Claims
- 1. A multiband base station antenna for communicating with a plurality of terrestrial mobile devices, the antenna including one or more modules, each module including a low frequency ring element; and a high frequency element superposed with the low frequency ring element.
- 2. An antenna according to claim 1, wherein the low frequency ring element has a minimum outer diameter b, a maximum inner diameter a, and the ratio b/a is less than 1.5.
- 3. An antenna according to claim 1 wherein the low frequency element is a dual-polarized element and the high frequency element is a dual-polarized element.
- 4. An antenna according to claim 1 wherein the low frequency ring element is a microstrip ring element.
- 5. An antenna according to claim 1 wherein the high frequency element and the low frequency ring element are superposed substantially concentrically.
- 6. An antenna according to claim 1 wherein the high frequency element has an outer periphery, and the low frequency ring element has an inner periphery which completely encloses the outer periphery of the high frequency element, when viewed in plan perpendicular to the antenna.
- 7. A communication system including a network of antennas according to claim 1.
- 8. A method of communicating with a plurality of terrestrial mobile devices, the method including communicating with a first set of said devices in a low frequency band using a ring element; and communicating with a second set of said devices in a high frequency band using a high frequency element superposed with the ring element.
- 9. A method according to claim 8 wherein said communicating with said first and second devices is a two-way communication.
- 10. A method according to claim 8 wherein said ring element communicates via a first beam with a first half-power beamwidth, and said high frequency element communicates via a second beam with a second half-power beamwidth which is no more than 50% different to the first beamwidth.
- 11. A method according to claim 8 wherein said ring element communicates via a first beam with a first half-power beamwidth less than 120°, and said high frequency element communicates via a second beam with a second half-power beamwidth less than 120°.
- 12. A method according to claim 11 wherein the second half-power beamwidth is less than 90°.
- 13. A multiband antenna including one or more modules, each module including a low frequency ring element; and a dipole element superposed with the low frequency ring element.
- 14. An antenna according to claim 13 wherein the dipole element is a crossed dipole element.
- 15. An antenna according to claim 13, wherein the low frequency ring element has a minimum outer diameter b, a maximum inner diameter a, and the ratio b/a is less than 1.5.
- 16. An antenna according to claim 13 wherein the low frequency element is a dual-polarized element and the high frequency element is a dual-polarized element.
- 17. An antenna according to claim 13 wherein the low frequency ring element is a microstrip ring element.
- 18. An antenna according to claim 13 wherein the high frequency element and the low frequency ring element are superposed substantially concentrically.
- 19. An antenna according to claim 13 wherein the high frequency element has an outer periphery, and the low frequency ring element has an inner periphery which completely encloses the outer periphery of the high frequency element, when viewed in plan perpendicular to the antenna.
- 20. A communication system including a network of antennas according to claim 13.
- 21. A method of communicating with a plurality of devices, the method including communicating with a first set of said devices in a low frequency band using a ring element; and communicating with a second set of said devices in a high frequency band using a dipole element superposed with the ring element.
- 22. An antenna element including a ring, and one or more feed probes extending from the ring, wherein the ring and feed probe(s) are formed from a unitary piece.
- 23. An antenna element according to claim 22 wherein the ring lies in a plane, and the feed probe(s) extend(s) out of the plane of the ring.
- 24. An antenna according to claim 22 wherein each feed probe is formed by bending the feed probe out of the plane of the ring.
- 25. An antenna element according to claim 22 wherein the unitary piece is stamped from a piece of sheet metal.
- 26. An antenna element according to claim 22 wherein each feed probe meets the ring at a periphery of the ring.
- 27. An antenna element according to claim 26 wherein the periphery is an inner periphery of the ring.
- 28. An antenna element according to claim 22 wherein each feed probe meets the ring at a recess formed in the periphery of the ring.
- 29. An antenna element according to claim 22, wherein the ring has a minimum outer diameter b, a maximum inner diameter a, and the ratio b/a is less than 1.5.
- 30. An antenna element according to claim 22 wherein the ring is a dual-polarized element.
- 31. An antenna including one or more antenna elements according to claim 22.
- 32. A communication system including a network of antennas according to claim 31.
- 33. A method of manufacturing an antenna element according to claim 22, the method including forming the ring and the feed probe(s) from a unitary piece.
- 34. A method according to claim 33 wherein the ring lies in a plane, and each feed probe is formed by bending the feed probe out of the plane of the ring.
- 35. A method according to claim 33 wherein the ring and feed probe(s) are formed by stamping from a piece of sheet metal.
- 36. An antenna element including a ring; and a feed probe having a coupling section positioned proximate to the ring to enable the feed probe to electromagnetically couple with the ring, wherein the coupling section of the feed probe has an inner side which cannot be seen within an inner periphery of the ring when viewed in plan perpendicular to the ring.
