AN IMPROVED ELECTRICAL FILTER TOPOLOGY
20240322856 ยท 2024-09-26
Inventors
Cpc classification
H04B1/56
ELECTRICITY
International classification
Abstract
The present disclosure relates to an electrical filter arrangement including a transmitter port, a receiver port and an antenna port. The electrical filter arrangement further includes a transmitter filter connected to the first transmitter port and a receiver filter connected to the receiver port. The electrical filter arrangement further includes a four-port circulator device that is connected between the filters, the antenna port, and a termination impedance that is connected to ground. The circulator device is adapted to admit signals to pass from the transmitter filter to the antenna port, from the antenna port to the receiver filter, and from the receiver filter to the termination impedance.
Claims
1. An electrical filter arrangement comprising a transmitter port, a receiver port and an antenna port, the electrical filter arrangement further comprising a transmitter filter connected to the first transmitter port and a receiver filter connected to the receiver port, wherein the electrical filter arrangement further comprises a four-port circulator device that is connected between the filters, the antenna port, and a termination impedance that is connected to ground, where the circulator device is adapted to admit signals to pass from the transmitter filter to the antenna port, from the antenna port to the receiver filter, and from the receiver filter to the termination impedance.
2. The electrical filter arrangement according to claim 2, wherein the circulator device comprises a first circulator port that is connected to the termination impedance, a second circulator port that is connected to the transmitter filter, a third circulator port that is connected to the receiver filter, and a fourth circulator port that is connected to the antenna port, where signals input at the second circulator port mainly pass only via the fourth circulator port, where signals input at the fourth circulator port mainly pass only via the third circulator port, and where signals input at the third circulator port mainly pass only via the first circulator port.
3. The electrical filter arrangement according claim 1, wherein the termination impedance is a matched impedance.
4. The electrical filter arrangement according to claim 1, wherein the electrical filter arrangement comprises a first isolator device connected between the transmitter port and the circulator device, and a second isolator device connected between the receiver port and the circulator device, where the first isolator device is adapted to enable signals to mainly pass only towards the circulator device, and where the second isolator device is adapted to enable signals to mainly pass only towards the receiver port.
5. A total electrical filter arrangement that comprises two or more electrical filter arrangements according to any one of the previous claim 1, at least one connecting element and a total antenna port, the two or more electrical filter arrangements being connected to the total antenna port via at least one connecting element.
6. The total electrical filter arrangement according to claim 5, wherein each connecting element is a directional coupler.
7. A microwave link transceiver arrangement comprising the electrical filter arrangement according to any one of the previous claim 1, an antenna device and a radio unit, where the electrical filter arrangement is connected between the antenna device and the radio unit.
8. A method of configuring an electrical filter arrangement comprising a first transmitter port, a receiver port and an antenna port, where the method comprises: connecting a transmitter filter to the first transmitter port; connecting a receiver filter to the receiver port, and connecting a four-port circulator device between the filters, the antenna port and a termination impedance that is connected to ground; where the circulator device is used for admitting signals to pass from the transmitter filter to the antenna port, from the antenna port to the termination impedance, and from the antenna port to the receiver filter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present disclosure will now be described more in detail with reference to the appended drawings, where:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023] Aspects of the present disclosure will now be described more fully hereinafter with reference to the accompanying drawings. The different devices, systems, computer programs and methods disclosed herein can, however, be realized in many different forms and should not be construed as being limited to the aspects set forth herein. Like numbers in the drawings refer to like elements throughout.
[0024] The terminology used herein is for describing aspects of the disclosure only and is not intended to limit the invention. As used herein, the singular forms a, an and the are intended to include the plural forms as well, unless the context clearly indicates otherwise.
[0025] With reference to
[0026] According to the present disclosure, the microwave filter arrangement 100 comprises a four-port circulator device 120 that is connected between the filters 110, 112, the antenna port 105, and a termination impedance 170 that is connected to ground 171. According to some aspects, the termination impedance 170 is a matched impedance, such as for example a 5052 resistor. The circulator device 120 is adapted to admit signals to pass from the transmitter filter 110 to the antenna port 105, from the antenna port 105 to the receiver filter 112, and from the receiver filter 112 to the termination impedance 170.
[0027] According to some aspects, the antenna port 105 is connected to an antenna device 160.
[0028] The circulator device 120 comprises a first circulator port 121 that is connected to the termination impedance 170, a second circulator port 122 that is connected to the transmitter filter 110, a third circulator port 123 that is connected to the receiver filter 112 and a fourth circulator port 124 that is connected to the antenna port 105. Signals input at the second circulator port 122 mainly pass only via the fourth circulator port 124, and signals input at the fourth circulator port 124 mainly pass only via the third circulator port 123 and signals input at the third circulator port 123 mainly pass only via the first circulator port 121.
