Antenna and Electronic Device
20240243480 ยท 2024-07-18
Inventors
- Xichao FAN (Beijing, CN)
- Yali Wang (Beijing, CN)
- Youjian HU (Beijing, CN)
- Zhipeng Lu (Beijing, CN)
- Guoqiang Tang (Beijing, CN)
Cpc classification
H01Q1/36
ELECTRICITY
H01Q1/50
ELECTRICITY
International classification
H01Q1/36
ELECTRICITY
Abstract
An antenna and an electronic device are provided in the present disclosure. The antenna includes a first conductive layer, a dielectric layer, and a second conductive layer which are stacked; the first conductive layer is provided as a microstrip line structure; the second conductive layer is provided with a radiation structure and a director; the radiation structure includes a first edge and a second edge disposed oppositely along a first direction; the radiation structure is provided with a first slot, a second slot, and a third slot that are sequentially communicated along the first direction and away from the first edge, the first slot is circular, the second slot is rectangular, and the third slot gradually increases in dimension in the second direction; the director is disposed on the second conductive layer and located at a side of the third slot away from the second slot.
Claims
1. An antenna comprising a first conductive layer, a dielectric layer, and a second conductive layer which are stacked; the first conductive layer is provided as a microstrip line structure; the second conductive layer is provided with a radiation structure and a director; the radiation structure comprises a first edge and a second edge opposite to each other along a first direction in a plane where the second conductive layer is located; the radiation structure is provided with a radiation slot away from the first edge, and the radiation slot comprises a first slot, a second slot and a third slot which are sequentially communicated along the first direction in the plane where the second conductive layer is located, a shape of the first slot is circular, a shape of the second slot is rectangular, the third slot gradually increases in dimension in a second direction from an end connected with the second slot to an end away from the second slot, and the third slot extends in the first direction from the second slot to the second edge of the radiation structure; and the director is disposed on the second conductive layer and located at a side of the third opening away from the second slot, and an orthographic projection of the director on the dielectric layer is at least partially overlapped with an orthographic projection of the third slot on the dielectric layer.
2. The antenna according to claim 1, wherein in the plane where the second conductive layer is located, the radiation slot is disposed symmetrically with respect to a first centerline and the director is disposed symmetrically with respect to the first centerline, and the first centerline is a centerline of the antenna along the first direction.
3. The antenna according to claim 1, wherein the microstrip line structure comprises a first conductive structure, a second conductive structure and a third conductive structure sequentially connected along the second direction in a plane where the first conductive layer is located, a shape of the first conductive structure is rectangular, the third conductive structure is fan-shaped, the second conductive structure gradually decreases in dimension in the first direction from an end connected with the first conductive structure to an end connected with the third conductive structure, the third conductive structure gradually increases in dimension in the first direction from an end connected with the second conductive structure to an end away from the second conductive structure; and in the plane where the first conductive layer is located, the microstrip line structure is symmetrically disposed along the first direction with respect to a second centerline, the second centerline is a centerline of the microstrip line structure along the second direction, an orthographic projection of the second centerline on the dielectric layer is perpendicular to an orthographic projection of the first centerline on the dielectric layer, and an orthographic projection of the second conductive structure on the dielectric layer is at least partially overlapped with an orthographic projection of the second slot on the dielectric layer.
4. The antenna according to claim 3, wherein in the plane where the first conductive layer is located, the first conductive structure has a dimension of 0.65 mm to 0.85 mm along the first direction and a dimension of 5 mm to 7 mm along the second direction; the second conductive structure has a dimension of 1.6 mm to 2.2 mm along the second direction, and the end of the second conductive structure connected with the first conductive structure has a dimension of 0.45 mm to 0.6 mm along the first direction; the third conductive structure has a sector radius of 0.4 mm to 0.7 mm.
