Notch filter with arrow-shaped embedded open-circuited stub
09673499 ยท 2017-06-06
Assignee
Inventors
Cpc classification
International classification
Abstract
A notch filter includes a dielectric substrate; and a microstrip transmission line provided on the dielectric substrate and having an arrow-shaped embedded open-circuited stub.
Claims
1. A notch filter comprising: a dielectric substrate; and a microstrip transmission line provided on the dielectric substrate and having a non-connective gap forming an arrow-shaped embedded open-circuited stub.
2. The notch filter of claim 1, wherein the arrow-shaped embedded open-circuited stub includes seven perimeter legs that define the arrow-shaped embedded open-circuited stub.
3. The notch filter of claim 2, wherein the arrow-shaped embedded open-circuited stub includes a first length, a second length, a first width, and a second width, wherein: the first length defines a length of a portion of arrow-shaped embedded open-circuited stub having two parallel perimeter legs of the seven perimeter legs, the second length defines a horizontal length along an x-axis of two angled perimeter legs of the seven perimeter legs that define an arrow shape of the arrow-shaped embedded open-circuited stub, the non-connective gap defines a thickness of the seven perimeter legs, the first width defines a distance between the two parallel perimeter legs, and the second width defines a width of a step that forms the arrow shape.
4. The notch filter of claim 3, wherein the first length is approximately 17.7 millimeters (mm), the second length is approximately 27.8 mm, the first width is approximately 0.2 mm, the second width is approximately 3.4 mm, and the non-connective gap is approximately 0.4 mm.
5. The notch filter of claim 1, wherein the arrow-shaped embedded open-circuited stub causes a stepped impedance on a signal transmitted via the microstrip transmission line.
6. The notch filter of claim 5, wherein the stepped impedance causes a distance between a second spurious harmonic in the signal to be shifted to approximately six times a center frequency in which a first spurious harmonic is present.
7. The notch filter of claim 1, wherein a thickness of the microstrip transmission line is approximately 0.017 mm and the thickness of the dielectric substrate is approximately 1.27 mm to approximately 1.585 mm.
8. The notch filter of claim 1, further comprising a ground plane conductor on an opposite side of the dielectric substrate as part of the microstrip transmission line.
9. The notch filter of claim 1, wherein a conductive material of the microstrip transmission line surrounds the arrow-shaped embedded open-circuited stub.
10. A notch filter comprising: a dielectric substrate; and a microstrip transmission line provided on the dielectric substrate and having a non-connective gap forming an arrow-shaped embedded open-circuited stub etched through the microstrip transmission line, wherein the arrow-shaped embedded open-circuited stub exposes the underlying dielectric substrate.
11. The notch filter of claim 10, wherein the arrow-shaped embedded open-circuited stub includes seven perimeter legs that define the arrow-shaped embedded open-circuited stub.
12. The notch filter of claim 11, wherein the arrow-shaped embedded open-circuited stub includes a first length, a second length, a first width, and a second width, wherein: the first length defines a length of a portion of arrow-shaped embedded open-circuited stub having two parallel perimeter legs of the seven perimeter legs, the second length defines a horizontal length along an x-axis of two angled perimeter legs of the seven perimeter legs that define an arrow shape of the arrow-shaped embedded open-circuited stub, the non-connective gap defines a thickness of the seven perimeter legs, the first width defines a distance between the two parallel perimeter legs, and the second width defines a width of a step that forms the arrow shape.
13. The notch filter of claim 12, wherein the first length is approximately 17.7 millimeters (mm), the second length is approximately 27.8 mm, the first width is approximately 0.2 mm, the second width is approximately 3.4 mm, and the non-connective gap is approximately 0.4 mm.
14. The notch filter of claim 10, wherein the arrow-shaped embedded open-circuited stub causes a stepped impedance on a signal transmitted via the microstrip transmission line.
15. The notch filter of claim 14, wherein the stepped impedance causes a distance between a second spurious harmonic in the signal to be shifted to approximately six times a center frequency in which a first spurious harmonic is present.
16. The notch filter of claim 10, further comprising a ground plane conductor on an opposite side of the dielectric substrate as part of the microstrip transmission line.
17. The notch filter of claim 10, wherein a thickness of the microstrip transmission line is approximately 0.017 mm and the thickness of the dielectric substrate is approximately 1.27 mm to approximately 1.585 mm.
18. A microstrip transmission line comprising a non-connective gap forming an arrow-shaped embedded open-circuited stub including a plurality of perimeter legs that define the arrow-shaped embedded open-circuited stub.
19. The microstrip transmission line of claim 18, wherein the arrow-shaped embedded open-circuited stub includes exactly seven perimeter legs, and further includes a first length, a second length, a first width, and a second width, wherein: the first length defines a length of a portion of arrow-shaped embedded open-circuited stub having two parallel perimeter legs of the seven perimeter legs, the second length defines a horizontal length along an x-axis of two angled perimeter legs of the seven perimeter legs that define an arrow shape of the arrow-shaped embedded open-circuited stub, the non-connective gap defines a thickness of the seven perimeter legs, the first width defines a distance between the two parallel perimeter legs, and the second width defines a width of a step that forms the arrow shape.
