This application claims the benefit of priority to Taiwan Patent Application No. 109217340, filed on Dec. 30, 2020. 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 a series-connected antenna structure.
In order for conventional antenna structures to have omnidirectional radiation and high gain, most of the conventional antenna structures are implemented by using dipole antennas for serial connection. Specifically, for the conventional antenna structures, a connecting line is used to connect antennas in series in the making of a circuit board. However, if the conventional antenna structures only have the antennas connected in series on one of two sides of the circuit board, a radiation pattern of the conventional antenna structures cannot meet the omnidirectional requirement due to an influence from the ground. Therefore, in most of the conventional antenna structures, the antennas are symmetrically arranged on two sides of the circuit board. However, after two radiation patterns on the both sides of the circuit board of the conventional antenna structures influence each other, a difference between the radiation patterns on the either side of the circuit board will be too large to approach a circular shape (that is, the degree of roundness is too low).
In response to the above-referenced technical inadequacies, the present disclosure provides a series-connected antenna structure to effectively improve the issues associated with the conventional antenna structures.
In one aspect, the present disclosure provides a series-connected antenna structure. The series-connected antenna structure includes an insulating substrate, a first connecting line, two first antennas, a second connecting line, two second antennas, and a load point. The insulating substrate includes a first surface and a second surface. The first connecting line is disposed on the first surface and includes a first main section and two first subordinate sections that are connected to the first main section. The first main section is arranged on one of two sides of the first surface, and the two first subordinate sections are arranged on another one of the two sides of the first surface. The two first antennas are disposed on the first surface and are spaced apart from each other. Each of the two first antennas has two first sub-antennas each having one of a plurality of first free ends and one of a plurality of first connection ends that are opposite to each other. The two first sub-antennas of one of the two first antennas are electrically coupled to the first main section by the first connection ends thereof, and jointly form a symmetrical shape. The two first sub-antennas of another one of the two first antennas are respectively and electrically coupled to the two first subordinate sections by the first connection ends thereof, and jointly form a symmetrical shape. The second connecting line is disposed on the second surface and includes a second main section and two second subordinate sections that are connected to second main section. The second main section is arranged on one of two sides of the second surface, and the two second subordinate sections are arranged on another one of the two sides of the second surface. The two second antennas are disposed on the second surface and are spaced apart from each other. The two second antennas correspond in position to the two first antennas. Each of the two second antennas has two second sub-antennas each having one of a plurality of second free ends and one of a plurality of second connection ends that are opposite to each other. The two second sub-antennas of one of the two second antennas are electrically coupled to the second main section by the second connection ends thereof, and jointly form a symmetrical shape. The two second sub-antennas of another one of the two second antennas are respectively and electrically coupled to the two second subordinate sections by the second connection ends thereof, and jointly form a symmetrical shape. In one of the two second antennas and one of the two first antennas that correspond in position to each other, two of the second free ends of the second antenna and two of the first free ends of the first antenna face opposite directions. The load point is disposed on the insulating substrate and is electrically coupled to the first connecting line and the second connecting line.
Therefore, by virtue of “in one of the two first antennas and one of the two second antennas that correspond in position to each other, the connection end of the two first sub-antennas being electrically coupled to the main section of the first connecting line, and the connection end of the two second sub-antennas being electrically coupled to the main section of the second connecting line” and “in one of the two first antennas and one of the two second antennas that correspond in position to each other, the connection end of the two first sub-antennas being respectively and electrically coupled to the two subordinate sections of the first connecting line, and the connection end of the two second sub-antennas being respectively and electrically coupled to the two subordinate sections of second connecting line”, the series-connected antenna structure can improve the degree of roundness.
