Device for measuring at least one electrical quantity and associated functional diagnostic system

A non-invasive measuring device for electrical installations addresses the need for easy installation and accurate diagnostics by measuring electrical quantities without modifying existing wiring, enabling efficient predictive maintenance through data transmission.

FR3168444A1Pending Publication Date: 2026-05-15SCHNEIDER ELECTRIC IND SAS
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Patent Information

Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
SCHNEIDER ELECTRIC IND SAS
Filing Date
2024-11-08
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Existing electrical installation diagnostics require invasive wiring modifications and complex calculations, necessitating high-data-rate communication links for accurate predictive maintenance, especially in industrial settings.

Method used

A non-invasive measuring device for electrical installations that attaches to contactor devices, allowing for electrical quantity measurements via flexible cables and springs, with a communication interface for transmitting data to a supervisory device for diagnostics.

Benefits of technology

Enables easy installation and accurate electrical quantity measurements without modifying existing wiring, facilitating predictive maintenance through efficient data transmission.

✦ Generated by Eureka AI based on patent content.

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Abstract

Device for measuring at least one electrical quantity and associated functional diagnostic system. The invention relates to a device (4) for measuring at least one electrical quantity of an electrical signal circulating in a contactor device (2), the contactor device (2) comprising, for each phase among N phases, a contact element (18) connected to a phase electrical conductor (15), the at least one electrical quantity comprising a voltage, the measuring device (4) being configured to be installed on the front of said contactor device (2), and comprising an electronic control unit (24) comprising N flexible cables (26), and for each phase: -a connection assembly (20) connected to one of said flexible cables (26), -an actuation piece (22) of the connection assembly (20),configured to be moved from a free position in which the connection assembly (20) is electrically isolated from the contactor device to a locked position in which the connection assembly (20) is in contact with one of said contact elements (18) of the contactor device. Figure for the abbreviation: Figure 2,
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Description

Title of the invention: Device for measuring at least one electrical quantity and associated functional diagnostic system

[0001] The present invention relates to a device for measuring at least one electrical quantity of an electrical signal circulating in a contactor device of at least one electrical conductor in an electrical installation.

[0002] The invention also relates to a system for diagnosing the operation of an electrical installation comprising such a measuring device.

[0003] The invention is in the field of the control of the operation of electrical installations, and more particularly of the diagnostics of the operation of electrical installations, especially for electrical installations in industrial fields requiring the control of motors.

[0004] Such electrical installations include electrical equipment such as electric motors, heating resistors or power circuits in general.

[0005] Contactor devices are known that are configured to allow or block the flow of an N-phase electrical signal in electrical equipment, where N is an integer greater than or equal to 1. For example, N=3 in the case of an electrical installation supplied by a three-phase distribution network.

[0006] A contactor device comprises a housing and connection contact terminals (or power contact terminals and auxiliary contact terminals), the various terminals generally being accessible on the front of the housing.

[0007] For electrical installations, in general, several contactor devices are arranged in an electrical cabinet of chosen dimensions.

[0008] To carry out a diagnostic of the operation of an electrical installation, for example in order to carry out predictive maintenance of connected electrical equipment, such as electric motors, it is necessary to collect measurements of electrical quantities, in particular measurements of current consumed by loads and voltage between electrical conductors over operating periods.

[0009] It is preferable to carry out measurements of electrical quantities in a non-invasive manner, that is to say without having to make modifications to the wiring in an existing electrical installation.

[0010] Furthermore, since operational diagnostics require complex calculations, it is generally necessary to transmit the collected current and voltage measurements, via a communication link, to a remote computing device with sufficient processing power. For this reason, for complex electrical installations, a communication link with sufficient data rate is required.

[0011] To this end, the invention relates to a device for measuring at least one electrical quantity of an electrical signal circulating in a contactor device of at least one electrical conductor in an electrical installation, the contactor device being configured to allow or block the circulation of an N-phase electric current in at least one electrical equipment, N being an integer greater than or equal to 1, connected via said at least one electrical conductor, the measuring device comprising a housing configured to be installed on the front of said contactor device, the contactor device comprising, for each phase, a contact element connected to the electrical conductor of said phase and accessible via the front of the contactor device, the at least one electrical quantity comprising a voltage.

