Claims
- 1. A wireless network node for providing transit of data with other wireless network nodes in a wireless network, the wireless network node comprising:
at least one transit antenna to provide data transmission between at least one other wireless network node in the wireless network and the wireless network node; an auxiliary transit antenna having a greater gain than the at least one transit antenna to provide at least one of: a) data transmission between wireless network nodes separated by a distance greater than that permitting reliable data transmission to other wireless network nodes using the at least one transit antenna; and b) higher rate transmission between wireless network nodes than can be achieved using the at least one transit antenna.
- 2. The wireless network node of claim 1 further comprising at least one access antenna to permit data transmission both to and from wireless mobile terminals located proximate the wireless network node.
- 3. The wireless network node of claim 2, wherein the at least one transit antenna and the at least one access antenna are operable in separate radio bands.
- 4. The wireless network node of claim 3, wherein the auxiliary transit antenna is operable in the same radio band as the at least one transit antenna.
- 5. The wireless network node of claim 3, wherein the auxiliary transit antenna is operable in a different radio band than the at least one transit antenna.
- 6. The wireless network node of claim 1 further comprising a transit link radio coupled to the at least one transit antenna and the auxiliary transit antenna for providing data communication between the wireless network node and other wireless network nodes.
- 7. The wireless network node of claim 2 further comprising:
a transit link radio coupled to the at least one transit antenna and the auxiliary transit antenna for providing data communication between the wireless network node and other wireless network nodes; an access link radio coupled to the at least one access antenna for providing communication between the wireless network node and mobile devices proximate the wireless network node; and a controller unit coupled to both the transit link radio and the access link radio for coupling data transmissions from a mobile device proximate the wireless network node to other wireless network nodes.
- 8. The wireless network node of claim 1, wherein the auxiliary transit antenna is aimed so signals therefrom are transmitted to another specific wireless network node.
- 9. The wireless network node of claim 8, wherein the another specific wireless network node is located at a distance from the wireless network node greater than a distance permitting reliable transmission of data using the at least one transit antenna.
- 10. A wireless network node for providing transit of data with other wireless network nodes in a wireless network, the wireless network node comprising:
at least one transit antenna to provide data transmission between at least one other wireless network node in the wireless network and the wireless network node; an auxiliary antenna port to which an auxiliary antenna can be coupled; and an antenna detector adapted to detect whether or not an auxiliary antenna is coupled to the auxiliary antenna port; wherein upon detection that the auxiliary antenna is or is not coupled to the auxiliary antenna port, the wireless network node is adapted to include or not include the auxiliary transit antenna port as an option for communications.
- 11. The wireless network node of claim 10 wherein the antenna detector is adapted to automatically detect whether or not an auxiliary antenna is coupled to the auxiliary antenna port.
- 12. The wireless network node of claim 11, wherein the antenna detector measures a standing wave ratio (SWR) for use in a determination of whether or not an auxiliary antenna is or is not coupled to the auxiliary antenna port.
- 13. The wireless network node of claim 11, wherein the antenna detector measures a signal received through the auxiliary antenna port for use in a determination of whether or not an auxiliary antenna is or is not coupled to the auxiliary antenna port.
- 14. The wireless network node of claim 11, wherein the antenna detector comprises a metal contact that rests adjacent to the auxiliary antenna port when an auxiliary antenna is not inserted into the auxiliary antenna port, and when an auxiliary antenna is inserted into the auxiliary antenna port the metal contact is bridged to a ground contact of the auxiliary antenna port, the antenna detector further comprising an interface circuit to which the metal contact is coupled, the interface circuit outputting a signal that is indicative of the presence or absence of an auxiliary antenna in the auxiliary antenna port.
- 15. The wireless network node of claim 11, wherein the antenna detector comprises a coupler connected in series with the auxiliary antenna port, forward and reverse power detectors connected to the coupler, and a Standing Wave Ratio (SWR) detector and interface circuit connected to the forward and reverse power detectors,
wherein in operation power from the auxiliary antenna port is coupled through the coupler and measured by both the forward and reverse power detectors, and the SWR detector and interface circuit compare outputs of the forward and reverse power detectors in order to determine whether or not an auxiliary antenna is coupled to the auxiliary antenna port.
- 16. The wireless network node of claim 10 in combination with an auxiliary antenna coupled to the auxiliary antenna port.
- 17. The wireless network node of claim 16, further comprising at least one access antenna to permit data transmission both to and from wireless mobile terminals located proximate the wireless network node.
