NOTCH ANTENNA ARRAY
20230081591 · 2023-03-16
Inventors
Cpc classification
H01Q21/30
ELECTRICITY
International classification
H01Q21/06
ELECTRICITY
H01Q21/24
ELECTRICITY
Abstract
An antenna array is provided. The antenna array includes a plurality of M row antenna structures, each row antenna structure forming a row in the antenna array, M being a positive integer≥2, and a plurality of N column antenna structures, each column antenna structure forming a column in the antenna array, N being a positive integer≥2. Each row antenna structure includes a plurality of row antenna elements, where each row antenna element includes a main body tapering from a bottom portion to a tip portion. The bottom portion of each row antenna element includes a first leg portion having a first feed arrangement, and wherein each row antenna element is joined to at least one adjacent row antenna element so to form a conjoined row of notch antennas.
Claims
1. An antenna array comprising: a plurality of M row antenna structures, each row antenna structure forming a row in the antenna array, M being a positive integer≥2, and each row antenna structure comprising: a plurality of row antenna elements, each row antenna element comprising a main body tapering from a bottom portion to a tip portion, the bottom portion comprising a first leg portion having a first feed arrangement, and wherein each row antenna element is joined to at least one adjacent row antenna element so to form a conjoined row of notch antennas; and wherein each row antenna element comprises a first recess extending into the main body from the bottom portion towards the tip portion; a plurality of N column antenna structures, each column antenna structure forming a column in the antenna array, N being a positive integer≥2, and each column antenna structure comprising: a plurality of column antenna elements, each column antenna element comprising a main body tapering from a bottom portion to a tip portion, the bottom portion comprising a second leg portion having a second feed arrangement, and wherein each column antenna element is joined to at least one adjacent column antenna element so to form a conjoined column of notch antennas; and wherein each column antenna element comprises a second recess extending into the main body from the tip portion towards the bottom portion; wherein each first recess is configured to receive a second recess in order to form the antenna array from the M row antenna structures and the N column antenna structures.
2. The antenna array according to claim 1, wherein each feed arrangement comprises a connector integrated with the leg portion.
3. The antenna array according to claim 2, wherein each feed arrangement comprises a centre pin extending from the leg portion through an opening in a bottom surface of each row antenna element and each column antenna element.
4. The antenna array according to claim 1, wherein each row antenna structure forms an integral structure; and wherein each column antenna structure forms an integral structure.
5. The antenna array according to claim 4, wherein each integral structure is a metal structure.
6. The antenna array according to claim 1, wherein only the bottom portion of each row antenna element is joined to the bottom portion of at least one adjacent row antenna element; and wherein only the bottom portion of each column antenna element is joined to the bottom portion of at least one adjacent column antenna element.
7. The antenna array according to claim 1, wherein each first recess is configured to receive a second recess in order to form the antenna array such that each row antenna structure has an extension along a first direction, and each column antenna structure has an extension in a second direction perpendicular to the first direction.
8. The antenna array according to claim 1, wherein the antenna array is a dual polarized notch antenna array.
9. The antenna array according to claim 1, wherein the antenna array having an operating frequency band, the operating frequency band having a minimum frequency and a maximum frequency, and wherein a distance between each row antenna structure and each column antenna structure is below half of a wavelength of the maximum frequency.
10. The antenna array according to claim 1, wherein the row antenna structures have a first operating frequency band, and the column antenna structures have a second operating frequency band different from the first operating frequency band.
11. The antenna array according to claim 9, wherein the distance between each row antenna structure is a first distance and the distance between each column antenna structure is a second distance different from the first distance.
12. The antenna array according to claim 1, wherein the main body of each row antenna element has a first cavity at an interior portion; and wherein the main body of each column element has a second cavity at an interior portion.
