The following relates to an electrical machine having a stator or a rotor with a segmented geometry, i.e., a stator or a rotor including a plurality of stator segments having respective coil windings and being circumferentially joined.
In large electrical machines, segmentation of the stator and/or the rotor structure is required to ease manufacturing and transportation. This is particularly required for stators or rotors where a coil winding is provided. Due to manufacturing tolerances and limitations, tolerance circumferential gaps are typically designed between segments.
For electrical machines with half teeth at the circumferential ends of the segments (typically integral slot electrical machines with distributed windings), it is ensured that the conductors and insulation system of the coil winding are protected both during transportation as well as during operation. This is particularly pertinent when the full generator undergoes thermal cycles which may then cause adjacent circumferential segments to come into contact and would otherwise cause damage to the coil winding.
For electrical machines where a half slot is present at each circumferential end of a segment (typically fractional slot machines with concentrated windings), the side coils are exposed at the end of each segment and therefore they could be damaged, in particular during operation where thermal expansion of segments induces rubbing between adjacent coils. Additionally, the current and flux passing through the end coils could lead to a force pulling away from the tooth, therefore increasing the chance that two end coils from two circumferentially adjacent segments coming into contact.
An aspect relates to controlling the shape and dimensions of the circumferential gaps in segmented stators or rotors having half slots at the circumferential ends of the segments, in order to minimize the detrimental effects above described.
According to embodiments of the invention, provided is a stator or rotor for an electrical machine including a plurality of segments. Each segment includes:
The above-described segment may be advantageously integrated in a segmented stator or rotor of an electrical machine, either generator or motor. For example, the above-described segment may be advantageously integrated in the stator or rotor of an electrical generator for a wind turbine.
According to embodiments of the present invention, the side coils are protected from damage, which may occur particularly during operation, by preventing them from contacting each other at the circumferential gap.
According to embodiments of the invention, the segment circumferential gap includes a first portion interposed between two circumferentially adjacent side coils and a second portion interposed between two circumferentially adjacent yokes, the first portion having a larger circumferential extension than the second portion. In these embodiments a variable segment circumferential gap design is provided, where the circumferential gap between the yokes is smaller than the gap between the end coils. The first portion of the circumferential gap is to be decided based on the thermal deformation coefficient of the side coils, i.e., the minimum value of such first portion should be larger than the sum of maximum thermal deformation of the neighboring end coils. This implies that any contact between coils is avoided during any operation condition including the extremes.
According to embodiments of the invention, a variable circumferential gap is achieved by providing the yoke, at least at one respective circumferential end, with a protrusion circumferentially protruding with respect to the side coil portion housed in the end slot at the respective circumferential end. The yoke protrusion provides the spacing element between two circumferentially adjacent segments for preventing the coil windings of two circumferentially adjacent segments from contacting each other.
According to embodiments of the invention, the contact between the side coils is avoided by providing an end wedge for radially closing two adjacent end slots of two circumferentially adjacent segments, the end wedge being circumferentially dimensioned for preventing the coil windings of two circumferentially adjacent segments from contacting each other. The end wedge provides the spacing element between two circumferentially adjacent segments.
In particular, the stator or rotor may comprise a plurality of wedges, each wedge being attached at two tooth radial ends of two circumferentially adjacent teeth for radially closing a respective slot, the plurality of wedges comprising at least one intermediate wedge for radially closing a respective intermediate slot and at least one end wedge for radially closing two adjacent end slots, the circumferential extension of the intermediate wedge being smaller than the circumferential extension of the end wedge.
According to embodiments of the invention, a separator may be provided at the segment circumferential gap, the separator being interposed between two respective side coil portions. The separator may be made of paper or of a flexible material, such as rubber or silicon. The flexible material provides a spring effect.
Further improvement is possible by adding more support to the coils by filling the coil gaps by flexible insulation material, i.e., for example silicon.
According to embodiments of the invention, the circumferential gap may be variable along the axial direction.
