EP2929551B1 - Transformatoranordnung - Google Patents

Transformatoranordnung Download PDF

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Publication number
EP2929551B1
EP2929551B1 EP13799335.8A EP13799335A EP2929551B1 EP 2929551 B1 EP2929551 B1 EP 2929551B1 EP 13799335 A EP13799335 A EP 13799335A EP 2929551 B1 EP2929551 B1 EP 2929551B1
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EP
European Patent Office
Prior art keywords
transformer
outer housing
housing
cylindrical
transformer assembly
Prior art date
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Active
Application number
EP13799335.8A
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English (en)
French (fr)
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EP2929551A2 (de
Inventor
Joseph DURON
Luc GROSJEAN
Philippe Haeberlin
Philippe Stefanutti
Toufann Chaudhuri
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
ABB Schweiz AG
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ABB Schweiz AG
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Priority to EP13799335.8A priority Critical patent/EP2929551B1/de
Publication of EP2929551A2 publication Critical patent/EP2929551A2/de
Application granted granted Critical
Publication of EP2929551B1 publication Critical patent/EP2929551B1/de
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/28Coils; Windings; Conductive connections
    • H01F27/2876Cooling
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/08Cooling; Ventilating
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/28Coils; Windings; Conductive connections
    • H01F27/32Insulating of coils, windings, or parts thereof
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01FMAGNETS; INDUCTANCES; TRANSFORMERS; SELECTION OF MATERIALS FOR THEIR MAGNETIC PROPERTIES
    • H01F27/00Details of transformers or inductances, in general
    • H01F27/28Coils; Windings; Conductive connections
    • H01F27/32Insulating of coils, windings, or parts thereof
    • H01F27/321Insulating of coils, windings, or parts thereof using a fluid for insulating purposes only

