Method for assessing the service condition of compensation joints.
The method uses strain gauges and a central unit to monitor compensation joints, addressing the challenge of pipeline failures by providing predictive maintenance and early warning, ensuring pipeline integrity.
Patent Information
- Application Number
- JP2024502093
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-05-19
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2041-05-19
AI Technical Summary
Existing surveillance technologies struggle to provide early warning and efficient monitoring of critical components in hydrocarbon pipelines, particularly compensation joints, especially in inaccessible or unstable areas, leading to potential pipeline failures due to ground subsidence and landslides.
A method involving deformation detection using strain gauges and a computer-controlled central unit to process data, generating reports on the integrity and remaining life of compensation joints, providing early warning and predictive maintenance.
Enables continuous monitoring and predictive maintenance of compensation joints, allowing for timely intervention to prevent failures and ensure pipeline integrity.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention is part of the technical field of surveillance systems, more precisely part of systems for the surveillance of lines for the transmission of fluid hydrocarbons (methane or oil pipelines) or, more generally, of lines for the transmission of other fluids, such as water conduits.
[0002] More specifically, the present invention refers to a method for continuously monitoring a limited section of said line or for continuously monitoring a particular component of said line, such as a compensation joint installed in the field, which may be critical with respect to the integrity of said section or component. [Background technology]
[0003] It is known that the transportation of hydrocarbons (mainly methane and oil, or their derivatives) from production sites to storage locations, and from these locations to distribution and use sites, is carried out mainly by methane or oil pipelines, which are transmission lines consisting of underground, surface, or underwater piping. Each line is generally divided into sections separated by compression or pumping stations, which are required over long distances to restore sufficient pressure and flow values of the hydrocarbons. There are also other components in the line, such as compensation joints, flow shut-off valves, pressure reducing units, etc.
[0004] Many of these components, particularly those relating to distribution lines, are installed inside enclosed man-made structures such as cabins, which are limited in size and often not large enough to accommodate the aforementioned components and, consequently, are difficult to access for maintenance. Compensating joints can also be inserted between a section of line and a terminal connecting the line to a pumping station or other equipment, or in a section of line located at a loading / unloading pier intended to be connected to a corresponding terminal such as an LNG carrier or oil tanker.
[0005] Any method for assessing the condition of use of a compensating joint object of the present invention, which finds particular, but not exclusive, application in monitoring systems for hydrocarbon transport lines, is equally applicable to methane transport lines rather than liquefied hydrocarbon transport lines.
[0006] As already mentioned, the above method can be applied to other similar pipelines, such as water conduits, etc. However, for the sake of simplicity, in the following, reference will be made to methane pipelines, and all considerations will be extended to other similar pipelines, as well as to oil pipelines and other types of lines for the transportation of hydrocarbons.
[0007] technical challenges By their very nature, methane pipelines cross areas with very different topographical and morphological characteristics, which may be flat or mountainous, arid or humid, populated or at risk of subsidence, densely populated or sparsely populated, and difficult to access, at least in a short time. In any case, the importance of the continuity of methane supply and distribution makes it essential to ensure that every single section of a methane pipeline is always, except in completely exceptional and unpredictable cases, operational and at optimum efficiency to avoid interruptions in the transport and distribution of the product. Even in these rare cases, however, it is essential to quickly identify the location and type of problem and to intervene within a very short time to resolve the issue and restore the flow of methane. To minimize emergency situations, pipelines are generally manned by teams of specially trained maintenance engineers. However, this technique proves inadequate in some cases, particularly when it is impossible to ensure sufficient control of the pipeline's condition in some of its most critical areas.
[0008] Particularly important examples relate to pipeline sections that cross inaccessible, unstable, and landslide-prone areas. These sections are often found in sparsely populated and inaccessible areas, especially when the pipeline is far from roads or other transportation routes. In these cases, ensuring adequate vigilance and constant surveillance services is difficult and, consequently, very expensive. Furthermore, with currently used surveillance technologies, it is often virtually impossible to implement early warning actions that would prevent pipe breaks or serious failures of other pipeline components. For example, in areas with unstable and unstable ground, subsidence of the ground on which a section of line or a pipeline component is installed can cause serious problems for the line, resulting in displacement or breakage of the affected pipeline or component.
