INTERLOCKED LAMINATION PACKAGE FOR WINDING OF EESM ROTOR BY PROCESS

A rotor assembly method includes an assembly step configured to install on a rotor shaft of a rotor and a lamination package formed of a stack of laminations. The stack of laminations includes an inner portion and an outer portion which is, compared to the inner portion, more distant to the rotor shaft. Also included is a compression step of compressing the outer portion by an axial compression force to form a compressed outer portion. A winding assembly and fixation step includes winding a field coil on the compressed outer portion, and removing the axial compression force after the field coil is wound.

FIELD OF THE INVENTION

The present invention belongs to the field of rotary electric machines configured to be on board of an automotive vehicle, such as an electric vehicle (EV) or a hybrid vehicle (HV).

The present invention relates, in particular, to the field of electric excited rotors, also called wound rotors or slip ring rotors, integrated to rotary electric machines.

BACKGROUND OF THE INVENTION

As is known, an electric or a hybrid automotive vehicle presents an electric drive comprising a rotary electric machine which needs to be supplied with electric power, for instance by a high voltage power supply battery, to deliver a mechanical power in order to ensure the propulsion of the vehicle.

In a general manner, the rotary electric machine comprises a stator, referring to a fixed part of the rotary electric machine, and a rotor, referring to a rotating part of the rotary electric machine. The rotor then comprises a rotor shaft configured to ensure the transmission of the mechanical power between the rotary electric machine and an exterior driven apparatus, notably the wheels of the vehicle.

In particular, it is known to have the rotor electric excited. This type of rotors is commonly referred as wound rotors or slip ring rotors. Such a rotor comprises a rotor body formed of a stack of laminations having a plurality of teeth projecting radially, and a field coil wound around each tooth of the teeth. The field coil is then connected to an external power supply through slip rings. The slip rings correspond to electro-mechanical devices configured to allow the exchange of electric power between the field coil, which rotates with the rotor, and the external power supply, which is fixed.

The rotary electric machine for the electric or hybrid vehicles, the rotor is designed to rotate at high speeds, which may affect the holding of the field coil due to centrifugal forces. If the field coil is not precisely and firmly wound on the teeth of the rotor body, a malfunction of the rotor may occur.

In this context, the main objective of the present invention is to provide a rotor assembly method allowing to precisely and firmly wind the field coil around each tooth of the teeth of the rotor.

SUMMARY OF THE INVENTION

The present invention concerns a rotor assembly method comprising an assembly step, a compression step and a winding assembly and fixation step. The assembly step is configured to install on a rotor shaft of a rotor, a lamination package formed of a stack of laminations, wherein the stack of laminations comprises an inner portion and an outer portion which is, compared to the inner portion, more distant to the rotor shaft. The compression step consists of compressing the outer portion by an axial compression force to form a compressed outer portion. The winding assembly and fixation step comprises winding a field coil on the compressed outer portion, and removing the axial compression force after the field coil is wound.

Therefore, the rotor assembly method according to the present invention allows to precisely and firmly wind a field coil on a lamination package of the rotor body. Indeed, after a field coil is wound on the compressed outer portion, a pretension of the field coil is ensured and advantageously allows the field coil to be precisely and firmly wound on the lamination package of the rotor. The risk of mispositioning the field coil on the rotor body occurred in the rotor assembly phase or during operation of the rotor, is thus significantly reduced or completely avoided.

According to an embodiment, the compression step comprises applying the axial compression force on two axial ends of the outer portion.

Advantageously, the pressing device may not be in contact with two axial ends of the inner portion.

The lamination package comprises teeth projecting radially. Thus, the pretension of the field coil ensures that the field coil is correctly wound on each of the tooth of the teeth.

Preferably, the compression step comprises using a pressing device to apply the axial compression force; the pressing device being then removed after the winding assembly and fixation step.

Especially, the assembly and fixation step comprises using a pretension resulting from the axial compression force so that the field coil is precisely and firmly wound on the outer portion.

According to an embodiment, the rotor comprises end plates, and the end plates comprise each a pocket. Each of the pockets faces a tooth of the teeth of the stack of laminations, wherein the pocket is a cavity between the corresponding end plate and an area of an outer portion of the corresponding tooth belonging to the outer portion of the stack of laminations. Each tooth of the teeth corresponds to two end plates located at two axial sides of the tooth.

