The present invention relates to wireless communications, and more particularly, to cluster connectors for coupling multiple RF (Radio Frequency) cables to multiport antennas.
Modern cellular communications has experienced an explosion in demand for very high data rates per each mobile device (hereinafter user equipment or UE), as well as a massive increase in the number and types of devices. To meet the conflicting challenges of providing high data rates to an increasing number of devices, MIMO (Multiple Input Multiple Output) technologies have been developed to provide multiple simultaneous communication links between a given base station and a UE (e.g., Point-to-Point MIMO) and/or to provide spectrum reuse by enabling an antenna to establish individual narrow beams to individual UEs such that each narrow beam may use the same spectrum resources to multiple UEs simultaneously (e.g., Multi-User MIMO and Massive MIMO).
Each of these approaches requires an individual antenna to have numerous radiators per supported frequency band, and numerous RF ports to provide independent RF signals to different combinations of radiators. Massive MIMO, in particular, requires a large number of RF ports. The need for an increasing number of RF ports is further complicated by the demand to reduce the size of the antenna for dense urban deployments and improved wind loading.
More RF ports may be accommodated through the use of cluster connectors, in which four or more (for example) RF connections may be integrated within a single connector body. However, a complication arises in that each individual RF connection within a cluster connector may require considerable force, both for its connection as well as for its disconnection. The required force for connection/disconnection scales with the number of RF cables in a given cluster connector. The forces required for a single RF connection/disconnection may be as much as 15-20 lbs. Accordingly, the total force required for connection/disconnection for a cluster connector or many RF connections may be considerable. Further, each RF connection must support 30+ GHz frequencies and be free of problems such as passive intermodulation distortion (PIM). This requires a precise RF engagement mechanism that may be susceptible to damage if excessive forces, such as lateral or torsional forces, are applied during insertion and removal of the cluster connector. Additionally, in the case of a large number of RF ports (e.g., for a Massive MIMO antenna), it may be necessary to have multiple cluster connector ports disposed on the antenna in close proximity, thereby limiting access to each individual cluster connector for insertion and removal. This can be further complicated by the need to connect and disconnect these cluster connectors in the field, which may involve being at the top of a cell tower.
Accordingly, there is a need for an RF cluster connector mechanism that provides for easy, consistent, and reliable connection and disconnection of its constituent RF conductors, whereby the cluster connector may be in close proximity to other cluster connectors on the antenna, and whereby the antenna may be mounted at the top of a cell tower.
Accordingly, the present invention is directed to a Mechanism for Connecting and Disconnecting Cluster RF Connector that obviates one or more of the problems due to limitations and disadvantages of the related art.
An aspect of the present disclosure involves an RF cluster connector. The connector comprises a connector body having a plurality of apertures configured to hold a corresponding one of a plurality of RF connector bodies, each RF connector body having a RF connector conductor combination; a plurality of lever arms rotatably coupled to the connector body at a corresponding pivot pin disposed on the connector body; and a plurality of draw arms, each rotatably coupled to a corresponding lever arm by an arm link pin at a proximal end, each of the plurality arms having a bearing pin disposed on a distal end, wherein each of the plurality of bearing pins are configured to engage with a corresponding dual hook structure on a cluster port, each dual hook structure having a upper first hook and a lower second hook, wherein each bearing pin is configured to press against the upper first hook when engaging the plurality of RF connector conductor combinations to their corresponding RF port conductor combinations, and wherein each bearing pin is configured to press against the lower second hook when disengaging the plurality of RF connector conductor combinations from their corresponding RF port conductor combinations.
Another aspect of the present disclosure involves an RF cluster port having a port body. The port body comprises a plurality of apertures configured to hold a corresponding one of a plurality of RF port conductor combinations; and a plurality of dual-hook structures, each dual hook structure having a upper first hook and a lower second hook, wherein the upper first hook is configured to have a first pressure applied to it by a corresponding bearing pin of a cluster connector when engaging the plurality of RF port conductor combinations to a corresponding plurality of RF connector conductor combinations, and wherein the lower second hook is configured to have a second pressure applied to it by the corresponding bearing pin of the cluster connector when disengaging the plurality of RF port conductor combinations from the corresponding plurality of RF connector conductor combinations.
The accompanying figures, which are incorporated herein and form part of the specification, illustrate a mechanism for connecting and disconnecting a cluster RF connector. Together with the description, the figures further serve to explain the principles of a mechanism for connecting and disconnecting a cluster RF connector described herein and thereby enable a person skilled in the pertinent art to make and use the mechanism for connecting and disconnecting a cluster RF connector.
Reference will now be made in detail to embodiments of the mechanism for connecting and disconnecting a cluster RF connector with reference to the accompanying figures. It will be apparent to those skilled in the art that various modifications and variations can be made in the present invention without departing from the spirit or scope of the invention. Thus, it is intended that the present invention cover the modifications and variations of this invention provided they come within the scope of the appended claims and their equivalents
Although
The body of cluster connector 105 may mechanically engage with an RF connector body 240, which may be held in place within the body of cluster connector 105 by a connector gasket 235. RF connector body 240 may include an outer conductor 230, which surrounds center conductor 120. The center conductor 120 is configured to mechanically and electrically couple with the center conductor receptacle 125 of cluster port 110, and the outer conductor 230 is configured to mechanically and electrically couple with the outer conductor interface 325 of cluster port 110. As used herein, the center conductor 120 and outer conductor 230 may be referred to as an RF connector conductor combination, and the center conductor receptacle 125 and outer conductor interface 325 may be referred to as an RF port conductor combination. Further as stated above, cluster connector 105 may have a plurality of RF connector bodies 240, each coupled to a corresponding RF cable 115.
Lever arms 205, draw arms 210, and dual hook structures 305 may be formed of metal or polymer.
Although not illustrated, in the final motion, after center conductor 120 has decoupled from center conductor receptacle 125 and outer conductor 230 has decoupled from outer conductor interface 325, the technician may rotate lever arms 205 upward to return them to the positions illustrated in
Although the term “position” is used with reference to the drawings, it will be understood that these images are snapshots of a fluid motion, and that the lever arms 105 (for example) need not be held or maintained in the positions illustrated in
In an exemplary embodiment, cluster connector 105 and cluster port 110 may support four 2.2-5 connectors. Each of these connectors may require 15-20 lbs of force to engage and disengage. Accordingly, the total force required to engage and disengage cluster connector 105 and cluster port 110 may be 60-80 lbs.
While various embodiments of the present invention have been described above, it should be understood that they have been presented by way of example only, and not limitation. It will be apparent to persons skilled in the relevant art that various changes in form and detail can be made therein without departing from the spirit and scope of the present invention. Thus, the breadth and scope of the present invention should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims and their equivalents.
This application is a non-provisional application of and claims priority to U.S. Provisional Patent Application No. 63/184,306, filed May 5, 2021, which application is hereby incorporated by this reference in its entirety for all purposes as if fully set forth herein.
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International Search Report and Written Opinion issued for Application No. PCT/US2022/027817, dated Aug. 10, 2022. 7 pages. |
Number | Date | Country | |
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20220360018 A1 | Nov 2022 | US |
Number | Date | Country | |
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63184306 | May 2021 | US |