[0012] This measuring device comprises an electronic control unit with N flexible cables, and for each phase:

[0013] -a connection assembly connected to one of said flexible cables,

[0014] -an actuation piece of the connection assembly, the connection assembly being partially inserted into the actuation piece, the actuation piece being configured to be moved to pass, when the measuring device is installed on the contactor device, from a free position in which the connection assembly is electrically isolated from the contactor device to a blocked position in which the connection assembly is in contact with one of said contact elements of the contactor device.

[0015] Advantageously, the installation of the proposed measuring device does not require electrical wiring, and therefore no modification in an existing electrical installation, the voltage being measured from the electrical signal captured via the connection assembly and the associated flexible ribbon when the actuating part is in the locked position.

[0016] According to other advantageous aspects of the invention, the measuring device comprises one or more of the following features, taken individually or in all technically possible combinations.

[0017] The actuating part is configured to be translated along a given axis and rotated a quarter turn around said axis to pass respectively from the free position to the blocked position and vice versa a.

[0018] The housing comprises a hood, the hood comprising N guide receptacles, the actuating part being inserted into one of said guide receptacles and being configured to be guided in translation in said guide receptacle, and in which the actuating part comprises at least one retaining lug, said retaining lug being configured to insert, after translation and rotation around said axis, into a corresponding retaining housing formed in the hood.

[0019] The connection assembly comprises a conductive element and an insulating sleeve, the insulating sleeve partially surrounding the conductive element, the conductive element further comprising a probe tip configured to press against the contact element in the locked position.

[0020] Each flexible ribbon has an end eyelet made of conductive material, arranged around the associated connection assembly, so as to conduct an electrical signal between said connection assembly and the electronic control unit when the actuating part is in the locked position.

[0021] The conductive element has a shoulder, the insulating sheath being positioned in support of said shoulder.

[0022] It further comprises a first spring and a second spring, said first spring and second spring surrounding the connection assembly and being disposed on either side of said shoulder, the first spring being disposed between the actuating part and said shoulder of the conducting element.

[0023] The second spring is made of conductive material, the second spring being configured to be in contact with the flexible ribbon in the locked position, the second spring making an electrical connection between the conductive element of the connection assembly and said flexible ribbon.

[0024] The measuring device further configured to perform current measurements for each electrical conductor.

[0025] The measuring device further includes a communication interface to allow connection to a communication network, the communication interface being configured to transmit messages containing said measurements of at least one electrical quantity to a supervisory device connected to said communication network.

[0026] The invention also relates to a system for diagnosing the operation of an electrical installation, comprising a measuring device as briefly described above, the measuring device being installed on a contact device of said electrical installation, the diagnostic system also comprising a supervisory device, the measuring device being configured to transmit measurements of at least one electrical quantity to said supervisory device via a communication network, the supervisory device being configured to implement at least one method for diagnosing the operation as a function of at least one measurement of an electrical quantity received.

[0027] The invention will become clearer upon reading the following description, given solely by way of non-limiting example, and made with reference to the drawings in which:

[0028] [Fig-1] [Fig. 1] is a perspective view of a contactor device and a measuring device installed on the front of the contactor device;

[0029] [Fig.2] [Fig.2] is a cross-sectional view of a measuring device and a device contactor according to two distinct positions of a connection assembly of the measuring device;

[0030] [Fig.3] [Fig.3] represents a connection assembly and an actuating part according to a particular embodiment;

[0031] [Fig.4] [Fig.4] represents a first cover of a measuring device and a detail of an actuation part;

[0032] [Fig.5] [Fig.5] represents a detail of [Fig.2] in the locked position;

[0033] [Fig.6] [Fig.6] represents a second hood of a measuring device;

[0034] [Fig.7] [Fig.7] is a synoptic diagram of the main functional blocks of a system diagnostic tool including a measuring device.