5. The antenna according to claim 1, wherein in the plane where the second conductive layer is located, the first slot has a radius of 0.8 mm to 1.2 mm, the second slot has a dimension of 2.5 mm to 3.5 mm in the first direction, and the second slot has a dimension of 0.4 mm to 0.8 mm in the second direction.
6. The antenna according to claim 1, wherein the second conductive layer is further provided with a plurality of metamaterial structures arranged in an array; in the plane where the second conductive layer is located, in the first direction, the plurality of metamaterial structures are disposed at a side of the director away from the third slot, and an orthographic projection of the plurality of metamaterial structures on the dielectric layer is not overlapped with an orthographic projection of the radiation structure on the dielectric layer, and the plurality of metamaterial structures are disposed symmetrically with respect to the first centerline.
7. The antenna according to claim 6, wherein dimensions of anyone of the metamaterial structures in the first direction and the second direction are each less than a length of half of a dielectric wavelength; in the first direction, a distance between two adjacent metamaterial structures is less than the length of half of the dielectric wavelength; and in the second direction, a distance between two adjacent metamaterial structures is less than the length of half of the dielectric wavelength; wherein the dielectric wavelength is a wavelength of a wave transmitted or received by the antenna in the dielectric layer.
8. The antenna according to claim 7, wherein in the plane where the second conductive layer is located, any one of the metamaterial structures has a dimension of 1.1 mm to 1.7 mm in the first direction, any one of the metamaterial structures has a dimension of 1 mm to 1.6 mm in the second direction, the distance between two adjacent metamaterial structures in the first direction is 0.3 mm to 0.7 mm, and the distance between two adjacent metamaterial structures in the second direction is 0.3 mm to 0.7 mm; the antenna has a dimension of 14.8 mm to 15.6 mm in the second direction, the antenna has a dimension of 28 mm to 34 mm in the first direction, and a distance from the first edge of the radiation structure to a junction of the first slot and the second slot in the first direction is 5 mm to 7 mm; and the third slot has a maximum dimension of 8 mm to 10 mm in the second direction.
9. The antenna according to claim 6, wherein a metamaterial structure comprises a first E-type structure, a second E-type structure and a first connection line connected with the first E-type structure and the second E-type structure, in the plane where the second conductive layer is located, the first E-shaped structure and the second E-shaped structure are symmetrically disposed with respect to a midperpendicular line of the first connection line, the first connection line extends along the second direction and is located at a position of a third centerline, the first E-shaped structure is disposed symmetrically with respect to the third centerline along the first direction, and the second E-shaped structure is disposed symmetrically with respect to the third centerline along the first direction, an opening of the first E-shaped structure faces a side away from the second E-shaped structure, and an opening of the second E-shaped structure faces a side away from the first E-shaped structure.
10. The antenna according to claim 9, wherein the first connection line has a dimension of 0.2 mm to 0.6 mm along the second direction; for ends located at a same side of the third centerline in the first direction, a distance between an end of the first E-shaped structure away from the second E-shaped structure and an end of the second E-shaped structure away from the first E-shaped structure in the second direction is 1 mm to 1.6 mm; at the position of the third centerline, a distance between an end of the first E-type structure away from the second E-type structure and an end of the second E-type structure away from the first E-type structure in the second direction is 1.1 mm to 1.7 mm; a width dimension of lines constituting the first E-shaped structure and the second E-shaped structure and a width dimension of a line constituting the first connection line are both 0.1 mm to 0.3 mm.
11. The antenna according to claim 6, wherein a metamaterial structure comprises a first I-shaped structure and a second I-shaped structure; in the plane where the second conductive layer is located, the first I-shaped structure comprises a first connection line and a second connection line extending along the first direction and a third connection line extending along the second direction, the third connection line is positioned at a midperpendicular line of the first connection line and the second connection line; in the plane where the second conductive layer is located, the second I-shaped structure comprises a fourth connection line and a fifth connection line extending along the second direction and a sixth connection line extending along the first direction, the sixth connection line is located at a midperpendicular line of the fourth connection line and the fifth connection line; and the third connection line is located at a centerline of the sixth connection line, and the sixth connection line is located at a centerline of the third connection line.
