SYSTEM AND METHOD FOR DETECTING FLOODING IN A FLEXIBLE PIPE FROM A FLEXIBLE PIPE CONNECTOR
20220128512 · 2022-04-28
Assignee
Inventors
- Paulo Roberto SANTOS POLI (Rio de Janeiro, BR)
- Nei Mariano DA FONSECA JUNIOR (Rio de Janeiro, BR)
- Marco Antonio DA SILVA (Duque de Caxias, BR)
- João Marcio DE CASTILHO SANTOS (Rio de Janeiro, BR)
- Gustavo PINTO PIRES (Rio de Janeiro, BR)
- Carlos Eduardo MAIA DE SOUZA (Rio de Janeiro, BR)
Cpc classification
G01N2291/048
PHYSICS
G01N2291/044
PHYSICS
F17D5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
This invention provides a system for detecting flooding in a flexible pipe from a connector of the flexible pipe, comprising: an ROV (3) comprising an arm element (18) designed to move an ultrasound sensor (13), until the ultrasound sensor (13) comes into contact with the connector (14) of the flexible pipe (17); and means for taking ultrasound measurements with respect to the state of the annulus of the flexible pipe (17) from a chamber of the connector of the flexible pipe (17) in contact with the annulus of the flexible pipe (17). The invention further provides a method for detecting flooding in a flexible pipe from a connector of the flexible pipe, comprising the steps of: moving an ROV (3) to a region close to the connector (14) of the flexible pipe (17); activating an arm element (18) of the ROV (3) to move an ultrasound sensor (13), until the ultrasound sensor (13) comes into contact with the connector (14) of the flexible pipe (18); and taking ultrasound measurements with respect to the state of the annulus of the flexible pipe (17) from a chamber of the connector (14) of the flexible pipe (17) in contact with the annulus of the flexible pipe (17).
Claims
1. A system for detecting flooding in a flexible pipe of a connector of the flexible pipe, wherein it comprises: an ROV (3) comprising an arm element (18) designed to move an ultrasound sensor (13), until the ultrasound sensor (13) comes into contact with the connector (14) of the flexible pipe (17); and means for taking ultrasound measurements with respect to the state of the annulus of the flexible pipe (17) from a chamber of the connector of the flexible pipe (17) in contact with the annulus of the flexible pipe (17).
2. The system of claim 1, wherein the ROV (3) comprises a pressure vessel (6) comprising internally an ultrasound device (5), in which the ultrasound device (5) is connected to the ultrasound sensor (13).
3. The system of claim 1, wherein the ROV (3) is connected to a control device (1) designed to manage the system's other electronic elements.
4. The system of claim 1, wherein the connector (14) of the flexible pipe (17) comprises a device (15) designed to allow inspection by ultrasound, identifying the presence of liquid in the chamber of the connector (14) of the flexible pipe (17) in contact with the annulus of the flexible pipe (17).
5. The system of claim 4, wherein the device (15) is in communication with a lighting device (16) positioned externally to the connector (14), wherein the device (15) is coupled to one of the gas relief valve accesses of the connector (14) to flexible pipes (17).
6. The method for detecting flooding in a flexible pipe from a connector of the flexible pipe, wherein it comprises the steps of: moving an ROV (3) to a region close to the connector (14) of the flexible pipe (17); activating an arm element (18) of the ROV (3) to move an ultrasound sensor (13), until the ultrasound sensor (13) comes into contact with the connector (14) of the flexible pipe (18); and taking ultrasound measurements with respect to the state of the annulus of the flexible pipe (17) from a chamber of the connector (14) of the flexible pipe (17) in contact with the annulus of the flexible pipe (17).
7. The method of claim 6, wherein it comprises the steps of the ultrasound sensor (13) sending the information generated to an ultrasound device (5), that handles the information received and sends the handled information to a control device (1), wherein the control device (1) analyzes the information to define the state of the annulus of the flexible pipe (18), from the information from the connector (14).
