This application claims the benefit of priority to Taiwan Patent Application No. 111148848, filed on Dec. 20, 2022. The entire content of the above identified application is incorporated herein by reference.
Some references, which may include patents, patent applications and various publications, may be cited and discussed in the description of this disclosure. The citation and/or discussion of such references is provided merely to clarify the description of the present disclosure and is not an admission that any such reference is “prior art” to the disclosure described herein. All references cited and discussed in this specification are incorporated herein by reference in their entireties and to the same extent as if each reference was individually incorporated by reference.
The present disclosure relates to a wireless communication device, and more particularly to a wireless communication device having a stacked antenna structure.
Customer premises equipment (CPE) applied to the 5G network is mainly used to receive and convert 5G signals emitted by base stations into WI-FI® signals or wired signals for end-user devices (such as a cell phone, a tablet, or a laptop). In the related art, antenna structures in CPE products have large sizes, which leaves room for improvement in structural design thereof. In addition, CPE products have more and more bandwidth requirements with the popularization of 5G.
Therefore, how to reduce the size of the antenna structure and satisfy the bandwidth requirements of the users through an improvement in the structural design has become one of the important issues to be solved in the art.
In response to the above-referenced technical inadequacy, the present disclosure provides a wireless communication device, so as to address an issue of existing CPE products not being able to satisfy miniaturization requirements and incorporate bandwidth enhancements.
In order to solve the above-mentioned problem, one of the technical aspects adopted by the present disclosure is to provide a wireless communication device, which includes a carrier, a first antenna array, and a first power divider. The carrier has a first surface and a second surface that are opposite to each other. The first antenna array is disposed on the carrier. The first antenna array includes two first antenna elements and two second antenna elements. The first power divider is disposed on the carrier. The first power divider includes a first extension section and two first coupling sections. The first extension section is connected between the two first coupling sections, and the two first coupling sections and the two first antenna elements are separate with each other. The two first coupling sections are respectively coupled to the two first antenna elements, such that the first antenna array is used to generate a radiation pattern having a first polarization direction.
Therefore, in the wireless communication device provided by the present disclosure, by virtue of “the two second antenna elements respectively corresponding to the two first antenna elements, and each of the two second antenna elements and a corresponding one of the first antenna elements being separate from and coupled to each other” and “the two first coupling sections being respectively coupled to the two first antenna elements, such that the first antenna array is used to generate a radiation pattern having a first polarization direction,” a stacked antenna structure can be formed to satisfy the miniaturization requirements and incorporate the bandwidth enhancements.
These and other aspects of the present disclosure will become apparent from the following description of the embodiment taken in conjunction with the following drawings and their captions, although variations and modifications therein may be affected without departing from the spirit and scope of the novel concepts of the disclosure.
The described embodiments may be better understood by reference to the following description and the accompanying drawings, in which:
The present disclosure is more particularly described in the following examples that are intended as illustrative only since numerous modifications and variations therein will be apparent to those skilled in the art. Like numbers in the drawings indicate like components throughout the views. As used in the description herein and throughout the claims that follow, unless the context clearly dictates otherwise, the meaning of “a,” “an” and “the” includes plural reference, and the meaning of “in” includes “in” and “on.” Titles or subtitles can be used herein for the convenience of a reader, which shall have no influence on the scope of the present disclosure.
The terms used herein generally have their ordinary meanings in the art. In the case of conflict, the present document, including any definitions given herein, will prevail. The same thing can be expressed in more than one way. Alternative language and synonyms can be used for any term(s) discussed herein, and no special significance is to be placed upon whether a term is elaborated or discussed herein. A recital of one or more synonyms does not exclude the use of other synonyms. The use of examples anywhere in this specification including examples of any terms is illustrative only, and in no way limits the scope and meaning of the present disclosure or of any exemplified term. Likewise, the present disclosure is not limited to various embodiments given herein. Numbering terms such as “first,” “second” or “third” can be used to describe various components, signals or the like, which are for distinguishing one component/signal from another one only, and are not intended to, nor should be construed to impose any substantive limitations on the components, signals or the like.
In addition, the term “connect” or “connected” in the context of the present disclosure means that there is a physical connection between two elements, and the two elements are directly or indirectly connected. The term “couple” or “coupled” in the context of the present disclosure means that two elements are separate from each other and have no physical connection therebetween, and an electric field energy generated by one of the two elements excites an electric field energy generated by another one of the two elements.
