RADIO FREQUENCY TRANSFORMER WINDING COIL STRUCTURE
20200411224 ยท 2020-12-31
Inventors
Cpc classification
H01F2003/106
ELECTRICITY
H01F27/006
ELECTRICITY
H01F41/08
ELECTRICITY
International classification
Abstract
A radio-frequency (RF) transformer includes a ferrite core defining a bore therethrough. The RF transformer also includes a first wire and a second wire. The first and second wires are twisted and form a first exterior half loop at least partially around an exterior of the ferrite core. The first wire, but not the second wire, forms a second exterior half loop at least partially around the exterior of the ferrite core. The ferrite core is configured to provide a primarily magnetic coupling for signals having a frequency that is less than a predetermined threshold. The first and second wires are configured to provide a primarily capacitive coupling for signals having the frequency that is greater than the predetermined threshold.
Claims
1. A radio-frequency (RF) transformer, comprising: a ferrite core defining a bore therethrough; a first wire comprising a first end portion, a middle portion, and a second end portion, the middle portion of the first wire being between the first and second end portions of the first wire; a second wire comprising a first end portion, a middle portion, and a second end portion, the middle portion of the second wire being between the first and second end portions of the second wire; wherein the middle portions of the first and second wires are twisted and form a first half loop around an exterior of the ferrite core that is configured to increase a high frequency coupling that varies a loss characteristic and matching for a frequency range from about 5 MHz to about 1700 MHz; wherein the first end portions of the first and second wires form a second half loop through the bore in a first direction; wherein the second end portions of the first and second wires form a third half loop through the bore in a second direction that is opposite to the first direction; wherein the first end portion of the first wire, but not the first end portion of the second wire, forms a fourth half loop around the exterior of the ferrite core; wherein the first end portion of the first wire, but not the first end portion of the second wire, forms a fifth half loop through the bore; wherein the first end portion of the first wire, but not the first end portion of the second wire, forms a sixth half loop around the exterior of the ferrite core; wherein the first end portion of the first wire, but not the first end portion of the second wire, forms a seventh half loop through the bore; wherein the first end portion of the first wire, but not the first end portion of the second wire, forms an eighth half loop around the exterior of the ferrite core; wherein the first end portion of the first wire, but not the first end portion of the second wire, forms a ninth half loop through the bore; wherein the first end portion of the second wire and the second end portion of the first wire are twisted to form a tap; wherein the ferrite core is configured to provide a primarily magnetic coupling for signals having a frequency of less than about 300 MHz; and wherein the first and second wires are configured to cause the primarily magnetic coupling to transition to a primarily capacitive coupling for signals having the frequency greater than about 300 MHz.
2. The RF transformer of claim 1, wherein the first end portions of the first and second wires that form the second half loop are not twisted.
3. The RF transformer of claim 2, wherein the second end portions of the first and second wires that form the third half loop are not twisted.
4. The RF transformer of claim 1, wherein the first half loop is positioned between the fourth half loop and the sixth half loop.
5. The RF transformer of claim 1, wherein the eighth half loop crosses over the first half loop.
6. A radio-frequency (RF) transformer, comprising: a ferrite core defining a bore therethrough; a first wire; a second wire; wherein the first and second wires are twisted and form a first exterior half loop at least partially around an exterior of the ferrite core; wherein the first wire, but not the second wire, forms a second exterior half loop at least partially around the exterior of the ferrite core; wherein the ferrite core is configured to provide a primarily magnetic coupling for signals having a frequency that is less than a predetermined threshold; and wherein the first and second wires are configured to provide a primarily capacitive coupling for signals having the frequency that is greater than the predetermined threshold.
7. The RF transformer of claim 6, wherein the first exterior half loop is configured to increase a high frequency coupling that varies a loss characteristic and matching for a frequency range from about 5 MHz to about 1700 MHz.
8. The RF transformer of claim 6, wherein the first and second wires form a first interior half loop through the bore in a first direction, wherein the first and second wires form a second interior half loop through the bore in a second direction that is opposite to the first direction, and wherein the first wire, but not the second wire, forms a third interior half loop through the bore.
9. The RF transformer of claim 8, wherein the first wire, but not the second wire, forms a third exterior half loop around the exterior of the ferrite core, and wherein the first exterior half loop is positioned between the second exterior half loop and the third exterior half loop.
