Antenna system, antenna device, and antenna structure
The antenna system with a structured antenna design enhances wireless reader devices by creating a three-dimensional detection space to improve signal acquisition and reduce interference, achieving a wider bandwidth.
Patent Information
- Application Number
- JP2024067466
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-09-07
- Filing Date
- 2024-04-18
- Publication Date
- 2025-12-24
- Estimated Expiration
- 2044-04-18
AI Technical Summary
Current wireless reader devices are susceptible to interference from surrounding frequency bands, leading to operational issues.
An antenna system comprising an antenna structure with a ring section, band adjustment section, and frequency adjustment section, which creates a three-dimensional detection space and enhances signal acquisition by integrating communication elements.
The antenna system effectively avoids external interference and achieves a wider bandwidth, enabling accurate signal acquisition from detectors within the defined space.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to antennas, and more particularly to antenna systems, antenna devices, and antenna structures. [Background technology]
[0002] The current wireless reader device does not have specific limitations or designs, so it is easily affected by the interference of surrounding frequency bands, which often causes problems during operation. Therefore, the inventor believes that the above drawbacks can be improved, and has devoted himself to research to propose the present invention, which utilizes scientific principles to rationally and effectively improve the above drawbacks. Summary of the Invention [Problem to be solved by the invention]
[0003] SUMMARY OF THE INVENTION Embodiments of the present invention provide an antenna system, an antenna device, and an antenna structure that can effectively improve upon problems that may occur with current wireless reader devices. [Means for solving the problem]
[0004] An embodiment of the present invention discloses an antenna device having an antenna structure and a communication element. The antenna structure includes a ring section including a first end, a second end spaced apart from the first end with a notch formed therebetween, and a peripheral portion coupled to the first and second ends to form a layout area communicating with the notch. A band adjustment section is disposed in the layout area, connected to the first end and a portion of the peripheral portion adjacent thereto, and has a first layout length along a first direction. A frequency adjustment section is disposed within the layout area, connected to the band adjustment section, and has a second layout length along the first direction that is longer than the first layout length. Communication elements are electrically coupled to the first and second ends of the ring section of the antenna structure. The antenna structure establishes a three-dimensional detection space via the communication elements and can acquire signals from at least one detector within the three-dimensional detection space.
[0005] In an embodiment of the present invention, an antenna structure is also disclosed. The antenna structure includes a ring section including a first end, a second end spaced apart from the first end with a notch formed therebetween, and a peripheral portion coupled to the first end and the second end to form a layout area communicating with the notch. A band adjustment section is disposed in the layout area, connected to the first end and a portion of the peripheral portion adjacent thereto, and has a first layout length along a first direction. A frequency adjustment section is disposed within the layout area, connected to the band adjustment section, and has a second layout length along the first direction that is greater than the first layout length. The antenna structure can establish a three-dimensional detection space via communication elements and acquire signals from at least one detector within the three-dimensional detection space.
[0006] An embodiment of the present invention also discloses an antenna system including an antenna device having an antenna structure and a communication element, and multiple detectors. The antenna structure includes a ring section including a first end, a second end spaced apart from the first end by a notch formed between the first end and the second end, and a peripheral portion connected to the first end and the second end to form a layout area that is both in communication with the notch; a band adjustment section disposed in the layout area, connected to the first end and a portion of the peripheral portion adjacent thereto, and having a first layout length along a first direction; and a frequency adjustment section disposed within the layout area, connected to the band adjustment section, and having a second layout length along the first direction that is longer than the first layout length. The communication element is electrically coupled to the first end and the second end of the ring section of the antenna structure. The antenna structure forms a three-dimensional detection space via the communication element. The multiple detectors are independently disposed in multiple cavities within the three-dimensional detection space, allowing the antenna device to acquire signals from the multiple detectors.
[0007] The antenna system, antenna device, and antenna structure disclosed in the embodiments of the present invention generate a predetermined three-dimensional detection space by combining an antenna structure and a communication element, accurately acquire a signal from at least one detector within the three-dimensional detection space, and effectively avoid external interference.
