Protected biconical antenna assembly with balun feed
09570798 ยท 2017-02-14
Inventors
Cpc classification
International classification
H01Q1/42
ELECTRICITY
H01Q1/36
ELECTRICITY
H01Q1/50
ELECTRICITY
Abstract
An antenna assembly including a pair of sheet conductive elements directed in divergent directions, with the conductive elements including a conical sheet conductor and a cylindrical sheet conductor, and a plurality of radiating conductors conductively attached to and extending away from the sheet conductors. A feed point is defined between the conical sheet conductors of the pair of conductive elements. A balun is coupled to the feed point and a tubular radome protects at least portions of the plurality of radiating conductors.
Claims
1. A biconical antenna assembly comprising: a pair of generally cone-shaped conductive elements directed in divergent directions, with one of the pair of conductive elements including a generally conical sheet conductor and a generally cylindrical sheet conductor, and a first plurality of radiating conductors conductively attached to and extending away from the cylindrical sheet conductor, and with the other conductive element including a generally cylindrical sheet conductor and a generally conical sheet conductor, and a second plurality of radiating conductors conductively attached to and extending away from the cylindrical sheet conductor, with a feed point defined between the conical sheet conductors of the pair of conductive elements; a balun including a coiled section of a coax signal line and a magnetic core, said balun being coupled to the feed point; and a tubular radome enclosing at least portions of the plurality of radiating conductors, wherein the plurality of radiating conductors are covered with a flexible protective element.
2. A biconical antenna assembly comprising: a pair of generally cone-shaped conductive elements directed in divergent directions, with one of the pair of conductive elements including a generally conical sheet conductor and a generally cylindrical sheet conductor, and a first plurality of radiating conductors conductively attached to and extending away from the cylindrical sheet conductor, and with the other conductive element including a generally cylindrical sheet conductor and a generally conical sheet conductor, and a second plurality of radiating conductors conductively attached to and extending away from the cylindrical sheet conductor, with a feed point defined between the conical sheet conductors of the pair of conductive elements; a balun including a coiled section of a coax signal line and a magnetic core, said balun being coupled to the feed point; and a tubular radome enclosing at least portions of the plurality of radiating conductors, wherein the plurality of radiating conductors are of a resilient material, such that upon a deformation in response to an external force, the plurality of radiating conductors return to a pre-deformation orientation.
3. The biconical antenna assembly of claim 2 wherein the second plurality of radiating conductors are positioned within 180 degrees.
4. The biconical antenna assembly of claim 3 wherein the second plurality of radiating conductors are equally spaced around one side of the cylindrical sheet conductor.
5. The biconical antenna assembly of claim 2 wherein the first plurality of radiating conductors are generally equally spaced around the conical sheet conductor.
6. The biconical antenna assembly of claim 2 wherein the radiating conductors include one or more chokes.
7. The biconical antenna assembly of claim 6 wherein the chokes are defined as a plurality of loops.
8. The biconical antenna assembly of claim 2 wherein a center conductor of a coax signal line is connected to an upper conical sheet conductor and a shield conductor of the coax line is connected to a lower conical sheet conductor.
9. The biconical antenna of claim 8 wherein the coax signal line extends through a center opening in the lower conical sheet conductor.
10. A biconical antenna assembly comprising: a pair of generally cone-shaped conductive elements directed in divergent directions, with one of the pair of conductive elements including a generally conical sheet conductor and a generally cylindrical sheet conductor, and a first plurality of radiating conductors conductively attached to and extending away from the cylindrical sheet conductor, and with the other conductive element including a generally cylindrical sheet conductor and a generally conical sheet conductor, and a second plurality of radiating conductors conductively attached to and extending away from the cylindrical sheet conductor, with a feed point defined between the conical sheet conductors of the pair of conductive elements; a balun including a coiled section of a coax signal line and a magnetic core, said balun being coupled to the feed point; and a tubular radome enclosing at least portions of the plurality of radiating conductors, wherein the radome includes a pair of tubular sections designed to receive portions of the radiating conductors.
11. The biconical antenna of claim 10 wherein the radome includes at least one dielectric spacer element positioned in an interior of one of the pair of tubular sections, said spacer element for maintaining a separation between the radiating conductors.
12. The biconical antenna of claim 10 wherein the radome includes at least one dielectric transition for mechanically connecting a pair of radome sections together.
13. A biconical antenna assembly comprising: a pair of generally cone-shaped conductive elements directed in divergent directions, with one of the pair of conductive elements including a generally conical sheet conductor and a generally cylindrical sheet conductor, and a first plurality of radiating conductors conductively attached to and extending away from the cylindrical sheet conductor, and with the other conductive element including a generally cylindrical sheet conductor and a generally conical sheet conductor, and a second plurality of radiating conductors conductively attached to and extending away from the cylindrical sheet conductor, with a feed point defined between the conical sheet conductors of the pair of conductive elements; a balun including a coiled section of a coax signal line and a magnetic core, said balun being coupled to the feed point; and a tubular radome enclosing at least portions of the plurality of radiating conductors, wherein the radome includes at least one dielectric transition for mechanically connecting a pair of generally tubular radome sections together.
