The disclosure relates to an antenna device and a method for configuring the antenna device.
To conform to the national electromagnetic wave specific absorption rate (SAR) standard, when designing an antenna, the designer often disposes a proximity sensor around the antenna. When a person approaches the antenna, the proximity sensor may notify a wireless communication module for controlling the antenna to reduce the transmit power of the antenna so that the antenna SAR value conforms to the standard. However, with the miniaturization of devices, the space available for disposing antennas has gradually shrunk. If the distance between the sensing metal of the proximity sensor and the antenna is too close, the sensing metal may cause destructive interference to the antenna, and therefore the effectiveness of the antenna is reduced.
The disclosure provides an antenna device and a method for configuring the antenna device capable of reducing the destructive interference caused by a proximity sensor to a radiating part of the antenna device.
An antenna device of the disclosure includes a grounding metal, a grounding part, a radiating part, a feeding part, a proximity sensor, and a sensing metal. The radiating part is electrically connected to the grounding metal through the grounding part. The feeding part is coupled to the grounding metal through a feeding point. The sensing metal is electrically connected to the proximity sensor. The sensing metal is separated from the radiating part at a distance. The distance is less than or equal to one thousandth of a wavelength corresponding to an operating frequency of the antenna device.
In an embodiment of the disclosure, the radiating part and the sensing metal extend in a first direction. A first length of the sensing metal is less than or equal to a second length of the radiating part.
In an embodiment of the disclosure, the radiating part is parallel to the sensing metal.
In an embodiment of the disclosure, the antenna device further comprises a metal wire. The sensing metal is electrically connected to the proximity sensor through the metal wire.
In an embodiment of the disclosure, the metal wire is separated from the grounding part at a second distance. The second distance is equal to the distance.
In an embodiment of the disclosure, the radiating part is perpendicular to the grounding part.
In an embodiment of the disclosure, a width of the sensing metal is greater than or equal to one millimeter.
In an embodiment of the disclosure, the radiating part, the grounding part, and the feeding part are disposed on a surface of a substrate material.
In an embodiment of the disclosure, the radiating part and the sensing metal are disposed on a surface of a substrate material.
In an embodiment of the disclosure, the radiating part is in contact with a first surface of a substrate material. The sensing metal is in contact with a second surface of the substrate material. The first surface is opposite to the second surface.
In an embodiment of the disclosure, the feeding part is disposed between the radiating part and the grounding metal.
In an embodiment of the disclosure, the radiating part is disposed between the sensing metal and the grounding metal.
In an embodiment of the disclosure, the sensing metal is disposed in a slot formed by the radiating part, and the metal wire is disposed in a second slot formed by the grounding part.
In an embodiment of the disclosure, a projection of the sensing metal completely overlaps or partially overlaps the radiating part.
In an embodiment of the disclosure, a projection of the metal wire overlaps the grounding part.
In an embodiment of the disclosure, the metal wire is electrically connected to either an end or a middle end of the sensing metal.
In an embodiment of the disclosure, the grounding part is disposed between the metal wire and the feeding part.
In an embodiment of the disclosure, the sensing metal is disposed between the radiating part and the grounding metal.
In an embodiment of the disclosure, the radiating part, the grounding part, the feeding part, and the grounding metal form one of a coupling antenna and an inverted-F antenna.
In an embodiment of the disclosure, the proximity sensor transmits a command in response to the sensing metal sensing that an object approaches the sensing metal.
In an embodiment of the disclosure, the antenna device further includes a processor coupled to the proximity sensor and the feeding point. The processor reduces an intensity of a feeding signal fed to the feeding point in response to receiving the command.
In a method for configuring an antenna device of the disclosure, the antenna device includes a grounding metal, a grounding part, a radiating part, a feeding part, a proximity sensor, and a sensing metal. The method includes steps as follows. The radiating part is electrically connected to the grounding metal through the grounding part. The feeding part is coupled to the grounding metal through a feeding point, and the sensing metal is electrically connected to the proximity sensor. The sensing metal is separated from the radiating part at a distance. The distance is less than or equal to one thousandth of a wavelength corresponding to an operating frequency of the antenna device.
In summary, in the disclosure, the destructive interference caused by the sensing metal to the radiating part is reduced by optimizing the distance between the radiating part and the sensing metal of the proximity sensor. Therefore, the performance of the antenna device of the disclosure may not be reduced even though the antenna device is equipped with the proximity sensor.
