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Seismic analysis of the gas hydrate system at Pointer Ridge offshore SW Taiwan

机译:指针岭岸边SW台湾天然气水合物系统的地震分析

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Pointer Ridge is a gas hydrate prospect on the South China Sea continental slope offshore SW Taiwan. It is characterized by densely distributed bottom simulating reflections (BSRs), active gas seepage, and potential sandy gas hydrate reservoirs. To understand how the fluids have migrated toward the seafloor, and the role of geological processes in the gas hydrate system, we have collected and analyzed high-quality 2D and 3D reflection seismic data. We first mapped the spatial distribution of the BSRs, and interpreted a major normal fault, Pointer Ridge Fault (PR Fault). The NE-SW trending fault dips to the east, and separates the erosional regime to the west from the depositional regime to the east. One active vent site was identified directly above the PR Fault, while another is located on a topographic high to the west of the fault. On the hanging block of the fault we found at least one major unconformity. The seismic data indicate refilled channels with coarser-grained sediments in the hanging wall of the normal fault. Seismic attribute analysis shows subsurface fluid conduits and potential gas hydrate reservoirs. We propose two types of gas chimneys, which are separated by the fault. Gas plumes derived from hydroacoustic data are mostly from the footwall block of the fault. We infer that fluid flow is more active in the erosional environment compared to the depositional one, and that this is the result of reduced overburden. The methane-bearing fluids migrate upward along the PR Fault and chimneys and form hydrates above the base of the gas hydrate stability zone. Based on seismic interpretation and seismic attribute analysis, we postulate that the channel infill constitutes the most promising hydrate reservoirs in this geological setting. In the surveyed area of Pointer Ridge these channels occur mainly below the gas hydrate stability zone.
机译:指针岭是南海大陆坡海上航海山区的天然气水合物前景。其特征在于密集地分布底部模拟反射(BSR),活性气体渗流和潜在的砂质天然气水合物储存器。为了了解流体如何迁移到海底,以及地质过程在天然气水合物系统中的作用,我们收集和分析了高质量的2D和3D反射地震数据。我们首先映射了BSR的空间分布,并解释了一个重大的正常故障,指针脊故障(PR故障)。 Ne-SW Trending Fault Dips向东倾斜,并将侵蚀政权与东方的沉积政权分开。一个有效的通风网站是直接在PR故障的上方识别的,而另一个有效的通风网站位于故障以西的地形高。在故障的悬挂块上,我们发现至少一个主要的无关。地震数据表示垂直故障悬挂墙中的粗糙沉积物的重新填充通道。地震属性分析显示了地下流体管道和潜在的天然气水合物储层。我们提出了两种类型的气体烟囱,其被故障分开。来自水声数据的气体羽毛主要来自故障的脚壁块。与沉积的一个相比,我们推断流体流量在侵蚀环境中更为活跃,这是减少过载的结果。甲烷的流体沿着PR故障和烟囱向上迁移,并在气水水合物稳定区的基部上方形成水合物。基于地震解释和地震属性分析,我们假设通道填充物在该地质环境中构成最有前途的水合物储层。在受测量的指针脊的区域中,这些通道主要在气水合物稳定区以下发生。

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