IMPEDANCE MATCHING CIRCUIT
20170040677 ยท 2017-02-09
Assignee
Inventors
Cpc classification
H01Q1/36
ELECTRICITY
H03F1/56
ELECTRICITY
H03H7/40
ELECTRICITY
H03H11/30
ELECTRICITY
International classification
H01Q1/36
ELECTRICITY
Abstract
A circuit (4) for establishing a desired impedance value for a radio antenna (5) comprising a transistor (3) having an input (8) and an output terminal (6), and a printed radio frequency transformer comprising a first (1) and a second inductor (2), both inductors (1, 2) having a coupling factor value, and having a first and a second terminal (11, 12; 21, 22). The first terminal (11) of the first inductor (1) is adapted for connecting a radio antenna (5). The input terminal (8) of the transistor (3) is connected to the second terminal (12) of the first inductor (1), and the output terminal (6) of the transistor (3) is connected to the first terminal (21) of the second inductor (2), so that the desired impedance value (Z.sub.2) at the second terminal (22) of the second inductor (2) is determined by the inductance value of the second inductor (2).
Claims
1. Circuit (4) for establishing a desired impedance value for a radio antenna (5), comprising: a transistor (3) having an input (8) and an output terminal (6), and a printed radio frequency transformer comprising a first (1) and a second printed inductors (2), both inductors (1, 2) having a coupling factor value, each one of the inductors (1, 2) having a first and a second terminal (11, 12; 21, 22), the first terminal (11) of the first inductor (1) being adapted for connecting a radio antenna (5) for receiving an input signal, and the second terminal (22) of the second inductor (2) being adapted for providing an output signal, where the input terminal (8) of the transistor (3) is connected to the second terminal (12) of the first inductor (1), and the output terminal (6) of the transistor (3) is connected to the first terminal (21) of the second inductor (2), and where the impedance value (Z.sub.1) at the first terminal (11) of the first inductor (1) is determined by the coupling factor value, and the desired impedance value (Z.sub.2) at the second terminal (22) of the second inductor (2) is determined by the inductance value of the second inductor (2).
2. Circuit (4) for establishing a desired impedance value for a radio antenna (5), according to claim 1, where the transistor (3) comprises a collector (6), a base (7), and an emitter (8), and where the input terminal of the transistor (3) is the emitter (8), and the output terminal of the transistor (3) is the collector (6).
3. Circuit (4) for establishing a desired impedance value for a radio antenna (5), according to any of the preceding claims, further comprising an RC network (9) connected in parallel with the second inductor (2) to establish a frequency of operation and an output impedance value for the circuit (4).
4. Circuit (4) for establishing a desired impedance value for a radio antenna (5), according to claim 3, where the RC network (9) comprises a capacitor (10) suitable for establishing a desired frequency of operation for the circuit (4).
5. Circuit (4) for establishing a desired impedance value for a radio antenna (5), according to any of claims 3-4, where the RC network (9) comprises a variable resistor (13) suitable for selecting the impedance value (Z.sub.2) at the second terminal (22) of the second inductor (2).
6. Circuit (4) for establishing a desired impedance value for a radio antenna (5), according to any of the preceding claims, where the second inductor (2) is concentrically wound around a central point.
7. Circuit (4) for establishing a desired impedance value for a radio antenna (5), according to claim 6, where the first inductor (1) at least partially surrounds the second inductor (2).
8. Circuit (4) for establishing a desired impedance value for a radio antenna (5), according to any of claims 2 to 7, where the transistor (3) is connected in open mode with the base (7) grounded.
9. Circuit (4) for establishing a desired impedance value for a radio antenna (5), according to any of the preceding claims, where the printed radio frequency transformer is enclosed in a ground frame (14) to isolate radiation from the inductors (1, 2).
10. Circuit (4) for establishing a desired impedance value for a radio antenna (5), according to any of the preceding claims, where the first inductor (1) has an inductance value ranging from 10 nH to 20 nH.
11. Circuit (4) for establishing a desired impedance value for a radio antenna (5), according to any of the preceding claims, where the coupling between inductors (1, 2) is established by the distance between said inductors (1, 2).
12. An antenna system (20) for a vehicle, comprising: a miniaturized radio antenna (5), a circuit (4) according to any of the preceding claims, where the first terminal (11) of the first inductor (1) of the circuit (4) is connected to the radio antenna (5) for establishing an output desired impedance value, and a cover (15) for enclosing the miniaturized radio antenna (5) and the circuit (4); where the antenna system (20) is adapted to be attached to the vehicle.
13. Antenna system (20) for a vehicle, according to claim 12, further comprising at least one of an AM/FM antenna, a digital audio broadcasting (DAB) antenna (18), a MIMO antenna (19), a satellite digital audio radio services (SDARS) antenna (23) and a global navigation satellite system (GNSS) antenna (17).