The radiating part 130 is electrically connected to the grounding metal 110 through the grounding part 120. The radiating part 130 may be used to radiate or sense a wireless signal corresponding to the operating frequency. The feeding part 140 includes a feeding point 141. The feeding part 140 may be coupled to the grounding metal 110 through the feeding point 141. The feeding point 141 and the grounding metal 110 may not be in direct contact. The feeding part 140 may receive a feeding signal through the feeding point 141. The radiating part 130 may radiate a wireless signal corresponding to the feeding signal when the feeding part 140 receives the feeding signal.
The proximity sensor 150 may be electrically connected to the sensing metal 170 through the metal wire 160. When an object approaches the sensing metal 170, the sensing metal 170 may sense the object to generate an electrical signal and transmit the electrical signal to the proximity sensor 150 through the metal wire 160. The proximity sensor 150 may determine whether an object is approaching the antenna device 100 (or approaching the sensing metal 170) according to the received electrical signal. If the proximity sensor 150 determines that an object is approaching the antenna device 100, the proximity sensor 150 may send a command to the processor 180 to instruct to reduce the intensity or power of the feeding signal.
For example, the processor 180 is a central processing unit (CPU), other programmable general purpose or special purpose micro control units (MCUs), a microprocessor, a digital signal processor (DSP), other similar elements, or a combination thereof. The processor 180 may be coupled to the feeding point 141 and the proximity sensor 150. The processor 180 may reduce the intensity or power of the feeding signal in response to receiving a command from the proximity sensor 150. Therefore, when an object approaches the antenna device 100, the intensity of the feeding signal may be reduced, and the SAR value of the antenna device 100 conforms to the standard.
The radiating part 130, the grounding part 120, the feeding part 140, and the grounding metal 110 may form different types of antennas, and the disclosure is not limited thereto. In an embodiment, the radiating part 130, the grounding part 120, the feeding part 140, and the grounding metal 110 may form a coupling antenna. In an embodiment, the radiating part 130, the grounding part 120, the feeding part 140, and the grounding metal 110 may form an inverted-F antenna or a planar inverted-F antenna.
The sensing metal 170 may be separated from the radiating part 130 at a distance, and the distance may be less than or equal to one thousandth of the wavelength corresponding to the operating frequency of the antenna device 100. The radiating part 130 and the sensing metal 170 may both extend in a first direction. The radiating part 130 may be parallel to the sensing metal 170. The first length of the sensing metal 170 may be less than or equal to the second length of the radiating part 130. The width of the sensing metal 170 may be greater than or equal to one millimeter.
On the other hand, the metal wire 160 may be separated from the grounding part 120 at a distance, and the distance has an adjustment and matching function. The distance may be less than or equal to one thousandth of the wavelength corresponding to the operating frequency of the antenna device 100. That is, the distance between the sensing metal 170 and the radiating part 130 may be equal to the distance between the metal wire 160 and the grounding part 120. Meanwhile, the destructive interference of the sensing metal 170 to the radiating part 130 may be minimized. The metal wire 160 and the grounding part 120 may both extend in the second direction. In an embodiment, the first direction may be perpendicular to the second direction. That is, the radiating part 130 (or the sensing metal 170) may be perpendicular to the grounding part 120 (or the metal wire 160).
In an embodiment, the radiating part 130, the grounding part 120, and the feeding part 140 may be disposed on the surface of the substrate material. In an embodiment, the radiating part 130 and the sensing metal 170 may be disposed on the surface of the substrate material. In an embodiment, the radiating part 130 may be in contact with the first surface of the substrate material, the sensing metal 170 may be in contact with the second surface of the substrate material, and the first surface is opposite to the second surface. That is, the radiating part 130 and the sensing metal 170 respectively may be disposed on two opposite surfaces of the substrate material. In an embodiment, the thickness of the substrate material may be less than or equal to one thousandth of the wavelength corresponding to the operating frequency, and the distance between the radiating part 130 and the sensing metal 170 is ensured to be less than or equal to one thousandth of the wavelength corresponding to the operating frequency.