8. The method of claim 6, wherein it comprises the step of emitting an alert signal in response to information regarding the presence of liquid in the chamber of the connector (14) of the flexible pipe (17) in contact with the annulus of the flexible pipe (17).
9. The method of claim 8, wherein it comprises the step of, if the presence of liquid is identified in the chamber of the connector (14) of the flexible pipe (17) in contact with the annulus of the flexible pipe (17), emitting a luminous alert signal externally to the connector (14).
10. The system of claim 2, wherein the ROV (3) is connected to a control device (1) designed to manage the system's other electronic elements.
11. The system of claim 2, wherein the connector (14) of the flexible pipe (17) comprises a device (15) designed to allow inspection by ultrasound, identifying the presence of liquid in the chamber of the connector (14) of the flexible pipe (17) in contact with the annulus of the flexible pipe (17).
12. The system of claim 3, wherein the connector (14) of the flexible pipe (17) comprises a device (15) designed to allow inspection by ultrasound, identifying the presence of liquid in the chamber of the connector (14) of the flexible pipe (17) in contact with the annulus of the flexible pipe (17).
13. The method of claim 7, wherein it comprises the step of emitting an alert signal in response to information regarding the presence of liquid in the chamber of the connector (14) of the flexible pipe (17) in contact with the annulus of the flexible pipe (17).
Description
BRIEF DESCRIPTION OF THE FIGURES
[0020] The detailed description presented below references the annexed FIGURES and their respective reference numbers.
[0021]
DETAILED DESCRIPTION OF THE INVENTION
[0022] First, it is noted that the following description will begin with a preferred embodiment of the invention. As will become evident to any expert in the matter, however, the invention is not limited to that particular embodiment.
[0023]
[0024] More broadly, the system for detecting flooding in a flexible pipe 17 from a connector 14 of the flexible pipe 17 comprises: an ROV 3 comprising an arm element 18 that is designed to move an ultrasound sensor 13, until the ultrasound sensor 13 comes into contact with the connector 14 of the flexible pipe 17; and means for taking measurements of the state of the annulus of the flexible pipe 17 from a chamber of the connector of the flexible pipe in contact with the annulus of the flexible pipe.
[0025] In this broader case, a method is also provided for detecting flooding in a flexible pipe 17 from a connector 14 of the flexible pipe 17, associated with the system described above, comprising the steps of: moving an ROV 3 to a region close to the connector 14 of the flexible pipe 17; activating an arm element 18 of the ROV 3 to move an ultrasound sensor 13, until the ultrasound sensor 13 comes into contact with the connector 14 of the flexible pipe 17; and taking measurements with respect to the state of the annulus of the flexible pipe 17 from a chamber of the connector 14 of the flexible pipe 17 in contact with the annulus of the flexible pipe 17.
[0026] Optionally, the ROV 3 may be connected to a control device 1 (such as a computer) adapted to manage the system's other electronic elements.
[0027] Optionally, the ROV 3 may comprise a pressure vessel 6 internally comprising an ultrasound device 5, in which the ultrasound device 5 is connected to the ultrasound sensor 13. Thus, the ultrasound sensor 13 sends the information received to the ultrasound device 5, which handles the information received and then sends the information handled to the control device 1. The control device 1 in turn analyzes the information to define the state of the annulus of the flexible pipe 17, from the information from the connector 14.
[0028] The ultrasound technique is based on the principle that a wave transmitted by a sensor 13 in a first means is partially reflected and partially transmitted upon coming into contact with the interface of a second means. The proportionality between reflection and transmission will depend on the difference of acoustic impedance between the means.
[0029] When the annulus of the flexible pipe 17 is dry, the chamber of the connector 14 of the flexible pipe 17 in contact with the annulus of the flexible pipe 17 will also be dry. Therefore, at the connectors the means that the ultrasound of this invention will cross are steel (connector) and air (chamber of the connector of the flexible pipe in contact with the annulus of the flexible pipe), the majority of the signal being reflected at the interface.