[0035] Fig. 1 illustrates a contactor device 2 and a measuring device 4 installed on the front of the contactor device.

[0036] The contactor device 2 is intended to be installed in an electrical installation not shown.

[0037] In various applications, the contactor device 2 is installed in an electrical panel or in an electrical cabinet by means of fixing parts of the rear part 6 of its housing 8. The front face of the housing 8, also called the front 10 of the contactor device 2, is accessible to an operator.

[0038] In the following description, the term connected refers to an electrical connection, and the term conductor is understood as an electrical conductor.

[0039] The measuring device 4 includes a housing 12, the housing 12 of the measuring device being configured to be mechanically fixed, for example by clipping, onto the contactor device 2, and more particularly onto the front face 10 of the housing 8 of the contactor device 2.

[0040] The housing 12 comprises a first cover 17, or front cover, and a second cover 19, or rear cover, the rear cover being at least partially in contact with the front face 10 of the housing 8 when the measuring device 4 is installed on the contactor device 2.

[0041] The contactor device 2 has connection terminals 14 for electrical conductors (not shown in [Fig.1]).

[0042] In the illustrated example, the contactor device 2 has three connection terminals 14 corresponding respectively to a three-phase electrical installation, each connection terminal being associated with a phase electrical conductor.

[0043] More generally, the contactor device 2 is configured to allow or block the flow of N-phase electric current, and comprises a number N of connection terminals, N being an integer greater than or equal to 1, preferably greater than or equal to 2.

[0044] Each respective connection terminal 14 includes an electrical contact element 18 (also referred to as contact element 18) with the electrical conductor 15, as illustrated in [Fig.2].

[0045] For example, the electrical contact element 18 is a conductive screw head of a screw-nut assembly. When an electrical conductor 15 is connected via a connection terminal 14, the electrical contact element 18 is electrically connected to the electrical conductor 15.

[0046] The measuring device 4 is configured to measure electrical quantities of the electrical signal flowing in the electrical conductor 15, via an electrical connection mechanism on the front 35 to the electrical contact element 18 of the corresponding connection terminal 14.

[0047] In the following description, with reference to figures 2 to 6, the elements contributing to the realization of this front electrical connection mechanism 35 for a phase electrical conductor 15 are described, it being understood that the measuring device 4 comprises as many front electrical connection mechanisms as terminals 14.

[0048] Fig. 2 represents, on two inserts referenced B1 and B2, cross-sectional views of the measuring device 4 in two positions, respectively a so-called free position (insert B1) and a so-called blocked position (insert B2), described in detail below.

[0049] It should be noted that the contactor device 2 and the measuring device 4 are shown in an exploded cross-sectional view in [Fig.2] to facilitate understanding of the various elements.

[0050] The measuring device 4 comprises, for each phase, a connection assembly 20 arranged in an actuation piece 22. The connection assembly 20 and the actuation piece 22 cooperate to achieve the electrical connection mechanism on the front 35.

[0051] The measuring device 4 also includes an electronic control unit 24, comprising N flexible ribbons 26 extending outside the electronic control unit, each flexible ribbon 26 having a conductive area.

[0052] The connection assembly 20 is partially inserted into the actuating piece 22, so that the movement of the actuating piece 22 causes the movement of the connection assembly 20.

[0053] The actuating part 22 is inserted into a guide receptacle 32 of the housing 12 of the measuring device, in practice the guide receptacle 32 (or guide housing) being formed in the first hood 17 of the housing 12 of the measuring device.

[0054] The actuating part 22 is configured to be translated along an axis A and rotated a quarter turn around said axis.

[0055] In one embodiment, the actuating part 22 is substantially cylindrical in shape, and the guide receptacle 32 has a similar shape, with a diameter adapted relative to the diameter of the actuating part 22.

[0056] The axis A is defined with respect to the receptacle 32, for example the receptacle 32 is substantially cylindrical and the axis A is the central axis of the cylinder forming the receptacle 32.

[0057] The actuating part 22 has a tip 25 with a notch, accessible at the front of the housing 12 of the measuring device, adapted to be pushed and turned by means of an external element, for example by means of a screwdriver (not shown in the figures).

