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煤炭高密度空间采样地震勘探方法研究及应用效果 被引量:8
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作者 郑向东 高宇平 +3 位作者 刘胜 程增庆 田雪丰 牛鹏程 《中国煤炭地质》 2008年第11期50-52,共3页
高密度空间采样地震勘探技术在野外采用单点激发、单点接收,可有效避免野外组合时差对高频的影响及组合产生的接收各向异性问题,并有利于室内对规则干扰进行压制。通过开展高密度空间采样试验,对高密度勘探技术中空间采样密度与分辨率... 高密度空间采样地震勘探技术在野外采用单点激发、单点接收,可有效避免野外组合时差对高频的影响及组合产生的接收各向异性问题,并有利于室内对规则干扰进行压制。通过开展高密度空间采样试验,对高密度勘探技术中空间采样密度与分辨率的关系,高密度激发技术、静校正、高保真室内组合方法、噪声压制方法及三维去噪最小数据集抽取方法等关键技术进行了总结。以HNDJ区的高密度地震勘探项目为例,高密度地震勘探获得的新剖面,其各煤层的反射特征都比过去普通三维资料有明显提高,特别是T4波。对该区的高密度空间采样数据利用多种地震属性对断层进行识别,新发现6~8m的断层2条,尤其2m断距的断层显示的也非常清晰,实例表明高密度空间采样地震勘探技术,可提高地震勘探的成像精度。 展开更多
关键词 高密度空间采样 观测系统设计分辨率 高密度激发技术 三维地震
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Turbulent hydrodynamics experiments in high energy density plasmas: scientific case and preliminary results of the TurboHEDP project 被引量:2
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作者 A. Casner G. Rigon +13 位作者 B. Albertazzi Th. Michel T. Pikuz A. Faenov P. Mabey N. Ozaki Y. Sakawa T. Sano J. Ballet P. Tzeferacos D. Lamb E. Falize G. Gregori M. Koenig 《High Power Laser Science and Engineering》 SCIE CAS CSCD 2018年第3期50-64,共15页
The physics of compressible turbulence in high energy density(HED) plasmas is an unchartered experimental area.Simulations of compressible and radiative flows relevant for astrophysics rely mainly on subscale paramete... The physics of compressible turbulence in high energy density(HED) plasmas is an unchartered experimental area.Simulations of compressible and radiative flows relevant for astrophysics rely mainly on subscale parameters. Therefore,we plan to perform turbulent hydrodynamics experiments in HED plasmas(TurboHEDP) in order to improve our understanding of such important phenomena for interest in both communities: laser plasma physics and astrophysics. We will focus on the physics of supernovae remnants which are complex structures subject to fluid instabilities such as the Rayleigh–Taylor and Kelvin–Helmholtz instabilities. The advent of megajoule laser facilities, like the National Ignition Facility and the Laser Megajoule, creates novel opportunities in laboratory astrophysics, as it provides unique platforms to study turbulent mixing flows in HED plasmas. Indeed, the physics requires accelerating targets over larger distances and longer time periods than previously achieved. In a preparatory phase, scaling from experiments at lower laser energies is used to guarantee the performance of future MJ experiments. This subscale experiments allow us to develop experimental skills and numerical tools in this new field of research, and are stepping stones to achieve our objectives on larger laser facilities. We review first in this paper recent advances in high energy density experiments devoted to laboratory astrophysics. Then we describe the necessary steps forward to commission an experimental platform devoted to turbulent hydrodynamics on a megajoule laser facility. Recent novel experimental results acquired on LULI2000, as well as supporting radiative hydrodynamics simulations, are presented. Together with the development of LiF detectors as transformative X-ray diagnostics, these preliminary results are promising on the way to achieve micrometric spatial resolution in turbulent HED physics experiments in the near future. 展开更多
关键词 high energy density physics inertial confinement fusion laboratory astrophysics plasmas astrophysics
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