[0009] Landslides of some significance, or in any case subsidence of the ground, are not always, but in most cases, though not always, sudden phenomena, anticipated by clearly identifiable signs such as small localized ground displacements, depressions in the ground surface, the formation of surface cracks, etc. These signs may appear several hours or even days before the actual landslide. In any case, if identified in time, small changes in the situation in the vicinity of a gas pipeline section at risk can make it possible to take protective action and in many cases avoid breakage or serious damage to the pipes or components of the transmission line.
[0010] Furthermore, especially in areas subject to landslides, special sections of pipe are often installed in the line to counteract the effects of small displacements of the surrounding land and the stresses caused by these displacements on the line. These pipe sections are made elastic by the presence of spring sections at their ends, or sometimes specific devices called dielectric joints. These solutions make it possible to contract and expand the line section over several centimeters in response to the aforementioned stresses. However, it is clear that the effectiveness of these special sections is limited and they cannot compensate for large pipeline displacements.
[0011] In any case, the aforementioned components will certainly be subjected to some of the stresses described above during their service life, with greater or lesser intensities of these stresses tending, in either case, to affect their structural integrity over time and making them progressively less reliable. Given the importance these components pose during the operation of the pipeline, it is consequently essential that they are always at optimum efficiency and that their operation, and that of the pipeline, is not jeopardized by failure due to fatigue of the components themselves and aging of the structure.
[0012] Therefore, there is a strong desire to at least approximately predict when a component is nearing the end of its useful life, so as to be able to replace the component before it is destroyed. Summary of the Invention [Problem to be solved by the invention]
[0013] Object of the invention The scope of the present invention is to propose a method for assessing the service condition of a compensating joint that makes it possible to make a statistical prediction of the likelihood of failure or breakdown of the compensating joint before it occurs.
[0014] Another object of the present invention is to make and make available predictions about the remaining useful life of a compensating joint based on the stresses to which the compensating joint is subjected while in use.
[0015] Another object of the invention is to propose an evaluation method capable of providing early warning information about potentially critical situations relating to a section or to a monitored transportation line component. [Means for solving the problem]
[0016] These and other objects are fully realized by a method for monitoring a section of a line for the transportation of hydrocarbons, for example a methane pipeline, comprising a compensation joint provided with an elastic element connecting successive sections of the line section, said method comprising the following operating steps: - obtaining deformation data relating to the response of the line section to mechanical stresses occurring in the line section by means of deformation detection means installed between different points of the section and / or between the section and the compensation joint; - transferring the detected data in the form of digital or analog signals to a computer-controlled central unit equipped with an interface for the deformation detection means; - processing said deformation data using a computer program implementing a suitable evaluation algorithm to include the number, direction and extent of said deformations and to obtain an evaluation index of the predictable remaining useful life of the compensation joint, which evaluation is based on a number of reference parameters and / or thresholds stored in said program or algorithm; and - periodically generating a report on the state of integrity of the compensation joint and the expected remaining useful life of the compensation joint.
[0017] The particular features of the present invention will become apparent from the following description of preferred embodiments of a method for monitoring a section or component of a line for the transportation of hydrocarbons, according to the following claims, and by means of the accompanying drawings and tables. [Brief explanation of the drawings]
[0018] [Figure 1] 1 shows a schematic representation of a preferred embodiment of a system for monitoring a section of a line for the transportation of hydrocarbons, including a compensation joint, to which the evaluation method according to the invention is applied; [Figure 2] 2 shows the auto-generator of FIG. 1 in more detail, but in a simplified manner; DETAILED DESCRIPTION OF THE INVENTION
[0019] In the above figures, reference number 100 indicates, both as a whole and as an example of an embodiment of the method, a system for monitoring a section of a line for transporting hydrocarbons, and in particular a methane pipeline monitoring system including certain components such as compensation joint 21. For the sake of brevity, reference will be made below to a section of methane pipeline 1. However, it will be understood that the method according to the invention applies advantageously as well to line sections and line components for transporting and distributing other hydrocarbons and other pressurized fluids, such as oil pipelines, water conduits, etc.
