 (4) (1993) 110-116.

[14]

Deng Yiner, Liu Ciqun, The mathematical model and application of nonlinear seepage law in the low permeability reservoir, Acta Petrol. Sin. 22 (4) (2001) 72-76.

[15]

Lin Yang, Jia-Lin Tian, Zhi Yanga, et al., Numerical analysis of non-Newtonian rheology effect on hydrocyclone flow field, Petroleum 1 (1) (2015) 68-74.

[16]

Wenqing Li R.Dennis Vigil, Igor A. Beresnev, Vibration-induced mobilization of trapped oil ganglia in porous media:Experimental validation of a capillary-physics mechanism, J. Colloid Interface Sci. 289 (1) (2005) 193-199.

[17]

Liu Yuejun Q.U. Jinping, Stress-strain of polymer melt during dynamic extruding through capillary, China Plast. Ind. 32 (3) (2004) 46-48.

[18]

Andrey V. Lebedev, Igor A. Beresnev, Nonlinear distortion of signals radiated by vibroseis sources, Geophysics 69 (4) (2004) 968-977.

[19]

Liu Yuejun Q.U. Jinping, Cao Xianwu, Calculation of apparent viscosity of polymer melt under vibration force field, J. Shanghai Jiaot. Univ. 38 (6) (2004) 1003-1006.

[20]

Igor A. Beresnev, R. Dennis Vigil, Wenqing Li, Wayne D. Pennington, Elastic waves push organic fluids from reservoir rock, Geophys. Res. Lett. 32 (2005) 13303-13306.

[21]

Zhao Guo, The Study of the Mechanism and Applications of the Acoustic Oil Production, Northeast Petroleum University, Daqing, 2001.

Funding

☆ The Graduate Fund of Southwest Petroleum University(CX2014SY02)

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