Definitions

  • the present invention relates to transformer assemblies, in particular transformer assemblies for high-power applications, such as for use in traction applications and the like.
  • transformers are conventionally used for galvanic decoupling and transformation of electrical power.
  • transformers need to be designed with a substantial size and weight. Due to the high power involved, cooling and insulation constraints are to be considered in the transformer design.
  • Transformers used in the distribution of electrical power are usually of the vacuum-cast or resin block type and have air insulation. In particular for traction applications, size and weight reduction is important. However, power density and heat dissipation are high, so that vacuum casting or resin block solutions cannot be applied in compact transformer designs since they do not provide sufficient heat dissipation to keep the temperature of the transformer within an allowable range.
  • traction transformers are usually encased in oil-filled tanks having forced oil circulation and forced air cooling. Due to the restricted heat dissipation through oil, the size and weight of the above kind of transformers cannot be further reduced.
  • a cavity-type water-cooled transformer having a core water tank which is surrounded by a primary side winding and a ringshaped water chamber.
  • Document CN 103035370 discloses an oil-immersed transformer device including a transformer disposed in a transformer tank.
  • the transformer is mounted in the transformer tank.
  • the transformer tank is filled with oil.
  • a cooling duct for cooling the oil is provided in the transformer tank, wherein water is fed through the cooling duct.
  • Document CN 202917292 discloses a transformer with a cavity between a primary coil and a secondary coil for feeding cooling water there through.
  • a transformer assembly comprising:
  • the inner housing and the outer housing may be made of an electrically insulating material.
  • a portion of a transformer core may extend through the inner housing, wherein a second cooling means is at least partly located between the portion of the transformer core and the inner housing.
  • the transformer core forms a closed loop, so that an outer portion of the transformer core partly extends along an outer surface of the outer housing, wherein one or more support plates are securely attached to the enclosure, wherein each of the one or more support plates comprises a support plate fin which abuts at a side surface of the outer portion of the transformer core.
  • At least one of the support plates may be provided with an earthing connector.
  • first and a second cover are arranged at the axial ends of the enclosure.
  • the first cover, the inner housing and the outer housing may be formed integrally.
  • an inner surface of the first cover is provided with a structuring to form channels for the insulating liquid to flow within the enclosure in a radial and/or tangential direction due to convection.
  • a pressure membrane for flexibly adapting the volume of the insulating liquid within the enclosure may be arranged at one axial end of the enclosure.
  • the first cooling means may comprise a first cooling pipe which extends along the inner surface of the outer housing or within the wall of the outer housing at least partly along the axial and circumferential direction thereof, so that the first cooling pipe forms at least one loop.
  • the transformer assembly 1 has an inner support element 2.
  • the inner support element 2 is cylindrical and has an annular cross-section.
  • the cylindrical inner support element 2 can also be shaped with different cross-sections.
  • the conductors of the inner winding 3 can be wire-like, such as a coil of metal wire, e. g. copper wire, or plate-like, coated with an electrical insulation layer, and are spirally wound around the cylindrical inner support element 2.
  • the inner winding 3 may act as a primary or secondary winding of the transformer assembly 1.
  • a outer winding 4 is arranged around the inner winding 3.
  • the outer winding 4 concentrically encompasses the inner winding 3.
  • the outer winding 4 can be directly wound onto the inner winding 3.
  • the conductors of the outer winding 4 can be wire-like, such as a coil of metal wire, e. g. copper wire, or plate-like, coated with an electrical insulation layer, and are spirally wound around the inner winding 3.
  • the outer winding 4 may act as a primary or secondary winding of the transformer assembly 1.
  • an insulation layer is arranged between the inner winding 3 and the outer winding 4 in case the electrical insulation coating of the conductors is damaged.
  • the material of the inner support element 2 provides good thermal conductivity and is preferably made of metal or the like.
  • the inner support element 2 is provided with cooling means.
  • the cylindrical inner support element 2 can include one or more cooling pipes 7 or cooling channels which extend through the inner support element 2 in an axial direction.
  • the cooling pipes 7 are configured to allow a cooling medium to flow therethrough.
  • the cooling medium can be air, water, oil, SF6 or the like.
  • the cylindrical inner support element 2 firstly serves as a cold plate for the inner surface of the inner winding 3. Secondly, the inner support element 2 is configured to also provide good thermal conductivity to a portion of a transformer core 5.