Referring to
Referring to
Furthermore, the two first coupling sections P12 respectively have two first coupling portions P121, and the two second coupling sections P22 respectively have two second coupling portions P221. Each of the two first antenna elements T11 has two notches C, and one of the two first coupling portions P121 and one of the two second coupling portions P221 respectively extend into the two notches C. An edge of each of the two notches C and a corresponding one of the first coupling portions P121 and the second coupling portions P221 have a coupling gap G therebetween. Preferably, the coupling gap C ranges between 0.2 mm and 2 mm. The two first coupling sections P12 are respectively coupled to the two first antenna elements T11 through the two first coupling portions P121. Therefore, a signal can be fed from the two first coupling sections P12 to the two first antenna elements T11 by way of coupling, and the two first antenna elements T11 are respectively coupled to the two second antenna elements T12, such that the first antenna array T1 is used to generate a first radiation pattern having a first polarization direction. Similarly, the two second coupling sections P22 are respectively coupled to the two first antenna elements T11 through the two second coupling portions P221. The signal can be fed from the two second coupling sections P22 to the two first antenna elements T11 by way of coupling, and the two first antenna elements T11 are respectively coupled to the two second antenna elements T12, such that the first antenna array T1 is used to generate a second radiation pattern having a second polarization direction. For example, the first polarization direction can be a horizontal direction, the second polarization direction can be a vertical direction, and the first polarization direction and the second polarization direction are orthogonal to each other.
Reference is further made to
An orthogonal projection of each of the second antenna elements T12 projected onto the carrier 1 is greater than an orthogonal projection of a corresponding one of the first antenna elements T11 projected onto the carrier 1. Moreover, the orthogonal projection of each of the second antenna elements T12 projected onto the carrier completely overlaps with the orthogonal projection of the corresponding one of the first antenna elements T11 projected onto the carrier 1. An orthogonal projection of each of the fourth antenna elements T22 projected onto the carrier 1 is greater than an orthogonal projection of a corresponding one of the third antenna elements T21 projected onto the carrier 1. Moreover, the orthogonal projection of each of the fourth antenna elements T22 projected onto the carrier 1 completely overlaps with the orthogonal projection of the corresponding one of the third antenna elements T21 projected onto the carrier 1. Through the structural configuration mentioned above, impedance matching generated by an antenna structure (the first antenna array T1 and the second antenna array T2) can be adjusted and optimized in the present disclosure, and a stable antenna performance (such as radiation directivities) can be provided. In addition, the first antenna element T11 to the fourth antenna element T22 are circular in shape, but the present disclosure is not limited thereto.
The third power divider P3 includes a third extension section P31 and two third coupling sections P32. The third extension section P31 is connected between the two third coupling sections P32. The two third coupling sections P32 and the two third antenna elements T21 are separate with each other. The fourth power divider P4 includes a fourth extension section P41 and two fourth coupling sections P42. The fourth extension section P41 is connected between the two fourth coupling sections P42. The two fourth coupling sections P42 and the two third antenna elements T21 are separate with each other.
The two third coupling sections P32 respectively have two third coupling portions P321, and the two fourth coupling sections P42 respectively have two fourth coupling portions P421. Each of the two third antenna elements T21 has two notches C, and one of the two third coupling portions P321 and one of the two fourth coupling portions P421 respectively extend into the two notches C. An edge of each of the two notches C and a corresponding one of the third coupling portions P321 and the fourth coupling portions P421 have a coupling gap G therebetween.
Therefore, the two third coupling sections P32 are respectively coupled to the two third antenna elements T21 through the two third coupling portions P321. The signal can be fed from the two third coupling portions P321 to the two third antenna elements T21 by way of coupling, and the two third antenna elements T21 are respectively coupled to the two fourth antenna elements T22, such that the second antenna array T2 is used to generate a third radiation pattern having a third polarization direction. Similarly, the two fourth coupling sections P42 are respectively coupled to the two third antenna elements T21 through the two fourth coupling portions P421. The signal can be fed from the two fourth coupling portions P421 to the two third antenna elements T21 by way of coupling, and the two third antenna elements T21 are respectively coupled to the two fourth antenna elements T22, such that the second antenna array T2 is used to generate a fourth radiation pattern having a fourth polarization direction. For example, the third polarization direction can be a horizontal direction, the fourth polarization direction can be a vertical direction, and the third polarization direction and the fourth polarization direction are orthogonal to each other.
In the present disclosure, the first antenna array T1 and the second antenna array T2 are configured to operate in an operating frequency band. For example, the operating frequency band ranges between 3,300 MHz and 4,200 MHz. Two center points of the two first antenna elements T11 or the two second antenna elements T12 have a first predetermined distance N1 therebetween, and the first predetermined distance N1 is greater than one-half wavelength of a center frequency (3,750 MHz) of the operating frequency band. Similarly, two center points of the two third antenna elements T21 or the two fourth antenna elements T22 have a second predetermined distance N2 therebetween, and the second predetermined distance N2 is greater than one-half wavelength of the center frequency (3,750 MHz) of the operating frequency band.
It is worth mentioning that, as shown in
In the present disclosure, the first antenna element T11, the third antenna elements T21, the first power divider P1, the second power divider P2, the third power divider P3, and the fourth power divider P4 are formed on the carrier 1 by laser direct structuring, but the present disclosure is not limited thereto. Through the laser direct structuring (LDS) process, antenna elements (the first antenna elements T11 and the third antenna elements T21) and power dividers (the first power divider P1 to the fourth power divider P4) can be integrated onto the carrier 1, so as to ensure that the coupling gap G is constant and short-circuit connection does not occur.