[0020] The monitored compensation joint 21 is generally installed at a site where there is a serious risk to the integrity of the section 1 or component, and thus to the operation of the entire transport line. In the example embodiment described, the section 1 or component is installed inside an artifact or room, for example an enclosed cabin, often in a basement or cellar.
[0021] For example, Figure 1 shows a closed product 30, with the portion containing line portion 1 visible. However, it is understood that the installation site may vary, including, for example, a docking terminal for transferring hydrocarbons from ships to shore or vice versa, and that the structure is not relevant to the present invention. For example, the installation site may be part of a hilly or mountainous area that is subject to landslides and avalanches and is therefore unstable.
[0022] Considering that the methane pipeline section 1 or one of its components is fixed to the earth surface or even buried, it is clear that any movement of the ground, even a small entity, affecting the site, can cause stresses such as deformation or failure of the system. More specifically, the line section 1 can be equipped with the aforementioned compensating joint 21, which consists of a special segment with an elastic connection designed to undergo expansion and contraction in response to stresses experienced by that part of the line, and the compensating joint 21 is installed due to small displacements of the surrounding land.
[0023] As a non-exhaustive example, the method according to the invention can be carried out when a line section 1 is defined by one of these special segments, which segment is provided with a compensating joint 21 inserted at the interruption of the line section 1, and between the line section 1 and the compensating joint 21, two elastic elements 22a, 22b of the bellows type are interposed, connecting the two lengths 1a, 1b of the line section 1. These elastic elements 22a, 22b are intended to accommodate any deformation of the small entities of the section of line 1 without interrupting its continuity and thus its functionality. However, it is clear that the occurrence of small deformations, even if absorbed by the elastic connecting segment 21, may indicate serious problems later on and may therefore be a topic of attention for planning interventions to contain the deformations themselves and to make the gas pipeline safe against deformations.
[0024] The monitoring system 100 shown in the figures for an embodiment of the method according to the present invention is intended to be installed in response to such risk sites, and can operate completely autonomously and can be programmable to combine maximum monitoring efficiency with the power and communication channel resources available at the site. In the following, for the sake of brevity, both the method and the structural system 100 will be described with reference to the surveillance of Section 1 of a methane pipeline.
[0025] However, it will be understood that the method using the appropriate system structure 100 is also applicable interchangeably to other components of a line for transporting methane or other hydrocarbons, such as pumping stations, docking terminals, shut-off valves, controlled pressure reduction units, or substantially equivalent structures of a system for transporting and distributing water or other liquids.
[0026] The acquisition of data relating to the mechanical stresses occurring in said section 1 of the line is advantageously carried out by means of said deformation detection means 102 consisting of a plurality of strain gauges, mounted between different points of the section of the line 1, or between singular points of the section 1 of the line and the ground, or in any case between these points and a reference point separated from the section 1 of the line, for example the wall of the artificial structure 30.
[0027] Also, the number and arrangement of strain gauges may vary without departing from the scope of the present invention. Strain gauges are known and commercially available devices that generally consist of two elements that slide axially relative to each other and include a transducer that converts the slip into an electrical signal and an output interface designed to make the acquired electrical signal available to an external user.
[0028] When the method is carried out in the presence of a line section 1 defined by one of the aforementioned special segments, which line section 1 comprises sections 1a and 1b interconnected by at least one compensating joint 21 installed at the break of said section 1 with the interposition of elastic elements 22a and 22b, as already mentioned, said data on mechanical stresses being provided by six strain gauges: a first strain gauge 102a mounted between said lengths of line 1a and line 1b and intended to detect the relative displacement of the two said lengths; a second strain gauge 102b, a third strain gauge 102c, and a fourth strain gauge 102d mounted between the compensating joint 21 and the ground and between sections 1a and 1b and the ground, respectively; and a fifth extensometer 102e and a sixth extensometer 102f mounted between the compensating joint 21 itself and the two lengths 1a and 1b, bypassing the relative elastic elements 22a and 22b.