- 37. An antenna element according to claim 36 wherein the feed probe includes a feed section; and a coupling section attached to the feed section, the coupling section having inner and outer opposite sides, a distal end remote from the feed section; and a coupling surface which is positioned proximate to the ring to enable the feed probe to electromagnetically couple with the ring, wherein the inner side appears convex when viewed perpendicular to the coupling surface, and wherein the outer side appears convex when viewed perpendicular to the coupling surface.
- 38. An antenna element according to claim 37 wherein the coupling section includes two or more arms extending from the feed section, each arm having first and second opposite sides, a distal end remote from the feed section; and a coupling surface which is positioned proximate to the ring to enable the feed probe to electromagnetically couple with the ring, wherein the inner side appears convex when viewed perpendicular to the coupling surface, and wherein the outer side appears convex when viewed perpendicular to the coupling surface.
- 39. An antenna element according to claim 36 wherein the inner and outer sides are curved.
- 40. An antenna element according to claim 37 wherein the feed section includes a feed leg which is disposed at an angle to the coupling surface.
- 41. An antenna element according to claim 37 wherein the feed section and the coupling section are formed from a unitary piece of material.
- 42. An antenna element according to claim 36, wherein the coupling section of the feed probe extends circumferentially with respect to the ring.
- 43. An antenna element according to claim 36 wherein the ring has a pair of major faces joined by an inner peripheral edge and an outer peripheral edge, and wherein the feed probe is couples electromagnetically with one of the major faces of the ring.
- 44. An antenna element according to claim 36 wherein the coupling section of the feed probe is proximate to a first side of the ring, and wherein the element further includes a second feed probe having a coupling section proximate to a second side of the ring to enable the second feed probe to electromagnetically couple with said second side of the ring.
- 45. An antenna element according to claim 44 wherein the first side of the ring is opposite to the second side of the ring.
- 46. An antenna element according to claim 44 wherein the first side of the ring is adjacent to the second side of the ring.
- 47. An antenna element according to claim 36 including an air gap between the feed probe and the ring.
- 48. An antenna element according to claim 36 wherein the coupling section extends circumferentially around the ring.
- 49. An antenna element according to claim 36 further including a second ring positioned adjacent to the first ring to enable the second ring to electromagnetically couple with said first ring.
- 50. An antenna element according to claim 36, wherein the ring has a minimum outer diameter b, a maximum inner diameter a, and the ratio b/a is less than 1.5.
- 51. An antenna including one or more antenna elements according to claim 36.
- 52. A communication system including a network of antennas according to claim 51.
- 53. A multiband antenna including an array of two or more modules, each module including a low frequency ring element and a high frequency element superposed with the low frequency ring element.
- 54. An antenna according to claim 53, wherein the low frequency ring element has a minimum outer diameter b, a maximum inner diameter a, and the ratio b/a is less than 1.5.
- 55. An antenna according to claim 53 wherein the low frequency ring element is a dual-polarized element and the high frequency element is a dual-polarized element.
- 56. An antenna according to claim 53 wherein the low frequency ring element is a microstrip ring element.
- 57. An antenna according to claim 53 wherein the high frequency element and the low frequency ring element are superposed substantially concentrically.
- 58. An antenna according to claim 53 wherein the high frequency element has an outer periphery, and the low frequency ring element has an inner periphery which completely encloses the outer periphery of the high frequency element, when viewed in plan perpendicular to the antenna.
- 59. An antenna according to claim 53 including one or more interstitial high frequency elements located between each pair of adjacent modules in the array.
- 60. An antenna according to claim 53 wherein the modules are arranged in a substantially straight line.
- 61. An antenna according to claim 53 wherein the array consists of only a single line of said modules.
- 62. An antenna according to claim 53 wherein the low frequency ring element has a substantially circular outer periphery.
- 63. An antenna according to claim 53 including:
an array of two or more primary modules spaced apart along an antenna axis, each primary module including a low frequency ring element and a high frequency element superposed with the low frequency ring element; and one or more secondary modules, each secondary module positioned between a respective adjacent pair of primary modules, and including an interstitial high frequency element.
- 64. An antenna according to claim 53 wherein the or each secondary module includes a parasitic ring superposed with the interstitial high frequency element.
- 65. A communication system including a network of antennas according to claim 53.
- 66. An antenna feed probe including a feed section; and a coupling section attached to the feed section, the coupling section having first and second opposite sides, a distal end remote from the feed section; and a coupling surface which is positioned, when in use, proximate to an antenna element to enable the feed probe to electromagnetically couple with an antenna element, wherein the first side of the coupling section appears convex when viewed perpendicular to the coupling surface, and wherein the second side of the coupling section appears convex when viewed perpendicular to the coupling surface.