12. The antenna according to claim 11, wherein line widths of the first connection line to the sixth connection line are each 0.1 mm to 0.3 mm; in the plane where the second conductive layer is located, the first connection line and second connection line have a dimension from 0.8 mm to 1.3 mm along the first direction, the third connection line has a dimension from 0.7 mm to 1.5 mm along the second direction, the fourth connection line and the fifth connection line have a dimension from 0.8 mm to 1.3 mm along the second direction, and the sixth connection line has a dimension from 0.7 mm to 1.5 mm along the first direction.
13. The antenna according to claim 1, wherein the radiation structure further comprises a third edge and a fourth edge opposite to each other along the second direction in the plane where the second conductive layer is located; on the plane where the second conductive layer is located, the radiation structure is provided with a plurality of flow suppression grooves, and the flow suppression grooves comprise a plurality of first flow suppression grooves arranged along the first direction and a plurality of second flow suppression grooves arranged along the first direction, the plurality of first flow suppression grooves and the plurality of second flow suppression grooves are symmetrically disposed with respect to a centerline of the antenna along the first direction; the plurality of first flow suppression grooves are disposed at a side of the third slot, and the plurality of second flow suppression grooves are disposed at a side of the third slot away from the plurality of first flow suppression grooves; the first flow suppression grooves extend to the third edge, and the second flow suppression grooves extend to the fourth edge.
14. The antenna according to claim 13, wherein extension directions of the first flow suppression grooves and the second flow suppression grooves are perpendicular to the centerline of the antenna along the first direction.
15. The antenna according to claim 13, wherein a shape of a flow suppression groove is rectangular; on the plane where the second conductive layer is located, a dimension of the flow suppression groove along the second direction satisfies a following formula: 0.25*?g/sqrt(?0), where ?g is a wavelength of the antenna's low-frequency dielectric frequency, ?0 is a dielectric constant of a dielectric plate, and sqrt (?0) is an arithmetic square root of the dielectric constant ?0 of the dielectric plate.
16. The antenna according to claim 15, wherein on the plane where the second conductive layer is located, a flow suppression groove has a dimension of 4.5 mm to 5.5 mm along the second direction, and the flow suppression groove has a dimension of 0.5 mm to 1.5 mm along first direction.
17. The antenna according to claim 13, wherein in the plane where the second conductive layer is located, any one of the flow suppression grooves comprises a first groove edge, a second groove edge and a third groove edge, a shape of the first groove edge and the second groove edge is a linear shape extending along the second direction, a shape of the third groove edge is an arc shape protruding toward the radiation groove, and two ends of the third groove edge are respectively connected with one end of the first groove edge and one end of the second groove edge close to the radiation groove.
18. The antenna according to claim 1, wherein a shape of the director is rectangular, and the rectangular director is symmetrically disposed with respect to the first centerline; or the shape of the director is elliptical, and the elliptical director is symmetrically disposed with respect to the first centerline; or the shape of the director is circular, and the circular director is symmetrically disposed with respect to the first centerline; or the shape of the director is isosceles triangular, and the isosceles triangular director is symmetrically disposed with respect to the first centerline, an apex angle of the isosceles triangle is located between the radiation slot and a bottom edge of the isosceles triangle, a length of the bottom edge of the isosceles triangle is 1.8 mm to 2.2 mm, and a length of two waists of the isosceles triangle is 2 mm to 4 mm.