13. The antenna array according to claim 1, wherein the antenna array is a self-supporting interleaved antenna array.
14. A vehicle comprising an antenna array according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
[0025]
[0026]
[0027]
[0028]
DETAILED DESCRIPTION
[0029] In the following detailed description, preferred embodiments of the present invention will be described. However, it is to be understood that features of the different embodiments are exchangeable between the embodiments and may be combined in different ways, unless anything else is specifically indicated. Even though in the following description, numerous specific details are set forth to provide a more thorough understanding of the present invention, it will be apparent to one skilled in the art that the present invention may be practiced without these specific details. In other instances, well known constructions or functions are not described in detail, so as not to obscure the present invention.
[0030]
[0031] It should be noted that even though the term “antenna element” is used,
[0032] Further, each row antenna element 2, or more precisely, each main body 3 of each row antenna element 2 has a first recess 8 extending into the main body 3 from the bottom portion 4 towards the tip portion 5. Stated differently, the bottom portion 4 of each row antenna element 2 has a first slit 8 extending into the main body 3 towards the tip portion 5. Moreover, the row antenna structure 7 is not arranged on a substrate, but is a stand-alone structure. Thus, each row antenna element 2 has a (pre)defined thickness (i.e. an extension in the X-direction).
[0033] The dimensions of each row antenna element (row element) 2 is subject to variations depending the intended operational frequency band of the antenna. However, in general the “width” of each row antenna element (i.e. extension along the Y-direction) is approximately λ/2, the length of each row antenna element (i.e. extension along the Z-direction) is selected depending on the bandwidth. The length may for example be in the range from λ/3 to several λ. The thickness of each row antenna element varies by required impedance, but may for example be less than λ/10. Moreover, the dimensions of each antenna element 2, 12 need not be uniform across the entire array but may vary among individual elements or individual rows/columns within an array. Here, λ represents the wavelength of the highest frequency of the operational frequency band of the antenna.
[0034]
[0035] As mentioned in reference to
[0036] Furthermore, each column antenna element 12 comprises a second recess 18 extending into the main body 13 from the tip portion 15 towards the bottom portion 14. In other words, the top portion 15 of each column antenna element has a first slit 18 extending into the main body 13 towards the bottom portion 14. Moreover, the column antenna structure 17 is not arranged on a substrate, but is a stand-alone structure. Thus, each column antenna element 12 has a (pre)defined thickness (i.e. an extension in the Y-direction).
[0037] The dimensions of each column antenna element (column element) 12 is subject to variations depending the intended operational frequency band of the antenna. However, in general the “width” of each row antenna element (i.e. extension along the Y-direction) is approximately λ/2, the length of each row antenna element (i.e. extension along the Z-direction) is selected depending on the bandwidth. The length may for example be in the range from λ/3 to several λ. The thickness of each column antenna element 12 varies by required impedance, but may for example be less than λ/10. Moreover, the dimension need not be uniform across the entire array but may vary among individual elements within an array. Here, λ represents the wavelength of the highest frequency of the operational frequency band of the antenna.
[0038] Each row antenna element 2 and each column antenna element 12 further comprises a rectangular cavity adjacent to the first and second leg portions 6, 16, respectively. While the cavity is of a rectangular shape, a plurality of shapes are possible (circular, elliptical, polygonal, etc.) for the cavity as long as the shape of the cavity confers electromagnetic wave properties of the notch antenna so to allow for operation of the notch antenna.
[0039] Moreover, two adjacent main bodies 3, 13 of either one of the row antenna elements or column antenna elements form a tapering gap 9 between each other, the tapering gap tapers in a direction from the tip 5 portion towards the bottom portion 4 (i.e. in a negative Z-direction), so to form a notch antenna element. Thus, in
[0040] In more detail, each notch antenna element can be said to comprise an electrically conductive body having a tapering slot 9. The slot separates the notch antenna element into two projections or prongs (each projection being one half of one main body 3, 13). Accordingly, one of the “projections” may be grounded while the other projection is energized by a RF signal (via the leg portions 6, 16). Even though the illustrated examples show continuously tapering gaps 9, in other embodiments the gaps 9 are stepwise tapering gaps (9). In other words, the main bodies 3, 13 may be tapering from the bottom portion 4, 14 to the tip portion 5, 15 in a stepwise manner. Stepwise tapering may provide simplified manufacturing but with reduced bandwidth properties.
