FILTER DEVICE HAVING TUNABLE CAPACITANCE, METHOD OF MANUFACTURE AND USE THEREOF
20220270810 · 2022-08-25
Assignee
Inventors
- Ruben Cobo Marzal (Port Chester, NY, US)
- William Koehler (Saylorsburg, PA, US)
- Gary J. Mulcahy (Flanders, NJ, US)
Cpc classification
H01G4/40
ELECTRICITY
International classification
H01G4/40
ELECTRICITY
Abstract
A filter device, method of manufacture and use thereof. The filter device comprises a foil-wound inductor formed by a first conductive foil strip having a first terminal and a second terminal, the first conductive foil strip wound around a core to form a plurality of winding layers such that the first terminal is proximate the core and the second terminal is located at the outermost winding layer, and a continuous dielectric insulating layer between the plurality of layers of the first conductive foil strip; and, a tunable capacitor formed by a second conductive foil strip at least partially encircling the outermost layer of the foil-wound inductor and a dielectric insulating layer disposed therebetween, the second conductive foil strip having a portion that can be trimmed to alter a capacitance between the second conductive foil strip and the first or second terminal of the foil-wound inductor. When used in a circuit, the tunable capacitor can be trimmed to compensate for parasitic capacitance associated with the foil-wound inductor.
Claims
1. A filter device, comprising: a foil-wound inductor formed by a first conductive foil strip having a first terminal and a second terminal, said first conductive foil strip wound around a core to form a plurality of winding layers such that said first terminal is proximate said core and said second terminal is located at the outermost winding layer, and a continuous dielectric insulating layer between said plurality of layers of said first conductive foil strip; and, a tunable capacitor, integral to said foil-wound inductor, formed by a second conductive foil strip at least partially encircling the outermost layer of said foil-wound inductor and a dielectric insulating layer disposed therebetween, said second conductive foil strip having a portion that can be trimmed to alter a capacitance between said second conductive foil strip and said first and second terminals of said foil-wound inductor.
2. The filter device recited in claim 1, wherein said capacitance can be adjusted to compensate for the parasitic capacitance associated with said foil-wound inductor.
3. The filter device recited in claim 1, wherein said first conductive foil strip comprises copper.
4. The filter device recited in claim 1, wherein said dielectric insulating layers comprise an insulating adhesive tape.
5. The filter device recited in claim 1, wherein said second conductive foil strip of said tunable capacitor can be trimmed by a shearing operation.
6. The filter device recited in claim 1, further comprising: a second foil-wound inductor formed on a common core as said foil-wound inductor, said second foil-wound inductor insulated from said foil-wound inductor.
7. The filter device recited in claim 6, wherein said second conductive foil strip at least partially encircling the outermost layer of said foil-wound inductor also at least partially encircles the outermost layer of said second foil-wound inductor, wherein trimming said second conductive foil of said tunable capacitor also alters a capacitance between said second conductive foil strip and first and second terminals of said second foil-wound inductor.
8. The filter device recited in claim 7, wherein said second conductive foil strip comprises first and second portions overlaying said foil-wound inductor and said second foil-wound inductor that can be independently trimmed to alter the capacitance between said second foil strip and first and second terminal ends of each of said foil-wound inductors.
9. The filter device recited in claim 6, further comprising a second tunable capacitor comprising a third conductive foil strip at least partially encircling the outermost layer of said second foil-wound inductor, wherein trimming said third conductive foil of said second tunable capacitor alters a capacitance between said third conductive foil strip and first and second terminals of said second foil-wound inductor.
10. The filter device recited in claim 6, wherein said foil-wound inductor is magnetically coupled to and electrically isolated from said second foil-wound inductor.
11. A method of manufacturing a filter device, comprising: forming a foil-wound inductor from a first conductive foil strip having a first terminal and a second terminal, said first conductive foil strip wound around a core to form a plurality of winding layers such that said first terminal is proximate said core and said second terminal is located at the outermost winding layer, and a continuous dielectric insulating layer between said plurality of layers of said first conductive foil strip; and, forming a tunable capacitor, integral to said foil-wound inductor, from a second conductive foil strip at least partially encircling the outermost layer of said foil-wound inductor and a dielectric insulating layer disposed therebetween, said second conductive foil strip having a portion that can be trimmed to alter a capacitance between said second conductive foil strip and said first and second terminals of said foil-wound inductor.
12. The method recited in claim 11, wherein said capacitance can be adjusted to compensate for the parasitic capacitance associated with said foil-wound inductor.
13. The method recited in claim 11, wherein said first conductive foil strip comprises copper.
14. The method recited in claim 11, wherein said dielectric insulating layers comprise an insulating adhesive tape.
15. The method recited in claim 11, wherein said second conductive foil strip of said tunable capacitor can be trimmed by a shearing operation.
16. The method recited in claim 11, further comprising: forming a second foil-wound inductor on the same core as said foil-wound inductor, said second foil-wound inductor insulated from said foil-wound inductor.
