FILTER CIRCUIT WITH A NOTCH FILTER
20210058067 ยท 2021-02-25
Inventors
Cpc classification
H03H9/25
ELECTRICITY
H03H9/547
ELECTRICITY
H04B1/1027
ELECTRICITY
H04B1/0475
ELECTRICITY
International classification
H03H9/25
ELECTRICITY
Abstract
A filter circuit comprises in a signal line a band filter (BF) allowing to let pass a useful frequency band and a notch filter (NF) circuited in series to the band filter for filtering out a stop band frequency. The notch filter comprises a series circuit of a number of parallel shunt elements (SE1 . . . SE6) wherein each shunt element is shifted infrequency against the other shunt elements that the frequencies thereof are distributed (f1 . . . F6) over a notch band. All shunt elements may be realized as a SAW one-port resonator (TR.sub.NF) including regions with different pitches.
Claims
1. A filter circuit comprising in a signal line (SL) a band filter (BF) allowing to let pass a useful frequency band and a notch filter (NF) circuited in series to the band filter for filtering out a stop band frequency wherein the notch filter comprises a series circuit of a number n of parallel shunt elements (SE), each shunt element (SE1, SE2, . . . SEn) being shifted in frequency against the other shunt elements that all shunt elements are distributed over a notch band the notch filter (NF) provides the notch band (NB).
2. The filter circuit of claim 1 wherein the parallel shunt elements (SE) are chosen from resonators (R) circuited in parallel to the signal line (SL) wherein each shunt element has a small admittance of about 1/n times the admittance of a normal notch filter (NF) where n is the number of shunt elements.
3. The filter circuit of claim 1 wherein the parallel shunt elements (SE) are chosen from resonators (R) operating with acoustic waves.
4. The filter circuit of claim 1 wherein the parallel shunt elements (SE) comprise a one-port SAW resonator.
5. The filter circuit of claim 1, wherein the notch filter (NF) comprises a single one-port SAW resonator having a transducer with two bus bars and a number of transducer fingers alternatingly connected to one of the two bus bars wherein a finger distance between the centers of two adjacent transducer fingers defines a stop band frequency within the notch band (NB) wherein the transducer of the one-port SAW resonator comprises a number of different finger distances (d1, . . . dx, . . . dn) and hence a number of n different shunt elements with respective stop band frequencies.
6. The filter circuit of claim 5 wherein the transducer comprises each finger distance only one time such that each pair of adjacent fingers has a different distance.
7. A PAMiD frontend module (FEM) comprising: a filter circuit comprising in a signal line (SL) a band filter (BF) allowing to let pass a useful frequency band and a notch filter (NF) circuited in series to the band filter for filtering out a stop band frequency, wherein the notch filter comprises a series circuit of a number n of parallel shunt elements (SE), each shunt element (SE1, SE2, . . . SEn) being shifted in frequency against the other shunt elements that all shunt elements are distributed over a notch band and the notch filter (NF) provides the notch band (NB), and a power amplifier (PA) and a matching circuit, wherein a further filter circuit operating in a neighbored band is part of the PAMiD frontend module or of a different device operating together with the PAMiD frontend module and wherein the notch band (NB) is centered on the neighbored band.
8. The PAMiD frontend module of claim 7, wherein the filter circuit and the further filter circuit are band pass filters and are part of a duplexer or a multiplexer, wherein the notch band (NB) assigned to a filter circuit is centered at the useful frequency band of the respective other filter circuit of the duplexer or multiplexer.
9. The PAMiD frontend module of claim 7, wherein the filter circuit is a T filter of a duplexer wherein the notch band (NB) complies with the useful band of the R filter of the same duplexer.
Description
[0017] In the following the filter circuit is explained in more detail by reference to specific embodiments and the accompanied figures. The figures are schematic only and not to scale.
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[0027] Curve 3 shows an improved isolation at frequencies below the pole of curve 1 according to the art. Thereby the isolation for the whole R band is improved as the maximum of the attenuation curve 1 (worst attenuation) is higher (worse) than the maximum of the attenuation curve 3. As a result the high attenuation of a single pole originating from a notch filter of the art is diminished if favor of broad attenuation with no disturbing maximum.
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LIST OF USED TERMS AND REFERENCE SYMBOLS
[0030] BF band filter [0031] d1, dx, dn finger distances between the centers of two adjacent transducer fingers [0032] f.sub.0 stop band frequency of single notch filter [0033] f.sub.1 to f.sub.6 stop band frequencies of SE1 to SE6 [0034] FEM PAMiD frontend module [0035] N notch [0036] NB notch band [0037] NF notch filter [0038] PA power amplifier [0039] R one port SAW resonator [0040] R resonator [0041] RF R filter [0042] SE1 to SE6 shunt elements [0043] SL signal line [0044] TR transducer having [0045] TF T filter [0046] 1 [0047] 2 admittance of a common filter [0048] 3 admittance of a
[0049] band pass filter
[0050] bus bars
[0051] duplexer or multiplexer
[0052] filter circuit
[0053] further filter circuit
[0054] matching circuit
[0055] neighbored band
[0056] parallel shunt elements
[0057] stop band frequency
[0058] useful frequency band