The present disclosure relates to an unmanned underwater vehicle for the maintenance and inspection of permanent underwater facilities.
In particular, in the oil & gas industry, it is known to create permanent underwater facilities for the extraction and/or production of hydrocarbons from wells drilled in the bed of a body of water. Within the scope of this description, the term “permanent” means underwater facilities intended to operate on the bed of a body water for an indefinite number of years. In the description that follows, the term “hydrocarbon production” means the extraction of hydrocarbons, the processing of hydrocarbons, the treatment of fluids related to hydrocarbon production and the subsequent transport.
Underwater hydrocarbon production facilities can be placed at or relatively close to subsea wells or in intermediate locations, and can have various configurations on the bed of a body water depending on the well or well field. In addition, underwater hydrocarbon production facilities can be positioned in relatively shallow water or in relatively very deep water and in any geographic area, independently of whether environmental conditions are mild or extreme.
The concept of an underwater hydrocarbon production facility was developed by operators in the industry with the objective of rationalizing hydrocarbon production from subsea wells. In short, an underwater hydrocarbon production facility is part of a complex installation that comprises an underwater hydrocarbon production facility and pipelines for relatively long-distance transportation between underwater facilities and surface structures. The exploitation of subsea oil and/or gas fields via underwater hydrocarbon production facilities that provide for the extraction and transport of the hydrocarbon to the surface or coast has been under way for some time and expansion in the near future is foreseeable. Recent technological developments in underwater devices suitable for working at relatively great depths and the great interest of oil companies have facilitated the feasibility of relatively complex systems, broadened the potentiality of underwater production facilities and made any type of active process in water possible. The main underwater treatment processes are: fluid pumping or compression, multiphase pumping, liquid/liquid separation, gas/liquid separation, solid/liquid separation, oil/water/gas separation, treatment and pumping, water treatment, heat exchange, and injection of water or gas into the well.
Further information on the current state of underwater hydrocarbon production facilities are available in the document OTC 24307 “STEPS TO THE SUBSEA FACTORY” by Rune Ramberg (Statoil), Simon RH Davies (Statoil), Hege Rognoe (Statoil), and Ole Oekland (Statoil).
There is no doubt that underwater hydrocarbon production facilities provide numerous advantages, but the construction, maintenance and control of an underwater hydrocarbon production facility are beset by problems that grow as the depth and/or environmental constraints increase.
In particular, the maintenance and inspection of underwater facilities is currently carried out by unmanned underwater vehicles, which comprise two distinct types of vehicle: ROVs (Remoted Operated Vehicle), each of which is connected to a base station by an umbilical cable, through which ROV receives power and exchanges signals, and AUVs (Automated Underwater Vehicle), each of which has an autonomous power source and is configured to operate on the basis of predefined programs and to upload any information collected in the operational phase once AUV returns to the base station. U.S. Published Patent Application No. 2002/0040783, PCT Patent Application No. WO 2015/061600, U.S. Pat. No. 6,390,012 and PCT Patent Application No. WO 2015/124938 illustrate underwater vehicles and/or maintenance and inspection systems for underwater facilities that employ underwater vehicles of the above-indicated type. Known systems generally use only one type underwater vehicle, with the consequent operating limits, or different types of underwater vehicles, but to the detriment of operating costs. The above-mentioned solutions are completely or partially ineffective, especially where the environmental conditions or the facility's configuration make the support they need from surface vessels economically or technically impracticable.
The object of the present disclosure is to provide an underwater vehicle capable of overcoming certain of the drawbacks of certain of the known art.
In accordance with the present disclosure an unmanned underwater vehicle is provided for the maintenance and inspection of permanent underwater facilities, the underwater vehicle comprising a first interface configured for structurally and functionally coupling to an operational module selected on the basis of specific needs from a plurality of interchangeable operational modules featuring different characteristics, and a second interface configured for structurally and functionally coupling to a power and communication module selected on the basis of specific needs from a plurality of interchangeable power and communication modules featuring different characteristics.
The first and the second interfaces are configured to enable the independent coupling in the body of water between the underwater vehicle and the plurality of operational modules and plurality of power and communication modules.
