The present invention is directed generally toward array antennas, and more particularly, but not by way of limitation, toward segmented circular planar array antennas.
Directional networking requires high throughput and therefore higher directional gain antennas. Existing technology utilizes parasitic arrays to provide cheap implementation of communication directionality but lacks the necessary gain and thus communication range. Alternatively, some existing technology utilizes mechanical arrays. Mechanical arrays add significant cost and complexity.
Consequently, it would be advantageous if an apparatus existed that had increased antenna gain compared to a parasitic array without the cost and complexity of a mechanical array.
Accordingly, embodiments of the present invention are directed to a novel method and apparatus that has relatively high gain without the cost and complexity of a mechanical array. The apparatus uses low cost, high dielectric constant FR-4 printed circuit board materials.
In at least one embodiment, a fixed antenna includes multiple FR-4 printed board panels, each including an array of radiating elements where a subset of radiating elements receives a time delayed signal from a feed layer. The number of panels is minimized by configuring each array to generate a shaped beam. The shaped beam is produced by non-uniformly spaced elements and non-uniform array element phase shifts.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the invention claimed. The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate an embodiment of the invention and together with the general description, serve to explain the principles.
The numerous advantages of the present invention may be better understood by those skilled in the art by reference to the accompanying figures in which:
Reference will now be made in detail to the subject matter disclosed, which is illustrated in the accompanying drawings. The scope of the invention is limited only by the claims; numerous alternatives, modifications and equivalents are encompassed. For the purpose of clarity, technical material that is known in the technical fields related to the embodiments has not been described in detail to avoid unnecessarily obscuring the description.
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The processor 100 may apply variable signals to radiating elements in the antenna 104 to vary to directionality of a corresponding signal over time. Embodiments of the inventive concepts disclosed herein may be stationary transmission points or incorporated into mobile platforms such as aircraft or ground vehicles.
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In some embodiments, the power dividers are arranged such that a primary power divider 402 receives an input and sends power to two secondary power dividers 404, 406. Each of the secondary power dividers 404, 406 sends power to two tertiary power dividers 408, 410, 420, 422. Each of the tertiary power dividers 408, 410, 420, 422 sends power to two quaternary power dividers 412, 414, 416, 418, 424, 426, 428, 430. A person skilled in the art having the benefit of the instant disclosure will appreciate that the number and organization of power dividers 402, 404, 406, 408, 410, 412, 414, 416, 418, 420, 422, 424, 426, 428, 430 is exemplary, and different numbers and organizations are contemplated within the scope of the inventive concepts disclosed herein.
In some embodiments, radiation patterns from individual elements in the metallization layer are combined to produce a shaped beam radiation pattern. For example, metallization elements may be connected to a connecting probe 448, 450, 452, 454, 456, 458, 460, 462, 464, 466, 468, 470, 472, 474, 476, and 487 to produce a shaped beam radiation pattern.
The connecting probes 448, 450, 452, 454, 456, 458, 460, 462, 464, 466, 468, 470, 472, 474, 476, and 487 are non-uniformly spaced and have non-uniform phase shifts 432, 434, 436, 438, 440, 442, 444, 446 in order to produce a shaped beam radiation pattern.
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While exemplary embodiments described herein illustrate a panel 500 having a four-by-four array of radiating elements 502, 504, 506, 508, 510, 512, 514, 516, 518, 520, 522, 524, 526, 528, 530, 532, a person skilled in the art may appreciate that different configurations of radiating elements 502, 504, 506, 508, 510, 512, 514, 516, 518, 520, 522, 524, 526, 528, 530, 532 are envisioned. Any N-by-M array of radiating elements utilizing different metallization configurations and signal delays may be utilized. A larger number of array elements may produce superior gain.
The exemplary embodiments defined herein are specifically directed toward an array wherein the center two columns of radiating elements 518, 520, 522, 524, 526, 528, 530, 532 are substantially similar while the outer two columns of radiating elements 502, 504, 506, 508, 510, 512, 514, 516 are substantially similar and differentiated from the center two columns. Further, the outer two columns of radiating elements 502, 504, 506, 508, 510, 512, 514, 516 are fed a delayed signal from the feed layer.
A shaped beam antenna for switched beam transmission according to the inventive concepts disclosed herein may be configured for long range, high data rate communication through the combination of amplifiers and X-band antenna panel 500. Some embodiments may allow for data communication up to 140 km.
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It is believed that the present invention and many of its attendant advantages will be understood by the foregoing description of embodiments of the present invention, and it will be apparent that various changes may be made in the form, construction, and arrangement of the components thereof without departing from the scope and spirit of the invention or without sacrificing all of its material advantages. The form herein before described being merely an explanatory embodiment thereof, it is the intention of the following claims to encompass and include such changes.
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