This application claims the priority benefit of Taiwan application serial no. 98107139, filed on Mar. 5, 2009. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
1. Technical Field
The disclosure relates to a circuit for switching a signal path, antenna module and radio over fiber system.
2. Background
A communication transmission of a wireless access network is basically categorized to be in a time division duplex (TDD) mode and a frequency division duplex (FDD) mode. Among the two modes, the TDD mode is more common in the field of the communication transmission.
In a normal situation, the switch 102 conducts the first end of the switch 102 to the second end of the switch 102. Thus, when the antenna 120 receives the upload data signal UL_Data, the upload data signal UL_Data may then be transmitted to the LNA 104 through a conducted path. After the upload data signal UL_Data passes through the LNA 104, the upload data signal UL_Data may be transmitted to the control circuit 108 and then output by the control circuit 108. On the contrary, when the control circuit 108 receives the download data signal DL_Data, the control circuit 108 may also transmit the download data signal DL_Data to the power amplifier 106 and transmit the download data signal DL_Data to the switch 102 through the power amplifier 106. At this time, due to the fact that the switch 102 may conduct the first end of the switch 102 to the third end of the switch 102, the download data signal DL_Data may be transmitted to the antenna 120 through the conducted path and then transmitted to the user through the antenna 120. When the control circuit 108 detects that the download data signal DL_Data is transmitted completely, the control circuit 108 may control the switch 120 to switch the first end of the switch 120 back to be conductive to the second end of the switch 120.
A signal isolation capability of the conventional switch 102 is between around 40-50 decibels (dB) for preventing the download data signal DL_Data with high power from passing through the switch 102 and then damaging the LNA 104 (the signal isolation capability of normal LNAs is between around 25-30 dB). However, when the download data signal DL_Data has power greater than 30 dBm, signals may possibly pass through the conventional switch 102 and damage the LNA 104. Therefore, a circuit for switching a signal path in the wireless communication system becomes an important issue to be researched and discussed.
Accordingly, the present application provides a circuit for switching a signal path in a time division multiplexing system.
Consistent with the invention, there is provided a circuit for switching a signal path adapted for a time division multiplexing system is provided. The circuit for switching the signal path includes a path selection element, a detector, a switch, and a control circuit. A first end and a third end of the path selection element are coupled to the detector and the switch, respectively. When a status of the switch is conductive, after an upload data signal is input from a second end of the path selection element, the upload data signal may be transmitted to the switch from the third end and output from the switch. When a download data signal is transmitted to the detector, the detector may transmit the download data signal to a first end of the path selection element and enable a detection signal. At this time, the control circuit may control the switch to be in an open-circuit status, and the download data signal is output from the second end of the path selection element. Until the download data signal is transmitted completely, the detector disables the detection signal so as to control the status of the switch to be conductive.
Also consistent with the invention, there is provided an exemplary antenna module. The antenna module may be adapted to a radio over fiber system. The antenna module includes a transceiver antenna, a path selection element, a detector, a switch, and a control circuit. The transceiver antenna may be coupled to a second end of the path selection element, and a first end and a third end of the path selection element may be coupled to the detector and the switch, respectively. When a status of the switch is conductive, after the transceiver antenna receives an upload data signal, the upload data signal may be input from a second end of the path selection element, transmitted to the switch from the third end, and output from the switch. When a download data signal is transmitted to the detector, the detector may transmit the download data signal to the first end of the path selection element and transmit the download data signal to the transceiver antenna from the second end. Besides, the detector may enable a detection signal. At this time, the control circuit may control the switch to be in an open-circuit status, and the download data signal is output from the second end of the path selection element. Until the download data signal is transmitted completely, the detector disables the detection signal so as to control the status of the switch back to be conductive.
Further, and consistent with the invention, there is provided an exemplary radio over fiber system. The radio over fiber system includes a switching center, a head-end cell unit, and a remote antenna end cell unit. The head-end cell unit may be coupled to the switching center and the remote antenna end cell unit, respectively. The remote antenna end cell unit may transmit an upload data signal to the switching center through the head-end cell unit or receive a download data signal from the switching center through the head-end cell unit. The remote antenna end cell includes a transceiver antenna, a path selection element, a detector, a switch, and a control circuit. The transceiver antenna may be coupled to a second end of the path selection element, and a first end and a third end of the path selection element may be coupled to the detector and the switch, respectively. When a status of the switch is conductive, after the transceiver antenna receives the upload data signal, the upload data signal may be input from a second end of the path selection element, transmitted to the switch from the third end, and output from the switch. When the download data signal is transmitted to the detector, the detector may transmit the download data signal to the first end of the path selection element and transmit the download data signal to the transceiver antenna from the second end. Besides, the detector may enable a detection signal. At this time, the control circuit may control the switch to be in an open-circuit status, and the download data signal is output from the second end of the path selection element. Until the download data signal is transmitted completely, the detector disables the detection signal so as to control the status of the switch back to be conductive.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the invention, as claimed.
The accompanying drawings are included to provide a further understanding of the invention and incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain the principles of the invention.
Reference will now be made in detail to an exemplary embodiment consistent with the present embodiments of the invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
In exemplary embodiments consistent with the present invention, there is provided a circuit for switching a signal path for executing a time division multiplexing operation is provided.
In exemplary embodiments consistent with the present invention, there is provided an antenna module adapted for a radio over fiber system and also for protecting an amplifier from being damaged by a data signal with excessively high power is also provided.
In exemplary embodiments consistent with the present invention, there is provided a radio over fiber system having a high signal isolation capability for processing the data signal with high power is also provided.
In exemplary embodiments consistent with the present invention, there is provided a path selection element and a switch is allocated in order to ensure a multi-level protection. Thus, a download data signal with high power is efficiently isolated to prevent the amplifier from being damaged.