14. Antenna system (20) for a vehicle, according to claim 13, where the DAB antenna (18) is configured as a spiral antenna having a horizontal near field pattern.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] For a better comprehension of the invention, the following drawings are provided for illustrative and non-limiting purposes, wherein:
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PREFERRED EMBODIMENTS OF THE INVENTION
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[0037] According to the invention, the circuit 4 comprises a printed radio frequency transformer having a first 1 and a second inductor 2, and a transistor 3 connected to the inductors 1, 2. Each one of the inductors 1, 2 has a first and a second terminal 11, 12, 21, 22. As shown, the first terminal 11 of the first inductor 1 is connected to the radio antenna 5 for receiving an input signal. The second terminal 22 of the second inductor 2 is adapted for providing an output signal. Both inductors 1, 2 have a coupling factor value. The transistor 3 has an input 8 and an output terminal 6. The input terminal 8 is connected to the second terminal 12 of the first inductor 1, and the output terminal 6 is connected to the first terminal 21 of the second inductor 2. According to this, the impedance value (Z.sub.1) at the first terminal 11 of the first inductor 1 is determined by the coupling factor value, and the desired impedance value (Z.sub.2) at the second terminal 22 of the second inductor 2 is determined by the inductance value of the second inductor 2.
[0038] As schematically shown in both
[0039] The coupling of the inductors 1, 2 generates a feedback signal from the second inductor 2 towards the first inductor 1, where said feedback signal is a part of the amplified signal that enters the first terminal 21 of the second inductor 2 and is conducted through said second inductor 2. The remaining part of said amplified signal corresponds to the circuit output signal.
[0040] This way, the mutual coupling between the inductors 1, 2 determines the power that returns from the second inductor 2 towards the first inductor 1, and in consequence, the input impedance of the circuit.
[0041] Considering the circuit 4 shown in
[0042] Thus, the input impedance of the circuit 4 is defined as:
[0043] As a result, according to the above expression, the input impedance of the circuit 4 can be modified as a function of the mutual coupling between the inductors, which corresponds to the S.sub.21XTR parameter.
[0044] A desired impedance value for a radio antenna can be established at the output of the circuit once the input impedance of the circuit 4 matches the output impedance of the miniaturized antenna.
[0045] Finally, the impedance value at the output of the circuit 4, i.e. the desired output impedance value (Z.sub.2) of the circuit 4 of the invention, is variable depending on the inductance value of the second inductor 2.
[0046] According to a preferred embodiment, the input terminal of the transistor 3 corresponds to the emitter 8, and the output terminal of the transistor 3 corresponds to the collector 6.
[0047] According to another embodiment, the circuit 4 further comprises an RC network 9 connected in parallel with the second inductor 2 to establish a frequency of operation and an output impedance value for the circuit 4.
[0048] Preferably, the RC network 9 comprises a capacitor 10 that is suitable for establishing a desired frequency of operation for the impedance selecting circuit 4.
[0049] In addition, according to a preferred embodiment, the RC network 9 comprises a variable resistor 13 suitable for selecting the impedance value (Z.sub.2) at the second terminal 22 of the second inductor 2.
[0050] Preferably, the transistor 3 is connected in open mode with the base 7 grounded. In this mode, the circuit 4 provides a better response against noise and, then, a better intermodulation response is achieved. With this configuration, the invention obtains a better compromise between noise and linear amplifier's functionality. Usually, on RF amplifiers there is a trade-off between gain, noise and linearity, and with the base grounded, the invention achieves a better compromise between the mentioned features.
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[0052] Also, according to another preferred embodiment, the first inductor 1 partially surrounds the second inductor 2, where said first inductor 1 preferably consists on a half of an arch that surrounds the second inductor 2.
[0053] According to another preferred embodiment, the printed radio frequency transformer is enclosed in a ground frame 14 to isolate radiation from the inductors 1, 2. In this way, the printed radio frequency transformer radiation does not expand to other components, avoiding interfering in other components operation.
[0054] Preferably, the first inductor 1 has an inductance value ranging from 10 nH to 20 nH. Preferably, the first inductor 1 does not have a higher inductance value because it could generate an RF input choke, which is not a desirable condition.
[0055] According to another aspect, the present invention further comprises an antenna system 20 for a vehicle, which comprises a miniaturized radio antenna 5, and the circuit 4, where the first terminal 11 of the first inductor 1 of the circuit 4 is connected to the radio antenna 5 for establishing an output desired impedance value (Z.sub.2) at the output of the circuit 4.
[0056] According to another preferred embodiment, the miniaturized radio antenna 5 of the antenna system 20 is an AM/FM miniaturized radio antenna. Further preferred, the antenna system 20 further comprises a digital audio broadcasting (DAB) antenna 18. Preferentially, the DAB antenna 18 is configured as a spiral antenna having a horizontal near field pattern.
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[0058] As shown, a capacitor 32 is positioned over the miniaturized radio antenna 5 to simulate the presence of an extended length antenna. Further, the shark fin antenna system 20 comprises a cover 15 for enclosing all the mentioned components.
[0059] The shark fin antenna system 20 is adapted to be attached to the vehicle, generally to the vehicle roof. For example, the common dielectric substrate 21 may be detachably attached to the vehicle by means of screws (not shown) and the cover 15 may be clipped or glued to the vehicle. Another option is including a common surface to which the components are attached, for example by means of screws, and to which the cover 15 is clipped or glued to such that the common surface is then fixed to the vehicle by any known means.
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