EP4690431A1 - Elektrische synchronmaschine mit feststehendem induktor mit klauen - Google Patents
Elektrische synchronmaschine mit feststehendem induktor mit klauenInfo
- Publication number
- EP4690431A1 EP4690431A1 EP24716790.1A EP24716790A EP4690431A1 EP 4690431 A1 EP4690431 A1 EP 4690431A1 EP 24716790 A EP24716790 A EP 24716790A EP 4690431 A1 EP4690431 A1 EP 4690431A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- claw
- inductor
- stator
- air gap
- ferromagnetic
- Prior art date
- Legal status (The legal status 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 status listed.)
- Pending
Links
Classifications
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K19/00—Synchronous motors or generators
- H02K19/16—Synchronous generators
- H02K19/22—Synchronous generators having windings each turn of which co-operates alternately with poles of opposite polarity, e.g. heteropolar generators
- H02K19/24—Synchronous generators having windings each turn of which co-operates alternately with poles of opposite polarity, e.g. heteropolar generators with variable-reluctance soft-iron rotors without winding
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K1/00—Details of the magnetic circuit
- H02K1/06—Details of the magnetic circuit characterised by the shape, form or construction
- H02K1/12—Stationary parts of the magnetic circuit
- H02K1/14—Stator cores with salient poles
- H02K1/145—Stator cores with salient poles having an annular coil, e.g. of the claw-pole type
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K1/00—Details of the magnetic circuit
- H02K1/06—Details of the magnetic circuit characterised by the shape, form or construction
- H02K1/22—Rotating parts of the magnetic circuit
- H02K1/24—Rotor cores with salient poles ; Variable reluctance rotors
- H02K1/246—Variable reluctance rotors
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K19/00—Synchronous motors or generators
- H02K19/02—Synchronous motors
- H02K19/10—Synchronous motors for multi-phase current
- H02K19/103—Motors having windings on the stator and a variable reluctance soft-iron rotor without windings
Definitions
- TITLE Synchronous electric machine with fixed claw inductor
- the technical field of the invention is that of synchronous machines.
- the present invention relates to a synchronous machine with armature and stator inductor.
- the synchronous machine comprises, like any electric motor, a rotor and a stator, mainly the rotor forms the inductor and the stator forms the armature.
- two ways of making an inductor of a synchronous electric machine are known, those wound and those with magnets.
- the inductor may have an advantage in being wound. Indeed, a machine with a wound iron core can produce a higher induction than those with magnets which are also more expensive and thermally limited by their characteristics than a coil.
- a synchronous electric machine comprising a magnet inductor will be more expensive, more thermally limited and less efficient (torque) particularly at high rotation speed than a machine compared to an electric machine comprising a wound inductor.
- a first family of synchronous electric machine has a radial air gap, the air gap volume of which between a stator comprising coils forming the armature and the rotor forming an inductor (with magnet or wound) is of cylindrical shape surrounding the axis of rotation of the rotor.
- a second family of synchronous electric machine has an axial air gap, the air gap volume of which between a stator comprising coils forming the armature and the rotor forming the inductor (with magnet or wound) is in the shape of a disk perpendicular to the axis of rotation of the rotor.
- the flux is mainly radial called radial field in a radial air gap machine and is mainly axial called axial field in an axial air gap machine but it is also known the synchronous machines with claw rotor whose flux includes radial and axial components (whether with radial or axial air gap).
- These claw rotor machines have flux loops not contained in a plane. In other words, each of the loops is three-dimensional, called a left curve, as opposed to a plane curve.
- alternators or alternator-starters comprising a rotor inductor comprising a field coil and two half-pole pieces comprising claws. The two pole pieces are assembled together to enclose the coil by means of the claws.
- the stator armature comprises coils wound in slots of several slotted laminations. The coils of the armature convert the flux variation when the rotor inductor rotates into an induced voltage, thus generating electric current.
- the invention provides a solution to the problems discussed above, by having a stator claw inductor and a stator armature.
- One aspect of the invention relates to a synchronous electrical machine comprising: a first claw stator inductor comprising a ferromagnetic claw body comprising a number Pe of poles and an inductor coil wound in the ferromagnetic body, a first stator armature comprising a number Pa of poles different from the number Pe, a ferromagnetic rotor comprising: an axis of rotation (X) a first set of ferromagnetic parts comprising a number Ns of parts regularly distributed around the axis of rotation, the number Ns is equal to the sum of or the difference between Pa/2 and Pe/2, the set of ferromagnetic parts being located between the first claw stator inductor and the first stator armature.
- the synchronous electric machine has a wound stator claw inductor which combines several advantages:
- the advantage of the coil is that it allows for a higher inductance than with magnets
- the synchronous electric machine according to the invention has the advantages of a claw synchronous machine without its disadvantages.
