RESONANT ROTATING TRANSFORMER
20210210270 ยท 2021-07-08
Inventors
- Kiryl Nikolaevich Chykeyuk (Minsk, BY)
- Dzmitry Leonidovich Malinouski (Minsk, BY)
- Dzmitry Valeryianovich Sukharebrau (Minsk, BY)
Cpc classification
International classification
Abstract
A resonant rotating transformer design increases efficiency while maintaining the small dimensions of devices in which the transformer is used. The inventive concept lacks a ferrite or other metal core and instead uses at least two secondary winding members positioned near a primary winding member on a non-magnetic base. The lack of a ferrite core increases the overall lifespan and efficiency of the resonant rotating transformer while permitting the resonant rotating transformer's small dimensions of substantially under 100 mm, as well as resistance to stress and vibrational loads. The resonant rotating transformer is optimized for holographic fan displays but is useful for other electronic devices. Variations of sequential and parallel alignment for elements of the at least two secondary winding members, as well as various winding arrangements, enable changes of properties of the resonant rotating transformer.
Claims
1. A resonant rotating transformer comprising: a non-magnetic base, a primary winding member being positioned on the non-magnetic base substantially between at least two secondary winding members being also positioned on the non-magnetic base, wherein the primary winding works as a stator, and wherein the resonant rotating transformer is coreless.
2. The resonant rotating transformer of claim 1, wherein the base is a flat base supporting the transformer.
3. The resonant rotating transformer of claim 1, wherein at least two secondary winding members are operably coupled sequentially.
4. The resonant rotating transformer of claim 1, wherein at least two of the secondary winding members are operably coupled in parallel.
5. The resonant rotating transformer of claim 1, having substantially one axis of symmetry.
6. The resonant rotating transformer of claim 1, wherein the primary winding member is wrapped on a part of the non-magnetic base.
7. The resonant rotating transformer of claim 1, wherein the at least one secondary winding member is wrapped on a part of the non-magnetic base.
8. The resonant rotating transformer of claim 7, wherein the part of the non-magnetic base is substantially cylindrical.
9. The resonant rotating transformer of claim 1, wherein at least one secondary winding consists of a first and a second portion of the secondary winding, wherein the first and the second portions alternate with each other in the winding.
10. The resonant rotating transformer of claim 1, wherein the windings are implemented in a form of a strip conductor of a width equal to a height of the transformer.
11. A resonant rotating transformer comprising: a non-magnetic base, a secondary winding member being positioned on the non-magnetic base substantially between at least two primary winding members being also positioned on the non-magnetic base, wherein the primary winding works as a stator, and wherein the resonant rotating transformer is coreless.
12. The resonant rotating transformer of claim 11, having substantially one axis of symmetry.
13. The resonant rotating transformer of claim 11, wherein at least one secondary winding consists of a first and a second portion of the secondary winding, wherein the first and the second portions alternate with each other in the winding.
14. The resonant rotating transformer of claim 11, wherein the base is a flat base supporting the transformer.
15. The resonant rotating transformer of claim 11, wherein at least two primary winding members are operably coupled sequentially.
16. The resonant rotating transformer of claim 11, wherein at least two of the primary winding members are operably coupled in parallel.
17. The resonant rotating transformer of claim 11, wherein the primary winding member is wrapped on a part of the non-magnetic base.
18. The resonant rotating transformer of claim 11, wherein the windings are implemented in a form of a strip conductor of a width equal to a height of the transformer.
19. The resonant rotating transformer of claim 11, wherein the at least one primary winding member is wrapped on a part of the non-magnetic base.
20. The resonant rotating transformer of claim 19, wherein the part of the non-magnetic base is substantially cylindrical.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION OF THE INVENTION
[0023] Following are more detailed descriptions of various related concepts related to, and embodiments of, methods and apparatus according to the present disclosure. It should be appreciated that various aspects of the subject matter introduced above and discussed in greater detail below may be implemented in any of numerous ways, as the subject matter is not limited to any particular manner of implementation. Examples of specific implementations and applications are provided primarily for illustrative purposes.
[0024] The inventive concept is a resonant rotating transformer optimized for holographic fan displays and is useful for other electronic devices and applications.