[0008] In order to better understand the features and technical contents of the present invention, please refer to the following detailed description of the present invention and the accompanying drawings, which are provided for reference and explanation only and are not intended to limit the scope of the present invention. [Brief explanation of the drawings]
[0009] [Figure 1] 1 is a three-dimensional schematic diagram of an antenna system according to a first embodiment of the present invention. [Figure 2] FIG. 2 is a schematic three-dimensional view of the antenna system of FIG. 1 after adjusting its three-dimensional sensing space. [Figure 3] 2 is a planar schematic diagram of the antenna structure of FIG. 1; [Figure 4] This is a simulation test diagram (1) of the antenna structure related to Figure 3. [Figure 5] This is a simulation test diagram (2) of the antenna structure related to Figure 3. [Figure 6] This is a simulation test diagram (3) of the antenna structure related to Figure 3. [Figure 7] 1 is a planar schematic diagram of an antenna structure according to a first embodiment of the present invention, the antenna structure having a polygonal contour. [Figure 8] FIG. 8 is a simulation test diagram of the antenna structure related to FIG. 7. [Figure 9] 1 is a planar schematic diagram of an antenna structure according to a first embodiment of the present invention, the antenna structure having an elliptical contour. [Figure 10] FIG. 10 is a simulation test diagram of the antenna structure related to FIG. 9. [Figure 11] 1 is a planar schematic diagram of an antenna structure having a triangular outline in accordance with a first embodiment of the present invention; [Figure 12] FIG. 12 is a simulation test diagram of the antenna structure related to FIG. 11. [Figure 13] FIG. 10 is a schematic plan view of an antenna structure according to a second embodiment of the present invention. [Figure 14] FIG. 14 is a simulation test diagram of the antenna structure related to FIG. 13. [Figure 15] FIG. 10 is a schematic plan view of a modified antenna structure according to a second embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0010] The following describes the embodiments of the present invention through specific examples of the "antenna system, antenna device, and antenna structure" according to the present application. Those skilled in the art can understand the merits and advantages of the present invention from the disclosure of this specification. The present invention can be implemented or applied in other different embodiments. Each clause in this specification can also be modified and changed equivalently based on various aspects or applications without departing from the spirit of the present invention. In addition, the drawings of the present invention are for simple and schematic illustration only and do not depict actual dimensions. The following embodiments will further explain the technical matters related to the present invention, but the disclosed contents do not limit the present invention. In addition, the term "or" used in this specification may include any one or more combinations of related items according to actual circumstances.
[0011] Throughout this specification, terms such as "first," "second," and "third" may be used to describe various components or signals, but it should be understood that these components or signals should not be limited by these terms. These terms are used primarily to distinguish one component from another or one signal from another. Furthermore, as used herein, the term "or" can include any one or combination of the associated listed items, where appropriate.
[0012] [First embodiment] Please refer to Figures 1 to 12. This shows a first embodiment of the present invention, and as shown in Figures 1 and 2, this embodiment discloses an antenna system 100 applicable to multiple independent chambers 200. In other words, the multiple chambers 200 are spatially separated from each other, optimally without communication, and may be separated by a radioactive material if necessary. Here, the antenna system 100 includes an antenna device 10 and multiple detectors 20 attached to the antenna device 10.
[0013] More specifically, the multiple detectors 20 are installed in multiple chambers 200, respectively, and are arranged within the three-dimensional detection space S constructed by the antenna device 10. This allows the antenna device 10 to acquire signals from the multiple detectors 20, but the antenna device 10 cannot acquire signals from any external detector 20a outside the three-dimensional detection space S. For understanding this embodiment, in FIGS. 1 and 2, the multiple chambers 200 are represented by a first chamber 201 and a second chamber 202, and the multiple detectors 20 include a first detector 21 arranged in the first chamber 201 and a second detector 22 arranged in the second chamber 202.
[0014] As mentioned above, in this embodiment, the antenna device 10 is described in combination with multiple detectors 20, but the present invention is not limited thereto. For example, in other embodiments not shown, the antenna device 10 may be applied alone or may be combined with other components (e.g., the antenna device 10 may be combined with at least one detector 20 arranged in the same chamber 200), and further, the number of multiple detectors 20 and the number of multiple chambers 200 may be adjusted according to design requirements (e.g., the number of multiple detectors 20 may be three or more, and the number of multiple chambers 200 may also be three or more).
[0015] The antenna device 10 includes an antenna structure 1 and a communication element 2 electrically coupled to the antenna structure 1, and the antenna structure 1 constructs a three-dimensional detection space S via the communication element 2, thereby acquiring a signal from at least one detector 20 within the three-dimensional detection space S.