  • the portion of the transformer core 5 axially extends through the interior of the inner support element 2 to provide cooling of the transformer core 5.
  • the transformer core 5 is made of a ferromagnetic material which allows to direct the magnetic flux within the core 5.
  • the transformer core 5 forms a closed loop, wherein one core portion extends in an axial direction through the interior of the inner support element 2.
  • the other portion of the transformer core 5 further extends around the exterior of the outer winding 4.
  • the transformer core 5 can be made of a ferromagnetic material, e. g. ferrite, amorphous materials, nano-crystalline materials and the like.
  • the transformer core 5 can have a shape to be partly encompassed by the cylindrical inner support element 2 and be shaped like an E-core, C-core or the like.
  • the portion of the transformer core 5 that passes through the cylindrical inner support element 2 can be cooled by the cooling means and is mechanically supported.
  • cylindrical inner support element 2 may be fully made of an electrically insulating material, like epoxy or the like.
  • a cylindrical outer housing element 6 is provided.
  • the cylindrical outer housing element 6 is arranged in good thermal contact with the outer winding 4 and provides good thermal conductivity, so that heat generated in the outer winding 4 can be dissipated via the cylindrical outer housing element 6.
  • the outer housing element 6 can be formed integrally or of several parts.
  • the cylindrical outer housing element 6 may be made of thermally conductive material, such as metal.
  • the outer housing element 6 may be provided with second cooling means.
  • the outer housing element 6 can include one or more further cooling pipes 9 or cooling channels which extend through the outer housing element 6 in an axial direction.
  • the further cooling pipes 9 are configured to allow a cooling medium to flow therethrough.
  • the cooling medium can be air, water, oil, SF6 or the like. Additionally or alternatively, cooling fins can be provided on the outer surface of the outer housing element 6.
  • the cylindrical inner support element 2 and the outer housing element 6 substantially have the same axial length and are arranged concentrically to enclose the inner and outer windings 3, 4. At their axial ends, covers 11 (one on each side) are provided to close the space formed between the cylindrical inner support element 2 and the cylindrical outer housing element 6 in which the windings 3, 4 are housed.
  • the cylindrical outer housing element 6 can be used as a mechanical winding enclosure and an insulating material can be filled in the space formed by the cylindrical inner support element 2 and the cylindrical outer housing element 6.
  • the cylindrical outer housing element 6 has a protrusion 10 to be coupled to a yoke portion of the transformer core 5 so as to collect heat generated within the yoke portion of the transformer core 5 and/or heat generated in that portion of the transformer core 5 which extends into the interior of the inner support element 2.
  • the protrusion 10 protrudes radially and substantially extends axially along the full axial length of the support and housing elements 2, 6.
  • the second cooling means of the cylindrical outer housing element 6 can be configured such that heat generated in the outer winding 4 and in the outer core portion is consumed and transported away from the transformer assembly 1.
  • the protrusion 10 of the cylindrical outer housing element 6 may form a gap 8 to avoid a short circuit of a parasitic turn formed by the cylindrical outer housing element 6.
  • the protrusions 10 of the cylindrical outer housing element 6 are coupled to the outer core portion in an electrically insulating manner but with good thermal conductivity on both sides of the outer core portion.
  • the covers 11 at both ends of the transformer assembly 1 may include bushings 12 to electrically connect the inner and outer windings 3, 4 of the transformer assembly 1.
  • the outer portion of the core 5 is not thermally connected to the cylindrical outer housing element 6, but is provided with a further cooling means to dissipate heat generated within the core 5.
  • Figure 4 shows a further comparative setup of a transformer assembly 1, wherein the core 5 forms a closed loop and has two core portions arranged in parallel, each of which is provided with transformer assembly parts.
  • the core portions are connected with yoke portions of the core 5, so that yoke portions and core portions for the closed loop core 5.
  • the core portions are each encompassed with cylindrical inner support elements 2, as described above.
  • the cylindrical inner support elements 2 are each provided with one single coil, so that each of the cylindrical inner support elements 2 is surrounded by the windings of the single coil.
  • each of the transformer assembly parts has a design which corresponds to that of the previously described comparative setups.
  • each of the windings is surrounded by a cylindrical outer housing element 6.
  • the comparative setup of Figure 4 shows a single winding between the cylindrical inner support element 2 and the cylindrical outer housing element 6, which are coupled by a closed-loop core 5 to act as a transformer.
  • the comparative setup of Figure 4 has cylindrical outer housing element 6 which are not provided with a protrusion.
  • an insulating means has to be provided which extends over the full axial length of the cylindrical outer housing element 6.
