The subject matter herein generally relates to antennas.
The 5G standard covers a very wide bandwidth of 26.5 GHz-40 GHz. For specific frequency bands, a frequency can be shifted because of small size of antenna for millimeter-scale wavelengths, and a poor processing, which can affect an antenna performance. The millimeter-scale wave antenna suffers large propagation losses, the antenna itself needs compensation from an antenna array combination to increase its own gain. Arranging several antenna arrays in a limited space is problematic in millimeter-scale wavelength antenna design.
Therefore, there is room for improvement within the art.
Implementations of the present disclosure will now be described, by way of embodiment, with reference to the attached figures.
It will be appreciated that for simplicity and clarity of illustration, where appropriate, reference numerals have been repeated among the different figures to indicate corresponding or analogous elements. In addition, numerous specific details are set forth in order to provide a thorough understanding of the embodiments described herein. However, it will be understood by those of ordinary skill in the art that the embodiments described herein can be practiced without these specific details. In other instances, methods, procedures, and components have not been described in detail so as not to obscure the related relevant feature being described. Also, the description is not to be considered as limiting the scope of the embodiments described herein. The drawings are not necessarily to scale and the proportions of certain parts have been exaggerated to better illustrate details and features of the present disclosure.
Several definitions that apply throughout this disclosure will now be presented.
The term “substantially” is defined to be essentially conforming to the particular dimension, shape, or other feature that the term modifies, such that the component need not be exact. For example, “substantially cylindrical” means that the object resembles a cylinder, but can have one or more deviations from a true cylinder. The term “comprising” when utilized, means “including, but not necessarily limited to”; it specifically indicates open-ended inclusion or membership in the so-described combination, group, series, and the like.
The present disclosure is described in relation to an antenna structure and a wireless communication device using the same.
Referring to
The dielectric board 10 includes a side wall 11, an upper surface 12, and a bottom surface 13 opposite to the upper surface 12.
The side wall 11 connects the upper surface 12 and the bottom surface 13. The side wall 11 includes two opposite first walls 111 and two opposite second walls 112. The first walls 111 and the second walls 112 form a substantially rectangular frame for carrying the antenna structure 100.
The antenna structure 100 includes a plurality of first antenna units 20 and a plurality of second antenna units 30. The plurality of first antenna units 20 and the plurality of second antenna units 30 are in one straight line, but arranged alternately. A second antenna unit 30 is positioned between adjacent the first antenna units 20, and a first antenna units 20 is positioned between adjacent second antenna units 30. Each first antenna unit 20 and each second antenna unit 30 are restricted to emit a radio beam in a single polarization direction.
The first antenna unit 20 emits radio waves in a first polarization direction. The second antenna unit 30 emits radio waves in a second polarization direction. The first polarization direction is perpendicular to the second polarization direction. In this embodiment, the first polarization direction is a Z-axis direction as shown in
In this embodiment, a number of the first antenna units 20 and a number of the second antenna units 30 is the same.
Referring to
The first feeding line 24 is configured for feeding current to the first antenna 22 thereby activating the first antenna 22 to generate electromagnetic waves in the first polarization direction. The second feeding line 34 is configured for feeding current to the second antenna 32 thereby activating the second antenna 32 to generate electromagnetic waves in the second polarization direction.
Also referring to
The first feeding line 24 is positioned on the bottom surface 13 of the dielectric board 10. The first feeding line 24 is connected to a first end of the main body 222. A second end of the main body 222 is connected to the bending portion 224. The first end of the main body portion 222 defines two notches 226 configured for increasing a bandwidth of the first antenna 22.
Also referring to
The second feeding line 34 is positioned on the upper surface 12 of the dielectric board 10. The second feeding line 34 is connected to a first end of the second antenna 32. The first end of the second antenna 32 defines two cuts or notches (not labeled) for increasing a bandwidth of the second antenna 32.
Referring to
The dielectric board 10 includes N dielectric layers 14. The grounding portion 40 includes N+1 grounding layers 42 and at least one via 44, wherein N is a positive integer.
The dielectric layers 14 and the grounding layers 42 are alternately stacked. The via 44 is substantially a cylindrical structure. The via 44 passes through each dielectric layer 14 to connect to each grounding layer 14. Each dielectric layer 14 is parallel and spaced apart. Each grounding layer 42 is parallel and spaced apart.
The first antenna units 20, the second antenna units 30, the grounding layers 42, and the vias 44 are all made of conductive materials, such as metal.
In an embodiment, as shown in
Thus, the dielectric board 10 insulates the grounding portion 40 from the first antenna unit 20 and the second antenna unit 30.
Referring to
The first antenna units 20 and the second antenna units 30 are arranged in one straight line. Each first antenna unit 20 is positioned between adjacent second antenna units 30. The polarization directions of the first antenna units 20 are perpendicular to the polarization directions of the second antenna units 30. The antenna structure thus achieves ultra-wideband performance, and interference generated by close proximity between adjacent antenna units is reduced.
The embodiments shown and described above are only examples. Many details are often found in the art such as the other features of the antenna structure and the wireless communication device. Therefore, many such details are neither shown nor described. Even though numerous characteristics and advantages of the present disclosure have been set forth in the foregoing description, together with details of the structure and function of the present disclosure, the disclosure is illustrative only, and changes may be made in the details, especially in matters of shape, size, and arrangement of the parts within the principles of the present disclosure, up to and including the full extent established by the broad general meaning of the terms used in the claims. It will therefore be appreciated that the embodiments described above may be modified within the scope of the claims.
Number | Date | Country | Kind |
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201811446794.9 | Nov 2018 | CN | national |
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Number | Date | Country | |
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20200176891 A1 | Jun 2020 | US |