Power converter incorporating a partial discharge detection circuit.

The power converter integrates common-mode capacitors as decoupling capacitors with detection devices to measure partial discharges, addressing the complexity of external power supply requirements and enhancing detection accuracy.

FR3162573A1Pending Publication Date: 2025-11-28SAFRAN ELECTRICAL & POWER
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
FR2024005346
Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-05-24
Publication Date
2025-11-28

AI Technical Summary

Technical Problem

Existing methods for measuring partial discharges in power electronic devices require external high-voltage power supplies and additional decoupling capacitors, making them difficult to implement.

Method used

A power converter incorporating a DC filtering stage and an inverter with integrated common-mode capacitors that function as decoupling capacitors, along with a detection device using voltage and current measurement circuits to detect partial discharges without additional capacitors, and optionally employing Rogowski coils or high-frequency current transformers for improved accuracy.

Benefits of technology

Enables accurate detection of partial discharges in converters and connected equipment, allowing for timely maintenance actions and preventing insulation damage, while reducing complexity and cost by utilizing existing components.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

A converter (100) comprising a DC filter stage (110) and an inverter (120) connected to the filter stage (110), the filter stage (110) comprising at least some common-mode capacitors (C1, C2, C3, C4). The filter stage (110) comprises a partial discharge current detection device (113; 114) in the converter, the detection device (113; 114) comprising at least one decoupling capacitor and a current measurement circuit (1134; 1144) in the decoupling capacitor, the decoupling capacitor being formed by at least one of the common-mode capacitors (C1, C2; C3, C4). [Figure from the summary: Fig. 1]
Need to check novelty before this filing date? Find Prior Art

Description

Title of the invention: Power converter incorporating a partial discharge detection circuit.

[0001] The present invention relates to the field of electronics and more particularly to the measurement of partial discharges in power electronic devices.

[0002] BACKGROUND OF THE INVENTION

[0003] It is recalled that, according to the IEC 60270 standard, a partial discharge is a localized electrical discharge, generated by a high voltage, which partially short-circuits the insulating gap separating two conductors.

[0004] The classic method for measuring partial discharges, recommended by the IEC 60270 standard, consists of connecting the insulation to the terminals of a voltage generator and measuring the thresholds of occurrence of partial discharges through a coupling capacitor associated with a current measurement and processing circuit.

[0005] It has also been considered to measure partial discharges in electrical devices during use. The method recommended by the standard is then difficult to implement since it requires an external high-voltage power supply, a decoupling capacitor, and an associated measurement circuit.

[0006] SUBJECT OF THE INVENTION

[0007] The invention is notably aimed at enabling a measurement of partial discharges in an electronic device connected to an electrical installation. Summary of the invention

[0008] To this end, the invention provides a converter comprising a DC filtering stage and an inverter connected to the filtering stage, the filtering stage comprising at least common-mode capacitors and a device for detecting partial discharge currents in the converter. The detection device comprises at least one decoupling capacitor and a current measurement circuit in the decoupling capacitor, the decoupling capacitor being formed by at least one of the common-mode capacitors.

[0009] The common-mode capacitors are connected as close as possible to the power supply likely to be a source of interference, thus limiting wiring inductances and having a high cutoff frequency compatible with partial discharge measurement. It is therefore highly advantageous to use at least one of these common-mode capacitors as a decoupling capacitor in a partial discharge current detection device. Partial discharge detection therefore does not use any additional capacitors beyond the common-mode capacitors, which are necessary for the converter's operation anyway. The detection device according to the invention makes it possible to detect partial discharges occurring in the converter and the equipment and cables to which the converter is connected.

[0010] According to optional features, used individually or in whole or in combination: - the filtering stage includes at least two damping resistors each in series with one of the common mode capacitors and the measurement circuit is connected to a voltage measuring device arranged to measure a voltage across at least one of the damping resistors; - the measurement circuit is connected to the voltage measuring device via a high-pass filter; - the detection device is arranged to measure a voltage across the terminals of the two damping resistors; - the measuring circuit is connected to a current measuring device arranged to measure a current in at least one of the common mode capacitors; - the current measuring device includes at least one Rogowski torus arranged on a conductor connecting the common mode capacitor to ground or the current measuring device includes at least one high frequency current transformer arranged on a conductor connecting the common mode capacitor to ground; - the common mode capacitors are mounted on a set of laminated busbars and a printed circuit board extends between the common mode capacitors and the set of laminated busbars and includes a hole for the passage of one leg of one of the common mode capacitors, the current measuring element being printed on the printed circuit board around the hole; - the measurement circuit is connected to the current measuring device via a high-pass filter; - the detection device is arranged to measure a current in the two common-mode capacitors.