  • Both axial ends of the cylindrical outer housing elements 6 are closed with covers 11, wherein a single cover 11 for each two axial ends of the two cylindrical outer housing elements 6 is provided.
  • the comparative setup shown in Figure 5 substantially corresponds to an assembly as shown in Figure 4 , with the difference that the two cylindrical outer housing elements 6 are replaced by a single outer casing element 13 which is formed to enclose both windings 3, 4 arranged on the inner support elements 2 for the two parallel core portions.
  • the cooling means for the cylindrical outer housing elements 6 can be formed as tubes integrated in the cylindrical outer housing element 6 or, as shown in Figure 6 of a comparative setup, in the form of separate cooling pipes 14 arranged between the outer surface of the windings 3, 4 arranged between the cylindrical outer housing element 6 and the cylindrical inner support element 2.
  • the separate cooling pipes 14 may be attached to an inner wall of the cylindrical outer housing element 6.
  • a fluid can be provided with a forced circulation in the interior of the winding enclosure.
  • Figures 7 to 12 show different views of a further embodiment of a transformer assembly 20.
  • Figure 7 shows a perspective view onto the transformer assembly 20.
  • the transformer assembly 20 has a cylindrical outer housing 26 which is closed on both ends thereof by a first cover 28 and a second cover 31 to form a tight enclosure 30 with an enclosed volume in the interior thereof.
  • the transformer assembly 20 has an inner housing 21 which may serve as an inner support element for windings.
  • the inner housing 21 is cylindrical and has a cylinder axis which is substantially parallel to the cylinder axis of the outer housing 26.
  • Both the outer housing 26 and the inner housing 21 may have an annular cross-section.
  • the outer housing 26 and the inner housing 21 may also be shaped with different cross-sections (across the axial direction thereof).
  • the cylindrical inner housing 21 and the cylindrical outer housing 26 may have a ring shape with an axial length which may be shorter or larger than a respective span across the cross-section of the inner housing 21 and the cylindrical outer housing 26.
  • the first and second covers 28, 31, the inner housing 21 and the outer housing 26 may be made of an electrically insulating material, such as a non-metal material, epoxy or the like. Furthermore, the inner housing 21, the outer housing 26 and the first cover 28 may be integrally formed of said insulating material.
  • an inner winding 22 is wound around the inner housing 21.
  • the inner winding 22 may contact an outer wall surface of the inner housing 21 or may be spaced therefrom.
  • the conductors of the inner winding 22 can be wire-like, such as a coil of metal wire, e. g. copper wire, or plate-like, e.g. coated with an electrical insulation layer, and are spirally wound around the cylindrical inner housing 21.
  • the inner winding 22 may act as a primary or secondary winding of the transformer assembly 20.
  • an outer winding 23 may be arranged.
  • the outer winding 23 can be directly wound onto the inner winding 22.
  • the conductors of the outer winding 23 can be wire-like, such as a coil of metal wire, e. g. copper wire, or plate-like, e.g. coated with an electrical insulation layer, and are spirally wound around the inner winding 22.
  • the outer winding 23 may act as a primary or secondary winding of the transformer assembly 20.
  • an insulation layer (not shown) is arranged between the inner winding 22 and the outer winding 23 to prevent a shortcut in case the electrical insulation coating of the winding conductors is damaged.
  • a transformer core 25 is provided which forms a closed loop.
  • An inner portion of the transformer core 25 axially extends through the interior of the transformer assembly 20, i.e. through the interior of the cylindrical inner housing 21, in the axial direction thereof.
  • Another portion, i. e. an outer portion, of the transformer core 25 further extends around the exterior of the outer housing 26.
  • the transformer core 25 allows to direct the magnetic flux within the core 25.
  • the transformer core 25 can be made of a ferromagnetic material, e. g. ferrite, amorphous materials, nano-crystalline materials and the like.
  • the transformer core 25 can have a shape to be partly encompassed by the cylindrical inner housing 21.
  • the inner and outer windings 22, 23 are accommodated in the enclosure 30 between the inner housing 21 and the outer housing 26.
  • the enclosure 30 is filled with an electrically insulating fluid such as oil.
  • the interior of the inner housing 21 in which the first cooling means and the magnetic core 25 are arranged may be void of the electrically insulating fluid such as the oil.
  • a first cooling means and a second cooling means are provided.
  • the first cooling means is arranged on an inner surface or in the wall of the outer housing 26 and the second cooling means is provided at least partly extending within the interior of the cylindrical inner housing 21 for cooling the portion of the transformer core 25 that passes through the cylindrical inner housing 21.
  • first cooling pipes 29 or cooling channels as first cooling means may be arranged which at least partly extend through the outer housing 26 along an axial direction.
  • the first cooling pipes 29 are arranged meandering or in loops to provide a large surface for a thermal contact with the electrically insulating fluid within the enclosure 30.