[0058] The arrangement of the receptacle 32 and the actuation piece 22 in this receptacle is such that when the measuring device 4 is installed on the front of the contactor device 2, the housing 32 is aligned with the connection terminal 14, as shown in [Fig.2].

[0059] The actuating part 22 is configured to be moved from the free position (insert B1) to the blocked position (insert B2) and vice versa. In the free position, there is no contact with the contact element 18.

[0060] Starting from the free position (insert B1 of [Fig.2]), when the actuating part 22 is translated towards the contactor device 2 (direction indicated by the arrow on axis A), the connection assembly 20 comes to rest against the electrical contact element 18 of the connection terminal 14 in the locked position, as shown in insert B2. Thus, in the locked position, the connection assembly 20 is in physical and electrical contact with the electrical contact element 18 of the connection terminal 14.

[0061] In one embodiment, and as illustrated in more detail in [Fig.4], in order to keep the connection assembly 20 in contact with the electrical contact element 18, in the locked position, the actuating part 22 includes retaining lugs 34, for example two diametrically opposed retaining lugs, configured to fit into retaining housings 36 of the first cover 17 of the housing 12 of the measuring device 4, after translation in the guide receptacle 32, in the direction of the contacting device 2, and rotation of the actuating part 22 a quarter turn around the axis A.

[0062] Furthermore, the connection assembly 20 is guided towards the connection terminal 14 through rear housings 31 which are formed in the second cover (or rear cover) 19. The rear housing 31 is configured to be aligned with the terminals connection 14 when the measuring device 4 is installed on the contactor device 2.

[0063] As illustrated in more detail in [Fig.3], the connection assembly 20 comprises a conductive element 38, e.g. a metallic element, comprising a test point 40, and a sheath 42 made of insulating material, for example plastic.

[0064] The conductive element 38 forms a metallic core of the connection assembly 20 and extends over the entire connection assembly 20. The probe tip 40 is the end of the connection assembly 20, located opposite the actuating part 22. The probe tip 40 is the part of the connection assembly 20 which bears against the contact element 18 in the locked position, and exerts a pressure force on the contact element 18 in this locked position.

[0065] The test tip 40 preferably has a disc shape, with a diameter close to the diameter of the screw head forming the contact element 18.

[0066] As illustrated in [Fig.3], in one embodiment, the sheath 42 partially covers the conductive element 38.

[0067] In addition, the conducting element 38 has a shoulder 44, as can be seen more particularly in [Fig.3].

[0068] The sheath 42 is, in the embodiment of [Fig.3], supported on the shoulder 44.

[0069] The front connection mechanism further comprises two springs, respectively a first spring 46 and a second spring 48, which are arranged on either side of the shoulder 44 of the conductive element 38.

[0070] The first spring 46, also called the retaining spring, is located between the actuating part 22 and the shoulder 44 of the conductive element 38 of the connection assembly. The function of this first spring 46 is to maintain a contact force by pressing the probe tip 40 into the locked position.

[0071] Preferably, the first spring 46 is chosen so that the contact pressure force exerted by the connection assembly 20 on the contact element 18 is at least equal to INewton.

[0072] The second spring 48 has a return spring function for the connection assembly when disassembling the measuring device 4.

[0073] In addition, the second spring 48 is made of conductive material (metal spring) and also has an electrical contact function, allowing the flow of an electrical signal between the contact element 18 and the electronic control unit 24, via the flexible ribbon 26 which is electrically connected to one end of the spring 48 in the locked position.

[0074] Preferably, the force of the first spring 46, in the blocked position, is greater by at least 1 Newton than the force of the second spring 48.

[0075] Preferably the first spring 46 and the second spring 48 are treated so as to be conductive on the surface, for example by tinning or nickel plating.

[0076] In one embodiment the flexible ribbon 26 has an end eyelet 50 made of conductive material, and the connection assembly 20 passes through the end eyelet 50, as illustrated in particular in [Fig.5].