It should thus be appreciated that the unmanned underwater vehicle disclosed herein can be configured based on the specific needs defined by the operation that the unmanned underwater vehicle is required to perform on the underwater facility.
In particular, the first and the second interface are functionally interconnected so as to mutually transfer power and signals. In this way, the underwater vehicle acts as an intermediary between the power and communication modules and the operational modules.
In particular, the underwater vehicle comprises a frame, at least one buoy, with variable trim if necessary, and a plurality of thrusters. In other words, the underwater vehicle is equipped with all the navigation aids that enable underwater vehicle to navigate in the body of water.
In particular, the underwater vehicle comprises at least one power accumulator and a control unit. In practice, the underwater vehicle has an autonomy, albeit reduced, which enables the underwater vehicle to move around the underwater facility.
In particular, the underwater vehicle comprises navigation sensors, in particular a gyrocompass, a speed sensor, accelerometers, acoustic positioning systems, and obstacle avoidance systems (for example, acoustic or electromagnetic ones). In this way, the underwater vehicle is able to move and orient itself in tight spaces as required for maintenance and inspection operations.
A further object of the present disclosure is to provide a system for the maintenance and inspection of underwater facilities that does not have certain of the drawbacks of certain of the known art.
In accordance with the present disclosure, a system is provided for the maintenance and inspection of underwater facilities, the system comprising at least one underwater vehicle of the above-indicated type, a plurality of interchangeable operational modules featuring different characteristics, and a plurality of interchangeable power and communication modules featuring different characteristics. In this way, the system offers a plurality of configurations for the underwater vehicle. The number of possible configurations is given by the number of different operational modules multiplied by the number of different power and communication modules. By connecting a pair of modules, the underwater vehicle is able to dynamically and automatically adapt itself each time the system is reconfigured.
In particular, the plurality of operational modules comprises at least one manipulator operational module, at least one tool operational module, and at least one inspection operational module. It should be appreciated that this number of three different operational modules is not intended to indicate a limit, but is simply an example.
In greater detail, the manipulator operational module comprises a manipulator arm, such as electric, and a third interface configured for structurally and functionally coupling to the first interface of the underwater vehicle. In this way, the manipulator operational module is able to deftly perform relatively precise manipulations.
The tool operational module comprises a tool, a respective actuator, and a fourth interface configured for structurally and functionally coupling to the first interface of the underwater vehicle, and is used in operations where relatively considerable force is required.
The inspection operational module comprises a probe, which, for example, comprises a camera, an acoustic sensor and an electromagnetic sensor, and a fifth interface configured for structurally and functionally coupling to the first interface of the underwater vehicle. In this way, it is possible to detect functional or structural anomalies in the underwater facility.
The plurality of power and communication modules comprises a cable power and cable communication module, a battery power and wireless communication module, and a battery power and cable communication module. Also in this case, the three different types of power and communication module is not intended to be a limit on the number of types of power and communication modules.
In greater detail, the cable power and cable communication module comprises a power supply block, a cable for power and data transmission, and a sixth interface configured for structurally and functionally coupling to the second interface of the underwater vehicle. This module ensures limitless autonomy and a high real-time data transmission capability.
The battery power and wireless communication module comprises a battery block, a transceiver, and a seventh interface configured for structurally and functionally coupling to the second interface of the underwater vehicle. In this case, the absence of the cable ensures greater manoeuvrability for the underwater vehicle against more limited autonomy and a restricted real-time data transmission capability.
The battery power and cable communication module comprises a battery block, a data cable, and an eighth interface configured for structurally and functionally coupling to the second interface of underwater vehicle. In this case, the data cable ensures moderate manoeuvrability without any limitation on the real-time data transmission capability.
In accordance with one embodiment, each operational module is configured to be powered independently of the underwater vehicle. If necessary, power can also be received from the underwater facility on which operations are being performed via a further interface configured to implement a coupling with the underwater facility, for example via cable.
In general, each operational module is powered by one of the power and communication modules through the underwater vehicle, which transfers part of the power from the power and communication module to the operational module and, in part, uses the power of the power and communication module for its own functions.