  • the first cooling pipes 29 are configured to allow a cooling medium to flow therethrough, so that heat transferred into the insulating fluid from the inner and outer windings 22, 23 may be consumed and dissipated via the first cooling pipes 29.
  • the cooling medium can be air, water, oil, SF6 or the like.
  • the second cooling means is configured as one or more second cooling pipes 27 or cooling channels which are fed through the inner housing 21 in an axial direction.
  • the second cooling pipes 27 are configured to allow a cooling medium to flow therethrough.
  • the cooling medium can be air, water, oil, SF6 or the like.
  • the inner volume with the inner portion of the transformer core 25 and the second cooling pipes 27 can be casted from a thermally conducting material to firstly fixate a relative position between the transformer core 25 and the inner housing 21 and to further thermally couple the second cooling pipes 27 to the transformer core 25 in order to dissipate heat therefrom.
  • an inner surface of the first cover 28 is provided with structuring forming channels 32 through which the insulating liquid is able to flow and to also reach parts of the inner winding 22.
  • the liquid flow and to reach all parts of the windings with liquid is therefore supported by the formation of the liquid flow channels.
  • a first set of the channels 32 may be directed in a radial direction with respect to the cylinder axis of the outer housing 26.
  • a second set of the channels 32 may be directed at least partially in a tangential direction.
  • the second set of the channels 32 form a square to allow a convection flow of the insulating fluid along a tangential direction.
  • the second set of the channels 32 may also comprise a circular channel around the cylinder axis of the outer housing 26.
  • the second cover 31 is arranged so that the enclosure 30 formed by the inner housing 21, the first cover 28 and the outer housing 26 is tightly closed.
  • a pressure membrane 38 is attached between the outer housing 26 and the second cover 31.
  • the pressure membrane 38 firstly tightens the enclosure 30 and, secondly, is configured to deform in case thermal pressure occurs in the insulating liquid in the enclosure 30.
  • the second cover 31 may be provided with a cavity to accommodate the deformed pressure membrane 38.
  • the second cover 31 can be attached to the outer housing 26 by means of screws 39 thereby fixing the pressure membrane 38 with its edges between the second cover 31 and the outer housing 26 to provide a tight sealing of the enclosure 30.
  • the outer housing 26 may include a first bushing arrangement 34 which may substantially be arranged opposite to the outer portion of the transformer core 25 extending along an outer surface of the outer housing 26.
  • the first bushing arrangement 34 may be arranged at the outer housing 26 substantially in a central portion along the axial direction of the enclosure 30.
  • the first bushing arrangement 34 is configured to electrically connect the inner or outer windings 22, 23 of the transformer assembly 20.
  • the outer housing 26 is made of an electrically insulating material, a strong electrical insulation between one or more terminals 35 of the first bushing arrangement 34 can be achieved.
  • a second bushing arrangement 40 is provided at the second cover 31.
  • the second bushing arrangement 40 has terminals to electrically connect the inner or the outer windings 22, 23 of the transformer assembly 20. It is preferred that the terminals of the second bushing 40 are tangentially displaced with respect to the terminals 35 of the first bushing arrangement 34 to provide a larger distance between the terminals 35.
  • support plates 42 are provided to fixate the outer portion of the transformer core 25 at the first and second covers 28, 31.
  • the support plates 42 can be attached to the first and second covers 28, 31, e. g. by means of screws 43, so that a support plate fin 44 of the respective support plate 42 is arranged radially extending along a lateral surface of the outer portion of the transformer core 25, respectively.
  • the support plate fins 44 abut the outer portion of the transformer core 25 thereby fixating the relative position of the transformer core 25 in the transformer assembly 20.
  • the support plate fins 44 are made of an electrically conducting material to electrically contact the transformer core 25.
  • the support plate fins 44 are further provided with an earthing boss 45 to connect to ground so that the transformer core 25 can be electrically grounded.
  • the first cooling means and second cooling means are connectable with cooling liquid terminals 36 to supply cooling liquid to the transformer assembly 20 and to circulate the cooling liquid through the first and second cooling pipes 29, 27.
  • the first and second cooling pipes 29, 27 are connected in parallel via branching elements 37.
  • the branching elements 37 are placed at the first cover 28 on both sides of a portion of the transformer core 25 which extends along an outer surface of first cover 28.
  • first and second cooling pipes 29, 27 may be serially connected, so that one end/terminal of the first cooling pipe 29 is connected to an end/terminal of the second cooling pipe 27.
  • One other end/terminal of the first cooling pipe 29 and one other end/terminal of the second cooling pipe 27 correspond to cooling liquid terminals 36.

