IP Library Granted Patent US 10,050,752
Granted Patent B1
US 10,050,752 · App. 14/616,335 · Granted Aug 14, 2018

Radial antenna for small cell with a null feature

Inventors: Stephen R. Bales (Lee's Summit, MO); Martin D. Zeller (Trimble, MO); Maneesh Gauba (Overland Park, KS); Eugene S. Mitchell, Jr. (Blue Springs, MO)
Assignee: Sprint Communications Company L.P.
H04L5/0032H01Q3/242H04W76/064H04W76/34
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Quick Facts
Patent No.
US 10,050,752
App. No.
14/616,335
Granted
Aug 14, 2018
Kind
B1
Abstract

A device, method, and computer-readable medium are provided for adjusting omnidirectional antenna array elements for mitigating cross interference between communication network cells. Radially disposed antenna array elements are configured to collectively function as a single omnidirectional antenna assembly at a cell. Signal data associated with signal strength and/or quality is monitored and received. Based on the signal data received, at least one antenna array element is selected for disconnection from the antenna assembly. The at least one antenna array element is disconnected from the assembly to nullify at least a portion of the omnidirectional signal distributed therefrom, thereby mitigating cross-interference with a neighboring cell.

Claims (30)

1. An omnidirectional antenna assembly comprising:

a mounting structure including a core and a supporting member;

an omnidirectional transmission component fixed relative to the mounting structure,

said omnidirectional transmission component comprising a plurality of antenna array elements selectively connected to a parallel circuit and configured for coupling to a radiofrequency (RF) source for collectively distributing an omnidirectional RF signal of a particular RF signal frequency band, wherein the plurality of antenna array elements includes a particular number of antenna array elements that is defined based on the particular RF signal frequency band, and wherein each antenna array element in the plurality of antenna array elements is spaced from a corresponding adjacent antenna array element of the plurality of antenna elements by a distance that is defined based on the particular RF signal frequency band,

said plurality of antenna array elements being radially spaced around the core and secured to the supporting member,

each of the plurality of antenna array elements being configured to disconnect from the parallel circuit to nullify at least a portion of the omnidirectional RF signal.

2. The omnidirectional antenna assembly of claim 1 , wherein the mounting structure is comprised of a waveguide material.

3. The omnidirectional antenna assembly of claim 2 , wherein the core presents a plurality of radially extending protrusions, each protrusion being at least partially positioned between each antenna array element and configured to mitigate cross interference there between.

4. The omnidirectional antenna assembly of claim 1 , wherein the supporting member includes a top plate and a bottom plate for directing the omnidirectional RF signal radially outward.

5. The omnidirectional antenna assembly of claim 1 , wherein the particular number of antenna array elements is further based on a circumference defined by the plurality of antenna array elements.

6. The omnidirectional antenna assembly of claim 1 , wherein the omnidirectional antenna assembly is for a picocell.

7. The omnidirectional antenna assembly of claim 1 , wherein the RF band is a UMTS frequency band.

8. The omnidirectional antenna assembly of claim 1 , the supporting member being adapted to removably attach to another supporting member of another omnidirectional antenna assembly.

9. The omnidirectional antenna assembly of claim 8 , wherein the another omnidirectional antenna assembly is configured to couple to another radiofrequency (RF) source for distributing another omnidirectional RF signal.

10. A method for mitigating cross interference between a first cell and a second cell comprising:

determining a signal-to-noise ratio between the second cell and an omnidirectional antenna assembly located at the first cell, the omnidirectional antenna assembly including a plurality of interconnected and radially disposed antenna array elements collectively distributing an omnidirectional RF signal, wherein the plurality of antenna array elements includes a particular number of antenna array elements that is defined based on the particular RF signal frequency band, and wherein each antenna array element in the plurality of antenna array elements is spaced from a corresponding adjacent antenna array element of the plurality of antenna elements by a distance that is defined based on the particular RF signal frequency band;

based on the determined signal-to-noise ratio, selecting at least one antenna array element from the plurality of antenna array elements for disconnection from the omnidirectional antenna assembly;

disconnecting the at least one antenna array element to facilitate an improved signal-to-noise ratio between the omnidirectional antenna assembly and the second cell.

11. The method of claim 10 , wherein the receiving, selecting, and disconnecting steps are iteratively repeated until an optimal signal-to-noise ratio is determined.

12. The method of claim 10 , wherein the first cell is a picocell and the second cell is a macrocell.

13. The method of claim 10 , wherein selecting the at least one antenna array element from the plurality of antenna array elements for disconnection is further based on the azimuthal direction of the second cell relative the first cell.

