The specification relates generally to antennas, and specifically to a tri-band antenna for non-cellular wireless applications.
Current mobile electronic devices, such as smartphones, generally have different antennas implemented to support different types of wireless protocols, such as GPS (Global Positioning System), GLONASS (Globalnaya Navigatsionnaya Sputnikovaya Sistema), WIFI of different types, such as WiFi a, WiFi b. WiFi g and WFi n, as well as Bluetooth™. In other words, each wireless protocol has different bandwidth requirements and current mobile electronic devices have different antennas to support the different bandwidth requirements.
For a better understanding of the various implementations described herein and to show more clearly how they may be carried into effect, reference will now be made, by way of example only, to the accompanying drawings in which:
An aspect of the specification provides a tri-band antenna comprising: a first radiating arm enabled for generating a first resonance in a first frequency band, the first radiating arm further enabled for connection to an antenna tuning circuit; the first radiating arm comprising a capacitive coupling structure; a coupling arm separated by a gap from the first radiating arm; a second radiating arm enabled for generating a second resonance in a second frequency band lower than the first frequency band, the second radiating arm connected to the coupling arm such that the second radiating arm is capacitively coupled to the first radiating arm; and a third radiating arm enabled for generating a third resonance in a third frequency band lower than the second frequency band, the third radiating arm connected to the coupling arm such that the third radiating arm is capacitively coupled to the first radiating arm.
The first frequency band can comprise one or more of: about 5 GHz to about 6 GHz; and a WiFi a,n band.
The second frequency band can comprise one or more of: about 2 GHz to about 2.5 GHz; a WiFi b,g band; and, a Bluetooth™ band.
The third frequency band can comprise one or more of: about 1 GHz to about 2 GHz; a GPS (Global Positioning System) band; and, a GLONASS (Globalnaya Navigatsionnaya Sputnikovaya Sistema) band.
The capacitive coupling structure can comprise one of an L-shaped capacitive coupling structure and a U-shaped capacitive coupling structure. The coupling arm one of: extends along a long arm of the L-shaped capacitive coupling structure and ends prior to a short arm of the L-shaped capacitive coupling structure; and, extends between long arms of the U-shaped capacitive coupling structure.
The capacitive coupling structure can comprise a planar structure.
The first radiating arm can comprise one or more of an antenna feed and a contact area for connecting to the antenna tuning circuit. The antenna feed can comprise a three dimensional feed extending from the capacitive coupling structure to the contact area.
At least one of the second radiating arm and the third radiating arm can be adapted to extend along a housing of a mobile electronic device. At least one of the first radiating arm, the second radiating arm and the third radiating arm are located at a position at the housing to reduce combined SAR (specific absorption rate) at the mobile electronic device.
The second radiating arm can be in a same plane as the first radiating arm and the third radiating arm can be in another plane about perpendicular to the same plane.
The second radiating arm and the third radiating arm can be about parallel.
The second radiating arm and the third radiating arm can be about perpendicular to the coupling arm.
The second radiating arm and the third radiating arm can extend in a same direction.
The second radiating arm and the third radiating arm can extend in opposite directions.
The tri-band antenna can further comprise an antenna tuning circuit for independent tuning of each the first frequency band, the second frequency band and the third frequency band, the antenna tuning circuit connected to the antenna feed.
A further aspect of the specification provides a device comprising: a housing enabled to house components of the device; a tri-band antenna comprising: an antenna feed; a first radiating arm enabled for generating a first resonance in a first frequency band; the first radiating arm comprising a capacitive coupling structure; a coupling arm separated by a gap from the first radiating arm; a second radiating arm enabled for generating a second resonance in a second frequency band lower than the first frequency band, the second radiating arm connected to the coupling arm such that the second radiating arm is capacitively coupled to the first radiating arm; and a third radiating arm enabled for generating a third resonance in a third frequency band lower than the second frequency band, the third radiating arm connected to the coupling arm such that the third radiating arm is capacitively coupled to the first radiating arm; and, a communication interface comprising an antenna tuning circuit connected to the first radiating arm, the antenna tuning circuit for independent tuning of each the first frequency band, the second frequency band and the third frequency band.
