An antenna may serve as an interface between radio waves propagating through space and electric currents in metal conductors. An antenna may be used with a transmitter and/or a receiver to send and/or receive signals.
While the techniques presented herein may be embodied in alternative forms, the particular embodiments illustrated in the drawings are only a few examples that are supplemental of the description provided herein. These embodiments are not to be interpreted in a limiting manner, such as limiting the claims appended hereto.
Subject matter will now be described more fully hereinafter with reference to the accompanying drawings, which form a part hereof, and which show, by way of illustration, specific example embodiments. This description is not intended as an extensive or detailed discussion of known concepts. Details that are well known may have been omitted, or may be handled in summary fashion.
The following subject matter may be embodied in a variety of different forms, such as structures, apparatuses, methods, devices, components, and/or systems. Accordingly, this subject matter is not intended to be construed as limited to any example embodiments set forth herein. Rather, example embodiments are provided merely to be illustrative.
The following provides a discussion of some types of scenarios in which the disclosed subject matter may be utilized and/or implemented.
An antenna may be used for transmission and/or reception of radio signals over radio waves. In an example, the antenna may comprise a broadband measurement antenna. For example, the antenna may be used for mobile measurement and/or direction finding applications. Alternatively and/or additionally, the antenna may be configured for electromagnetic interference (EMI) measurement and/or electromagnetic compatibility (EMC) measurement. The antenna may be coupled to a communication device, such as a receiver and/or a transmitter. For example, the antenna may be coupled to the communication device via a cable, such as a coaxial cable (e.g., a radio frequency (RF) coaxial cable). For example, a first cable connector of the cable (e.g., at a first end of the cable) may be coupled to a connector (e.g., an RF connector) of the antenna and a second cable connector of the cable (e.g., at a second end of the cable) may be coupled to the communication device. The communication device may comprise a measurement device configured to measure and/or detect electromagnetic interference (EMI), electromagnetic compatibility (EMC), etc. using the antenna. In an example, the communication device may comprise a spectrum analyzer (e.g., a spectrum analyzer for EMC measurement). The communication device 1502 and/or the antenna 802 may be used to measure RF performance. For example, the communication device and/or the antenna may be used to detect and/or identify interference sources that introduce interference that can degrade performance and/or a capacity associated with wireless communication between wireless communication sites and user equipments (UEs). For example, the interference may worsen a quality of telecommunication services provided by the wireless communication sites to the UEs, such as at least one of cellular service (e.g., 5G service, 4G service and/or other type of cellular service), internet service (e.g., cellular internet service, satellite internet service, 5G internet service, and/or other type of internet service), messaging service, etc. In response to identifying an interference source, corrective action may be taken to mitigate the interference source to improve network performance of one or more wireless communication sites.
However, one or more components associated with the antenna, such as the connector of the antenna, the cable coupled to the connector, etc., may be exposed and/or insufficiently protected from damage. Accordingly, the one or more components may become damaged due to collisions of the antenna with other objects (such as when the antenna is dropped onto the ground) and/or due to wear and tear on the cable and/or the connector during regular usage of the antenna, thus requiring that the one or more components (and/or the antenna) be replaced, repaired, etc.
Thus, in accordance with the present disclosure, a protective structure is provided that is configured to be attached to the antenna. The protective structure comprises a body with apertures that receive one or more prongs of the antenna, the connector of the antenna and/or the cable. The protective structure may comprise a tongue (attached to the body, for example) with an aperture through which a mounting apparatus is attached to the antenna, wherein attaching the mounting apparatus to the antenna through the aperture attaches the antenna to the protective structure. When the protective structure is attached to the antenna, the protective structure may protect the one or more components (e.g., at least one of the connector, the cable, etc.) from damage and/or may increase a longevity of the antenna. The protective structure being attached to the antenna may not have a negative effect on performance of the antenna.
The protective structure 100 may be configured to protect an antenna 802 (shown in
Referring to
The tongue 110 may be attached to the body 104 (e.g., the tongue 110 may be attached to the fourth surface 118 of the body 104). It will be appreciated that, as used herein, by being attached, the body 104 and the tongue 110 are not limited to comprising two separate structures that are attached. Rather, in an example, the body 104 and the tongue 110 may be integrally formed, one piece formed, a single composite piece, etc. In some examples, the body 104 and the tongue 110 may comprise two separate structures that are attached, such as with mechanical fasteners, welding, adhesives, etc. In some examples, the body 104 and the tongue 110 (e.g., the protective structure 100 as a whole) may be formed via at least one of 3D printing (e.g., using 3D printable material, such as 3D printable plastic), additive manufacturing, etc.
