1. Technical Field
The disclosure generally relates to antennas, and more particularly to an earphone antenna, and an earphone and an electronic device employing the same.
2. Description of the Related Art
Electronic devices, such as mobile phones and frequency modulation (FM) radios, can receive FM wireless signals at 76 MHz-108 MHz through an earphone that is also implemented as a FM antenna to receive the FM wireless signals. However, such electronic devices are usually further designed to receive television (TV) signals such as very high frequency (VHF) signals or ultra high frequency (UHF) signals. Thus, an antenna which is capable of receiving TV signals is usually integrated in the electronic device, which can increase the size and weight of the electronic devices.
Therefore, there is room for improvement within the art.
Many aspects of an earphone antenna, an earphone and an electronic device employing the same can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the earphone antenna, earphone and electronic device employing the same. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views. Wherever possible, the same reference numbers are used throughout the drawings to refer to the same or like elements of an embodiment.
Referring to
The electronic device 200 includes a signal processing module 220 and an earphone jack 240 electrically connected to the signal processing module 220. The signal processing module 220 is capable of transforming and converting radio frequency (RF) signals from the earphone antenna 10 into corresponding audio signals.
The earphone jack 240 receives the processed audio signals from the signal processing module 220 and transmits the audio signals to the loudspeakers 30 through the earphone plug 50 and the earphone antenna 10. The earphone jack 240 is further capable of receiving RF signals from the earphone plug 50 and transmitting the RF signals to the signal processing module 220.
In this embodiment, the RF signal received by the earphone antenna 10 can be a frequency modulation (FM) signal whose RF range is about 88 MHz-108 MHz, a digital video broadcasting (DVB)-ultra high frequency (UHF) signal whose RF range is about 470 MHz-860 MHz, or a global positioning system (GPS) signal whose RF range is about 1570 MHz-1580 MHz. The RF signal can also be a DVB-very high frequency (VHF) signal whose RF range is about 170 MHz-240 MHz, or a digital audio broadcasting (DAB) signal whose RF range is about 1852 MHz-1892 MHz or 174 MHz-240 MHz.
The earphone antenna 10 includes a first antenna unit 12, a second antenna unit 14, a third antenna unit 16, and a matching module 18. The first antenna unit 12 is electrically connected between the earphone plug 50 and the matching module 18, and the second antenna unit 14 and the third antenna unit 16 are electrically connected to the first antenna unit 12 through the matching module 18.
Referring to
In this embodiment, the number of the coaxial cables 122 is five, each of which is sized to have an effective length that allows for respectively receiving and carrying RF signals of the DVB-UHF band, the GPS band, the DVB-VHF band, the DAB-L band and the DAB-III band. The coaxial cables 122 are embedded in flexible insulating material and are insulated from each other to prevent mutual interference and to protect the signals against external electromagnetic interference. The audio cable 124 is separated from the coaxial cables 122 by the flexible insulating material, and is capable of carrying and delivering audio signals from the signal processing module 220 to the loudspeakers 30.
The insulating material, the coaxial cables 122 and the audio cable 124 are shielded and surrounded by the first radiating member 126. In this embodiment, the first radiating member 126 is made of a conductive material(s), such as copper or other metal to receive and transmit the RF signals. The first radiating member 126 includes a first radiating section 1262, a second radiating section 1264, and an isolation block 1266 connected between the first radiating section 1262 and the second radiating section 1264.
In this embodiment, the first radiating section 1262 is electrically connected to the earphone jack 240 through the earphone plug 50, and has an effective length that allows for the receiving and carrying of RF signals of the FM band and deliver those signals to the electronic device 200 through the earphone jack 240 and the earphone plug 50. The second radiating section 1264 is electrically connected to the earphone jack 240 through the matching module 18 and one of the coaxial cables 122, and the earphone plug 50, and has an effective length that allows for the receiving of DVB-UHF band signals. The first radiating section 1262 and the second radiating section 1264 are separated by the isolation block 1266 to prevent interference with each other, by means of a substantial (e.g. 50 mm) gap.
The isolation block 1266 is made from Manganese (Mn), Zinc (Zn) or other metal(s), and is located at the gap to prevent interference between the first radiating section 1262 and the second radiating section 1264. The insulating sheath 128 is made of plastic, and surrounds and shields the first radiating member 126 to protect the first radiating member 126.
Referring to
The insulating material, the coaxial cable 142 and the audio cable 144 are shielded and surrounded by the second radiating member 146. In this embodiment, the second radiating member 146 is made of conductive material(s), such as copper or other metal to receive, transmit and carry RF signals. The second radiating member 146 includes a third radiating section 1462, a fourth radiating section 1464, and an isolation block 1466 connected between the third radiating section 1462 and the fourth radiating section 1464.