10. The RF transformer of claim 9, wherein the first wire, but not the second wire, forms a fourth interior half loop through the bore, wherein the first wire, but not the second wire, forms a fourth exterior half loop around the exterior of the ferrite core, and wherein the fourth exterior half loop crosses over the first exterior half loop.
11. A radio-frequency (RF) transformer, comprising: a first turn portion of first and second wires extending at least partially around an exterior of a ferrite core, wherein the first and second wires are twisted in the first turn portion; a second turn portion of the first and second wires extending through the bore; a third turn portion of the first and second wires extending through the bore; a fourth turn portion of the first wire, but not the second wire, at least partially around the exterior of the ferrite core; wherein the RF transformer is configured to provide primarily a first type of coupling for signals having a frequency that is less than a predetermined threshold; and wherein the RF transformer is configured to provide primarily a second type of coupling for signals having the frequency that is greater than the predetermined threshold.
12. The RF transformer of claim 11, further comprising a fifth turn portion of the first wire, but not the second wire, through the bore.
13. The RF transformer of claim 12, further comprising a sixth turn portion of the first wire, but not the second wire, around the exterior of the ferrite core.
14. The RF transformer of claim 13, wherein the first turn portion is positioned at least partially between the fourth turn portion and the sixth turn portion.
15. The RF transformer of claim 14, further comprising: a seventh turn portion of the first wire, but not the second wire, through the bore, and an eighth turn portion of the first wire, but not the second wire, around the exterior of the ferrite core.
16. The RF transformer of claim 15, wherein the eighth turn portion crosses over the first turn portion.
17. The RF transformer of claim 11, wherein the first wire crosses over the first turn portion.
18. The RF transformer of claim 17, wherein the second wire does not cross over the first turn portion.
19. The RF transformer of claim 11, wherein the first type of coupling comprises magnetic coupling, and wherein the second type of coupling comprises capacitive coupling.
20. The RF transformer of claim 19, wherein the predetermined threshold is about 300 MHz.
21. A radio-frequency (RF) transformer having a ferrite core and a plurality of wires for magnetically or capacitively coupling signals based on whether a frequency of the signals is less than or greater than a predetermined frequency threshold, the RF transformer comprising: a ferrite core wiring structure having a first half loop wire portion that is configured to increase a high frequency coupling that varies a loss characteristic for a frequency range from about 5 MHz to about 1700 MHz; and wherein the ferrite core wiring structure is configured to provide either a primarily capacitive coupling for signals having a first frequency that is greater than a predetermined threshold, or a primarily magnetic coupling for signals having a second frequency that is less than the predetermined threshold.
22. The RF transformer of claim 21, wherein the ferrite core defines a bore.
23. The RF transformer of claim 21, wherein the ferrite core winding structure comprises a first wire and a second wire, and wherein the first half loop wire portion comprises a twisted portion of the first wire and the second wire.
24. The RF transformer of claim 23, wherein the first half loop wire portion is configured to extend at least partially around an exterior of the ferrite core so as to increase the high frequency coupling that varies the loss characteristic for the frequency range from about 5 MHz to about 1700 MHz.
25. The RF transformer of claim 21, wherein the ferrite core winding structure comprises a first wire and a second wire, wherein the first wire and the second wire form a second half loop wire portion, and wherein the second half loop wire portion is configured to extend through a bore of the ferrite core in a first direction.
26. The RF transformer of claim 25, wherein the first wire and the second wire form a third half loop wire portion.
27. The RF transformer of claim 26, wherein the third half loop wire portion is configured to extend through the bore of the ferrite core in a second direction that is different than the first direction.
28. The RF transformer of claim 21, wherein the ferrite core winding structure comprises a first wire and a second wire, and wherein a second half loop wire portion is formed by the first wire, but not the second wire.
29. The RF transformer of claim 28, wherein the second half loop wire portion is configured to extend at least partially around an exterior of the ferrite core.
30. The RF transformer of claim 21, wherein the predetermined threshold is about 300 MHz.
31. A radio-frequency (RF) transformer having a ferrite core and a plurality of wires for magnetically or capacitively coupling signals based on whether a frequency of the signals is less than or greater than a predetermined frequency threshold, the RF transformer comprising: a wired ferrite core structure having a plurality of half loop wire portions that are each arranged in different configurations so as to provide either a primarily capacitive coupling for signals having a first frequency that is greater than a predetermined threshold, or a primarily magnetic coupling for signals having a second frequency that is less than the predetermined threshold.