17. The method recited in claim 16, wherein said second conductive foil strip at least partially encircling the outermost layer of said foil-wound inductor also at least partially encircles the outermost layer of said second foil-wound inductor, wherein trimming said second conductive foil of said tunable capacitor also alters a capacitance between said second conductive foil strip and first and second terminals of said second foil-wound inductor.
18. The method recited in claim 17, wherein said second conductive foil strip comprises first and second portions overlaying said foil-wound inductor and said second foil-wound inductor that can be independently trimmed to alter the capacitance between said second foil strip and first and second terminals of each of said foil-wound inductors.
19. The method recited in claim 16, further comprising forming a second tunable capacitor from a third conductive foil strip at least partially encircling the outermost layer of said second foil-wound inductor, wherein trimming said third conductive foil of said second tunable capacitor alters a capacitance between said third conductive foil strip and first and second terminals of said second foil-wound inductor.
20. The method recited in claim 16, wherein said foil-wound inductor is magnetically coupled to and electrically isolated from said second foil-wound inductor.
21. A method of tuning a radio frequency (RF) filter having a foil-wound inductor with a tunable capacitor integral therewith, said tunable capacitor including a foil strip at least partially encircling an outermost layer of said foil-wound inductor and a dielectric insulating layer disposed therebetween, wherein a first terminal of said tunable capacitor is common to a terminal of said foil-wound inductor and a second terminal is selectively couplable to ground of said RF filter, said method comprising the steps of: coupling said RF filter to an analyzer without said second terminal of said tunable capacitor coupled to ground; if a frequency of resonance of said RF filter is greater than a desired frequency, coupling said second terminal of said tunable capacitor to ground and determining the frequency of resonance; if said frequency of resonance of said RF filter with said second terminal of said tunable capacitor coupled to ground is then less than the desired frequency, trimming one or more portions of the foil strip of said tunable capacitor until the frequency of resonance of said RF filter increases to said desired frequency.
22. The method recited in claim 21, wherein said conductive foil strip of said tunable capacitor is trimmed by a shearing operation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] For a complete understanding of the invention, reference is made to the following detailed description taken in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION
[0027] According to the principles disclosed herein, a conventional foil winding inductor is modified to provide a tunable integrated capacitance to ground; several embodiments are illustrated in
[0028] The filter device 700 further includes a tunable capacitor 720 formed by a second conductive foil strip at least partially encircling the outermost layer of the foil-wound inductor 710 and a dielectric insulating layer 723 disposed therebetween. The second conductive foil strip of the capacitor 720 includes a portion 722 that can be trimmed to alter a capacitance between the second conductive foil strip and the first and second terminals of the foil-wound inductor 710. When used in a circuit, the tunable capacitor can be trimmed to compensate for parasitic capacitance associated with the foil-wound inductor. The trimmable portion 722 can be cut with a manual or automatic cutting or shearing device; alternatively, the trimmable portion 722 can be scored such that one or more portions can be removed to incrementally tune capacitance value of tunable capacitor 720.
[0029] In other embodiments, multiple windings can be constructed on a common core to provide the opportunity for part economy and well-matched filtering characteristics. Each winding can feature its own individual capacitive tuning strip, to optimize its blocking impedance at the desired value, or a common tuning strip can be provided. For example, with reference to
[0030] Tests were conducted to demonstrate the adjustability of a tunable filter device according to the principles disclosed herein. In one test, a sample was constructed with 25.4 mm (1″) wide copper (Cu) strip. The Cu strip was calibrated into 1 mm wide increments, and the resonant frequency was measured as 1 mm increments of strip were progressively removed; the following table presents the measurement results of the resonant frequency as portions of the Cu tape were progressively removed.
TABLE-US-00001 Cu Tape Removed (1 mm increments) Resonant Frequency 0 19.771 1 20.082 2 20.206 3 20.33 4 20.64 5 20.82 6 21.08 7 21.327
[0031]
[0032] As a practical example, if the desired resonant frequency is 20.6 MHz+/−1%=20.39-20.81 MHz, then a trim length of 4 mm+/−1 mm (0.157″+/−0.04″), which is easily achievable with conventional production tools, can provide the required precision. If greater precision is required, the width of the copper strap can be reduced, producing a smaller change in copper tape area per length of tab removed, which in turn will produce a smaller change in resonant frequency per length of tape removed. Other alternatives for removing portions of the copper strip are also possible, including progressively removing portions from the end or the side that are of equal or unequal dimensions to progressively tune the resonant frequency in a linear or non-linear manner.
[0033] The filter devices 700, 800 and 900 illustrated in
[0034] For the embodiments illustrated in
[0035] Finally,
[0036] The technical principles disclosed herein provide a foundation for designing inductive filter devices having an integral tunable capacitor to compensate for parasitic capacitances. The examples presented illustrate the application of the technical principles and are not intended to be exhaustive or to be limited to the specifically-disclosed examples or methods; it is only intended that the scope of the technical principles be defined by the claims appended hereto, and their equivalents.