Online monitoring system for one or more electrical cables in an electrical distribution network

FR3150868B1Active Publication Date: 2025-10-03NEXANS SA
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Patent Information

Application Number
FR2023007089
Authority / Receiving Office
FR · FR
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-07-04
Publication Date
2025-10-03
Estimated Expiration
2043-07-04

AI Technical Summary

Technical Problem

Existing monitoring systems for underground medium voltage electrical cables are costly, lack precision in temperature profiling, and fail to detect partial discharges, acoustic signals, and deformations, necessitating frequent maintenance and high replacement costs.

Method used

A cost-effective online monitoring system with a central unit and distributed data acquisition units, equipped with varying subsets of measurement sensors, including temperature, acoustic, and inductive sensors, that preprocess and transmit data via wired or wireless links to a central unit for comprehensive cable health assessment.

Benefits of technology

Provides precise temperature profiling, detects partial discharges and acoustic signals, and adapts to network architecture, reducing maintenance costs and ensuring rapid fault detection without network shutdowns.

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Abstract

The invention relates to an online monitoring system for a set of electrical cables (1) connected in series in an electrical distribution network, comprising a central unit (2) located on a portion of said set and data acquisition units (3a, 3b, 3c) distributed along the cables (1) at predefined positions. The system comprises subsets of measurement sensors (4a-1-4a-2, 4b-1-4b-4, 4c-1), the sensors of a subset being associated with the same acquisition unit and distributed over a portion of said cables in the vicinity of said acquisition unit, the number and type of sensors of a subset varying according to the position of the acquisition unit with which these sensors are associated and the size of said portion.Each acquisition unit is configured to receive and pre-process, under the control of the central unit, measurements from the sensors associated with it, and to transmit the pre-processed measurements to the central unit. Figure for short: Fig. 1.
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Description

Title of the invention: Online monitoring system for one or more electrical cables in an electrical distribution network Technical field

[0001] The present invention relates to the general field of monitoring the proper functioning of elements present in an electrical distribution network, in particular electrical cables, and more precisely to an online monitoring system for an assembly comprising one or more electrical cables connected in series in an electrical distribution network. Technological background

[0002] The increase in demand for electricity, due to population growth, economic development and changing consumption patterns, requires increasing investments in electricity distribution networks. In these networks, each time fraction of undistributed energy represents a factor of financial loss. Electricity distribution is also the market that experiences the greatest number of failures for various reasons (geographical extent, diversity of technologies, installation carried out by third parties, etc.)

[0003] Medium voltage (MV) power cables are an integral part of the electricity distribution network that covers large areas and supplies large amounts of energy. The share of underground MV power cables is increasing considerably due in particular to their reliability, safety, longer service life, etc. The uninterrupted operation of underground MV networks is therefore of crucial importance for the overall reliability of the system. Nevertheless, access to these cables is not easy and comes with a high cost, especially since local cellular connectivity is impossible, except at the ends of the cables or on rare occasions (junction wells, etc.).

[0004] Power cables must be able to transmit as much power as possible to meet the fluctuating demands of different markets and environments - especially now that power transmission needs are evolving through the increased deployment of new grid uses, not limited to renewable energy resource (RER) injections, electric vehicles (EVs), etc. This latter phenomenon can reduce technical margins and, in some cases, cause cables to operate dynamically based on the worst-case maximum temperature bottleneck (hot spot).

[0005] On the other hand, climate change has recently been accompanied by conditions More intense and severe adverse environmental events (heat waves, floods, etc.), which have led to unprecedented levels of stress on the power grid, accompanied by an increase in failures and an accelerated rate of aging. This has highlighted the increased importance of power grid resilience. The topic is becoming increasingly pressing as it ensures a reliable supply of electricity, essential to support economic activity, and protects public safety, especially in times of crisis.

[0006] First of all, it is essential to do everything possible to prevent cable failures, as they can be very costly, not only in terms of repair costs, but also in terms of lost revenue and impact on the brand image of energy distributors. In the event of a failure, it is also essential to locate this fault and remedy it as quickly as possible without having to shut down the networks, which would lead to an interruption of the power supply and losses. Therefore, non-intrusive online monitoring systems are essential to prevent the occurrence of such problems.

