This application claims the priority benefit of Taiwan application serial No. 111128216, filed on Jul. 27, 2022. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of the specification.
The disclosure relates to an ultra-wideband antenna device with a ground design.
Electronic devices need to use antennas when transmitting or receiving radio frequency signals. The antennas can not only be used to transmit the radio frequency signals, but also be used to implement positioning functions. In the related art, the electronic devices use ultra-wideband (UWB) positioning technologies to realize indoor positioning. For an ultra-wideband antenna, a transmission distance of the ultra-wideband antenna is usually within 10 meters, and a bandwidth is above 1 GHz. An ultra-wideband is a carrier-free communication technology, which uses nanosecond (ns) to picosecond (ps) non-sinusoidal narrow pulses to transmit data, and these pulses occupy a wide bandwidth range.
However, with the development of communication technologies, there are increasing types of radio frequency signals that the electronic devices need to support, such as 4G, 5G, WiFi and other radio frequency signals. Therefore, more antennas need to be arranged inside the electronic devices, resulting in smaller space inside the electronic devices, which is insufficient for arrangement of the ultra-wideband antenna to realize positioning. Therefore, when the size of the ultra-wideband antenna is compressed in a small electronic device, transmission performance of the ultra-wideband antenna is severely affected, causing a negative impact on signal transmitting and receiving of the antenna.
According to the first aspect of this disclosure, an ultra-wideband antenna device is provided. The ultra-wideband antenna device includes a radiation metal body, a first slotted hole, a second slotted hole, a third slotted hole, a fourth slotted hole, a ground point, and a feeding source. The radiation metal body includes a first side edge and a second side edge opposite to each other and a third side edge and a fourth side edge opposite to each other, the first slotted hole is located on the radiation metal body and extends inward from the first side edge, the second slotted hole is located on the radiation metal body and extends inward from the second side edge, the third slotted hole is located on the radiation metal body and extends inward from the third side edge, and the fourth slotted hole is located on the radiation metal body and extends inward from the fourth side edge. The ground point is located at a middle position of the radiation metal body, and the feeding source is located on the radiation metal body and away from the middle position.
According to the second aspect of this disclosure, an ultra-wideband antenna device is provided. The ultra-wideband antenna device includes: a dielectric substrate, three ultra-wideband antennas, and a ground plane. The dielectric substrate includes a first surface and a second surface. The three ultra-wideband antennas are arranged on the first surface of the dielectric substrate, and each ultra-wideband antenna includes a radiation metal body, a first slotted hole, a second slotted hole, a third slotted hole, a fourth slotted hole, a ground point, a feeding source, and a via. The radiation metal body includes a first side edge and a second side edge opposite to each other and a third side edge and a fourth side edge opposite to each other, the first slotted hole is located on the radiation metal body and extends inward from the first side edge, the second slotted hole is located on the radiation metal body and extends inward from the second side edge, the third slotted hole is located on the radiation metal body and extends inward from the third side edge, and the fourth slotted hole is located on the radiation metal body and extends inward from the fourth side edge. The ground point is located at the middle position of the radiation metal body, the feeding source is located on the radiation metal body and away from the middle position, and the via penetrates the dielectric substrate and is connected to the ground point. The ground plane is located on the second surface of the dielectric substrate, and the ground plane is electrically connected to the ground point by using the via.
In summary, the disclosure relates to an ultra-wideband antenna device, which implements the receiving and transmitting of radio frequency signals in two frequency bands by using a design of a smaller antenna size without increasing the antenna size and space, so that the ultra-wideband antenna device in the disclosure effectively improves antenna efficiency in limited space to maintain good wireless communication quality. Based on this, the disclosure still maintains good antenna performance while reducing the size of the ultra-wideband antenna device.
Embodiments of the disclosure are described below with reference to relevant drawings. The same reference numbers in the drawings represent the same or similar components or circuits. It should be understood that although terms such as “first”, “second” in this specification may be used for describing various elements, components, areas, or functions, the elements, components, areas, or functions are not limited by such terms. The terms are only used to distinguish one element, component, area, or function from another element, component, area, or function.