[0011] Other features and advantages of the invention will become apparent from the following description of particular, non-limiting embodiments of the invention. Brief description of the drawings

[0012] Reference will be made to the attached drawings, among which:

[0013] [Fig-1] is an electrical diagram of an installation incorporating a power converter;

[0014] [Fig.2] is an electrical diagram of a part of this power converter incorporating a partial discharge detection device according to a first embodiment of the invention;

[0015] [Fig.3] is an electrical diagram of a part of this power converter incorporating a partial discharge detection device according to a second embodiment of the invention;

[0016] [Fig.4a] is a partial schematic, side view of a power converter according to the invention;

[0017] [Fig.4b] is a partial schematic, top view of the printed circuit board of this power converter. DETAILED DESCRIPTION OF THE INVENTION

[0018] With reference to [Fig.1], the power converter according to the invention, generally designated 100, is described herein in application to the supply of an electrical machine 200 to which the power converter is connected by a cable 300. The electrical machine 200 is herein a permanent magnet synchronous machine (PMSM) comprising herein three electromagnetic windings.

[0019] The converter 100 includes a DC current filtering stage 110 and an inverter 120.

[0020] The filtering stage 110 comprises a first line 111 and a second line 112 between which a voltage source establishes a potential difference, each having a common-mode and differential-mode DC filtering inductance L, and each connected to a common-mode capacitor bank. This bank comprises: - a first common-mode capacitor Cl having one plate connected to the first line 111 and one plate connected to ground, - a second common-mode capacitor C2 having one plate connected to the second line 112 and one plate connected to ground, - a third common-mode capacitor C3 having one plate connected to the first line 111 and one plate connected to ground via a first damping resistor RI, - a fourth common mode capacitor C4 having one plate connected to the second line 112 and one plate connected to ground via a second damping resistor R2.

[0021] Common mode capacitors preferably have a capacitance between a few tens and a few hundred nF.

[0022] The filtering stage 110 further includes a first differential filtering capacitor C5 and a second differential filtering capacitor C6 mounted in parallel between the first line 111 and the second line 112.

[0023] The capacitors are preferably positioned on a printed circuit board or on a set of laminated bars (commonly called "busbar"), depending on the power of the power converter, so as to limit loop inductances.

[0024] The inverter 120 includes a positive terminal 121 and a negative terminal 122 connected respectively to the first line 111 and the second line 112, and three terminals 123, 124, 125, each connected, via cable 300, to one of the windings of the electric machine 200. The inverter 120 also includes three arms of series-connected transistors 126 connected in parallel to the first terminal 121 and the second terminal 122; each pair of series-connected transistors 126 having a midpoint connected to one of the terminals 123, 124, 125. The inverter 120 further includes six control inputs 127, one for each of the transistors 126, connected to an electronic control unit (not shown) for cutting the voltage supplied at the output of the filtering stage 110.

[0025] This arrangement of the power converter 100, as shown in [Fig.1], is known in itself and will not be further detailed here.

[0026] The power converter 100 further comprises, according to the invention, a device for detecting partial discharge currents in the power converter 100. The detection device comprises at least one decoupling capacitor and a current measurement circuit in the decoupling capacitor, the decoupling capacitor being formed by at least one of the common-mode capacitors.

[0027] In the two embodiments of the invention which will now be described in relation to Figures 2 and 3, the detection device comprises two decoupling capacitors, each formed by one of the common-mode capacitors.

[0028] With reference to [Fig.2], and according to the first embodiment of the invention, the detection device, generally designated as 113, comprises two voltage acquisition elements 1131.1, 1131.2 each connected on one side to the terminals of one of the damping resistors RI, R2 and on the other side to an input of a summing 1132 having an output connected to a high-pass filter 1133 connected to the measurement circuit 1134.

