The present invention relates to underwater acoustic source positioning system and method.
It is an increasingly demanded requirement that individual gun clusters are positioned as accurately as possible for high end surveys and geophysical techniques.
Underwater reflective targets are typically acoustic reflectors, which are generally used in sonar systems such as, for example sonar bells, for identifying and accurately locating underwater objects. Conventional reflective targets are cylindrical, bell-shaped, or spherical, or hemispherical. An acoustic reflector is suitable for use as a reflective target in marine seismic surveys to generate acoustic signals with source location and re-location applications. In order to be effective an acoustic reflector needs to be capable of producing strong reflected acoustic signals relative to the strength of the acoustic energy reflected off strategically positioned targets on the gun clusters and distinguishable from other false targets.
U.S. patent application Ser. No. 11/795,211 discloses an acoustic reflector suitable for use as a reflective target for navigational aids and for location and re-location applications.
U.S. patent application Ser. No. 13/976,234 discloses a method of identifying and locating an underwater reflector, the method includes the step of measuring the acoustic diameter of an object and comparing that diameter with known acoustic diameters for underwater acoustic reflectors that may be present in the search area, and thus accepting or rejecting the reflected acoustic wave as being one potentially of interest. Where the total target strength of an echo is measured and the echo is rejected as potentially coming from an underwater acoustic reflector of interest if the target strength is less than a predetermined minimum. The target is being rejected as being an acoustic reflector of interest if the measured characteristics do not match the known characteristics of a reflector of interest.
However, this existing solution is not related to Seismic Source positioning applications; it is also not related to moving equipment that is under tow by the same vessel that is surveying effectively its own surveying equipment.
The current technique to position the gun clusters provides inaccurate positioning measurements due to numerous assumptions such as relying on known fixed offsets to position moving underwater gun clusters. Further, underwater acoustic energy sources positioning is inaccurate due to high dynamics and geometry. Further, underwater acoustic sensor is not co-located with surface Global Navigation Satellite System (GNSS) sensors and may be positioned on a flexible chain or rope or beam. The air gun, which includes several gun clusters, each submersed in water and suspended from a flotation device that supports the gun clusters is flexible and approximately 15 meter long. Further, the gun clusters are placed on the chains, having variable depth ropes. Further, the angle of towing direction of the gun clusters varies while dragging in the water i.e. the angle of tow is totally dependent on water speed and currents.
Therefore, there is need for the present invention in Seismic high-end surveys where extreme source positioning accuracy is required. The present invention provides a system and method that allows for accurate positioning of the sonar bells irrespective of gun depth and float arrangements. To position the individual gun clusters, the present invention proposes the use of unique signature reflectors, which will be captured by an AHRS Integrated transducer.
In particular, the invention provides a system and methods that allows for accurate positioning of the sonar bells irrespective of gun depth and float arrangements. Further, the acoustic sensors and reflectors are positioned with fixed offsets on rigid parts rather than assumptions of offsets on flexible components.
In one embodiment, the present invention provides an active-passive acoustic source positioning within each air gun string includes a large float (approximately 15 meter) on which a cross-section stiff tube houses RGPS pods and AHRS acoustic sensors in one axis. The RGPS pods are configured to transmit surface positioning to the surface vessel, and the AHRS acoustic sensor is configured to register the motion (attitude) while in the same axis as the RGPS surface positioning device as well as transmit-receive the echo (position) from the passive reflectors placed on each of the gun clusters. The passive reflectors are reflective nodes. Further, in the lower structure of each gun string there are a number of gun clusters. On each of the gun clusters, a set of reflective nodes are positioned to provide the passive gun cluster position.
In one embodiment, the RGPS pods and AHRS acoustic sensor are “co-located” on the stiff tube, creating an axis in the cross-line vertical plane centre of the gun float, wherein the RGPS pod is positioned on a top side (on surface) of the stiff tube and an AHRS acoustic sensor is positioned on bottom side (underwater) of the stiff tube. The RGPS pods and AHRS acoustic sensors are positioned in the same axis sharing the same rigging structure on the said stiff tube, which is integrated in the gun float.