19. An electronic device, comprising at least one antenna according to claim 1.
20. The electronic device according to claim 19, comprising a plurality of the antennas, the plurality of the antennas are arranged along a third direction to form an antenna array, and orthographic projections of the plurality of antennas on a plane where the first direction and the second direction are located are overlapped, and orthographic projections of radiation slots in the plurality of the antennas on a plane where the first direction and the second direction are located are overlapped.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0042] Accompanying drawings are intended to provide a further understanding of technical solutions of the present disclosure and form a part of the specification, and are used to explain the technical solutions of the present disclosure together with embodiments of the present disclosure, and not intended to form limitations on the technical solutions of the present disclosure. Shapes and sizes of each component in the drawings do not reflect actual scales, and are only intended to schematically illustrate contents of the present disclosure.
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DETAILED DESCRIPTION
[0078] The embodiments of the present disclosure will be described in detail below with reference to the drawings. Implementation modes may be implemented in multiple different forms. Those of ordinary skills in the art may easily understand such a fact that implementation modes and contents may be transformed into various forms without departing from the purpose and scope of the present disclosure. Therefore, the present disclosure should not be explained as being limited to contents described in following implementation modes only. The embodiments in the present disclosure and features in the embodiments may be combined randomly with each other without conflict. In order to keep following description of the embodiments of the present disclosure clear and concise, detailed descriptions about part of known functions and known components are omitted in the present disclosure. The drawings of the embodiments of the present disclosure only involve structures involved in the embodiments of the present disclosure, and other structures may refer to conventional designs.
[0079] Scales of the drawings in the present disclosure may be used as a reference in the actual process, but are not limited thereto. For example, a thickness and a distance of each film layer, and a width and a distance of each signal line may be adjusted according to an actual situation. The drawings described in the present disclosure are only schematic diagrams of structures, and one implementation mode of the present disclosure is not limited to shapes or numerical values or the like shown in the drawings.
[0080] Ordinal numerals such as first, second, and third in the specification are set to avoid confusion between constituent elements, but not to set a limit in quantity.
[0081] In the specification, for convenience, wordings indicating orientation or positional relationships, such as middle, upper, lower, front, back, vertical, horizontal, top, bottom, inside, and outside, are used for illustrating positional relationships between constituent elements with reference to the drawings, and are merely for facilitating the description of the specification and simplifying the description, rather than indicating or implying that a referred apparatus or element must have a particular orientation and be constructed and operated in the particular orientation. Therefore, they cannot be understood as limitations on the present disclosure. The positional relationships between the constituent elements may be changed as appropriate according to a direction according to which each constituent element is described. Therefore, appropriate replacements may be made according to situations without being limited to the wordings described in the specification.
[0082] In the specification, unless otherwise specified and defined explicitly, terms mount, mutually connect, and connect should be understood in a broad sense. For example, a connection may be a fixed connection, or a detachable connection, or an integrated connection. It may be a mechanical connection or an electrical connection. It may be a direct mutual connection, or an indirect connection through middleware, or internal communication between two components. Those of ordinary skills in the art may understand specific meanings of these terms in the present disclosure according to specific situations.
[0083] In the specification, electrical connection includes a case that constituent elements are connected together through an element with a certain electrical effect. The element with the certain electrical effect is not particularly limited as long as electrical signals may be sent and received between the connected constituent elements. Examples of the element having some electrical function not only include an electrode and a wiring, but also a switch element such as a transistor, a resistor, an inductor, a capacitor, another element having one or more functions, and the like.
[0084] In the specification, parallel refers to a state in which an angle formed by two straight lines is above ?10? and below 10?, and thus may include a state in which the angle is above ?5? or more and below 5?. In addition, perpendicular refers to a state in which an angle formed by two straight lines is above 80? and below 100?, and thus may include a state in which the angle is above 85? and below 95?.
[0085] In the specification, a film and a layer are interchangeable. For example, a conductive layer may be replaced with a conductive film sometimes. Similarly, an insulating film may be replaced with an insulation layer sometimes.
