POWER TRANSFORMER
20230317365 · 2023-10-05
Assignee
Inventors
- Ener SALINAS (Västerås, SE)
- Orlando Girlanda (Västerås, SE)
- Gunnar RUSSBERG (Västerås, SE)
- Goran ERIKSSON (Västerås, SE)
- Manoj PRADHAN (Västerås, SE)
Cpc classification
H01F27/306
ELECTRICITY
H01F27/40
ELECTRICITY
International classification
H01F27/40
ELECTRICITY
H01F27/30
ELECTRICITY
Abstract
A power transformer, including a core and a winding is provided. The core includes a limb and a yoke. The winding is wound around the limb and has an extension along a main axis of the limb. The power transformer further includes an energy harvesting device coupled to at least one of the core or the winding. The energy harvesting device includes a ferromagnetic part and a coil wound around at least a portion of the ferromagnetic part. The energy harvesting device is arranged in such a way that a part of a magnetic flux MF generated in the power transformer induces an electromotive force in the energy harvesting device. The coil includes a wire wound around a main axis of the coil and has an extension along the main axis of the coil.
Claims
1. Power transformer, comprising a core, wherein the core comprises a limb and a yoke; a winding wound around the limb, wherein the winding has an extension along a main axis of the limb; an energy harvesting device coupled to at least one of the core or the winding, wherein the energy harvesting device comprises a ferromagnetic part and a coil wound around at least a portion of the ferromagnetic part; wherein the energy harvesting device is arranged in such a way that a part of a magnetic flux generated in the power transformer induces an electromotive force in the energy harvesting device; wherein the coil comprises a wire wound around a main axis of the coil; wherein the coil has an extension along the main axis of the coil which is less than the extension of the winding; and wherein the energy harvesting device is designed and arranged to power a sensor of the transformer for sensing temperature and/or humidity and/or pressure.
2. Power transformer of claim 1, wherein the energy harvesting device has a first end portion attached to the limb and a second end portion attached to the yoke and wherein the limb is connected with one end to the yoke and with a second, opposing end to a further yoke of the core.
3. Power transformer of claim 1, wherein the core includes an aperture, and wherein the energy harvesting device is arranged at least partially within the aperture.
4. Power transformer of claim 1, wherein the energy harvesting device is arranged on an upper surface of the core or at an edge of the core.
5. Power transformer of claim 1, wherein the extension of the coil is less than 10%, preferably less than 5%, more preferably less than 2% of the extension of the winding.
6. Power transformer of claim 1, wherein the energy harvesting device is arranged on a surface area of the limb or of the winding, having a local normal vector perpendicular to the main axis of the limb, or arranged on a surface area of the winding having a local normal vector parallel to the main axis of the limb, wherein the main axis of the coil is oriented parallel to the main axis of the limb.
7. Power transformer of claim 1, wherein the power transformer further comprises a tank filled with oil, wherein the core and the winding are at least partially submerged in the oil.
8. Power transformer of claim 1, wherein the ferromagnetic part includes or consists of laminated silicone steel.
9. Power transformer of claim 1, wherein the coil includes a copper wire.
10. Power transformer of claim 5, wherein the copper wire has a diameter of 0.1 mm or less.
11. Power transformer of claim 1, wherein the ferromagnetic part is attached to the core via at least one permanent magnet.
12. Power transformer of claim 11, wherein the permanent magnet includes Neodymium or consists of Neodymium.
13. Power transformer of claim 1, further comprising a tank filled with oil, wherein the core and the winding are at least partially submerged in the oil, and wherein the sensor is disposed within the tank, preferably submerged in the oil.
14. Power transformer of claim 1, wherein the power transformer is a 50/60 Hz power transformer.
15-20. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The subject-matter of the disclosure will be explained in more detail with reference to some embodiments which are illustrated in the attached drawings, in which:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
DETAILED DESCRIPTION
[0034] Example embodiments of the disclosure will be described with reference to the drawings in which identical or similar reference signs designate identical or similar elements. The features of embodiments may be combined with each other, unless specifically noted otherwise.
[0035]
[0036] The transformer further comprises a winding 6 wound around the limb 2. The winding 6 has an extension L1 measured along the main axis A1 of the limb 2.