- 18. The wireless network node of claim 17, further comprising:
a transit link radio coupled to the at least one transit antenna and the auxiliary transit antenna for providing data communication between the wireless network node and other wireless network nodes; an access link radio coupled to the at least one access antenna for providing communication between the wireless network node and mobile devices proximate the wireless network node; and a controller unit coupled to both the transit link radio and the access link radio for coupling data transmissions from a mobile device proximate the wireless network node to other wireless network nodes.
- 19. The wireless network node of claim 16, wherein the auxiliary antenna is aimed so signals therefrom are transmitted to another specific wireless network node.
- 20. The wireless network node of claim 19, wherein the another specific wireless network node is located at a distance from the wireless network node greater than a distance permitting reliable transmission of data using the at least one transit antenna.
- 21. The wireless network node of claim 16, wherein the auxiliary antenna has a gain greater than that of the at least one transit antenna.
- 22. The wireless network node of claim 16 further comprising a directional-mount connected between the auxiliary antenna and auxiliary antenna port of the wireless network node.
- 23. The wireless network node of claim 22, wherein the directional-mount is adjustable in order to permit an optimal alignment of the auxiliary antenna.
- 24. The wireless network node of claim 16, wherein the auxiliary antenna provides the use of a substantially higher data rate than that provided by the at least one transit antenna.
- 25. The wireless network node of claim 16, wherein the auxiliary antenna provides substantially better interference suppression than that provides by the at least one transit antenna.
- 26. A method of operating a wireless network node having an auxiliary antenna port, the method comprising:
determining whether or not an auxiliary antenna is coupled to the auxiliary antenna port; and upon determining that an auxiliary antenna is coupled to the auxiliary antenna port, at least one of transmitting and receiving wireless signals through the auxiliary antenna coupled to the auxiliary antenna port; upon determining that an auxiliary antenna is not coupled to the auxiliary antenna port, not using the auxiliary antenna port.
- 27. The method according to claim 26, further comprising, upon determining that an auxiliary antenna is coupled to the auxiliary antenna port, automatically aligning a beam of the auxiliary antenna with another wireless network node.
- 28. The method according to claim 27, wherein the beam of the auxiliary antenna is aligned such that at least one of a strongest possible signal level is received and a lowest packet error rate is achieved on a resulting link.
- 29. A controller for a wireless network node having an auxiliary antenna port, the controller having a function of:
determining whether or not an auxiliary antenna is coupled to the auxiliary antenna port; upon determining that an auxiliary antenna is coupled to the auxiliary antenna port, one of transmitting and receiving wireless signals through the auxiliary antenna coupled to the auxiliary antenna port; and upon determining that an auxiliary antenna is not coupled to the auxiliary antenna port, not using the auxiliary antenna port as though it did not exist.
- 30. The controller of claim 29, further comprising a function of, upon determining that an auxiliary antenna is coupled to the auxiliary antenna port, coordinating an automatic alignment of a beam of the auxiliary antenna with another wireless network node.
- 31. The controller of claim 30, wherein the beam of the auxiliary antenna is aligned such that at least one of a strongest possible signal level is received and a lowest packet error rate is achieved on a resulting link.
- 32. A wireless LAN network comprising in combination:
a plurality of wireless network nodes, each wireless network node including at least one transit antenna, and at least one of the plurality of wireless network nodes additionally including an auxiliary antenna having greater gain than the at least one transit antenna also included on the wireless network node; wherein a plurality of transit links is established between the transit antennas of the wireless network nodes; at least one additional transit link is established between two wireless network nodes separated by a distance greater than reliably possible between two transit antennas, each additional transit link employing at least one auxiliary antenna.
- 33. The wireless LAN network of claim 32 further comprising at least one network access node for providing network access communication between the wireless LAN and another network consisting of at least one of an internet, an intranet, a Public Switched Telephone Network (PSTN) and another communication network.
- 34. The wireless LAN network of claim 32, wherein at least one of the wireless network nodes additionally including the auxiliary antenna has a wireless transport communication link to the network access node using its auxiliary antenna from a distance greater than is reliably possible with its at least one transit antenna.
- 35. The wireless LAN network of claim 32, wherein at least one of the wireless network nodes further comprise an access link radio and at least one access antenna coupled to the access link radio;
whereby in operation these wireless network nodes are capable of providing wireless access to communication services to subscribers with suitable mobile devices.
