System and method for a radio frequency filter
US-10840887-B2 · Nov 17, 2020 · US
US11757482B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11757482-B2 |
| Application number | US-202016999534-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 21, 2020 |
| Priority date | Mar 15, 2018 |
| Publication date | Sep 12, 2023 |
| Grant date | Sep 12, 2023 |
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A frontend circuit includes a wide-band filter, a transmit filter, and switches. The wide-band filter passes both the receive frequency band of a first communication frequency band and that of a second communication frequency band which is close to or overlaps that of the first communication frequency band. The transmit filter passes the transmit frequency band of the first or second communication frequency band. The switches are capable of simultaneously bringing, into conduction, at least two of multiple filters including the wide-band filter and the transmit filter. In carrier aggregation using the receive frequency bands of the first and second communication frequency bands, the switches simultaneously bring the wide-band filter and the transmit filter into conduction. Thus, in carrier aggregation using signals of multiple communication frequencies simultaneously in communication, attenuation of signals due to signal leakage in two receive frequency bands, which are close to each other, is suppressed.
Opening claim text (preview).
What is claimed is: 1. A frontend circuit applied to carrier aggregation using a plurality of communication frequency bands including a first communication frequency band and a second communication frequency band, the frontend circuit comprising: a wide-band filter that passes a radio frequency signal of the first communication frequency band and a radio frequency signal of the second communication frequency band; and a first filter that passes the radio frequency signal of the first communication frequency band selectively, wherein the first communication frequency band is close to or overlaps the second communication frequency band, wherein, in the carrier aggregation, the radio frequency signal of the first communication frequency band and the radio frequency signal of the second communication frequency band pass through the wide-band filter, wherein the first communication frequency band or the second frequency communication band includes a receive frequency band that is lower than a transmit frequency band, and wherein, in a single use of the first communication frequency band, the radio frequency signal of the first communication frequency band passes through the first filter. 2. The frontend circuit according to claim 1 , wherein, in the single use of the first communication frequency band, the wide-band filter is isolated. 3. A frontend module comprising: the frontend circuit according to claim 2 ; and a low-noise amplifier circuit which performs low-noise amplification on a receive signal having passed through the wide-band filter. 4. A frontend module comprising: the frontend circuit according to claim 2 ; a transmit filter that passes a transmit frequency band of the first communication frequency band or a transmit frequency band of the second communication frequency band; and a power amplifier circuit that amplifies power of a transmit signal which is inputted to the transmit filter. 5. The frontend circuit according to claim 1 , wherein, in a single use of the first communication frequency band or the second communication frequency band, the radio frequency signal of the first communication frequency band or the radio frequency signal of the second communication frequency band passes through the wide-band filter. 6. The frontend circuit according to claim 5 , further comprising: a third filter that passes a radio frequency signal of a third communication frequency band, the third filter having a pass frequency band different from a pass frequency band of the wide-band filter, wherein, in the carrier aggregation using the first communication frequency band or the second communication frequency band, and the third communication frequency band, the radio frequency signal of the first communication frequency band or the radio frequency signal of the second communication frequency band passes through the wide-band filter. 7. A frontend module comprising: the frontend circuit according to claim 5 ; and a low-noise amplifier circuit which performs low-noise amplification on a receive signal having passed through the wide-band filter. 8. A frontend module comprising: the frontend circuit according to claim 5 ; a transmit filter that passes a transmit frequency band of the first communication frequency band or a transmit frequency band of the second communication frequency band; and a power amplifier circuit that amplifies power of a transmit signal which is inputted to the transmit filter. 9. The frontend circuit according to claim 1 , further comprising: a first filter that passes the radio frequency signal of the first communication frequency band; and a fourth filter that passes a radio frequency signal of a fourth communication frequency band, wherein the frontend circuit is applied to the carrier aggregation using the first communication frequency band and the fourth communication frequency band, wherein the fourth communication frequency band overlaps the second communication frequency band at least partially, and wherein, in the carrier aggregation using the first communication frequency band and the fourth communication frequency band, the wide-band filter is isolated, the radio frequency signal of the first communication frequency band passes through the first filter, and the radio frequency signal of the fourth communication frequency band passes through the fourth filter. 10. A frontend module comprising: the frontend circuit according to claim 9 ; and a low-noise amplifier circuit which performs low-noise amplification on a receive signal having passed through the wide-band filter. 11. The frontend circuit according to claim 1 , further comprising: a first filter that passes the radio frequency signal of the first communication frequency band; and a fourth filter that passes a radio frequency signal of a fourth communication frequency band, wherein the frontend circuit is applied to the carrier aggregation using the first communication frequency band and the fourth communication frequency band, wherein there is no overlapping range between the fourth communication frequency band and the first communication frequency band, and wherein, in the carrier aggregation using the first communication frequency band and the fourth communication frequency band, the wide-band filter is isolated, the radio frequency signal of the first communication frequency band passes through the first filter, and the radio frequency signal of the fourth communication frequency band passes through the fourth filter. 12. The frontend circuit according to claim 1 , wherein the plurality of communication frequency bands includes a third communication frequency band which overlaps the second communication frequency band, and wherein the wide-band filter is a variable bandpass filter having a passband width, the passband width being switched in accordance with a control signal between a first case and a second case, the first case being the carrier aggregation using the first communication frequency band and the second communication frequency band, and the second case being the carrier aggregation using the first communication frequency band and the third communication frequency band. 13. The frontend circuit according to claim 1 , further comprising: a multiplexer that includes an input port for a transmit signal in the first communication frequency band, an input port for a transmit signal in the second communication frequency band, an output port for a receive signal in the first communication frequency band and the second communication frequency band, and a common input/output port. 14. A frontend module comprising: the frontend circuit according to claim 1 ; and a low-noise amplifier circuit which performs low-noise amplification on a receive signal having passed through the wide-band filter. 15. The frontend module according to claim 14 , further comprising: a distribution circuit that distributes a receive signal or an output signal, the receive signal having passed through the wide-band filter, and the output signal being outputted from the low-noise amplifier circuit. 16. A communication apparatus comprising: the frontend module according to claim 14 ; and a communication circuit that is connected to the frontend module. 17. A communication apparatus comprising: the frontend module according to claim 15 ; and a communication circuit that is connected to the frontend module. 18. A frontend module comprising: the frontend circuit according to claim 1 ; a transmit filter that passes a transmi
using two or more spaced independent antennas · CPC title
with semiconductor devices only · CPC title
using diplexing or multiplexing filters for selecting the desired band · CPC title
Input circuits, e.g. for coupling to an antenna or a transmission line (coupling networks between antennas or lines and receivers independent of the nature of the receiver H03H) · CPC title
the amplifier being a low noise amplifier [LNA] · CPC title
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