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
In the present embodiment, the insulating substrate 110 includes a first surface 111 and a second surface 112 that are opposite to each other, and two ends of the insulating substrate 110 along the length direction LD are respectively defined as a first end 113 and a second 114. For the convenience of description, the first surface 111 faces an upward direction in
In addition, referring to
The first connecting line 120 in the present embodiment is disposed on the first surface 111, and is arranged roughly along the center line CL of the first surface 111, but the present disclosure is not limited thereto. For example, in another embodiment of the present disclosure that is not shown, the first connecting line 120 may be arranged along an imaginary line that extends along the length direction LD and located at any positions on the first surface 111.
Referring to
Specifically, each of the two first antennas 130 in the present embodiment is substantially in a U-shape, and the center line CL of the first surface 111 is a line of symmetry that is common to the two first antennas 130. The two first sub-antennas 131 of each of the two first antennas 130 are respectively located on two sides of the line of symmetry (i.e., the center line CL of the first surface 111), and two of the first free ends 1311 of each of the two first sub-antennas 131 face the first end 113.
It should be noted that the two first antennas 130 and the first connecting line 120 in the present embodiment are integrally connected to each other, but the present disclosure is not limited thereto. For example, the two first antennas 130 and the first connecting line 120 may each be a single member, and are electrically coupled to each other.
Next, referring to
The two second antennas 150 are disposed on the second surface 112 and are spaced apart from each other. The two second antennas 150 roughly correspond in position to the two first antennas 130. In the present embodiment, each of the two second antennas 150 has two second sub-antennas 151 each having one of a plurality of second free ends 1511 and one of a plurality of second connection ends 1512 that are opposite to each other. The two second sub-antennas 151 of each of the two second antennas 150 are electrically coupled to the second connecting line 140 by the second connection ends 1512 thereof and jointly form a symmetrical shape.
In the present embodiment, the shape of each of the two second antennas 150 is the same as the shape of each of the two first antennas 130. That is, the two second antennas 150 are each substantially in a U-shape, and the center line CL of the second surface 112 is a line of symmetry that is common to the two second antennas 150. The two second sub-antennas 151 of each of the two second antennas 150 are respectively located on two sides of the line of symmetry (i.e., the center line CL of the second surface 112), and a direction toward which two of the second free ends 1511 of the two second antennas 150 face is opposite to a direction toward which two of the first free ends 1311 of the two first antennas 130 face. In other words, the two second free ends 1511 of each of the two second sub-antennas 151 face the second end 114.
It should be noted that the two second antennas 150 and the second connecting line 140 in the present embodiment are integrally connected to each other, but the present disclosure is not limited thereto. For example, the two second antennas 150 and the second connecting line 140 may each be a single member, and are electrically coupled to each other.
In addition, although the two first antennas 130 and the two second antennas 150 in the present embodiment are each in the U-shape, the two first antennas 130 and the two second antennas 150 in another embodiment of the present disclosure that is not shown may also be in other symmetrical shapes, such as a “-” shape, or an “H” shape.
Referring to
Referring to
The load point 160 in the present embodiment penetrates the insulating substrate 110 along a thickness direction TD of the insulating substrate 110, and two end surfaces of the load point 160 are respectively exposed from outer sides of the first surface 111 and the second surface 112, so as to be electrically coupled to the first connecting line 120 and the second connecting line 140. In other words, a region defined by orthogonally projecting one of the two end surfaces of the load point 160 located on the first surface 111 toward the second surface 112 is overlapped with another one of the two end surfaces of the load point 160 located on the second surface 112.
It is worth noting that a ratio of a distance between the load point 160 and one of the two reference positions RP to a distance between the load point 160 and another one of the two reference positions RP is 1:1. In other words, two first shortest distances D1 each being between one of the two end surfaces of the load point 160 located on the first surface 111 and any one of the two first antennas 130 are equal to each other, two second shortest distances D2 each being between another one of the two end surfaces of the load point 160 located on the second surface 112 and any one of the two second antennas 150 are also equal to each other, and any one of the two first shortest distances D1 is equal to any one of the two second shortest distances D2.
