Seismic survey method
Abstract
A method of performing a 3-D seismic survey operation using (i) a plurality of vibroseis sources, and (ii) an array of seismic sensors arranged within a survey area wherein each vibroseis source emits a distinctive acoustic signal and each seismic sensor of the array is in a continuous state of readiness to detect reflected acoustic signals, the method comprising: (a) assigning vibroseis points (VPs) to each of the vibroseis sources; (b) independently moving each vibroseis source to assigned vibroseis point (VPs) where the vibroseis source emits its distinctive acoustic signal independently in time of the emission of the distinctive acoustic signals of the other vibroseis sources at their assigned vibroseis points (VPs); (c) recording the emission time of the distinctive acoustic signal by each vibroseis source at its assigned VPs together with the geographic position of the assigned VPs; (d) continuously listening for reflected acoustic signals using the array of seismic sensors and recording a time domain record of the reflected acoustic signals received by each seismic sensor of the array; wherein the reflected acoustic signals associated with the emission of a distinctive acoustic signal by a vibroseis source at an assigned VP are determined by: (i) extracting the reflected acoustic signals from the time domain records for the seismic sensors of the array during a predetermined listening time associated with the emission of the distinctive acoustic signal by the vibroseis source at the assigned VP; (ii) cross-correlating the extracted reflected acoustic signals with the distinctive emitted acoustic signal for the vibroseis source at the assigned VP thereby eliminating weakly correlated signals; and (iii) attenuating randomised cross-contamination in the cross-correlated extracted reflected acoustic signals from step (ii) using random noise attenuation techniques.
Claims
exact text as granted — not AI-modified1 - 14 . (canceled)
15 . A method of performing a 3-D seismic survey operation using (i) a plurality of vibroseis sources, and (ii) an array of seismic sensors arranged within a survey area wherein each vibroseis source emits a distinctive acoustic signal and each seismic sensor of the array is in a continuous state of readiness to detect reflected acoustic signals, the method comprising:
(a) assigning vibroseis points (VPs) to each of the vibroseis sources; (b) independently moving each vibroseis source to assigned vibroseis point (VPs) where the vibroseis source emits its distinctive acoustic signal independently in time of the emission of the distinctive acoustic signals of the other vibroseis sources at their assigned vibroseis points (VPs); (c) recording the emission time of the distinctive acoustic signal by each vibroseis source at its assigned VPs together with the geographic position of the assigned VPs; (d) continuously listening for reflected acoustic signals using the array of seismic sensors and recording a time domain record of the reflected acoustic signals received by each seismic sensor of the array;
wherein the reflected acoustic signals associated with the emission of a distinctive acoustic signal by a vibroseis source at an assigned VP are determined by:
(i) extracting the reflected acoustic signals from the time domain records for the seismic sensors of the array during a predetermined listening time associated with the emission of the distinctive acoustic signal by the vibroseis source at the assigned VP;
(ii) cross-correlating the extracted reflected acoustic signals with the distinctive emitted acoustic signal for the vibroseis source at the assigned VP thereby eliminating weakly correlated signals; and
(iii) attenuating randomised cross-contamination in the cross-correlated extracted reflected acoustic signals from step (ii) using random noise attenuation techniques.
16 . A method as claimed in claim 15 wherein the distinctive acoustic signal that is emitted by each vibroseis source is of swept frequency form having a range of frequencies in the range 10 Hz to 100 Hz and a duration of 10 to 20 seconds with the proviso that the signal bandwidth, signal spectrum and total energy of the acoustic signals emitted by each vibroseis source are substantially the same.
17 . A method as claimed in claim 15 wherein each vibroseis source comprises a single vibrator or a plurality of vibrators that emit a coordinated acoustic signal.
18 . A method as claimed in claim 15 wherein (a) the emission time of the distinctive acoustic signal at an assigned VP, (b) the characteristics of the distinctive emitted acoustic signal, and (c) the precise geographic position of the VP (“source data”), are determined and recorded on either a dedicated recorder for the vibroseis source or a central recording unit.
19 . A method as claimed in claim 15 wherein each vibroseis source is provided with global positioning satellite (GPS) equipment for determining the precise geographic position of the VP.
20 . A method as claimed in claim 18 wherein each vibroseis source is provided with a highly accurate digital clock synchronised to GPS time for determining the emission times of the distinctive acoustic signals.
21 . A method as claimed in claim 19 wherein each vibroseis source is provided with a highly accurate digital clock synchronised to GPS time for determining the emission times of the distinctive acoustic signals.
22 . A method as claimed in claim 15 wherein the vibroseis source is a vibroseis truck having a vibratory pad for transmitting the distinctive acoustic signal.
23 . A method as claimed in claim 22 wherein the vibroseis trucks navigate from VP to VP in the survey area using a GPS receiver in each of the trucks.
24 . A method as claimed in claim 15 wherein (a) each seismic sensor of the array is provided with a dedicated recorder for recording a time domain record of the reflected acoustic signals detected by the seismic sensor or (b) a group of seismic sensors is provided with a dedicated recorder for recording the time domain records of the reflected acoustic signals received by each of the seismic sensors of the group.
25 . A method as claimed in claim 15 wherein the time domain records of the reflected acoustic signals detected by the seismic sensors of the array are recorded at a central recording unit.
26 . A method as claimed in claim 25 wherein the central recording unit also records (a) the emission time of the distinctive acoustic signal at its assigned VP, (b) the characteristics of the distinctive emitted acoustic signal, and (c) the precise geographic position of the assigned VP (“source data”), and wherein the central recording unit also performs the extraction and cross-correlation of the reflected acoustic signals and records the extracted and correlated reflected acoustic signals in the form of a time domain record.
27 . A method as claimed in claim 15 wherein the seismic sensors of the array are geophones or accelerometers that are arranged in rows to form a grid.
28 . A method as claimed in claim 24 wherein the data stored on the dedicated recorders for the seismic sensors together with source data stored on either dedicated recorders for the vibroseis sources or on a central recording unit are downloaded into a computer at a seismic processing centre which performs the extraction, cross-correlation and further processing of the cross-correlated data using random noise attenuation techniques to attenuate the randomised cross-correlation in the extracted reflected acoustic signals.
29 . A method as claimed in claim 27 wherein the data stored on the dedicated recorders for the seismic sensors together with source data stored on either dedicated recorders for the vibroseis sources or on a central recording unit are downloaded into a computer at a seismic processing centre which performs the extraction, cross-correlation and further processing of the cross-correlated data using random noise attenuation techniques to attenuate the randomised cross-correlation in the extracted reflected acoustic signals.
30 . A method as claimed in claim 26 wherein the extracted and cross-correlated time domain records recorded on the central recording unit are downloaded into a computer at a seismic processing centre which further processes the data using random noise attenuation techniques to attenuate the randomised cross-correlation in the extracted reflected acoustic signals.
31 . A method as claimed in claim 27 wherein the extracted and cross-correlated time domain records recorded on the central recording unit are downloaded into a computer at a seismic processing centre which further processes the data using random noise attenuation techniques to attenuate the randomised cross-correlation in the extracted reflected acoustic signals.Join the waitlist — get patent alerts
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