[0029] According to some aspects, in practice this means that for a signal to be transmitted, a Tx signal, almost all parts of the Tx signal input at the second circulator port 122 are intended to pass via the fourth circulator port 124 and the antenna port 105 such that it can be radiated by the antenna device 160. However, the relatively small part of the Tx signal that is reflected at the fourth circulator port 124, and the antenna port 105, is circulated further to the third circulator port 123, where a main part of the reflected Tx signal is rejected due to the receiver filter 112. The remaining reflected Tx signal is circulated further to the first circulator port 121 where the remaining reflected Tx signal is terminated by means of the termination impedance 170. This means that a very small, probably negligible part, of an original Tx signal is circulated back to the second circulator port 122.
[0030] Correspondingly, according to some further aspects, in practice this also means that for a received signal, an Rx signal, almost all parts of the Rx signal received by the antenna device 160 passes to the receiver filter 112 via the antenna port 105, the fourth circulator port 124 and the third circulator port 123. However, the relatively small part of the Rx signal that is reflected at the third circulator port 123 is circulated further to the first circulator port 121 where the remaining reflected Tx signal is terminated by means of the termination impedance 170. This means that a very small, probably negligible part, of an original Rx signal is circulated further to any one of the second circulator port 122 and the fourth circulator port 124.
[0031] The microwave filter arrangement 100 has a topology using a four-port circulator 120 and a matching termination impedance 170 connected to the first circulator port 121, opposite the fourth circulator port 124 that is connected to the antenna port 105. This provides a wide band match, seen from the antenna port 105 both inside and outside passbands of the filters 110, 112.
[0032] The principal is that the return loss seen from the antenna port 105 always will be good for a wide frequency band. A traditional topology will only provide good matching within the bandwidths of the transmitter filter 110 and the receiver filter 112. Outside these bandwidths, the filters 110, 112 will supply a relatively poor matching that in practice even may present more or less a total reflection. As an example, for a waveguide structure, the four-port circulator 120 will easily provide a RL (return loss) of 20 dB over the full waveguide bandwidth. That means seen from the antenna port 105 there will be a RL of 20 dB as well.
[0033] The topology of the microwave filter arrangement 100 according to the present disclosure will enable good matching in the antenna port 105 and therefore minimize the ripple in power at both the transmitter port Tx and the receiver port Rx. As the ripple is reduced, the accuracy of output and input power detectors will be improved. Furthermore, the signal quality will improve as the distortion cause on the signal due to slopes will be reduced. The microwave filter arrangement 100 according to the present disclosure will make it easier to combine transmitter units and receiver units since the interference will be reduced between the transmitter port Tx and the receiver port Rx.
[0034] According to some aspects, isolators 150, 152 can be used. In a traditional topology, isolators are placed close to amplifiers in radio units, since there may be issues with self-oscillations when the amplifiers experience poor matching. Today this is often overcome with good simulations tools.
[0035] Thereto, amplifiers can for example be balanced with a Lange coupler that will provide good matching even without isolators. In this example, the microwave filter arrangement 100 comprises a first isolator device 150 connected between the transmitter port Tx1 and the circulator device 120, a second isolator device 152 connected between the receiver port Rx and the circulator device 120. The first isolator device 150 is adapted to enable signals to mainly pass only towards the circulator device 120, and the second isolator device 152 is adapted to enable signals to mainly pass only towards the receiver port Rx.
[0036] The isolators 150, 152 are well-known components, for a waveguide structure, an isolator will provide an enhanced return loss and a reduced insertion loss over the full waveguide bandwidth.
[0037] The topology for a microwave filter arrangement 100 according to the present disclosure is very suitable to use when combining several branches together for a multi carrier radio. The combing could be done with a directional coupler but also power dividers like Wilkinson power dividers could be used as well. As all branches will have a wide band match over the band the matching seen from the antenna will be good on all frequencies.
[0038] In the following, two and three branches are illustrated, but of course any number of branches can be used.
[0039] In
[0040] In
[0041] Generally, with reference to both
[0042] According to some aspects, each connecting element 172, 173 is a directional coupler.
[0043] With reference to
[0044] With reference to
[0045] The present disclosure is not limited to the examples discussed above, but may vary freely within the scope of the appended claims. The microwave filter arrangement 100 is generally constituted by an electrical filter arrangement 100 that can be applicable for any electrical application such as Radio Frequency (RF), microwave, and/or High Frequency signals. The microwave/electrical filter arrangement 100 can be realized in any suitable technology, or combination of technologies, such as for example waveguide technology, microstrip technology, coaxial technology and/or LTCC (Low Temperature Co-fired Ceramics) technology.