Referring to
In the first embodiment, the first extension section P11 includes a first input section P111 and two first output sections P112. The second extension section P21 includes a second input section P211 and two second output sections P212. The third extension section P31 includes a third input section P311 and two third output sections P312. The fourth extension section P41 includes a fourth input section P411 and two fourth output sections P412. The two first output sections P112 correspond to the two first coupling sections P12, respectively. The two second output sections P212 correspond to the two second coupling sections P22, respectively. The two third output sections P312 correspond to the two third coupling sections P32, respectively. The two fourth output sections P412 correspond to the two fourth coupling sections P42, respectively. For example, several conductive vias V can be formed on the carrier 1, and the conductive vias V can be disposed between two output sections and the corresponding two coupling sections of each power divider (the first power divider P1 to the fourth power divider P4), such that the extension section is electrically connected between the two coupling sections. However, the present disclosure is not limited thereto.
Reference is further made to
For example, coupling portions (the first coupling portion P121, the second coupling portion P221, the third coupling portion P321, and the fourth coupling portion P421) of the present disclosure have trapezoidal shapes (a length of the boundary line B is less than a length of the end portion E), inverted trapezoidal shapes (the length of the boundary line B is greater than the length of the end portion E), or rectangular shapes (the length of the boundary line B is equal to the length of the end portion E), but the shape of the coupling portions is not limited thereto. More specifically, in an exemplary embodiment of the present disclosure, the coupling portions are trapezoidal in shape. Compared with the coupling portions that are inverted trapezoidal shaped or rectangular shaped, the feed-in lengths (i.e., the maximum distances L) of the coupling portions that are trapezoidal shaped can have improved impedance matching. In addition, the feed-in lengths of the coupling portions that are inverted trapezoidal shaped or rectangular shaped need to be longer, so as to have the same coupling effect as the coupling portions that are trapezoidal shaped. However, taking the first coupling portions P121 and the second coupling portions P221 as an example (as shown in
Referring to
Referring to
The ground plate 2 further has a protrusion region 21, and the protrusion region 21 extends in a direction toward the mainboard 3. More specifically, the protrusion region 21 extends toward a heat source of the mainboard 3 (i.e., the RF module 31). When the annular frame 4 fixes the ground plate 2 and the mainboard 3, the protrusion region 21 of the ground plate 2 contacts the mainboard 3 (i.e., the electronic components on the mainboard 3, such as, but not limited to, the RF module 31), such that the heat generated by the electronic components on the mainboard 3 can be conducted through the ground plate 2 for heat dissipation. In addition, the ground plate 2 can assist the first antenna array T1 and the second antenna array T2 to provide relatively stable radiation directivities and adjust an antenna gain thereof. It should be noted that the RF module 31 shown in
Referring to
Reference is made to
Referring to
Referring to
The main difference between the third embodiment and the first embodiment is as follows. In the third embodiment, the antenna elements have no notches, and the coupling sections of the power dividers are disposed on the second surface 12 of the carrier 1. Taking
In conclusion, the wireless communication device W provided by the present disclosure can utilize the two second antenna elements T12 and the corresponding two first antenna elements T11, and the two fourth antenna elements T22 and the corresponding two third antenna elements T21 for formation of a stacked antenna array structure. In addition, the wireless communication device W can utilize the first power divider P1 and the second power divider P2 for being coupled to the two first antenna elements T11, and utilize the third power divider P3 and the fourth power divider P4 for being coupled to the two third antenna elements T21. Accordingly, the wireless communication device W can meet miniaturization requirements, achieve bandwidth improvements (3,300 MHz to 4,200 MHz), and maintain good antenna characteristics.
Furthermore, the wireless communication device W can integrate the antenna elements and the power dividers onto the carrier 1 by way of laser direct structuring. Through the laser direct structuring process, the antenna elements (the first antenna elements T11 and the third antenna elements T21) and the power dividers (the first power divider P1 to the fourth power divider P4) can be integrated onto the carrier 1, so as to ensure that the coupling gap G is constant and the short-circuit connection does not occur.
Furthermore, the wireless communication device W can utilize the coupling portions that are trapezoidal shaped for coupling and signal feeding. The impedance matching and coupling effects can be improved through the configuration of the coupling gap G and the laser direct structuring (LDS) process. In addition, the high-gain antenna characteristics can be achieved through the configuration of the first air gap H1 and the second air gap H2.
The foregoing description of the exemplary embodiments of the disclosure has been presented only for the purposes of illustration and description and is not intended to be exhaustive or to limit the disclosure to the precise forms disclosed. Many modifications and variations are possible in light of the above teaching.
The embodiments were chosen and described in order to explain the principles of the disclosure and their practical application so as to enable others skilled in the art to utilize the disclosure and various embodiments and with various modifications as are suited to the particular use contemplated. Alternative embodiments will become apparent to those skilled in the art to which the present disclosure pertains without departing from its spirit and scope.
Number | Date | Country | Kind |
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111148848 | Dec 2022 | TW | national |