In the ultra-wideband antenna device 10, the radiation metal body 12 includes a first side edge 121 and a second side edge 122 opposite to each other, and a third side edge 123 and a fourth side edge 124 opposite to each other. The third side edge 123 is adjacent to a same end of the first side edge 121 and the second side edge 122, and the fourth side edge 124 is adjacent to the other end of the first side edge 121 and the second side edge 122. The first slotted hole 14 is located on the radiation metal body 12 and extends vertically inward from the first side edge 121, so that the first slotted hole 14 formed on the radiation metal body 12 is closed at one end and open at the other end. The second slotted hole 16 is located on the radiation metal body 12 and extends vertically inward from the second side edge 122, so that the second slotted hole 16 formed on the radiation metal body 12 is closed at one end and open at the other end. The third slotted hole 18 is located on the radiation metal body 12 and extends vertically inward from the third side edge 123, so that the third slotted hole 18 formed on the radiation metal body 12 is closed at one end and open at the other end. The fourth slotted hole 20 is located on the radiation metal body 12 and extends vertically inward from the fourth side 124, so that the fourth slotted hole 20 formed on the radiation metal body 12 is closed at one end and open at the other end. The ground point 22 is located at a middle position of the radiation metal body 12. In an embodiment, the middle position of the ground point 22 is a geometric center of the radiation metal body 12 to connect a position with a strongest current to ground. The feeding source 24 is located on the radiation metal body 12 and away from the middle position, so that the feeding source 24 is arranged at an edge corner of the radiation metal body 12 to receive or transmit a radio frequency signal by using the feeding source 24. In this embodiment, the feeding source 24 is at a lower right corner, but the disclosure is not limited thereto.
In an embodiment, the first slotted hole 14 and the second slotted hole 16 have a same first length, and the first slotted hole 14 and the second slotted hole 16 are located on a same horizontal line. The third slotted hole 18 and the fourth slotted hole 20 have a same second length, and the third slotted hole 18 and the fourth slotted hole 20 are located on a same vertical line. The first length is different from the second length. The first slotted hole 14 and the second slotted hole 16 having the first length are used to implement resonance of a first frequency band, so that the ultra-wideband antenna device 10 supports reception and transmission of a radio frequency signal in the first frequency band. The third slotted hole 18 and the fourth slotted hole 20 having the second length are used to implement resonance of a second frequency band, so that the ultra-wideband antenna device 10 supports reception and transmission of a radio frequency signal in the second frequency band. In this embodiment, the first length is greater than the second length, so the first slotted hole 14 and the second slotted hole 16 having the first length are used to implement the resonance of the lower first frequency band, while the third slotted hole 18 and the fourth slotted hole 20 having the second length are used to implement the resonance of the higher second frequency band.
Referring to
In an embodiment, the ultra-wideband antenna device 10 further includes a plurality of ultra-wideband antennas 32, 32′, 32″. Referring to
In an embodiment, as shown in
In an embodiment, as shown in
In an embodiment, as shown in
In an embodiment, the ground plane 28 is an independent metal sheet or metal layer, or located on a metal plane of an electronic device. In an embodiment, the ground plane 28 is a metal frame of an electronic device or a metal sheet or a sputtered metal portion inside a housing of an electronic device, but the disclosure is not limited thereto. In an embodiment, when the electronic device is a notebook computer, the ground plane 28 is a system ground plane of a screen of the notebook computer or a metal portion such as an EMI aluminum foil or a sputtered metal region inside a housing of the screen of the notebook computer.
In an embodiment, as shown in
Referring to
Referring to
In summary, the disclosure relates to an ultra-wideband antenna device, which implements the receiving and transmitting of radio frequency signals in two frequency bands by using a design of a smaller antenna size without increasing the antenna size and space, so that the ultra-wideband antenna device in the disclosure effectively improves the antenna efficiency in limited space to maintain good wireless communication quality. Based on this, the disclosure still maintains good antenna performance in a case that a size of the ultra-wideband antenna device is reduced.
The foregoing embodiments are merely for describing the technical ideas and the characteristics of the disclosure, and are intended to enable those skilled in the art to understand and hereby implement the content of the disclosure. However, the scope of claims of the disclosure is not limited thereto. In other words, equivalent changes or modifications made according to the spirit disclosed in the disclosure shall still fall into scope of the claims of the disclosure.
Number | Date | Country | Kind |
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111128216 | Jul 2022 | TW | national |
Number | Name | Date | Kind |
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20180029457 | Bjorn | Oct 2018 | A1 |
20230178901 | Kim | Jun 2023 | A1 |
20230361483 | Yun | Nov 2023 | A1 |
20240106125 | Kwon | Mar 2024 | A1 |
Number | Date | Country |
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207883895 | Sep 2018 | CN |
112736471 | Apr 2021 | CN |
112821064 | May 2021 | CN |
201019534 | May 2010 | TW |
I679809 | Dec 2019 | TW |
202042440 | Nov 2020 | TW |
Number | Date | Country | |
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20240039164 A1 | Feb 2024 | US |