The system comprises at least one base station configured for housing the underwater vehicle, the operational modules, and the power and communication modules. The base station offers shelter for the underwater vehicle and the various modules when they are not used in maintenance and inspection operations.
The base station has parking stations for power recharging and is connected to the outside, for example to the surface or to other underwater systems, by an umbilical cable.
In certain embodiments, the parking stations can even be located in different positions along the underwater facility.
Furthermore, base station comprises cable and wireless communication systems for communicating with the underwater vehicle.
If the size and/or configuration of the underwater facility is too large, it may become necessary to provide one or more communication stations configured to repeat the wireless signals of the base station, which can also serve as navigation references.
The base station comprises a cleaning device configured to clean the underwater vehicle, the plurality of operational modules, and the plurality of power and communication modules. The long permanence of these vehicles in the body of water favours the formation of surface deposits and fouling, which must be cyclically removed. To this end, the cleaning device is configured to carry out mechanical and non-mechanical cleaning. Mechanical cleaning includes pressurized water jets and brushes for removing surface deposits and fouling. Non-mechanical cleaning comprises UV lamps and chemical products (for example, biocides).
The system is particularly suited to being used for the maintenance and inspection of underwater facilities used for hydrocarbon production. The system is particularly suited to carrying out operations in a relatively very complex scenario such as that of an underwater hydrocarbon production facility. Accordingly, the system is configured for long immersions and minimal dependence on surface vessels, being relatively highly versatile and, at the same time, relatively inexpensive to operate.
Another object of the present disclosure is to provide a method for the maintenance and inspection of underwater facilities that does not have certain of the drawbacks of certain of the known art.
In accordance with the present disclosure, a method is provided for the maintenance and inspection of permanent underwater facilities, the method comprising the steps of structurally and functionally coupling a first interface of the underwater vehicle to an operational module selected on the basis of specific needs from of a plurality of interchangeable operational modules featuring different characteristics, and structurally and functionally coupling a second interface of the vehicle to a power and communication module selected on the basis of specific needs from a plurality of interchangeable power and communication modules featuring different characteristics.
Additional features and advantages are described in, and will be apparent from the following Detailed Description and the figures.
Further characteristics and advantages of the present disclosure will become clear from the description that follows of certain embodiments, with reference to the figures in the accompanying drawings, in which:
Referring now to the example embodiments of the present disclosure illustrated in
In greater detail, each of the functional modules 4, 5, 6 and 7 houses a respective apparatus configured to process hydrocarbons or perform operations related to hydrocarbon processing. In this description, the term apparatus is used to indicate: multiphase pump (function: multiphase pumping), liquid pump, gas compression, liquid/liquid separator, gas/liquid separator, solid/water separator, heat exchanger, water injection pump, chemical injection system, gas treatment system, oil treatment system, and water treatment system.
The interconnection unit 8 comprises further connection elements 10 configured to connect the inlet pipelines 11 and another two connection elements 10 configured to connect to two respective outlet pipelines 12 that run to respective headers (not shown in the accompanying figures).
The connection elements 10 are interconnected by tubes (which are not shown in
The interconnection unit 8 is configured to collect and distribute signals, electric power, chemical products and hydraulic fluids to and from the functional modules 4, 5, 6 and 7. In consequence, the interconnection unit 8 comprises a control bus 13 and a plurality of tubes 14 configured to convey chemical products and/or hydraulic fluids.
The facility comprises a platform 15 on which the interconnection unit 8, the functional modules 4, 5, 6 and 7, two junction boxes 16, and two distribution units 17 rest. Signals, chemical products, hydraulic fluids and electric power are conveyed through an umbilical cable 18 and a switching unit 19, which distributes electric power directly through power cables 20 to modules 4 and 6, which house pumps or compressors. The switching unit 19 is connected to the two junction boxes 16 via a control bus 21 and a tube bundle 22 for hydraulic fluids, and to the chemical product distribution units 17 by a tube bundle 22. The junction boxes 16 and the chemical product distribution units 17 are in turn connected to the interconnection unit 8.
