DEEP REFLECTION SEISMIC DATA FOR IMPROVED IMAGING OF CRUST STRUCTURE: 2D CASE STUDY OF THE SOUTHWEST SUB-BASIN IN THE SOUTH CHINA SEA

Yuping Liu, Lijie Wang, Heng Zhang, Yunqian Lu, Fuyuan Li, Wenbin Jiang
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Abstract

Seismic imaging of crustal structures becomes difficult in the presence of rough basements or complex bathymetry. Here, we present a 900 km deep seismic reflection profile collected across the Southwest Sub-basin (SWSB) of the South China Sea. By analyzing the types and distinctions of noise and effective signals, we employed deep structure migration techniques to improve crustal structure imaging, wide-line processing to predict 3D space multiples, and F-K domain time-space variable adaptive de-ghosting and different offset stacking to enhance the weak signals reflected from deep strucutures. The imaged continental crustal structure in the Penxi Bank exhibits moderate thinning, down to 15 km, and is intersected by continental-ward low-angle normal faults. Within the limitations of the OBS P-wave velocity model, we detected sub-horizontal lower crustal reflections that may be indicative of a weak lower crust. Two small-scale rollover structures along detachment faults rooted and rafted to the top of these weak lower crust. Based on the presence of narrow continent-ocean transitions(COTs), continental-ward detachment faults, and high lithosphere heat flow, we deduced that the mantle lithosphere breakup occurred earlier than the crust in the SWSB. Moreover, the continent-ocean transitions and oceanic crust domains demonstrate rough basements with numerous faults and approximately 20% diffuse or weak Moho reflections. From the southern COT to the initial oceanic domain, the thickness of the crust gradually reduces to only 3-5 km. This suggests a relatively low magmatic budget and protracted tectonic extension from the continental breakup to the onset of seafloor spreading. Within the oceanic crust domain, the crust thickness ranges from approximately 4-6 km, indicating a thinner oceanic crust than normal crust. Lower crustal reflections with a ridge-ward dipping pattern terminate at the Moho reflections and are partly connected to syn-spreading faults, hinting at their possible generation through syn-spreading faulting.
深反射地震数据用于改进地壳结构成像:中国南海西南分盆地 2D 案例研究
在存在粗糙基底或复杂水深的情况下,地壳结构的地震成像变得十分困难。在此,我们展示了在中国南海西南分盆地(SWSB)采集的 900 千米深地震反射剖面。通过分析噪声和有效信号的类型和区别,我们采用了深部结构迁移技术来改善地壳结构成像,宽线处理来预测三维空间倍率,F-K域时空变量自适应去鬼和不同偏移叠加来增强深部结构反射的微弱信号。所成像的奔溪滩大陆地壳结构呈现中度减薄,厚度达 15 千米,并与大陆向低角度正断层相交。在 OBS P 波速度模型的限制下,我们探测到了次水平的下地壳反射,这可能表明下地壳薄弱。两个沿剥离断层的小规模褶皱结构扎根并筏踞于这些薄弱的下地壳顶部。根据狭窄的大陆-海洋过渡带(COTs)、向大陆方向的剥离断层和岩石圈高热流的存在,我们推断地幔岩石圈的断裂早于西南大陆架的地壳断裂。此外,大陆-海洋转换区和大洋地壳区显示出粗糙的基底,断层众多,约 20% 的莫霍面反射弥散或微弱。从南部大陆-海洋过渡区到最初的大洋区,地壳厚度逐渐减小到只有 3-5 公里。这表明,从大陆断裂到海底扩张开始,岩浆预算相对较低,构造延伸时间较长。在大洋地壳域内,地壳厚度约为 4-6 千米,表明大洋地壳比正常地壳薄。下地壳反射具有向脊倾斜的模式,终止于莫霍反射,部分与同步展布断层相连,暗示其可能通过同步展布断层产生。
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