[0029] The strain gauge configurations described and shown above should be considered exemplary, and not exhaustive, of the monitoring possibilities provided by system 100. Different configurations, including only portions of the strain gauges described above or other strain gauges arranged differently, can be made in embodiments of the method of the present invention.
[0030] The strain gauges 102a...102f are connected via their output interfaces to compatible input channels of a computer-controlled central unit 3 equipped with a suitable commercial interface, wired or wireless (e.g. "Bluetooth", "Direct Wireless" or other equivalent communication technology).
[0031] The central unit 3 is installed in a suitable container depending on the characteristics of the site (which may be open or exposed to bad weather, or closed or otherwise protected) and contains a computer program for managing the operation of the monitoring system described in more detail below.In the operating phase, which concerns the aforementioned transmission of reports to at least one remote operating center and / or at least one person in charge of surveillance of said section 1 of the line or any other person authorized to monitor the pipeline, information regarding the status of section 1, such as data received from the strain gauges 102a...102f, is transmitted and monitored.
[0032] In this method, it is provided that the transmission can take place both in the direction from the deformation detection means 102 to the computer controlled central unit 3 and vice versa, so that any commands or updates can be conveyed in the opposite direction.
[0033] The type of remote transmission means 4 is conveniently selected from those known, available, and optimal for the site. For sites covered by cellular data networks using "3G," "4G," or "5G" technology, for example, the most convenient connection may be a common connection via the Internet, while in the absence of such coverage, the optimal connection may be a data connection over a network satellite phone. Alternatively, a radio frequency connection may be used using a transmitting and receiving wireless device.
[0034] The central unit 3 therefore provides an additional interface 6 and associated software procedures for connecting with the aforementioned remote transmission means 4. As the system 100 provides for the use of strain gauges as deformation detection means 102, the computer program running on the central unit 3 comprises appropriate procedures for acquiring and storing data from said strain gauges.
[0035] It is also envisaged that when received, such data may be transmitted to a remote operation centre or another authorised person, or that the data may be processed before transmission in order to detect significant differences relative to previous readings or values exceeding pre-defined attention threshold values. In order to make the monitoring system 100 fully self-sustaining, it is envisaged that the deformation detection means 102, the central unit 3 and the remote transmission means 4 may be electrically powered by an autonomous solar generator 10.
[0036] In the advantageous embodiment shown in Figure 2, the generator 10 comprises one or more photovoltaic panels 11, an electric converter device 12 according to the specifications provided for the aforementioned deformation detection means 102, the central unit 3 and the transmission means remote 4, and a battery 13 of rechargeable accumulators for storing charge in periods of excess production of the photovoltaic panels to supply during periods of inadequate production.
[0037] In either case, the energy conversion device 12 advantageously comprises a data connection 7 to a central unit 3 (for example of a commercial type, via a local network or a USB interface), by means of which it transmits to the central unit 3 data and information relating to the charge state of the accumulator and, if necessary, data and information relating to the current energy production of the photovoltaic panel 11.
[0038] For this purpose, the management program running on the central unit 3 is suitably provided with procedures for receiving such information and for any modification of the system's operation in the event of low energy utilization.
[0039] For example, a monitored section 1 of a pipeline (or other component) of a methane pipeline located at a site at risk of landslides may be subjected to slight and more gradual stresses, e.g., due to small displacements of the ground, precursors to a subsequent large landslide, even before the occurrence of a significant and damaging event, such as a large landslide that would cause breakage or unwanted movement. In this case, the pipe section 1 may undergo small displacements or deformations that are not harmful to it, but if identified, may suggest the urgent implementation of preventive interventions regarding strengthening the site itself, thus avoiding subsequent problems. Such small displacements or deformations, and equivalent small displacements of the surrounding ground, may not be properly recognized by personnel authorized to direct the work following a superficial evaluation of the data provided by the monitoring system 100 described above.
