This application claims the benefit of Taiwan application Serial No. 111118223, filed May 16, 2022, the subject matter of which is incorporated herein by reference.
The invention relates in general to an antenna module, and more particularly to a tri-band antenna module.
Since current electronic products are developing towards light, thin, and small, the miniaturization trend of various circuits in electronic products is designed. With the need to support multi-frequency applications, the antennas in electronic products have to consider the miniaturization design. Especially in the application of broadband networks and multimedia services, the tri-band antenna can provide three resonant modes so that the tri-band antenna can operate in three different resonant frequency bands to cover a broader bandwidth.
However, the traditional tri-band antenna is a three-dimensional antenna, which takes up space due to its large size and complex structure. It is not easy to adjust the frequency required by the antenna. Therefore, the costs for molding and assembling required for the three-dimensional antenna are high, and the three-dimensional antenna has the risk of being easily deformed and needs further improvement.
The present invention relates to a tri-band antenna module, which can be used in a wireless communication device to support multiple frequency bands.
According to an embodiment of the present invention, a tri-band antenna module is provided. The tri-band antenna module includes a substrate, a first radiator, a second radiator, and a short-circuit structure. The substrate has a signal feed-in terminal and a ground terminal. The signal feed-in terminal is connected to the first radiator, and the ground terminal is connected to the second radiator. The first radiator includes a first extension block and a second extension block, and the second radiator includes a third extension block and a fourth extension block. The first extension block and the second extension block are separated by a first interval, and the third extension block and the fourth extension block are separated by a second interval. The first interval extends from the middle of the substrate to one side along a first direction, the second interval extends from the middle of the substrate to another side along a second direction, and the first direction is opposite to the second direction. The short-circuit structure is connected between the first extension block and the third extension block. The short-circuit structure is respectively separated from the first extension block and the third extension block by a first slot and a second slot.
The above and other aspects of the invention will become better understood with regard to the following detailed description of the preferred but non-limiting embodiment(s). The following description is made with reference to the accompanying drawings.
Below in conjunction with the accompanying drawings in the embodiments of the application, the technical solutions in the embodiments of the application are clearly and completely described. Obviously, the described embodiments are part of the embodiments of the application rather than all embodiments. Based on the embodiments in the present application, all other embodiments obtained by the person having ordinary skill in the art on the premise of being obvious belong to the protection scope of the present application. The same/similar symbols represent the same/similar components in the following description.
Referring to
The first radiator 120 and the second radiator 130 may have a symmetrical structure on the left and right sides to form a symmetrical dipole antenna structure. As shown in
In another embodiment, the first radiator 120 and the second radiator 130 may be an asymmetric structure on the left and right sides to provide different working frequency bands, respectively.
In this embodiment, the substrate 110 has a signal feed-in terminal 111 and a ground terminal 112. The signal feed-in terminal 111 is connected to the first radiator 120, and the ground terminal 112 is connected to the second radiator 130. The signal feed-in terminal 111 and the ground terminal 112 are located in a slot between the first extension block 121 and the third extension block 131, and the signal feed-in terminal 111 and the ground terminal 112 are exposed on the surface 110a of the substrate 110 for connecting with a cable 150 (such as a coaxial cable 150 ). As shown in
In this embodiment, the first extension block 121 of the first radiator 120 extends from the middle of the substrate 110 to one side along the first direction D1, and the third extension block 131 of the second radiator 130 extends from the middle of the substrate 110 to another side along the second direction D2. The first direction D1 is opposite to the second direction D2. In addition, the cable 150 is used for transmitting a signal to the signal feed-in terminal 111, and the feed-in direction of the signal is substantially perpendicular to the first direction D1 and the second direction D2. When the signal (current) is transmitted to the first extension block 121 and the third extension block 131, respectively, through the signal feed-in terminal 111 and the ground terminal 112, the first extension block 121 and the third extension block 131 can generate a working frequency band of about 5.925 GHz-7.125 GHz and a working frequency band of about 5.15 GHz-5.85 GHz, but the present invention is not limited thereto. The return losses of the working frequency band of 5.925 GHz-7.125 GHz and the working frequency band of 5.15 GHz-5.85 GHz can be, for example, as low as -10 dB (the smaller the value, the better the signal quality).
In addition, when the signal (current) is transmitted to the second extension block 122 and the fourth extension block 132, respectively, through the first extension block 121 and the third extension block 131, the second extension block 122 and the four extension blocks 132 can generate a working frequency band of about 2.4 GHz-2.5 GHz. The return loss of the working frequency band of 2.4 GHz-2.5 GHz can be as low as -10 dB, for example (the smaller the value, the better the signal quality).
