东海天然气水合物的地震特征

栾锡武, 岳保静, 鲁银涛. 东海天然气水合物的地震特征[J]. 海洋地质与第四纪地质, 2006, 26(5): 91-99.
引用本文: 栾锡武, 岳保静, 鲁银涛. 东海天然气水合物的地震特征[J]. 海洋地质与第四纪地质, 2006, 26(5): 91-99.
LUAN Xi-wu, YUE Bao-jing, LU Yin-tao. SEISMIC CHARACTERISTICS OF GAS HYDRATES IN THE EAST CHINA SEA[J]. Marine Geology & Quaternary Geology, 2006, 26(5): 91-99.
Citation: LUAN Xi-wu, YUE Bao-jing, LU Yin-tao. SEISMIC CHARACTERISTICS OF GAS HYDRATES IN THE EAST CHINA SEA[J]. Marine Geology & Quaternary Geology, 2006, 26(5): 91-99.

东海天然气水合物的地震特征

  • 基金项目:

    国家自然科学基金项目(40006004)

    国家重点基础研究发展规划项目(G200004670303)

    中石化项目(wx200x)

    中国科学院海洋研究所知识创新领域前沿项目

详细信息
    作者简介: 栾锡武(1966-),男,博士,研究员,从事海洋地质地球物理研究,E-mail:xluan@ms.qdio.ac.cn
  • 中图分类号: P744.4

SEISMIC CHARACTERISTICS OF GAS HYDRATES IN THE EAST CHINA SEA

  • 使用中国科学院海洋研究所"科学一号"调查船于2001年以及20世纪80年代在东海地区采集的多道地震资料,以海域天然气水合物研究为目的,对这些资料进行了数据处理并获得了偏移地震剖面。通过对地震剖面的解释,在6条剖面上确定了6段异常反射为BSR,均有振幅强、与海底相位相反的特点。6段BSR基本上都没有出现和沉积地层相交的现象。分析认为,这与东海地区第四纪以来的沉积特征有关,并不能由此否认这些异常反射是BSR。6段BSR出现的水深为750~2 000 m,埋深在0.1~0.5 s (双程时间)之间。随着海底深度的增大,BSR埋深有增大的趋势。计算结果显示,6段BSR所处的温度和压力条件都满足水合物稳定赋存所需要的温度和压力条件。本文的BSR主要与北卡斯凯迪亚盆地以及智利海域水合物的温度、压力条件相似,而与日本南海海槽、美国布莱克海台等海域水合物的温度、压力条件相差比较大。在地震剖面上,6段BSR所处的局部构造位置都和挤压、断层有关,有利于水合物的发育;在空间上,它们主要分布在东海陆坡近槽底的位置以及与陆坡相近的槽底。在南北方向上,除分布在吐噶喇断裂和宫古断裂附近外,还与南奄西、伊平屋和八重山热液活动区相邻。热液活动和水合物虽然没有直接的成因关系,但岩浆活动为水合物气源的形成提供了热源条件,为流体和气体的运移、聚集提供了通道条件,从而有利于水合物的发育与赋存。根据地震剖面反射特征推断,剖面A1A2和A14A23发育BSR的位置应该有气体或者流体从海底流出,可能是海底冷泉发育的位置。剖面A14A23上BSR发育处,振幅比的异常增大和BSR埋深的降低是相关联的。这种关联支持该处发育海底冷泉的推测。
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收稿日期:  2006-03-01
修回日期:  2006-06-08

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