[0007] The temperature, mechanical, acoustic and electrical profiles of an MV electrical distribution network are all important parameters that can be monitored to enable in-depth inspection and analysis of potential risks that may affect a cable, accessory, etc.

[0008] For example, an electrical cable carrying a high current or operating at a high temperature (heat waves, dry ground, etc.) is at risk of experiencing dielectric thermal stress, which can lead to insulation failure. By monitoring the cable temperature, it is possible to detect when the cable is approaching its maximum temperature and take the necessary measures to avoid failure.

[0009] On the other hand, acoustic signals in electrical cables are accompanied by a variety of factors, such as electrical discharge, mechanical stress or temperature changes, etc. Continuous monitoring of acoustic signals allows these events to be detected and the information to be used to identify potential cable problems.

[0010] Furthermore, measurements of deformation or stretching of a cable make it possible to quantify external forces experienced by the cable, such as mechanical stresses or temperature changes. Thus, by continuously monitoring the deformation of a power cable, it is possible to detect changes in the condition and performance of the cable, as well as the forces acting on it.

[0011] Finally, precursor events of faults (partial discharges, friction, etc.) in electrical networks are generally accompanied by high-frequency transient signals which propagate along the network, thanks to the cable itself which acts as a propagation channel. Monitoring these pulses allows for the detection and localization of potential weak points and therefore provides an early warning approach.

[0012] To date, a distributed optical fiber detection system is already known capable of simultaneously implementing, at the level of a cable to be monitored incorporating an optical fiber, distributed temperature detection (DTS), distributed acoustic detection (DAS), and distributed deformation detection (DSS) solutions. This type of system uses a fiber optic cable integrated into the electrical cable to be monitored and covered with materials sensitive to temperature, deformation and acoustics. By measuring the variations in intensity of the light transmitted by the fiber optic cable, it is possible to determine the temperature, deformation and acoustic signals along the entire length of the cable.While it is common for high-voltage cables to be equipped with optical fibers, underground low- or medium-voltage cables are less likely to be equipped with them, with the decision to include them depending on the specific application requirements (data transmission, etc.), complexity, and concerns about replacement costs. In addition, such fiber-optic systems do not allow for partial discharge measurements.

[0013] Furthermore, document US 2015 / 69998 describes an online monitoring system for an assembly comprising electrical cables connected in series in an electrical distribution network, the system comprising a plurality of identical data acquisition units distributed along the electrical cables at predefined positions, and capable of communicating data between them. Each data acquisition unit consists of a housing which can be fixed along the electrical cables, this housing integrating a plurality of measurement sensors capable of measuring, directly or indirectly, different parameters, for example a current measurement sensor, a surge current measurement sensor, a fault current measurement sensor, an electric field measurement sensor and a line temperature measurement sensor.Such a system cannot anticipate failures related to partial discharges, nor detect acoustic signals and / or deformations in the cables. In addition, such a system cannot derive a sufficiently accurate temperature profile, unless a very large number of boxes are placed at short distances from each other along the cables, to measure the temperature at sufficient points using the temperature sensor integrated in the box. Summary of the invention

[0014] The present invention aims to overcome the drawbacks of the aforementioned systems by proposing a lower-cost system which can diagnose several types of faults in a set of electrical cables connected in series.

[0015] More specifically, the present invention relates to an online monitoring system for an assembly comprising one or more electrical cables connected in series in an electrical distribution network, the system comprising a central unit located on a portion of said assembly under monitoring and a plurality of data acquisition units distributed along said one or more electrical cables at predefined positions, and being characterized in that it further comprises a plurality of sub-assemblies of measurement sensors, the measurement sensors of a given sub-assembly being associated with a single data acquisition unit and distributed over at least a portion of the length of said one or more electrical cables in the vicinity of said single data acquisition unit,in that the number and type of measurement sensors of a given subset vary according to the position of the data acquisition unit with which these measurement sensors are associated and the size of said length portion, and in that each data acquisition unit is configured to receive and pre-process, during acquisition campaigns carried out under the control of the central unit, measurements coming from the measurement sensors associated with it in a given subset, and to transmit the received and pre-processed measurements to the central unit.

[0016] In one possible embodiment, at least one subset of measurement sensors comprises a plurality of measurement sensors of the same nature distributed over said portion of length.