On the other hand, each of the remote antenna end cell unit 206, the remote antenna end cell unit 208, and the remote antenna end cell unit 210, for example, remote antenna unit (RAU) is coupled to an antenna end base station 216, an antenna end base station 218, and an antenna end base station 220 respectively and correspondingly. In the present embodiment, each of the antenna end base station 216, the antenna end base station 218, and the antenna end base station 220 may be coupled to the head-end base station 214 located in the head-end cell unit 204 through an optical fiber 222.
Each of the remote antenna end cell unit 206, the remote antenna end cell unit 208, and the remote antenna end cell unit 210 has its signal reception coverage area, and thus together forms a cellular structure. When a user utilizes wireless communication equipment, for example, a mobile phone, and wants to upload an upload data signal, the upload data signal may be processed by the remote antenna end cell unit whose signal reception area covers a current location of the user. For example, when the user is located within a communication area covered by the remote antenna end cell unit 206, the antenna end base station 216 receives the upload data signal, converts the upload data signal to an optical signal, and further transmits the converted upload data signal in an optical form to the head-end base station 214 through the optical fiber 222. Accordingly, the head-end base station 214 may transmit the upload data signal of the user to the switching center 202 through the transmission interface 212.
On the other hand, a download data signal can be transmitted to the user through a transmission path opposite to the above-mentioned transmission path, and thus detailed descriptions will not be again provided herein. In some embodiments consistent with the invention, the switching center 212 may also be connected with the Internet. Thus, the user can be connected with the Internet through the ROF system 300 at any time and at any location.
The TDD system 304 includes a signal path switching circuit 312, an LNA 316, a power amplifier 318, an electrical-to-optical converter 320, and an optical-to-electrical converter 322. The signal path switching circuit 312 can be coupled to the transceiver antenna 302, an input end of the LNA 316, and an output end of the power amplifier 318, respectively. Besides, an output end of the LNA 316 may be coupled to the base station 306 through the electrical-to-optical converter 320, and the base station 306 may be coupled to an input end of the power amplifier 318 through the optical-to-electrical converter 322. In the present embodiment, the electrical-to-optical converter 320 and the optical-to-electrical converter 322 may be coupled to the base station 306 through an optical fiber 324 and an optical fiber 326, respectively.
Furthermore, a detection input end B 1 of the detector 404 may be coupled to, for example, the output end of the power amplifier 318 illustrated in
Referring to both
It can be known from the above that when an upload data signal UL_Data is transmitted to the transceiver antenna 302 through a wireless transmission path, the upload data signal UL_Data is further transmitted to the TDD system 304. At this time, the upload data signal UL_Data may be input into the path selection element 402 from the second end A2 and further transmitted to the switch 408 through the third end A3. In normal situations, the switch 408 is in a conductive status. Thus, the upload data signal UL_Data may be transmitted to the input end of the LNA 316 through the switch 408. [0031] After the upload data signal UL_Data is transmitted to the LNA 316, the upload data signal UL_Data is amplified and then further transmitted to the electrical-to-optical converter 320 from the output end of the LNA 316. At this time, the electrical-to-optical converter 320 may convert the upload data signal UL_Data in an electrical from to be in an optical from, and the converted upload data signal UL_Data is further transmitted to the base station 306 through the optical fiber 324.
Furthermore, if the base station 306 receives a download data signal DL_Data, the received download data signal DL_Data is transmitted to the optical-to-electrical converter 322 through the optical fiber 326. Accordingly, the optical-to-electrical converter 322 may convert the download data signal DL_Data in an optical form to be in an electrical form, and may further transmit the download data signal DL_Data to the detection input end B1 of the detector 404 from the output end.
When the detector 404 detects that the detection input end B1 transmits the download data signal DL_Data to the delay optical fiber 410, the download data signal DL_Data is delayed for a preset time and then transmitted to the first end A1 of the path selection element 402. Accordingly, the download data signal DL_Data may be transmitted to the transceiver antenna 302 from the second end A2 of the path selection element 402 in order to be transmitted to the user through the above-mentioned wireless transmission path. On the other hand, when the detector 404 receives the download data signal DL_Data, the detector 404 may also enable a detection signal DS. At this time, the control circuit 406 may switch the status of the switch 408 to an open-circuit status in accordance with a status of the detection signal DS, such that the switch 408 can isolate the signal transmitted from the third end A3 of the path selection element 402.
In the present embodiment, in order to ensure the download data signal DL_Data against passing through the path selection element 402 and the switch 408 and further damaging the LNA 316, the delay time of the delay optical fiber 410 discussed above is required to be greater than a time required by the detector 404 for detecting the download data signal DL_Data plus a time required by the control circuit 406 for switching the switch 408 to be in the open-circuit status.
Next, after the detector 404 confirms that the download data signal DL_Data is transmitted completely, the detector 404 disables the detection signal DS. At this time, the control circuit 406 switches the status of the switch 408 back to the conductive status in accordance with the status of the detection signal DS. Similarly, in order to ensure that there lacks any residual portion of the download data signal DL_Data passing through the path selection element 402 and further reaching the switch 408, after the detection signal DS is disabled by the control circuit 406, the control circuit 406 is required to wait for a preset waiting time before switching the status of the switch 408 back to the conductive status.
In summary, the circuit for switching the signal path provided in the present application is equipped with a path selection element and a switch and provides a multi-level protection to prevent a download data signal with high power from damaging a power amplifier.
It will be appreciated that the present invention is not limited to the exact construction that has been described above and illustrated in the accompanying drawings, and that various modifications and changes can be made without departing from the scope thereof. It is intended that the scope of the invention only be limited by the appended claims.
Number | Date | Country | Kind |
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98107139 | Mar 2009 | TW | national |