OPENABLE CURRENT TRANSFORMER COMPRISING A FLEXIBLE MAGNETIC CORE
20210065971 ยท 2021-03-04
Inventors
- Dominique GAUTARD (VARENNES VAUZELLES, FR)
- Thierry Save (Coulanges les Nevers, FR)
- Vincent BEGOTTO (St. Dizier, FR)
Cpc classification
H01F27/324
ELECTRICITY
International classification
H01F27/42
ELECTRICITY
Abstract
An openable toroidal current transformer is intended to close over at least one electrical conductor in which an electrical current to be measured circulates. The current transformer includes a magnetic circuit, and an electrically conducting coil wound around the magnetic circuit and electrically insulated from the magnetic circuit. The coil comprises a single winding or several distinct windings coupled in series. The magnetic circuit comprises a set of wires of magnetic material assembled in the form of a strand, allowing having uniform flexibility in all directions for the magnetic circuit.
Claims
1.-12. (canceled)
13. An openable current transformer intended to close over at least one electrical conductor in which circulates an electrical current to be measured, the current transformer including a magnetic circuit and an electrically conducting coil wound around the magnetic circuit and electrically insulated from the magnetic circuit, said coil comprising a single winding or several distinct windings coupled in series, wherein said magnetic circuit comprises a set of wires of magnetic material, the wires being twisted together in the form of a strand to form a cable having uniform flexibility in all directions for the magnetic circuit.
14. The current transformer according to claim 13, wherein the magnetic material of the wires is an iron-nickel alloy with high magnetic permeability with at least 70% nickel.
15. The current transformer according to claim 13, wherein the wires are geometrically and electrically insulated from one another by magnesium methylate, or by alumina or magnesia powder during their assembly to avoid adhesions between the wires.
16. The current transformer according to claim 13, wherein each wire comprises a plurality of threads of magnetic material twisted together in the form of a strand.
17. The current transformer according to claim 16, wherein the threads of each wire are geometrically and electrically insulated from one another by magnesium methylate, or by alumina or magnesia powder during their assembly to avoid adhesions between the threads of the wires.
18. The current transformer according to claim 16, wherein each thread of the wire has a diameter comprised between 0.1 mm and 0.5 mm.
19. The current transformer according to claim 13, also comprising an electrically insulating flexible tubular inner sheath on which is wound said coil and in which the magnetic circuit is press-fit.
20. The current transformer according to claim 13, also comprising an electrically insulating tubular outer sheath surrounding said coil.
21. The current transformer according to claim 13, wherein the coil comprises a plurality of distinct windings coupled in series, at least two windings comprising electrically insulating conducting wire and being radially superimposed to form a stack in a radial direction relative to the winding axis of the coil.
22. The current transformer according to claim 13, wherein said at least one winding of the coil comprises a copper electrical wire having a diameter comprised between 0.1 mm and 0.8 mm.
23. The current transformer according to claim 13, comprising closing means by ratchet locking or screwing.
24. A measuring device for an electrical current comprising an openable current transformer according to claim 13, and processing means electrically coupled to the coil of the current transformer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0037] The invention will be better understood upon reading the following, by way of indication but without limitation, with reference to the appended drawings in which:
[0038]
[0039]
[0040]
[0041]
DETAILED DESCRIPTION OF EMBODIMENTS
[0042] In
[0043] The current transformer 10 has the shape of an openable toroid intended to close over an electrical conductor in which an electrical current to be measured, alternating or direct, circulates, or over several electrical conductors in which electrical currents circulate of which the vector sum is to be measured.
[0044] The current transformer 10 comprises a magnetic circuit 11 inserted into an electrically insulating and flexible tubular inner sheath 12.
[0045] The magnetic circuit 11 is formed of a plurality of wires 110 of magnetic material, for example wires of an alloy comprising 15% iron, 80% nickel, and 5% molybdenum. In the embodiment illustrated in
[0046] Each wire 110 can be formed of a plurality of threads of magnetic material twisted together. Each wire 110 thus forms a strand of threads of magnetic material, and each strand formed by a wire 110 is assembled with other wires 110 of the magnetic circuit to form a strand of wires 110 forming the cable 11.
[0047] In the case where the wires are multi-ply wires, the threads from which the wires 110 are formed are manufactured of an iron-nickel-molybdenum alloy with high magnetic permeability having 80% nickel. The wires 110 can have cross sections of different sizes, for example a cross section of 4.6 mm.sup.2.
[0048] In one exemplary embodiment, the cable of the magnetic circuit 11 can comprise several wires 110 each formed of several threads each having a diameter of approximately 0.2 mm to form a cable having an iron cross section of approximately 0.3 cm.sup.2.
