The present invention relates to a system for a marine seismic refraction survey using a remotely piloted air/water drone and a method thereof. More particularly, the present invention relates to a system for a marine seismic refraction survey using, among marine seismic survey methods, a remotely piloted air/water drone and a method thereof for acquiring a refracted wave by providing a geophone on the air/water drone.
A seismic survey is a geophysical exploration method identifying sub-surface media information by recording an artificially generated seismic wave from a seismicsource such as dynamite, a vibrator, etc. on the land, an air gun, and a sparker, a boomer, etc. on the sea, through a geophone on the land or a hydrophone, a streamer, etc. on the sea.
Referring to
On the land, seismic refraction survey may be easily conducted because the geophone is installed at the ground directly, whereas, in marine seismic refraction survey, specific data acquisition systems are required due to a constraint condition of non-stationary seawater.
Marine seismic refraction survey is carried out for engineering purposes such as constructing a structure on the sea such as a bridge, an undersea tunnel, etc., monitoring of comparison of before and after production of petroleum/gas and carbon capture and storage (CCS), and geotectonic research such as researching basin characteristics, and a seismic receiver, an acquisition system, a survey scale, etc. to be used vary accordingly.
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Referring to
(Patent Document 1) Korean Patent Application Publication No. 10-2012-0076952 (Title of the invention: Development of OBC type streamer device for marine seismic refraction method in the marine).
Accordingly, the present invention has been made keeping in mind the above problems occurring in the related art, and the object of the present invention is intended to be used for marine seismic refraction survey by providing a geophone and a recording system which can record a refracted seismic wave by an air/water drone of a remotely piloted marine observation system, whereby the present invention provides a system for a marine seismic refraction surveying using a remotely piloted air/water drone and a method thereof which can ac quire seismic refraction data.
In order to accomplish the above object, according to one aspect, the present invention provides a system for a marine seismic refraction survey using a remotely piloted air/water drone, the system including: a surveyvessel provided with a seismicsource generating a seismic wave; and an air/water drone moving tethered to the surveyvessel while floating on the sea or operating under water and being capable of moving to a desired location by generating a lift force and a turning force through remote control and recording a seismic wave, the air/water drone being provided with a geophone receiving a seismic wave which is a seismic wavegenerated from the seismicsource provided on the surveyvessel and refracted by a sea-bed.
The surveyvessel may include: the seismicsource generating the seismic wave; a triggering generation unit operating synchronized by global positioning system (GPS) time or an atomic clock to synchronize the trigger ti me of seismicsource with the recording time at the air/water drone and indicating a blasting time and a terminating time of the seismicsource; and a surveyvessel communication unit transmitting a command signal to the air/water drone and receiving the seismic wave recorded on the air/water drone in response to the command signal.
The air/water drone may include: an air/water drone communication unit receiving the command signal output from the surveyvessel and transmitting the recorded seismic wave;
a receiver receiving a seismic wave which is a sound generated from the seismicsource provided on the surveyvessel and refracted by a sea-bed or by shallow sub-surface medium of sea-bed;
a recording unit recording the received seismic wave; and
a driving unit being started up by a floating force control of an underwater operating body and generating the lift force and the turning force.
The receiver may be implemented by using any one of a hydrophone and a streamer set.
The surveyvessel and the air/water drone may communicate by radio with each other by using any one selected from communication using a global positioning system (GPS), a satellite, Wi-Fi, and ultra-high frequency (UHF).