[0040] It is therefore envisaged that in this method the transmission of data and / or reports may include alarm messages designed to draw attention to potentially dangerous situations and / or to signal any abnormalities resulting from small movements of the indicator element and thus small deformations of the pipe section 1, or of the monitored component, or of the surrounding ground or building.
[0041] The method for assessing the state of use of a compensation joint 21 inserted in a section 1 of a line, implemented using the monitoring system 100 described above, comprises the following operational phases: - obtaining deformation data relating to the response of a section of line 1 to mechanical stresses applied thereto, using deformation detection means 102 installed between different points of the segments 1a, 1b of said section of line 1 and / or between said segments 1a, 1b and said compensation joint 21; - transferring the detected data in the form of digital or analog signals to a computer-controlled central unit 3 equipped with an interface for deformation detection means 102; - processing said deformation data using a computer program implementing a suitable evaluation algorithm to include the number, direction and extent of said deformations and to obtain an evaluation index of the predictable remaining service life of said compensation joint, said evaluation being based on a number of reference parameters and / or thresholds stored in said program or algorithm; - periodically generating reports on the state of the integrity of the compensation joint 21 and on the remaining expected service life of the compensation joint 21; Includes.
[0042] According to a non-exclusive embodiment of the method, the assessment of the integrity and remaining service life of the compensation joint 21 includes comparing each of the aforementioned deformation data detected at a specific moment and each of the deformation detection means 102 with a first predetermined stress threshold, e.g., experimentally obtained by long-term testing on a sample compensation joint, and with a first predetermined fracture threshold.
[0043] The first of these stress and failure thresholds relates to the occurrence of a sudden single stress of high magnitude, which may be related to a deformation, acceleration, or combination thereof that, in a statistically significant manner, could each cause permanent strain or bring the compensation joint 21 to a state of near failure.
[0044] Following the realization of these first thresholds, the method provides for the issuance of a report signaling the occurrence of a stress condition or a risk of failure condition for the compensation joint 21, each of which results in a deterioration of the integrity and / or remaining life condition of the compensation joint 21.
[0045] Alternatively or additionally, said assessment of the integrity and remaining service life of the compensating joint 21 comprises a comparison of the sum and / or average of said deformation data values detected over a period of time, for all of said deformation detection means 102, with a second stress threshold and a second failure threshold, respectively, for the same compensating joint 21, to signal the occurrence of a long-term stress situation or a situation of risk of failure, which results in a deterioration of the state of integrity and / or remaining service life of the compensating joint 21. Again, the detection data may comprise expansion or compression deformation data, respective acceleration values of single deformation events, or a combination of both.
[0046] Based on the acquired and stored data, and also based on the previously calculated and experimentally verified stress resistance scheme of the compensation joint 21, subsequently systematized and applied in an evaluation procedure running in the central unit 3, it is possible at any time to carry out both an assessment of the current state of use of the joint 21 and a reliable prediction of its remaining service life.
[0047] According to a main embodiment of the invention, the processing of deformation data is carried out in said central unit 3 before transmission of said periodic reports to the operating centre and / or the person in charge of surveillance of the line section 1 of the control line using remote data transmission means 4.
[0048] According to an alternative embodiment of the invention, the aforementioned processing of the deformation data is carried out in a remote operating center after transmission carried out using the remote data transmission means 4. In this case, the central unit 3 is responsible for transmitting the data of the coarse deformations to the operation center, and the central unit 3 is responsible for generating periodic reports of the usage status of the compensation joints 21.
[0049] Advantages provided by the evaluation method described above include making available, in a simple and reliable manner, a constantly updated status of the actual wear condition of the compensation joint 21, as well as a prediction of the remaining useful life of the compensation joint 21, which would otherwise be impossible to obtain or would otherwise be difficult and expensive to obtain.
