WO2019081054A1 - Moteur électrique muni d'un double refroidissement - Google Patents

Moteur électrique muni d'un double refroidissement

Info

Publication number
WO2019081054A1
WO2019081054A1 PCT/EP2018/000477 EP2018000477W WO2019081054A1 WO 2019081054 A1 WO2019081054 A1 WO 2019081054A1 EP 2018000477 W EP2018000477 W EP 2018000477W WO 2019081054 A1 WO2019081054 A1 WO 2019081054A1
Authority
WO
WIPO (PCT)
Prior art keywords
electric motor
cooling
jacket
stator
rotor
Prior art date
Application number
PCT/EP2018/000477
Other languages
German (de)
English (en)
Inventor
Nikolai Potozki
Stefanie RIEPE
Heike WEIGEL
Jens Glogowski
Original Assignee
Franz Wölfer Elektromaschinenfabrik Osnabrück, Gesellschaft Mit Beschränkter Haftung
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Franz Wölfer Elektromaschinenfabrik Osnabrück, Gesellschaft Mit Beschränkter Haftung filed Critical Franz Wölfer Elektromaschinenfabrik Osnabrück, Gesellschaft Mit Beschränkter Haftung
Publication of WO2019081054A1 publication Critical patent/WO2019081054A1/fr

Links

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K1/00Details of the magnetic circuit
    • H02K1/06Details of the magnetic circuit characterised by the shape, form or construction
    • H02K1/12Stationary parts of the magnetic circuit
    • H02K1/20Stationary parts of the magnetic circuit with channels or ducts for flow of cooling medium
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K5/00Casings; Enclosures; Supports
    • H02K5/04Casings or enclosures characterised by the shape, form or construction thereof
    • H02K5/20Casings or enclosures characterised by the shape, form or construction thereof with channels or ducts for flow of cooling medium
    • H02K5/203Casings or enclosures characterised by the shape, form or construction thereof with channels or ducts for flow of cooling medium specially adapted for liquids, e.g. cooling jackets
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K9/00Arrangements for cooling or ventilating
    • H02K9/02Arrangements for cooling or ventilating by ambient air flowing through the machine
    • H02K9/04Arrangements for cooling or ventilating by ambient air flowing through the machine having means for generating a flow of cooling medium
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K9/00Arrangements for cooling or ventilating
    • H02K9/02Arrangements for cooling or ventilating by ambient air flowing through the machine
    • H02K9/04Arrangements for cooling or ventilating by ambient air flowing through the machine having means for generating a flow of cooling medium
    • H02K9/06Arrangements for cooling or ventilating by ambient air flowing through the machine having means for generating a flow of cooling medium with fans or impellers driven by the machine shaft
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K9/00Arrangements for cooling or ventilating
    • H02K9/08Arrangements for cooling or ventilating by gaseous cooling medium circulating wholly within the machine casing
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K9/00Arrangements for cooling or ventilating
    • H02K9/10Arrangements for cooling or ventilating by gaseous cooling medium flowing in closed circuit, a part of which is external to the machine casing
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K2213/00Specific aspects, not otherwise provided for and not covered by codes H02K2201/00 - H02K2211/00
    • H02K2213/03Machines characterised by numerical values, ranges, mathematical expressions or similar information
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K9/00Arrangements for cooling or ventilating
    • H02K9/22Arrangements for cooling or ventilating by solid heat conducting material embedded in, or arranged in contact with, the stator or rotor, e.g. heat bridges
    • H02K9/227Heat sinks
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K9/00Arrangements for cooling or ventilating
    • H02K9/26Structural association of machines with devices for cleaning or drying cooling medium, e.g. with filters