[0030] When the annulus of the flexible pipe 17 is flooded, the chamber of the connector 14 of the flexible pipe 17 in contact with the annulus of the flexible pipe 17 will also be flooded. Therefore, at the connector 14, the means that the ultrasound of this invention will cross are steel (connector) and water (chamber of the connector of the flexible pipe in contact with the annulus of the flexible pipe), a part of the signal being reflected and a part of the signal being transmitted. This part of the transmitted signal encounters the next surface/interface, which may be water with steel from the collector ring, or water with resin. The part of the signal transmitted at the first interface is now reflected in the second interface and returns to the sensor.
[0031] Visualization of the apparatus, optionally, has a graph called an A-Scan, which represents the signals in the space or at the time these reflections occur. The data is handled by observing where these reflections occur, and they are different in the conditions of dry and flooded annulus.
[0032] It is important to note that the method and the system proposed by this invention may be used with flexible pipes and connectors subjected to high hydrostatic pressures, such as in deep water applications, without there being elevated interference in the measurements. This great advantage is mainly due to the fact that the connector, since it is made of steel, is extremely resistant to hydrostatic pressure, making the method of this invention highly reliable in comparison to the methods known in the state of the technique.
[0033] The construction characteristics used by the system of the invention will be described below. However, note that the following description refers to an optional configuration in which modifications are foreseen without straying from the scope of protection.
[0034] The control device 1 may be interconnected by a cable 2 to the remote operating vehicle (ROV 3). The umbilical cable 4 of the ROV 3 may be interconnected to the ultrasound device 5 installed inside the pressure vessel 6.
[0035] The connector 7 of the umbilical from the ROV 3 and the connector 8 from the pressure vessel 6 may be any known in the state of the technique, and that have the characteristics necessary for each application, in which they do not represent a limiting factor for the scope of protection of this invention.
[0036] The umbilical 4 from the ROV 3 may provide routes both for electricity (power), and for transmission of inspection data. A cable inside 9 the pressure vessel 6 must interconnect the connector 14 and the ultrasound equipment 5. The ultrasound equipment 5 (inside the pressure vessel 6) must be interconnected to the ultrasound sensor 13.
[0037] A second internal cable 10 must interconnect the ultrasound equipment 5 to a second connector 11 in the pressure vessel 6. Another cable 12 must interconnect the connector 11 in the pressure vessel 6 to the ultrasound sensor 13 connected to the other end of this cable 11. This cable 11 may be subsea or it may even be a conventional cable wrapped by a pressure compensation sleeve.
[0038] As already described, the ultrasound sensor 13 must be brought close to the connector 14 using the resources of the ROV 3 to take measurements of the state of the annulus of the flexible pipe 17.
[0039] Optionally, there is also the approach to inspect using the ultrasound technique in the device 15 and/or monitoring by means of a lighting device 16 coupled to one of the gas relief valve accesses (or plugs). The lighting device 16 is designed to ascend when the chamber of the connector of the flexible pipe in contact with the annulus of the flexible pipe is filled with the water from the flooded annular space.
[0040] Therefore, the system of the invention optionally provides that the connector of the flexible pipes may comprise a device 15 designed to allow ultrasound inspection, identifying the presence of liquid in the chamber of the connector 14 of the flexible pipe in contact with the annulus of the flexible pipe 17. The device 15 may be defined by anyone versed in the matter, thus this does not represent a limiting factor to the scope of the invention.
[0041] Optionally, the device 15 is in communication with a lighting device 16 positioned externally to the connector 14. Thus, if the presence of liquid in the chamber of the connector 14 of the flexible pipe in contact with the annulus of the flexible pipe is identified, a luminous alert signal may be emitted, visually indicating the need to verify the integrity of the annulus of the flexible pipe.
[0042] Thus, the luminous alert described is part of an additional system that is independent from the ultrasound. These systems are complementary and redundant, yet independent. In an optional practical application, an inspection using ultrasound may be done only if the luminous system turns on.
[0043] Numerous variations to the scope of protection of this application are allowed. Thus, the fact that this invention is not limited to the specific configurations/implementations described above is reinforced.