[0016] More specifically, the three-dimensional detection space S is approximately spherical, and its radius can be changed according to actual requirements by adjusting the transmission power of the communication element 2. For example, the operation of the communication element 2 is adjusted between a first transmission power and a second transmission power greater than the first transmission power to change the range of the three-dimensional detection space S. Here, the communication element 2 operating at the first transmission power can generate a three-dimensional detection space S with a smaller range (e.g., FIG. 1). On the other hand, the communication element 2 operating at the second transmission power can generate a three-dimensional detection space S with a larger range (e.g., FIG. 2).
[0017] Furthermore, the specific embodiment of the communication element 2 may be adjusted according to different design requirements, and although the present embodiment takes a Radio Frequency Identification (RFID) reader and a Global System for Mobile Communications (GSM) receiver as examples, the present invention is not limited thereto.
[0018] It will be further explained that, although the antenna structure 1 is described in combination with the communication element 2 in this embodiment, the present invention is not limited thereto. For example, in other embodiments not shown, the antenna structure 1 may be applied (e.g., sold) alone or may be combined with other components. The specific structure of the antenna structure 1 and the connection relationship with other components will be described below as appropriate.
[0019] 2 and 3, the antenna structure 1 includes a ring section 11, a band adjustment section 12, and a frequency adjustment section 13 that are integrally connected, and the band adjustment section 12 and the frequency adjustment section 13 are disposed in an area surrounded by the ring section 11. Here, the antenna structure 1 is adapted to a center frequency, and the circumference of the ring section 11 is 70% to 100% of the wavelength of the corresponding center frequency.
[0020] Specifically, the ring section 11 includes a first end 111, a second end 112 spaced apart from the first end 111, and a peripheral portion 113 connected to the first end 111 and the second end 112. In this embodiment, a notch G1 is formed between the first end 111 and the second end 112, the ring section 11 defines a reference axis L that is parallel to the first direction D1 and passes through the notch G1, and the ring section 11 is disposed mirror-symmetrically with respect to the reference axis L. However, the present invention is not limited to this.
[0021] Here, the first end 111 and the second end 112 have an elongated structure perpendicular to a first direction D1, and are arranged linearly along a second direction D2 perpendicular to the first direction D1. The communication element 2 is electrically coupled to the first end 111 and the second end 112. Furthermore, the distance between the first end 111 and the second end 112 (i.e., the width of the notch G1) is 1% or less of the circumferential length of the ring section 11.
[0022] The peripheral portion 113 is roughly U-shaped, and both ends of the peripheral portion 113 are perpendicularly connected to the first end portion 111 and the second end portion 112, respectively, and the first end portion 111, the second end portion 112, and the peripheral portion 113 are configured to surround a layout area R that communicates with the notch G1. That is, the layout area R (or the ring section 11) is roughly rectangular in shape in FIG. 3 of this embodiment.
[0023] The band adjusting section 12 and the frequency adjusting section 13 are located within the layout area R, and occupy approximately, but not limited to, 20% to 55% of the area of the layout area R. Here, the band adjusting section 12 is connected to the first end 111 of the ring section 11 and an adjacent portion of the peripheral portion 113 (for example, the upper right portion of the peripheral portion 113 in FIG. 3 ), but does not contact the second end 112, and at least 90% of the area of the band adjusting section 12 is located on one side of the reference axis L.
[0024] 3 of this embodiment, when the first direction D1 is the left-right direction, the second direction D2 is the up-down direction, and the number characters are viewed in the positive direction, the band adjusting section 12 has a roughly rectangular shape and is located entirely above the reference axis L. In the first direction D1, the right side of the band adjusting section 12 is aligned with the left edge of the first end 111. The band adjusting section 12 has a first layout length L1 along the first direction D1 and a first layout width W1 along the second direction D2. In this embodiment, the first layout length L1 is 12.5% or less of the perimeter (or 12.5% or less of the wavelength of the corresponding center frequency), and the first layout width W1 is approximately equal to the length of the first end 111 but smaller than the first layout length L1.
[0025] 4, curve A1 is a simulation test result in which the antenna structure 1 shown in FIG. 3 has only the ring section 11 and the band adjusting section 12 (without the frequency adjusting section 13), and curve A2 is a simulation test result in which the antenna structure 1 shown in FIG. 3 has only the ring section 11 (without both the band adjusting section 12 and the frequency adjusting section 13). This clearly shows that by installing the band adjusting section 12, the band of the antenna structure 1 can be significantly expanded at the -10 dB position (for example, the band of curve A1 is approximately twice the band of curve A2).