Definitions

  • the invention relates to an electric motor having a rotor which is connected in a rotationally fixed manner to a rotor shaft, to a housing which is provided with a cooling jacket through which a liquid can flow, which has an inner jacket and an outer jacket, and a stator which is fixedly arranged in the housing. which surrounds the rotor in the circumferential direction and which has at least one substantially axially extending cooling channel.
  • EP 2 580 848 B1 shows a dynamo-electric machine with air-liquid cooling with a closed air cooling circuit.
  • the inner shell has lugs on which the stator is attached, and cooling fins, where the air is cooled.
  • a disadvantage of such an electric motor is complicated by the cooling fins and the lugs to be produced inner shell of the cooling jacket. Furthermore, the cooling of the stator takes place primarily by the convective air flow between the inner shell and the stator.
  • Object of the present invention is to provide an electric motor of the type mentioned with an improved cooling system.
  • a stator which contacts the inner jacket of the cooling jacket via a heat-transferring contact surface, the contact surface, viewed from one end side of the stator, comprising at least 50% of the envelope of the stator and / or the inner side of the inner jacket.
  • the envelope means in the context of the invention, the lateral surface of an imaginary cylinder which extends around the stator or within the inner shell and on which the contact surface is arranged. For the calculation of the proportion, the respective smaller lateral surface is used. This causes at least 50% of a circumference, which includes the contact surfaces between the inner shell and stator, an intimate, heat-transferring contact between the stator and the inner jacket of the cooling jacket can be reduced.
  • a gas or gas mixture such as, for example, air can be guided as a coolant through the stator.
  • a gas or gas mixture such as, for example, air can be guided as a coolant through the stator.
  • this results in a combined cooling via a convective heat transport through the coolant, in particular in the axially extending cooling channel, and heat removal by heat conduction via the electrically conductive material of the stator or of the inner jacket of the cooling jacket.
  • the cooling of the stator and the temperature control in the electric motor, in particular in the region of the stator can be improved.
  • the axial extent of the cooling jacket preferably corresponds at least to the axial extent of the stator. This ensures that a heat conductive contact not only in individual sections of at least 50% of the envelope of the stator and / or the inside of the inner shell comprises. Rather, this value is valid over the entire length of the stator. Thus, at least 50% of a lateral surface of a cylinder jacket enveloping the stator is in contact with the inside of the inner jacket. As a result, the heat dissipation is ensured by heat conduction from the stator to the inner jacket of the cooling jacket over the entire stator length and thus improved.
  • At least one stagnation channel forming internals are arranged in the cooling jacket.
  • the internals are spaced apart in the axial direction and extend in the circumferential direction between inner shell and outer coat.
  • the internals each have at least one fluidic passage, wherein the passages of axially successive internals in the circumferential direction are arranged rotated against each other such that the internals in the cooling jacket form a flow channel with multiple deflection and flow division.
  • Such installations which extend in the circumferential direction between the inner and outer shells, are to be realized in the manufacture of the cooling jacket in a simple manufacturing technology. Through such internals realized flow channels have multiple deflections and flow divisions and mergers of the cooling medium flow. Thus, a distribution of the cooling medium in the cooling jacket is realized in a simple manner and short-circuit currents are prevented.
  • a homogenization of the cooling medium temperature is achieved by the division of the cooling medium flow and the subsequent remixing. This is particularly advantageous when it comes to the local hotspot formation in the electric motor, whereby two cooling medium streams having a different course in the cooling jacket, have different temperatures. Due to the mixing and repeated division, the temperature of the cooling medium is evened out here.
  • the internals C-shaped extending between the inner shell and outer shell are arranged.
  • Such C-shaped grooves in a particularly simple way have a corresponding fluidic passage and, for example, can be mutually rotated by 180 ° between the inner and outer sheath of the cooling jacket, in order to form a corresponding flow channel.
  • the flow passage is defined by the clearance between the Formed ends of these installations and is thus automatically as high as the distance between the inner and outer sheath. Additional pressure losses are avoided.
