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  • 1
    In: SSRN Electronic Journal, Elsevier BV
    Type of Medium: Online Resource
    ISSN: 1556-5068
    Language: English
    Publisher: Elsevier BV
    Publication Date: 2022
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  • 2
    Online Resource
    Online Resource
    Society of Exploration Geophysicists ; 2017
    In:  GEOPHYSICS Vol. 82, No. 3 ( 2017-05-01), p. A25-A29
    In: GEOPHYSICS, Society of Exploration Geophysicists, Vol. 82, No. 3 ( 2017-05-01), p. A25-A29
    Abstract: Recently, two of the authors asked the question “Is it optimal to tow air guns shallow to enhance low frequencies?” By combining recordings of signatures from sources deployed at depths from 3 to 20 m, they concluded that for an air gun array with sources at several depths, more low frequencies would be introduced into the source signature. We have found the significant and notable additional experimental result that firing a [Formula: see text] air gun at approximately 1.3 m in depth gives a broadband signature with low and high frequencies and with notable downgoing amplitude strength. The experiment was not dedicated to the 1.3 m gun depth test, and only one shot was fired at this depth. Nevertheless, we found that the air gun at approximately 1 m depth produces significantly low frequencies less than 2 Hz compared with the guns fired deeper. We suggest that very shallow firing of large volume guns is of interest for VSPs as well as for site surveys due to the high frequencies that are generated and the almost bubble free signature.
    Type of Medium: Online Resource
    ISSN: 0016-8033 , 1942-2156
    RVK:
    Language: English
    Publisher: Society of Exploration Geophysicists
    Publication Date: 2017
    detail.hit.zdb_id: 2033021-2
    detail.hit.zdb_id: 2184-2
    SSG: 16,13
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  • 3
    In: The Leading Edge, Society of Exploration Geophysicists, Vol. 35, No. 10 ( 2016-10), p. 894-904
    Abstract: Seismic apparition is a recent signal-processing advance that trades signal interference and aliasing between different spatial (and temporal) dimensions. In particular, an important application of seismic apparition is for simultaneous-source separation to better exploit the available data space in the frequency-wavenumber (f-k) domain with energy from different simultaneous sources. The introduction of periodic modulation functions in seismic acquisition produces an effect where parts of the energy of one or more sources are partially shifted to different empty parts within the f-k domain. This so-called apparated energy then can be used to perfectly predict (at low frequencies) the remaining part of the signal in the regions of the f-k domain where the wavefields from the different sources overlap and to deterministically separate the sources at predetermined (repeated) positions — a prerequisite for 4D seismic processing. At higher frequencies, the apparition separation is dealiased using directional information, taking full advantage of the perfect separation at lower frequencies to achieve the required low-error separation. To apparate seismic energy to different portions within the f-k domain, we introduce a periodic modulation function, consisting for instance of a small time delay/advance or an amplitude scaling to every second shot. Our simultaneous-source approach is thus opposite to established industry practices of maximizing randomness using dithered sources. A deterministic simultaneous-source-separation approach in which shot points and simultaneous-source patterns are repeated accurately is a major advantage over industry-standard stochastic simultaneous-source-acquisition approaches, particularly for 4D applications. We demonstrate the suitability of the seismic-apparition simultaneous-source technique to time-lapse seismic, having a permanent-reservoir-monitoring context in mind, by investigating two operational scenarios of single-vessel acquisition where two sources are excited simultaneously. Single-vessel simultaneous-source acquisition represents the most challenging case for shot separation in general and for time-lapse seismic applications in particular. The quantitative and qualitative wavefield decomposition results analyzed pre- and poststack are highly encouraging on synthetic data and warrant further testing of seismic-apparition technology in a real 4D seismic test case.
    Type of Medium: Online Resource
    ISSN: 1070-485X , 1938-3789
    Language: English
    Publisher: Society of Exploration Geophysicists
    Publication Date: 2016
    detail.hit.zdb_id: 1221792-X
    detail.hit.zdb_id: 2083479-2
    SSG: 16,13
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  • 4
    Online Resource
    Online Resource
    Oxford University Press (OUP) ; 2016
    In:  Geophysical Journal International Vol. 206, No. 2 ( 2016-08-01), p. 1301-1305
    In: Geophysical Journal International, Oxford University Press (OUP), Vol. 206, No. 2 ( 2016-08-01), p. 1301-1305
    Abstract: A new method for discrete sampling of signals is presented with specific applications to the reconstruction of recorded interfering wavefields from two or more sources excited simultaneously at discrete positions along lines. By utilizing a periodic sequence of source signatures along one of the source lines, the corresponding wavefield becomes separately visible in a part of the spectral domain where it can be isolated, processed and subtracted from the interfering wavefields. As a result, interfering wavefields from multiple sources recorded at a single location can be fully separated from each other. The concept is referred to as signal apparition which we suggest refers to ‘the act of becoming visible’. It may find applications in a wide range of disciplines relying on wave experimentation, such as acoustic, seismic and electromagnetic imaging of the Earth's interior for instance to significantly enhance resolution of subsurface images.
    Type of Medium: Online Resource
    ISSN: 1365-246X , 0956-540X
    Language: English
    Publisher: Oxford University Press (OUP)
    Publication Date: 2016
    detail.hit.zdb_id: 3042-9
    detail.hit.zdb_id: 2006420-2
    detail.hit.zdb_id: 1002799-3
    SSG: 16,13
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