At least one of the second radiating arm and the third radiating arm are adapted to extend along the housing.
The first frequency band can comprise one or more of: about 5 GHz to about 6 GHz; and a WiFi a band; the second frequency band can comprise one or more of: about 2 GHz to about 2.5 GHz; a WiFi b,g band; and a Bluetooth™ band; and the third frequency band can comprise one or more of: about 1 GHz to about 2 GHz; a GPS (Global Positioning System) band; and a GLONASS (Globalnaya Navigatsionnaya Sputnikovaya Sistema) band.
Attention is next directed to
Tri-band antenna 100 is therefore enabled for communicating in at least three different bands and on at least three different protocols. For example, tri-band antenna 100 can be used to communicate on the WiFi a,n band of 5.170 GHz to 5.835 GHz, the WiFi b,g and Bluetooth™ bands of 2.4 GHz to 2.5 GHz, as well as the GPS band of about 1.575 GHz and the GLONASS band of about 1.602 GHz. Hence, tri-band antenna 100 can replace a plurality of respective antennas for each of these bands in a mobile electronic device.
For example, attention is next directed to
It is yet further appreciated that at least one of first radiating arm 101, second radiating arm 102 and third radiating arm 103 are located at a position at housing 401 to reduce combined SAR (specific absorption rate) at the mobile electronic device.
It is yet further appreciated from
Attention is next directed to
From
It is further appreciated that gap 109 can be adjusted to change the capacitive coupling between first radiating arm 101 and coupling arm 105. For example, the capacitance between capacitive coupling structure 108 and coupling arm 105 is as follows: C˜1/d1, where “C” is the capacitance and “d1” is the size of gap 109, as indicated in
For example, attention is next directed to
Attention is next directed to
Hence, the electrical model in
A successful prototype of tri-band antenna 100 is now described. In the successful prototype, with respect to first radiating arm 101, L1a was about 9.5 mm L1b was about 7.3 mm and d1 of gap 109 was about 0.5 mm. Furthermore, second radiating arm had a length L2 of about 18.5 mm, third radiating arm had a length L3 of about 26 mm, with a gap there between of d2 about 0.8 mm. Furthermore, a width of each of first radiating arm 101, second radiating arm 102 and third radiating arm 103 were each about 1.2 mm. In particular, the dimensions of the successful prototype are compatible with laser direct structuring techniques and were manufactured therewith.
It is yet further appreciated that the shape of first radiating arm 101 is not limited to U-shaped capacitive coupling structures. For example, attention is next directed to
Attention is next directed to
It is yet further appreciated that, in other implementations, antenna tuning circuit 903 and tri-band antenna 100 can be provided as an integrated unit. For example, tri-band antenna 100 can comprise antenna tuning circuit 903, wherein antenna tuning circuit 903 is enabled for independent tuning of each the first frequency band, the second frequency band and the third frequency band. Any suitable antenna tuning circuit 903 is within the scope of present implementations, but generally comprises an impedance matching circuit for matching first radiating arm 101, second radiating arm 102 and third radiating arm 103 to one or more radiators enabled to radiate in each of the first frequency band, the second frequency band and the third frequency band.
Attention is next directed to
Device 1001 can be any type of electronic device that can be used in a self-contained manner to communicate with one or more communication networks using tri-band antenna 100. Device 1001 includes, but is not limited to, any suitable combination of electronic devices, communications devices, computing devices, personal computers, laptop computers, portable electronic devices, mobile computing devices, portable computing devices, tablet computing devices, laptop computing devices, desktop phones, telephones, PDAs (personal digital assistants), cellphones, smartphones, e-readers, internet-enabled appliances and the like. Other suitable devices are within the scope of present implementations.
It should be emphasized that the structure of device 1001 in
Device 1001 comprises at least one input device 1028 generally enabled to receive input data, and can comprise any suitable combination of input devices, including but not limited to a keyboard, a keypad, a pointing device, a mouse, a track wheel, a trackball, a touchpad, a touch screen and the like. Other suitable input devices are within the scope of present implementations.