[0086] Triangle, rectangle, trapezoid, pentagon and hexagon in this specification are not strictly defined, and they may be approximate triangle, rectangle, trapezoid, pentagon or hexagon, etc. There may be some small deformation caused by tolerance, and there may be guide angle, arc edge and deformation, etc.
[0087] In the present disclosure, about refers to that a boundary is defined not so strictly and numerical values within process and measurement error ranges are allowed.
[0088] In the present disclosure, a thickness is a dimension of a film layer in a direction perpendicular to a base substrate.
[0089] Vivaldi antenna usually has a problem of insufficient gain in wireless communication. Increasing the gain by forming an array will greatly increase the antenna's dimension, which is not conducive to miniaturization design of the system, thus increasing the system cost. As a result, Vivaldi antenna is often limited because of its insufficient gain in application scenarios with high gain requirements (such as satellite communication, radar, etc.).
[0090] An embodiment of the present disclosure provides an antenna, as shown in
[0095] In the antenna according to embodiment of the present disclosure, the second conductive layer is provided with the director and the radiation slot, the radiation slot is provided as the first slot, the second slot and the third slot which are communicated sequentially along the first direction in the plane where the second conductive layer is located, the director is disposed at the second conductive layer and located the side of the third slot away from the second slot, and an orthographic projection of the director on the dielectric layer is at least partially overlapped with an orthographic projection of the third slot on the dielectric layer. The director is disposed at the second conductive layer and located at the side of the third slot away from the second slot and plays a guiding role on electromagnetic waves, thus improving the gain of the antenna to a great extent.
[0096] In the embodiment of the present disclosure, in the plane where the second conductive layer 13 is located, the first direction X intersects with the second direction Y. In an exemplary implementation, the first direction X may be perpendicular to the second direction Y in the plane where the second conductive layer 13 is located.
[0097] In the embodiment of the present disclosure, the first slot 1311 in circular structure may act as impedance matching to the microstrip line structure 110, the second slot 1312 in rectangular structure may be coupled with the microstrip line structure 110 to transmit electromagnetic waves, the third slot 1313 may be horn-shaped, and the third slot 1313 may guide electromagnetic waves radiated by the antenna.
[0098] In an exemplary implementation, as shown in
[0099] In an exemplary implementation, as shown in
[0100] In the plane where the antenna is located, as shown in
[0101] In the plane where the first conductive layer 11 is located, the microstrip line structure 110 is disposed symmetrically along the first direction X with respect to a second centerline, and the second centerline is a centerline of the microstrip line structure 110 along the second direction Y. An orthographic projection of the second centerline on the dielectric layer 12 is perpendicular to an orthographic projection of the first centerline on the dielectric layer 12, and an orthographic projection of the second conductive structure 1102 on the dielectric layer 12 is at least partially overlapped with an orthographic projection of the second slot 1312 on the dielectric layer 12.
[0102] In an exemplary implementation, a shape of the second conductive structure 1102 may be triangular.
[0103] In an exemplary implementation, as shown in
[0104] The second conductive structure 1102 has a dimension M3 of 1.6 mm to 2.2 mm along the second direction Y, and the end of the second conductive structure 1102 connected with the first conductive structure 1101 has a dimension M4 of 0.45 mm to 0.6 mm in the first direction X.
[0105] The third conductive structure 1103 has a sector radius R2 of 0.4 mm to 0.7 mm.
[0106] For example, in the plane where the first conductive layer 11 is located, the first conductive structure 1101 has a dimension M1 of 0.75 mm along the first direction X and a dimension M2 of 6 mm in the second direction Y. The second conductive structure 1102 has a dimension M3 of 1.9 mm along the second direction Y, and the end of the second conductive structure 1102 connected with the first conductive structure 1101 has a dimension M4 of 0.55 mm in the first direction X. The third conductive structure 1103 has a sector radius R of 0.6 mm.