Furthermore, in practice, a total length of the two first shortest distances D1 or the two second shortest distances D2 is 0.5 to 1.5 times a wavelength corresponding to a center frequency of the transmission frequency band, which can also be understood as a distance between the two reference positions RP being 0.5 to 1.5 times the wavelength corresponding to the center frequency of the transmission frequency band. The distance is preferably equal to the wavelength corresponding to the center frequency of the transmission frequency band, but the present disclosure is not limited thereto. Through the above structure, the series-connected antenna structure 100A allows enables maximum values of a high frequency and a low frequency of a radiation pattern to be located on a horizontal plane after the two first antennas 130 disposed on the first board 111 and the two second antennas 150 disposed on the second board 112 influence each other.
In other words, any antenna structure that does not have a design of “the two end surfaces of the load point being respectively and electrically coupled to a part of a connecting line between two antennas disposed on one of two sides of the insulating substrate and to a part of a connecting line between two antennas disposed on another one of the two sides of the insulating substrate” is not the series-connected antenna structure 100A provided by the present disclosure.
Referring to
Specifically, in one of the two first antennas 130 (i.e., the first antenna 130 located at a lower position of
It should be noted that, based on the direction change of the two first antennas 130 and the two second antennas 150 in the present embodiment, the position of the load point 160 needs to be further adjusted so that a ratio of a distance between the load point 160 and one of the two reference positions RP to a distance between the load point 160 and another one of the two reference positions RP is 1:3. In detail, referring to
Referring to
In the present embodiment, each of the series-connected antenna structures 100a′, 100B′ further includes a plurality of first auxiliary antennas 170 and a plurality of second auxiliary antennas 180. Each of the first auxiliary antennas 170 is equivalent to the first antenna 130, and each of the second auxiliary antennas 180 is equivalent to the second antenna 150.
Specifically, the first auxiliary antennas 170 in the present embodiment are equally disposed on the first surface 111, and are electrically coupled to the first connecting line 120. A shape of each of the first auxiliary antennas 170 is the same as a shape of the first antenna 130. The second auxiliary antennas 180 in the present embodiment are equally disposed on the second surface 112, and are electrically coupled to the second connecting line 140. A shape of each of the second auxiliary antennas 180 is the same as a shape of the second antenna 150, and a quantity of the second auxiliary antennas 180 is equal to a quantity of the first auxiliary antennas 170.
In addition, the insulating substrate 110 has one of a plurality of auxiliary reference positions XP located at an electrical coupling point between any one of the first auxiliary antennas 170 and the first connecting line 120. A region defined by orthogonally projecting any one of the second auxiliary antennas 180 toward the first surface 111 and one of the first auxiliary antennas 170 that corresponds in position to the any one of the second auxiliary antennas 180 jointly have a two-fold rotational symmetry relative to a corresponding one of the auxiliary reference positions XP.
It can be seen that, in terms of arrangement direction and arrangement method, each of the first auxiliary antennas 170 is disposed on the insulating substrate 110 in a manner substantially the same as that of the first antenna 130, and a setting direction and a setting method of each of the second auxiliary antennas 180 is disposed on the insulating substrate 110 in a manner substantially the same as that of the second antenna 150.
It should be noted that a distance between any two of the first auxiliary antennas 170 adjacent to each other and a distance between any one of the two first antennas 130 and an adjacent one of the first auxiliary antennas 170 each are defined as a first shortest distance D4, and the first shortest distances D4 are equal to each other. A distance between any two of the second auxiliary antennas 180 adjacent to each other and a distance between any one of the two second antennas 150 and an adjacent one of the second auxiliary antennas 180 each are defined as a second shortest distance D5, and the second shortest distances D5 are equal to each other. In practice, each of the first shortest distances D4 and each of the second shortest distances D5 are equal to the wavelength corresponding to the center frequency of the transmission frequency band.
