ANTENNA DEVICE
20200350683 ยท 2020-11-05
Inventors
Cpc classification
H01Q19/28
ELECTRICITY
International classification
Abstract
An antenna device includes at least a ground plane as well as a surface emitter. The surface emitter includes a foot element and a lid element, the foot element including a base area of at least four overturned areas via which the foot element is supported with regard to the ground plane, and the lid element being coupled to the base, so that it is spaced apart from the ground plane.
Claims
1. Antenna device, comprising a ground plane; and a surface emitter which comprises a foot element and a lid element, the foot element comprising a base area and at least four overturned areas via which the foot element is supported with regard to the ground plane, and the lid element being coupled to the base area, so that it is spaced apart from the ground plane; wherein the lid element projects beyond the foot element along the lateral extension; wherein four feeding points for the surface emitter are formed by the foot element of the surface emitter and wherein the lid element is directly placed onto the base area or is directly adjacent to the base area.
2. Antenna device according to claim 1, wherein the foot element of the surface emitter is formed by a planar polygonal shape or a planar square shape, and the overturned areas are formed by corners of the planar polygonal shape or the planar square shape.
3. Antenna device according to claim 1, wherein the surface emitter comprises at least four symmetry axes which are parallel to the ground plane.
4. Antenna device according to claim 1, wherein the lid element is formed by a sheet metal which is parallel to the ground plane.
5. Antenna device according to claim 1, wherein the lid element is bent towards the ground plane in that area in which it projects beyond the foot element.
6. Antenna device according to claim 1, wherein the lid element is bent away from the ground plane in that area in which it projects beyond the foot element.
7. Antenna element according to claim 5, wherein the lid element comprises a planar polygonal shape or a planar square shape, and edges of the planar polygonal shape or the planar square shape are bent towards the ground plane.
8. Antenna device according to claim 1, wherein the lid element comprises a round shape.
9. Antenna device according to claim 1, wherein the ground plane comprises a round or polygonal shape.
10. Antenna device according to claim 1, wherein the surface emitter and/or the lid element of the surface emitter is centered with regard to the ground plane.
11. Antenna device according to claim 1, which comprises a plurality of parasitic elements which are disposed around the surface emitter and are permanently short-circuited with the electrical ground plane.
12. Antenna device according to claim 11, wherein the parasitic elements surround the surface emitter in a radially symmetrical and/or annular manner.
13. Antenna device according to claim 12, wherein the parasitic elements project from the ground plane by more than the lid element is spaced apart from the ground plane.
14. Antenna device according to claim 12, wherein the parasitic elements project from the ground plane as much, as a maximum, as the lid element is spaced apart from the ground plane.
15. Antenna device according to claim 13, wherein the parasitic elements are shaped by bars or bending parts.
16. Antenna for GNSS systems for transmitting and receiving electromagnetic radiation with an antenna device, said antenna device comprising: a ground plane; and a surface emitter which comprises a foot element and a lid element, the foot element comprising a base area and at least four overturned areas via which the foot element is supported with regard to the ground plane, and the lid element being coupled to the base area, so that it is spaced apart from the ground plane; wherein the lid element projects beyond the foot element along the lateral extension; wherein four feeding points for the surface emitter are formed by the foot element of the surface emitter and wherein the lid element is directly placed onto the base area or is directly adjacent to the base area.
17. Method for manufacturing an antenna device according to claim 1, comprising providing a ground plane; overturning the overturned areas of the foot element with regard to the base area in order to shape the foot element; and disposing the lid element with regard to the ground plane by means of the foot element, so that the lid element is spaced apart with regard to the ground plane, so that the lid element is directly placed onto the base area or is directly adjacent to the base area; wherein the lid element projects beyond the foot element along the lateral extension; wherein four feeding points for the surface emitter are formed by the foot element of the surface emitter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Embodiments of the present invention will be detailed subsequently referring to the appended drawings, in which:
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF THE INVENTION
[0025] Before embodiments of the present invention will subsequently be explained in detail on the basis of the figures, it shall be noted that elements and structures having similar actions will be provided with the same reference numerals, so that their descriptions are mutually applicable, or interchangeable.
[0026]
[0027] The antenna device 10 includes a ground plane 12 as well as a surface emitter 14. Said surface emitter 14 is implemented such that it is split in two and includes the foot element 14a as well as the lid element 14b. Additionally, the antenna device 10 represented herein also comprises optional parasitic bar-shaped elements 16 which project from the ground plane 12 and surround the surface emitter 14.
[0028] The ground plane 12 is, for example, a planar element with a round or, alternatively, polygonal (quadrangular, hexagonal, or polygonal) shape. The round or polygonally shaped ground plane 12 may optionally comprise a feeding network 12s which is disposed, e.g., on the bottom side (cf.