[0107] In the embodiment of the present disclosure, the gradually deformed microstrip line structure 110 is adopted, which is easy to process, thus costs and difficulty of preparing the antenna is reduced, and feed is performed through the coupling structure of the gradually deformed microstrip line structure 110 and the radiation slot 131, thus realizing the transformation from an unbalanced structure to a balanced structure. An terminal of the microstrip line structure 110 (the third conductive structure 1103) has a fan-shaped structure, which mainly serves as a function of terminal load matching, and the microstrip line is coupled and fed to the radiation slot 131 through the dielectric layer.
[0108] In an exemplary implementation, as shown in
[0109] In an exemplary implementation, as shown in
[0110] In the plane where the second conductive layer 13 is located, in the first direction X, multiple metamaterial structures 133 are disposed at a side of the director 132 away from the third slot 1313, and an orthographic projection of the multiple metamaterial structures 133 on the dielectric layer 12 is not overlapped with an orthographic projection of the radiation structure 130 on the dielectric layer 12, and the multiple metamaterial structures 133 are disposed symmetrically with respect to the first centerline. As shown in
[0111] In an exemplary implementation, the multiple metamaterial structures 133 are periodically arranged in the first direction X and the second direction Y in the plane where the second conductive layer 13 is located.
[0112] In an exemplary implementation, in the plane where the second conductive layer 13 is located, dimensions of any one of the metamaterial structures 133 in the first direction X and the second direction Y are each less than a length of a half of a dielectric wavelength.
[0113] In the first direction X, a distance between two adjacent metamaterial structures 133 is less than a length of the half of the dielectric wavelength.
[0114] In the second direction Y, a distance between two adjacent metamaterial structures 133 is less than the length of the half of the dielectric wavelength.
[0115] Here, the dielectric wavelength is a wavelength of waves transmitted or received by the antenna that are transmitted in the dielectric layer 12.
[0116] In an exemplary implementation, as shown in
[0117] In an exemplary implementation, as shown in
[0118] The third slot 1313 has a maximum dimension N61 of 8 mm to 10 mm in the second direction Y. In the structure shown in
[0119] For example, in the plane where the second conductive layer 13 is located, the antenna has a dimension N3 of 15.2 mm in the second direction Y, the antenna has a dimension N4 of 31.2 mm in the first direction, and a distance N5 from the first edge D1 of the radiation structure 130 to the junction of the first slot 1311 and the second slot 1312 in the first direction X is 6 mm. The second edge D2 of the radiation structure 130 has a length N6 of 3.32 mm in the second direction Y, and the third slot 1313 has a maximum dimension of 8.56 mm in the second direction Y.
[0120] In an exemplary implementation, as shown in
[0121] In an exemplary implementation, the first connection line p3 has a dimension H1 of 0.2 mm to 0.6 mm in the second direction Y. For ends located at a same side of the third centerline in the first direction X, a distance H2 between an end of the first E-type structure p1 away from the second E-type structure p2 and an end of the second E-type structure p2 away from the first E-type structure p1 in the second direction Y is 1 mm to 1.6 mm. At the third centerline, a distance H3 between the end of the first E-type structure p1 away from the second E-type structure p2 and the end of the second E-type structure p2 away from the first E-type structure p1 in the second direction Y is 1.1 mm to 1.7 mm. A width W1 of lines constituting the first E-shaped structure p1 and the second E-shaped structure p2 and a width W1 of lines the constituting first connection line p3 are both 0.1 mm to 0.3 mm. For example, the first connection line p3 has a dimension H1 of 0.4 mm in the second direction Y, and for ends located at a same side of the third centerline in the first direction X, and a distance H2 between the end of the first E-type structure p1 away from the second E-type structure p2 and the end of the second E-type structure p2 away from the first E-type structure p1 in the second direction Y is 1.3 mm. At the third centerline, a distance H3 between the end of the first E-type structure p1 away from the second E-type structure p2 and the end of the second E-type structure p2 away from the first E-type structure p1 in the second direction Y is 1.4 mm. A width W1 of the lines constituting the first E-shaped structure p1 and the second E-shaped structure p2 and a width W1 of the lines constituting the first connection line p3 are both 0.2 mm.