A stator or rotor for an electrical machine including a plurality of N segments includes a plurality of N circumferential gaps, each circumferential gap being provided between two respective adjacent segments. According to the different embodiments of the present invention each circumferential gap may have the same shape and dimensions, both in the radial and in the axial directions, of any other circumferential gap or may be different, both in the radial or in the axial directions, from any other circumferential gap.
The aspects defined above and further aspects of embodiments of the present invention are apparent from the examples of embodiments to be described hereinafter and are explained with reference to the examples of embodiments. Embodiments of the invention will be described in more detail hereinafter with reference to examples but to which the invention is not limited.
Some of the embodiments will be described in detail, with reference to the following figures, wherein like designations denote like members, wherein:
The wind rotor 5 is rotationally coupled with the electrical generator 10 by a rotatable main shaft 9.
According to other possible embodiments of the present invention (not represented in the attached figures), the wind rotor 5 is rotationally coupled directly with the electrical generator 10 (direct-drive generator configuration). The permanent magnet electrical generator 10 includes a stator 11 and a rotor 12. The rotor 12 is radially external to the stator 11 and is rotatable with respect to the stator 11 about the rotational axis Y. According to other embodiments of the present invention (not shown) the rotor 12 is radially internal to the stator 11.
According to other possible embodiments of the present invention (not represented in the attached figures), the present invention can be applied to any electrical generator or motor which has concentrated winding topology, for example geared drive-trains or electrical machine of the synchronous or asynchronous types.
According to other possible embodiments of the present invention (not represented in the attached figures), the present invention and the description which follows may be applied to a rotor of an electrical machine.
The stator 11 includes a plurality of circumferential segments 100 (two segment 100 are shown in
Each tooth 15 protrudes from the yoke 13 according to a radial direction orthogonal to the longitudinal axis Y up to respective tooth radial ends 35. The plurality of slots 17, 18 are circumferentially interposed between the teeth 15 and circumferentially distributed between two end slots 17. Each end slot 17 is circumferentially comprised between a respective tooth 15 and a respective circumferential end 23 of the segment body 22. The plurality of slots 17, 18 comprise a plurality of intermediate slots 18 (one complete intermediate slot 18 for each segment 100 are shown in
According to possible embodiments of the present invention, the coil winding 30 may by a coil concentrated double-layer or single-layer winding or a double-layer or single-layer coil distributed winding.
The stator 11 includes at least one spacing element provided between two circumferentially adjacent segments 100 for preventing the coil windings 30 of two circumferentially adjacent segments 100 from contacting each other.
In the first embodiment of
According to other embodiments of the invention (not shown) other types of spacing element may be provided between the yokes 13 of two circumferentially adjacent segments 100 for preventing the coil windings 30 from contacting each other. For example, a spacing element may be provided, which is not integral with the yoke 13.
The stator 11 of the embodiment in
The end wedge 141 radially closes two adjacent end slots 17, the circumferential extension of the intermediate slots 18. In embodiments (
As shown in the embodiment of
The above-described embodiments refer to segment circumferential gap 110 in a plane transversal to the longitudinal axis Y. The shape of the circumferential gap 110 along the circumferential gap 110 may be constant or variable.
Although the present invention has been disclosed in the form of embodiments and variations thereon, it will be understood that numerous additional modifications and variations could be made thereto without departing from the scope of the invention.
For the sake of clarity, it is to be understood that the use of “a” or “an” throughout this application does not exclude a plurality, and “comprising” does not exclude other steps or elements.
Number | Date | Country | Kind |
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20183109.6 | Jun 2020 | EP | regional |
This application claims priority to PCT Application No. PCT/EP2021/063654, having a filing date of May 21, 2021, which claims priority to EP Application No. 20183109.6, having a filing date of Jun. 30, 2020, the entire contents both of which are hereby incorporated by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2021/063654 | 5/21/2021 | WO |