This application claims the priority benefit of Taiwan application serial no. 110135970, filed on Sep. 28, 2021. The entirety of the above-mentioned patent application is hereby incorporated by reference herein and made a part of this specification.
The disclosure relates to a wearable device, and in particular to a wearable device using a conducting frame as an antenna.
The length of the antenna is an important parameter used to adjust the antenna matching. For products that use metal frame as antennas, since most of today's products tend to be miniaturized, the demand for miniaturization will limit the lowest frequency band that the antenna may reach.
The disclosure provides a wearable device, which may maintain a sufficient length from a feeding point to a grounding point on a miniaturized wearable device, so as to reach an ideal operating frequency band.
The wearable device of the disclosure includes a conducting frame, a circuit board, and a grounding member. The conducting frame includes a first part and a second part that are separated. The circuit board is disposed inside the conducting frame, and includes a system grounding surface. The grounding member is disposed inside the conducting frame and connected to the first part. The first part and the grounding member are formed as a first antenna. The first part has a first feeding terminal. The grounding member has a first grounding terminal, and the first grounding terminal is connected to the system grounding surface of the circuit board. The second part is formed as a second antenna. The second antenna has a second feeding terminal, a second grounding terminal, and a third grounding terminal. The second grounding terminal and the third grounding terminal are connected to the system grounding surface of the circuit board.
Based on the above, the disclosure may extend the length of the antenna grounding structure to meet the operating frequency requirements without changing the size or the appearance of the appearance member by the disposition of the grounding member, so that each of the antennas can achieve good matching. In addition, the disclosure may also adjust the impedance matching of the desired frequency band by modifying the length of the grounding member, thereby increasing the flexibility in use.
In the embodiment, the material of the conducting frame 220 is, for example, metal, and the appearance of the metal material of the wearable device 20 may make the product more attractive and have a better texture. The conducting frame 220 includes a first part 221 and a second part 223 that are separated. The length of the first part 221 is approximately equal to the length of the second part 223, allowing the wearable device 20 to have a symmetrical appearance and increase the aesthetics, but is not limited in the disclosure. In addition, the circuit board 230 is disposed inside the conducting frame 220 and includes a system grounding surface 233 (refer to
In the embodiment, the first part 221 and the grounding member 240 are formed as a first antenna A1. The second part 223 is formed as a second antenna A2. The conducting frame 220 may also be disassembled into more parts according to actual needs to form a multi-antenna structure with two and above antennas, which is not limited in the disclosure.
Please continue to refer to
The second antenna A2 has a second feeding terminal 223a, a second grounding terminal 223b, and a third grounding terminal 223c. The second grounding terminal 223b and the third grounding terminal 223c are connected to the system grounding surface 233 of the circuit board 230.
Conventionally, since the metal frame (i.e., the conducting frame 220) usually serves as the appearance member and the size of the conducting frame 220 is kept constant, if the length of the first part 221 is changed for adjusting the antenna matching, the second part 223 needs to be modified synchronously. In other words, when the length of the first part 221 increases, the length of the second part 223 decreases, and vice versa. In this way, although the first antenna A1 may reach the required frequency band, the frequency band of the second antenna A2 is affected accordingly.
The configuration of the grounding member 240 in the embodiment can extend the length of the first antenna A1 while maintaining the sizes of the first part 221 and the second part 223, and increase the distance between the feeding terminal and the grounding terminal (i.e., the first feeding terminal 221a and the first grounding terminal 241), so that the first antenna A1 may meet the requirement of matching the required frequency band.
In addition, the conducting frame 220 has two slits 225 at the junction of the first part 221 and the second part 223, and two insulating joint members 227 are filled in the two slits 225 to connect the first part 221 and the second part 223. The conduction of the first part 221 and the second part 223 may be prevented through the disposition of the two insulating joint members 227.
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In the embodiment, most of the first part 221 is close to the edge of the electronic assembly 250, and the portion of the first part 221 that is close to the circuit board 230 is only near the two ends of the first part 221. Therefore, the first feeding terminal 221a can only be selectively disposed on one of the two ends of the first part 221, which is relatively limited.