[0122] In the embodiment of the present disclosure, centerlines of the first E-type structure p1 and the second E-type structure p2 in
[0123] In an exemplary implementation, as shown in
[0124] In an exemplary implementation, in the plane where the second conductive layer 13 is located, the distance H1 between the first bent structure 1331 and the second bent structure 1332 along the second direction Y is 0.2 mm to 0.6 mm, the width W1 of the first bent structure 1331, the second bent structure 1332 and the connection structure 1333 is 0.1 mm to 0.3 mm, and the length H3 of the connection structure 1333 along the second direction Y is 1.1 mm to 1.7 mm. For example, in the plane where the second conductive layer 13 is located, the distance H1 of the first bent structure 1331 and the second bent structure 1332 along the second direction Y is 0.4 mm, the width W1 of the first bent structure 1331, the second bent structure 1332 and the connection structure 1333 is 0.2 mm, and the length H3 of the connection structure 1333 along the second direction Y is 1.4 mm.
[0125] In an exemplary implementation, as shown in
[0126] In the plane where the second conductive layer 13 is located, the second I-shaped structure may include a fourth connection line c4 and a fifth connection line c5 extending along the second direction Y and a sixth connection line c6 extending along the first direction X, and the sixth connection line c6 is located at a midperpendicular line of the fourth connection line c4 and the fifth connection line c5.
[0127] The third connection line c3 is located at a centerline of the sixth connection line c6, and the sixth connection line c6 is located at a centerline of the third connection line c3.
[0128] In an exemplary implementation, as shown in
[0129] For example, the line widths W2 of the first connection line c1 to the sixth connection line c6 may each be 0.2 mm, in the plane where the second conductive layer 13 is located, the first connection line c1 and second connection line c2 have a dimension H4 of 1.1 mm along the first direction X, the third connection line c3 a dimension H5 of 0.9 mm along the second direction, the fourth connection line c4 and fifth connection line c5 have a dimension H6 of 1.1 mm along the second direction Y, and the sixth connection line c6 has a dimension H7 of 0.9 mm along the first direction X.
[0130] In the embodiment of the present disclosure, the periodically arranged metamaterial structures 132 are loaded at a side of the director 130 away from the radiation slot 131 to improve directivity of electromagnetic radiation, thereby further improving the gain of the antenna.
[0131] In the embodiments of the present disclosure, the metamaterial structures 132 may be equivalent to LC circuits, a plate provided with the metamaterial structures 132 may generate an inductance, the metamaterial structures 132 themselves and space between the multiple metamaterial structures 132 may generate capacitance, a metamaterial structure 132 has a structure with a quasi-zero dielectric constant refractive index, and a zero frequency has a certain relationship with structural parameters. By adjusting structure dimensions, the zero refractive index characteristic at a specific frequency point can be realized. Typically, the dimension of the metamaterial structure is not larger than a half of the dielectric wavelength, and the distribution of the multiple metamaterial structures is periodic.
[0132] In an exemplary implementation, as shown in
[0133] In an exemplary implementation, extension directions of the first flow suppression grooves 1341 and the second flow suppression grooves 1342 are perpendicular to the centerline of the antenna along the first direction.
[0134] In an exemplary implementation, as shown in
[0135] In an exemplary implementation, in the plane where the second conductive layer 13 is located, the flow suppression groove 134 has a dimension of 4.5 mm to 5.5 mm along the second direction Y, and the flow suppression groove 134 has a dimension of 0.5 mm to 1.5 mm along the first direction X. For example, in the plane where the second conductive layer 13 is located, the flow suppression groove 134 has a dimension of 5 mm along the second direction Y, and the flow suppression groove 134 has a dimension of 1 mm along the first direction X.
