SYSTEM AND METHOD FOR ADJUSTING THE ROPE SPREAD OF SEISMIC STREAMERS
20170307775 · 2017-10-26
Inventors
Cpc classification
B63B21/66
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A seismic survey system includes a set of streamers coupled via lead-in cables to a towing vessel. An active adjustment system adjusts a distance separating at least two of the streamers of the set of streamers from each other. The active adjustment system can include a rope attached to a winch or can include a set of wings.
Claims
1. A marine seismic survey system, comprising: a set of lead-in cables coupled to a set of streamers, wherein a first and second lead-in cable of the set of lead-in cables are respectively coupled to a first and second streamer of the set of streamers; an active adjustment system coupled to the first and second lead-in cables or to the first and second streamers and configured to actively adjust a distance separating the first and second streamers from each other.
2. The marine seismic survey system of claim 1, wherein the set of lead-in cables includes a first and second set of lead-in cables, the set of streamers includes a first and second set of streamers, the first streamer is part of the first set of streamers and is a streamer that is closest to the second set of streamers among streamers of the first set of streamers, the second streamer is part of the second set of streamers and is a streamer closest to the first set of streamers among streamers of the second set of streamers, the first lead-in cable is part of the first set of lead-in cables and is a lead-in cable that is closest to the second set of lead-in cables among lead-in cables of the first set of lead-in cables, and the second lead-in cable is part of the second set of lead-in cables and is a lead-in cable closest to the first set of lead-in cables among lead-in cables of the second set of lead-in cables.
3. The marine seismic survey system of claim 2, wherein the active adjustment system comprises a winch and a rope, the winch is carried on a vessel, which is coupled to the first and second sets of lead-in cables, the rope passes from the winch along the first lead-in cable to a pulley.
4. The marine seismic survey system of claim 3, wherein the rope passes from the pulley and terminates at an attachment point coupled to the second lead-in cable or the second streamer.
5. The marine seismic survey system of claim 3, wherein the rope passes from the pulley to another pulley and then terminates on the vessel.
6. The marine seismic survey system of claim 1, wherein the set of lead-in cables includes a first and second set of lead-in cables, the first and second lead-in cables are part of the first set of lead-in cables, the set of streamers includes a first and second set of streamers, the first and second streamers are part of the first set of streamers, the active adjustment system comprises a winch and a rope, the winch is coupled to the first lead-in cable or the first streamer, and the rope passes from the winch and terminates on the second lead-in cable or the second streamer.
7. The marine seismic survey system of claim 2, wherein the active adjustment system comprises a winch and a rope, the winch is coupled to the first lead-in cable or the first streamer, and the rope passes from the winch and terminates on the second lead-in cable or the second streamer.
8. The marine seismic survey system of claim 2, wherein the active adjustment system comprises at least two wings, each of which is coupled to one of the first and second lead-in cables or to one of the first and second streamers and each of which is arranged between the first and second lead-in cable or between the first and second streamers.
9. A marine seismic survey system, comprising: a set of lead-in cables including a first and second lead-in cable, each of which includes a first end configured for coupling to a towing vessel; a set of streamers including first and second streamers, each of which is respectively coupled to a second end of the first and second lead-in cables; and an adjustable length spacer line coupling the first and second lead-in cables to each other or coupling the first and second streamers to each other and configured to adjust a distance between the first and second streamers.
10. The marine seismic survey system of claim 9, wherein the set of lead-in cables includes a first and second set of lead-in cables, the set of streamers includes a first and second set of streamers, the first lead-in cable is part of the first set of lead-in cables and is a lead-in cable closest to the second set of lead-in cables among lead-in cables of the first set of lead-in cables, a second lead-in cables is part of the second set of lead-in cables and is a lead-in cable closest to the first set of lead-in cables among lead-in cables of the second set of lead-in cables, the first streamer is part of the first set of streamers and is a streamer closest to the second set of streamers among streamers of the first set of streamer, and the second streamer is part of the second set of streamers and is a streamer closest to the first set of streamers among streamers of the second set of streamers.