14. The biconical antenna of claim 13 wherein the radome includes a foam filler in one or more cavities of the radome.
15. A biconical antenna assembly comprising: a first sheet conductor including a generally conical sheet conductor and a generally cylindrical sheet conductor conductively attached to a plurality of radiating conductors, said conductors extending away from the cylindrical sheet conductor to define a generally conical form; a second sheet conductor including a generally conical sheet conductor and a generally cylindrical sheet conductor attached to a plurality of radiating conductors extending away from the conductor to define at least a portion of a conical form, said radiating conductors extending in generally opposite directions as compared to the radiating conductors attached to the first sheet conductor, and with a feedpoint defined between the first and second sheet conductors; a balun including a coiled section of a coax signal line surrounding a magnetic core, with the coax signal line being coupled to the feedpoint; and a radome assembly for enclosing at least some of the plurality of radiating conductors, wherein the radome assembly includes at least one dielectric spacer element for maintaining a separation between the radiating conductors.
16. A biconical antenna assembly comprising: a first sheet conductor including a generally conical sheet conductor and a generally cylindrical sheet conductor conductively attached to a plurality of radiating conductors, said conductors extending away from the cylindrical sheet conductor to define a generally conical form; a second sheet conductor including a generally conical sheet conductor and a generally cylindrical sheet conductor attached to a plurality of radiating conductors extending away from the conductor to define at least a portion of a conical form, said radiating conductors extending in generally opposite directions as compared to the radiating conductors attached to the first sheet conductor, and with a feedpoint defined between the first and second sheet conductors; a balun including a coiled section of a coax signal line surrounding a magnetic core, with the coax signal line being coupled to the feedpoint; and a radome assembly for enclosing at least some of the plurality of radiating conductors, wherein the radome assembly include at least one transition element for mechanically coupling a pair of radome sections together.
17. A biconical antenna assembly comprising: an upper feed element including a generally cylindrical sheet conductor and a generally conical sheet conductor, with the cylindrical sheet conductor conductively attached to a plurality of radiating conductors, said conductors extending away from the cylindrical sheet conductor; a lower feed element including a generally conical sheet conductor and a generally cylindrical sheet conductor, with the cylindrical sheet conductor attached to a plurality of radiating conductors extending away from the cylindrical sheet conductor, said radiating conductors extending in generally opposite directions as compared to the radiating conductors attached to the upper feed element; a feedpoint adapted for connection to an RF transceiver, said feedpoint being defined between the upper feed element and the lower feed element; a balun coupled to the feedpoint and including a section of coax signal line coiled about a magnetic core; and a radome enclosing at least some of the radiating conductors, with the radome including at least one interior dielectric spacer element for maintaining a separation between the radiating conductors within the radome.
18. The biconical antenna assembly of claim 17 wherein at least some of the plurality of radiating conductors include a pair of RF chokes, with the pair of RF chokes being selected to optimize operation of the antenna assembly across a predetermined frequency range.
19. The biconical antenna of claim 17 wherein the radome includes a pair of tubular sections designed to receive portions of the radiating conductors.
20. The biconical antenna of claim 17 wherein the radome includes at least one dielectric transition element for mechanically connecting a pair of radome sections together.
Description
BRIEF DESCRIPTION OF THE INVENTION
(1) The foregoing and other features and advantages of the invention will be apparent from the following description of embodiments hereof as illustrated in the accompanying drawings. The accompanying drawings, which are incorporated herein and form a part of the specification, further serve to explain the principles of the invention and to enable a person skilled in the pertinent art to make and use the invention. The drawings are not all to scale.
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DETAILED DESCRIPTION OF THE INVENTION
(14) Referring to
(15) Referring to
(16) Together the first and second sheet conductors 30, 34 provide broadband operation for the antenna over a large frequency range in the upper part of the antenna's frequency range. In comparison, the wire conductors 32, 36 provide for operation over the lower frequency range of the antenna.
(17) Antenna 12 incorporates multiple radio frequency chokes (C1, C2, C3) in the radiating conductors 32, 36. The RF chokes may be simple conductive coils. Chokes C1, C2, C3 facilitate operation over a frequency range of approximately 34:1 by acting as band stops for a higher radio frequency current frequency band, while permitting rf current at a lower frequency band to pass. The number of turns and turn spacing of chokes C1, C2, C3 are selected for optimum performance over frequency bands of interest.