Please refer to
In this embodiment, the second side C2 is connected to the first sub-block 123 of the second extension block 122 and intersects at a first angle θ1. The first angle θ1 is, for example, between 15 degrees and 35 degrees (e.g., about 25 degrees), and the present invention is not limited thereto. Referring to
Referring to
In this embodiment, the sixth side C6 is connected to the third sub-block 133 of the fourth extension block 132 and intersects at a second angle θ2. The second angle θ2 is, for example, between 15 degrees and 35 degrees (e.g., about 25 degrees). The first angle θ1 and the second angle θ2 may be the same or different, and the present invention is not limited thereto.
Referring to
In addition, the short-circuit structure 140 is separated from the first extension block 121 and the third extension block 131 by a first slot S1 and a second slot S2, respectively, and the first slot S1 and the second slot S2 are slots extending along the first direction D1 and the second direction D2, respectively. The extension directions of the first slot S1 and the second slot S2 are substantially perpendicular to the extension direction (i.e., the third direction D3) of a third slot S3 separated between the first radiator 120 and the second radiator 130.
In this embodiment, the first slot S1, the second slot S2, the first distance G1, the second distance G2, and the distances G11, G12, G21, and G22 can be used as an area for impedance matching adjustment of the first resonant frequency, the second resonant frequency and the third resonant frequency of the tri-band antenna module 100. The third slot S3 can be used as an area for adjusting current coupling and impedance matching of the antenna. The width and the size of the above-mentioned slots and distances can be appropriately adjusted according to design requirements.
Referring to
Referring to
The tri-band antenna module 100 of the present embodiment is a printed tri-band antenna with an easy-to-adjust design for use on a printed circuit board. It is suitable for wireless communication devices and can be easily adjusted and corrected according to product requirements. It can be applied to the wireless communication devices having the operating frequency bands of 802.11a (5150-5850 MHz), 802.11b (2400-2500 MHz), 802.11 g (2400-2500 MHz), 802.11n (2.4 GHz/5 GHz Band), 802.11ac (5 GHz Band), and 802.11ax (2.4 GHz/5 GHz/6 GHz Band), or can be slightly adjusted in the frequency band and applied to wireless communication devices in other operating frequency bands, for example, it can be applied to ODU (OutDoor Unit), IDU (InDoor Unit) or CPE (Customer Premises Equipment) wireless communication devices.
In this embodiment, the substrate 110 of the tri-band antenna module 100 has, for example, a length (along the D1/D2 directions) and a width (along the D3 direction), the length is about 26.8 mm, and the width is about 10.3 mm. The signal feed-in terminal 111 is located at half width position of the middle of the substrate 110, and its position can be adjusted upward or downward. The signal feed-in terminal 111 is located on the first side C1, and the ground terminal 112 is located on the fifth side C5. After the signal (current) is fed into the signal feed-in terminal 111, a first part of the current reaches the first contact 141 of the short-circuit structure 140 via the first side C1 and the fourth side C4 (i.e., the first path L1 shown in
The electrical length of the first path L1 depends on the length required by the first radiator 120 to excite the electromagnetic waves of the first frequency band and is approximately equal to a quarter of the wavelength of the first frequency band. The electrical length of the second path L2 depends on the length required by the first radiator 120 to excite the electromagnetic waves of the second frequency band and is approximately equal to a quarter of the wavelength of the second frequency band. The electrical length of the third path L3 depends on the length required by the first radiator 120 to excite the electromagnetic waves of the third frequency band and is approximately equal to a quarter of the wavelength of the third frequency band.
The currently popular fifth-generation mobile network 5G/Sub6G specifically defines the specification for multi-frequency support in terms of bandwidth. In the future, more frequency bands can be provided to integrate, such as Wi-Fi/2.4 GHz+5 GHz+6 GHz or other frequency bands on the same substrate 110. In addition to the continuation of related communication technologies, wireless networks with higher bandwidth and transmission rates are also available and very attractive to users. In terms of signal transmission, the method to feed-in antenna signal is, for example, directly using a 50-ohm (Ω) cable to be soldered on the signal feed-in terminal 111, and the other end of the cable 150 can be freely extended to the RF signal module. In this embodiment, since the system adopts the printed tri-band antenna module 100, the mold manufacturing and assembly cost of the three-dimensional antenna is saved, and the risk of deformation of the three-dimensional antenna can be avoided. The printed tri-band antenna module 100 can be operated on a printed circuit board with a ground plane or matched with the system ground and has the advantage of multiple selectivities. The independent adjustment mechanism of the printed tri-band antenna module 100 can facilitate the system with different applications.
While the invention has been described by way of example and in terms of the preferred embodiment(s), it is to be understood that the invention is not limited thereto. On the contrary, it is intended to cover various modifications and similar arrangements and procedures, and the scope of the appended claims therefore should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements and procedures.
Number | Date | Country | Kind |
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111118223 | May 2022 | TW | national |