32. The RF transformer of claim 31, wherein the ferrite core includes a bore.
33. The RF transformer of claim 31, wherein the wired ferrite core structure includes a first wire and a second wire, and wherein portions of the first and second wires are twisted so as to form a first half loop wire portion.
34. The RF transformer of claim 33, wherein the first half loop wire portion is configured to extend at least partially around an exterior of a ferrite core so as to increase a high frequency coupling that varies a loss characteristic for a frequency range from about 5 MHz to about 1700 MHz.
35. The RF transformer of claim 33, wherein the wired ferrite core structure includes a second half loop wire portion, and wherein the second half loop wire portion is configured to extend through a bore of a ferrite core in a first direction.
36. The RF transformer of claim 35, wherein the wired ferrite core structure includes a third half loop wire portion, and wherein the third half loop wire portion is configured to extend through the bore of the ferrite core in a second direction that is different from the first direction.
37. The RF transformer of claim 36, wherein the second direction is opposite to the first direction.
38. The RF transformer of claim 31, wherein the wired ferrite core structure includes a first wire and a second wire, and wherein the first wire, but not the second wire, forms a first half loop wire portion.
39. The RF transformer of claim 38, wherein the first half loop wire portion is configured to extend at least partially around an exterior of a ferrite core.
40. The RF transformer of claim 31, wherein the predetermined threshold is about 300 MHz.
Description
DESCRIPTION OF THE DRAWINGS
[0010] The present invention will be more fully understood and appreciated by reading the following Detailed Description in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION
[0022] Although certain embodiments of the present invention will be shown and described in detail, it should be understood that various changes and modifications may be made without departing from the scope of the appended claims. The scope of the present invention will in no way be limited to the number of constituting components, the materials thereof, the shapes thereof, the relative arrangement thereof, etc., which are disclosed simply as an example of an embodiment. The features and advantages of the present invention are illustrated in detail in the accompanying drawings, wherein like reference numerals refer to like elements throughout the drawings.
[0023] As a preface to the detailed description, it should be noted that, as used in this specification and the appended claims, the singular forms a, an, and the include plural referents, unless the context clearly dictates otherwise.
[0024] Referring now to the drawings, wherein like reference numerals refer to like parts throughout, there is seen in
[0031] RF transformer 100 enables manipulation of winding structure 108 with respect to ferrite core 104. At relatively low frequencies, a coupling of energy is magnetic and facilitated by the ferrite (of ferrite core 104). As a frequency rises through approximately 300 MHz, an effectiveness of the ferrite magnetic coupling decreases and a dominant coupling occurs via a capacitive (proximity) coupling among the windings. At the higher frequencies (i.e., greater than about 300 MHz), presence of the ferrite may add to parasitic losses. RF transformer 100 provides an ability to blend multiple types of ferrite materials in order to manage frequency performance at high and low frequencies. Additionally, RF transformer 100 provides an ability to generate portions of winding structure 108 that are not closely coupled (i.e., spaced away from) to ferrite core 104. Generating portions of winding structure 108 that are not closely coupled (i.e., spaced away from) to ferrite core 104 may be accomplished by using individual pieces of material (e.g., ferrous or non-ferrous, conductive or nonconductive) such as spacers situated between ferrite core 104 and winding structure 108 and/or within winding structure 108.
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[0035] The use of multiple ferrite cores (e.g., ferrite cores 204a, 204b, and 204c) allows potential selection of multiple different types of ferrite thereby allowing a designer additional flexibility to blend desirable properties of different ferrite material types. The use of multiple ferrite cores of a same type of ferrite material may additionally segmenting of a ferrite medium. Additionally, multicore RF transformer 200 enables an overall winding structure comprising a unique shape offering enhanced parasitics thereby allowing a high frequency performance. Generating portions of winding structure 208 that are not closely coupled (i.e., spaced away from) to ferrite cores 204a, 204b, and 204c may be accomplished by selecting different ferrite sizes or shapes and/or arranging ferrite cores 204a, 204b, and 204c in such a way as to create gaps between winding structure 208 and ferrite cores 204a, 204b, and 204c at specified areas.
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[0053] While this invention has been described in conjunction with the specific embodiments outlined above, it is evident that many alternatives, modifications, and variations will be apparent to those skilled in the art. Accordingly, the preferred embodiments of the invention as set forth above are intended to be illustrative, not limiting. Various changes may be made without departing from the spirit and scope of the invention as defined in the following claims. The claims provide the scope of the coverage of the invention and should not be limited to the specific examples provided herein.