- the number Ns of ferromagnetic parts in the rotor (which is either the sum or the difference with the number of poles Pa of the armature and the number of poles Pe of the inductor (Pa being different from Pe) allows the rotor to modulate the flux between the armature stator and the stator claw inductor to either rotate the rotor in motor mode or generate current in the stator armature in generator mode.
- the synchronous electric machine according to one aspect of the invention may have one or more complementary characteristics among those of the following paragraphs, considered individually or according to all technically possible combinations.
- the ferromagnetic rotor is located axially between the first stator armature and the first claw stator inductor.
- the air gap is axial.
- the magnetic flux produced by the stator armature and the stator inductor is modulated by the set of ferromagnetic parts and passes axially through the air gap.
- the electric machine comprises a second inductor of identical shape to the first claw inductor and comprising an external diameter smaller than the internal diameter of the first claw inductor, in which the first claw inductor surrounds the second claw stator inductor.
- each internal claw of the first inductor is radially contiguous with an external claw of the second inductor and in that each external claw of the first inductor is radially contiguous with an internal claw of the second inductor.
- the first set of ferromagnetic parts is located concentrically between the first stator armature and the first claw stator inductor.
- the air gap is radial.
- the magnetic flux produced by the stator armature and the stator inductor is modulated by the set of ferromagnetic parts and axially crosses the air gap radially.
- the first claw stator inductor surrounds the first set of ferromagnetic parts of the ferromagnetic rotor surrounding the stator armature.
- the first stator armature surrounds the first set of ferromagnetic parts of the ferromagnetic rotor surrounding the claw stator inductor.
- the first stator armature is a claw armature. This makes it possible to use the entire coil and therefore to have better efficiency.
- the claw stator armature comprises a first block comprising a first pole base and a second pole base and a coil between the first and second pole bases.
- the machine further comprises: a second inductor of identical shape to the first inductor, a second stator armature comprising air gap portions, of identical shape to the first claw stator armature, and in that the rotor further comprises a second set of ferromagnetic parts identical to the first set of ferromagnetic parts forming a first air gap with the second inductor and being opposite the air gap portions of the second stator armature forming an air gap between them.
- identical shape is meant the geometric shape but not the dimensions, thus a first inductor may be larger in size than the second inductor.
- the machine further comprises: a third inductor of identical shape to the first inductor, a third stator armature with claws of identical shape to the first block comprising air gap portions and and in that the rotor further comprises a third set of ferromagnetic parts identical to the first set of ferromagnetic parts, forming an air gap with the third inductor and being opposite the air gap portions of the third stator armature forming an air gap between them.
- Such a machine has the advantage of being claw-type and having an armature that can be supplied by or restore a three-phase alternating voltage. In fact, each armature can thus form a phase.
- the machine further comprises: a second claw stator inductor of identical shape to the first claw stator inductor and a second claw stator armature of identical shape to the first claw stator armature, a second rotor mechanically decoupled from the first rotor comprising a set of ferromagnetic parts located between the second claw stator inductor and the second claw stator armature, in which either the two claw stator armatures or the two claw inductors are in one piece by sharing their base.
- the two rotors are coaxial and in the case of a radial air gap, the two rotors are parallel to each other by having their axis distant from each other.
- the first armature has a salient pole.
- it comprises a winding comprising different coils forming a multi-phase system.
- the armature comprises teeth having first air gap walls and second air gap walls opposite the first air gap walls by means of a central wall, a winding of the armature comprising coils each wound in a corresponding tooth around the central wall between the first and second air gap walls, the synchronous electric machine further comprising: a second inductor of identical shape to the first inductor and in that the rotor further comprises a second set of ferromagnetic parts identical to the first set of ferromagnetic parts, forming an air gap with the second inductor and being facing the second air gap walls of the stator armature forming an axial air gap between them.
- the machine further comprises a second and third inductor identical to the first inductor, a second and third stator armature with claws identical to the first armature comprising air gap portions and in that the rotor further comprises a second and third set of ferromagnetic parts identical to the first set of ferromagnetic parts, each respectively forming an air gap with the second and third inductor and being opposite the air gap portions respectively of the second and third stator armature forming an air gap between them.
- the ferromagnetic claw body of the claw inductor comprises a base and claws, wherein each claw comprises an intermediate portion extending perpendicularly from the base and an air gap portion extending from the intermediate portion parallel to the base, the inductor coil being wound in a zone formed between the base, the intermediate portion and the air gap portion, and wherein the claw inductor further comprises inter-claw-base magnets per claw, each located between the base and a free end of the intermediate portion of the corresponding claw.
- the inductor comprises inter-claw magnets located in each space formed between two contiguous claws of different polarity.
- the first ferromagnetic body of the claw stator inductor comprises a first polar base and a second polar base and the inductor coil is located between the first and second polar bases.
- the electric machine comprises a cooling liquid circuit, in which the inductor is immersed, in particular in a dielectric liquid.
- a cooling liquid circuit in which the inductor is immersed, in particular in a dielectric liquid.