14. The method of claim 10 , wherein the plurality of radially disposed antenna array elements are selectively connected to a parallel circuit and coupled to a radiofrequency (RF) source distributing the omnidirectional RF signal on the particular RF signal frequency band.

15. One or more non-transitory computer-storage media having computer-executable instructions embodied thereon that, when used by one or more computing devices, cause the one or more computing devices to perform operations for dynamically optimizing the omnidirectional settings of antenna systems based on signal data, the operations comprising:

receiving, over a communications network, signal data from at least one cell employing an omnidirectional antenna assembly coupled to an RF source;

selecting, based at least in part on the received signal data, at least one antenna array element from a plurality of radially-positioned antenna array elements employed by the omnidirectional antenna assembly for disconnection from the RF source, wherein the plurality of radially-positioned antenna array elements is configured to include a particular number of antenna array elements that is defined based on the particular RF signal frequency band, and wherein each antenna array element in the plurality of radially-positioned antenna array elements is spaced from a corresponding adjacent antenna array element of the plurality of radially-positioned antenna elements by a distance that is defined based on the particular RF signal frequency band; and

sending, over the communications network, instructions to the omnidirectional antenna assembly, wherein the instructions cause the omnidirectional antenna assembly to disconnect the at least one antenna array element from the RF source and modify the signal data.

16. The one or more non-transitory computer-storage media of claim 15 , wherein the selecting step is based further on a history of antenna array elements previously disconnected from the RF source.

17. The one or more non-transitory computer-storage media of claim 15 , wherein the signal data comprises a signal-to-noise ratio.

18. The one or more non-transitory computer-storage media of claim 15 , wherein disconnecting the at least one antenna array element from the RF source nullifies at least a portion of an omnidirectional RF signal distributed from the at least one cell.

19. The one or more non-transitory computer-storage media of claim 18 , wherein nullifying at least a portion of the omnidirectional RF signal improves the signal data.

Assignments (6)
RELEASE OF SECURITY INTEREST Recorded Aug 23, 2022
From: DEUTSCHE BANK TRUST COMPANY AMERICAS
To: IBSV LLC; LAYER3 TV, LLC; PUSHSPRING, LLC; T-MOBILE CENTRAL LLC; T-MOBILE USA, INC.; ASSURANCE WIRELESS USA, L.P.; BOOST WORLDWIDE, LLC; CLEARWIRE COMMUNICATIONS LLC; CLEARWIRE IP HOLDINGS LLC; SPRINTCOM LLC; SPRINT COMMUNICATIONS COMPANY L.P.; SPRINT INTERNATIONAL INCORPORATED; SPRINT SPECTRUM LLC
Reel/Frame 062595/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 4, 2021
From: SPRINT COMMUNICATIONS COMPANY L.P.
To: T-MOBILE INNOVATIONS LLC
Reel/Frame 055604/0001 →
TERMINATION AND RELEASE OF FIRST PRIORITY AND JUNIOR PRIORITY SECURITY INTEREST IN PATENT RIGHTS Recorded Apr 2, 2020
From: DEUTSCHE BANK TRUST COMPANY AMERICAS
To: SPRINT COMMUNICATIONS COMPANY L.P.
Reel/Frame 052969/0475 →
SECURITY AGREEMENT Recorded Apr 2, 2020
From: T-MOBILE USA, INC.; ISBV LLC; T-MOBILE CENTRAL LLC; LAYER3 TV, INC.; PUSHSPRING, INC.; BOOST WORLDWIDE, LLC; CLEARWIRE COMMUNICATIONS LLC; CLEARWIRE IP HOLDINGS LLC; CLEARWIRE LEGACY LLC; SPRINT COMMUNICATIONS COMPANY L.P.; SPRINT INTERNATIONAL INCORPORATED; SPRINT SPECTRUM L.P.; ASSURANCE WIRELESS USA, L.P.
To: DEUTSCHE BANK TRUST COMPANY AMERICAS
Reel/Frame 053182/0001 →
GRANT OF FIRST PRIORITY AND JUNIOR PRIORITY SECURITY INTEREST IN PATENT RIGHTS Recorded Mar 6, 2017
From: SPRINT COMMUNICATIONS COMPANY L.P.
To: DEUTSCHE BANK TRUST COMPANY AMERICAS
Reel/Frame 041895/0210 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 9, 2015
From: BALES, STEPHEN R.; ZELLER, MARTIN D.; GAUBA, MANEESH; MITCHELL, EUGENE S., JR.
To: SPRINT COMMUNICATIONS COMPANY, L.P.
Reel/Frame 034915/0173 →
Cited By (2)
US 12,266,868 US 12,646,857