11. The marine seismic survey system of claim 10, wherein the towing vessel includes a winch, a pulley is coupled to the first streamer or to the first lead-in cable, the adjustable length spacer line is coupled to the winch and to the pulley, and the adjustable length spacer line runs from the winch, along the first lead-in cable, through the pulley, and terminates at the second lead-in cable or at the second streamer.
12. The marine seismic survey system of claim 11, wherein the first lead-in cable includes guides that guide the adjustable length spacer line from the towing vessel to the pulley.
13. The marine seismic survey system of claim 11, wherein the adjustable length spacer line terminates at a releasable attachment point on the second lead-in cable or on the second streamer.
14. The marine seismic survey system of claim 10, wherein the towing vessel includes a winch, a first pulley is coupled to the first lead-in cable or to the first streamer, a second pulley is coupled to the second lead-in cable or to the second streamer, and the adjustable length spacer line runs from the winch, through the first and second pulleys, and terminates at an attachment point on the towing vessel.
15. The marine seismic survey system of claim 14, wherein the first lead-in cable includes a first set of guides that guide the adjustable length spacer line from the towing vessel to the pulley and the second lead-in cable includes a second set of guides that guide the adjustable length spacer line from the another pulley to the towing vessel.
16. The marine seismic survey system of claim 9, wherein the set of lead-in cables includes a first and second set of lead-in cables, the set of streamers includes a first and second set of streamers, the first and second lead-in cables are part of the first set of lead-in cables, the first and second streamers are part of the first set of streamers, a winch is coupled the first lead-in cable or to the first streamer, and the adjustable length spacer line runs from the winch and terminates on the second lead-in cable or one the second streamer.
17. The marine seismic survey system of claim 10, further comprising a winch coupled to the first lead-in cable or to the first streamer, wherein the adjustable length spacer line runs from the winch and terminates on the second lead-in cable or the second streamer.
18. The marine seismic survey system of claim 9, wherein the adjustable length spacer line adjusts the distance between the first and second streamers to a first distance while the streamers are receiving reflections and to a second distance when the towing vessel is turning, wherein the first distance is less than the second distance.
19. A method for adjusting spacing of marine seismic equipment, comprising: towing, by a vessel, a set of streamers, which is coupled to the vessel via a set of lead-in cables; actively adjusting a distance between at least two streamers of the set of streamers using an adjustable length spacer line coupling the at least two streamers to each other or coupling at least two lead-in cables of the set of lead-in cables to each other.
20. The method of claim 19, wherein the adjustable length spacer line is adjusted to a first distance while the streamers are receiving reflections and to a second distance when the towing vessel is turning, wherein the first distance is less than the second distance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate one or more embodiments and, together with the description, explain these embodiments. In the drawings:
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DETAILED DESCRIPTION
[0019] The following description of the exemplary embodiments refers to the accompanying drawings. The same reference numbers in different drawings identify the same or similar elements. The following detailed description does not limit the invention. Instead, the scope of the invention is defined by the appended claims. The following embodiments are discussed with regard to the terminology and structure of marine seismic survey equipment. However, the embodiments to be discussed next are not limited to marine seismic survey equipment, but may be applied in any application where it is desired to actively adjust the distance separating towed equipment.
[0020] Reference throughout the specification to “one embodiment” or “an embodiment” means that a particular feature, structure or characteristic described in connection with an embodiment is included in at least one embodiment of the subject matter disclosed. Thus, the appearance of the phrases “in one embodiment” or “in an embodiment” in various places throughout the specification is not necessarily referring to the same embodiment. Further, the particular features, structures or characteristics may be combined in any suitable manner in one or more embodiments.
[0021] According to embodiments described in more detail below, stability of front-end equipment is improved using a system that actively adjusts the distance separating streamers from each other. According to one embodiment the active adjustment system can include a rope, the length of which can be actively adjusted to maintain a desired spread between two streamers. According to another embodiment the active adjustment system can include a set of wings coupled to two lead-in cables and/or two streamers.