[0041] Each first recess 8 is configured to receive one of the second recesses 18 in order to form an antenna array. More specifically, the each first recess 8 is arranged to mate with a corresponding second recess 18 so to form the antenna array. This “mating” or assembly process will be further elucidated in reference to
[0042] Furthermore, the main body 3, 13 of each row antenna element 2 and each column antenna element 12 may have a circumferentially enclosed cavity (or pocket) at an interior portion (not shown). In other words, parts of the interior of the antenna elements 2, 12 may be removed without adverse operational effects in order to reduce the overall weight of the antenna array. Preferably the interior portion of an upper portion (e.g. upper half) of the row antenna elements 2 is removed, while the interior portion of a lower portion (e.g. lower half) of the column antenna elements 12 is removed. The term circumferentially enclosed cavity is to be interpreted as that an arbitrarily shaped hole is formed in the main body 3 of the antenna element. This is in contrast to the recesses 8, 18 and the cavities proximate to the leg portions 6, 16 which are open to the surrounding space (even if the cavities proximate to the leg portions 6, 16 barely open, see e.g.
[0043]
[0044] The antenna array 1 is configured to operate within a frequency band, i.e. the antenna array 1 has an operating frequency band. In some embodiments, the operating frequency band has a minimum frequency and a maximum frequency (i.e. a lower frequency limit and an upper frequency limit). The antenna array 1 is preferably arranged such that a distance 21 between each row antenna structure 7 and a distance 22 between each column antenna structure 17 is below half of a wavelength of the maximum frequency (i.e. upper frequency limit). However, in some embodiments the row antenna structures 7 may operate at a first frequency band while the column antenna structures 17 may operate at a second frequency band different from the first frequency band. Thus, the distances 22 between each column antenna structure 17 may be different from the distances 21 between each row antenna structure 7.
[0045]
[0046] Moreover, since the row antenna structures and column antenna structures generally form “2D” structures, which can be made from one single piece of metal, manufacturing cost and complexity may be reduced.
[0047]
[0048] The feed arrangement 41 comprises a feed point 42, which is the electrical point that feeds the RF waves (indicated by arrow 43) to the antenna element when transmitting or receiving the incoming RF waves incoming to the antenna element. Moreover, the feed arrangement 41 may comprise a connector (e.g. a coaxial connector) integrated with the leg portion 16. The coaxial connector may be realized by attaching a connector centre pin by means of soldering, using conductive glue, or using a fastening screw or clamp, to the feed point. Alternatively, one can use an open ended transmission lane approximately a quarter wavelength away from the feed point 42, or use a capacitive coupling arrangement. By integrating the connectors with the leg portion the need for complicated feed arrangements is alleviated, thereby reducing complexity and manufacturing costs.
[0049] Thus, in some embodiments the feed arrangement 41 comprises a centre pin extending from the leg portion 16 and through the bottom plate/surface of the bottom portion (via which each individual element is conjoined). The centre pin is preferably fixed or integrated to the leg portion 16 and extends through the bottom plate so to enable for direct contact with an underlying substrate. Thereby the substrate's (i.e. circuit board's) corresponding feeding arrangements may be directly connected to the feed arrangements of the antenna array, simplifying assembly and manufacturing.
[0050] It is to be understood that the present invention is not limited to the embodiments described above and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims. Thus, variations to the disclosed embodiments can be understood and effected by the skilled addressee in practicing the claimed disclosure, from a study of the drawings, the disclosure, and the appended claims. Furthermore, in the claims, the word “comprising” does not exclude other elements or steps, and the indefinite article “a” or “an” does not exclude a plurality.