Claims
- 1. An antenna responsive to a plurality of frequency bands, comprising:
a radiating element geometrically configured to be responsive to said plurality of frequency bands; a ground plane element positioned away from said radiating element to thereby define a space between said ground plane element and said radiating element; an antenna-feed connected to said radiating element; a device-feed for connection to a radio device; a transmission line connected between said antenna-feed and said device-feed; a plurality of transmission line stubs associated with said transmission line; at least one frequency responsive high impedance circuit responsive to at least one frequency within said plurality of frequency bands; and at least one transmission line stub connected to said transmission line by way of said at least one frequency responsive high impedance circuit such that said radiating element is matched to said radio feed within each of said plurality of frequency bands, as said at least one frequency responsive high impedance circuit operates to dynamically reconfigured said transmission line in accordance with a frequency band currently traversing said transmission line.
- 2. The antenna of claim 1 wherein said transmission line, said at least one transmission line stub and said at least one frequency responsive high impedance circuit comprise an impedance matching network that is physically located within said space between said ground plane element and said radiating element.
- 3. The antenna of claim 1 wherein said at least one frequency responsive high impedance circuit comprises at least one LC tank circuit having a discrete capacitor element and a discrete inductor element.
- 4. The antenna of claim 3 wherein said transmission line, said at least one transmission line stub and said at least one LC tank circuit comprise an impedance matching network that is physically located in said space between said ground plane element and said radiating element.
- 5. The antenna of claim 1 wherein the radio device is a wireless communications device, wherein said antenna is a planar inverted-F antenna having a metal planar radiating element and a metal planar ground plane element that is shorted to said radiating element.
- 6. The antenna of claim 5 wherein a two-shot molding process is used to make a plastic assembly whose outer surface is selectively metallized to provide said radiating element on one surface of said plastic assembly, and to provide metal patterns on an opposite surface of said plastic assembly that define said transmission line and said at least one transmission line stub.
- 7. The antenna of claim 6 wherein said metal patterns cooperated with said ground plane element to form a microstrip transmission line and at least one microstrip stub.
- 8. The antenna of claim 7 wherein said microstrip transmission line, said at least one microstrip stub and said at least one frequency responsive high impedance circuit comprise an impedance matching network that is physically located in said space between said ground plane element and said radiating element.
- 9. The antenna of claim 8 wherein said at least one frequency responsive high impedance circuit comprises at least one LC tank circuit having a discrete capacitor element and a discrete inductor element.
- 10. The antenna of claim 9 wherein the radio device is a wireless communications device.
- 11. The antenna of claim 10 wherein a two-shot molding process is used to make a plastic assembly whose outer surface is selectively metallized to provide said radiating element on one surface of said plastic assembly, and to provide metal patterns on an opposite surface of said plastic assembly that define said microstrip transmission line and said at least one microstrip stub.
- 12. A method of making a unitary mechanical assembly that includes a multi-band antenna and an impedance matching network, comprising the steps of:
providing a dielectric substrate having a top surface and a bottom surface; providing a metal ground plane element on said bottom surface of said dielectric substrate; providing a metal radiating element; configuring said radiating element to be responsive a plurality of frequency bands; spacing said radiating element from said top surface of said ground plane element; providing a radio feed for connection to a multi-band radio device; providing at least one metal microstrip transmission line on said top surface of said dielectric substrate and in an area thereof that is under said radiating element; connecting said at least one microstrip transmission line between said radiating element and said radio feed; providing a plurality of metal microstrip stubs on said top surface of said dielectric substrate and in said area under said radiating element; providing a plurality of frequency-responsive LC tank circuits; using said LC tank circuits to connect at least some of said microstrip stubs to said at least one microstrip transmission line, to thereby provide an impedance-matching-network that is responsive to a frequency currently traversing between said radiating element and said radio feed, to thereby dynamically reconfigure said impedance-matching-network to provide an impedance match between said radiating element and said radio feed as a function of said current-frequency.
- 13. The method of claim 12 wherein said plurality of frequency-responsive LC tank circuits include discrete capacitor and inductor elements that are located in a space under said radiating element.
- 14. The method of claim 13 including the steps of:
providing a box-like dielectric member in said space under said radiating element; and forming said dielectric member using a two shot molding process having top portions metallized to form said radiating element and having bottom portions metallized to form said at least one microstrip transmission line and said plurality of microstrip stubs.
- 15. The method of claim 14 wherein said bottom portions of said dielectric member include recesses for holding said discrete capacitor and inductor elements.
