RF MODULE AND METHOD FOR TESTING AN RF MODULE

20190280660 ยท 2019-09-12

    Inventors

    Cpc classification

    International classification

    Abstract

    An RF module with improved testing capabilities is provided. The module has a first switch with signal outputs and an additional auxiliary connection connected to an auxiliary terminal. The auxiliary terminal can be connected to an RF filter while a power amplifier is decoupled from the filter.

    Claims

    1. An RF module (RFM), comprising a signal input (IN), a signal output (OUT) and an auxiliary terminal (AUT), a power amplifier (PA) electrically connected between the signal input (IN) and the signal output (OUT), a first switch (SW1) electrically connected between the power amplifier (PA) and the signal output (OUT), an RF filter section (FS) electrically connected between the first switch (SW1) and the signal output (OUT), wherein the RF filter section (FS) has a first RF filter (Fl) and a second RF filter (F2) electrically connected in parallel to the first RF filter (Fl), the first switch (SW1) has a signal input (SI), two or more signal outputs (SO1, S02) and an auxiliary connection (AUC), a first signal output (SO1) is coupled to the first RF filter (Fl), a second signal output (S02) is coupled to the second RF filter (F2), the auxiliary connection (AUC) is coupled to the auxiliary terminal (AUT), the first switch (SW1) has an analysis mode where the auxiliary connection (AUC) is connected to one of the first switch's signal outputs (SO1, S02).

    2. The RF module of the previous claim, where the RF filters (F1, F2) are Tx filters of duplexers (DU), each duplexer (DU) also having an RX filter (F1, F2).

    3. The RF module of one of the previous claims, where the first switch (SW1) is a Tx switch.

    4. The RF module of one of the previous claims, further comprising one or more matching networks (MN), each matching network (MN) being electrically connected between a signal output (S01, S02) of the first switch (SW1) and the corresponding RF filter (F1, F2).

    5. The RF module of one of the previous claims, further comprising a second switch (SW2) electrically coupled between the first switch (SW1) and the signal output (OUT).

    6. The RF module of the previous claim, where the second switch (SW2) is an antenna switch and has an antenna terminal (ANT) and an auxiliary terminal (AUT2).

    7. The RF module of one of the previous claims, where the power amplifier (PA) is a multi-band amplifier.

    8. The RF module of one of the previous claims, being a PAMiD.

    9. The RF module of one of the previous claims, further comprising a switch register, where the analysis mode can be activated by one or more switch register settings.

    10. A Method for testing an RF module (RFM) comprising a power amplifier (PA), a first switch (SW1) and a filter section (FS), the method comprising the steps switching the first switch (SW1) in a analysis mode where the switch (SW1) connects an auxiliary terminal (AUT) to the filter section (FS) and decouples the filter section (FS) from the power amplifier (PA), testing the filter section without influence from the power amplifier (PA) via the auxiliary terminal (AUT).

    11. The method of the previous claim, where the analysis mode is activated by an appropriate switch register setting.

    Description

    [0030] Central aspects of the present RF module, basic working principles and details of preferred embodiments are shown in the accompanying figures.

    [0031] FIG. 1 shows basic circuit elements of the module where the switch is in a mode of normal operation.

    [0032] FIG. 2 shows the module of FIG. 1 in one state of the analysis mode.

    [0033] FIG. 3 shows a module comprising a plurality of RF filters.

    [0034] FIG. 4 shows the use of matching networks.

    [0035] FIG. 5 shows the use of a second switch.

    [0036] FIG. 6 shows the use of duplexers.

    [0037] FIG. 7 shows the use of matching networks, duplexers and the second switch.

    [0038] FIG. 8 shows one embodiment of an RF module with a high integration density during normal operation.

    [0039] FIG. 9 shows the module of FIG. 8 where the first switch is in one possible state of the analysis mode.

    [0040] FIG. 1 shows basic circuit elements of the RF module RFM. The module has a signal input IN and a signal output OUT. A power amplifier PA is electrically connected between the signal input IN and the output OUT. A first switch SW1 is electrically connected between the power amplifier PA and the signal output OUT. A first filter Fl and a second filter F2 which are elements of the filter section FS are electrically connected between the first switch SW1 and the signal output OUT. Within the filter section FS, the two filters are electrically connected in parallel. The first switch SW1 has a signal input SI and a plurality, e.g. two, of signal outputs S01, S02. Additionally, the first switch SW1 has an auxiliary connection AUC. The auxiliary connection AUC is connected to an auxiliary terminal AUT. During normal operation, the first switch SW1 is electrically connected at its input side to the power amplifier PA. At its output side, at least one of the filters is connected to establish a signal connection from the signal input IN to the signal output OUT.

    [0041] In such a switching configuration, the filter in use is electrically coupled to the power amplifier and its parameters and properties cannot be determined independently. The presence of the power amplifier PA with its usually very low impedance has influence on how the filters present themselves to their circuit environment.

