ANTENNA SYSTEM FOR VEHICLES
20200266531 ยท 2020-08-20
Inventors
Cpc classification
H01Q7/00
ELECTRICITY
H01Q1/3233
ELECTRICITY
H01Q1/3283
ELECTRICITY
H01Q19/108
ELECTRICITY
International classification
Abstract
The present disclosure refers to an antenna system vehicles, preferably for Vehicle-to-Everything (V2X) communications, comprising a planar reflector and a radiating element placed over the reflector, wherein the radiating element comprises segments, preferably straight segments, arranged to configure two connected quadrilateral frame antenna elements. Each quadrilateral frame antenna element having an inner pair of segments and an outer pair of segments, wherein the segments of the inner pairs are substantially parallel to the reflector, and the segments of the outer pairs are inclined with respect to the segments of the inner pairs. The segments of the outer pairs have one end connected with the reflector.
Claims
1. An antenna system for vehicles, comprising: a first planar reflector; a radiating element placed over the reflector and including segments arranged to configure two connected quadrilateral frame antenna elements, each quadrilateral frame antenna element having an inner pair of segments and an outer pair of segments, wherein the segments of the inner pairs are substantially parallel to the reflector, and the segments of the outer pairs are inclined with respect to the segments of the inner pairs, and wherein the segments of the outer pairs have one end connected with the reflector; and a feeding line connected with the segments of the inner pairs and connected with the reflector.
2. The antenna system according to claim 1, wherein at least a major part of each segment is straight, and wherein the segments of the same pair of segments have the same length, and wherein the segment of the outer pairs are longer than the segments of the inner pairs.
3. The antenna system according to claim 2, wherein the segments of the outer pairs define together respectively two vertices that are aligned with respect to an axis, and wherein the segments of the inner pair and the segments of the outer pair of the same frame antenna elements, define respectively two vertices that are aligned with respect to axis (y1,y2) that are orthogonal to the axis, and wherein the reflector is rectangular and the width of the reflector is shorter than the distance between any the two vertices aligned with respect to the axis (y1,y2).
4. The antenna system according to claim 3, wherein each of the segments of one of the inner pairs is connected with a segment of the other inner pair, and wherein there is a gap between a first pair of connected segments and a second pair of connected segments, and wherein the feeding line has a positive pole connected with one of the pairs of connected segments, and a negative pole connected with the other pair of connected segments and with the first reflector.
5. The antenna system according to claim 4, wherein the first reflector has a lower surface and an upper surface, wherein the upper surface is closer to the radiating element than the lower surface, and wherein the feeding line runs longitudinally on the lower surface of the reflector, passes transversally through the reflector and extends below the pairs of inner segments.
6. The antenna system according to claim 5, wherein the width of the reflector is substantially equal to the distance between the vertices defined by the segments of the outer pairs.
7. The antenna system according to claim 6, wherein the distance between the vertices is within a range of 0.9()+/0.2(), or within a range of 0.9()+/0.1() or substantially 0.9() of the wavelength at the operating frequency.
8. The antenna system according to claim 1, further comprising a second reflector connected with one of the short sides of the first reflector, and placed transversally with respect to the first reflector.
9. The antenna system according to claim 8, wherein the first pair of connected segments define a ninety degree angle, and second pair of connected segments define a ninety degree angle.
10. The antenna system according to claim 9, wherein each of the segments of the outer pair of segments, define a thirty-five degree angle with the first reflector.
11. The antenna system according to claim 10, wherein the height of the first reflector is within a range of ()+/0.06(), or within a range of ()+/0.03() or is substantially () of the wavelength () at the operating frequency.
12. The antenna system according to claim 11, wherein the distance between the segments of the inner pairs and the first reflector is within a range of 1/10 ()+/0.04(), or within a range of 1/10 ()+/0.02(), or is substantially 1/10 of the wavelength () at the operating frequency.
