The input part 200 receives electromagnetic signals, and the output part 202 transmits the electromagnetic signals. The input part 200 and the output part 202 are aligned. In this embodiment, the input part 200 and the output part 202 are used for impedance matching of the filter 10 with an impedance value of approximately 50 ohms.
The first portion 22 with high impedance includes a first transmission line 220, a second transmission line 222, and a third transmission line 224. The second transmission line 222 is electronically connected between the first transmission line 220 and the third transmission line 224. In the exemplary embodiment, the first transmission line 220 and the third transmission line 224 are perpendicular to the second transmission line 222; that is, the first transmission line 220 is parallel to the third transmission line 224. The input part 200 is electronically connected to the first transmission line 220, and the output part 202 is electronically connected to the third transmission line 224.
The second portion 24 with low impedance includes a first coupling part 240 and a second coupling part 242. The first coupling part 240 and the second coupling part 242 are respectively electronically connected to two ends of the first portion 22; that is, the first coupling part 240 is electronically connected to one end of the first transmission line 220, and the second coupling part 242 is electronically connected to one end of the third transmission line 224. The first coupling part 240 is parallel to the second coupling part 242. Hereinafter, coupled will refer to electromagnetic coupling as from mutual inductance or stray capacitance known to those skilled in the art and familiar with filters. There is a clearance configured between the first coupling part 240 and the second coupling part 242, allowing the first coupling part 240 to be coupled with the second coupling part 242.
The third portion 26 partially surrounds the second portion 24, and there is a clearance configured between the second portion 24 and the third portion 26. In the exemplary embodiment, the third portion 26 includes a first coupling line 260, a second coupling line 262, and a third coupling line 264, and the second coupling line 262 is electronically connected between the first coupling line 260 and the third coupling line 264. The first coupling line 260 and the third coupling line 264 are perpendicular to the second coupling line 262; that is, the first coupling line 260 is parallel to the third coupling line 264.
The first coupling line 260 is configured adjacent to but spaced from one side of the first coupling part 240, and is coupled to the first coupling part 240. The second coupling line 262 is configured adjacent to but spaced from another side of the first coupling part 240 and one side of the second coupling part 242, and is coupled to the first coupling part 240 and the second coupling part 242. The third coupling line 264 is configured adjacent to but spaced from another side of the second coupling part 242, and is coupled to the second coupling part 242. Referring also to
In the exemplary embodiment, the first coupling part 240 and the second coupling part 242 are substantially rectangular shaped, and the first transmission line 220, the second transmission line 222, the third transmission line 224, the first coupling line 260, the second coupling line 262, and the third coupling line 264 are all substantially rectangular shaped strips. In other exemplary embodiments, the third portion 26 can be changed to other shapes, but must satisfy that the third portion 26 can be coupled to the second portion 24.
In the exemplary embodiment, a length and a width of the first transmission line 220 are respectively about 1.4 millimeter (mm) and 0.25 mm. A length and a width of the second transmission line 222 are respectively about 1.9 mm and 0.25 mm. A length and a width of the third transmission line 224 are respectively about 1.4 mm and 0.25 mm. A length and a width of the first coupling part 240 are respectively about 1.4 mm and 0.89 mm. A length and a width of the second coupling part 242 are respectively about 1.4 mm and 0.89 mm. A length and a width of the first coupling line 260 are respectively about 1.02 mm and 0.125 mm. A length and a width of the second coupling line 262 are respectively about 2.41 mm and 0.125 mm. A length and a width of the third coupling line 264 are respectively about 1.02 mm and 0.125 mm. The clearance between the first coupling part 240 and the second coupling part 242 and the clearance between the second portion 24 and the third portion 26 are both about 0.125 mm.
Transmission coefficient (dB)=10*log[|S21|]=10*Log[(Output Power)/(Input Power)], when port 2 is terminated in matched loads
When electromagnetic signals travel through the filter 20, a part of the input power of the electromagnetic signals is returned to a source of the electromagnetic signals. The part of the input power returned to the source of the electromagnetic signals is called return power. The curve |S11| represents the reflection coefficient indicating a relationship between the input power and the return power of the electromagnetic signals traveling through the filter 20, and the reflection coefficient is calculated by the following equation:
Reflection coefficient (dB)=10*log[|S11|]=10*Log[(Return Power)/(Input Power)], when port 2 is terminated in matched loads
For a filter, when the output power of the electromagnetic signals in a pass band frequency range is close to the input power of the electromagnetic signals, and the return power of the electromagnetic signals is small, it means that a distortion of the electromagnetic signals is small and the performance of the filter is good. That is, the smaller the absolute value of the transmission coefficient of the electromagnetic signals is, and the bigger the absolute value of the reflection coefficient of the electromagnetic signals is, the better the performance of the filter is.
As shown in
In the exemplary embodiment, the filter 20 uses the third portion 26 surrounding and coupled to the second portion 24 to increase total coupling, and an extra impedance converter can be eliminated in the present invention.
While exemplary embodiments have been described above, it should be understood that they have been presented by way of example only and not by way of limitation. Thus the breadth and scope of the present invention should not be limited by the above-described exemplary embodiments, but should be defined only in accordance with the following claims and their equivalents.
Number | Date | Country | Kind |
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200610062731.4 | Sep 2006 | CN | national |