- the ferromagnetic claw body comprises a material formed from compressed powder.
- FIG. 1 A shows a schematic representation of a synchronous electric machine according to a first example of a first embodiment.
- FIG. 1 B shows a schematic representation of a synchronous electric machine according to a second example of a first embodiment.
- FIG. 2 shows a schematic representation of a radial section of the synchronous electric machine according to the first example of a first embodiment.
- FIG. 3 shows an exploded schematic representation of an example of a claw stator inductor of the synchronous electric machine according to the first example of a first embodiment.
- FIG. 4 shows a schematic representation in a partial three-dimensional view of another example of the claw stator inductor of the synchronous electric machine according to the first example of a first embodiment.
- FIG. 5 shows a schematic representation of a radial section of the synchronous electric machine according to the second example of a first embodiment.
- FIG. 6 shows a schematic representation in a three-dimensional view of an example of a claw stator inductor of the synchronous electric machine according to the first example of a first embodiment.
- FIG. 7 shows a schematic representation along a radial section of a synchronous electric machine according to a third example of the first embodiment.
- FIG. 8 shows a schematic representation along a radial section of a synchronous electric machine according to a fourth example of the first embodiment.
- FIG. 9 shows a schematic representation of a synchronous electric machine section according to a first example of a second embodiment.
- FIG. 10A shows an exploded schematic representation of a first example of a claw stator inductor of the synchronous electric machine according to the first example of the second embodiment.
- FIG. 10B shows a schematic representation of a ferromagnetic claw body and inter-claw magnets of a second example of a claw stator inductor of the synchronous electric machine according to the first example of the second embodiment.
- FIG. 10C shows a schematic representation of a ferromagnetic claw body and inter-claw-base magnets of a third example of a claw stator inductor of the synchronous electric machine according to the first example of the second embodiment.
- FIG. 10D shows a schematic representation of a ferromagnetic claw body, inter-claw-base magnets and inter-claw magnets of a fourth example of a claw stator inductor of the synchronous electric machine according to the first example of the second embodiment.
- FIG. 1 1 shows a schematic representation of an example of a stator armature of the synchronous electric machine according to the first example of the second embodiment.
- FIG. 12 shows a schematic representation in a three-dimensional view of an example of a ferromagnetic rotor of the synchronous electric machine according to the first example of the second embodiment.
- FIG. 13A shows a schematic representation of a synchronous electric machine according to a second example of the second embodiment.
- FIG. 13B shows a schematic representation of a synchronous electric machine according to a third example of the second embodiment.
- FIG. 13C shows a schematic representation of a section of a tooth of an armature of the synchronous electric machine according to the third example of the second embodiment.
- FIG. 14 shows a schematic representation of a radial section of a synchronous electric machine according to a fourth example of the second embodiment.
- FIG. 15 shows a schematic representation of a radial section of a synchronous electric machine according to a fifth example of the second embodiment.
- FIG. 16 shows a schematic representation of a synchronous electric machine section according to a sixth example of the second embodiment.
- FIG. 17 shows a schematic representation of a double claw inductor of a synchronous electric machine according to the sixth example of the second embodiment.
- rotor an element which rotates on itself according to its own axis of rotation.
- stator element By a stator element is meant a static element which is therefore immobile relative to the axis of rotation of the rotor.
- the invention relates to a synchronous electric machine M1, M2 of which different examples of two different embodiments will be described below.
- Figures 1A to Figure 8 show a schematic representation of the synchronous electric machine M1 or a part thereof according to examples of the first embodiment and Figures 9 to Figure 17 show a schematic representation of the synchronous electric machine M2 or a part thereof according to examples of the second embodiment.
- the synchronous electric machine M1, M2 comprises at least: a first claw stator inductor 1, 4 comprising a ferromagnetic claw body 11, 41 comprising a number Pe of poles and an inductor coil 10, 40 wound in the ferromagnetic body 11, 41, a first stator armature 2, 5 comprising a number Pa of poles different from the number Pe, a ferromagnetic rotor 3, 6 comprising: an axis of rotation a first set of ferromagnetic parts 30, 60 comprising a number Ns of parts regularly distributed around the axis of rotation, the number Ns is equal to the sum of or the difference between Pa/2 and Pe/2, the set of ferromagnetic parts 30, 60 being located between the first claw stator inductor 1, 4 and the first stator induced 2, 5.
- the electrical machine M1, M2 comprises at least two air gaps, a first air gap between the first stator inductor and claws 1, 4 and the ferromagnetic rotor 3, 6 and a second air gap between the first stator armature 2, 5 and the ferromagnetic rotor 3, 6.
- the air gaps are radial and in the second embodiment the air gaps are axial.
- the first set of ferromagnetic parts 30 is located concentrically between the first stator armature 2 and the claw stator inductor 1
- the first set of ferromagnetic parts 60 is located axially between the first stator armature 5 and the claw stator inductor 4.