13. The antenna system according to claim 12, adapted to operate in accordance with a Dedicated Short Range Communications (DSRC) protocol.
14. The antenna system according to claim 13, further comprising a casing configured to be attached externally to a vehicle, and wherein the radiating element, reflector and a part of the feeding line are enclosed within the casing.
15. The antenna system according to claim 14, wherein the casing configuration and the arrangement of the radiating element and first reflector within the casing, are selected such as, when the casing is attached to an external surface of a vehicle, the first reflector is transversally arranged to ground.
16. The antenna system according to claim 1, wherein the segments of the outer pairs define together respectively two vertices that are aligned with respect to an axis, and wherein the segments of the inner pair and the segments of the outer pair of the same frame antenna elements, define respectively two vertices that are aligned with respect to axis (y1,y2) that are orthogonal to the axis, and wherein the reflector is rectangular and the width of the reflector is shorter than the distance between any the two vertices aligned with respect to the axis (y1,y2).
17. The antenna system according to claim 1, wherein each of the segments of one of the inner pairs is connected with a segment of the other inner pair, and wherein there is a gap between a first pair of connected segments and a second pair of connected segments, and wherein the feeding line has a positive pole connected with one of the pairs of connected segments, and a negative pole connected with the other pair of connected segments and with the first reflector.
18. The antenna system according to claim 1, wherein the first reflector has a lower surface and an upper surface, wherein the upper surface is closer to the radiating element than the lower surface, and wherein the feeding line runs longitudinally on the lower surface of the reflector, passes transversally through the reflector and extends below the pairs of inner segments.
19. The antenna system according to claim 1, wherein the width of the reflector is substantially equal to the distance between the vertices defined by the segments of the outer pairs.
20. The antenna system according to claim 19, wherein the distance between the vertices is within a range of 0.9()+/0.2(), or within a range of 0.9()+/0.1() or substantially 0.9() of the wavelength at the operating frequency.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0042] Preferred embodiments of the present disclosure are henceforth described with reference to the accompanying drawings, wherein:
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DETAILED DESCRIPTION
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[0059] The first planar reflector 3 is a metallic plate that can be supported by a substrate (not shown), for example the reflector can be embodied as a conducting surface of a Printed Circuit Board (PCB). The first reflector 3 has a lower surface and an upper surface, wherein the upper surface is closer to the radiating element than the lower surface. The first reflector 3 is rectangular in this preferred embodiment, having a width (W) and a height (H).
[0060] Unlike prior art BiQuad antennas, the radiating element 2 is a three-dimensional structure as illustrated in
[0061] As an example, for a Dedicated Short Range Communications (DSRC) protocol with an operating frequency of about 5.9 GHz, and taking into account that c0=3e8 m/s then wavelength for that operating frequency is lambda ()=c0/Freq then lambda=3e+8/5.9 GHz is about fifty-one millimeters (51 mm).
[0062] The length of the segments 4a, 4b, 5a, 5b is preferably within a range of ()+/0.06(), and more preferably within a range of +/0.03(), at the operating frequency, that is, with an operating frequency of 5.9 GHz, the length of these segments is about eleven and a half millimeters (11.5 mm).
[0063] The length of the segments 4c, 4d, 5c, 5d is preferably within a range of ()+/0.06(), and more preferably within a range of ()+/0.03(), at the operating frequency, that is, with an operating frequency of 5.9 GHz, the length of these segments is about seventeen and a half millimeters (17.5 mm).
[0064] The antenna system 1 features a thin profile since the distance or thickness (T) between the segments 4c, 4d, 5c, 5d of the inner pairs and the reflector 3, is preferably within a range of 1/10 ()+/0.04(), more preferably within a range of 1/10 ()+/0.02(), and preferably about 1/10 of the wavelength () at the operating frequency, that is, with an operating frequency of 5.9 GHz, the total more preferably thickness of the antenna system is about five and a half millimeters (5.5 mm).