In addition, referring to
Compared with the first embodiment and the second embodiment, the series-connected antenna structures 100A′, 100B′ of the present embodiment can increase an intensity of the radiation pattern according to user requirements.
Specifically, by taking the series-connected antenna structure 100A′ as an example (referring to
Referring to
In the present embodiment, the first connecting line 220 includes a first main section 221 and two first subordinate sections 222 that are connected to the first main section 221. The first main section 221 is arranged on one of two sides of the first surface 211 (i.e., a side of the first surface 211 close to the second end 214), and the two first subordinate sections 222 are arranged on another one of the two sides of the first surface 211 (i.e., a side of the first surface 211 close to the first end 213) and are spaced apart from each other. The first connecting line 220 is substantially in a Y-shape.
In addition, the second connecting line 240 is the same as the first connecting line 220. In other words, the second connecting line 240 is also substantially in a Y-shape, and includes a second main section 241 and two second subordinate sections 242 that are connected to second main section 241. The second main section 241 is arranged on one of two sides of the second surface 212, and the two second subordinate sections 242 are arranged on another one of the two sides of the second surface 212 and are spaced apart from each other. It is worth noting that a region defined by orthogonally projecting the two second subordinate sections 242 and the second main section 241 (i.e., the second connecting line 240) toward the first surface 211 is overlapped with the two first subordinate sections 222 and the first main section 221 (i.e., the first connecting line 220).
In other words, referring to
Based on the changes of the first connecting line 220 and the second connecting line 240 in the present embodiment, two first antennas 230A, 230B and two second antennas 250A, 250B are also different from those of the first embodiment. Specifically, the two first antennas 230A, 230B are respectively located in the first area A1 and the second area A2. Two first sub-antennas 231 of the first antenna 230A located in the first area A1 are electrically coupled to the first main section 221 by first connection ends 2312 thereof, and jointly form a first symmetrical shape (i.e., a U-shape). The two first sub-antennas 231 of the first antenna 230B located in the second area A2 are respectively and electrically coupled to the two first subordinate sections 222 by the first connection ends 2312 thereof, and jointly form a second symmetrical shape.
In other words, the two first antennas 230A, 230B in the present embodiment respectively have two different symmetrical shapes (i.e., the first symmetrical shape and the second symmetrical shape), and the center line CL of the first surface 211 is still a line of symmetry common to the two first antennas 230A, 230B. It should be noted that two first free ends 2311 of each of the two first antennas 230A, 230B face the first end 213 in the present embodiment (as shown in
Next, referring to
Referring to
In addition, the two free ends 2511 of each of the two second antennas 250A, 250B in the present embodiment face the second end 214 (as shown in
Moreover, a position of a load point 260 of the present embodiment is roughly similar to the load point 160 of the first embodiment. Specifically, referring to
Through the above structure, the series-connected antenna structure 200A not only has the advantages of the first embodiment but also reduces a difference between a maximum value and a minimum value of the radiation pattern on the horizontal plane to be within about 0.5 dBi so that a final radiation pattern FTE of the series-connected antenna structure 200A may approach a circle shape on the H-plane (that is, increasing the degree of roundness).
Referring to
Specifically, the two first free ends 2311 of the first antenna 230B in the second symmetrical shape and the two second free ends 2511 of the second antenna 250A in the first symmetrical shape face the second end 214, and the two second free ends 2511 of the second antenna 250B in the second symmetrical shape and the two first free ends 2311 of the first antenna 230A in the first symmetrical shape face the first end 213.
In other words, in the present embodiment, the two first antennas 230A, and 230B face each other, and the two second antennas 250A, 250B face away from each other. A region defined by orthogonally projecting the second antenna 250A toward the first surface 211 and the first antenna 230A jointly have a two-fold rotational symmetry relative to a corresponding the reference position RP′, and a region defined by orthogonally projecting the second antenna 250B toward the first surface 211 and the first antenna 230B jointly have a two-fold rotational symmetry relative to a corresponding the reference line XL.