- 67. An antenna feed probe according to claim 66 wherein the coupling section includes two or more arms extending from the feed section, each arm having first and second opposite sides, a distal end remote from the feed section; and a coupling surface which is positioned, when in use, proximate to an antenna element to enable the feed probe to electromagnetically couple with an antenna element, wherein the first side of each arm appears convex when viewed perpendicular to the coupling surface, and wherein the second side of each arm appears convex when viewed perpendicular to the coupling surface.
- 68. An antenna feed probe according to claim 67 wherein the coupling section includes four or more arms extending from the feed section, each arm having first and second opposite sides, a distal end remote from the feed section; and a coupling surface which is positioned, when in use, proximate to an antenna element to enable the feed probe to electromagnetically couple with an antenna element, wherein the first side of each arm appears convex when viewed perpendicular to the coupling surface, and wherein the second side of each arm appears convex when viewed perpendicular to the coupling surface.
- 69. An antenna feed probe according to claim 66 wherein the first and second sides are curved.
- 70. An antenna feed probe according to claim 69 wherein the first and second sides have a substantially common centre of curvature.
- 71. An antenna feed probe according to claim 66 wherein the feed section includes a feed leg which is disposed at an angle to the coupling surface.
- 72. An antenna feed probe according to claim 66 wherein the feed section and the coupling section are formed from a unitary piece of material.
- 73. A multiband antenna including one or modules, each module including a low frequency ring element; and a high frequency element superposed with the low frequency ring element, wherein the low frequency ring element has a non-circular inner periphery.
- 74. An antenna according to claim 73 wherein the inner periphery is formed with one or more notches which provide clearance for the high frequency element.
- 75. An antenna according to claim 73 wherein the inner periphery of the low frequency is substantially circular between the notches.
- 76. An antenna according to claim 73 wherein the or each notch has a base and a pair of non-parallel side walls.
- 77. An antenna according to claim 73 wherein the low frequency ring element has two or more notches distributed regularly around its inner periphery, each notch providing clearance for a respective part of the high frequency element.
- 78. An antenna according to claim 73, wherein the inner periphery of the ring has a minimum diameter which is less than a maximum diameter of the high frequency element.
- 79. A communication system including a network of antennas according to claim 73.
- 80. A microstrip antenna including a ground plane; a radiating element spaced from the ground plane by an air gap; a feed probe having a coupling section positioned proximate to the ring to enable the feed probe to electromagnetically couple with the ring; and a dielectric spacer positioned between the radiating element and the feed probe.
- 81. An antenna according to claim 80 further including a dielectric support connecting the radiating element to the ground plane.
- 82. An antenna according to claim 81 wherein the dielectric support is connected to the dielectric spacer.
- 83. An antenna according to claim 82 wherein the dielectric support and dielectric spacer are formed as a unitary piece.
- 84. An antenna according to claim 80 wherein the dielectric spacer passes through an aperture in the feed probe and an aperture in the radiating element.
- 85. An antenna according to claim 80 wherein the dielectric support passes through an aperture in the ring.
- 86. An antenna according to claim 80 including an air gap between the feed probe and the radiating element.
- 87. An antenna according to claim 80 wherein the radiating element is a ring.
- 88. A communication system including a network of antennas according to claim 80.
- 89. A dielectric spacer for use in an antenna according to claim 80, the spacer including a spacer portion configured to maintain a minimum spacing between a feed probe and a radiating element; and a support portion configured to connect the radiating element to a ground plane, wherein the support portion and dielectric portion are formed as a unitary piece.
- 90. A clip according to claim 89 wherein the spacer portion includes a pair of snap-fit connectors.
- 91. A clip according to claim 90 wherein each snap-fit connector includes a groove and a resilient ramp adjacent to the groove.
- 92. A clip according to claim 89 wherein the support portion includes one or more snap-fit connectors.
- 93. A clip according to claim 92 wherein each snap-fit connector includes a groove and a resilient ramp adjacent to the groove.
- 94. A dual polarized antenna element including a ring; and two or more feed probes, each feed probe having a coupling section positioned proximate to the ring to enable the feed probe to electromagnetically couple with the ring.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of priority from provisional patent application Ser. No. 60/482,689, filed Jun. 26, 2003, entitled Antenna Element, Multiband Antenna, And Method Of Communicating With A Plurality Of Devices. Provisional patent application Ser. No. 60/482,689, is incorporated herein by reference in its entirety
Provisional Applications (1)
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Number |
Date |
Country |
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60482689 |
Jun 2003 |
US |