[0065] The total electric length of each connected quadrilateral frame antenna elements 4, 5, that is, the sum of the length of all four segments of each quadrilateral frame antenna elements 4, 5, is preferably within a range of 1.1()+/0.2(), of more preferably within a range of 1.1()+/0.1(), and preferably 1.1() of the wavelength () at the operating frequency, that is, with an operating frequency of 5.9 GHz, the total more preferably electric length of each connected quadrilateral frame antenna elements 4, 5 is about fifty-eight millimeters (58 mm).
[0066] Additionally, the segments 4c, 4d, 5c, 5d of the outer pairs are connected together at their ends configuring vertices 11, 11 of the quadrilateral frame antenna elements 4, 5, and connected with the reflector 3. In this way, the radiating element 2 is grounded and it is reinforced mechanically. Furthermore, that arrangement, reduce side nulls up to 5 dBi, maximizing the antenna's directivity in front and rear directions.
[0067] As shown more clearly in
[0068] In the preferred embodiment of
[0069] The segments 4a, 5a define a ninety degree (90) angle, and the segments 4b, 5b define a ninety degree (90) angle. In the top plan view of
[0070] As shown more clearly in
[0071] It can be noted in
[0072] The total height of the antenna system 1 is the distance between the pair of vertices 12, 12, 13, 13. Preferably, for proper matching of the antenna, the total height of the antenna is preferably within a range of ()+/0.06(), of more preferably within a range of ()+/0.03(), and preferably () of the wavelength () at the operating frequency, that is, with an operating frequency of 5.9 GHz, the total more preferably height (H) of the reflector (3) is about sixteen millimeters (16 mm).
[0073] The segments 4c, 4a, 5a, 5c are consecutive and connected at their ends as to form a first branch of the radiating element 2, and similarly the segments 4d, 4b, 5b, 5d are consecutive and connected at their ends as to form a second branch of the radiating element 2, such a gap 7 is formed between the connected segments 4a, 5a of the first branch and the connected segments 4b, 5b of the second branch.
[0074] As shown in
[0075] The coaxial cable 8 is placed on the lower surface of the reflector 3 extending longitudinally in the direction of axis (x), it is bent, in this case ninety degrees (90), and passes through an opening 10 (at the geometric center of the same) in the reflector 3 extending transversally to the reflector reaching the segments of the inner pairs. The ground pole 8b of the coaxial cable 8 is also connected with the reflector 3 as shown in
[0076] As shown in
[0077] In the preferred embodiment of
[0078] In the preferred embodiment of
[0079] As shown in
[0080] In a preferred embodiment, the casing 15 is the casing or any arm of an external rearview mirror 21 for a vehicle. Similarly, in this case, radiating element 2 and first reflector 3 are arranged within the casing an external rearview mirror for a vehicle, such as, when the casing is attached to an external surface 19 of a vehicle 18, the first reflector 3 is transversally arranged with respect to the ground 20. Additionally, the casing 2 of an external rearview mirror is configured and the reflector 3 is arranged within the casing 2, such as, when the casing 15 is attached to an external surface 19 of a vehicle 18, the longer edges of the reflector 3 are parallel to ground 20, and the reflector is transversally arranged to the longitudinal axis of the vehicle.
[0081] In a practical application as the one shown in
[0082] The present disclosure also refers to a vehicle 18 having two antenna systems 1 as the one described above, respectively attached externally to left and right sides of the vehicle, and wherein the antenna systems 1 are configured such as the reflectors 3 are generally transversally arranged with respect to ground 20. Described in another way, the axis (y1,y2) are generally vertical to ground.
[0083] While the above disclosure has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made, and equivalents may be substituted for elements thereof without departing from its scope. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the disclosure without departing from the essential scope thereof. Therefore, it is intended that the present disclosure not be limited to the particular embodiments disclosed but will include all embodiments falling within the scope thereof.