[0049] The number of threads in each wire 110 and the structure of the strand forming the magnetic cable 11, particularly the number of wires 110 composing the cable of the magnetic circuit 11, is adjustable depending on the sensitivity desired and the intended size of the cable for the magnetic circuit 11. The cable 11 is flexible in all directions thanks to its strand structure.
[0050] Following the mechanical formation of the strand of wires 110, the cable 11 undergoes heat treatment at high temperature in a reducing gas, such as hydrogen, so as to restore and optimize the magnetic performance of the material. The intrinsic permeability obtained in the embodiment of the invention illustrated in
[0051] Each wire 110 is insulated geometrically and electrically prior to the annealing of the heat treatment phase of the cable 11, in order to avoid adhesions between the wires during the heat treatment. This insulation operation is accomplished using magnesium methylate or alumina (Al.sub.2O.sub.3) or magnesia (MgO) powder, or another technology, either by direct application to the wire prior to the formation of the strand of wires 110 forming the cable 11 or by application to the cable 11 after the formation of the strand of wires 110.
[0052] In the case where the wires 110 are multi-ply wires, in other words when each wire 110 is formed from a plurality of threads twisted together, the insulation operation is accomplished on the threads either before the formation of the wires or after the formation of the wires 110 by before the formation of the cable 11, or even after the formation of the cable 11, the treatment being a chemical treatment which can reach the entire surface of a ply by capillary action even after the cable has been formed. The insulation of each ply thus allows allowing sliding between the threads and thus improving the flexibility characteristics of the cable 11.
[0053] After the heat treatment, the cable 11 is then cut to the desired length and then has two ends 111 and 112. The two ends 111 and 112 of the cable 1 are crimped in order to retain the wires 110 together. The two cross sections at the ends 111 and 112 are intended to be facing and in contact when the current transformer 10 is closed, as illustrated in
[0054] The tubular inner sheath 12 forms a sleeve that the magnetic circuit 11, i.e. the cable, passes through axially, i.e. along the axis of revolution of the sheath 12. The inner sheath 12 is a tube of insulating material sufficiently strong to support the coil of copper wire with a diameter comprised in particular between 0.20 and 0.8 mm, while having sufficient flexibility to maintain that of the cable 11.
[0055] In one exemplary embodiment, the inner sheath 12 can be a tube of PVC, Rylsan or other material, with an inner diameter comprised between 10 and 25 mm and a wall thickness comprised between 1 and 2 mm.
[0056] The current transformer 10 also comprises an electrically conducting coil 13. The inner sheath 12 forms a coil support for the coil 13. The coil 13 is formed of a copper wire wound back and forth around the inner sheath 12 over the entire length of the magnetic circuit 11. In other words, the coil 13 is wound firstly from the first end 111 of the cable until the second end 112 of the cable 11, then secondly from the second end 112 of the cable 11 until the first end 111 of the cable 11. The enameling of the copper wire allows insulating the wire and avoiding any short circuit, particularly between the superimposed portions.
[0057] In one variant, the coil 13 can comprise a plurality of copper windings coupled together in series.
[0058] The coil 13 has a first end 131 and a second end 132 opposite to the first end 131. The coil 13 being wound back and forth around the inner sheath 12, the first and second ends 131 and 132 of the coil 13 are located at the same end of the cable 11 which is the first end 111 of the cable 11 in the example illustrated in
[0059] In one exemplary embodiment, the coil 13 can comprise 1000 turns wound regularly back and forth around the inner sheath 12 over a length which it is possible to adjust depending on the size of the primary conductors and which can be comprised between 200 and 2000 mm so as to constitute, after closing of the current transformer 10, loops the diameter of which is comprised between 70 and 700 mm.
[0060] The greater the diameter of the copper wire of the coil 13, the greater, and thus better, the ratio between the inductance and the resistance of the coil, this point being critical for the accuracy of the current transformer 10.
[0061] The current transformer 10 also comprises an electrically insulating tubular outer sheath 14. The outer sheath 14 is press-fit onto the assembly comprising the cable 11, the inner sheath 12 and the coil 13 so as to surround the coil 13 and insulate it from the external electrical environment of the current transformer 10.
[0062]
[0063] As illustrated in
[0064] In another embodiment, not shown, the current transformer can comprise means of closing by screwing.
[0065] The quality of the assembly is evaluated by measuring the magnetic permeability: with a sufficiently rigid closing device the permeability of the assembled open circuit can be comprised between 15,000 and 20,000. The closing device 15 is such that the sensor is easy to open without special tooling.
[0066] Shown schematically in
[0067] The invention thus supthreads a current transformer of the Rogowski type equipped with a magnetic circuit that is identically flexible in all principal directions, while retaining very low amplitude, low frequency electrical current measuring performance and low manufacturing cost, and a measuring device equipped with a current transformer of this type.