[0026] Furthermore, the frequency adjustment section 13 is connected to (the bottom side of) the band adjustment section 12, and the frequency adjustment section 13 is arranged at an arrangement distance G2 along the second direction D2 in another part of the peripheral portion 113 adjacent to the second end 112 (for example, the lower right part of the peripheral portion 113 shown in Figure 3), but does not touch the second end 112.
[0027] More specifically, frequency adjustment section 13 has an elongated structure parallel to first direction D1, and is disposed along reference axis L in this embodiment, such that an end of frequency adjustment section 13 is adjacent to notch G1, but the present invention is not limited thereto. Here, frequency adjustment section 13 has first long side 131 and second long side 132 positioned opposite to each other, and band adjustment section 12 is connected to the first long side of frequency adjustment section 13. Conversely, band adjustment section 12 is connected between frequency adjustment section 13 and peripheral portion 113 along second direction D2.
[0028] Specifically, the frequency adjustment section 13 has a second layout length L2 along the first direction D1 and a second layout width W2 along the second direction D2, where the second layout length L2 is greater than the first layout length L1 and is equal to or less than 25% of the perimeter (or equal to or less than 25% of the wavelength of the corresponding center frequency), and the second layout width W2 is greater than the width of the notch G1 and is smaller than the first layout width W1.
[0029] 5 are simulation test results of the antenna structure 1 having the ring section 11, the band adjusting section 12, and the frequency adjusting section 13 shown in FIG. 3, with the curves B1, B2, and B3 being the curves in order from longest to shortest first layout length L1. This makes it clear that the corresponding center frequency of the antenna structure 1 can be changed by adjusting the first layout length L1 of the frequency adjusting section 13.
[0030] 6 is a comparison diagram between curve A2 and curve B1. From this, it can be seen that in this embodiment, by arranging the band adjusting section 12 and the frequency adjusting section 13 having a specific condition (e.g., the second layout length L2 is greater than the first layout length L1) at specific positions in the layout area R of the ring section 11, the antenna structure 1 can have a larger bandwidth (e.g., approximately twice as large) at a preset center frequency.
[0031] Although the shape of ring section 11 is rectangular as shown in FIG. 3, the shapes of ring section 11 and band adjusting section 12 can be changed according to design requirements. The present invention is not limited to the structure shown in FIG. 3. For example, as shown in FIGS. 7 and 8, ring section 11 can have a polygonal structure. Alternatively, as shown in FIGS. 9 and 10, ring section 11 can have an elliptical structure. Alternatively, as shown in FIGS. 11 and 12, ring section 11 can have a triangular structure. Furthermore, after simulation tests performed on ring section 11 for each of the above structures, it was found that antenna structure 1 can have a wider bandwidth (e.g., approximately twice as wide) at a preset center frequency.
[0032] As described above, in this embodiment, the antenna system 100 (or antenna device 10) generates a three-dimensional detection space S of a predetermined range by combining the antenna structure 1 and the communication element 2, and can accurately acquire signals from at least one detector 20 present in the three-dimensional detection space S and effectively avoid external interference.
[0033] [Second embodiment] As shown in Figures 13 to 15, this is the second embodiment of the present invention. Since this embodiment is similar to the first embodiment, we will omit the commonalities and focus on the differences between the first embodiment and the second embodiment.
[0034] 13 , antenna structure 1 includes auxiliary adjustment section 14 located within placement area R, and auxiliary adjustment section 14 is connected to frequency adjustment section 13 (more specifically, second long side 132). That is, when first direction D1 is the left-right direction, second direction D2 is the up-down direction, and the numeral characters are viewed in the positive direction, band adjustment section 12 and auxiliary adjustment section 14 are connected to opposite sides of frequency adjustment section 13. The right side of auxiliary adjustment section 14 is configured to face second end 112 along first direction D2 (i.e., the facing direction between the right side of auxiliary adjustment section 14 and second end 112 is first direction D1), and the side of auxiliary adjustment section 14 is configured to be aligned with the right side of frequency adjustment section 13 along the second direction, thereby forming gap G3 between second end 112 and notch G1.