- 16. The method of claim 15 including the step of:
electrically connecting a portion of said radiating element to said ground plane element so as to form a PIFA.
- 17. An impedance-matched, multi-frequency-band, antenna having a device-feed for connection to a multi-frequency-band wireless communications device, comprising:
a generally planar and dielectric substrate member having an upper surface and a lower surface that includes a generally planar and metal ground plane element; a generally planar and metal radiating element located above a portion of said upper surface of said dielectric substrate member, said radiating element being geometrically configured to be responsive to said multi-frequency-band; a metal microstrip transmission line on said portion of said upper surface of said dielectric substrate member, said microstrip transmission line connecting said radiating element to said device-feed; a plurality of LC tank circuits responsive to frequencies within said multi-frequency-band; and a plurality of metal microstrip stubs formed on said portion of said upper surface of said dielectric substrate, at least some of said microstrip stubs being directly connected to said microstrip transmission line, and at least others of said microstrip stubs being connected to said microstrip transmission line through at least one of said LC tank circuits.
- 18. The antenna of claim 17 wherein said plurality of LC tank circuits are located in a space between said radiating element and said portion of said upper surface of said dielectric substrate member.
- 19. The antenna of claim 18 wherein said radiating element is generally parallel to said ground plane element, and wherein a portion of said radiating element is electrically connected to said ground plane element.
- 20. The antenna of claim 19 wherein said multi-frequency-band wireless communications device is a cellular telephone.
- 21. An impedance-matched and multi-frequency-band antenna having a device-feed for connection to a multi-frequency-band wireless device, comprising:
a box-like dielectric carriage having a generally planar upper surface and a generally planar lower surface that extends generally parallel to said upper surface; a generally planar and metal ground plane element having at least a portion thereof associated with said bottom surface of said dielectric carriage; a generally planar and metal radiating element formed on said upper surface of said dielectric carriage, said radiating element being geometrically configured to be responsive to said multi-frequency-band; a metal microstrip transmission line formed on said bottom surface of said dielectric carriage, said microstrip transmission line inter-connecting said radiating element and said device-feed; a plurality of metal microstrip stubs formed on said bottom surface of said dielectric carriage; a plurality of LC tank circuits responsive to frequencies within said multi-frequency-band; and at least some of said microstrip stubs directly connected to said microstrip transmission line, and at least others of said microstrip stubs indirectly connected to said microstrip transmission line through one or more of said LC tank circuits.
- 22. The antenna of claim 21 wherein said dielectric carriage is formed by a two-shot molding process, followed by a metallization process that produces said metal radiating element, said microstrip transmission line, and said plurality of microstrip stubs on said dielectric carriage.
- 23. The antenna of claim 22 wherein a portion of said radiating element is electrically connected to said ground plane element.
- 24. The antenna of claim 23 wherein said multi-frequency-band wireless device is a cellular telephone.
- 25. An impedance-matched and multi-frequency-band antenna having a device-feed for connection to a multi-frequency-band wireless device, comprising:
a box-like dielectric carriage having a generally planar upper surface and a generally planar bottom surface that extends generally parallel to said upper surface; a metal radiating element formed on said upper surface of said dielectric carriage, said radiating element being geometrically configured to be responsive to said multi-frequency-band; a generally planar and metal ground plane element; an generally planar impedance matching board located intermediate said bottom surface of said dielectric carriage and said ground plane element; a metal microstrip transmission line formed on said impedance matching board and electrically interconnecting said device-feed and said radiating element; a plurality of metal microstrip stubs formed on said impedance matching board; a plurality of LC tank circuits responsive to frequencies within said multi-frequency-band; and at least some of said microstrip stubs directly connected to said microstrip transmission line, and at least others of said microstrip stubs indirectly connected to said microstrip transmission line through one or more of said LC tank circuits.
- 26. The antenna of claim 25 wherein said dielectric carriage and said impedance matching board are formed by two-shot molding processes, followed by metallization processes that produces said metal radiating element on said dielectric carriage, and produces said microstrip transmission line and said plurality of microstrip stubs on said impedance matching board.
- 27. The antenna of claim 26 wherein a portion of said radiating element is electrically connected to said ground plane element.
- 28. The antenna of claim 27 wherein said multi-frequency-band wireless device is a cellular telephone.
