Dynamo-electrical machine with segmented stator structure and/or rotor structure
10454324 · 2019-10-22
Assignee
Inventors
- Ulrich Hartmann (Berlin, DE)
- Martin Junge (Grafenau, DE)
- Daniel Kermas (Berlin, DE)
- Friederike Richter (Berlin, DE)
- Klaus Schifferer (Neuburg am Inn, DE)
- Gordon Trogisch (Strausberg, DE)
Cpc classification
H02K2213/12
ELECTRICITY
F16B43/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K1/18
ELECTRICITY
F03D15/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B19/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B5/0233
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/1838
ELECTRICITY
H02K1/28
ELECTRICITY
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
H02K1/18
ELECTRICITY
F03D80/70
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03D15/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B43/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K1/28
ELECTRICITY
F03D9/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A dynamo-electrical machine includes a stator and a rotor rotatable relative to the stator about an axis of rotation, the stator and/or the rotor having a plurality of segments arranged one after another in a rotational direction of the rotor, the segments each having opposing ends facing in opposite rotational directions, and being provided with flanges on the opposing ends, with respective flanges of neighboring ones of the segments in confronting relationship, each of the flanges having at least one hole oriented in the rotational direction, the at least one hole of at least one of the respective confronting flanges having an internal thread and threadably receiving a sleeve having an external thread, the respective confronting flanges being spaced apart by the sleeve, wherein a screw is received through the at least one hole of the one of the respective confronting flanges and through the sleeve and engages in the at least one hole of the other one of the respective confronting flanges, thereby exerting a force on the one of the respective confronting flanges, and connects the respective confronting flanges to each other via the sleeve.
Claims
1. A dynamo-electrical machine, comprising: a stator and a rotor rotatable relative to the stator about an axis of rotation, said stator and/or said rotor having a plurality of segments arranged one after another in a rotational direction of the rotor, said segments each having opposing ends facing in opposite rotational directions, and being provided with flanges on the opposing ends, with respective flanges of neighboring ones of the segments in confronting relationship, each of said flanges having at least one hole oriented in the rotational direction, said at least one hole of at least one of the respective confronting flanges having an internal thread and threadabiy receiving a sleeve having an external thread, said respective confronting flanges being spaced apart by the sleeve, wherein a screw having a shaft and a head is received through the at least one hole of the one of the respective confronting flanges and through the sleeve and engages in the at least one hole of the other one of the respective confronting flanges, thereby exerting a force on the one of the respective confronting flanges and connects the respective confronting flanges to each other via the sleeve, wherein the at least one hole of the other one of the respective confronting flanges has no internal thread and the screw engages in the at least one hole of the other one of the respective confronting flanges hole, wherein the force of the screw exerted on the one of the respective confronting flanges is implemented via a universal ball joint which consists of a spherical cup and a spherical disk, said universal ball joint arranged on the one of the respective confronting flanges, and a resilient sleeve surrounding only the shaft of the screw between a head of the screw and the one of the respective confronting flanges to achieve a clamping length of the screw and compensate for deviations in parallelism of bearing surfaces, said resilient sleeve having a first external diameter and a second larger external diameter.
2. The dynamo-electrical machine of claim 1, wherein a head of the screw exerts the force on the one of the respective confronting flanges.
3. The dynamo-electrical machine of claim 1, further comprising a further universal ball joint arranged in a gap between the respective confronting flanges.
4. The dynamo-electrical machine of claim 1, wherein the sleeve is pretensioned by a threaded bushing.
5. The dynamo-electrical machine of claim 1, wherein the machine is constructed as an electric motor or generator.
6. The dynamo-electrical machine of claim 1, wherein the dynamo-electrical machine constructed for use as a wind energy generator or as a drive for a tube mill.
7. The dynamo-electrical machine as claimed in claim 5, wherein the generator is configured as a directly driven wind energy generator.
8. A wind energy installation comprising a generator of claim 1, wherein the generator and/or the rotor is fastened via at least one bearing unit to a nacelle of the wind energy installation.