[0022]
[0023] As illustrated in
[0024] The adjustable length rope in the embodiment of
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[0027] In order to allow for the active adjustment of ropes 402A-402C, each of the ropes is covered only partially by a respective foil fairing 410A-410C. As in the previous embodiments, the attachment points 408A-408C can be ones that automatically release under a certain amount of force, ones that are manually releasable, or ones that are fixed points as described above. Alternatively, attachment points 408A and 408C can be fixed attachment points and attachment point 408B can be one that automatically releases under a certain amount of force. Although
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[0030] The determination of the adjustment can be under automated control using a program that accounts for current data, such as vessel speed, streamer separation, and other navigation data. As discussed above, the spread adjustment system is an active system, and accordingly the flow returns to step 625 to continue to identify middle spread deviations and adjust for them in step 630.
[0031] An example of a representative control system capable of carrying out operations in accordance with the exemplary embodiments discussed above is illustrated in
[0032] The exemplary control system 700 suitable for performing the activities described in the above-noted embodiments may include server 701. Such a server 701 may include a central processor unit (CPU) 702 coupled to a random access memory (RAM) 704 and to a read-only memory (ROM) 706. ROM 706 may also be other types of storage media to store programs, such as programmable ROM (PROM), erasable PROM (EPROM), etc. Processor 702 may communicate with other internal and external components through input/output (I/O) circuitry 708 and bussing 710, to provide control signals and the like. For example, processor 702 may communicate with the sensors, electro-magnetic actuator system and/or the pressure mechanism of the source element. Processor 702 carries out a variety of functions as are known in the art, as dictated by software and/or firmware instructions.
[0033] Server 701 may also include one or more data storage devices, including hard and disk drives 712, CD-ROM drives 714, and other hardware capable of reading and/or storing information, such as a DVD, etc. In one embodiment, software for carrying out the above-discussed steps may be stored and distributed on a CD-ROM 716, removable media 718 or other form of media capable of portably storing information. These storage media may be inserted into, and read by, devices such as the CD-ROM drive 714, the disk drive 712, etc. Server 701 may be coupled to a display 720, which may be any type of known display or presentation screen, such as LCD, plasma displays, cathode ray tubes (CRT), etc. A user input interface 722 is provided, including one or more user interface mechanisms such as a mouse, keyboard, microphone, touch pad, touch screen, voice-recognition system, etc.
[0034] Server 701 may be coupled to other computing devices, such as the equipment of a vessel, via a network. The server may be part of a larger network configuration as in a global area network (GAN) such as the Internet 728, which allows ultimate connection to the various landline and/or mobile client/watcher devices.
[0035] As also will be appreciated by one skilled in the art, the embodiments of the method may be performed using instructions stored on a non-transitory computer-readable storage medium having computer-readable instructions embodied in the medium. Any suitable computer-readable medium may be utilized, including hard disks, CD-ROMs, digital versatile discs (DVD), optical storage devices or magnetic storage devices such a floppy disk or magnetic tape. Other non-limiting examples of computer-readable media include flash-type memories or other known types of memories.
[0036] The disclosed exemplary embodiments provide an active adjustment system to adjust the distance separating two streamers from each other. It should be understood that this description is not intended to limit the invention. On the contrary, the exemplary embodiments are intended to cover alternatives, modifications and equivalents, which are included in the spirit and scope of the invention as defined by the appended claims. Further, in the detailed description of the exemplary embodiments, numerous specific details are set forth in order to provide a comprehensive understanding of the claimed invention. However, one skilled in the art would understand that various embodiments may be practiced without such specific details.
[0037] Although the features and elements of the present exemplary embodiments are described in the embodiments in particular combinations, each feature or element can be used alone without the other features and elements of the embodiments or in various combinations with or without other features and elements disclosed herein.
[0038] This written description uses examples of the subject matter disclosed to enable any person skilled in the art to practice the same, including making and using any devices or systems and performing any incorporated methods. The patentable scope of the subject matter is defined by the claims, and may include other examples that occur to those skilled in the art. Such other examples are intended to be within the scope of the claims.