The present invention relates generally to antenna technology, and more particularly to a circular polarization antenna and feed network system.
Conventional weapon systems, including missiles, bombs and artillery shells, may be equipped with a terminal guidance system. A terminal guidance system may refer to an electronic system which may guide a weapon toward a designated target in the last phase of deployment prior to impact. Weapons which employ a terminal guidance system, such as a global positioning system (GPS) receiver, may be referred as precision guided munitions (PGMs). Advantageously, PGMs increase the percentage of enemy targets being destroyed while reducing collateral damage.
A problem associated with PGMs is the lack of coordinate reception capability during adverse weather conditions. For example, if a PGM is deployed in adverse weather conditions, the on-board GPS receiver may be unable to receive signals from GPS satellites. As a result, the PGM may be unable to determine its current GPS coordinates or determine the correct path to strike a desired target. Conventional antenna systems have been employed with PGMs to increase reception capability, but are limited by a number of factors. One type of conventional antenna system is a top-loaded monopole antenna as shown in
Accordingly, the present invention is directed to an improved antenna system. In an embodiment of the invention, the antenna system of the present invention may be a dielectric resonator antenna which may include a dielectric cap that may surround a plurality of feeds, such as probes. The antenna system may be suitable for coupling to a projectile, whereby the antenna system including the dielectric cap forms a front end, or nose, of the projectile, the projectile itself serving as a ground plane for the dielectric resonator antenna. The plurality of feeds may produce orthogonal vector components of a field to provide circular polarization. Additionally, feeds may be optimally spaced within the dielectric cap to ensure the phase center of the antenna system may be co-located with a platform axis of rotation of the projectile whereby no carrier phase rollup compensation may be required.
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 of the invention.
The numerous objects and 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 a presently preferred embodiment of the invention, an example of which is illustrated in the accompanying drawings.
Referring generally to
Referring specifically to
In one embodiment of the invention, feeds 320-330 may comprise two feeds which may be driven in quadrature for exciting two orthogonal modes for omitting circularly polarized radiation. Feeds 320-330 may be 50 Ohm coaxial probes with high frequency coaxial connectors such as SMA fittings. Feeds 320-330 may extend a height h1 within the dielectric cap 310. Dielectric cap 310 may be formed of dielectric material providing an effective dielectric constant of 15. In operation of the antenna, probes may excite hybrid electrical and magnetic (HEM) modes inside the dielectric cap 310 which cause the probes to resonate.
In one embodiment of the invention, dielectric cap 310 may be cone-shaped. For example, the dielectric cone may be shaped according to optimal aerodynamic parameters with an ogive taper. However, it is contemplated that the shape of the dielectric cap 310 may be adjusted to alter the radiation pattern of the dielectric resonator antenna.
Referring to
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Antenna system 300, 500 may provide a number of advantages. For example, antenna systems 300, 500 may provide circular polarization radiation with a forward looking pattern. Such antenna systems 300, 500 may be ideal for global positioning system (GPS) fuze antennas. Referring to
It is contemplated that antenna system 300 may produce a slightly increased ripple pattern than antenna system 500. However, the software/hardware implementation for the three feed antenna system 500 may be more complex than the software/hardware implementation for the antenna system 200. It is further contemplated that multiple feeds, four feeds and greater, may also be employed by those with skill in the art without departing from the scope and intent of the present invention.
Additionally, antenna systems 300, 500 may employ commercially available polymer matrix and ceramic dielectric materials and may be manufactured within a small form factor. For example, by employing commercially available polymer matrix and ceramic dielectric materials with a dielectric constant of about 25, an antenna system 300, 500 may be produced in a 30 millimeter by 30 millimeter form factor. Thus, antenna systems 300, 500 may be employed with small projectiles, such as hand-held GPS-guided projectiles and the like.
It is contemplated that antenna system 300, 500 may be employed with a guided projectile. A guided projectile may refer to a weapon, artillery shell, missile, bomb and the like with a guidance system, such as a GPS receiver. In one embodiment of the invention, antenna system 300, 500 may be mounted to a projectile and may form the front end, or nose, of the guided projectile. Advantageously, antenna system 300, 500 may increase reception capability for the guidance system, such as a global positioning system receiver. Additionally, the phase center of the antenna system 300, 500 may be co-located with an axis of rotation of the guided projectile when the projectile is deployed. It is further contemplated that antenna system 300, 500 may be deployed with multiple types of applications without departing from the scope and intent of the present invention.
It is believed that the present invention and many of its attendant advantages will be understood by the foregoing description, 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.
Number | Name | Date | Kind |
---|---|---|---|
5986616 | Edvardsson | Nov 1999 | A |
6344833 | Lin et al. | Feb 2002 | B1 |
6452565 | Kingsley et al. | Sep 2002 | B1 |