[0029] The surface emitter 14 is implemented such that it is split in two and includes the foot element 14a and the lid element 14b. Both elements may be shaped, according to a variation, by means of sheet metals, or folded-over sheet metals. Folding-over results in two areas in the foot element 14a, namely the overturned area 14au as well as the base. In this embodiment, the foot element 14 is formed by a quadrangular sheet metal (planar square shape) in which all four corners (overturn areas 14au) are overturned in the same manner. In this context, the same manner means that both are overturned by the same angle, for example 90, in the same direction and that the overturned triangles also have the same leg lengths. When disposing the foot element 14a on the ground plane 12 across the overturned areas 14au, the base is parallel to the ground plane 12 due to the same manifestation of the overturned areas 14au. The overturning of the areas 14au results in a quadrangular or for example also an octagonal shape for the base, depending on how large the overturned areas 14au are as compared to the base area 14ag. Due to the identical manifestation of the (four) overturned corners 14au, the three-dimensional foot element 14a has a symmetrical shape with four symmetry axes which are parallel to the base, or parallel to the ground plane 12. The base has the lid element 14b disposed on it, i.e. is either directly placed onto the former or slightly spaced apart from it, so that the distance between the lid element 14b and the ground element 12 is substantially defined by the foot element 14a. The lid element 14b may also have a polygonal, such as, for example a planar square shape, or as represented herein, a round shape. In this embodiment, the lid element 14b also projects beyond the area defined by the base 14b. As can be seen particularly in
[0030] As regards the entire surface emitter 14, which may be shaped by made of metallic sheet metal or other conductive elements and is therefore also referred to as a sheet metal radiator, it should be noted that said surface emitter 14 may, as a whole, also have at least four symmetry axes which extend within in a plane that is parallel to the ground plane 12 in a plane.
[0031] As already mentioned above, the antenna device 10 represented herein optionally comprises a plurality of electrically conductive parasitic elements 16 (e.g. bars or strips) which are disposed in a radially symmetrical manner on the ground plane 12 around the radiator. The parasitic elements 16 represented herein are, e.g., implemented by means of bending laser parts or bending stamp parts. In this embodiment, the height of these parasitic elements exceeds the height of the sheet metal radiator 14.
[0032] As compared to similar antenna devices (cf.
[0033] According to embodiments, the feeding network 12s is electrically coupled to the surface emitter 14 via the four connection points 12v at which the foot element 14, or, to be precise, the overturned area 14a, is connected with the ground plane 12.
[0034] Before addressing extended embodiments, the manufacturing method will be described briefly. In this manufacturing method, a provided ground plane 12 which is advantageously planar is assumed, wherein a feeding substrate, or in general the antenna as explained above, may include the feeding network 12s. The foot element 14a is mounted, before or after being connected to the lid element 14b via the connection points 12, onto this ground plane, so that an additional electrically conductive element (with or advantageously without any distance) is provided, or attached, above the radiation element 14a. Attaching the lid element 14b with regard to the foot element 14a is advantageously performed such that the lid element 14b advantageously projects beyond the rim of the lower foot element 14a.
[0035] According to embodiments, the step of folding-over of the foot element 14a may also be provided before the step of attaching.
[0036] According to a further embodiment, the method includes the step of manufacturing, e.g. by bending out of the ground plane 12, or, generally, of disposing, a plurality of electrically conductive parasitic elements, e.g. eight or more. Disposing is performed such that they are galvanically connected to the ground plane 12.
[0037] Subsequently, a further embodiment will be explained with reference to
[0038]
[0039] In this embodiment, the parasitic elements are not formed as stamp-bent or laser-bent elements but by parasitic elements projecting in a perpendicular manner, herein perpendicular bars 16 (for example, 12).
[0040] These embodiments are characterized by being able to be manufactured in a simple, mechanically stable and cost-efficient way and are much more efficient as compared to similar devices known from the conventional technology. Furthermore, they have a better form of directivity pattern for GNSS applications (cardioid-shaped, 10 dB beam width approx. 180).
[0041] The technical field of application of the invention corresponds to that of the antenna device in [2] and thus includes position sensing and measurement in agriculture and forestry, cadastral surveys, vehicle and machine controls in the construction industry and in agriculture, GNSS monitoring systems, Galileo PRS, aerospace applications, or on- and offshore navigation.
[0042] Regarding the above-mentioned embodiments, it should be noted that each of the planar shape of the ground plane, the basic shape of the foot element and the basic shape of the lid element may vary according to further embodiments, wherein these three elements may act in the same way or also differently (i.e. the combination of a circular shape with a polygonal shape such as a quadrangular shape with a round sheet metal as initial elements).
[0043] In the above-mentioned embodiments, it was essentially assumed that all of the overturned areas are areas that are overturned by 90. Also, these overturned areas may vary.
[0044] Even if in the above embodiments it was assumed that each of the overturned areas of the foot elements comprises a tip via which coupling to the ground element is performed, it should be noted at this point that other shapes would also be possible.
[0045] In the above embodiments, substantially, the device was explained, and herein particularly the antenna device. A further embodiment relates to a system with a feeding network and an antenna device. An additional embodiment relates to using the antenna device as a satellite transceiver unit.
[0046] A further embodiment relates to a manufacturing method, wherein it should be noted at this point that descriptions of elements or components also represent a corresponding description of the associated method step.
[0047] The above embodiments are substantially merely illustrative, with a scope of protection being defined for the subsequent claims.
[0048] While this invention has been described in terms of several embodiments, there are alterations, permutations, and equivalents which fall within the scope of this invention. It should also be noted that there are many alternative ways of implementing the methods and compositions of the present invention. It is therefore intended that the following appended claims be interpreted as including all such alterations, permutations and equivalents as fall within the true spirit and scope of the present invention.
REFERENCES
[0049] [1] K. Fletcher (ed.), GNSS Data Processing, Vol. I: Fundamentals and Algorithms, ESA Communications, ESA TM-23/1, May 2013 [0050] [2] DE 10 2007 004 612 B4 [0051] [3] A. E. Popugaev, R. Wansch, Multi-band GNSS antenna in: Heuberger, A; Elst, G; Hanke, R. (editor): Microelectronic Systems: Circuits, Systems and Applications, Springer Verlag, 2011 [0052] [4] U.S. Pat. No. 5,442,366 A