[0025] As illustrated
[0026] As illustrated in
[0027] The scheme with the location of the primary winding 101 between the at least two secondary windings 201, 301 allows the inventive concept to work without a ferrite core when transferring large capacities with usefully high efficiency recognized by one of ordinary skill in the art as needed to run a device such as a holographic fan display. Also, the increase in such efficiency is facilitated by the division of windings into several parts, which allows the inventive concept to employ thinner and longer windings, thereby increasing the operable area of the conductor, which is in maximum proximity to the source of radiation: the primary winding 101. The system with the proposed resonant rotating transformer 10 in one preferred embodiment is usually the following dimensions: substantially 50 mm in diameter and 20 mm in height; at the same time, the resonant rotating transformer 10 provides about 120 W power at the efficiency of the system (i.e. transformer as part of the display device) up to substantially 93%.
[0028] Both parts of the resonant rotating transformer 10 can be performed with the ability to rotate. This implementation example is, required when the stator part of the resonant rotating transformer 10 is installed on a rotation element, such as a platform.
[0029] The primary winding 101 and secondary windings 201, 301 can be wound on frames, which may be performed in the form of hollow cylinders of different diameters.
[0030]
[0031]
[0032] With an equal number of turns on the primary winding 101, and at least two secondary windings 201, 301 of the resonant rotating transformer 10, resonant rotating transformer 10 on
[0033] With an equal number of turns on the primary winding 101 and at least two secondary windings 201, 301 of the resonant rotating transformer 10, resonant rotating transformer 10 on
[0034] Resonant rotating transformers 10 on
[0035] Windings on the non-magnetic base 20 in such a scheme of implementation can be carried out in a variety of ways, for example, winding only the primary winding 101, or winding only one of the at least two secondary windings, i.e. secondary winding 201, secondary winding 202 or secondary winding 301, secondary winding 302.
[0036] Twists of windings secondary winding 201, secondary winding 202 and secondary winding 301, secondary winding 302 can be located in such a way that next to the revolution of one winding (e.g., 201) winds are other windings e.g., secondary winding 202, or secondary winding 302.
[0037] Such resonant rotating transformers 10 can be used where different types of devices rotate at different speeds, and these devices need to provide long-term power with large enough speeds. Also, the proposed resonant rotating transformer design 10 is applicable in devices where battery power is not applicable due to the short lifespan, and where the rotating contact device does not fit in its lifespan, rotation frequency, and environmental factors.
[0038]
[0039]
[0040]
[0041] In one embodiment of the resonant rotating transformer 10, the primary winding member 101 is wrapped on the non-magnetic base 20. In another embodiment of the resonant rotating transformer 10, the at least two secondary winding members 201, 301 are wrapped on the non-magnetic base 20. In these embodiments, the non-magnetic base 20 may be substantially cylindrical. In these embodiments, wherein the at least two secondary winding members 201, 301 are wound on substantially cylindrical portions of the non-magnetic base 25 the cylindrical portions 25 may be of different diameters.
[0042] In one embodiment of the resonant rotating transformer 10, at least two of the at least two secondary winding members 201, 301 are operably coupled sequentially. In another embodiment of the resonant rotating transformer 10, at least two of the at least two secondary winding members 201, 301 are operably coupled in parallel. In these embodiments, at least one of the at least two secondary winding members 201, 301 may be operably coupled to each other in parallel or sequentially.
[0043] In one embodiment of the resonant rotating transformer 10, the turns of two windings of at least one of the at least two secondary winding members 201, 301 are arranged as a revolution of a first winding reeled in the revolution of at least one second winding.
[0044] In one embodiment of the resonant rotating transformer 10, the substantially cylindrical portions of the non-magnetic base 20 are substantially hollow. Alternatively, just the substantially cylindrical portion of the non-magnetic base 20 for the primary winding is substantially hollow.
[0045] In one embodiment where the at least one of the at least two secondary winding members 201, 301 may be operably coupled in parallel or sequentially, the winding portions of at least one of the at least one secondary winding members are embedded in each other. In this embodiment, each winding portion of the primary winding member 101 and the at least two secondary winding members 201, 301 may be located on a separate non-magnetic base 20.
[0046] The inventive concept was conceived for holographic display fans but is not limited to holographic display fans. Another use case example of implementing the inventive concept suggests using the aforementioned transformer design in radars, video systems, and in other display devices.
[0047] While the inventive concept has been described above in terms of specific embodiments, it is to be understood that the inventive concept is not limited to these disclosed embodiments. Upon reading the teachings of this disclosure, many modifications and other embodiments of the inventive concept will come to mind of those skilled in the art to which this inventive concept pertains, and which are intended to be and are covered by both this disclosure and the appended claims. It is indeed intended that the scope of the inventive concept should be determined by proper interpretation and construction of the appended claims and their legal equivalents, as understood by those of skill in the art relying upon the disclosure in this specification and the attached drawings.