  • the internals extend by 270 ° to 350 °, in particular 320 ° to 340 °, between the inner and outer sheath. This ensures that on the one hand there is sufficient guidance of the coolant fluid through the C-shaped internals and, on the other hand, that the pressure loss in the cooling jacket is largely minimized.
  • the distance between the two ends of the C-shaped internals is chosen so that the cross section between the two ends of the C-shaped internals between inner and outer shells approximately twice the area as a cross-section in the longitudinal direction of the motor between two directly successive internals , Thus, changes in the dimensions of the flow cross-section are reduced in the cooling jacket and optimized the flow guidance in the cooling jacket.
  • the electric motor has a fan for generating a coolant flow, in particular a gas or gas mixture stream in an inner space accommodating the stator and the rotor.
  • a forced convection in the region of the stator and rotor can be generated.
  • the fan can in this case be designed as an axial fan, which is arranged in an extension of the axis of rotation of the rotor shaft or as a radial fan, which is offset relative to this axis of rotation, in particular in the radial direction outside of the housing and via a Coolant conductive connection with the interior is in communication.
  • the fan can accelerate the coolant in either the axial or radial direction with respect to the direction of rotation of the fan.
  • the fan is rotatably mounted on the rotor shaft.
  • a coolant flow is continuously generated during operation of the electric motor.
  • Such a fan is automatically in operation when the corresponding electric motor is in operation and rotates the rotor shaft.
  • a particularly reliable cooling of the electric motor is achieved by the coolant.
  • the structural complexity is relatively low, since a separate drive of the fan is unnecessary.
  • the fan has its own and independent of the rotor shaft drive.
  • the rotational speed of the fan can be controlled independently of the rotational speed of the rotor shaft or of the electric motor.
  • the fan is arranged in the interior. Due to the arrangement of the fan in the interior, which also accommodates the stator and rotor of the electric motor, a compact design of a corresponding electric motor can be achieved. be enough.
  • the interior is closed.
  • the fan arranged in the interior thus generates a circulation of the coolant in the interior of the electric motor. Characterized in that the interior of the electric motor is separated in the closed version of the environment, an entry of foreign bodies is avoided in the interior. This is particularly important for the use of the electric motor according to the invention in harsh environments with high pollution load or if there is a lot of moisture in the environment. Thus, short circuits in the electrical system in the interior of the electric motor can be avoided. A dissipation of heat from the electric motor takes place in this case almost exclusively by the coolant jacket flowing through the cooling medium.
  • the rotor has at least one substantially axially extending cooling channel. Through this cooling channel and the rotor can be flowed through by the coolant and cooled accordingly. The temperature control of the electric motor is thus improved.
  • a cooling channel extending in the rotor is particularly advantageous in electric motors with a closed interior, since the coolant flow generated by the fan can thus form a cooling circuit which comprises the cooling channel in the rotor and the cooling channel in the stator, so that the coolant flows via the one cooling channel from the fan away and back to the fan via the other cooling channel.
  • the electric motor has a cooling control, which comprises at least one sensor unit and is designed to control the cooling of the electric motor.
  • the at least one sensor unit can be arranged in the interior of the electric motor, on the stator, on the rotor or in the region of the cooling medium inflow or cooling medium outflow of the cooling jacket or at another suitable location.
  • the sensor unit can measure, for example, the flow rates or pressure losses.
  • the sensor unit particularly preferably absorbs the temperature.
  • the cooling control evaluates the signal of the sensor unit and controls the cooling of the electric motor accordingly.
  • the cooling control is designed so that it controls the flow through the cooling jacket.
  • the need for cooling medium as well as the energy needed to deliver the cooling medium through the cooling jacket can be adjusted to the current cooling requirements of the electric motor.
  • the electric motor to the fan with its own, independent of the rotor shaft drive, wherein the cooling control is designed to control the speed of the fan.
  • the flow of the coolant in the region of the stator and rotor can be controlled and adapted to the current coolant requirement.
  • the energy required for the drive of the fan is optimized and ensures always sufficient cooling of the rotor and stator via the coolant.
  • the sensor unit is arranged in the interior of the electric motor. In this case, it may in particular be arranged directly on the stator or on the rotor and directly record the temperatures of these components. Further advantageous embodiments of the invention will be explained in more detail with reference to the embodiments illustrated below. Show:
