Frequency demultiplexer
09755287 · 2017-09-05
Assignee
Inventors
Cpc classification
International classification
H01P1/213
ELECTRICITY
Abstract
A frequency demultiplexer comprising an input part (106) with an input port (101), a low pass filter (125) and a band-pass filter (108) with output ports (120, 145). The input part (106), the low-pass filter (125) and the band-pass filter (108) comprise open waveguide sections, and the band-pass filter (108) comprises gap-coupled resonators (130, 135, 140). The input part (106) and the low-pass filter (125) connect to the same resonator (130), the connection (121) of the low-pass filter (125) being at a first maximum distance (L.sub.1) from a center point (N) of the resonator and the connection (116) of the output port (101) being at a second maximum distance (L.sub.2) from said center point (N) of the resonator. The center point (N) corresponds to a wave node of a wavelength , where =2d/M, M is a positive integer value and d is the shortest end-to-end distance along the resonator.
Claims
1. A frequency demultiplexer comprising an input part with an input port, a low pass filter with an output port, and a band-pass filter with an output port, with the input part, the low-pass filter and the band-pass filter comprising open waveguide sections, and the band-pass filter comprising a plurality of gap-coupled resonators, with the input part and the low-pass filter both being connected at respective connection points to one and the same of said gap-coupled resonators, the connection point of the low-pass filter being located at a first maximum distance from a center point of the resonator and the connection point of the input part being located at a second maximum distance from said center point of the resonator, said center point corresponding to a wave node of a wavelength , where =2d/M, M is a positive integer value and d is the shortest end-to-end distance along the resonator, in which the first maximum distance from said center point of the resonator is d/8 and the second maximum distance from said center point of the resonator is d/4.
2. The frequency demultiplexer of claim 1, in which the low-pass filter comprises stepped impedance sections.
3. The frequency demultiplexer of claim 1, in which the input part comprises an impedance matching section between said input port of the input part and said respective connection point at which the input part is connected to said gap-coupled resonators, said impedance matching section comprising a first section connected between second and third sections, where the first section has a greater width than the second and third sections.
4. A frequency demultiplexer device, comprising a first and a second frequency demultiplexer of claim 1, in which the output port of the low pass filter of the first frequency demultiplexer is connected to the input port of the input part of the second frequency demultiplexer.
5. The frequency demultiplexer device of claim 1, wherein the band-pass filter and the low pass filter of the first frequency demultiplexer are arranged so that the low pass filter has an upper cut-off frequency which overlaps partly or not at all with the pass-band of the band-pass filter, and the pass-band of the band-pass filter of the second frequency demultiplexer is arranged to have its upper flank begin at a frequency higher than the cut-off frequency of the low-pass filter of the first frequency demultiplexer, but at a lower frequency than the upper flank of the band-pass filter of the first frequency demultiplexer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be described in more detail in the following, with reference to the appended drawings, in which
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DETAILED DESCRIPTION
(5) Embodiments of the present invention will be described more fully hereinafter with reference to the accompanying drawings, in which embodiments of the invention are shown. The invention may, however, be embodied in many different forms and should not be construed as being limited to the embodiments set forth herein. Like numbers in the drawings refer to like elements throughout.
(6) The terminology used herein is for the purpose of describing particular embodiments only, and is not intended to limit the invention.
(7) Below, various embodiments of a frequency demultiplexer and of a frequency demultiplexer device will be described. The frequency demultiplexer device comprises one or more frequency demultiplexers which comprise sections of so called open waveguide technology, as opposed to closed waveguide technology. By closed waveguide technology we mean a waveguide with a closed cross-section, e.g. a rectangular, circular or elliptical cross-section. As opposed to this technology, open waveguide technology comprises at least one conducting strip and one ground plane or ground trace, and comprises technologies such as e.g. strip-line, microstrip and coplanar waveguides. Thus, although the embodiments below will be described as comprising microstrip technology, it should be pointed out that this is only in the interest of brevity, and that the embodiments described as well as the scope of protection sought encompasses open waveguide technology in general, e.g. strip-line and coplanar waveguides as well as microstrip technology.