[0029] The voltage across the damping resistor RI in series with the common-mode capacitor C3 is representative of the current flowing through the common-mode capacitor C3, and the voltage across the damping resistor R2 in series with the common-mode capacitor C4 is representative of the current flowing through the common-mode capacitor C4. Voltage acquisition units 1131.1, 1131.2 are operational amplifier devices.

[0030] The measuring circuit 1134 is arranged to compare the voltage obtained to a threshold and to deduce whether a partial discharge current flows in the common mode capacitors C3, C4.

[0031] The summing junction 1132 allows for the exploitation of measurements of the "positive path" passing through the common-mode capacitor C3 and the damping resistor RI, and of the "negative path" passing through the common-mode capacitor C4 and the damping resistor R2. This makes it possible to measure the partial discharges of a phase at the moment of switching (where the maximum overvoltage occurs), regardless of which transistor is conducting. This results in maximum gain and improved accuracy.

[0032] The high-pass filter 1133 allows the disturbances generated by the switching of the transistors 126 to be suppressed.

[0033] The detection of a partial discharge in equipment can have several consequences.

[0034] On a test bench, the equipment will be declared non-operational and possibly repaired or modified to remedy this problem.

[0035] On equipment in use, for example in flight for equipment installed on an aircraft: - the equipment is shut down to prevent damage to its insulation; or - The values ​​and duration of partial discharges are recorded, without stopping the converter, for subsequent processing to assess the aging of the insulation during a maintenance operation; and / or - an alarm indicating that a maintenance operation is required is activated.

[0036] With reference to [Fig. 3], and according to the second embodiment of the invention, the detection device, generally designated as 114, comprises two Rogowski coils 1141.1, 1141.2 each mounted around the conductor connecting the midpoint to one of the common-mode capacitors C1, C2. The Rogowski coils 1141.1, 1141.2 each have a measurement output connected to an input of a summing junction 1142 having an output connected to a high-pass filter 1143 connected to the measurement circuit 1144.

[0037] The Rogowski toroids 1141.1, 1141.2 measure the current flowing through the common-mode capacitors Cl, C2.

[0038] The summing junction 1132 allows the measurements of the "positive path" passing through the common-mode capacitor C1 and the "negative path" passing through the common-mode capacitor C2 to be used, which makes it possible to measure the discharges partials of a phase at the time of switching (where the maximum overvoltage occurs) regardless of which transistor is conducting.

[0039] The high-pass filter 1143 allows the disturbances generated by the switching of the transistors 126 to be suppressed.

[0040] When common-mode capacitors are mounted on a printed circuit board, it is easy to integrate the measurement as close as possible to the components, either by measuring the voltage across the damping resistors RI and R2 or by integrating the Rogowski coils into the printed circuit board. In such an embodiment, a first part of each turn is printed on the upper surface of the printed circuit board, a second part of each turn is printed on the lower surface of the printed circuit board, and metallized vias electrically connect the two parts of each turn. The integration of Rogowski coils into the printed circuit board is known, for example, from the following documents: - X. Zhao, R. Phukan, C. -. W. Chang, R. Burgos, D. Dong and P. Asfaux, "Design and Optimization of 2x211-kW SiC-Based Aircraft Propulsion Inverter System with High Power Density and High Efficiency", 2023 IEEE Applied Power Electronics Conférence and Exposition (APEC), Orlando, FL, USA, 2023, pp. 1009-1016, doi 10.1109 / APEC43580.2023.10131406; - B. Bayarkhuu, B. Bat-Ochir, B. Dugarjav, I. Omura Single PCB sensor-based output current reproduction for three-phase inverter Systems, www.journals.elsevier.com / power-electronic-devices-and-components, 17 décembre 2023, 2772-3704, Elsevier.

[0041] When the common mode capacitors are mounted on a set of rolled busbars 130 (see figures 4a and 4b), the installation of the detection device is more delicate. A printed circuit board 140 is attached to the laminated busbar 130 to extend between the common-mode capacitors C1, C2 and the laminated busbar 130. The printed circuit board 140 has two holes 141 to allow the passage of the leads of the common-mode capacitors C1, C2, which are fixed to the laminated busbar 130. Each of the holes 141 is surrounded by turns of the Rogowski coil 1141.1, 1141.2, which are printed on the printed circuit board 140 and connected to a connector 142 fixed to the printed circuit board 140 to allow the connection of the Rogowski coils 1141.1, 1141.2 to the measurement circuit 1144 via the high-pass filter 1143. Thus, the Rogowski coils 1141.1, 1141.2 are integrated into the printed circuit board 140.Note that the current measurements are positioned across the terminals of the common-mode capacitors Cl, C2 connected to ground: the isolation to be guaranteed by the Rogowski toroids is therefore minimal.