  • FIG. 2 shows a cross-section at right angles to the longitudinal central axis of the electric motor according to FIG. 1;
  • FIG. 3 shows a view of the housing of the electric motor according to the invention according to FIG. 1 with the stator;
  • Fig. 4 is a view of the housing with the stator of Figure 3 taken along the longitudinal center axis.
  • FIG. 5 shows a view of a rotor of an electric motor according to the invention from the end face
  • FIG. 6 shows the longitudinal cross section of the rotor according to FIG. 5;
  • FIG. 8 shows the housing according to FIG. 7 in a view from the side
  • FIG. Fig. 9 shows the cross section through the housing of FIG. 8, and
  • FIG. 10 shows a housing in an alternative embodiment.
  • FIG. 1 shows an electric motor 2 with a housing 4, in which a stator 6 is arranged, which comprises a rotor 8.
  • the rotor 8 is rotatably connected to a rotor shaft 10.
  • the housing 4 has a cooling jacket 12 which has an inner jacket 14 and an outer jacket 16.
  • internals 18 are fitted between the inner jacket 14 and the outer jacket 16, through which flow channels 20 are formed in the cooling jacket 12.
  • flow channels 20 are formed in the cooling jacket 12.
  • the stator 6 is connected via a heat-transferring contact surface 22 in a heat-conducting contact with the inner jacket 14 of the cooling jacket 12. In this way, excess energy can be discharged from the stator 6 to the cooling jacket 12 and discharged there by the cooling medium from the electric motor 2.
  • the stator 6 and the rotor 8 are arranged in an inner space 24 of the electric motor 2.
  • a fan 26 is rotatably disposed on the rotor shaft 10. Through this Fan is a coolant in the interior 24 upon rotation of the rotor shaft 10 is set in motion and flows through cooling channels 28 in the stator 6 and cooling channels 30 in the rotor 8 in the interior 24 on the stator 6 and rotor 8 over and cools them.
  • Fig. 2 shows an electric motor according to Fig. 1 in a cross section.
  • the cooling channels 28 of the stator 6 and the cooling channels 30 of the rotor 8 are clearly visible.
  • the cooling jacket 12 internals 18 can be seen.
  • the internals 18 each have a passage 32 through which the areas separated by the internals in the axial direction are in fluid communication.
  • FIG. 3 shows the housing 4 of the electric motor with the cooling jacket 12 comprising the inner jacket 14 and the outer jacket 16, in which the internals 18 form flow channels 20.
  • a stator 6 is arranged in the housing 4.
  • Fig. 4 shows the housing 4 with the stator 6 arranged therein in a view from the front side.
  • the cooling channels 28 in the stator 6 are clearly visible.
  • the cooling channels 28 are mounted on the edge of the stator 6.
  • An envelope of the stator coincides more than 50% with the contact surface 22 between the stator 6 and the inner jacket 14 of the cooling jacket 12 together. As a result, a large area is provided for heat transfer from the stator 6 into the cooling jacket 12 via solid-state heat conduction.
  • the cooling channels 28 in the stator 6 can in this case also be arranged in the stator 6 in such a way that the outside of the stator 6 abuts the entire surface of the inner jacket 14 of the cooling jacket 12.
  • the cooling channels 28 in the stator 6 then run not only along the stator 6 but within the stator 6.
  • the rotor 8 is shown in Fig. 5 in a view from the front side, in which the cooling channels 30 of the rotor 8 can be clearly seen.
  • Fig. 6 shows the same rotor 8 with the cooling channel 30 in a cross section.
  • FIG. 7 shows a part of the housing 4, with the inner shells 14 of the cooling jacket 12, are fixed to the fixtures 18.
  • the baffles 18 are in this case designed as C-shaped elements extending in the circumferential direction around the inner shell. Between the ends of the C-shaped internals 18, a passage 32 is formed, through which the areas defined by the internals are in a fluidic connection. In this case, it is easy to see how the internals 18 in the cooling jacket 12 form a flow channel 20, in which a multiple deflection and current division of the cooling medium and a back mixing of the cooling medium takes place.
  • FIG. 8 shows this part of a housing 4 with the inner jacket 14 of the cooling jacket 12 and the internals 18 arranged on the inner jacket 14.
  • FIG. 9 shows the housing in a section which is laid through the apertures 32 of the fixtures 18. It can be seen that the C-shaped internals are mutually offset by 180 0 offset.
  • FIG. 10 shows a housing 4 in an alternative embodiment with a fan 26 arranged outside an interior 24.
  • the fan 26 has a separate drive, which is designed here as an electric motor.
  • the coolant is sucked in from outside the electric motor 2 through a filter and discharged back to the outside through an outlet opening after flowing through the interior 24 which is open to the outside.
  • By an arrangement of the fan 26 outside the interior 24 can be realized in comparison with an arrangement of the fan 26 in the interior shorter overall length of the electric motor 2.