Preferably, the pressing device is a clamping device. The compression step comprises, for each tooth of the teeth, inserting in each of the pockets of the two end plates a pressing portion of the clamping device, and using the clamping device to apply the axial compression force on the areas of the outer portions of the tooth.

Furthermore, the present invention concerns a rotor being manufactured by using a rotor assembly method as mentioned above.

Preferably, the rotor is an electric excited rotor for an electrically excited synchronous motor (EESM).

According to an aspect of the invention, the invention relates to a rotary electric machine comprising the rotor as described previously and a stator.

Another aspect of the invention is an electric drive, comprising the rotary electric machine and an inverter configured to convert a direct current voltage coming from a high-voltage power supply battery into an alternating current voltage so as to drive the rotary electric machine. The AC voltage may be a multiphase AC voltage, especially a three-phase voltage.

A further aspect of the invention is an electric of a hybrid vehicle, comprising the electric drive for driving the vehicle. The vehicle may comprise the high-voltage power supply battery, preferably a rechargeable battery for providing the DC voltage to the inverter, if applicable.

DETAILED DESCRIPTION

Several embodiments of the present invention will be detailed hereafter with reference to the drawings. It will be apparent to those skilled in the art from this present disclosure that the following description of these embodiments of the present invention are provided for illustration only and not for the purpose of limiting the invention as defined by the appended claims and their equivalents.

In reference toFIG.7, an aspect of the invention is an electric vehicle or a hybrid electric automotive vehicle (EV) comprising wheels and an electric drive configured to drive at least indirectly at least one of the wheels of the vehicle. The vehicle may comprise a high-voltage power supply battery B, preferably a rechargeable battery, for providing electric power to the electric drive. However, the invention is not limited to this domain.

Another aspect of the invention is the electric drive comprising a rotary electric machine (i.e., an electric motor) M and an inverter I configured to convert a direct current (DC) voltage coming from the high-voltage power supply battery B into an alternating current (AC) voltage in order to drive the rotary electric machine M. The rotary electric machine M may in particular be a three-phase rotary electric machine supplied with a three-phase AC voltage.

The invention also relates to the rotary electric machine comprising a stator, referring to a fixed part of the rotary electric machine, and a rotor, referring to a rotating part of the rotary electric machine. The rotor1is, preferably, an electric excited rotor, also commonly referred as a wound rotor or a slip ring rotor for an electrically excited synchronous motor (EESM). More precisely, the stator presents a cylinder shape and surrounds coaxially the rotor1. Then, the rotary electric machine comprises a casing covering both the stator and the rotor1. Ordinarily, the stator comprises a stator body formed of a stack of stator laminations having a plurality of stator teeth projecting radially, and stator windings wound around the stator teeth.

FIG.1illustrates a partial view of an example of the rotor1according to a further aspect of the invention. The rotor1presents a shape of a cylinder and comprises a rotor shaft4configured to rotate around a rotation axis1X, a rotor body2comprising a lamination package formed of a stack of laminations having a plurality of teeth21projecting radially, and at least one field coil3wound around each tooth of the teeth21. A rotor assembly method300allowing to precisely and firmly wind the field coil3on the rotor body2(or more precisely, on the teeth21of the rotor1), will be described in detail in the following paragraphs.

The laminations of the rotor body2are especially stacked along the rotation axis1X. The invention is not limited to the number of teeth21. The teeth21may notably comprise four, six, or eight teeth for example. The rotor body2is configured to be mounted coaxially on the rotor shaft4, For instance, the rotor body2may be press-fitted on the rotor shaft4. The rotor body2is for example made of steel or silicone steel.

The field coil3is then connected to an external power supply through at least one slip ring (not represented) mounted on the rotor shaft4, namely on an axial end of the rotor shaft4. The field coil3is preferably made of copper. The slip rings especially correspond to electro-mechanical devices configured to allow the exchange of electric power between a rotating element and a fixed element, here respectively the field coil3and the external power supply. The rotor1may further comprise a holder such that the slip rings are mounted on the rotor shaft4through the holder.

The rotor1may further comprise end plates6, as represented inFIG.1, configured to come respectively against two axial ends of the rotor body2. Only one of the two axial ends of the rotor body2is represented as “142” inFIG.1. The end plates6notably present an annular shape, substantially similar to the shape of the two axial ends of the rotor body2such that to be able to cover the two axial ends. Then, the field coil3advantageously passes over the end plates6. In other words, the end plates6are located between the rotor body2and the coil ends of the field coil3such that to provide a mechanical holding of the stack of laminations and to electrically insulate axially the field coil3from the rotor body2.

