This application claims the benefit of priority to Taiwan Patent Application No. 111117060, filed on May 6, 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 an antenna structure, and more particularly to an antenna structure that is three-dimensional.
Conventional antenna structures are designed as planar sheet-like structures. However, when the conventional antenna structures are disposed on an element (e.g., a substrate in a mobile phone), the conventional antenna structures will occupy a considerable area on the element, so that a size of a final product cannot be reduced. For example, when a side length of a conventional antenna structure is designed to be ½λ and is applied to ultra-high frequency radio frequency identification (i.e., UHF RFID), a side length of a conventional antenna structure having a frequency band within a range from 902 MHz to 928 MHz is bound to be greater than 16 cm.
Furthermore, when the aforementioned element requires a dual-band function, two different frequency band antenna structures (i.e., two separate systems having different frequency bands) need to be installed on the element. However, when the two separate systems having different frequency bands are installed on the element, a size of a final product also cannot be reduced.
In response to the above-referenced technical inadequacy, the present disclosure provides an antenna structure.
In one aspect, the present disclosure provides an antenna structure. The antenna structure includes a first insulating substrate, a second insulating substrate, a first antenna, a second antenna, a third antenna, a grounding element, and at least one feeding point. The first insulating substrate and the second insulating substrate are spaced apart from each other. Each of the first insulating substrate and the second insulating substrate has two side surfaces that are opposite to each other. The first antenna is disposed on one of the two side surfaces of the first insulating substrate. The first antenna is in a symmetrical shape and has a first line of symmetry. The second antenna is disposed on another one of the two side surfaces of the first insulating substrate. The second antenna is in a symmetrical shape and has a second line of symmetry. The first line of symmetry and the second line of symmetry have a predetermined angle there-between, and the predetermined angle is within a range from 35 degrees to 55 degrees. The third antenna is disposed on one of the two side surfaces of the second insulating substrate that faces the first insulating substrate. The grounding element is disposed on another one of the two side surfaces of the second insulating substrate away from the first insulating substrate. The at least one feeding point is connected to the third antenna and the grounding element.
Therefore, in the antenna structure provided by the present disclosure, by virtue of “the first insulating substrate and the second insulating substrate being spaced apart from each other,” “the first antenna and the second antenna being respectively disposed on the two side surfaces of the first insulation substrate, and the predetermined angle between the first line of symmetry of the first antenna and the second line of symmetry of the second antenna being within a range from 35 degrees to 55 degrees”, and “the third antenna and the grounding element being respectively disposed on the two side surfaces of the second insulation substrate”, the antenna structure being a single system can have a dual-band function, and an area occupied by the antenna structure can be more effectively decreased than an area occupied by an antenna structure having a planar structure and having a same gain when the antenna structure is disposed on an element.
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.
Referring to
Referring to
Referring to
Referring to
In a practical application, the antenna structure 100A further includes a support frame 8 disposed between the first insulating substrate 1 and the second insulating substrate 2, and the first insulating substrate 1 and the second insulating substrate 2 can be kept at the predetermined distance by the support frame 8.
Preferably, the support frame 8 may be an annular structure that is made of an insulating material. A cross section of the support frame 8 is tapered from the first insulating substrate 1 toward the second insulating substrate 2 so as to be substantially a right-angled triangle, but the present disclosure is not limited thereto. In addition, the support frame 8 located between the first insulating substrate 1 and the second insulating substrate 2 can surround elements located on two side surfaces of the first insulating substrate 1 and the second insulating substrate 2 that face each other (e.g., the second antenna 4 and the third antenna 5).
Naturally, in another embodiment of the present disclosure (not shown in the figures), the support frame 8 can be omitted, and the first insulating substrate 1 and the second insulating substrate 2 can maintain the predetermined distance through other adjacent elements (e.g., other frames located in a final product).
Referring to
The second antenna 4 is a coupling antenna and a sheet-like structure, and the second antenna 4 is disposed on another one of the two side surfaces of the first insulating substrate 1 (e.g., a side surface of the first insulating substrate 1 that is adjacent to the second insulating substrate 2). The second antenna 4 in the present embodiment is in a rectangular shape and has two second lines of symmetry L2 (only one of the two first lines of symmetry L2 is shown in
Referring to
Accordingly, a coupling amount of the first antenna 3 and a coupling amount of the second antenna 4 can be maintained at an ideal value when the first antenna 3 and the second antenna 4 are not blocked by each other. In order to reduce a mutual blocking region between the first antenna 3 and the second antenna 4, the predetermined angle θ is preferably 45 degrees.