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Motor Or Generator Cooling System (AREA)

Abstract

La présente invention concerne un moteur électrique (2) comportant un rotor (8) qui est relié solidaire en rotation à un arbre (10) de rotor ; un carter (4) qui est pourvu d'une chemise réfrigérante (12), pouvant être parcourue en particulier par un liquide, qui comprend une chemise interne (14) et une chemise externe (16) ; et un stator (6), disposé de manière fixe dans le carter (4), qui entoure le rotor (8) dans une direction circonférentielle et qui comprend au moins un canal réfrigérant (28) positionné de manière sensiblement axiale. Le stator (6) est en contact par le biais d'une surface de contact (22) thermoconductrice avec la chemise interne (14) de la chemise réfrigérante (12), la surface de contact (22) comportant, observée depuis une face frontale du stator (6), au moins 50 % de l'enveloppe du stator (6) et/ou de la face interne de la chemise interne (14).
PCT/EP2018/000477 2017-10-26 2018-10-22 Moteur électrique muni d'un double refroidissement WO2019081054A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102017009973.1 2017-10-26
DE102017009973.1A DE102017009973A1 (de) 2017-10-26 2017-10-26 Elektromotor mit zweifacher Kühlung

Publications (1)

Publication Number Publication Date
WO2019081054A1 true WO2019081054A1 (fr) 2019-05-02

Family

ID=64308688

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/EP2018/000477 WO2019081054A1 (fr) 2017-10-26 2018-10-22 Moteur électrique muni d'un double refroidissement

Country Status (2)

Country Link
DE (1) DE102017009973A1 (fr)
WO (1) WO2019081054A1 (fr)

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1248349A2 (fr) * 2001-04-06 2002-10-09 Miscel Oy Ltd. Moteur électrique asynchrone
EP1515417A2 (fr) * 2003-09-10 2005-03-16 Traktiossyteme Austria GmbH Machine électrique fermée et méthode de coneption d'une telle machine
WO2013037409A1 (fr) * 2011-09-14 2013-03-21 Schaeffler Technologies AG & Co. KG Moteur électrique d'une transmission hybride, comprenant des sorties de câble sur une surface circonférentielle radiale, et axe électrique d'un entraînement hybride
EP2662952A1 (fr) * 2012-05-11 2013-11-13 Siemens Aktiengesellschaft Générateur, en particulier pour éolienne
EP2800251A1 (fr) * 2013-04-29 2014-11-05 Siemens Aktiengesellschaft Machine électrique avec flasque
EP2580848B1 (fr) 2010-06-11 2015-06-24 Siemens Aktiengesellschaft Machine dynamoélectrique équipée d'un système de refroidissement d'air/de liquides

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE2406489B2 (de) * 1974-02-12 1978-10-19 Kurt Dr.-Ing.Habil. 3360 Osterode Tardel Axial an elektrische Maschinen außenseitig anzubauende Lüftungseinrichtung
DE2649181A1 (de) * 1976-10-28 1978-05-03 Siemens Ag Belueftungseinrichtung fuer elektrische maschinen
DE4222131C3 (de) * 1992-07-06 2000-01-27 Vem Motors Gmbh Belüftungseinrichtung für die Druckbelüftung von oberflächenbelüfteten elektrischen Maschinen
US7948126B2 (en) * 2007-03-16 2011-05-24 Remy Technologies, L.L.C. Liquid cooling system of an electric machine
CN203368235U (zh) * 2013-07-25 2013-12-25 顾林男 一种防爆电机