[0037] The transformer may further comprise a tank 15 filled with oil 16, wherein the core 1 and the winding 6 are at least partially submerged in the oil 16.
[0038] The transformer further comprises an energy harvesting device 8 coupled to at least one of the core 1 or the winding 6, for example, as exemplarily illustrated to the limb 2.
[0039] The ferromagnetic part 10 may include or may consist of laminated silicone steel (SiFe). Alternative materials are, for example, ferrite and a nanocrystalline material. The coil 12 may have a large number of turns, for example, several thousand turns wounded with the wire 14. The wire 14 may be for example a copper wire, preferably having a diameter of 0.1 mm or less.
[0040] The energy harvesting device is designed and arranged in such a way that a part of a magnetic flux generated in the power transformer induces an electromotive force in the energy harvesting device. Thus, a part of the magnetic flux generated in the power transformer can be captured using the ferromagnetic part. For example, the energy harvesting device may be attached to the core 1 or to the winding 6. However, the energy harvesting device is not necessarily attached to the core 1 or the winding 6. It may be alternatively positioned having a distance to the core 1 and the winding 6. The distance may be, for example, between 1 mm and 10 cm.
[0041] Again referring to
[0042] As illustrated in
[0043] Again referring to
[0044] As exemplarily indicated in
[0045] Again with reference to
[0046] The ferromagnetic part 10 may be e.g., made of a laminated silicon steel (SiFe).
[0047] The ferromagnetic part 10 of the energy harvesting device 8 may be attached to the core or to the winding for example via an adhesive. Alternatively or additional, the ferromagnetic part 10 may be attached to the core 1, for example to the limb 2 or the yoke 4 via at least one permanent magnet 18, preferably including or consisting of Neodymium. This allows for a robust attachment of the energy harvesting device 8 to the core 1 such that it will be kept in place for an entire lifespan of the transformer. Moreover, such an attachment can be easily established while assembling the transformer.
[0048] As sketched in
[0049] The auxiliary electric device 30 may be disposed nearby the energy harvesting device 8, for example within the tank 15, and in some embodiments may be submerged in the oil. The auxiliary electric device 30 may be attached to the core 1 or to the winding 4. However, the auxiliary device 30 may be also disposed elsewhere, for example on an inner surface of the tank 15.
[0050] During assembly, the energy harvesting device 8 may be attached to the limb 2 before the winding 6 wound around the limb 2 is mounted.
[0051]
[0052]
[0053] Therefore, the magnetic flux MF and by this way the functioning of the transformer is in practice not undesirably compromised by the energy harvesting device. In other words, the stray flux is only a negligible portion of the normal core magnetic flux MF.
[0054] The energy harvesting device may be connected electrically to the auxiliary device 30 by connecting cables 88.
[0055] In some embodiments, one magnet 18 is arranged to attach the energy harvesting device 8a to the limb 2, whereas a further magnet 18 is arranged to attach the energy harvesting device 8a to the yoke 4.
[0056]
[0057] As schematically indicated by the thick line and the thin line, the energy harvesting device “pulls” flux lines from the border of the core 1. The magnets 18 are placed to locally attach the energy harvesting device 8b to the core 1, here to the yoke 4.
[0058] As already mentioned above,
[0059] In
[0060]
[0061] The energy harvesting device allows for providing enough power to operate an auxiliary device 30 such as for example a sensor or even an array of sensors, e.g., digital or analog sensors. The connecting cables 88 between the energy harvesting device 8 and the auxiliary device 30 can be designed and arranged such that they do in practice not hinder the electric field of the transformer. The energy harvesting device 8 is advantageously positioned such that an impact to the magnetic field is minimal. Possible positions or locations are sketched in
[0062] While the invention has been described in detail in the drawings and forgoing description, such description is to be considered illustrative or exemplary and not restrictive. Variations to the disclosed embodiments can be understood and effected by those skilled in the art and practicing the claimed invention, from a study of the drawings, the disclosure, and the appended claims. In the claims, the word “comprising” does not exclude other elements or steps, and the indefinite article “a” or “an” does not exclude a plurality. The mere fact that certain elements or steps are recited in distinct claims does not indicate that a combination of these elements or steps cannot be used to advantage, specifically, in addition to the actual claim dependency, any further meaningful claim combination shall be considered disclosed.