In some examples, the body 104 defines one or more prong-receiving apertures 120 (shown in
In some examples, through each aperture of the one or more prong-receiving apertures 120, the body 104 is configured to receive a prong of one or more prongs 806 (shown in
In some examples, the first prong-receiving aperture 120a is defined by a first plurality of inner sidewalls 122 (shown in
In some examples, the second prong-receiving aperture 120b is defined by a second plurality of inner sidewalls 124 (shown in
In some examples, the body 104 defines an RF connection aperture 126 (shown in
In some examples, the RF connection aperture 126 is between the first prong-receiving aperture 120a and the second prong-receiving aperture 120b. In some examples, a direction of extension of a prong-receiving aperture of the one or more prong-receiving apertures 120 (e.g., a direction of extension of the first prong-receiving aperture 120a and/or the second prong-receiving aperture 120b) is parallel to a direction of extension of the RF connection aperture 126. Alternatively and/or additionally, the third surface 116 and/or the fourth surface 118 may be parallel to the direction of extension of the RF connection aperture 126 and/or may be parallel to a direction of extension of a prong-receiving aperture of the one or more prong-receiving apertures 120 (e.g., a direction of extension of the first prong-receiving aperture 120a and/or the second prong-receiving aperture 120b).
In some examples, the tongue 110 defines an antenna attachment aperture 128 (shown in
In a first example, the first attachment unit 810 comprises a female thread (e.g., an internal thread) and the second attachment unit comprises a male thread (e.g., an external thread), such as where the second attachment unit comprises a male fastener (e.g., at least one of a screw, a bolt, etc.) and/or where the second attachment unit is fastened to the first attachment unit 810 via the antenna attachment aperture 128 (via engagement of the male thread of the second attachment unit with the female thread of the first attachment unit 810). In the first example, the tongue 110 may be configured to receive the second attachment unit through the antenna attachment aperture 128 to attach the protective structure 100 (and/or the mounting apparatus 1402) to the antenna 802 (via engagement of the male thread of the second attachment unit with the female thread of the first attachment unit 810).
In a second example, the first attachment unit 810 comprises a male thread (e.g., an external thread) and the second attachment unit comprises a female thread (e.g., an internal thread), such as where the first attachment unit 810 comprises a male fastener (e.g., at least one of a screw, a bolt, etc.) and/or where the first attachment unit 810 is fastened to the second attachment unit via the antenna attachment aperture 128 (via engagement of the male thread of the first attachment unit 810 with the female thread of the second attachment unit). In the second example, the tongue 110 may be configured to receive the first attachment unit 810 through the antenna attachment aperture 128 to attach the protective structure 100 (and/or the mounting apparatus 1402) to the antenna 802 (via engagement of the male thread of the first attachment unit 810 with the female thread of the second attachment unit).
In some examples, such as shown in
In some examples, the body 104 defines one or more fastener-receiving apertures 108 (shown in
Referring to
Referring to
When the protective structure 100 is attached to the antenna 802, the protective structure 100 protects the antenna 802 (e.g., the protective structure 100 protects the connector 804 of the antenna 802 and/or one or more other components of the antenna 802) and/or the cable 832 (e.g., the protective structure 100 protects the first cable connector 834 of the cable 832) from damage. For example, the protective structure 100 may act as a shock absorber and/or a damping device, wherein shock impulses, impacts, etc. are absorbed and/or damped by the protective structure 100 to inhibit and/or prevent damage to the antenna 802 and/or the cable 832, to improve a mechanical stability of the antenna 802 and/or to reduce stress on the antenna 802 and/or the cable 832 (e.g., reduce stress on the connector 804 of the antenna 802 and/or on the first cable connector 834 of the cable 832), thereby improving performance of the antenna 802 and/or increasing a longevity of the antenna 802. In an example scenario in which a collision occurs (e.g., the antenna 802 is dropped onto the ground, an object collides with the antenna 802 and/or the protective structure 100, etc.), the protective structure 100 may prevent and/or mitigate damage to the antenna 802 and/or the cable 832 by absorbing and/or damping an impact of the collision.
The communication device 1502 may comprise a measurement device configured to measure and/or detect EMI, EMC, etc. using a signal from the antenna 802. In an example, the communication device may comprise a spectrum analyzer (e.g., a spectrum analyzer for EMC measurement). The communication device 1502 and/or the antenna 802 may be used to measure RF performance. The communication device 1502 and/or the antenna 802 may be used to detect and/or identify interference sources that introduce interference that can degrade performance and/or a capacity associated with wireless communication between wireless communication sites and UEs. For example, the interference may worsen a quality of telecommunication services provided by the wireless communication sites to the UEs, such as at least one of cellular service (e.g., 5G service, 4G service and/or other type of cellular service), internet service (e.g., cellular internet service, satellite internet service, 5G internet service, and/or other type of internet service), messaging service, etc. In response to identifying an interference source, corrective action may be taken to mitigate the interference source to improve network performance of one or more wireless communication sites.