- the ferromagnetic claw body of the claw inductor comprises a base and claws, wherein each claw comprises an intermediate portion extending from the base perpendicular to the base and an air gap portion extending from the intermediate portion parallel to the base, the inductor coil wound in an area formed between the base, the intermediate portion and the air gap portion.
- FIG. 1 A shows a schematic representation of an axial section of a first synchronous machine M1 according to a first example of a first embodiment.
- stator armature 2 surrounds the ferromagnetic rotor 3 surrounding the claw stator inductor 1.
- FIG. 2 shows a schematic representation of a radial section of the synchronous electric machine M1 according to the first example of a first embodiment.
- the stator armature 2 is an armature comprising a winding 20 wound in a sheet metal pack 21.
- the winding 20 comprises three coils 20u, 20v, 20w each forming a phase of a three-phase system.
- the winding can comprise more than three coils, for example five or six forming for example a double three-phase system.
- the coils 20u, 20v, 20w are wound in notches of the sheet metal pack 21.
- the winding is concentric, but could be according to another type of winding such as distributed for example wavy or distributed wavy.
- the rotor 3 comprises 8 ferromagnetic parts 30 and the claw inductor 1 of the machine comprises an inductor coil 10 corrugated in a ferromagnetic claw body 11 which has three claws per base (i.e. three north claws and three south claws) and.
- FIG. 3 shows a schematic representation of an exploded view of a claw stator inductor 1 of the synchronous electric machine M1 according to a second example of a first embodiment.
- the claw stator inductor 1 comprises in this case a ferromagnetic claw body 11 comprising a first base comprising a first base 115a and first claws 11a of a first polarity each extending axially from the base 115a and a second polar base comprising a second base 115b and second claws 11b of the other polarity each extending axially from the second base 115b towards the first base 115a between two first claws 11a.
- the first claws 11a have a south polarity (this depends on the direction of the current flowing in the inductor coil 10) and the second claws have a north polarity.
- the two bases 115a, 115b have a crown shape each comprising a core having an orifice in axial contact with each other.
- the claws 11a, 11b each comprise an intermediate portion 114a, 114b extending from the base 115a, 115b and an air gap portion 113a, 113b facing the ferromagnetic rotor 3 not shown here.
- the air gap portion 113a, 113b comprises an external surface facing the ferromagnetic parts 30, together forming the radial air gap (in the shape of a cylinder). The external diameter of the claws 11a, 11b is therefore measured at this external surface of the air gap portion 113a, 113b.
- the inductor coil 10 is located axially in the ferromagnetic claw body 11 between the first and second pole bases.
- the claw stator inductor 1 further comprises inter-claw magnets 13 between the claws 11a, 11b of each pole base for increase in a known manner the efficiency of the claw stator inductor 1. Since the claw stator inductor 1 is stationary relative to the axis of rotation, the inter-claw magnets 13 are not subject to centrifugal force and are therefore simpler to interpose than in the claw rotor inductors of the prior art.
- the claw stator inductor 1 further comprises a fixed shaft 12 on which bearings can be mounted to support the ferromagnetic rotor 3.
- Figure 4 shows another example of a claw stator inductor 1 comprising the fixed shaft 12, the inductor coil 10 wound in the ferromagnetic body 11 between the claws 11a, 11b, of each polarity, the ferromagnetic body 11 here comprising a plurality of sheet metal packs 110, only two of which are shown.
- Each sheet metal pack forms a first claw 11a and a second claw 11b (a north polarity and a south polarity) which are opposite each other.
- Each sheet of a sheet stack 110 comprises an axial base 115 surrounding the fixed shaft 12, a first claw portion and a second claw portion each forming a part respectively of the first and second claws 11a, 11b, each extending from a corresponding end (opposite one another) of the base 115.
- Each claw 11a, 11b comprises an intermediate part 114a, 114b extending from the end of the base 115 and an air gap part 113a, 113b facing the ferromagnetic rotor 3 not shown here.
- the sheets of the sheet stack are intertwined towards each other by being folded against each other so that each claw is formed.
- the first sheet of a pack of sheets 1 10 comprises: a first air gap part forming a portion of a first claw juxtaposed to another claw of another pack of sheets and a second air gap part forming a portion of a second claw juxtaposed to the first part of the last sheet of the first claw of the pack of sheets.
- each air gap portion 1 13 of each claw comprises a projection towards the rotor 3 (in this example towards the outside) but could also be flat. Ferromagnetic parts may then have an internal groove partly surrounding these projections.
- Figure 1B and Figure 5 show a schematic representation of a respectively axial and radial section of a first MT synchronous machine according to a second example of a first embodiment, in which the claw stator inductor 1’ surrounds the ferromagnetic rotor 3 surrounding the stator armature 2’.
- the ferromagnetic rotor 3 may be identical to that of the first example.
- Figure 6 shows a schematic representation according to a three-dimensional view of an example of the claw stator inductor 1’ of the synchronous electric machine MT according to the second example of a first embodiment.