In this embodiment, the third radiating section 1462 is electrically connected to the matching module 18 and has an effective length that allows for the receiving and carrying of GPS band signals. The fourth radiating section 1464 is electrically connected to one of the loudspeakers 30 and has an effective length that allows for the receiving and carrying of DVB-VHF band signals. The coaxial cable 142 is electrically connected between the matching module 18 and the fourth radiating section 1464. The third radiating section 1462 and the fourth radiating section 1464 are separated by the isolation block 1466 which creates a substantial gap of about 50 mm to prevent interference between the third radiating section 1462 and the fourth radiating section 1464.
The isolation block 1466 is made from Mn, Zn or other metal(s) and is located at the gap between the third radiating section 1462 and the fourth radiating section 1464. The insulating sheath 148 is made of plastic, and surrounds and shields the first radiating member 146 to protect the first radiating member 146.
Referring to
The coaxial cable 162 and the audio cable 164 are surrounded and shielded by the third radiating member 166. In this embodiment, the third radiating member 166 is made of conductive material(s), such as copper, to receive and transmit RF signals. The third radiating member 166 includes a fifth radiating section 1662, a sixth radiating section 1664, and an isolation block 1666 connected between the fifth radiating section 1662 and the sixth radiating section 1664.
In this embodiment, the fifth radiating section 1662 is electrically connected to the matching module 18 and has an effective length that allows for the receiving and carrying of DAB-L band signals (e.g., 1852 MHz to 1892 MHz). The sixth radiating section 1664 is electrically connected to the other loudspeaker 30 and has an effective length that allows for the receiving and carrying of DAB-III band signals (e.g., 174 MHz to 240 MHz). The coaxial cable 162 is electrically connected between the matching module 18 and the sixth radiating section 1664. The fifth radiating section 1662 and the sixth radiating section 1664 are separated by the isolation block 1666 to prevent mutual interference, and the isolation block 1666 creates a substantial 50 mm gap between the fifth radiating section 1662 and the sixth radiating section 1664.
The isolation block 1666 is made from Mn, Zn or other metal(s), and is located at the gap between the third radiating section 1662 and the sixth radiating section 1664 to prevent interference between the fifth radiating section 1662 and the six radiating section 1664. The insulating sheath 168 is made of plastic and is capable of surrounding and shielding the third radiating member 166 to protect the third radiating member 166.
Referring to
In use, the earphone 100 is electrically connected to, or is inserted into, the earphone jack 240 of the electronic device 200, and thereby the first radiating section 1262 has an electrical connection(s) with signal processing module 220 through the earphone jack 240. The second radiating section 1264, the third radiating section 1462, the fourth radiating section 1464, the fifth radiating section 1662 and the sixth radiating section 1664 each have an electrical connection(s) with the signal processing module 220 through the matching module 18 and the corresponding coaxial cables 122. Thus, the radiating sections 1262, 1264, 1462, 1464, 1662 and 1664 of the earphone antenna 10 can receive signals of the FM band, the DVB-UHF band, the GPS band, the DVB-VHF band and the DAB band, and carry and deliver those signals to the signal processing module 220 through different electrical paths. The signal processing module 220 then converts the signals into audio signals, and carries the audio signals to the loudspeakers 30 through the earphone jack 240, the audio cables, and matching module 18.
The band capabilities of the earphone antenna 10 are not limited to the six operating bands described, it can also deal with other frequency bands, such as WiFi and BLUETOOTH, which can be achieved by changing the physical dimensions such as the effective lengths of the radiating members. It is known to those skilled in the art that the effective length of an antenna radiating member is directly related to the frequency at which the antenna responds. In addition, any of the first antenna unit 12, the second antenna unit 14 and the third antenna unit 16 can include more than two radiating members.
In summary, the coaxial cables are surrounded and shielded by radiating members, and each radiating member is divided into different radiating sections that function as antennas to receive RF signals of many different frequency bands, which can reduce the size and weight of the electronic device 200 itself. Moreover, the integrity of the signals received is maintained by the use of isolation blocks between the radiating sections, therefore, signals of different bands are protected from external interference.
In the present specification and claims the word “a” or “an” preceding an element does not exclude the presence of a plurality of such elements. Further, the word “comprising” does not exclude the presence of other elements or steps than those listed.
It is to be understood, however, that even though numerous characteristics and advantages of the disclosure have been set forth in the foregoing description, together with details of the structure and function of the disclosure, the disclosure is illustrative only, and changes may be made in detail, especially in the matters of shape, size, and arrangement of parts within the principles of the disclosure to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.
Number | Date | Country | Kind |
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099137089 | Oct 2010 | TW | national |