In some examples, the communication device 1502 and/or the antenna 802 may be used to detect and/or identify interference sources by traveling with the communication device 1502 and/or the antenna 802 and/or monitoring an outputs of the communication device 1502 across different locations. In an example, the antenna 802 and/or the communication device 1502 may be in a motor vehicle (e.g., a car) that is used to transport the antenna 802 and/or the communication device 1502 across the different locations, wherein the antenna 802 may be mounted (e.g., placed) on an object in the motor vehicle (e.g., a dashboard of the motor vehicle) using the mounting apparatus 1402 (e.g., the tripod). Alternatively and/or additionally, the antenna 802 may be carried by hand (e.g., the tripod may be configured to convert into a handle that can be conveniently carried by hand by a person tasked with transporting the antenna 802). An interference source may be detected and/or identified based upon an output of the communication device 1502 (e.g., the output may be indicative of one or more radio metrics, such as at least one of one or more EMI metrics, one or more EMC metrics, etc.). In response to detecting and/or identifying the interference source, one or more corrective actions may be performed. For example, the one or more corrective actions may be performed to mitigate the interference source. For example, the one or more corrective actions may comprise checking, deactivating and/or replacing equipment (e.g., equipment determined to be the interference source) to mitigate and/or prevent interference of the interference source. Alternatively and/or additionally, the one or more corrective actions may comprise modifying one or more settings and/or parameters of equipment (e.g., equipment determined to be the interference source) to mitigate and/or prevent interference of the interference source.
In some examples, the antenna 802 may comprise a log-periodic antenna, such as a log-periodic dipole array (LPDA). In some examples, the antenna 802 may be a broadband measurement antenna, wherein the broadband. In some examples, the antenna 802 may have a frequency range from about 700 megahertz (MHz) to about 2.5 gigahertz (GHz) (or other frequency range). For example, the antenna may be used for mobile measurement and/or direction finding applications. Alternatively and/or additionally, the antenna may be configured for EMI measurement and/or EMC measurement. In some examples, the antenna 802 comprises a directional antenna. In some examples, the antenna 802 may be used as a directional-antenna for at least one of WLan, WiFi and/or one or more other directional communication applications. In some examples, the antenna 802 may have alignable (e.g., freely alignable) polarization).
According to some embodiments, a protective structure, to protect an antenna from damage, is provided. The protective structure includes a body. The body defines one or more prong-receiving apertures in a first surface of the body, wherein each prong of one or more prongs of the antenna extends at least partially through an aperture of the one or more prong-receiving apertures. The body defines a radio frequency (RF) connection aperture extending from the first surface of the body to a second surface of the body. The antenna includes an RF connector. A cable extends at least partially through the RF connection aperture. A cable connector of the cable is coupled to the RF connector.
According to some embodiments, a first prong-receiving aperture of the one or more prong-receiving apertures is defined by a plurality of inner sidewalls of the body; and one or more inner sidewalls, of the plurality of inner sidewalls of the body, are in contact with a prong, of the one or more prongs, extending through the first prong-receiving aperture.
According to some embodiments, the one or more inner sidewalls inhibit displacement of the protective structure relative to the antenna.
According to some embodiments, the one or more prong-receiving apertures include a first prong-receiving aperture and a second prong-receiving aperture; and the RF connection aperture is between the first prong-receiving aperture and the second prong-receiving aperture.
According to some embodiments, a direction of extension of the one or more prong-receiving apertures is parallel to a direction of extension of the RF connection aperture.
According to some embodiments, the protective structure includes a tongue over a surface of the antenna, wherein a mounting apparatus is attached to the antenna via an aperture in the tongue.
According to some embodiments, the mounting apparatus includes a tripod.
According to some embodiments, the antenna includes a broadband measurement antenna.
According to some embodiments, a first shape of a first prong-receiving aperture of the one or more prong-receiving apertures matches a second shape of a prong, of the one or more prongs, extending through the first prong-receiving aperture.
According to some embodiments, the first shape and the second shape are rectangular.
According to some embodiments, the body defines one or more fastener-receiving apertures in a third surface of the body, wherein the body is configured to receive a fastener through the one or more fastener-receiving apertures to provide strain relief to the cable and/or the RF connector.
According to some embodiments, the third surface is parallel to a direction of extension of the RF connection aperture.
According to some embodiments, the fastener includes a cable tie.