- each claw 11a, 11b comprises an air gap portion 113’ comprising an internal surface facing the ferromagnetic parts 30 of the rotor 3.
- the internal diameter of the claw stator inductor 1’ is measured between two internal surfaces of this air gap portion 113’.
- the stator ferromagnetic body 11 of the claw stator inductor 1’ comprises a yoke 11c and a first polar base comprising the first claws 11a of a first polarity, for example North, and a second polar base comprising the second claws 11b of an opposite polarity, in this example South.
- the first polar base is thus axially fitted against the other polar base, each having their base surrounded by the yoke 11c.
- Each first claw 1 1 a of the first polar base is located angularly between two second claws 1 1 b of the second polar base.
- stator ferromagnetic body 11 of the claw stator inductor 1’ may comprise packs of sheets as in the example of FIG. 4 except in that the air gap parts are towards the inside, that is to say comprises an internal surface facing the ferromagnetic parts 30 of the rotor 3.
- the claw stator inductor 1’ comprises eight poles, i.e. the number Pe of poles is equal to 8.
- the number Ns of ferromagnetic parts 30 is equal to 1 1 , visible in figure 5.
- the stator armature 2' comprises in this example a sheet metal pack 20 whose notches are open towards the outside.
- the winding 20 is thus wound in the external notches, and can comprise, as in the previous example, three coils.
- stator armature 2, 2' is a salient pole armature (formed by teeth between the notches each filled by one or more sections of the coil) but can also be claw-shaped.
- FIG. 7 schematically represents an axial section of a synchronous electric machine M1 ” according to a third example of the first embodiment in which the armature is a stator armature with 2u claws.
- the inductor of the synchronous electric machine M1 ” as well as its ferromagnetic rotor 3 according to this third example is identical to that of the first example.
- the claw stator armature 2u is similar to the claw inductor of the second example in that it comprises in this example a single coil 20u' (single phase) wound in an armature body 21u comprising a first pole base 21a and a second pole base 21b axially nested against each other such that each claw of the first pole base 21a is located angularly between two claws of the second pole base 21b.
- Each claw is shown either in dotted line or has a dotted portion to improve understanding.
- Each claw comprises an air gap portion 23 having an inner surface facing the air gap parts 30 of the rotor 3.
- the inner diameter of the claw stator armature 2” is measured between the inner surfaces of the air gap portions 2.
- the two pole bases 21 a, 21 b each comprise a base portion axially joined to each other forming an outer base 210.
- the first pole base 21 a and the second pole base 21 b may be identical and are simply axially nested against each other while being angularly offset by one claw.
- the coil 20u' is therefore located axially between the first and second pole bases 21 a, 21 b between the inner air gap portions 23 of each claw and the outer base 210 of each pole base surrounding the armature coil 20u'.
- the armature body 21 u can also be formed from a pack of sheets as in the example of the inductor in figure 4.
- the armature body can also be formed from a single block with the claws bent towards each other.
- the ferromagnetic body of the claw stator inductor 2u is identical to the claw stator inductor of the second example, that is to say comprises a yoke connecting the first polar base 21 a comprising the claws of a first polarity for example North to the second polar base 21 b comprising the claws of an opposite polarity, in this example South.
- the inductor is the 2” claw stator armature of the third example and the claw stator armature is the 1 claw stator inductor (i.e. a variant of the second and third examples combined).
- FIG. 8 schematic representation of a synchronous electric machine M1’” according to a fourth example of the first embodiment identical to the third example of this first embodiment except in that: the machine further comprises a second and third armature 2v, 2w identical to the first armature 2u, two other claw stator inductors 1v, 1w identical to the first claw stator inductor 1u of the third example, and in that the ferromagnetic rotor 3 comprises two other sets of ferromagnetic parts 30v, 30w identical to the first set of ferromagnetic parts 30u.
- the second and third armatures 2v, 2w respectively comprise a first and second armature body 21v, 21w identical to the first armature body 21u of the third example, and respectively a second and third other coil 20v’, 20w’ each mounted in the second and third second and third armature bodies 21v, 21w.
- the first and second armature bodies 21v, 21w comprise air gap portions facing the respectively second and third set of ferromagnetic parts 30v, 30w.
- This synchronous electric machine M1’ makes it possible to have three armature coils 20u’, 20v’, 20w’ each able to be supplied in motor mode or restored in alternator mode (AC generator) a three-phase voltage.
- the first, second and third sets of ferromagnetic parts 30u, 30v, 30w or the air gap parts of the first, second and third claw stator armature 2u, 2v, 2w are angularly offset from each other according to the number of ferromagnetic parts or respectively claws.
- these are the claws of the first, second, third claw stator inductors 1 u, 1 v, 1 w which are angularly offset from the air gap parts of the first, second third claw stator armature 2u, 2v, 2w relative to each other according to the number of ferromagnetic parts or claws respectively.
