SHAPED STATOR WINDINGS FOR A SWITCHED RELUCTANCE MACHINE AND METHOD OF MAKING THE SAME
20200177042 ยท 2020-06-04
Inventors
Cpc classification
H02K15/065
ELECTRICITY
International classification
Abstract
The present invention is a method for producing a plurality of curved stator windings by shaping a plurality of stator coils for a switched reluctance machine (SRM). The present invention proposes apparatus and methods for utilizing a plurality of curved stator windings with two main embodiments: a symmetrical winding and an asymmetrical winding, whereby the plurality of curved stator windings are highly conforming to a curved stator shape. The plurality of curved stator windings provides higher efficiency and lower noise to the SRM. The plurality of curved stator windings conforms to the stator curved shape, maximizing the copper fill factor, thereby permitting maximum copper utilization in the machine.
Claims
1. A stator of a switched reluctance machine, comprising: a. a plurality of stator poles, each of the plurality of stator poles being associated with at least one of a plurality of curved stator windings, the plurality of curved stator windings exhibiting a symmetrical shaping wherein a plurality of loops comprising electrically conductive material and making up each curved stator winding follows a shaped pattern, such that the curved stator windings are substantially identical with one another; and b. whereby the plurality of curved stator windings increases copper fill factor, which in turn is utilized for performance enhancements as compared to conventional switched reluctance machines and conventional windings.
2. The stator of the switched reluctance machine of claim 1 wherein for each of the windings, as viewed from a cross-section of the switched reluctance machine showing the curved stator windings and stator poles, the windings having a substantially smooth exterior geometric arc and a substantially smooth interior geometric arc of a smaller radius than said exterior geometric arc.
3. The stator of the switched reluctance machine of claim 2 wherein the switched reluctance machine when viewed from a cross-section comprises at least one substantially triangular gap disposed between curved stator windings.
4. The stator of the switched reluctance machine of claim 2, wherein the distance between every winding and the winding adjacent to it is between 1-2 mm at its closest point.
5. The stator of the switched reluctance machine of claim 1, wherein the plurality of curved stator windings are insulated.
6. A stator of a switched reluctance machine, comprising: a. a plurality of stator poles, each of the plurality of stator poles being associated with at least one of a plurality of curved stator windings, the plurality of curved stator windings exhibiting an asymmetrical shaping wherein a plurality of loops comprising electrically conductive material and making up each curved stator winding follows a shaped pattern, such that a plurality of odd shaped curved stator windings are identical to each other and a plurality of even shaped curved stator windings are identical to each other; and b. whereby the plurality of curved windings increases copper fill factor, which in turn is utilized for performance enhancements as compared to conventional switched reluctance machines and conventional windings.
7. The stator of the switched reluctance machine of claim 6, wherein: a. for each of the windings, as viewed from a cross-section of the switched reluctance machine showing the curved stator windings and stator poles, the windings having a substantially smooth exterior geometric arc and a substantially smooth interior geometric arc of a smaller radius than said exterior geometric arc; b. wherein the switched reluctance machine comprises at least one even shaped curved stator winding with a substantially consistent gap from at least one odd shaped curved stator winding; and c. wherein said at least on even shaped curved stator winding is complementary in shape to said at least one odd shaped curved stator winding.
8. The stator of the switched reluctance machine of claim 7, wherein a surface area and volume of each winding is substantially identical to one another.
9. The stator of the switched reluctance machine of claim 7, wherein each winding has a side adjacent another winding, and a space between said sides is never greater than 4 mm in distance.
10. The stator of the switched reluctance machine of claim 7, wherein each winding has a side adjacent another winding, and a space between said sides is never greater than 2 mm in distance.
11. The stator of the switched reluctance machine of claim 7, wherein each winding has a side adjacent another winding, and a space between said sides is approximately 4 mm in distance.
12. The stator of the switched reluctance machine of claim 7, wherein each winding has a side adjacent another winding, and a space between said sides is approximately 2 mm in distance.
13. The stator of the switched reluctance machine of claim 7, wherein the plurality of curved stator windings are insulated.
14. A method for producing a plurality of curved stator windings for a switched reluctance machine, the method comprising the steps of: a. winding a first stator coil with a conductive material on a tooling implement to form a plurality of loops; b. removing the first stator coil from the tooling implement; c. obtaining a simple winding; d. placing the simple winding into a cylindrical form tooling; and e. pressing the simple winding into the curved winding shape to create a curved stator winding; f. repeating steps a-e a plurality of times to create a plurality of curved stator windings; g. assembling the curved windings onto a switched reluctance machine stator such that a surface area and volume of each winding is substantially identical to one another.
15. The method for producing the plurality of curved stator windings according to claim 14 further comprising a step of taping.
16. The method for producing the plurality of curved stator windings according to claim 14 further comprising a step of varnishing.
17. The method for producing the plurality of curved stator windings according to claim 14, wherein the conductive material is a bondable magnetic wire.
18. The method for producing the plurality of stator windings according to claim 17 wherein the bondable magnetic wire is activated by at least one of heat, voltage, current, and/or chemical activation.