In other words, referring to
Referring to
Referring to
Referring to
Furthermore, the two first free ends 2711 of each of the first auxiliary antennas 270A and the two first free ends 2311 of the first antenna 230A face the same direction, and the two first free ends 2711 of each of the first auxiliary antennas 270B and the two first free ends 2311 of the first antenna 230B face the same direction. In other words, on any one of the two sides of the load point 260, each of the first auxiliary antennas is equivalent to the first antenna that corresponds in position thereto in terms of direction and shape.
Moreover, quantities of the second auxiliary antennas 280A, 280B are equal to quantities of the first auxiliary antennas 270A, 270B. The second auxiliary antennas 280A, 280B are equally disposed on the second surface 212 (that is, the quantities of the second auxiliary antennas 280A, 280B respectively located on two sides of the load point 260 are equal to each other), and the second auxiliary antennas 280A, 280B correspond in position to the first auxiliary antennas 270A, 270B.
Each of the second auxiliary antennas 280A, 280B has two second sub-auxiliary antennas 281 each having one of a plurality of second free ends 2811 and one of a plurality of second connection ends 2812 that are opposite to each other. The two second sub-auxiliary antennas 281 of each of the second auxiliary antennas 280A disposed on one of two sides of the second surface 212 that has the second main section 241 are electrically coupled to the second main section 241 by the second connection ends 2812 thereof, and jointly form the first symmetrical shape (i.e., a U shape). The two second sub-auxiliary antennas 281 of each of the second auxiliary antennas 280B disposed on another one of the two sides of the second surface 212 that has the two second subordinate sections 242 are respectively and electrically coupled to the two second subordinate sections 242 by the second connection ends 2812 thereof, and jointly form the second symmetrical shape.
Furthermore, the two second free ends 2811 of each of the second auxiliary antennas 280A located on one of two sides of the load point 260 and the two second free ends 2511 of the second antenna 250A face the same direction. Moreover, the two second free ends 2811 of each of the second auxiliary antennas 280B located on another one of the two sides of the load point 260 and the two second free ends 2511 of the second antenna 250B face the same direction.
It can be seen that, in terms of arrangement direction and arrangement method, any one of the first auxiliary antennas 270A, 270B is disposed on the insulating substrate 210 in a manner substantially the same as that of the first antenna that is located on the same side (or same area), and any one of the second auxiliary antennas 280A, 280B is disposed on the insulating substrate 210 in a manner substantially the same as that of the second antenna that is located on the same side (or same area).
Referring to
In addition, referring to
Compared with the fourth embodiment and the fifth embodiment, the series-connected antenna structures 200A′, 200B′ of the present embodiment can increase an intensity of the radiation pattern according to user requirements.
Specifically, by taking the series-connected antenna structure 200A′ as an example (referring to
It is obvious from the final radiation FTE in
In conclusion, by virtue of “in one of the two first antennas and one of the two second antennas that correspond in position to each other, the connection end of the two first sub-antennas being electrically coupled to the main section of the first connecting line, and the connection end of the two second sub-antennas being electrically coupled to the main section of the second connecting line” and “in one of the two first antennas and one of the two second antennas that correspond in position to each other, the connection end of the two first sub-antennas being respectively and electrically coupled to the two subordinate sections of the first connecting line, and the connection end of the two second sub-antennas being respectively and electrically coupled to the two subordinate sections of second connecting line”, the series-connected antenna structure can improve the degree of roundness.
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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109217340 | Dec 2020 | TW | national |
Number | Name | Date | Kind |
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20020190912 | Lebaric | Dec 2002 | A1 |
20040183727 | Choi | Sep 2004 | A1 |
20100060526 | Cheng | Mar 2010 | A1 |
Number | Date | Country | |
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20220209399 A1 | Jun 2022 | US |