Acoustic Prediction and Risk Evaluation of Shallow Gas in Deep-Water Areas

被引:0
|
作者
YANG Jin [1 ]
WU Shiguo [2 ]
TONG Gang [3 ]
WANG Huanhuan [1 ]
GUO Yongbin [4 ]
ZHANG Weiguo [4 ]
ZHAO Shaowei [5 ]
SONG Yu [1 ]
YIN Qishuai [1 ]
XU Fei [1 ]
机构
[1] College of Safety and Ocean Engineering, China University of Petroleum (Beijing)
[2] Institute of Deep-Sea Science and Engineering, Chinese Academy of Sciences
[3] CNOOC Research Institute
[4] CNOOC China Limited Shenzhen Branch
[5] CNOOC China Limited
关键词
D O I
暂无
中图分类号
P744.4 [石油和天然气]; TE58 [海上油气田勘探与开发安全技术];
学科分类号
摘要
Shallow gas is a potential risk in deep-water drilling that must not be ignored, as it may cause major safety problems, such as well kicks and blowouts. Thus, the pre-drilling prediction of shallow gas is important. For this reason, this paper conducted deepwater shallow gas acoustic simulation experiments based on the characteristics of deep-water shallow soil properties and the theory of sound wave speed propagation. The results indicate that the propagation speed of sound waves in shallow gas increases with an increase in pressure and decreases with increasing porosity. Pressure and sound wave speed are basically functions of the power exponent. Combined with the theory of sound wave propagation in a saturated medium, this paper establishes a multivariate functional relationship between sound wave speed and formation pressure and porosity. The numerical simulation method is adopted to simulate shallow gas eruptions under different pressure conditions. Shallow gas pressure coefficients that fall within the ranges of 1.0 – 1.1, 1.1 – 1.2, and exceeding 1.2 are defined as low-, medium-, and high-risk, respectively, based on actual operations. This risk assessment method has been successfully applied to more than 20 deep-water wells in the South China Sea, with a prediction accuracy of over 90%.
引用
收藏
页码:1147 / 1153
页数:7
相关论文
共 50 条
  • [21] Temperature prediction model of gas wells for deep-water production in South China Sea
    Mao, Liangjie
    Liu, Qingyou
    Nie, Kuang
    Wang, Guorong
    JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2016, 36 : 708 - 718
  • [22] Prediction of natural gas hydrate formation region in wellbore during deep-water gas well testing
    Zhi-yuan Wang
    Bao-jiang Sun
    Xue-rui Wang
    Zhen-nan Zhang
    Journal of Hydrodynamics, 2014, 26 : 568 - 576
  • [23] CHALLENGE OF PRODUCING OIL AND GAS IN DEEP-WATER
    VANEEK, WH
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 1978, 290 (1366): : 113 - 124
  • [24] A rare 'deep-water' coral assemblage in a shallow lagoon in Micronesia
    Muir, Paul R.
    Wallace, Carden C.
    MARINE BIODIVERSITY, 2016, 46 (03) : 543 - 544
  • [25] ABIOTIC POTENCY AND PHYSIOLOGICAL RESISTANCE OF SHALLOW AND DEEP-WATER BIVALVES
    OERTZEN, JAV
    OIKOS, 1973, : 261 - 266
  • [26] Physical climate signatures in shallow- and deep-water deltas
    Postma, G
    GLOBAL AND PLANETARY CHANGE, 2001, 28 (1-4) : 93 - 106
  • [27] SWCC FOR PREDICTING THE DIFFERENCES BETWEEN SHALLOW AND DEEP-WATER EXPLOSIONS
    HOGWOOD, N
    PROCEEDINGS : INSTITUTE OF ACOUSTICS, VOL 11, PART 5: ACOUSTICS 89, 1989, 11 : 583 - 588
  • [28] A rare ‘deep-water’ coral assemblage in a shallow lagoon in Micronesia
    Paul R. Muir
    Carden C. Wallace
    Marine Biodiversity, 2016, 46 : 543 - 544
  • [29] Development of a mobile deep-water sampling technology for polar water areas
    A. V. Zelenchuk
    V. A. Zelenchuk
    V. A. Krylenkov
    Oceanology, 2013, 53 : 750 - 754
  • [30] Development of a mobile deep-water sampling technology for polar water areas
    Zelenchuk, A. V.
    Zelenchuk, V. A.
    Krylenkov, V. A.
    OCEANOLOGY, 2013, 53 (06) : 750 - 754