19. The method for producing the plurality of stator windings according to claim 17 wherein the bondable magnetic wire is activated chemically by alcohol.
20. The method for producing the plurality of stator windings according to claim 17 wherein the bondable magnetic wire is activated by resistive heating.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Elements in the figures have not necessarily been drawn to scale in order to enhance their clarity and improve understanding of the various elements and embodiments of the invention. Furthermore, elements that are known to be common and well understood to those in the industry are not depicted in order to provide a clear view of the various embodiments of the invention, thus the drawings are generalized in form in the interest of clarity and conciseness.
[0017] The foregoing aspects and many of the attendant advantages of the invention will become more readily appreciated as the same becomes better understood by reference to the following detailed description, when taken in conjunction with the attached figures.
[0018]
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[0026]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0027] In the following discussion that addresses a number of embodiments and applications of the present invention, reference is made to the accompanying drawings that form a part hereof, and in which is shown by way of illustrating specific embodiments in which the invention may be practiced. It is to be understood that other embodiments may be utilized, and changes may be made without departing from the scope of the present invention.
[0028] Various inventive features are described below that can each be used independently of one another or in combination with other features. However, any single inventive feature may not address any of the problems discussed above or only address one of the problems discussed above. Further, one or more of the problems discussed above may not be fully addressed by any of the features described below. In the following discussion that addresses a number of embodiments and applications of the present invention, reference is made to the accompanying drawings that form a part hereof, and in which is shown by way of illustrating specific embodiments in which the invention may be practiced. It is to be understood that other embodiments may be utilized, and changes may be made without departing from the scope of the present invention.
[0029] The shaping process contemplated by the present invention produces curved stator windings 104, the curved stator windings 104 being highly conformed to the stator shape in all embodiments. This method of shaping comprises two main embodiments including symmetrical shaping and asymmetrical shaping. The primary difference between these two embodiments is the shape of the final product.
[0030]
[0031] Further to the above, as shown in
[0032]
[0033] As shown in
[0034]
[0035] Further to the above, as shown in
[0036] As described above, in the preferred embodiment every symmetrical winding may be substantially identical in shape. In another embodiment, symmetrical windings are substantially identical in volume and surface area as well. As a result, every stator winding in a symmetrical system may be interchangeable with any of the other windings in that SRM. In the preferred embodiment of the asymmetric model on the other hand, the windings are non-identical in shape, although they may continue to maintain substantially the same surface area and volume as the other asymmetric windings in a given SRM. Notably, in the preferred embodiment of the asymmetric model, no winding is greater than 1 mm in distance from an adjacent winding. In a less preferred embodiment, no winding is greater than 2 mm in distance from an adjacent winding.
[0037]
[0038] As described above, the present invention is a process for shaping a plurality of stator coils for an SRM. Notably, the present invention also proposes an apparatus, utilizing a plurality of curved stator windings 104 and has two main embodiments: a symmetrical winding and an asymmetrical winding. The plurality of curved stator windings 104 are highly conformed to a stator shape. The plurality of curved stator windings 104 provide serval performance enhancements including higher efficiencies and lower noise output to the SRM. The plurality of curved stator windings 104 also provide one more degree of freedom, such that a motor using this method allows more torque, more speed, higher power density, lower noise, and/or many others beneficial tradeoffs resulting in an overall enhanced performance. Such enhanced performance further comprises a greater output efficiency, increased torque and lower temperature rise to the machine. As described above, the plurality of curved windings 104 also closely conform to the stator curved shape, increases the copper fill factor, which in turn allows maximum copper utilization in the machine. Maximum copper utilization translates to reduced noise, a greater number of winding turns, and/or an electrically conductive material with a thickness greater than the industry standard along the length of the electrically conductive material. The plurality of curved stator windings 104 may also be insulated to a higher degree relative to the industry standard in some embodiments.
[0039] As described herein, the method permits use of an electrically conductive material such as a magnetic wire, or any highly conductive metal, with a thickness greater than the industry standard along the length of the electrically conductive material. The magnet wire may be simple or a bondable magnetic wire. Further, the magnetic wire may be made of aluminum or any comparable metallic wire. In the case of bondable magnetic wire, the bondable magnetic wire may be activated by any means, such as alcohol, suitable chemicals, heat, or resistive heating by applying the voltage/current to the magnet wire. The wire may be at room temperature or heated during any step of the process. Furthermore, the molds used for winding or shaping may be at room temperature or heated and this could be done at any step in the process.
[0040] The claimed subject matter has been provided here with reference to one or more features or embodiments. Those skilled in the art will recognize and appreciate that, despite the detailed nature of the exemplary embodiments provided here; changes and modifications may be applied to said embodiments without limiting or departing from the generally intended scope. These and various other adaptations and combinations of the embodiments provided here are within the scope of the disclosed subject matter as defined by the claims and their full set of equivalents.
[0041] The foregoing description of the preferred embodiment of the present invention has been presented for the purpose of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in the shaping of the stator coils of the SRM of the above teachings. It is intended that the scope of the present invention not be limited by this detailed description, but by the claims and the equivalents to the claims appended hereto.