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Transformer Cooling (AREA)

Claims (10)

  1. Transformatoranordnung (20), umfassend:
    - ein zylindrisches Innengehäuse (21) und ein zylindrisches Außengehäuse (26), welches das zylindrische Innengehäuse (21) teilweise umgibt, wobei das zylindrische Innengehäuse (21) und das zylindrische Außengehäuse (26) einen umschlossenen Raum (30) bilden, wobei das umschlossene Volumen des umschlossenen Raums (30) zwischen dem zylindrischen Innengehäuse (21) und dem zylindrischen Außengehäuse (26) mit einer isolierenden Flüssigkeit gefüllt ist;
    - mindestens eine Wicklung (22, 23) in dem umschlossenen Volumen; und
    - ein erstes Kühlelement, das in oder an einer Innenfläche des Außengehäuses (26) angeordnet ist, um eine Kühlung für die mindestens eine Wicklung (22, 23) bereitzustellen.
  2. Transformatoranordnung (20) nach Anspruch 1, wobei das Innengehäuse (21) und das Außengehäuse (26) aus einem elektrisch isolierenden Material hergestellt sind.
  3. Transformatoranordnung (20) nach Anspruch 1 oder 2, wobei sich ein Teil eines Transformatorkerns (25) durch das Innengehäuse (21) erstreckt, wobei ein zweites Kühlelement mindestens teilweise zwischen dem Teil des Transformatorkerns (25) und dem Innengehäuse (21) angebracht ist.
  4. Transformatoranordnung (20) nach einem der Ansprüche 1 bis 3, wobei ein bzw. der Transformatorkern (25) eine geschlossene Schleife bildet, sodass sich ein Außenteil des Transformatorkerns (25) teilweise entlang einer Außenfläche des Außengehäuses (26) erstreckt, wobei eine oder mehrere Trägerplatten (42) sicher an dem umschlossenen Raum (30) befestigt sind, wobei jede der einen oder der mehreren Trägerplatten (42) eine Trägerplattenrippe (44) umfasst, die an einer Seitenfläche des Außenteils des Transformatorkerns (25) anliegt.
  5. Transformatoranordnung (20) nach Anspruch 4, wobei mindestens eine der Trägerplatten (42) mit einem Erdungsanschluss bereitgestellt wird.
  6. Transformatoranordnung (20) nach einem der Ansprüche 1 bis 5, wobei eine erste und eine zweite Abdeckung (28, 31) an den axialen Enden des umschlossenen Raums (30) angeordnet sind.
  7. Transformatoranordnung (20) nach Anspruch 6, wobei die erste Abdeckung (28), das Innengehäuse (21) und das Außengehäuse (26) integral in einem Stück gebildet sind.
  8. Transformatoranordnung (20) nach Anspruch 6 oder 7, wobei eine Innenfläche der ersten Abdeckung (28) mit einer Strukturierung bereitgestellt wird, um Kanäle (32) zu bilden, damit die isolierende Flüssigkeit innerhalb des umschlossenen Raums (30) aufgrund der Konvektion in einer radialen und/oder einer tangentialen Richtung fließt.
  9. Transformatoranordnung (1) nach einem der Ansprüche 6 bis 8, wobei an einem axialen Ende des umschlossenen Raums (30) eine Druckmembran (38) angeordnet ist, um das Volumen der isolierenden Flüssigkeit innerhalb des umschlossenen Raums (30) flexibel anzupassen.
  10. Transformatoranordnung (1) nach einem der Ansprüche 1 bis 9, wobei das erste Kühlelement ein erstes Kühlrohr (29) umfasst, das sich entlang der Innenfläche des Außengehäuses (26) oder innerhalb der Wand des Außengehäuses (26) mindestens teilweise entlang der axialen Richtung und einer Umfangsrichtung desselben erstreckt, sodass das erste Kühlrohr (29) mindestens eine Schleife bildet.
EP13799335.8A 2012-12-05 2013-12-05 Transformatoranordnung Active EP2929551B1 (de)

Priority Applications (1)

Application Number Priority Date Filing Date Title
EP13799335.8A EP2929551B1 (de) 2012-12-05 2013-12-05 Transformatoranordnung

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
EP12195684 2012-12-05
EP13166738 2013-05-07
EP13799335.8A EP2929551B1 (de) 2012-12-05 2013-12-05 Transformatoranordnung
PCT/EP2013/075723 WO2014086948A2 (en) 2012-12-05 2013-12-05 Transformer assembly

Publications (2)

Publication Number Publication Date
EP2929551A2 EP2929551A2 (de) 2015-10-14
EP2929551B1 true EP2929551B1 (de) 2017-05-17

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EP (1) EP2929551B1 (de)
CN (1) CN104995699B (de)
WO (1) WO2014086948A2 (de)

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CN202084383U (zh) * 2011-04-14 2011-12-21 河南勃达微波设备有限责任公司 一种新型的水管式油浸水冷变压器冷却装置
CN103035370A (zh) 2011-09-30 2013-04-10 福建新大陆环保科技有限公司 一种带冷却管道的油浸式变压器
CN202285187U (zh) * 2011-09-30 2012-06-27 福建新大陆环保科技有限公司 一种带冷却管道的油浸式变压器
CN202917292U (zh) 2012-10-08 2013-05-01 佛山市国电电器有限公司 一种新型水冷变压器

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2019149469A1 (de) 2018-01-31 2019-08-08 Siemens Aktiengesellschaft Elektrisches gerät mit pressplatten zum verspannen eines magnetisierbaren kerns
RU2741441C1 (ru) * 2018-01-31 2021-01-26 Сименс Акциенгезелльшафт Электрическое устройство, имеющее прижимные плиты для стягивания намагничиваемого сердечника
US11721471B2 (en) 2018-01-31 2023-08-08 Siemens Energy Global GmbH & Co. KG Electric device with pressing plates for clamping a magnetizable core

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WO2014086948A2 (en) 2014-06-12
CN104995699A (zh) 2015-10-21
WO2014086948A3 (en) 2014-08-07
CN104995699B (zh) 2018-10-16
EP2929551A2 (de) 2015-10-14

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