According to some embodiments, a protective structure, to protect an antenna from damage, is provided. The protective structure includes a body. The body defines one or more prong-receiving apertures in a first surface of the body, wherein through each aperture of the one or more prong-receiving apertures, the body is configured to receive a prong of one or more prongs of the antenna. The body defines a radio frequency (RF) connection aperture extending from the first surface of the body to a second surface of the body, wherein the body is configured to receive a cable through the RF connection aperture to couple a cable connector of the cable to an RF connector of the antenna.
According to some embodiments, the one or more prong-receiving apertures include a first prong-receiving aperture and a second prong-receiving aperture; and the RF connection aperture is between the first prong-receiving aperture and the second prong-receiving aperture.
According to some embodiments, a direction of extension of the one or more prong-receiving apertures is parallel to a direction of extension of the RF connection aperture.
According to some embodiments, the protective structure includes a tongue attached to the body, wherein the tongue defines an antenna attachment aperture; and the tongue is configured to receive a fastener through the antenna attachment aperture to attach a mounting apparatus and the protective structure to the antenna.
According to some embodiments, the mounting apparatus includes a tripod.
According to some embodiments, the body defines one or more fastener-receiving apertures in a third surface of the body; the body is configured to receive a fastener through the one or more fastener-receiving apertures to provide strain relief to the cable and/or the RF connector; the third surface of the body is opposite a fourth surface of the body to which the tongue is attached; and a direction of extension of the RF connection aperture is parallel to the third surface and/or the fourth surface.
According to some embodiments, a protective structure, to protect an antenna from damage, is provided. The protective structure includes a body. The body defines one or more prong-receiving apertures in a first surface of the body, wherein each prong of one or more prongs of the antenna extends at least partially through an aperture of the one or more prong-receiving apertures. The body defines a radio frequency (RF) connection aperture extending from the first surface of the body to a second surface of the body. The antenna includes an RF connector. At least a portion of the RF connector is within the RF connection aperture and/or a cable extends at least partially through the RF connection aperture. A cable connector of the cable is coupled to the RF connector.
Unless specified otherwise, “first,” “second,” and/or the like are not intended to imply a temporal aspect, a spatial aspect, an ordering, etc. Rather, such terms are merely used as identifiers, names, etc. for features, elements, items, etc. For example, a first object and a second object generally correspond to object A and object B or two different or two identical objects or the same object.
Moreover, “example” is used herein to mean serving as an example, instance, illustration, etc., and not necessarily as advantageous. As used herein, “or” is intended to mean an inclusive “or” rather than an exclusive “or”. In addition, “a” and “an” as used in this application are generally be construed to mean “one or more” unless specified otherwise or clear from context to be directed to a singular form. Also, at least one of A and B and/or the like generally means A or B or both A and B. Furthermore, to the extent that “includes”, “having”, “has”, “with”, and/or variants thereof are used in either the detailed description or the claims, such terms are intended to be inclusive in a manner similar to the term “comprising”.
Although the subject matter has been described in language specific to structural features and/or methodological acts, it is to be understood that the subject matter defined in the appended claims is not necessarily limited to the specific features or acts described above. Rather, the specific features and acts described above are disclosed as example forms of implementing at least some of the claims.
Also, although the disclosure has been shown and described with respect to one or more implementations, alterations and modifications may be made thereto and additional embodiments may be implemented based upon a reading and understanding of this specification and the annexed drawings. The disclosure includes all such modifications, alterations and additional embodiments and is limited only by the scope of the following claims. The specification and drawings are accordingly to be regarded in an illustrative rather than restrictive sense. In particular regard to the various functions performed by the above described components (e.g., elements, resources, etc.), the terms used to describe such components are intended to correspond, unless otherwise indicated, to any component which performs the specified function of the described component (e.g., that is functionally equivalent), even though not structurally equivalent to the disclosed structure. In addition, while a particular feature of the disclosure may have been disclosed with respect to only one of several implementations, such feature may be combined with one or more other features of the other implementations as may be desired and advantageous for any given or particular application.
This application claims priority to and is a continuation of U.S. application Ser. No. 17/744,804, filed on May 16, 2022, entitled “PROTECTIVE STRUCTURE FOR PROTECTING ANTENNA FROM DAMAGE”, which is incorporated by reference herein in its entirety.
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6927740 | Sergi | Aug 2005 | B2 |
20020149522 | Hwang | Oct 2002 | A1 |
20050184923 | Saito et al. | Aug 2005 | A1 |
20110303455 | Swais et al. | Dec 2011 | A1 |
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Number | Date | Country | |
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20240072430 A1 | Feb 2024 | US |
Number | Date | Country | |
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Parent | 17744804 | May 2022 | US |
Child | 18388201 | US |