- the synchronous electric machine is different from the fourth example in that the claw stator inductor 1 comprises only the first ferromagnetic body 11 extending axially along the entire length of the rotor 3 with a single inductor coil 10.
- the synchronous electric machine is different from the fourth example in that the claw stator inductor 1 surrounds the rotor 3 surrounding the three claw armatures 2u, 2v, 2w, (having the same shape as the three armatures of the fourth embodiment).
- the air gaps are radial between the rotor and the armature on the one hand and the rotor and the inductor on the other hand.
- a synchronous electric machine will now be described according to a second embodiment identical to the first example except in that the air gaps between the rotor and the armature on the one hand and the rotor and the inductor on the other hand are axial.
- the various options and characteristics of the examples described above can be applied to the first example when this does not concern the geometric shape of the armature, the rotor and the inductor involving an axial air gap.
- FIG. 9 shows a schematic representation of a section of a synchronous electric machine M2 according to a first example of a second embodiment.
- the synchronous electric machine M2 comprises a first claw stator inductor 4 comprising a ferromagnetic claw body 41 comprising a number Pe of poles and an inductor coil 40 wound in the ferromagnetic claw body 41.
- claw stator inductors 4A, 4B, 4C, 4D will be described in FIGS. 10A to 10D which may be the first claw stator inductor 4.
- FIG.10A shows a schematic representation in a three-dimensional view of a first implementation of a 4A claw stator inductor. exploded view of the synchronous electric machine M2 according to a first example of a second embodiment.
- the inductor coil 40 is schematically represented by circles, suitable for being located in the ferromagnetic claw body 41.
- the ferromagnetic claw body 41 is represented transparently.
- the ferromagnetic claw body 41 comprises a crown-shaped base 415 (comprising a central orifice for supporting a rotor shaft using a bearing) but could be a (solid) disk.
- the ferromagnetic claw body 41 comprises external claws 41A extending from the external perimeter of the base 415 having a first polarity, for example South and internal claws 41B extending from the internal perimeter of the base 415 of the other polarity, in this example North (the polarity is according to the direction of the current flowing in the inductor coil 40).
- each external and internal claw 41 A, 41 B comprises an intermediate part 414a, 414b extending from the base 415, radially towards the rotor 6 and an air gap part 413a, 413b facing the first set of ferromagnetic parts 60 together forming an axial air gap.
- the air gap portion 413a of an external claw 41A extends from the intermediate portion 414a inward, in this case decreasing its width, while the air gap portion 413b of an internal claw 41B extends from the intermediate portion 114b outward, in this case increasing its width.
- FIG. 1 OB shows a schematic representation according to a three-dimensional view of a second implementation of a claw stator inductor 4B of the synchronous electric machine M2 according to the first example of the second embodiment.
- the claw stator inductor 4B according to this second implementation is identical to the first implementation except in that it comprises inter-claw magnets 43 located in each space formed between two contiguous claws 41 A, 41 B of different polarity.
- each inter-claw magnet 43 is located between an air gap portion 413a of an external claw 41 A, and an air gap portion 413b of an external claw 41 B.
- FIG.10C shows a schematic representation according to a three-dimensional view of a third implementation of a 4C claw stator inductor of the synchronous electric machine M2 according to the first example of the second embodiment of embodiment.
- the claw stator inductor 4C is identical to the first implementation except in that it comprises an inter-claw-base magnet 45 per claw.
- Each inter-claw-base magnet 45 is located between a free end of the air gap portion 413a, 413b of an external claw 41A or internal claw 41B, and the base 415.
- FIG.l OD shows a schematic representation according to a three-dimensional view of a fourth implementation of a 4D claw stator inductor of the synchronous electric machine M2 according to the first example of the second embodiment.
- the 4D claw stator inductor is identical to the first implementation, except in that it comprises an inter-claw-base magnet 45 per claw and an inter-claw magnet 43 between each claw.
- the ferromagnetic body with claws 11, 41 comprises a material formed from compressed powder.
- a powder with such magnets has the particularity of increasing the capacity of the ferromagnetic body before saturation.
- FIG.1 1 shows a schematic representation according to a three-dimensional view of an example of a stator armature 5 of the synchronous electric machine M2.
- the stator armature 5 comprises an armature body 51 with salient poles comprising a base 510 in the form of a crown and a plurality of teeth 51 1 forming notches between them (here numbering 12 teeth and notches).
- Each tooth 51 1 comprises a central wall 514 extending axially from the base 510 and an air gap wall 516 extending from the central wall 514 opposite the first set of ferromagnetic parts 60 together forming an axial air gap.
- the air gap wall 516 in this case extends circumferentially on either side of the central wall 514 partially closing the notches axially.
- the armature body 51 can be formed of several sheets wound concentrically inside each other or of a sheet wound like a spiral.