[0050] Another advantage of the present invention is that it proposes a monitoring system capable of providing one or more parties authorized to maintain and service the transport line with early warning information about potentially critical situations relating to a section or to a controlled transport line component, thus making it possible to prepare any maintenance interventions in advance and taking into account the specific hazards of the distribution line in question, the accessibility of which may very often be difficult at the site of the section in question.
[0051] However, it is understood that what has been described above has exemplary and non-limiting values, and therefore any detailed variations that may necessarily occur for technical and / or functional reasons are considered to be included hereafter within the same scope of protection defined by the claims reported below.
Claims
1. A method for evaluating a compensating joint (21) inserted in a section of a line for the transportation of hydrocarbons or other fluids, said compensating joint (21) being interposed between successive sections (1a, 1b) of a section line (1), said method comprising the steps of: - obtaining deformation data relating to the response of the section line (1) to mechanical stresses applied thereto, using deformation detection means (102) installed between different points of the sections (1a, 1b) and / or between the sections (1a, 1b) and the compensation joint (21); - transferring said data in the form of digital or analog signals to a computer-controlled central unit (3) equipped with an interface for said deformation detection means (102), said method further comprising: - processing said deformation data, including the number, direction and extent of said deformations, using a computer program implementing a suitable evaluation algorithm to obtain an evaluation index of the predictable remaining service life of said compensation joint (21), said evaluation being based on a plurality of reference parameters and / or thresholds stored in said program or algorithm, and comparing said deformation data detected by all of said deformation detection means (102) with at least one stress threshold and at least one failure threshold, respectively, for said compensation joint (21), to obtain signals of the occurrence of a stress situation or a failure risk situation, which results in a deterioration of the integrity and / or the state of remaining service life of said compensation joint (21); - periodically generating reports on the state of the integrity of said compensation joint (21) and on the remaining expected service life of said compensation joint (21); A method comprising:
2. 2. The method according to claim 1, characterized in that said evaluation of the integrity and the remaining useful life comprises a comparison of each of the detected deformation data, performed at a specific moment, with a first stress threshold and a first failure threshold for each of the deformation detection means (102), and signaling, for the compensation joint (21), the occurrence of a sudden stress situation or a risk of failure situation, respectively, which results in a deterioration of the integrity and / or remaining useful life state of the compensation joint (21).
3. 2. The method according to claim 1, characterized in that said assessment of the integrity and remaining useful life comprises: the comparison of the detected deformation data taking into account the sum and / or average of the values of the deformation data detected over a period of time, compared for all of said deformation detection means (102) with a second stress threshold and a second failure threshold, respectively, to signal for said compensating joint (21) the occurrence of a long-term stress situation or a situation of risk of failure, which results in a deterioration of the state of integrity and / or remaining useful life of said compensating joint (21).
4. 4. The method according to claim 2 or 3, characterized in that said deformation data comprises expansion or compression deformation data detected by each of said deformation detection means (102).
5. 4. A method according to claim 2 or 3, characterized in that said deformation data comprises acceleration values detected by each of said deformation detection means (102).
6. 2. The method according to claim 1, characterized in that said processing of said deformation data is performed in said central unit (3) prior to transmission of said periodic reports to at least one person in charge of the operation center and / or surveillance of said section line (1) using remote data transmission means (4).
7. 2. The method according to claim 1, characterized in that said processing of said deformation data is carried out in a remote operating center after transmission carried out by means of remote data transmission means (4), said central unit (3) being instructed to transmit said raw deformation data to said remote operating center, said remote operating center being responsible for generating said periodic reports.
Citation Information
Patent Citations
Controlling method for settling of buried piping
JP1992285839A
Method and apparatus for monitoring the behavior of fluid-filled conduits under pressure
JP2006522324A
Monitoring systems for sections or components of pipelines for the transportation of hydrocarbons, installed at hazardous sites
JP2020514651A
Real time subsea monitoring and control system for pipelines
US20050283276A1
Management system for marine hose
WO2006070700A1