9. The wind energy installation of claim 8, wherein the generator is constructed as a directly driven generator.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The invention and further advantageous embodiments of the invention are described in more detail with reference to schematically shown exemplary embodiments, in which:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(6)
(7) Alternatively, the dynamo-electrical machine according to the invention may also be produced as an internal rotor, in which the stator 4 is also arranged in a stationary manner but encompasses the rotor 5 in the peripheral direction.
(8)
(9) Naturally, the segments may also have different pitch angles , but ultimately the transportation and the handling at the installation determine the size of the pitch angle.
(10) In contrast to the prior art, in the present invention the gap 7 between the segments is not lined with material and thus the gap 7 is not filled in, but the gap 7 is maintained as an air gap and the flanges 9a, 9b are connected together by a screw connection according to the invention. The flanges 9a and 9b which face one another at the side ends 13a and 13b in the rotational direction of the segments 4a and 4b arranged adjacent to one another are connected together by a screw connection according to the invention which passes through the hole 10a and 10b thereof.
(11)
(12) Permanent magnets are arranged on the rotor 5 opposite the stator 4. The stator 4 is fastened to the nacelle of the wind energy installation via a torque support, not shown in more detail.
(13) In this case, the flange 9a has a plurality of holes arranged in the direction of the rotational axis R along the flange, wherein in
(14) However, it should be noted here that in an extreme case, the flanges may also have just one respective hole which serves to connect segments arranged adjacent to one another in the rotational direction S.
(15) In principle, permanent magnets are arranged on the periphery of the rotor 5 for producing a magnetic field, said permanent magnets being aligned in the direction of the stator 4. For reasons of clarity, however, said permanent magnets are not shown in the figures. Similarly, the winding system present in the stator 4 is not shown, said winding system being required to interact electromagnetically with the permanent magnets of the rotor 5 and thus to function as a drive or generator. The winding system of the stator 4 and/or of the segment may in this case be a single-layer winding or double-layer winding made of form-wound coils which advantageously have the same winding pitch and on the front faces of the stator 4 represent a two-stage or three-stage winding.
(16) Advantageously, each segment has a complete winding system, i.e. after mounting, no coils have to be inserted into the grooves of the stator 4 which extend beyond the limits of the segments. The segment together with its winding system may therefore be electrically tested, cast, etc. in the factory. The segments may be connected together at the installation in the manner according to the invention. Moreover, the electrical connections have to be produced of the coil starts and coil ends of the respective phases.
(17) According to
(18) A screw 12 passes through the holes of the flanges 9a and 9b facing one another at the side ends 13a, 13b in the rotational direction, and through the sleeve 8, the thread 12a of said screw being screwed into the internal thread 11a of the hole 10a of the flange 9a. The screw 12 exerts a force on the flange 9b and connects the flanges 9a and 9b facing one another via this introduction of force. By this arrangement, a gap 7 which is present due to manufacturing tolerances etc. may be bridged by a non-positive connection and thus blocked and/or fixed.
(19) The action of force is supported on the surrounding flange 9b. By the pretensioning applied onto the sleeve 8, which is also denoted as a threaded bushing, said sleeve is prevented from independently twisting and a connection of the respective segments 4a, 4b is formed without clearance. Advantageously, for rotating the sleeve 8 said sleeve may be provided with one or more slots on the front face or with an internal polygon, for example a hexagon or octagon.
(20)
(21) This reduction in the additional bending moment is implemented by a reduced bearing radius of the head of the screw 12 on a clamping plate 14. Amongst other things, the clamping plate 14 is also used to compensate for setting losses of the screw connection 6.
(22)
(23)
(24)
(25)
(26) The embodiment according to the invention of the connection of segments of stators 4 and/or rotors 5 is suitable, in particular, for wind energy installations or tube mills. With large diameters of the stator 4 and/or the rotor 5, therefore, the segments thereof may be transported individually to the installation and by the connection of these segments according to the invention it is possible to compensate for tolerances in a simple manner during mounting. As a result, a uniform air gap 19 of the dynamo-electrical machine is provided, so that distortions of the sine-wave form of the current produced by generator are avoided. Moreover, uneven magnetic tractive forces are avoided and this, amongst other things, extends the service life of the bearings.