[0035] Specifically, auxiliary adjustment section 14 has a third layout length L3 along first direction D1 and a width W3 along second direction D2. Third layout length L3 is shorter than first layout length L1, and width W3 of auxiliary adjustment section 14 is shorter than placement distance G2. That is, auxiliary adjustment section 14 is spaced apart from another portion of peripheral portion 113 in second direction D2 (e.g., the lower right portion of peripheral portion 113 in FIG. 13 ).
[0036] Furthermore, curve C shown in Figure 14 is the simulation test result of the antenna structure 1 shown in Figure 13, and curve B1 shown in Figure 14 is the simulation test result of the antenna structure 1 of the first embodiment shown in Figure 3. Therefore, in this embodiment, by arranging the auxiliary adjustment section 14 that meets specific conditions at a specific position, the antenna structure 1 can further expand the band based on the first embodiment 1.
[0037] 3 and 13 are arranged along the reference axis L, the present invention is not limited thereto. For example, as shown in FIG. 15, at least 90% of the area of the band adjustment section 12 may be on one side of the reference axis L, and the frequency adjustment section 13 may be on the other side of the reference axis L. In other embodiments of the present invention (not shown), depending on design requirements, the band adjustment section 12 and the frequency adjustment section 13 may be arranged on the same side of the reference axis L to accommodate various usage requirements.
[0038] [Technical Effects of the Embodiments of the Invention] In summary, the antenna system, antenna device, and antenna structure disclosed in the embodiments of the present invention, by combining the antenna structure with a communication element, can generate a three-dimensional detection space enclosing a predetermined range, accurately acquire signals from at least one detector located within the three-dimensional detection space, and effectively avoid external interference.
[0039] Furthermore, the antenna structure disclosed in the embodiments of the present invention can have a wider bandwidth (e.g., approximately a two-fold improvement) under a predetermined center frequency by arranging the band adjustment section and the frequency adjustment section, which satisfy a specific condition (e.g., the second layout length is greater than the first layout length), at specific positions in the arrangement area of the ring section.
[0040] Furthermore, the antenna structure disclosed in the embodiments of the present invention can further expand the band by providing an auxiliary adjustment section that meets specific conditions at a specific position.
[0041] The above disclosure is merely a preferred embodiment of the present invention and does not limit the scope of the claims of the present invention. Therefore, all equivalent technical modifications made based on the contents of the specification and accompanying drawings of the present invention shall be included in the scope of the claims of the present invention. [Explanation of symbols]
[0042] 100 Antenna System 10 Antenna device 1 Antenna structure 11 Ring Section 111 first end 112 second end 113 Surrounding area 12 Bandwidth Adjustment Section 13 Frequency Adjustment Section 131 First Long Side 132 Second long side 14 Auxiliary Adjustment Section 2. Communication elements 20 Detector 21 First Detector 22 Second Detector 20a External detector 200 Chambers 201 First Chamber 202 Second Chamber S 3D detection space R Layout Area G1 notch G2 placement distance G3 Gap D1 First direction D2 Second direction L Reference axis L1 First layout length L2 Second layout length L3 Third layout length W1 First layout width W2 Second layout width W3 width A1, A2, B1, B2, B3, C curve
Claims
1. An antenna device having an antenna structure and a communication element, The antenna structure comprises: a ring section including a first end, a second end spaced apart from the first end with a notch formed therebetween, and a periphery coupled to the first end and the second end to form a layout area that together communicates with the notch; a band adjusting section disposed in the layout area, connected to the first end and a portion of the adjacent periphery, and having a first layout length along a first direction; a frequency adjustment section disposed within the layout area, connected to the band adjustment section, and having a second layout length along the first direction that is greater than the first layout length; Equipped with the communication element is electrically coupled to the first end and the second end of the ring section of the antenna structure; the antenna structure constructs a three-dimensional detection space via the communication elements and acquires a signal from at least one detector within the three-dimensional detection space; An antenna device comprising:
2. 2. The antenna apparatus of claim 1, wherein the antenna structure includes an auxiliary tuning section located within the layout area, the auxiliary tuning section coupled to the frequency tuning section and having a third layout length along the first direction that is smaller than the first layout length.
3. 3. The antenna device according to claim 2, wherein the frequency adjustment section is an elongated structure parallel to the first direction, and the band adjustment section and the auxiliary adjustment section are coupled to both sides of the frequency adjustment section.