In one embodiment, the AHRS acoustic sensors include an attitude sensor allowing any tilt to be identified and corrected.
The reflective nodes are positioned along each gun string on each gun cluster position. In one embodiment, the reflective nodes are positioned with fixed offset from the center of the each gun cluster. Further in one embodiment, the positioning is resistant to air gun firing forces. Further in one embodiment, the gun clusters are fixed with the stiff tube through a fixed structure. Further in one embodiment, the reflective nodes are positioned with fixed known offsets on each individual gun cluster.
In another embodiment, the data transmission from the said integrated RGPS pods and AHRS acoustic sensors is through radio or wire to the communications unit on the surface vessel.
In another embodiment, a method of passive acoustic source positioning of sea-going platforms is disclosed. The method includes surface positioning by means of RGPS pods and the link to underwater positioning by means of an AHRS acoustic sensor on a fixed structure, with a fixed offset, for example a stiff tube. Positioning each gun cluster will be achieved by directing the sonar impulse from the AHRS to each of the reflective nodes that are positioned along the gun string in the gun cluster. Further, the RGPS pods and AHRS acoustic sensors are positioned in the same axis sharing the same rigging structure on the stiff tube.
In another embodiment, the method of operation differs from the existing methods in that the positioning equipment located in the gun clusters/individual air guns is passive. This allows the strategic precise location of this equipment in places where any active system would likely get premature damage or provides unusable data.
In another embodiment, the method of operation differs from utilization of a combination of off the shelf products and technologies to an end not previously explored.
The present disclosure may be better understood by reference to one or more of these drawings in combination with the detailed description presented herein;
and
In the following description, numerous details are set forth to provide an understanding of the present disclosure. However, it will be understood by those skilled in the art that the present disclosure may be practiced without these details and that numerous variations or modifications from the described embodiments are possible.
The present disclosure provides a system and method for accurate positioning of the sonar bells irrespective of gun depth and float arrangements. Further, the disclosure provides source positioning with known fixed offsets to position the underwater gun clusters on rigid parts rather than assumptions of offsets on flexible components.
The invention will be explained with reference to the drawings.
In one embodiment, the RGPS pods 125 and AHRS acoustic sensor 130 are “co-located” on the stiff tube 121, creating an axis in the cross-line vertical plane center of the gun float 132. The stiff tube 121 is a rigid part that provides a fixed structure in source positioning. A RGPS pod 125 is positioned on the top side of the stiff tube 121; and an AHRS acoustic sensor 130 is positioned on the bottom side of the stiff tube 121. As shown in the
Further a mounting structure 134, where the air guns as well as other sensors and cables are attached via chains 136 (as shown in
As shown in the
The data transmission form the integrated RGPS pods 125 and AHRS acoustic sensor 130 is through radio or wire to a communications unit on the surface vessel (not shown).
In various embodiments, a method of passive acoustic source positioning of sea-going platforms is disclosed. The method comprises positioning RGPS pods 125 and AHRS acoustic 130 sensor on a fixed surface for example a stiff tube 121, positioning a gun strings 131 with said RGPS pods 125 and AHRS acoustic sensors 130 with fixed offset and positioning a set of reflective nodes 137 along each gun string 131 on each gun cluster 135 position. Further, the RGPS pods 125 and AHRS acoustic sensors 130 are positioned in the same axis sharing the stiff tube 121 on the same rigging structure 124. Further positioning of said reflective nodes 137 along each gun string 131 on each gun cluster 135 positions with fixed offsets to the gun clusters 135.
The proposed method of operation differs from the existing methods in that the positioning equipment is passive. This allows the strategic precise location of this equipment in places where any active system would likely get premature damage or unusable data.
It should be apparent to persons skilled in the arts that various modifications and adaptation of this structure described above are possible without departure from the spirit of the invention the scope of which is defined in the appended claim.
Number | Date | Country | Kind |
---|---|---|---|
20171338 | Aug 2017 | NO | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/NO2018/050202 | 8/7/2018 | WO | 00 |