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A new seismic daylight imaging method for determining the structure of lithospheric discontinuity 被引量:1
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作者 Weijia SUN Liyun FU +1 位作者 Wei WEI Qingya TANG 《Science China Earth Sciences》 SCIE EI CAS CSCD 2019年第2期473-488,共16页
The fine-scale structures of lithosphere discontinuities contain important information on the dynamics of lithosphere formation, development, transformation, and destruction. In this paper, a new seismic daylight imag... The fine-scale structures of lithosphere discontinuities contain important information on the dynamics of lithosphere formation, development, transformation, and destruction. In this paper, a new seismic daylight imaging method is developed to explore the small-scale structures of lithosphere discontinuities. This method makes use of the P-wave first arrival and coda in the 0.5–4 Hz high frequency band of teleseismic events, and reaches a resolution of 2 km for lithosphere discontinuities. This method rests on the basic principle that the autocorrelation of the vertically incident transmission response below the seismic station is equivalent to the reflection response with the source and station both on the free surface. The transmission responses include the first-arrival P-waves below the station traversing the discontinuities to reach the free surface, and the multiple reflections between the free surface and the discontinuities. In this study, the normal incidence requirement of the method is further extended to include dip incidence illumination, which expands its applicability. The accuracy and feasibility of the seismic daylight imaging (SDI) theory are verified by synthesized theoretical seismograms, and the factors affecting the imaging results are discussed. The data processing steps and the interpretation criteria for the method are also given. The fine-scale lithosphere structure of two permanent stations at the eastern North China Craton is determined by the method described here, as well as instantaneous frequency. Clear discontinuities are found in the lithospheric mantle at 52 and 75 km below the two stations, respectively. Seismic daylight imaging and the receiver function reveal a more consistent lithosphere structure beneath the MBWA permanent station of the West Australia Craton, with the unmistakable presence of the lithosphere discontinuities.High-frequency SDI can be used to detect the fine-scale lithospheric structures. As its waveform is more complex, and hence appropriate reference to existing seismological information, such as from tomographic velocity inversion and the receiver function, is recommended. 展开更多
关键词 LITHOSPHERE discontinuITY mid-lithosphere discontinuITY SEISMIC DAYLIGHT imaging AUTOCORRELATION
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岩石圈中部不连续面的成因及其动力学意义 被引量:10
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作者 徐义贤 郑建平 +1 位作者 杨晓志 夏群科 《科学通报》 EI CAS CSCD 北大核心 2019年第22期2305-2315,共11页
地球物理和岩石地球化学研究揭示岩石圈地幔在物性和化学组成上极为不均一,保存了地球演化的大量记录.近20年来的地震学探测结果,指示大陆岩石圈中部广泛存在速度不连续面,大多表现为速度明显降低的梯度带,与各向异性和地幔浅部的高导... 地球物理和岩石地球化学研究揭示岩石圈地幔在物性和化学组成上极为不均一,保存了地球演化的大量记录.近20年来的地震学探测结果,指示大陆岩石圈中部广泛存在速度不连续面,大多表现为速度明显降低的梯度带,与各向异性和地幔浅部的高导层有较好的一致性,主要分布在60~120 km深度.但是,其成因目前尚未形成共识.在经典板块构造的框架内,基于已有的对岩石圈和岩石圈-软流圈边界的认识,我们追溯了岩石圈中部不连续面的地球物理探测历程及其主要结果,给出了地震学定义的岩石圈中部不连续面的矿物岩石学解释和大地电磁资料提供的电性约束信息.在梳理目前的主要解释模型后,重点介绍了岩石圈中部不连续面是"冻结的"大洋岩石圈-软流圈边界的观点,并进一步拓展为一种工作模型-动态演化的LAB模型,依此讨论了这一解释模型潜在的重要动力学意义.我们认为,对岩石圈中部不连续面开展多学科的综合研究,有可能为突破经典板块构造假说提供新的机会,中亚显生宙增生型岩石圈和华北板块岩石圈是研究这一问题极好的天然实验室. 展开更多
关键词 岩石圈中部不连续面 负速度梯度带 高导层 各向异性 含水矿物 板块构造
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Layering of subcontinental lithospheric mantle 被引量:16
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作者 Ling Chen 《Science Bulletin》 SCIE EI CAS CSCD 2017年第14期1030-1034,共5页
Recent seismic studies reveal a sharp velocity drop mostly at^70–100 km depth within the thick mantle keel beneath cratons, termed the mid-lithosphere discontinuity(MLD). The common presence of the MLD in cratonic re... Recent seismic studies reveal a sharp velocity drop mostly at^70–100 km depth within the thick mantle keel beneath cratons, termed the mid-lithosphere discontinuity(MLD). The common presence of the MLD in cratonic regions indicates structural and property layering of the subcontinental lithospheric mantle(SCLM). The nature and origin of the MLD, and many issues associated with the layering of the SCLM are essential to understand the formation and evolution of continents, and have become frontier subjects in the Earth sciences. 展开更多
关键词 mid-lithosphere discontinuity Lithosphere-asthenosphere boundary Subcontinental lithospheric mantle Formation and evolution of continents
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