[0077] The second spring 48 is disposed between the shoulder 44 and the end eyelet 50. In the locked position, the end eyelet 50 abuts against a stop element 33, which belongs to the second cover 19 in one embodiment, illustrated in [Fig. 6]. In the locked position, one end of the second spring 48 rests on the shoulder 44 and the other end of the second spring 48 rests on the end eyelet 50, which abuts the stop element 33. Advantageously, the stop element 33 ensures mechanical contact and electrical connection between the end eyelet 50 and the second spring 48.

[0078] The second spring 48 conducts an electrical signal between the shoulder 44 and the end eyelet 50, which allows the electrical signal to be routed via the flexible ribbon 26 to the electronic control unit 24.

[0079] Thus, the actuation piece 22, the connection assembly 20, the flexible ribbon 26 and the electronic control unit 24, in the arrangement described above, cooperate to perform a voltage measurement at the electrical contact element 18 of the contactor device 2.

[0080] Furthermore, in one embodiment, the electronic control unit 24 is also configured to perform measurements of the electric current consumed by a load (e.g., electrical equipment) connected downstream of the contactor 2.

[0081] In one embodiment, the measurements of electric current consumed by the load (not shown) are carried out by current sensors arranged on phase cables connected to the downstream terminals of the contactor 2. Each respective current sensor is connected by a conducting wire to the electronic control unit 4.

[0082] The [Fig.7] is a synoptic diagram of the main functional blocks of a system 60 for the diagnostic operation of an electrical installation comprising at least one electrical equipment 62 connected via a contactor device 2 to an electricity source not shown.

[0083] The diagnostic system 60 includes a measuring device 4 as described above, comprising a front connection mechanism 35 as described, and an electronic control unit 24, the connection mechanism 35 allowing the electrical signal from the contactor device 2 to be routed to the electronic control unit 24, for each phase conductor, as described above.

[0084] The electronic control unit 24 is powered by a power supply unit 64 and includes a processor or microcontroller 66, implemented for example in the form of electronic circuit designed to manipulate and / or transform data represented by electronic or physical quantities in registers of the control unit and / or memories into other similar data corresponding to physical data in register memories or other types of display devices, transmission devices or storage devices.

[0085] The electronic control unit 24 further comprises a module 68 for dividing and shaping voltage signals, a module 70 for acquiring current and voltage signals and for shaping current signals from the respective current sensors.

[0086] In some embodiments, module 66 is implemented as a programmable logic component, such as an FPGA (Field Programmable Gate Array), or as an integrated circuit, such as an ASIC (Application-Specific Integrated Circuit). Module 68 is, for example, implemented as a resistor bridge. Module 70 is, for example, an analog-to-digital converter (ADC).

[0087] The electronic control unit 24 further includes a communication interface 72, configured to allow connection to a communication network 74, for example a 10BASE-T1S Ethernet wired network.

[0088] The electronic control unit 24 is thus configured to provide current measurements 75 and voltage measurements 77, which are formatted into communication messages 80 and transmitted, via the communication network 74, to a supervisory device 82.

[0089] The monitoring device 82 is also equipped with a communication interface 84, adapted to communicate with the communication interface 72 of the measuring device.

[0090] The supervisory device 82 further includes a controller 86 configured to perform operational diagnostic calculations based on received electrical measurement quantities, i.e. voltage measurements and received current measurements, according to known operational diagnostic methods.

[0091] According to variants, the measuring device is configured to provide voltage measurements 77 only, and the monitoring device 82 is configured to perform operational diagnostic calculations from the received voltage measurements.

[0092] Thus, it is possible from such a diagnostic of operation to highlight situations which deviate from nominal operation, and to subsequently plan predictive maintenance measures in order to avoid the occurrence of a failure of the electrical equipment 62.

[0093] Advantageously, the measuring device 4 is equipped with a communication interface enabling communication at a sufficient data rate for transmit voltage measurements, and optionally current measurements, allowing for diagnostic calculations of operation.

[0094] Advantageously, the measuring device 4 can be installed on the front of a contactor device 2 without requiring any modification to the electrical wiring. Thus, the installation of such a device is easy and non-invasive, and is compatible with taking measurements on existing electrical installations.