[0017] In one possible embodiment, at least one subset of measuring sensors comprises two or more temperature sensors and / or two or more acoustic signal sensors distributed over said length portion.

[0018] In one possible embodiment, at least two subsets of measurement sensors comprise an inductive sensor configured to detect pulse events caused by partial discharges.

[0019] In one possible embodiment, the measurement sensors of a given subset transmit their measurements to the data acquisition unit associated with them via a wired or wireless communication link.

[0020] Each data acquisition unit may advantageously be configured to transmit the received and preprocessed measurements to the central unit via said one or more electrical cables.

[0021] The system may further comprise a remote unit with which the central unit exchanges data via an Internet network, the central unit being configured to transmit data based on an aggregation of the received and preprocessed measurements.

[0022] The central unit is located for example on an end portion of said assembly under surveillance.

[0023] In one possible embodiment, two data acquisition units consecutive are separated by a distance of the order of a kilometer, and the size of said portion of length is between 50 and 500 meters. Description of embodiment(s)

[0024] [Fig. 1] partially and schematically illustrates an assembly comprising one or more electrical cables 1 connected in series in an electrical distribution network, and an online monitoring system for this assembly in accordance with the invention. The electrical distribution network is for example a high voltage or medium voltage network, composed of a plurality of electrical cables such as the electrical cable 1, connection or hook-up accessories, equipment and / or transformers.

[0025] The system comprises a central unit 2 located on a portion of said assembly under surveillance. In the case of an underground electrical distribution network, the central unit 2 is preferably located on an end portion of the assembly under surveillance.

[0026] The system also comprises a plurality of data acquisition units, such as the three data acquisition units 3a, 3b and 3c, distributed along said one or more electrical cables 1 at predefined positions. By way of non-limiting example, two consecutive data acquisition units may be separated by a distance of the order of a kilometer.

[0027] Each data acquisition unit can be powered either by a battery or by an integrated energy harvesting module from the current flowing in the electrical cables. The energy harvesting module is particularly interesting because it does not require battery maintenance and avoids costly civil engineering work to access the cable. Thus, the acquisition units can be installed on the cable, and the cable buried without further planned maintenance.

[0028] The system further comprises a plurality of sub-assemblies of measurement sensors, such as the first sub-assembly consisting of the two measurement sensors 4a_i and 4a_2, the second sub-assembly consisting of the four measurement sensors 4b_i to 4^, and the third sub-assembly comprising the measurement sensor 4c_i.

[0029] As illustrated in [Fig.l], the measurement sensors of a given subassembly are associated with a single data acquisition unit and distributed over at least a portion of the length of said one or more electrical cables 1 in the vicinity of said single data acquisition unit. Thus in particular: - the first subassembly consisting of the two measuring sensors 4a_i and 4a 2 is associated with the data acquisition unit 3a and forms with this unit a subsystem referenced Ea in the figure; - the second sub-assembly consisting of the four measuring sensors 4b_i to 4b 4 is associated with the data acquisition unit 3b and forms with this unit a sub-system referenced Eb in the figure; and - the third subassembly comprising the measuring sensor 4c4 is associated with the data acquisition unit 3C and forms with this unit a subsystem referenced Ec in the figure.

[0030] Each data acquisition unit 3a, 3b, 3C is configured to receive and pre-process, during acquisition campaigns carried out under the control of the central unit 2, measurements coming from the measurement sensors associated with it in a given sub-assembly, and to transmit the received and pre-processed measurements to the central unit 2. In other words, each sub-system, such as the sub-systems Ea, Eb and Ec of the figure, is a slave sub-system making it possible to acquire the measurements from the associated measurement sensors distributed over the corresponding portion of cable length, on command from the master unit 2.

[0031] The number and type of measurement sensors constituting each sub-assembly vary according to the position of the data acquisition unit with which these measurement sensors are associated and the size of the portion of length associated with the sub-assembly. By way of non-limiting example, if the consecutive data acquisition units are distant, the size of the portion of length associated with each sub-assembly may be between 50 and 500 meters.

[0032] The monitoring system therefore offers great flexibility since it is possible to adapt the composition of each subset of measuring sensors according to the actual architecture of the distribution network under monitoring. For example, it is possible to choose to place acoustic signal sensors in particular areas of the network, such as areas close to accessories or junctions.