Input from input device 1028 is received at processor 1020 (which can be implemented as a plurality of processors, including but not limited to one or more central processors (CPUs)). Processor 1020 is configured to communicate with a memory 1022 comprising a non-volatile storage unit (e.g. Erasable Electronic Programmable Read Only Memory (“EEPROM”), Flash Memory) and a volatile storage unit (e.g. random access memory (“RAM”)). Programming instructions that implement the functional teachings of device 1001 as described herein are typically maintained, persistently, in memory 1022 and used by processor 1020 which makes appropriate utilization of volatile storage during the execution of such programming instructions. Those skilled in the art will now recognize that memory 1022 is an example of computer readable media that can store programming instructions executable on processor 1020. Furthermore, memory 1022 is also an example of a memory unit and/or memory module.
Processor 1020 can be further configured to communicate with display 1026, and microphone 134 and speaker 132. Display 1026 comprises any suitable one of, or combination of, CRT (cathode ray tube) and/or flat panel displays (e.g. LCD (liquid crystal display), plasma, OLED (organic light emitting diode), capacitive or resistive touchscreens, and the like). Microphone 134, comprises any suitable microphone for receiving sound data. Speaker 132 comprises any suitable speaker for providing sound data, audible alerts, audible communications from remote communication devices, and the like, at device 1001. In some implementations, input device 1028 and display 1026 are external to device 1001, with processor 1020 in communication with each of input device 1028 and display 1026 via a suitable connection and/or link.
Processor 1020 also connects to interface 1014, which can be implemented as one or more radios and/or connectors and/or network adaptors, configured to wirelessly communicate with one or more communication networks (not depicted) via tri-band antenna 100. It will be appreciated that interface 1014 is configured to correspond with network architecture that is used to implement one or more communication links to the one or more communication networks, including but not limited to any suitable combination of USB (universal serial bus) cables, serial cables, wireless links, cell-phone links, cellular network links (including but not limited to 2G, 2.5G, 3G, 4G+, UMTS (Universal Mobile Telecommunications System), CDMA (Code division multiple access), WCDMA (Wideband CDMA), FDD (frequency division duplexing), TDD (time division duplexing), TDD-LTE (TDD-Long Term Evolution), TD-SCDMA (Time Division Synchronous Code Division Multiple Access) and the like, wireless data, Bluetooth links, NFC (near field communication) links, WiFi links, WiMax links, packet based links, the Internet, analog networks, the PSTN (public switched telephone network), access points, and the like, and/or a combination.
Specifically, interface 1014 comprises radio equipment (i.e. a radio transmitter and/or radio receiver) for receiving and transmitting signals using tri-band antenna 100. It is further appreciated that interface 1014 comprises antenna tuning circuit 903 as described above.
It is yet further appreciated that device 1001 comprises a power source, not depicted, for example a battery or the like. In some implementations the power source can comprise a connection to a mains power supply and a power adaptor (e.g. and AC-to-DC (alternating current to direct current) adaptor).
It is yet further appreciated that device 1001 further comprises an outer housing which houses components of device 1001, including housing 403.
In any event, it should be understood that a wide variety of configurations for device 1001 are contemplated.
Persons skilled in the art will appreciate that there are yet more alternative implementations and modifications possible. For example, attention is next directed to
Yet a further alternative tri-band antenna 100c is depicted in
In any event, a versatile tri-band antenna is described herein that can replace a plurality of antennas at a mobile electronic device. A first radiating arm radiating in a first band is connected to an antenna tuning circuit, and a second and third radiating arm radiating in respective second and third bands at frequencies less than the first band are capactively coupled to the antenna tuning circuit via the first radiating arm.
A portion of the disclosure of this patent document contains material which is subject to copyright protection. The copyright owner has no objection to the facsimile reproduction by any one of the patent document or patent disclosure, as it appears in the Patent and Trademark Office patent file or records, but otherwise reserves all copyrights whatsoever.
Persons skilled in the art will appreciate that there are yet more alternative implementations and modifications possible, and that the above examples are only illustrations of one or more implementations. The scope, therefore, is only to be limited by the claims appended hereto.
Number | Date | Country | Kind |
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12176191.0-2220 | Jul 2012 | EP | regional |