A FILTER-TERMINATION COMBINATION FOR MULTI-BAND RECEIVER
20170244144 · 2017-08-24
Assignee
Inventors
Cpc classification
H03H7/1708
ELECTRICITY
International classification
Abstract
A termination/attenuation network applies to an input of a set-top box a MOCA channel signal having a narrow band of frequencies and included in RF signals having a wide band of frequencies received via a cable from a satellite antenna. The network includes a pair of series resistors and a parallel resistor coupled to a junction terminal between the pair of series resistors in a T-shaped configuration. A series-pass band-pass filter (L1, C2) bypasses the pair of series resistors and a parallel band stop filter (L2, C1) decouples the parallel resistor at the frequency band of the MOCA channel signal for selectively reducing attenuation at the frequency band of the MOCA channel signal.
Claims
1. A termination network coupled in operation to an input of a band-pass filter, comprising: a first resistor coupled to a second resistor to form a voltage divider for voltage dividing a first radio frequency (RF) input signal that is applied, as attenuated by said voltage divider, to said filter input; and a first resonant circuit responsive to said first RF input signal for controlling a magnitude of a second RF input signal developed at said filter input, said second RF input signal having a larger magnitude when said first RF input signal is at a resonant frequency of said first resonant circuit, relative to when said first RF input signal is outside a range of frequencies that includes said resonant frequency.
2. The termination network according to claim 1 wherein said first resonant circuit comprises a parallel resonant circuit that is coupled in series with said second resistor.
3. The termination network according to claim 2, comprising a third resistor for coupling to said filter input a signal developed in said series coupled parallel resonant circuit and said second resistor.
4. The termination network according to claim 3 wherein said first, second and third resistors are coupled in a T-shaped configuration.
5. (canceled)
6. The termination network according to claim 2 wherein said parallel resonant circuit comprises a first capacitor coupled in parallel with a first inductor.
7. The termination network according to claim 6, comprising a second inductor coupled in series with said parallel resonant circuit.
8. The termination network according to claim 1 wherein said first resonant circuit comprises a series resonant circuit that is coupled to said filter input in a manner to bypass said first resistor.
9. The termination network according to claim 1, comprising a third resistor for coupling the voltage divided, first RF input signal to said filter input.
10. The termination network according to claim 8 wherein said series resonant circuit comprises a second capacitor coupled in series with a third inductor.
11. The termination network according to claim 10, comprising a third capacitor coupled in parallel with said third inductor.
12. The termination network according to claim 10, further comprising a parallel resonant circuit that is coupled in series with said second resistor.
13. A The termination network according to claim 12 wherein said parallel resonant circuit comprises a first capacitor coupled in parallel with a first inductor.
14. The termination network according to claim 13, comprising a second inductor coupled in series with said parallel resonant circuit.
15. The termination network according to claim 14, comprising a third resistor having a first terminal coupled between said first and second resistors and a second terminal coupled to said filter input.
16. The termination network according to claim 15 wherein said first, second and third resistors form a T-shaped configuration.
17. (canceled)
18. The termination network according to claim 1 wherein said filter comprises a band pass filter for passing a Multimedia over Cable Alliance (MOCA) frequency range.
19. The termination network according to claim 1 wherein said frequency range comprises a Multimedia over Cable Alliance (MOCA) frequency range and wherein an upper limit of the frequencies that are outside said range of frequencies is at least 2000 MHz.
20. A termination network coupled in operation to an input of a band-pass filter, comprising: a source of a radio frequency (RF) input signal; a first resistor coupled in series with a second resistor for applying said RF input signal to said filter input; a first resonant circuit coupled in parallel with said series coupled first and second resistors; a second resonant circuit; and a third resistor coupled in series with said second resonant circuit, said series coupled second resonant circuit and said third resistor being coupled to a terminal between said first and second resistors to form a T-shaped configuration.
21. (canceled)
22. (Canceled)
23. The termination network according to claim 20 wherein said second resonant circuit comprises a parallel resonant circuit.
24. A termination device comprising a band-pass filter, said termination device comprising: a first resistor coupled to a second resistor to form a voltage divider for voltage dividing a first radio frequency (RF) input signal that is applied, as attenuated by said voltage divider, to an input of said band-pass filter; and a first resonant circuit responsive to said first RF input signal for controlling a magnitude of a second RF input signal developed at said filter input, said second RF input signal having a larger magnitude when said first RF input signal is at a resonant frequency of said first resonant circuit, relative to when said first RF input signal is outside a range of frequencies that includes said resonant frequency.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0019]
[0020] In particular, combiner 110 provides a routing arrangement for an output signal 120a of external network receiving device 120 that is applied to devices in the home or user network such as MOCA device 140 in conjunction with signals that operate in the MOCA network. Combiner 110 is conventional and may include active or passive circuit elements to combine the input signals from the various sources into a corresponding combined output signal in each of transmission lines 110a and 110b, for example, into a combined output signal Vout in transmission line 110a. MOCA device 140 may be controlled by the user to convert one or more of the program content from device 130 or 120 into a MOCA output at the MOCA frequency spectrum of 950 MHz-1050 MHz, in a manner not shown in details, for use with other MOCA devices on the network. The converted MOCA signal, not shown, is applied back to combiner 110 to form an RF signal Vouta at the MOCA frequency spectrum of 950 MHz-1050 MHz. Consequently, combined output signal Vout in transmission line 110a also contains RF signal Vouta at the MOCA frequency spectrum of 950 MHz-1050 MHz. As a result, RF signal Vout, as well as other outputs of combiner 110, such as, for example, those signals, not shown, that are developed on line 110b, will also contain all original signals, for example, satellite down link frequencies from 1250 to 2150 MHz, broadcast television frequencies from 174 to 805 MHz and certain control frequencies from 2.3 to 2.4 MHz referred to collectively as a signal Voutb. In addition, signal Vout also contains internally generated MOCA RF signal Vouta. For combiner 110 to function properly, it may be desirable to provide terminating impedance with a value close to the characteristic impedance of the combiner and of the coaxial cables, for example, 75 ohms as mentioned before.