[0042] Preferably, the printed circuit board 140 is glued to the laminated bar 130 to conform to the mechanical environment constraints of the assembly.

[0043] Of course, the invention is not limited to the embodiments described but encompasses any variant falling within the scope of the invention as defined by the claims.

[0044] In particular, the power converter may have a different structure from that described.

[0045] The converter might not include a damping resistor.

[0046] Alternatively, only one of the common-mode capacitors could be used as a decoupling capacitor. The summing junction could then be omitted, allowing the measurement to be performed only along the path passing through that particular common-mode capacitor. The current measurement can be taken on one of the common-mode capacitors connected to the positive terminal of the circuit, or on one of the common-mode capacitors connected to the negative terminal of the circuit. This reduces the number of components, as some of the current can be fed back through the differential-mode capacitors C5 and C6, which have minimal wiring inductance.

[0047] As an alternative to the second embodiment, the Rogowski toroids 1141.1, 1141.2 can be replaced by high-frequency current transformers.

[0048] The connector can be replaced by soldered wires to transmit to the measuring circuit 1144 the measurement signals of the Rogowski toroids 1141.1, 1141.2.

[0049] The power converter according to the invention can take place in any electrical installation and for example an electrical installation in which the electrical machine is replaced by a transformer.

Claims

Demands

1. Converter (100) comprising a DC filtering stage (110) and an inverter (120) connected to the filtering stage (110), the filtering stage (110) comprising at least common-mode capacitors (Cl, C2, C3, C4), characterized in that the filtering stage (110) comprises a partial discharge current detection device (113; 114) in the converter, the detection device (113; 114) comprising at least one decoupling capacitor and a current measurement circuit (1134; 1144) in the decoupling capacitor, the decoupling capacitor being formed by at least one of the common-mode capacitors (Cl, C2; C3, C4).

2. Converter according to claim 1, wherein the filtering stage (110) comprises at least two damping resistors (RI, R2) each in series with one of the common mode capacitors (C3, C4) and the measuring circuit (1134) is connected to a voltage measuring element (1131.1, 1131.2) arranged to measure a voltage across at least one of the damping resistors (RI, R2).

3. Converter according to claim 2, wherein the measuring circuit (1134) is connected to the voltage measuring element (1131.1, 1131.2) via a high-pass filter (1133).

4. Converter according to claim 2 or 3, wherein the detection device (113) is arranged to measure a voltage across the two damping resistors (RI, R2).

5. Converter according to claim 1, wherein the measuring circuit (1144) is connected to a current measuring element (1141.1, 1141.2) arranged to measure a current in at least one of the common mode capacitors (Cl, C2).

6. Converter according to claim 5, wherein the current measuring element (1141.1, 1141.2) comprises at least one Rogowski torus disposed on a conductor connecting the common mode capacitor (Cl, C2) to ground.

7. Converter according to claim 5, wherein the current measuring element (1141.1, 1141.2) comprises at least one high-frequency current transformer disposed on a conductor connecting the common-mode capacitor (Cl, C2) to ground.

8. Converter according to claim 6 or 7, in which the common-mode capacitors (C1, C2) are mounted on a set of laminated bars (130) and a printed circuit board (140) extends between the common mode capacitors (Cl, C2) and the laminated busbar set (130) and includes a hole (141) for passing a leg of one of the common mode capacitors (Cl, C2), the current measuring element (1141.1, 1141.2) being printed on the printed circuit board (140) around the hole (141).

9. Converter according to any one of claims 6 to 8, wherein the measuring circuit (1144) is connected to the current measuring element (1141.1, 1141.2) via a high-pass filter (1143).

10. Converter according to any one of claims 5 to 9, wherein the sensing device (114) is arranged to measure a current in the two common-mode capacitors (Cl, C2).

Citation Information

Patent Citations

  • High-low-pass filter device for fault arc detection

    CN109799428A

  • Fault arc detection circuit and device and working condition detection method

    CN111025107A

  • Test circuit

    CN211426739U