1. Field of the Invention
The invention generally relates to surge protection of coaxial cables and transmission lines. More particularly, the invention relates to a compact surge protector with a high current capacity, for use in-line with a coaxial cable or transmission line, configurable for operation in a range of different frequency bands.
2. Description of Related Art
Electrical cables, for example coaxial transmission lines of antenna towers, are equipped with surge suppression equipment to provide an electrical path to ground for diversion of electrical current surges resulting from, for example, static discharge and or lightning strikes.
Prior coaxial suppression equipment typically incorporated a frequency selective shorting element between the inner and outer conductors dimensioned to be approximately one quarter of the frequency band center frequency in length, known as a quarter wavelength stub. Therefore, frequencies within the operating band pass along the inner conductor reflecting in phase from the quarter wavelength stub back to the inner conductor rather than being diverted to the outer conductor and or a grounding connection. Frequencies outside of the operating band, such as low frequency surges from lightning strikes, do not reflect and are coupled to ground, preventing electrical damage to downstream components and or equipment.
Depending upon the desired frequency band, a shorting element dimensioned as a quarter wavelength stub may have a required dimension of several inches, requiring a substantial supporting enclosure. Where the supporting enclosure and any necessary interface to the surge suppressor body are not machinable along a single longitudinal axis of the surge suppressor body, additional manufacturing costs are incurred. Prior quarter wavelength stub surge suppressors, such as described in U.S. Pat. No. 5,982,602 “Surge Protector Connector” by Tellas et al, issued Nov. 9, 1999 commonly owned with the present application by Andrew Corporation and hereby incorporated by reference in the entirety, are largely machinable along a single longitudinal axis of the surge suppressor body and also reduce the required enclosure size by spiraling the shorting element away from the inner conductor to a nearly full circumference loop around the inner conductor.
However, because the shorting element requires sufficient cross sectional area to carry the desired surge current load, and requires a suitable separation from the other elements to prevent flashover during a surge condition, the required enclosure is still relatively large and necessarily introduces a significant variation to the outer conductor diameter as it passes along the body of the surge suppressor. Variations in the outer conductor diameter introduce an impedance discontinuity that increases insertion losses. Also, the shorting element is coupled to the outer conductor via a slidable slot connection, secured by a screw that increases manufacturing complexity and also introduces a weak point in the electrical interconnection with the outer conductor.
Alternative shorting elements in other prior surge suppressors include a single planar spiral with multiple loops that requires an increased body diameter to maintain the required spacing between the loops. Similarly, a helical coil shorting element configuration is expensive to manufacture with precision and requires a significant extension of the longitudinal dimension of the surge suppressor.
The spiral aspect of the shorting element is an inductor structure that increases the inductance of the shorting element. The high frequency magnetic field effects of an inductor structure having an affect on the impedance of the frequency selective shorting element that allows the overall length of the shorting element to be reduced, compared to a straight or minimally spiraled quarter wavelength stub. Precision manufacture by machining or bending of a range of different spiral inductor shorting element configurations, to allow supply of a surge suppressor optimized for each of a range of different frequency bands, adds a significant manufacturing cost and lead time to the resulting family of surge suppressors.
Competition within the electrical cable, connector and associated accessory industries has focused attention on cost reductions resulting from increased manufacturing efficiencies, reduced installation requirements and simplification/overall number of discrete parts reduction.
Therefore, it is an object of the invention to provide an apparatus that overcomes deficiencies in the prior art.
The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and, together with a general description of the invention given above, and the detailed description of the embodiments given below, serve to explain the principles of the invention.
The prior less than single turn spiral into loop shorting element is replaced by a shorting element with multiple planar loops, each of the planar loops coupled by a transition section. Because the multiple planar loops are arranged generally in-line and normal to the inner conductor, the effective length of the shorting element may be increased without requiring a corresponding increase in the enclosing housing diameter.
Exemplary embodiments of the invention are described with reference to
An inner conductor 23 extends coaxially within the hollow central bore 7 between each end of the body 5, supported by insulator(s) 21. A break 19 in the inner conductor 23, for example separated by a dielectric 27 may be applied as a direct current isolator. The surface area of each end of the inner conductor 23 at the break 19 and the thickness and dielectric value of any dielectric 27 applied are adapted for a desired impedance over a desired frequency band, such as 50 ohms, and an acceptable insertion loss.