[0136] In an exemplary implementation, as shown in
[0137] As shown in
[0138] In the embodiment of the present disclosure, the flow suppression slots 134 are disposed on the second conductive layer 13. The flow suppression slots 134 are mainly used for suppressing the current backflow on the antenna surface, so that the radiation of the antenna is superposition of the radiation from the flow suppression slots 134 and the radiation from the radiation slot 131. Since such two kinds of radiation have end-fire effect, the gain of the antenna is increased. The length of a rectangular groove satisfies 0.25*? g/sqrt (?0), where ? g is the wavelength of the antenna's low-frequency dielectric frequency, ?0 is the dielectric constant of the dielectric plate, and sqrt (?0) is the arithmetic square root of the dielectric constant ?0 of the dielectric plate. The number and spacing of the flow suppression slots 134 can satisfy requirements the antenna, which is not limited in the embodiments of the present disclosure.
[0139] In an exemplary implementation, the director 132 may be symmetrical with respect to the centerline along the first direction X.
[0140] In an exemplary implementation, as shown in
[0141] Alternatively, as shown in
[0142] alternatively, as shown in
[0143] alternatively, as shown in
[0144] As shown in
[0145] As shown in
[0146] As shown in
[0147] As shown in
[0148] As shown in
[0149] As shown in
[0150] In the embodiment of the present disclosure, the larger the return loss of the antenna, the smaller the gain of the antenna, and the smaller the return loss of the antenna, the greater the gain of the antenna.
[0151] In the embodiment of the present disclosure, the S1 curve in
[0152] In the antenna according to an embodiment of the present disclosure, the second conductive layer 13 is provided with a director 132 and a radiation slot 131. The radiation slot 131 is provided as a first slot 1311, a second slot 1312, and a third slot 1313 which are communicated in sequence along a first direction X in a plane where the second conductive layer 13 is located. The director 132 is disposed on the second conductive layer 13 and located a side of the third slot 1313 away from the second slot 1312. An orthographic projection of the director 132 on the dielectric layer 12 is within a range of an orthographic projection of the third slot 1313 on the dielectric layer 12. The director 13 is disposed on the second conductive layer 13 and located at a side of the third slot 1313 away from the second slot 1312 and plays a guiding role on electromagnetic waves, thus improving the gain of the antenna to a great extent.
[0153] An embodiment of the present disclosure further provides an electronic device, which includes the antenna in any one of the embodiments described above.
[0154] In the embodiments of the present disclosure, since the above antenna is provided with the director 132 on the second conductive layer 13 located at the side of the third slot 1313 away from the second slot 1312, which plays a guiding role on electromagnetic waves, thus improving the gain of the antenna to a great extent, thereby the gain of the electronic device including the antenna is increased in the process of wireless communication through the antenna, and the communication effect of the electronic device is improved.
[0155] In the embodiments of the present disclosure, the electronic device may be any product or component having the antenna of any one of the above embodiments, such as a display device, a wearable device, radar, a satellite, or the like.
[0156] In an exemplary implementation, as shown in
[0157] As shown in
[0158] In the coordinate diagram shown in
[0159] The drawings of the embodiments of the present disclosure only involve structures involved in the embodiments of the present disclosure, and other structures may refer to usual designs.
[0160] The embodiments of the present disclosure, that is, features in the embodiments, may be combined with each other to obtain new embodiments if there is no conflict.
[0161] Although the implementation modes disclosed in the embodiments of the present disclosure are described above, the described contents are only implementation modes for facilitating understanding of the embodiments of the present disclosure, which are not intended to limit the embodiments of the present disclosure. Those skilled in the art to which the embodiments of the present disclosure pertain may make any modifications and variations in forms and details of implementation without departing from the spirit and scope of the embodiments of the present disclosure. Nevertheless, the scope of patent protection of the embodiments of the present disclosure shall still be subject to the scope defined by the appended claims.