- the stator armature 5 comprises in this example a winding 50 in this case concentric comprising a plurality of coils 50u, 50v, 50w, in this case a three-phase winding comprising first coils 50u, second coils 50v, and third coils 50w, each coil being wound around a tooth 51 1 of the armature body 51.
- the stator armature 5 comprising a number Pa of poles different from the number Pe poles.
- the winding is therefore wound with a ratio of 0.5 notch per pole and per phase, i.e. a number Pa poles equal to 8.
- FIG. 12 shows a schematic representation of an example of the ferromagnetic rotor 6 of the synchronous electric machine M2 according to a three-dimensional view.
- the ferromagnetic rotor 6 is in this case internal and comprises a rotation shaft 61 along its axis of rotation X (not visible in FIG. 12, but visible in FIG. 9).
- the rotor 6 can, according to another example, be external.
- the ferromagnetic rotor 6 comprises the first set of ferromagnetic parts 60 regularly distributed around the axis of rotation X, each ferromagnetic part is mounted on a crown 62 secured to the rotation shaft 61 of the rotor 6.
- the number Ns of ferromagnetic parts 60 is equal to the sum of or the difference between Pa/2 and Pe/2, here 10 in number, i.e. Pa/2 + Pe/2, but could also be 2 in number (the difference).
- the set of ferromagnetic parts 60 being located axially between the first claw stator inductor 4 and the first stator armature 5.
- FIG. 13A shows a schematic representation of a synchronous electric machine M20 according to a second example of the second embodiment.
- the synchronous electric machine M20 is identical to that of the first example of this second embodiment except: in that it further comprises a second inductor 4' identical to the first inductor 4, in this case as one among the different examples shown in one of FIGS. 10A to 10D of the first example; in that the rotor 6' further comprises a second set of ferromagnetic parts 60' identical to the first set of ferromagnetic parts 60, forming an axial air gap with the second inductor 4' and in that it comprises a second stator armature 5' identical to the first stator armature 5, in this case as that shown in FIG. figure 1 1 of the first example, opposite the second set of ferromagnetic parts 60' forming an axial air gap between them.
- the second inductor 4’ has its base 415 in the form of a crown against the base 415 of the first inductor 4’ with the air gap parts 413a, 413b of each internal and external claw 41b, 41a facing the second set of ferromagnetic parts 60’ together forming an axial air gap.
- the salient pole armature body 51 of the two inductors 4, 4’ may be in one piece.
- the coils of the second stator armature 5’ can be coupled in parallel to the corresponding coils of the first stator armature 5.
- the rotation shaft 61 of the rotor 6’ passes through the second inductor 4’ and the first inductor 4.
- the second set of ferromagnetic parts 60’ can be decoupled from the first set of ferromagnetic parts 60 and thus form a second rotor.
- FIG. 13B shows a schematic representation of an electric machine M21 according to a third example of the second embodiment.
- the synchronous electric machine M21 is identical to that of the second example of this second embodiment except: the stator armature is a 5” stator armature with through flux, similar to the first stator armature 5 of the first example except in that it does not have a base and in that each tooth 511’ shown in a section in FIG. 13C, comprises a second air gap wall 516 facing the second set of ferromagnetic parts 60’ forming an axial air gap between them and in that the second claw inductor 4’ is axially opposite the first claw inductor 4.
- each tooth 511' comprises a second air gap wall 516' opposite the first air gap wall 516 by means of the central wall 514 of the through-flux stator armature 5”.
- the teeth 511' may be connected to each other, by a non-ferromagnetic part, for example by a resin.
- this 5” stator armature is devoid of a yoke.
- Each coil of each tooth 51 'of the 5” stator armature each produces a flux passing from the first to the second air gap wall 516. In other words, the flux passes from the first inductor 4 to the second inductor 4' via the ferromagnetic parts of the rotor and the armature 5'.
- stator armatures 5, 5’ have salient poles but can have claws as in the third example of the first embodiment (except in that the armature has an axial air gap.
- FIG. 14 shows a schematic representation of a synchronous electric machine section M2’ according to a fourth example of the embodiment identical to the first example of this second embodiment except that the stator armature 5u is claw-type.
- the stator armature 5u is similar to the claw-type stator inductor 4 except that it has a different number of claws.
- the synchronous electric machine M2’ is single-phase.
- the synchronous electric machine M2’ can be multi-phase, in which case it comprises several armatures and inductors as well as several sets of ferromagnetic parts.
- FIG. 15 shows a schematic representation of a synchronous electric machine section M20' according to a fifth example of the second embodiment similar to the synchronous electric machine M2' but multiphase in this case three-phase.