In contrast, the second part 223 is all located at the edge of the circuit board 230, so the second feeding terminal 223a may be disposed at any position on the second part 223, and is not limited to the two ends.
In the embodiment, the grounding member 240 has a three-dimensional structure, such as an inverted Ω type as shown in
In addition, the material of the grounding member 240 is, for example, metal, but is not limited in the disclosure. Alternatively, Laser Direct Structuring (LDS) technology may be used to allow plastic with metal traces to replace metal, so as to improve the flexibility in use.
Please refer to
Referring to
The following describes the operating frequency bands of the first antenna A1 and the second antenna A2 of the wearable device 20 and the differences between the wearable devices with and without the grounding member.
In the embodiment, the first antenna A1 excites a first frequency band B1, and the length of the first part 221 and the grounding member 240 is a quarter wavelength of the first frequency band B1. The first frequency band B1 is, for example, a low frequency band of 607 to 960 MHz, but is not limited thereto. In the embodiment, the operating frequency band of the first antenna A1 covers the low frequency band of 607 to 960 MHz, an intermediate frequency band of 1710 to 2200 MHz, and a high frequency band of 2496 to 2690 MHz.
The second antenna A2 excites a second frequency band B2, and the length of the second part 223 is a quarter wavelength of the second frequency band B2. The second frequency band B2 is, for example, the intermediate frequency band of 1710 to 2200 MHz, but is not limited thereto. The operating frequency band of the second antenna A2 covers a GPS frequency band of 1575 MHz, the intermediate frequency band of 1710 to 2200 MHz, a Wi-Fi frequency band of 2400 to 2480 MHz, and the high frequency band of 2496 to 2690 MHz.
In short, the reflection loss of the wearable device 20 with the grounding member of the disclosure performs better in the low frequency band (607 to 960 MHz), the intermediate frequency band (1710 to 2200 MHz), and the high frequency band B3 (2496 to 2690 MHz) compared with the reflection loss of the wearable device without the grounding member.
That is, the antenna efficiency of the wearable device 20 of the embodiment performs better in the low frequency band (607 to 960 MHz), the intermediate frequency band (1710 to 2200 MHz), and the high frequency band (2496 to 2690 MHz) compared with the antenna efficiency of the wearable device without the grounding member.
In general, the wearable device without the grounding member (only the first part 221) cannot achieve good reflection loss when the length of the antenna is insufficient, and the operating bandwidth is also reduced, resulting in poor antenna efficiency. The disclosure may extend the length of the grounding structure of the first antenna A1 without changing the structure of the second antenna A2 through the configuration of the above-mentioned grounding member 240, so that the wearable device 20 still has a good effect of reflection loss with the miniaturized appearance, and thus obtains better antenna efficiency. Therefore, the wearable device 20 may have good performance in reflection loss and the antenna efficiency without affecting the structure of the second antenna A2.
In summary, the disclosure may extend the length of the antenna grounding structure to meet the operating frequency requirements without changing the size of the appearance member through the disposition of the grounding member, so that each of the antennas can achieve good matching. In addition, the disclosure may also adjust the impedance matching of the desired frequency band by modifying the length of the grounding member, thereby increasing the flexibility in use.
Number | Date | Country | Kind |
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110135970 | Sep 2021 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
5801663 | Lindenmeier | Sep 1998 | A |
20080284663 | Arima | Nov 2008 | A1 |
20080285216 | Kobayashi | Nov 2008 | A1 |
20090256759 | Hill | Oct 2009 | A1 |
20100073241 | Ayala Vazquez | Mar 2010 | A1 |
20110006953 | Chiang | Jan 2011 | A1 |
20160049719 | Tseng | Feb 2016 | A1 |
20190131696 | Hanshew | May 2019 | A1 |
20210066786 | Yarga | Mar 2021 | A1 |
20210066799 | Avser | Mar 2021 | A1 |
20210075090 | Yarga | Mar 2021 | A1 |
Number | Date | Country |
---|---|---|
111029771 | Apr 2020 | CN |
111293419 | Jun 2020 | CN |
M615566 | Aug 2021 | TW |
Number | Date | Country | |
---|---|---|---|
20230097880 A1 | Mar 2023 | US |