In the present embodiment, the end plates6comprise each a pocket60facing a tooth of the teeth21of the stack of laminations, as illustrated inFIGS.1and6. Each tooth of the teeth21corresponds to two end plates6located at two axial sides of the tooth.

The rotor1further comprises wedge elements110extending axially and arranged in slots respectively located between two adjacent teeth of the teeth21. Then, the slots are notably filled with a filling material, for instance a resin, so as to fixate the field coil3. The field coil3is thus prevented from moving due to centrifugal forces during in-service life of the rotor1. The rotor1advantageously comprises two end caps8coming against two axial ends of the rotor body2.

FIGS.2to4illustrate a perspective view of a projection of a half of the rotor1during each of steps310to330of the rotor assembly method300, according to an embodiment of the invention.FIG.5is a flowchart of the steps310to330of the rotor assembly method300according to an embodiment of the invention.

The assembly step310is configured to install the stack of laminations of the rotor body2on the rotor shaft4, as illustrated inFIG.2. The stack of laminations comprises an inner portion2aand an outer portion2b. Compared to the inner portion2a, the outer portion2bis more distant to the rotor shaft4. The compressed outer portion2bcomprises the teeth21projecting radially. Preferably, the inner portion2apresents a diameter substantially equal to a half of a diameter of the rotor body2.

The compression step320consists of compressing the outer portion2bby an axial compression force92to form a compressed outer portion2b, and accordingly, a slightly fan-out inner portion2a. A distance between two axial ends of the inner portion2ais thus greater than a distance between two axial ends of the compressed outer portion2b, as illustrated inFIG.3.

According to an embodiment, the compression step320comprises applying the axial compression force92on the two axial ends of the outer portion2b. The axial compression force92is applied, for example, by a pressing device (not illustrated inFIG.3) which is in contact with the two axial ends of the outer portion2b. The pressing device is not in contact with the two axial ends of the inner portion2a. The pressing device is preferably a clamping device71, as illustrated inFIG.6.

FIG.6illustrate one of the pockets60in which a pressing portion of the clamping device71is inserted so as to apply the axial compression force92. As mentioned above, each tooth of the teeth21corresponds to two end plates6located at the two axial sides of the tooth.FIG.6only illustrates one of the two axial sides of the tooth, wherein only one of the pockets60is described.

The pocket60is a cavity between the corresponding end plate6and an area of an outer portion of the corresponding tooth belonging to the outer portion2bof the stack of laminations.

According to an embodiment, the compression step320comprises, for each tooth of the teeth21, inserting in each of the pockets60of the two end plates6a pressing portion of the clamping device71, and using the clamping device71to apply the axial compression force92on the areas of the outer portions of the tooth belonging to the outer portion2bof the stack of laminations.

The winding assembly and fixation step330, consisting of winding the field coil3on the compressed outer portion2b, as illustrated inFIG.4. More precisely, the field coil3is wound on each tooth of the teeth21of the compressed outer portion2b.

The winding assembly and fixation step330further comprises removing the axial compression force92after the field coil3is wound on the lamination package. For example, the pressing device is removed after the field coil3is wound on the outer portion2bof the lamination package. The removal of the axial compression force92leads that the inner portion2aand the outer portion2btend to return to their original status where the compression step320has not been performed yet. Therefore, such a pretension resulting from the axial compression force92makes the field coil3be precisely and firmly wound on the outer portion2b.

Then, after the field coil3is wound and the axial compression force92is removed, a pretension95of the field coil3ensures that the field coil3is precisely and firmly wound on each tooth of the teeth21of the lamination package of the rotor body2, as illustrated inFIG.4.

The rotor assembly method according to the invention allows thus to precisely and firmly wind a field coil around each tooth of the teeth of the lamination package. The risk of mispositioning the field coil on the rotor body occurred in the rotor assembly phase or during operation of the rotor, is significantly reduced or completely avoided.

Although embodiments have been described with reference to a number of illustrative embodiments thereof, it should be understood that numerous other modifications and embodiments can be devised by those skilled in the art that will fall within the spirit and scope of the principles of this disclosure.