- the synchronous electric machine M20' is therefore identical to the fourth embodiment example except in that it comprises: a second and a third claw stator armature 5v, 5w identical to the first claw stator armature 5u of the fourth example of this embodiment, respectively comprising a second and third other coils 50v, 50w each mounted in the second and third armature body 51v, 51w, a second and third claw inductor 4v, 4w identical to the first claw stator inductor 4u of the fourth example of this embodiment, respectively comprising a second and third other inductor coils 40v, 40w each mounted in the second and third ferromagnetic body 41v, 41w, and in that the rotor 6" comprises a second and third set of ferromagnetic parts 60v, 60w identical to the
- the first and second claw inductors 4u, 4v are monobloc and the second and a third claw stator armature 5v, 5w are monobloc, that is to say that they can comprise a common base.
- the different inductors and the different armatures are stacked axially one after the other while keeping a rotor having two sets of ferromagnetic parts offset from each other axially.
- FIG. 16 shows a schematic representation of a synchronous electric machine section M2” according to a sixth example of the second embodiment identical to the synchronous electric machine M2' according to the first example except in that it further comprises a second claw stator inductor 4” comprising an external diameter smaller than the internal diameter of the first claw inductor 4 and in that the first claw inductor 4 surrounds the second claw stator inductor 4”.
- FIG. 17, shows an axial view of the first and second claw inductors 4, 4”.
- each internal claw 41 B of the first inductor 4 is radially contiguous with an external claw 41 A of the second inductor 4” and in that each external claw 41 A of the first inductor 4 is radially contiguous with an internal claw 41 B of the second inductor 4”.
- a Claw Inductor may exhibit magnetic flux leakage, particularly when the inner diameter is much smaller than the outer diameter.
- the axial air gap solution exhibits geometric asymmetries between the inner claws 41B and the outer claws 41A.
- the intermediate portions 414b are narrower (measured in the circumferential direction) on the inner claws 41B that are on the inner diameter side than the intermediate portions 414a of the outer claws 41A that are on the outer diameter side.
- the inner claws 41B will therefore tend to saturate much faster than the outer claws 41A, thereby introducing even harmonics into the Electromotive Force induced in the multi-phase or single-phase Stator (and therefore unwanted Torque Ripples).
- the two concentric inductors in this sixth example make it possible to deal with these leaks and the problem of asymmetry of the North and South poles, by supplying the two inductor coils 40u, 40u’ in the opposite direction.
- the machine comprises a second claw armature of identical shape to that of the fourth example surrounded by the first claw armature like the claw inductor of this sixth embodiment.
- the second claw stator armature then comprises an external diameter smaller than the internal diameter of the first claw stator armature.
- the synchronous machine can be three-phase comprising a third armature surrounded by the second armature.
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- Engineering & Computer Science (AREA)
- Power Engineering (AREA)
- Synchronous Machinery (AREA)
- Iron Core Of Rotating Electric Machines (AREA)
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| FR2303536A FR3147671B1 (fr) | 2023-04-07 | 2023-04-07 | Machine électrique synchrone à inducteur à griffes fixe |
| PCT/EP2024/059193 WO2024208971A1 (fr) | 2023-04-07 | 2024-04-04 | Machine électrique synchrone à inducteur à griffes fixe |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4690431A1 true EP4690431A1 (de) | 2026-02-11 |
Family
ID=87554929
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP24716790.1A Pending EP4690431A1 (de) | 2023-04-07 | 2024-04-04 | Elektrische synchronmaschine mit feststehendem induktor mit klauen |
Country Status (4)
| Country | Link |
|---|---|
| EP (1) | EP4690431A1 (de) |
| CN (1) | CN121153186A (de) |
| FR (1) | FR3147671B1 (de) |
| WO (1) | WO2024208971A1 (de) |
Family Cites Families (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2007151220A (ja) * | 2005-11-24 | 2007-06-14 | Central Japan Railway Co | 多磁極発生機構及びクローポール型発電動機 |
| EP3128658B1 (de) * | 2014-04-02 | 2019-02-27 | IHI Corporation | Geschalteter doppelstator-reluktanzdynamo |
| CN108809024B (zh) * | 2018-06-30 | 2020-05-26 | 淮阴工学院 | 一种轴向单自由度无轴承开关磁阻电机 |
| JP6671521B1 (ja) * | 2019-01-18 | 2020-03-25 | 三菱電機株式会社 | 車両用回転電機 |
| JP6927343B1 (ja) * | 2020-02-17 | 2021-08-25 | ダイキン工業株式会社 | 圧縮機 |
-
2023
- 2023-04-07 FR FR2303536A patent/FR3147671B1/fr active Active
-
2024
- 2024-04-04 EP EP24716790.1A patent/EP4690431A1/de active Pending
- 2024-04-04 WO PCT/EP2024/059193 patent/WO2024208971A1/fr not_active Ceased
- 2024-04-04 CN CN202480033420.1A patent/CN121153186A/zh active Pending
Also Published As
| Publication number | Publication date |
|---|---|
| FR3147671B1 (fr) | 2025-04-11 |
| WO2024208971A1 (fr) | 2024-10-10 |
| CN121153186A (zh) | 2025-12-16 |
| FR3147671A1 (fr) | 2024-10-11 |
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