The interconnection unit 8 shown in
Each of the functional modules 4, 5, 6 and 7 comprises an underwater control device 24 configured to control the parameters related to the associated process. In particular, each of the underwater control devices 24 of the interconnection unit 8 has the master function and is connected to all of the underwater control devices 24, which are installed in the functional modules 4, 5, 6 and 7 and have the slave function.
The entire supervision of the facility 1 is carried out from a surface control station equipped with monitors (not shown in the accompanying figures). In the case shown, the control system of the underwater facility 1 has a distributed-node architecture and comprises a distributed-node network comprising the control buses 13 and 21, and the junction boxes 16 and 23. The network connects the functional modules 4, 5, 6 and 7, or rather the underwater control devices 24 associated with the respective functional modules 4, 5, 6 and 7, and the switching unit 19 that, in turn, is connected to a surface control unit (not shown in the accompanying figures). Each underwater control device 24 is placed at a respective node of the network to isolate the respective functional module 4 or 5 or 6 or 7 from the control network.
In the case shown, the underwater control devices 24 arranged in respective junction boxes 23, both have the master function and perform exactly the same functions, while the network connects the master control devices 24 to the switching unit 19 independently of one another. In consequence, the control system is redundant.
In accordance with a variant that is not shown, the master control devices 24 are placed at other points of the control network, but conveniently inside the interconnection module 8.
The underwater facility 1 is integrated by a maintenance and inspection system 25, which, in the case shown, comprises a base station 26, an unmanned underwater vehicle 27, and two communication stations 28, the need for which or the number of which is based on the size and the configuration of the facility 1. The base station 26 is adjacent to the switching unit 19 and is connected to the umbilical cable 18 from which the base station receives power and through which the base station exchanges signals with a surface station (not shown in the accompanying figures).
The base station 26 has the function of housing the underwater vehicle 27 and of performing service operations on the underwater vehicle 27. In the embodiment shown, the communication stations 28 are placed in the areas furthest away from the base station 26.
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The underwater vehicle 27 comprises navigation sensors, which include a gyrocompass 34, a speed sensor 35, accelerometers 36, acoustic positioning systems 37, and an obstacle avoidance system 38 of the acoustic or electromagnetic type, which enable navigating by instrument in relatively complex scenarios.
In various embodiments, the buoy 30 defines the upper part of the underwater vehicle 27, while the frame 29 in the lower part of the underwater vehicle 27 supports two interfaces 39 and 40. In certain embodiments described herein, the two interfaces 39 and 40 are perpendicular to the longitudinal axis A of the underwater vehicle 27 and define two opposite faces of the lower part of the underwater vehicle 27.
The system 25 in
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The underwater vehicle 27 can assume various configurations, some of which are shown in
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In accordance with one embodiment which is not shown in the accompanying figures, the base station can comprise an umbilical cable for the supply of power and data transmission with the surface or with other underwater systems.
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The communication stations 28 in
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Finally, it should be appreciated that variants regarding the present disclosure can be implemented with respect to the embodiments described with reference to the accompanying drawings without departing from the scope of the claims. For example, in the described example, the maintenance and inspection system is associated with an underwater hydrocarbon production facility, but the claimed vehicle and system may find other applications in an underwater environment. Furthermore, the system can comprise more than one unmanned vehicle and/or more base stations, with the number of unmanned underwater vehicles and base stations depending on the size and complexity of the facility. Accordingly, various changes and modifications to the presently disclosed embodiments will be apparent to those skilled in the art. Such changes and modifications can be made without departing from the spirit and scope of the present subject matter and without diminishing its intended technical scope. It is therefore intended that such changes and modifications be covered by the appended claims.
Number | Date | Country | Kind |
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102016000025989 | Mar 2016 | IT | national |
This application is a national stage application of PCT/IB2017/051423, filed on Mar. 10, 2017, which claims the benefit of and priority to Italian Patent Application No. 102016000025989, filed on Mar. 11, 2016, the entire contents of which are each incorporated by reference herein.
Filing Document | Filing Date | Country | Kind |
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PCT/IB2017/051423 | 3/10/2017 | WO | 00 |