Claims

Demands

1. A measuring device (4) for at least one electrical quantity of an electrical signal flowing in a contactor device (2) of at least one electrical conductor (15) in an electrical installation, the contactor device (2) being configured to allow or block the flow of an N-phase electric current in at least one electrical equipment, N being an integer greater than or equal to 1, connected via said at least one electrical conductor (15), the measuring device (4) comprising a housing (12) configured to be installed on the front (10) of said contactor device (2), the contactor device (2) comprising, for each phase, a contact element (18) connected to the electrical conductor (15) of said phase and accessible via the front (10) of the contactor device (2), the at least one electrical quantity comprising a voltage,The measuring device (4) is characterized in that it comprises an electronic control unit (24) having N flexible cables (26), and for each phase: - a connection assembly (20) connected to one of said flexible cables (26), - an actuating part (22) of the connection assembly (20), the connection assembly (20) being partially inserted into the actuating part (22), the actuating part (22) being configured to be moved, when the measuring device (4) is installed on the contactor device (2), from a free position in which the connection assembly (20) is electrically isolated from the contactor device (2) to a locked position in which the connection assembly (20) is in contact with one of said contact elements (18) of the contactor device (2).

2. Measuring device according to claim 1, wherein said actuating part (22) is configured to be translated along a given axis (A) and rotated a quarter turn around said axis (A) to pass respectively from the free position to the blocked position and vice versa.

3. A measuring device according to claim 2, wherein the housing (12) comprises a cover (17), the cover (17) comprising N guide receptacles (32), the actuating part (22) being inserted into one of said guide receptacles (32) and being configured to be guided in translation in said guide receptacle (32), and in which the actuating part (22) has at least one retaining lug (34), said retaining lug (34) being configured to fit, after translation and rotation about said axis (A), into a corresponding retaining housing (36) formed in the hood (17).

4. Measuring device according to any one of claims 1 to 3, wherein the connection assembly (20) comprises a conductive element (38) and an insulating sleeve (42), the insulating sleeve (42) partially surrounding the conductive element (38), the conductive element (38) further comprising a test probe configured to bear against the contact element (18) in the locked position.

5. Measuring device according to claim 4, wherein each flexible ribbon (26) has an end eyelet (50) of conductive material, arranged around the associated connection assembly (20), so as to conduct an electrical signal between said connection assembly (20) and the electronic control unit (24) when the actuating part (22) is in the locked position.

6. Measuring device according to claim 4 or 5, wherein the conductive element (38) has a shoulder (44), the insulating sheath being positioned in support of said shoulder.

7. Measuring device according to claim 6 further comprising a first spring (46) and a second spring (48), said first spring (46) and second spring (48) surrounding the connection assembly (20) and being disposed on either side of said shoulder (44), the first spring (46) being disposed between the actuating part (22) and said shoulder (44) of the conducting element.

8. Measuring device according to claim 7 dependent on claim 5, wherein the second spring (48) is made of conductive material, the second spring (48) being configured to be in contact with the flexible ribbon (26) in the locked position, the second spring (48) making an electrical connection between the conductive element (38) of the connection assembly and said flexible ribbon (26).

9. Measuring device according to any one of claims 1 to 8, further configured to perform current measurements for each electrical conductor.

10. A measuring device according to any one of claims 1 to 9, further comprising a communication interface (72) for enabling connection to a communication network (74), the communication interface (72) being configured to transmit messages (80) containing said measurements of at least one electrical quantity to a supervisory device (82) connected to said communication network (74).

11. Diagnostic system (60) for the operation of an electrical installation, comprising a measuring device (4) according to any one of claims 1 to 10, the measuring device (4) being installed on a contact device (2) of said electrical installation, the diagnostic system (60) also comprising a supervisory device (82), the measuring device (4) being configured to transmit measurements of at least one electrical quantity to said supervisory device (82) via a communication network, the supervisory device (82) comprising a controller (86) configured to perform diagnostic calculations of operation as a function of at least one measurement of an electrical quantity received.