Data processing and interpretation schemes for a deep-towed high-frequency seismic system for gas and hydrate exploration

被引:5
|
作者
Hutapea, Fernando Lawrens [1 ,2 ,3 ]
Tsuji, Takeshi [1 ,2 ,4 ]
Katou, Masafumi [5 ,6 ]
Asakawa, Eiichi [5 ]
机构
[1] Kyushu Univ, Dept Earth Resources Engn, Nishi Ku, 744 Motooka, Fukuoka 8190395, Japan
[2] Kyushu Univ, Int Inst Carbon Neutral Energy Res WPI I2CNER, Nishi Ku, 744 Motooka, Fukuoka 8190395, Japan
[3] Inst Technol Bandung, Explorat & Engn Seismol Res Grp, Bandung 40116, Indonesia
[4] Kyoto Univ, Disaster Prevent Res Inst, Uji, Kyoto 6110011, Japan
[5] J MARES JGI Inc, Bunkyo Ku, Meikei Bldg,1-5-21 Otsuka, Tokyo 1120012, Japan
[6] Japan Oil Gas & Met Natl Corp JOGMEC, Mihama Ku, 1-2-2 Hamada, Chiba 2610025, Japan
关键词
Deep-towed seismic survey; Seismic attributes; High-frequency seismic data processing; Source-receiver depth correction; Gas and hydrate exploration; HIGH-RESOLUTION; EASTERN MARGIN; JOETSU BASIN; SIDE LOBES; JAPAN; ATTRIBUTES; OFFSHORE; AREA; SEA; RESERVOIRS;
D O I
10.1016/j.jngse.2020.103573
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The deep-towed Autonomous Cable Seismic (ACS) system is a high-resolution acoustic survey system designed for use in deep-water environments. This system uses a high-frequency acoustic source and a multichannel receiver cable. A common problem in the analysis of deep-towed ACS data is the unstable positioning of the source and receivers due to ocean currents and seafloor bathymetry. Since the data acquisition using high-frequency source with unstable source-receiver positions causes destructive interference on the final stack profile, correction of the unstable source-receiver is a crucial issue. In this study, we propose a method to solve the unstable source-receiver position problem and thus to construct an accurate final stack profile. We used deep-towed ACS data acquired in the Joetsu Basin in Niigata, Japan, where hydrocarbon features in the form of gas chimneys, gas hydrate, and free gas have been observed. Because sidelobes in the ACS source signature defocus the source wavelet and decrease the bandwidth frequency content, we designed a filter to focus the source signature. Our proposed approach considerably improved the quality of the final stack profile. Even though depth information was not available for all receivers, the velocity spectra in the velocity analysis were well focused. Furthermore, shaping the source wavelet considerably increased the bandwidth frequency of the source signature. We applied seismic attribute analysis to the post-stack profile to identify the distributions of free gas and hydrate. Our seismic attribute analyses for the high-frequency ACS data demonstrated that free gas accumulations are characterized by low reflection amplitude and an unstable frequency component, and that hydrate close to the seafloor can be identified by its high reflection amplitude.
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页数:14
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  • [1] Application of deep-towed multichannel seismic system for gas hydrate on mid-slope of northern Cascadia margin
    FanDa Kong
    Tao He
    George D. Spence
    [J]. Science China Earth Sciences, 2012, 55 : 758 - 769
  • [2] Application of deep-towed multichannel seismic system for gas hydrate on mid-slope of northern Cascadia margin
    George D.SPENCE
    [J]. Science China Earth Sciences, 2012, 55 (05) : 758 - 769
  • [3] Application of deep-towed multichannel seismic system for gas hydrate on mid-slope of northern Cascadia margin
    Kong FanDa
    He Tao
    Spence, George D.
    [J]. SCIENCE CHINA-EARTH SCIENCES, 2012, 55 (05) : 758 - 769
  • [4] Accurate Source-Receiver Positioning Method for a High-Resolution Deep-Towed Multichannel Seismic Exploration System
    LI Jing
    LIU Kai
    WEI Zhengrong
    ZHANG Liancheng
    LIU Yangting
    PEI Yanliang
    LIU Chenguang
    LIU Baohua
    [J]. Journal of Ocean University of China, 2024, 23 (02) : 415 - 426
  • [5] Accurate Source-Receiver Positioning Method for a High-Resolution Deep-Towed Multichannel Seismic Exploration System
    Li, Jing
    Liu, Kai
    Wei, Zhengrong
    Zhang, Liancheng
    Liu, Yangting
    Pei, Yanliang
    Liu, Chenguang
    Liu, Baohua
    [J]. JOURNAL OF OCEAN UNIVERSITY OF CHINA, 2024, 23 (02) : 415 - 426
  • [6] Data processing of the Kuiyang-ST2000 deep-towed high-resolution multichannel seismic system and application to South China Sea data
    Pei, Yanliang
    Wen, Mingming
    Wei, Zhengrong
    Liu, Baohua
    Liu, Kai
    Kan, Guangming
    [J]. JOURNAL OF OCEANOLOGY AND LIMNOLOGY, 2023, 41 (02) : 644 - 659
  • [7] Data processing of the Kuiyang-ST2000 deep-towed high-resolution multichannel seismic system and application to South China Sea data
    Yanliang PEI
    Mingming WEN
    Zhengrong WEI
    Baohua LIU
    Kai LIU
    Guangming KAN
    [J]. Journal of Oceanology and Limnology, 2023, 41 (02) : 644 - 659
  • [8] Data processing of the Kuiyang-ST2000 deep-towed high-resolution multichannel seismic system and application to South China Sea data
    Yanliang Pei
    Mingming Wen
    Zhengrong Wei
    Baohua Liu
    Kai Liu
    Guangming Kan
    [J]. Journal of Oceanology and Limnology, 2023, 41 : 644 - 659
  • [9] Development of a high-resolution deep-towed multi-channel seismic exploration system: Kuiyang ST2000
    Pei, Yanliang
    Wen, Mingming
    Zhang, Liancheng
    Yu, Kaiben
    Kan, Guangming
    Zong, Le
    Wei, Zhengrong
    Liu, Baohua
    Yan, Keping
    [J]. JOURNAL OF APPLIED GEOPHYSICS, 2022, 198
  • [10] Fine-scale gas distribution in marine sediments assessed from deep-towed seismic data
    Ker, S.
    Le Gonidec, Y.
    Marsset, B.
    Westbrook, G. K.
    Gibert, D.
    Minshull, T. A.
    [J]. GEOPHYSICAL JOURNAL INTERNATIONAL, 2014, 196 (03) : 1466 - 1470