(8) As has also been pointed out above, the frequency demultiplexer and frequency demultiplexer device which will be described in the following are reciprocal, i.e. they can also be used for multiplexing. In such applications, the ports which are described below as output ports are used as input ports, and the ports which are described below as input ports are used as output ports.
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(10) The input part 106 also suitably but not necessarily comprises an impedance matching network, which comprises a wider section 110 located between two narrower sections 105, 115, i.e. a section 110 is connected in between two sections 105, 115 which are wider than the section 110. The impedance matching network can also comprise a chain of such alternating wider and narrower sections. Suitably, in such a chain, a narrower section such as the one 115 is located closer to the output port 116 than a wider section such as the one 110.
(11) The frequency demultiplexer 102 also comprises a low-pass filter 125, which also has an input port 121 and an output port 120. The low-pass filter 125 can be designed according to a number of principles for such filters, e.g. stub filters and resonant stub filters, but in one embodiment, as shown in
(12) The frequency demultiplexer also comprises a band-pass filter 108, which, as shown in
(13) In the frequency demultiplexer 102, the output port or connection point 116 of the input part 106 is connected to one of the gap coupled resonators, in this case the resonator 130, with the connection being located a maximum distance L.sub.2 from a centre point N of the resonator 130. The centre point N shown in
(14) As is also shown in
(15) Suitably, the maximum distance L.sub.2 from a centre point N of the resonator is L/4, where L is the shortest end-to-end length along the first resonator, and the maximum distance L.sub.1 from a centre point of the resonator is L/8, where L is the shortest end-to-end length along the first resonator.
(16) The gap-coupled resonator to which the low-pass filter and the input part are connected is suitably the innermost or outermost of the gap-coupled resonators, i.e. a gap-coupled resonator which is only connected to another resonator on one of its sides.
(17) The connection points of the low pass filter 125 and the input part 106 to the band pass filter 108 serve as ports of the band pass filter 108 which connect the input part 106 and the low pass filter to the band pass filter 108.
(18) The band-pass filter 108 also comprises an output port 145. This port can be designed in different ways, it can for example be a port connected to the resonator 140 similarly to the way that the input part 106 is connected to the resonator 130 (tap coupling), or by extending the final, i.e. outermost, resonator 140 into a microstrip line.
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(20) The rules for the maximum distances L.sub.2 and L.sub.1 as described above in connection with
(21) As shown in
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(26) A number of principles enabled by the frequency demultiplexer 102 will now be realized, and will be explained below, using the following terminology: Low pass, LP output port of a frequency demultiplexer: this term is used to signify the output ports 120, 220, of the low pass filters 125, 225. Band pass, BP output port of a frequency demultiplexer: this term is used to signify the output ports 145, 245 of the band pass filters.
(27) A more or less arbitrary number of frequency demultiplexers can be cascaded, as with the two frequency demultiplexers in
(28) The upper flank of the band-pass filter of frequency demultiplexer B is placed slightly above the cut-off frequency of the low-pass filter of frequency demultiplexer A. In this case, the bandwidth edges at the BP-output port of frequency demultiplexer B are determined by the low-pass filter of frequency demultiplexer A from above, and by the band-pass filter of frequency demultiplexer B from below.
(29) Spurious pass-bands are completely eliminated through the use of low-pass filters with progressively lower and lower cut off frequency.
(30) In the drawings and specification, there have been disclosed exemplary embodiments of the invention. However, many variations and modifications can be made to these embodiments without substantially departing from the principles of the present invention. Accordingly, although specific terms are employed, they are used in a generic and descriptive sense only and not for purposes of limitation.
(31) The invention is not limited to the examples of embodiments described above and shown in the drawings, but may be freely varied within the scope of the appended claims.