[0033] In a possible embodiment of the system according to the invention, it can be provided that at least one subset of measurement sensors comprises a plurality of measurement sensors of the same nature distributed over said portion of length.

[0034] It is also possible to provide a system in which at least one subset of measuring sensors comprises two or more temperature sensors and / or two or more acoustic signal sensors distributed over said portion of length.

[0035] Preferably, all the measuring sensor subassemblies comprise a plurality of temperature sensors distributed over their respective length portion. This makes it possible to have, at low cost, a large quantity of temperature measurement points along the cables. For example, for a set of cables 10 km long, it is possible to provide: - to have a data acquisition unit every kilometer; and - that all sensor sub-assemblies include temperature measurement sensors distributed every 5 to 10 meters over a length of between 50 and 500 meters on one side of the acquisition unit, or from 100 meters to kilometers on either side of an acquisition unit.

[0036] Alternatively or in combination, it may also be provided that at least two subsets of measurement sensors of the system comprise an inductive sensor configured to detect pulse events caused by partial discharges.

[0037] In all cases, the measurement sensors of a given subset transmit their measurements to the data acquisition unit associated with them via a wired and / or wireless communication link (for example according to the WiFi or Bluetooth protocol).

[0038] In a possible embodiment of the monitoring system according to the invention, each data acquisition unit 3a, 3b, 3C is configured to transmit the received and preprocessed measurements to the central unit 2 via said one or more electrical cables 1.

[0039] As illustrated in the non-limiting example of the figure, the system also comprises a remote unit 6 with which the central unit 2 exchanges data via an Internet network 7. In this case, the central unit 2 transmits to the remote unit 6 data based on an aggregation of the received and preprocessed measurements.

Claims

Claims

1. System for online monitoring of an assembly comprising one or more electrical cables (1) connected in series in an electrical distribution network, the system comprising a central unit (2) located on a portion of said assembly under monitoring and a plurality of data acquisition units (3a, 3b, 3C) distributed along said one or more electrical cables (1) at predefined positions, and being characterized in that it further comprises a plurality of sub-assemblies of measurement sensors (4a_i-4a_2, 4b_i-4b_4, 4c.i), the measurement sensors of a given sub-assembly being associated with a single data acquisition unit and distributed over at least a portion of the length of said one or more electric cables (1) in the vicinity of said single data acquisition unit, in that the number and type of measurement sensors of a given sub-assembly vary according to the position of the data acquisition unit with which these measurement sensors are associated and the size of said portion of length, and in that each data acquisition unit (3a, 3b, 3C) is configured to receive and pre-process, during acquisition campaigns carried out under the control of the central unit (2), measurements coming from the measurement sensors associated with it in a given sub-assembly, and to transmit the received and pre-processed measurements to the central unit (2).

2. Monitoring system according to claim 1, in which at least one subset of measurement sensors comprises a plurality of measurement sensors of the same nature distributed over said portion of length.

3. Monitoring system according to any one of the preceding claims, wherein at least one subset of measuring sensors comprises two or more temperature sensors and / or two or more acoustic signal sensors distributed over said length portion.

4. Monitoring system according to any one of the preceding claims, in which at least two subsets of measuring sensors comprise an inductive sensor configured to detect pulse events caused by partial discharges.

5. A monitoring system according to any preceding claim, wherein the measurement sensors of a given subset transmit their measurements to the associated data acquisition unit via a wired or wireless communication link.

6. Monitoring system according to any one of the preceding claims, wherein each data acquisition unit (3a, 3b, 3C) is configured to transmit the received and pre-processed measurements to the central unit (2) via said one or more electrical cables (1).

7. A monitoring system according to any preceding claim, further comprising a remote unit (6) with which the central unit (2) exchanges data via an Internet network (7), the central unit (2) being configured to transmit data based on an aggregation of the received and preprocessed measurements.

8. Surveillance system according to any one of the preceding claims, in which the central unit (2) is located on an end portion of said assembly under surveillance.

9. A monitoring system according to any preceding claim, wherein two consecutive data acquisition units are separated by a distance of the order of a kilometer, and the size of said length portion is between 50 and 500 meters.