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1248349A2 (fr) * 2001-04-06 2002-10-09 Miscel Oy Ltd. Moteur électrique asynchrone
EP1515417A2 (fr) * 2003-09-10 2005-03-16 Traktiossyteme Austria GmbH Machine électrique fermée et méthode de coneption d'une telle machine
EP2580848B1 (fr) 2010-06-11 2015-06-24 Siemens Aktiengesellschaft Machine dynamoélectrique équipée d'un système de refroidissement d'air/de liquides
WO2013037409A1 (fr) * 2011-09-14 2013-03-21 Schaeffler Technologies AG & Co. KG Moteur électrique d'une transmission hybride, comprenant des sorties de câble sur une surface circonférentielle radiale, et axe électrique d'un entraînement hybride
EP2662952A1 (fr) * 2012-05-11 2013-11-13 Siemens Aktiengesellschaft Générateur, en particulier pour éolienne
EP2800251A1 (fr) * 2013-04-29 2014-11-05 Siemens Aktiengesellschaft Machine électrique avec flasque

Also Published As

Publication number Publication date
DE102017009973A1 (de) 2019-05-02

Similar Documents

Publication Publication Date Title
EP2062343B1 (fr) Machine electrique avec rotor a refroidissement
DE102011087602B4 (de) Elektrische Maschine
EP2305981B1 (fr) Turbosoufflante électrique
DE102018113319B4 (de) Elektromotor mit flüssigkeitsgekühltem Stator und luftgekühltem Rotor
EP0623988B1 (fr) Machine électrique
EP2109207A2 (fr) Machine électrique refroidi par un liquide et procédé correspondant
DE4229395C2 (de) Oberflächengekühlte, geschlossene elektrische Maschine
EP2741397B1 (fr) Machine électrique avec refroidissement eau-air combiné
DE10018642C2 (de) Drehelektromaschine
EP3245715B1 (fr) Moteur électrique à refroidissement amélioré
DE102010001437A1 (de) Dynamoelektrische Maschine mit einem Schleifringläufer und geschlossener Schleifringanordnung
DE10307813B4 (de) Elektrische Maschine
DE102016112251A1 (de) Elektromaschine mit einer Kühlvorrichtung
DE102015218519A1 (de) Elektrische Maschine
EP3881414A1 (fr) Moteur électrique
EP2805403B1 (fr) Dispositif de refroidissement pour rotor d'un moteur électrique
WO1999061692A1 (fr) Galette pour guider, rechauffer et transporter un fil
DE102015011863A1 (de) Elektrische Maschine
DE102018114825A1 (de) Kühlvorrichtung für eine rotierende elektrische Maschine und rotierende elektrische Maschine zum Antreiben eines Fahrzeugs
EP2982021B1 (fr) Carter pour un moteur électrique
WO2019081054A1 (fr) Moteur électrique muni d'un double refroidissement
DE102017202801A1 (de) Rotorblechpaket für einen Rotor
DE102019111931A1 (de) Elektrische Maschine mit von einem externen Kühlmedium direkt durchströmbaren Läuferstäben
WO2018153598A1 (fr) Moteur électrique pour véhicule automobile
DE2558405C3 (de) Geschlossene, oberflächenbelüftete elektrische Maschine

Legal Events

Date Code Title Description
DPE2 Request for preliminary examination filed before expiration of 19th month from priority date (pct application filed from 20040101)
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 18803315

Country of ref document: EP

Kind code of ref document: A1

ENP Entry into the national phase

Ref document number: 2018803315

Country of ref document: EP

Effective date: 20200526

122 Ep: pct application non-entry in european phase

Ref document number: 18803315

Country of ref document: EP

Kind code of ref document: A1