(18) Referring to
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(23) In some embodiments of the invention, the transceiver may operate (selectably or preset) in frequency bands associated with various mobile telephones, such as, 900 MHz, 2.4 GHz, or other wireless telephone frequency bands. Other mobile telephone frequency bands may include customized frequency bands that commercial mobile telephone receivers and transmitters may not be to operate at out of the box. For example, the customized frequency bands may include frequency bands that hostile parties have been able to use in the past (e.g., for remote detonation of IEDs and/or communication) by modifying commercially available wireless telephone components. In some embodiments of the invention, the transceiver may operate (selectably or preset) in frequency bands associated with various short range wireless devices such as an electronic car key, a garage door opener, a remote control, or other short range wireless device. In some embodiments of the invention, the transceiver may operate with various combinations of the wireless frequency bands, the wireless telephone frequency bands, and/or the short range wireless device frequency bands.
(24) In some embodiments, the transceiver may transmit in two, three, four, five, or more different frequency bands. For example, in some embodiments of the invention, the transceiver may operate (selectably or preset) in one or more of the same frequency bands as commercially available wireless communication devices, such as, but not limited to, GSM, CDMA, TDMA, SMR, Cellular PCS, AMPS, FSR, DECT, or other wireless frequency band.
(25) In some embodiments of the invention, the transceiver may detect RF transmissions to a wireless device located within a volume of influence of the detecting transceiver. This volume of influence may be based on various factors including a range between the target wireless device and the transceiver, a range between the target wireless device and the target transmitter, a range between the target transmitter and the transceiver, a transceiver power, a target transmitter power, a target receiver sensitivity, a frequency band or bands of the transceiver, propagation effects, topography, structural interferers, characteristics of an antenna at the transceiver including gain, directionality, and type, and other factors
(26) In some embodiments of the invention, the volume of influence may be selected or predetermined to be larger than a volume impacted by the detonation of the IED (i.e., the detonation volume or kill zone). In some embodiments of the invention, the volume of influence may be selected or predetermined based on whether the transceiver is stationary (e.g., at or affixed to a building or other position) or mobile (e.g., in or affixed to a vehicle, person, or other mobile platform).
(27) In those embodiments where the transceiver is mobile, the volume of influence may be selected or predetermined based on a speed, either actual or expected, of the mobile platform. In some embodiments of the invention, multiple antennas and transmitters may be used to define an aggregate volume of influence. This aggregate volume of influence may be used to detect and/or suppress RF transmissions around a stationary position such as, for example, a base, a building, an encampment or other stationary position, or a mobile position such as a convoy of vehicles, a division of troops or other mobile position. In further embodiments, the multiple antennas and transceivers may also transmit at different frequencies to suppress RF transmissions from a wide variety of wireless devices.
(28) In some embodiments, the invention may be sized and/or configured to be mounted in, affixed to, or otherwise carried in a military vehicle or a civilian vehicle (e.g., an armored civilian vehicle) such as HMMWV or other military vehicle, a GMC Tahoe, a Chevrolet Suburban, a Toyota Land Cruiser, or other civilian vehicle. In some embodiments, the invention may be sized and/or configured to be carried by a person in a backpack, case, protective vest, body armor or other personal equipment or clothing.
(29) In some of these embodiments, an antenna operating with the transceiver may be affixed to a head apparatus of the person, such as a hat or helmet, or be hand-held. In some embodiments, various components of the antenna may be housed in a ruggedized, sealed, and/or weatherproof container capable of withstanding harsh environments and extreme ambient temperatures.
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(32) The radome sections 100, 102 are preferably polycarbonate tubular elements, though alternative materials could be utilized. A foam filler (not shown) can be inserted into the radome section 100, 102 cavities to further lock the flexible radiating elements 32, 34 in place. Additionally, the foam filler provides a moisture/debris barrier and improves the overall structural integrity of the antenna assembly. A variety of setting foam fillers may be utilized during manufacture of the antenna assembly.
(33) According to various embodiments of the invention, the antenna and transceiver may be deployed with additional technologies. For example, the antenna and transceiver may be deployed with technologies designed to assess and screen persons, parties, and/or vehicles approaching a designated location, such as, for instance, checkpoints and/or facilities. The screening technologies may be designed to detect bombs being transported by people, within vehicles, or other (e.g., vehicle borne IEDs used in suicide attacks).
(34) Although the present invention and its advantages have been described in detail, it should be understood that various changes, substitutions and alterations can be made herein without departing from the spirit and scope of the invention as defined by the appended claims. Moreover, the scope of the present application is not intended to be limited to the particular embodiments of the process, machine, manufacture, composition of matter, means, methods and steps described in the specification. As one of ordinary skill in the art will readily appreciate from the disclosure of the present invention, processes, machines, manufacture, compositions of matter, means, methods, or steps, presently existing or later to be developed that perform substantially the same function or achieve substantially the same result as the corresponding embodiments described herein may be utilized according to the present invention. Accordingly, the appended claims are intended to include within their scope such processes, machines, manufacture, compositions of matter, means, methods, or steps.