In summary, the antenna device of the disclosure may optimize the distance between the radiating part and the sensing metal of the proximity sensor according to the operating frequency of the antenna device, so the distance is maintained at one thousandth of the wavelength of the operating frequency, and the length of the sensing metal is less than or equal to the length of the radiating part. Accordingly, the destructive interference caused by the sensing metal to the radiating part may be reduced. Therefore, although the antenna device of the disclosure is equipped with a proximity sensor, the performance of the antenna device may not be reduced by destructive interference.
This application claims the priority benefit of U.S. provisional application Ser. No. 63/121,208, filed on Dec. 3, 2020. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
Number | Name | Date | Kind |
---|---|---|---|
6592245 | Tribelsky | Jul 2003 | B1 |
6711280 | Stafsudd | Mar 2004 | B2 |
7446716 | Watanabe | Nov 2008 | B2 |
8314769 | Cole | Nov 2012 | B2 |
9712738 | Van Heugten | Jul 2017 | B2 |
10381722 | Mei | Aug 2019 | B2 |
10411333 | Chang | Sep 2019 | B1 |
10643040 | Ostermeier | May 2020 | B2 |
10658753 | Tseng | May 2020 | B2 |
11081785 | Lyu | Aug 2021 | B2 |
11101574 | Tsai | Aug 2021 | B2 |
11121449 | Chang | Sep 2021 | B2 |
11139566 | Chang | Oct 2021 | B2 |
11211708 | Lo | Dec 2021 | B2 |
11329382 | Lo | May 2022 | B1 |
11469512 | Lai | Oct 2022 | B2 |
11509049 | Oh | Nov 2022 | B2 |
11569585 | Li | Jan 2023 | B2 |
11652292 | Chang | May 2023 | B2 |
11749901 | Chang | Sep 2023 | B2 |
11749903 | Chan | Sep 2023 | B2 |
11775096 | Choi | Oct 2023 | B2 |
11782564 | Kim | Oct 2023 | B2 |
20020176605 | Stafsudd | Nov 2002 | A1 |
20040036653 | Ishihara | Feb 2004 | A1 |
20060284772 | Watanabe | Dec 2006 | A1 |
20080085021 | Shim | Apr 2008 | A1 |
20080198082 | Soler Castany | Aug 2008 | A1 |
20110205524 | Puzey | Aug 2011 | A1 |
20110267322 | Cole | Nov 2011 | A1 |
20130314285 | Takasaki | Nov 2013 | A1 |
20130335258 | Chung | Dec 2013 | A1 |
20140269972 | Rada | Sep 2014 | A1 |
20140315592 | Schlub | Oct 2014 | A1 |
20150141268 | Rothberg | May 2015 | A1 |
20150149617 | Lai | May 2015 | A1 |
20170222678 | Abreu | Aug 2017 | A1 |
20170317413 | Mei | Nov 2017 | A1 |
20180083353 | Tseng | Mar 2018 | A1 |
20190044232 | Tseng | Feb 2019 | A1 |
20190044561 | Fernando | Feb 2019 | A1 |
20190051033 | Eilat | Feb 2019 | A1 |
20190086741 | Milton | Mar 2019 | A1 |
20190197269 | Ostermeier | Jun 2019 | A1 |
20190393918 | Han | Dec 2019 | A1 |
20200274570 | Han | Aug 2020 | A1 |
20210075085 | Chang | Mar 2021 | A1 |
20210151871 | Lyu | May 2021 | A1 |
20210167491 | Chang | Jun 2021 | A1 |
20210167521 | Tsai | Jun 2021 | A1 |
20210306022 | Fernando | Sep 2021 | A1 |
20210344119 | Chan | Nov 2021 | A1 |
20220021408 | Yen | Jan 2022 | A1 |
20220027013 | Kim | Jan 2022 | A1 |
20220034696 | Conrads | Feb 2022 | A1 |
20220069466 | Chang | Mar 2022 | A1 |
20220166454 | Jaurigue | May 2022 | A1 |
Number | Date | Country |
---|---|---|
201814959 | Apr 2018 | TW |
201911647 | Mar 2019 | TW |
Entry |
---|
“Office Action of Taiwan Counterpart Application”, dated May 24, 2022, p. 1-p. 8. |
Number | Date | Country | |
---|---|---|---|
20220263531 A1 | Aug 2022 | US |
Number | Date | Country | |
---|---|---|---|
63121208 | Dec 2020 | US |