A shorting element 29 is coupled between the body 5 (outer conductor) and the inner conductor 23 on the side of the break 19, if present, from which a current surge is expected to originate. The shorting element 29 extends from the inner conductor 23 towards the body 5 and forms a generally planar loop segment 31 spaced away from the inner conductor 23. A transition section 33 leads to at least one additional planar loop segment 31 spaced along the inner conductor 23. An end of the last planar loop segment 31 extends towards and couples with the outer conductor, that is the body 5.
According to the invention, any shorting element 29 configuration having multiple planar loop segment(s) 31, the planar loop segment(s) 31 each joined by a transition section 33, may be applied. For example as shown in
Alternatively, as shown for example in
Where a separate transition section 33 element connection is applied, the direction of the loop segment(s) 31 may be continuous, encircling the inner conductor 23 as shown in
As shown for example in
Further, the loop segment(s) 31 may have varying diameters, for example as shown in
The overall length obtained via the loop segment 31 configurations may be tuned to adapt the resulting surge suppressor 1 according to the invention for operation about a desired frequency band with at least two planar loop segment(s) 31 coupled by a transition section 33. Each loop segment 31 may extend as far as desired around the inner conductor 23 with a maximum loop just short of a full circumference to prevent shorting of the same loop segment 31 ends to each other.
For the body 5 to shorting element 29 coupling, a distal end 39 of the shorting element 29 may be formed with a key 41 into slot 43 connection. The key 41 and slot 43 may be, for example, corresponding circular shapes for ease of manufacture. The slot 43 is any form of hole, groove or depression that may be formed in a seating surface 45 between the first and second portion(s) 9,11 with a depth slightly less than a thickness of the shorting element 29, so that the shorting element 29 protrudes from the slot 43 when seated. Thereby, the coupling of the first and second portions 9,11 coming together along the seating surface 45 also drives the key 41 into the slot 43 to produce a removable, reliable and high current capacity electrical interconnection. Alternatively, an interference fit between the key 41 and slot 43 or other connection method may be applied.
The proximal end 47 of the shorting element 29 may apply a similar key 41 into slot 43 connection with respect to the inner conductor 23. Alternatively, a mounting hole 49 that fits over a threaded or interference fit break in the outer conductor 23 may be applied as best shown in
An alternative key 41 into slot 43 interconnection, as shown in
Returning to the break 19, the specific configuration of this element may also be applied in several different configurations. As shown in
Alternatively, the break 19 may be formed with a dielectric 27 located between opposing planar disk electrodes as shown for example in
One skilled in the art will appreciate that the present invention represents a significant improvement in the required body 5 dimensions and manufacturing efficiency for in-line coaxial surge suppressor(s) 1. The readily exchangeable surge suppression insert (s) 29 according to the invention may be cost effectively formed by stamping from planar stock and bending operations, permitting precision manufacture of a range of differently dimensioned shorting elements for a wide range of different frequency bands. Because the majority of body 5 features are annular, metal molding and or turning along a single longitudinal axis may efficiently perform the majority of required body manufacturing operations. Also, surge suppressor(s) 1 according to the invention for specific frequency bands may be quickly assembled for on-demand delivery with minimal lead time, eliminating the need for large stocks of pre-assembled frequency band specific surge suppressor 1 inventory. Further, should a surge suppressor 1 be damaged or the desired frequency band of operation change, several embodiments permit the shorting element 29 to be exchanged in the field.
Where in the foregoing description reference has been made to ratios, integers, components or modules having known equivalents then such equivalents are herein incorporated as if individually set forth.
While the present invention has been illustrated by the description of the embodiments thereof, and while the embodiments have been described in considerable detail, it is not the intention of the applicant to restrict or in any way limit the scope of the appended claims to such detail. Additional advantages and modifications will readily appear to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details, representative apparatus, methods, and illustrative examples shown and described. Accordingly, departures may be made from such details without departure from the spirit or scope of applicant's general inventive concept. Further, it is to be appreciated that improvements and/or modifications may be made thereto without departing from the scope or spirit of the present invention as defined by the following claims.
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Number | Date | Country | |
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20070165352 A1 | Jul 2007 | US |