20. The microstrip transmission line of claim 19, wherein the first length is approximately 17.7 millimeters (mm), the second length is approximately 27.8 mm, the first width is approximately 0.2 mm, the second width is approximately 3.4 mm, the non-connective gap is approximately 0.4 mm, and a thickness of the microstrip transmission line is approximately 0.017 mm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention is described in the detailed description which follows, in reference to the noted plurality of drawings by way of non-limiting examples of exemplary embodiments of the present invention.
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DETAILED DESCRIPTION OF THE INVENTION
(8) The invention relates to notch filters, and more particularly, to notch filters with an arrow-shaped embedded open-circuited stub. In accordance with aspects of the present invention, a notch filter with an arrow-shaped embedded open-circuited stub increases the distance between spurious harmonics in a given frequency band, and therefore increases the available frequencies for use. Increasing the distance between spurious harmonics in a given frequency band is particularly advantageous in ultra-wide band (UWB) environments, e.g., wireless communication environments, since wider bands potentially have more spurious harmonics than narrower bands.
(9) In accordance with aspects of the present invention, a notch filter with an arrow-shaped embedded open-circuited stub increases the distance between spurious harmonics from a distance of three times of a center frequency to six times of a center frequency. As a result of the increased distance between spurious harmonics, fewer signal impurities exist in a frequency band, and more frequencies can be used, e.g., for data transmission, wireless communication, etc. As described herein, the nature of the arrow-shaped embedded open-circuited stub creates stepped impedance during transmission of data via the notch filter. This stepped impedance, in turn, increases the distance between the spurious harmonics.
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(11) The microstrip transmission line 110 may include a copper, a copper alloy, and/or other conductive material(s). In embodiments, the microstrip transmission line 110 may have a resistance of 50 ohms, although microstrip transmission line 110 may have a different resistance. The microstrip transmission line 110 is provided on a first side, e.g., a top side, of the dielectric substrate 105. A ground plane conductor is provided on a second side, e.g., an underside, of the dielectric substrate 105. The arrow-shaped open-circuited stub 115 may be formed by etching or removing the microstrip transmission line 110 in the shape of an arrow. For example, the material of the microstrip transmission line 110 is etched or removed, e.g., using laser ablation or chemical etching such as reactive ion etching (RIE), to expose the top side of the underlying dielectric material of the dielectric substrate 105.
(12) As further shown in
(13) As shown in
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(17) The dimensions of lengths L1 and L2 can be selected based on a desired center frequency of a notched band. The dimension of gap G and width W5 can be selected based on a desired width of the resonant frequency of the first spurious harmonic, e.g., the center frequency. Also, the dimensions of gap G and width W5 can be selected to control the bandwidth of the notch. The difference between W1 and W3 causes a stepped impedance which in turn increases the distance between spurious harmonics in a frequency band. The gap G also affects the dimension W1, e.g., a larger gap would reduce W1. Widths W4 and W5 are also based on the gap G. A larger gap G would reduce the width of the resonant frequency of the first spurious harmonic, but would reduce the distance between W1 and W3, and the increases the distance between spurious harmonics. Thus, the gap G can be selected to balance the benefits of a reduced resonant frequency width with the benefits of the distance between spurious harmonics.
(18) By way of non-limiting, illustrative example, approximate measurements of the dimensions include: W=5.0 mm, W1=0.2 mm, W2=3.4 mm, W3=2.6 mm, W4=0.2 mm, W5=1.0 mm, G=0.4 mm, L1=17.7 mm, and L2=27.8 mm. The example dimensions are provided for a particular application in which the notch filter 100 generates a notch with a very narrow bandwidth at a center frequency of about 1.0 GHz and a distance between the center frequency and 6 times the center frequency, e.g., 6 GHz in this example.
(19) It should be noted that the notch filter 100 is not limited to operate at this particular frequency, and the example dimensions are for illustrative purposes only. The notch filter 100 can be modified to operate at any desired operating frequency within the limitations of the dielectric substrate 105. In addition, the number of the embedded open-circuited resonator and the materials used for the dielectric substrate 105 or the microstrip transmission lines 110 can also be modified to meet specific requirements. Since the notch filter 100 includes only one embedded arrow-shaped open circuited stub 115, the notch filter 100 behaves as a single pole filter. The number of the embedded arrow-shaped open-circuited stubs 115 defines the number of poles the notch filter 100 has. Thus, the notch filter 100 is not limited to the layout shown in which only one arrow-shaped open-circuited stub 115 is provided.
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(22) The foregoing examples have been provided for the purpose of explanation and should not be construed as limiting the present invention. While the present invention has been described with reference to an exemplary embodiment, Changes may be made, within the purview of the appended claims, without departing from the scope and spirit of the present invention in its aspects. Also, although the present invention has been described herein with reference to particular materials and embodiments, the present invention is not intended to be limited to the particulars disclosed herein; rather, the present invention extends to all functionally equivalent structures, methods and uses, such as are within the scope of the appended claims.