- 29. The method of making an antenna assembly comprising the steps of:
first-shot molding a three dimensional member utilizing a first plastic material; said first plastic material not having a plating-affinity; said three-dimensional member having a first generally flat surface, a second generally flat surface that extends generally parallel to said first surface, a plurality of side walls that extend generally perpendicular to said top and bottom surfaces, and a hollow interior that includes a third generally flat surface that extends generally parallel to said first and second surfaces; said third surface being located closely adjacent to said second surface; second-shot molding said three dimensional member utilizing a second plastic material, to thereby form a plurality of patterns of said second plastic material on said three-dimensional member; said second plastic material having a plating-affinity; metal-plating said three dimensional member to form a metal radiating element on said first surface, to form a metal ground plane on said second surface, and to form a microstrip impedance matching network on said third surface; connecting a first portion of said impedance matching network to said radiating element; and providing an antenna output connection on a second portion of said impedance matching network.
- 30. The method of claim 29 including the steps of:
providing a plurality of second-shot plastic patterns that, when metal plated, form a plurality of microstrip stubs within said impedance matching network.
- 31. The method of claim 30 wherein at least one of said microstrip stubs is electrically shorted to said ground plane element, and wherein at least one of said microstrip stubs is electrically isolated from said ground plane element.
- 32. The method of claim 30 including at least one frequency responsive LC tank circuit connected in series with at least one of said microstrip stubs.
- 33. The method of claim 32 wherein at least one of said microstrip stubs is electrically shorted to said ground plane element, and wherein at least one of said microstrip stubs is electrically isolated from said ground plane element.
- 34. The method of claim 30 including the step of:
providing a microstrip impedance transformer intermediate said impedance matching network and said connection of said first portion of said impedance matching network to said radiating element.
- 35. The method of claim 34 wherein at least one of said microstrip stubs is electrically shorted to said ground plane element, and wherein at least one of said microstrip stubs is electrically isolated from said ground plane element.
- 36. An antenna for use with a radio-device, comprising:
a rigid dielectric member in the shape of a box having a generally planar exterior top-surface, having a generally planar exterior bottom-surface that is generally parallel to said top-surface, having sidewalls that extend between said top and bottom surfaces, and having an open sidewall that exposes an internal cavity and an inner-surface that lies adjacent and generally parallel to said bottom surface; a metal radiating element on said top-surface; a metal ground plane on said bottom-surface; a metal microstrip impedance matching network on said internal-surface; first electrical connection means on a first portion of said impedance matching network for connection to said radio-device; and second electrical connection means connecting a second portion of said impedance matching network to a first portion of said radiating element.
- 37. The antenna of claim 36 wherein said dielectric member is formed by a two-shot molding process that produces said dielectric member including a first-shot plastic material having no affinity for metallizing, and a second-second shot plastic material having an affinity for metallization;
said a metal radiating element, said metal ground plane and said metal impedance matching network being formed by metallizing said second-shot plastic.
- 38. The antenna of claim 36 including:
at least one open microstrip stub in said impedance matching network; and at least one shorted microstrip stub in said impedance matching network pattern having a portion thereof shorted to said ground plane.
- 39. The antenna of claim 38 wherein said dielectric member is formed of a first-shot plastic material having no affinity for metallizing and of a second-second shot plastic material having an affinity for metallization, and wherein said a metal radiating element, said metal ground plane, and said metal impedance matching network are formed by metallizing said second-shot plastic.
- 40. The antenna of claim 36 including:
at least one metal reactive loading plate on one of said sidewalls connected to said radiating element and isolated from said ground plane.
- 41. The antenna of claim 40 including:
at least one open microstrip stub in said impedance matching network; and at least one shorted microstrip stub in said impedance matching network pattern having a portion thereof shorted to said ground plane.
- 42. The antenna of claim 36 including:
a metal shorting strip on one of said sidewalls connecting a second portion of said radiating element.
- 43. The antenna of claim 42 including:
at least one metal reactive loading plate on one of said sidewalls connected to said radiating element and isolated from said ground plane.
- 44. The antenna of claim 43 including:
at least one open microstrip stub in said impedance matching network; and at least one shorted microstrip stub in said impedance matching network pattern having a portion thereof shorted to said ground plane.
Parent Case Info
[0001] This non-provisional patent application claims the priority of U.S. Provisional Patent application serial No. 60/364,516, filed on Mar. 15, 2001, entitled PLANAR INVERTED F ANTENNA INCLUDING A MATCHING NETWORK MADE UP OF TRANSMISSION LINE STUBS AND CAPACITOR/INDUCTOR TANK CIRCUITS, which provisional patent application is incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60364516 |
Mar 2002 |
US |