    [0042] In contrast, FIG. 2 shows the switching configuration where the first switch SW1 establishes a connection to the auxiliary terminal AUT via its auxiliary connection AUC. Now, as the first switch SW1 is in an analysis mode, a conducting connection between the auxiliary terminal AUT and the filters of the filter section FS exist independent from the presence of the power amplifier. The first switch SW1 is able to either connect the first filter or the second filter F2 to the auxiliary terminal AUT orwhen more filters are presenteach segment of the signal path individually to the auxiliary terminal to individually determine the performance of the filter section FS without being influenced by the power amplifier PA.

    [0043] It is possible that the module has further electrical connections to transmit control signals to the first switch SW1 to either enter or leave the analysis mode. Within the analysis mode, it is possible to choose which of the signal outputs of the first switch SW1 should be connected to the auxiliary terminal AUT.

    [0044] FIG. 3 shows the first switch SW1 being in the analysis mode, i.e. electrically connecting at least one of the signal outputs of the first switch SW1 to the auxiliary connection AUC. The number of filters and the number of signal outputs of the first switch SW1 is not limited to two. The respective number can be 3, 4, 5, 6, 7, 8, and higher.

    [0045] FIG. 4 shows the possibility of electrically connecting a matching network MN between a signal output of the first switch SW1 and one of the filters, e.g. the first filter F1 or the second filter F2. It is also possible that each of the filters has its own dedicated matching network between the filter itself and the corresponding signal output of the first switch SW1.

    [0046] FIG. 5 shows circuit elements of an RF module having a second switch SW2. The second switch SW2 is electrically connected between the filters and the signal output OUT. Via the second switch SW2, it is possible to elect one of the segments of the signal path to be exclusively connected to the signal output OUT. The second switch SW2 can be an antenna switch and the signal output OUT can be an antenna port.

    [0047] FIG. 6 shows circuit elements of an RF module where the filters are filters of a corresponding duplexer DU. A duplexer has the previously mentioned filter F1, F2 as its first filter and an additional filter F1, F2 as a second filter. Each duplexer DU is connected between the first switch SW1 and the output OUT. Additionally, each duplexer DU is electrically connected to another port which may be a reception port RX. By way of example, FIG. 6 shows the possibility of arranging two duplexers DU in the module. Each of the duplexers' filters connected to the first switch SW1 is a TX filter and each of the respective other filters is a reception filter electrically connected to the corresponding reception port RX1, RX2. Then, the signal input IN is a transmission port TX and the signal output OUT is an antenna port ANT.

    [0048] As FIG. 7 shows, each of the duplexers can additionally be provided with a matching network between the corresponding signal output of the first switch SW1 and the transmission filter of the duplexer.

    [0049] FIG. 8 shows circuit elements of an embodiment with one power amplifier, a first switch SW1, a second switch SW2 and four duplexers, each having a matching network. Each of the duplexers can be provided to allow transceiving(transmitting and receiving) functionality in one or more frequency bands. Accordingly, the power amplifier can be a quad-band power amplifier or a power amplifier working in still more frequency bands. The first switch has four corresponding signal out- puts, a signal input SI and the auxiliary connection AUC.

    [0050] The second switch SW2 between the duplexers and the signal output OUT has four signal inputs (one for each duplexer) and an additional auxiliary connection that is connected to an additional, second auxiliary terminal AUT2.

    [0051] The first switch SW1 is in a mode of normal operation, i.e. the first switch SW1 connects the signal input SI connected to the power amplifier to one of the segments of the signal path.

    [0052] FIG. 9 shows the RF module of FIG. 9. However, the first switch SW1 is in the analysis mode connecting one of the segments of the signal path via the auxiliary connection AUC to the auxiliary terminal AUT.

    [0053] Thus, with a single auxiliary terminal AUT, each of the plurality of filters or duplexers can be tested individually, i.e. without interaction with another duplexer and without interaction with the power amplifier.

    [0054] The RF module and the method for testing an RF module are not limited to the described details. Modules can comprise further signal paths and further circuit elements in signal paths, e.g. additional power amplifiers and additional antenna ports.

    [0055] Methods of testing RF modules can comprise further steps, e.g. for choosing individual segments of the signal path or for setting the second switch in a preferred switching state.

    LIST OF REFERENCE SIGNS

    [0056] ANT: antenna port [0057] AUC: auxiliary connection [0058] AUT: auxiliary terminal [0059] AUT2: second auxiliary terminal [0060] F1: first filter [0061] F1I=first reception filter [0062] F2: second filter [0063] F2I=second reception filter [0064] F3: third filter [0065] FS: filter segment [0066] IN: signal input [0067] MN: matching network [0068] OUT: signal output [0069] PA: power amplifier [0070] RFM: RF module [0071] RX1: first reception terminal [0072] RX2: second reception terminal [0073] SI: signal input [0074] S01: first signal output [0075] S02: second signal output [0076] SW1: first switch [0077] SW2: second switch [0078] TX: transmission port