In order to accomplish the above object, according to another aspect, the present invention provides a method for marine seismic refraction survey using a system including a surveyvessel and a remotely piloted air/water drone, the surveyvessel being provided with a seismicsource generating a seismic wave; and the air/water drone moving tethered to the survey vessel while floating on the sea or operating under water and being capable of moving to a desired location by the lift force and the turning force generated through remote control and recording a seismic wave, the air/water drone being provided with a receiver receiving a seismic wave which is a seismic wavegenerated from the seismicsource provided on the surveyvessel and refracted by a sea-bed, the method including:
after positioning the air/water drone at a predetermined location, performing a first process of blasting the seismicsource of the seismic wave along a track linepassing over the predetermined location and receiving a refracted seismic wave;
after positioning the air/water drone at a first other location spaced apart as much as a distance 1 from the predetermined location, performing a second process of blasting the seismicsource of the seismic wave along a track passing over the first other location and receiving a refracted seismic wave; and
after positioning the air/water drone at a second other location spaced apart as much as a distance 1 from the predetermined location in a direction opposite to the first other location, performing a third process of blasting the seismicsource of the seismic wave along a track passing over the second other location and receiving a refracted seismic wave.
The method may further include: recording seismic wave information surveyed through the first to third processes; and
transmitting the recorded seismic wave information in response to a command signal output from the surveyvessel in order to control a survey quality and backup the data.
The and the air/water drone may communicate by radio with each other by using any one selected from communication using the GPS, a satellite, Wi-Fi, and ultra high frequency (UHF).
Accordingly, the system for marine seismic refraction survey using the remotely piloted air/water drone and the method thereof of the present invention is to be used for marine seismic refraction survey by providing a hydrophone or a streamer and a recording system which can record data from this device on an air/water drone of a remotely piloted marine observation system, whereby seismic refraction data are acquired.
In addition, the system for marine seismic refraction survey using the remotely piloted air/water drone and the method thereof of the present invention differs from a sonobuoy system in that a sonobuoy does not need to be withdrawn to for seismic survey other locations and to precisely estimate a location due to a sea current and a tidal current, since the air/water drone has a function that is able not only to be positioned at a predetermined location but also to move to another location autonomously, which makes surveying more efficient and.
In addition, since the air/water drone may move autonomously, the system for marine seismic refraction survey using the remotely piloted air/water drone and the method thereof of the present invention has an effect of being able to carry out marine refraction survey at an area where the movement of the surveyvessel is restricted, for example, the area of shallow water depth and in polar regions having glaciers, etc.
Hereinafter, exemplary embodiments of the present invention will be described in detail with reference to the accompanying drawings. Throughout the drawings, the same reference numerals will refer to the same or like parts.
Referring to
The surveyvessel 100 is configured by including a sound source 110, a surveyvessel communication unit 120, and a triggering generation unit 130.
The seismicsource 110 generates a seismic wave. Meanwhile, the seismicsource 110 provided on the surveyvessel 100 actuates by being triggered by the triggering generation unit 130. Therefore, the surveyvessel 100 actuates not only synchronized by the triggering generation unit 130 but also synchronized with the air/water drone 200 by transmitting a system setting time thereto.
The recording unit 220 of the air/water drone 200 actuates by synchronizing time with the GPS time or an atomic clock, etc. of the surveyvessel 100, because recording should be performed for a period as long as a preset record length. That is, the triggering generation unit 130 may be the GPS time or an atomic clock, and actuates synchronized with the seismicsource 110 by using the GPS time or an atomic clock. For example, the air/water drone 200 is allowed to be able to recognize the time of initiation and termination of recording for a seismic wave, by indicating time of blasting and terminating of the sound by the triggering generation unit 130.
The air/water drone 200 floats on the sea or operates under water. The air/water drone 200 may move tethered to the seismic vessel and is preferably configured to be able to move to a desired location by generating the lift force and the turning force through remote control. The air/water drone 200 starts up by floating force control of an underwater operating body and may move by generating the lift force and the turning force by the driving unit 240.
The air/water drone 200 is composed of a receiver 210, an air/water drone communication unit 230, and a driving unit 240.
The receiver 210 receives a seismic wave generated from the seismicsource 110 provided on the surveyvessel 100 and refracted by a sea-bed. The geophone 210 may be implemented by using any one of a hydrophone and a streamer set.