4. 3. The antenna device according to claim 2, wherein the frequency adjustment section is arranged along a second direction perpendicular to the first direction, at a predetermined interval from the second end and at another portion of the peripheral portion located near the second end, the auxiliary adjustment section has a width in the second direction that is smaller than the predetermined interval, the auxiliary adjustment section is arranged along the second direction at a distance from the other portion of the peripheral portion, the auxiliary adjustment section faces the second end along the first direction, and a gap communicating with the notch is formed between the auxiliary adjustment section and the second end.
5. 2. The antenna apparatus of claim 1, wherein the ring section defines a reference axis that is parallel to the first direction and passes through the notch, and at least 90% of the area of the band adjustment section is located on one side of the reference axis.
6. 6. The antenna apparatus of claim 5, wherein the frequency adjustment section is located on the other side of the reference axis, and the ring section is mirror-symmetric with respect to the reference axis, and the frequency adjustment section is disposed along the reference axis, and the ring section is mirror-symmetric with respect to the reference axis.
7. 2. The antenna apparatus of claim 1, wherein the ring section has a perimeter, and the first layout length does not exceed 12.5% of the perimeter, and the second layout length does not exceed 25% of the perimeter.
8. 8. The antenna device of claim 7, wherein the antenna structure is applied to a center frequency, and the perimeter of the ring section is 70% to 100% of a wavelength corresponding to the center frequency, and the distance between the first end and the second end does not exceed 1% of the perimeter.
9. The antenna device according to claim 1 , wherein the band adjustment section and the frequency adjustment section occupy 20% to 55% of the layout area.
10. 2. The antenna device of claim 1, wherein the communication element is further defined as a Radio Frequency Identification (RFID) reader or a Global System for Mobile Communications (GSM) receiver, and operation of the communication element is adjusted between a first transmit power and a second transmit power greater than the first transmit power, thereby changing a range of the three-dimensional sensing space.
11. a ring section including a first end, a second end spaced apart from the first end with a notch formed therebetween, and a periphery coupled to the first end and the second end to form a layout area that together communicates with the notch; a band adjusting section disposed in the layout area, connected to the first end and a portion of the periphery adjacent thereto, and having a first layout length along a first direction; a frequency adjustment section disposed within the layout area, connected to the band adjustment section, and having a second layout length along the first direction that is greater than the first layout length; Equipped with constructing a three-dimensional detection space via communication elements and acquiring a signal from at least one detector in the three-dimensional detection space; An antenna structure comprising:
12. 12. The antenna structure of claim 11, comprising an auxiliary tuning section located within the layout area, the auxiliary tuning section coupled to the frequency adjustment section and having a third layout length along the first direction that is shorter than the first layout length, the ring section having a perimeter, the first layout length not exceeding 12.5% of the perimeter, and the second layout length not exceeding 25% of the perimeter, the ring section defining a reference axis that is parallel to the first direction and passes through the notch, at least 90% of an area of the band adjustment section being located on one side of the reference axis, and the ring section being mirror-symmetric with respect to the reference axis.
13. 13. The antenna structure of claim 12, wherein a distance between the first end and the second end does not exceed 1% of the circumference, the auxiliary tuning section faces the second end, and a gap is formed between the auxiliary tuning section and the second end that communicates with the notch.
14. An antenna system comprising an antenna device having an antenna structure and a communication element, and a plurality of detectors, The antenna structure comprises: a ring section including a first end, a second end spaced apart from the first end with a notch formed therebetween, and a periphery coupled to the first end and the second end to form a layout area that together communicates with the notch; a band adjusting section disposed in the layout area, connected to the first end and a portion of the periphery adjacent thereto, and having a first layout length along a first direction; a frequency adjustment section disposed within the layout area, connected to the band adjustment section, and having a second layout length along the first direction that is greater than the first layout length; Equipped with the communication element is electrically coupled to the first end and the second end of the ring section of the antenna structure, and the antenna structure establishes a three-dimensional sensing space via the communication element; The plurality of detectors are independently disposed in each of the plurality of chambers in the three-dimensional detection space, and the antenna device acquires signals from the plurality of detectors. An antenna system comprising:
15. The antenna system of claim 14 , wherein the antenna system is unable to acquire signals of any external detectors located outside the three-dimensional detection space.
Citation Information
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