[0021]
[0022] A series resonant circuit 306 includes an inductor L1 coupled in series with a capacitor C2. Series resonant circuit 306 is coupled between a second terminal 305 of resistor R2 and terminals 304 and in parallel with series coupled resistors R1 and R2. Series resonant circuit 306 is also tuned to resonate at a frequency, for example, 1000 MHz that is within the MOCA band of frequencies, 950 MHz-1050 MHz, of signal Vouta. Consequently, series resonant circuit 306 forms a low impedance or a band-pass filter at the frequencies within MOCA band of frequencies, 950 MHz-1050 MHz, of signal Vouta in a manner to bypass the signal path formed by series coupled resistors R1 and R2. The result is that resistors R1 and R2 have only a minimal attenuation effect at the frequencies within the MOCA band of frequencies, 950 MHz-1050 MHz, of signal Vouta.
[0023] Advantageously, series resonant circuit 306 forms high impedance at the frequencies within the frequency spectrum of signal Voutb that excludes MOCA signal Vouta. Thus, with respect to signal Voutb at the frequencies within the frequency spectrum that is non-overlapping with the MOCA band of frequencies, 950 MHz-1050 MHz, of signal Vouta, resistors R1 and R2 dominate the impedance formed between terminals 304 and 305 for attenuating signal Voutb. Advantageously, the bypassing effect of series resonant circuit 306 does not significantly diminish the desirable attenuation of signal Voutb.
[0024] On the other hand, parallel resonant circuit 303 forms low impedance at the frequencies within the frequency spectrum of signal Voutb. Thus, with respect to the frequencies within the frequency spectrum of signal Voutb that are non-overlapping with or excluding the MOCA band of frequencies, 950 MHz-1050 MHz, of signal Vouta, resistors R1 and R3 form a substantially resistive attenuating voltage divider. The result is that, with respect to signal Voutb, the combination of resistors R1, R2 and R3 that are coupled in a T-shaped configuration, advantageously, effectively forms a so-called Tee attenuator. Thus, advantageously, signal Vouta is coupled to terminal 305 of
[0025] The values of the following components of termination portion 116 of band-pass filter/termination 115 of
[0026] R1=24 Ohm
[0027] R2=24 Ohm
[0028] R3=99 Ohm
[0029] L1=36 nH
[0030] L2=8.2 nH
[0031] C1=3.3 pF
[0032] C2=0.68 pF
[0033] Terminal 305 of resistor R2, forming an output terminal of termination portion 116 also forms, in common, an input terminal, referred to as port 1-SP1 of a band-pass filter SP1. Band-pass filter SP1 has an output referred to herein as a port 2-SP1 of band-pass filter SP1. Port 2 of band-pass filter SP1 forms, in common, an output port of band-pass filter/termination 115.
[0034] Band-pass filter SP1 passes with low attenuation the signal at the frequencies spectrum of the MOCA band of frequencies, 950 MHz-1050 MHz, of signal Vouta. On the other hand, band-pass filter SP1 blocks or attenuates signals at frequencies within the frequency spectrum of signal Voutb that are non-overlapping with the MOCA band of frequencies, 950 MHz-1050 MHz, of signal Vouta. An example of such filter may be an LTCC device such as a prior art filter made by MURATA, LFB321CG00M8D792. LTCC is an abbreviation of Low Temperature Co-fired Ceramics. High purity ceramics used in the industrial world are also called “fine ceramics.” Among fine ceramics, LTCC is classified as electronic ceramics which are used as electronic materials. Such filter provides low attenuation and good impedance match with respect to the MOCA 950 to 1050 MHz band of signal Vouta. However, input port 1-SP1 of band-pass filter SP1 generally forms input impedance that, disadvantageously, is significantly different at different frequencies over the frequency spectrum of signal Voutb. Other filter types may, instead, be employed such as conventional L-C types or SAW devices.
[0035]
[0036] Assume, hypothetically, that stand-alone band-pass filter SP1 of
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[0039]
[0040] The values of the components of termination portion 116′ of band-pass filter/termination 115′ of
[0041] R1′24 Ohm
[0042] R2′=24 Ohm
[0043] R3′=99 Ohm
[0044] L1′=18 nH
[0045] L2′=5.6 nH
[0046] Lfix′=12 nH
[0047] C1′=4.3 pF
[0048] C2′=0.82 pF
[0049] Cfix′=0.56 pF
[0050]
[0051]