- 36. The wireless LAN network of claim 32, wherein, for each of the wireless network nodes additionally including the auxiliary antenna, a data rate provided through use of the auxiliary antenna is higher than a data rate provided through the use of the at least one transit antenna.
- 37. The wireless LAN network of claim 32, wherein, for each of the wireless network nodes additionally including the auxiliary antenna, a data reliability provided through use of the auxiliary antenna is higher than a data reliability provided through the use of the at least one transit antenna.
- 38. The wireless LAN network of claim 32, wherein, for each of the wireless network nodes additionally including the auxiliary antenna, a level of interference suppression provided through use of the auxiliary antenna is higher than a level of interference suppression provided through the use of the at least one transit antenna.
PRIORITY CLAIM
[0001] This application claims the benefit of U.S. Provisional Application No. 60/453,011, filed Mar. 7, 2003, which is hereby incorporated by reference in its entirety.
[0002] This patent application is related to the following Provisional patent applications filed in the U.S. Patent and Trademark Office, the disclosures of which are expressly incorporated herein by reference:
[0003] U.S. Patent Application Serial No. 60/446,617 filed on Feb. 11, 2003 and entitled “System for Coordination of Multi Beam Transit Radio Links for a Distributed Wireless Access System”
[0004] U.S. Patent Application Serial No. 60/446,618 filed on Feb. 11, 2003 and entitled “Rendezvous Coordination of Beamed Transit Radio Links for a Distributed Multi-Hop Wireless Access System”
[0005] U.S. Patent Application Serial No. 60/446,619 filed on Feb. 11, 2003 and entitled “Distributed Multi-Beam Wireless System Capable of Node Discovery, Rediscovery and Interference Mitigation”
[0006] U.S. Patent Application Serial No. 60/447,527 filed on Feb. 14, 2003 and entitled “Cylindrical Multibeam Planar Antenna Structure and Method of Fabrication”
[0007] U.S. Patent Application Serial No. 60/447,643 filed on Feb. 14, 2003 and entitled “An Omni-Directional Antenna”
[0008] U.S. Patent Application Serial No. 60/447,644 filed on Feb. 14, 2003 and entitled “Antenna Diversity”
[0009] U.S. Patent Application Serial No. 60/447,645 filed on Feb. 14, 2003 and entitled “Wireless Antennas, Networks, Methods, Software, and Services”
[0010] U.S. Patent Application Serial No. 60/447,646 filed on Feb. 14, 2003 and entitled “Wireless Communication”
[0011] U.S. Patent Application Serial No. 60/451,897 filed on Mar. 4, 2003 and entitled “Offsetting Patch Antennas on an Omni-Directional Multi-Facetted Array to allow Space for an Interconnection Board”
[0012] U.S. Patent Application Serial No. 60/453,840 filed on Mar. 11, 2003 and entitled “Operation and Control of a High Gain Phased Array Antenna in a Distributed Wireless Network”
[0013] U.S. Patent Application Serial No. 60/454,715 filed on Mar. 15, 2003 and entitled “A Method to Efficiently Search for Neighbours using a Directive Antenna System in a Distributed Wireless Network”
[0014] U.S. Patent Application Serial No. 60/461,344 filed on Apr. 9, 2003 and entitled “Method of Assessing Indoor-Outdoor Location of Wireless Access Node”
[0015] U.S. Patent Application Serial No. 60/461,579 filed on Apr. 9, 2003 and entitled “Minimisation of Radio Resource Usage in Multi-Hop Networks with Multiple Routings”
[0016] U.S. Patent Application Serial No. 60/464,844 filed on Apr. 23, 2003 and entitled “Improving IP QoS though Host-Based Constrained Routing in Mobile Environments”
[0017] U.S. Patent Application Serial No. 60/467,432 filed on May 2, 2003 and entitled “A Method for Path Discovery and Selection in Ad Hoc Wireless Networks”
[0018] U.S. Patent Application Serial No. 60/468,456 filed on May 7, 2003 and entitled “A Method for the Self-Selection of Radio Frequency Channels to Reduce Co-Channel and Adjacent Channel Interference in a Wireless Distributed Network”
[0019] U.S. Patent Application Serial No. 60/480,599 filed on Jun. 20, 2003 and entitled “Channel Selection”
Provisional Applications (1)
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Number |
Date |
Country |
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60453011 |
Mar 2003 |
US |