It should be noted that the first line of symmetry L1 and the second line of symmetry L2 in the present embodiment are diagonal lines of a rectangle, but the first line of symmetry L1 and the second line of symmetry L2 are not limited thereto. For example, the first line of symmetry L1 and the second line of symmetry L2 may also be center lines of a rectangle (e.g., an antenna structure 100B′ as shown in
In addition, a quantity of each of the first line of symmetry L1 and the second line of symmetry L2 in practice may be one. When the shape of the first antenna 3 and the shape of the second antenna 4 are the same, the first line of symmetry L1 and the second line of symmetry L2 correspond to each other.
Referring to
The third antenna 5 is disposed on a side surface of the second insulating substrate 2 facing the first insulating substrate 1, and the third antenna 5 may correspond in position to the first antenna 3 or the second antenna 4. When a frequency value of the first antenna 3 is close to a frequency value of the second antenna 4 and a material of the first antenna 3 is the same as a material of the second antenna 4, an area defined by orthogonally projecting at least one of first antenna 3 and the second antenna 4 on the second insulating substrate 2 is substantially equal to an area defined by orthogonally projecting the third antenna 3 on the second insulating substrate 2 (as shown in
In other words, the size of the first antenna 3, the size of the second antenna 4, and the size of the third antenna 5 may be the same. Or, the size of the first antenna 3 or the size of the second antenna 4 (that is, the size of the first antenna 3 and the size of the second antenna 4 are different) is the same as the size of the third antenna 5.
Referring to
Referring to
In addition, the antenna structure 100A of the present embodiment can achieve the effect of dual frequency bands by a cooperation between the first antenna 3, the second antenna 4, and the third antenna 5. Referring to
Referring to
Referring to
For example, in the antenna structure 100B shown in
In addition, in the antenna structure 100B′ shown in
Accordingly, the first antenna 3 and the second antenna 4 can reduce an area blocked by each other, so as to increase a coupling amount of the first antenna 3 and a coupling amount of the second antenna 4. In other words, the antenna structure 100B in the present embodiment can have a more ideal coupling amount than the antenna structure 100A in the first embodiment.
Naturally, in another embodiment of the present disclosure (not shown in the figures), the quantities of the notches of each of the first antenna 3 and the second antenna 4 may also be two. The positions of the two notches P3 of the first antenna 3 are located on two non-adjacent diagonal corners of the first antenna 3, and the positions of the two notches P4 of the second antenna 4 are located on two non-adjacent diagonal corners of the second antenna 4.
In other words, the two non-adjacent diagonal corners of the first antenna 3 and the two non-adjacent diagonal corners of the second antenna 4 are replaced by the two notches P3 and the two notches P4, so that the first antenna 3 and the second antenna 4 are substantially in the shape of a double arrow (that is, the first antenna 3 and the second antenna 4 have a two-fold rotational symmetry relationship). Furthermore, the first antenna 3 and the second antenna 4 respectively have a first line of symmetry and a second line of symmetry that corresponds in position to the first line of symmetry, and the first line of symmetry and the second line of symmetry have an angle of 45 degrees there-between. Accordingly, the first antenna 3 and the second antenna 4 also have the same effect (i.e., having a more ideal coupling amount).
Referring to
Referring to
In more detail, in the present embodiment, the third antenna 5 has two center lines LC that have an angle of 90 degrees there-between. The two feeding points 7 on the second insulating substrate 2 correspond in position to the two center lines LC of the third antenna 5, respectively. Accordingly, the two feeding points 7 can produce a circular polarization by using positions thereof to cooperate with the first antenna 3, the second antenna 4, the third antenna 5, and the grounding element 6. Since the way that the two feeding points 7 produce the circular polarization by using the positions thereof (e.g., having the two frequencies not match each other) is known to those skilled in the art, details thereof will not be described herein.
Referring to
When a dot density in
In addition, it is worth noting that, the antenna structure can also produce the circular polarization through a single feeding point 7. Specifically, the feeding point 7 is located at a non-center position of the third antenna 5, so that distances between the feeding point 7 and four sides of the third antenna 5 are not equal. Accordingly, the feeding point 7 can be disturbed by a distance difference between the feeding point 7 and the third antenna 5, so as to produce the circular polarization.
For example, in the antenna structure 100C′ shown in
Naturally, since the circular polarization can be achieved by the feeding point 7 through other means (e.g., by using a microstrip) that are known to those skilled in the art, details thereof will not be described herein.
In conclusion, in the antenna structure provided by the present disclosure, by virtue of “the first insulating substrate and the second insulating substrate being spaced apart from each other,” “the first antenna and the second antenna being respectively disposed on the two side surfaces of the first insulation substrate, and the predetermined angle between the first line of symmetry of the first antenna and the second line of symmetry of the second antenna being within a range from 35 degrees to 55 degrees”, and “the third antenna and the grounding element being respectively disposed on the two side surfaces of the second insulation substrate”, the antenna structure being a single system can have a dual-band function, and an area occupied by the antenna structure can be more effectively decreased than an area occupied by an antenna structure having a planar structure and having a same gain when the antenna structure is disposed on an element.
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.
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