Claims
- 1. A low-visibility, field-diverse antenna for providing communications, comprising:an antenna-supporting core having a width and a length; and an antenna, said antenna wrapped upon said core in a manner for a selected resonant frequency, said antenna radiating in a diverse manner with horizontal and vertical field components of a field radiated by said antenna substantially in phase and not circularly polarized; whereby the low-visibility, field-diverse antenna is realized having helical antenna characteristics without severe circular polarization radiation thereby promoting reliable communications.
- 2. The low-visibility, field-diverse antenna of claim 1, wherein said antenna-supporting core is generally thin and rectangular.
- 3. The low-visibility, field-diverse antenna of claim 2, wherein said generally rectangular shape of said antenna-supporting core approximates a square.
- 4. The low-visibility, field-diverse antenna of claim 2, wherein said antenna-supporting core comprises printed circuit board (PCB) substrate.
- 5. The low-visibility, field-diverse antenna of claim 4, wherein said PCB substrate conducts from one flat side to another via at least a portion of a plated-through hole.
- 6. The low-visibility, field-diverse antenna of claim 5, wherein said antenna comprises conducting foil.
- 7. The low-visibility, field-diverse antenna of claim 1, wherein said antenna is wrapped upon said core in a helical manner.
- 8. The low-visibility, field-diverse antenna of claim 1, wherein said antenna comprises a meandering conductor wrapped upon said core.
- 9. The low-visibility, field-diverse antenna of claim 1, further comprising:a radome covering said core and said antenna.
- 10. The low-visibility, field-diverse antenna of claim 9, wherein said radome comprises a dense plastic, said dense plastic changing the operating frequency of the antenna.
- 11. The low-visibility, field-diverse antenna of claim 10, wherein said dense plastic has a dielectric constant of approximately 4.
- 12. The low-visibility, field-diverse antenna of claim 11, wherein said dense plastic is acetyl.
- 13. The low-visibility, field-diverse antenna of claim 9, wherein said radome is approximately three inches tall, said antenna is tuned for a center frequency of 460 MHz with a bandwidth of 20 MHz with a VSWR of 2.0:1.
- 14. The low-visibility, field-diverse antenna of claim 9, wherein said radome is approximately one and three-quarter inches (1¾″) tall, said antenna having a bandwidth of 70 MHz for at least one of the duplexed radio bands at 806-869 MHz, 824-896 MHz, and 890-960 MHz.
- 15. The low-visibility, field-diverse antenna of claim 1, wherein the low-visibility, field-diverse antenna is one in a stack of similar antennas coupled by a phase-shift network creating an end-fed collinear antenna.
- 16. A low-visibility, field-diverse antenna for providing communications, comprising:generally thin and approximately square antenna-supporting core comprising printed circuit board (PCB) substrate having a width and a length, said core conducting from one flat side to another via at least a portion of a plated-through hole in said core; an antenna, said antenna comprising conducting foil fixed upon said core in a manner for a selected resonant frequency, said antenna radiating in a diverse manner with horizontal and vertical field components of a field radiated by said antenna are substantially in phase and not circularly polarized; and a radome, said radome covering said core and said antenna, said radome comprising acetyl plastic, said radome having a dielectric constant of approximately 4 and changing the operating frequency of the antenna; whereby the low-visibility, field-diverse antenna is realized having helical antenna characteristics without severe circular polarization radiation thereby promoting reliable communications.
- 17. A method for constructing a low-visibility, field-diverse antenna, the steps comprising:providing an antenna-supporting core; providing a conductor; fixing said conductor upon said core; attaching said conductor to said core in a manner whereby a length of said conductor is engaged by said core in a manner for a selected resonant frequency, said conductor radiating in a diverse manner with horizontal and vertical field components of a field radiated by said conductor substantially in phase and not circularly polarized; whereby the low-visibility, field-diverse antenna is realized having helical antenna characteristics without severe circular polarization radiation thereby promoting reliable communications.
- 18. The method for constructing a low-visibility, field-diverse antenna of claim 17, wherein the step of providing an antenna-supporting core further comprises:providing an antenna-supporting core having plated-through holes whereby conduction can be made from one side of said antenna-supporting core to another.
- 19. The method for constructing a low-visibility, field-diverse antenna of claim 18, wherein the step of attaching said conductor to said core further comprises:attaching conducting foil on one side of said core connecting one plated-through hole with another.
- 20. The method for constructing a low-visibility, field-diverse antenna of claim 19, wherein the step of providing an antenna-supporting core further comprises:said plated-through holes are present on opposite sides of said core, said plated-through holes on one side of said core are offset with respect to said plated-through holes on the other side of said core to establish a pitch of said conducting foil attaching a plated-through hole on one side of said core with a plated-through hole on the other side of said core.
- 21. The method for constructing a low-visibility, field-diverse antenna of claim 20, wherein said offset of said plated-through holes is selected to maintain resonance in conjunction with a length of said conductor.
- 22. The method for constructing a low-visibility, field-diverse antenna of claim 21, wherein the step of providing an antenna-supporting core further comprises:providing an antenna-supporting core having plated-through holes inside a perimeter margin.
- 23. The method for constructing a low-visibility, field-diverse antenna of claim 22, the steps further comprising:removing excess core material by removing said perimeter margin to create a minimally-sized antenna.
- 24. The method for constructing a low-visibility, field-diverse antenna of claim 23, wherein said plated-through holes are approximately fifty-thousandths inch (0.050″) in diameter.
CROSS-REFERENCES TO RELATED APPLICATIONS
This application is a continuation of U.S. patent application Ser. No. 08/892,732 filed on Jul. 15, 1997 and to be issued on Nov. 2, 1999 as U.S. Pat. No. 5,977,931, incorporated herein by this reference thereto.
US Referenced Citations (45)
Non-Patent Literature Citations (1)
| Entry |
| Kuboyama, Haruhiro et al., “Experimental Results with Mobile Antennas Having Cross-Polarization Components in Urban and Rural Areas,” IEEE Transactions on Vehicular Technology, vol. 39, No. 2, 150-160. |
Continuations (1)
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Number |
Date |
Country |
| Parent |
08/892732 |
Jul 1997 |
US |
| Child |
09/430827 |
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US |