A recording unit 220 of the air/water drone 200 records a received seismic wave generated from the seismicsource 110 provided on the surveyvessel 100 and refracted by a sea-bed. An air/water drone communication unit 230 transmits seismic wave information of survey data to the surveyvessel 100 once it receives a command signal output from the surveyvessel 100 in order for the surveyvessel to be able to monitor in real time to confirm that recording of the seismic wave is smoothly performed at the recording unit 220.
Meanwhile, a surveyvessel communication unit 120 of the surveyvessel 100 and an air/water drone communication unit 230 of the air/water drone 200 transmit and receive by radio communication the command signal and the recorded seismic wave, wherein any one means selected from communication using GPS, a satellite, Wi-Fi, and ultra-high frequency (UHF) may be used for radio communication.
Referring to
At step S204, after positioning the air/water drone 200 at a first other location spaced apart as much as a distance 1 from the predetermined location, the seismic is blasted along the track line passing the first other location (spot B) and the refracted seismic wave is received.
At step S206, after positioning the air/water drone 200 at a second other location (spot C) spaced apart as much as a distance 1 from the predetermined location in a direction opposite to the opposite direction of the first other location, the seismic source is blasted along the track passing the first other location (spot B) and the refracted seismic wave is received.
Referring to
At step S204, the air/water drone 200 is positioned at the spot B the spaced apart as much as a distance 1 from the spot A and survey is performed.
At step S206, a process is illustrated such that the air/water drone 200 is positioned at the spot C spaced apart as much as a distance 1 from the spot A to the opposite direction of the spot B and survey is performed.
Referring to
The seismic wave recorded in recording step at step S210 is transmitted to the surveyvessel 100 in response to the command signal output from the surveyvessel 100.
The communication by which the surveyvessel 100 and the air/water drone 200 transmit and receive the command signal and the seismic wave information may be implemented by using any one selected from communication using the GPS, a satellite, Wi-Fi, and ultra high frequency (UHF).
Meanwhile, the air/water drone 200 which is one long-term marine observation system moves by controlling floating force without a propulsion system and, therefore, needs a small amount of power whereby various marine observation data such as water temperature, salinity, etc. may be collected in the long term. The air/water drone 200 may be positioned at a predetermined location and has a function to move to a desired location by the driving unit 230. Therefore, after providing a hydrophone or streamer as a receiver 210 which may receive a seismic wave signal in the air/water drone 200, once a seismic recording instrument which may record the seismic wave is provided, seismic refraction survey which may replace sonobuoy may be performed.
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Since the air/water drone 200 has a function to be positioned at a predetermined location and a function to move to a desired location autonomously by the driving unit 230, the air/water drone 200 differs from a sonobuoy system in that a sonobuoy does not need to be withdrawn to for survey other locations and to estimate precise location due to a sea current and a tidal current.
In addition, since the air/water drone 200 may move autonomously, marine refraction survey may be performed at an area where the movement of the surveyvessel is restricted, for example, the area in shallow water depth and polar region with glaciers, etc.
Since the recording unit 220 of the air/water drone 200 should record for a period of as much as record length being set once the seismic wave is blasted from the seismicsource, it should have a function to synchronize time with the GPS time or an atomic clock, etc. Thus, the received seismic wave should be recorded once the seismicsource is blasted. In addition, the recording system should have a function to transmit the survey data by radio communication for the surveyvessel to be able to monitor in real time to confirm that recording of the seismic wave is smoothly performed at the recording instrument of the air/water drone.
Referring to
Although a preferred embodiment of the present invention as illustrated in the accompanying drawings has been described for illustrative purposes, those skilled in the art will appreciate that various modifications and another comparable embodiments are possible. Accordingly, the scope of the true technical protection should be defined based on the technical spirit of the invention as disclosed in the accompanying claims.
Number | Date | Country | Kind |
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10-2016-0182531 | Dec 2016 | KR | national |