The present application claims priority to Chinese Patent Application Serial No. 201910061252.8, filed Jan. 23, 2019, the entire content of which is incorporated herein by reference.
The present invention relates generally to cellular communication systems and, more particularly, to filters that are suitable for use in cellular communication systems. In addition, the present invention also relates to cellular communication systems including the filters.
In cellular communication base stations, filters are used as frequency selection devices for passing radio frequency (RF) signals in certain frequency ranges while filtering out RF signals and/or noise in other frequency ranges. A wide variety of filters are currently used in cellular communication base stations, including microstrip filters, interdigital filters, coaxial cavity filters, waveguide filters, comb-line cavity filters, spiral cavity filters, small lumped parameter filters, ceramic dielectric filters, SIR filters and the like.
As coaxial cavity filters are suitable for mass production and are relatively low in cost, they are often used in cellular communication base stations. Tuning screws are typically movably mounted within one or more walls of the coaxial cavity filter, and the tuning screws are used to tune the frequency characteristics of the resonators mounted inside the filter after the coaxial cavity filter is manufactured.
According to a first aspect of the present invention, a filter is provided. The filter device comprises a housing having a top wall, a bottom wall and one or more side walls that define an internal cavity; a plurality of resonators that are mounted within the internal cavity with a first space provided between a pair of adjacent resonators; and a coupling-tuning element mounted on one of the walls of the housing, characterized in that the coupling-tuning element comprises one or more solid dielectric materials and is capable of extending into the first space to tune the coupling characteristics between the pair of adjacent resonators.
The filter device according to the present invention is advantageous. First, the coupling-tuning element made of solid dielectric materials may not generate an electric arc, thereby improving the reliability of the filter device. Second, the coupling-tuning element has significantly reduced effect on frequency characteristics of the resonators. Third, the coupling-tuning element is particularly suitable for use in compact filter devices, which widens the adjustable range and provides more tuning possibilities. Fourth, the requirements for manufacturing precision are lowered, and manufacturing costs are reduced.
In some embodiments, a resonance-tuning element is further mounted on one of the walls of the housing and configured to tune the frequency characteristics of a respective resonator.
In some embodiments, the first space includes: a gap between the two resonators of the pair of adjacent resonators; and/or a region above or below the gap; and/or a region in front of or behind the gap.
In some embodiments, the coupling-tuning element includes a rod that is made of a polymeric compound or a ceramic.
In some embodiments, the coupling-tuning element includes a rod that is made of polyetheretherketone.
In some embodiments, the resonance-tuning element includes a rod that is made of metal.
In some embodiments, the coupling-tuning element is configured as a tuning rod.
In some embodiments, the coupling-tuning element is provided with a metal self-locking head that is configured to be secured within a mounting hole in one of the walls in a self-locking manner.
In some embodiments, each of the resonators has a first end and a second end opposite thereto, the first end of each resonator is electrically and mechanically connected to a first wall of the housing, and the resonator extends from the first wall toward the second wall opposite the first wall, wherein a second space is present between an end surface of the second end of the resonator and a second wall, and the resonance-tuning element is configured to be movably extended into the second space.
In some embodiments, a dielectric module having a tuning channel is disposed in the first space, and the coupling-tuning element is configured to be movably inserted into the tuning channel.
In some embodiments, the extension range of the resonance-tuning element is less than a distance between the second wall and a plane where the end surface of the second end of the resonator is located.
In some embodiments, the extension range of the coupling-tuning element exceeds a distance between the second wall and a plane where the end surface of the second end of the resonator is located.
In some embodiments, the extension range of the coupling-tuning element is greater than that of the resonance-tuning element.
In some embodiments, the extension range of the coupling-tuning element is greater than 1.5, 2, 2.5, 3, 4, or 5 times the extension range of the resonance-tuning element.
In some embodiments, the resonator is constructed as a resonant column.
In some embodiments, the resonators extend substantially parallel to each other within the internal cavity.
In some embodiments, at least one coupling segment is formed between two adjacent resonators.
In some embodiments, each resonator is equivalent to a quarter-wavelength open-ended transmission line, or equivalent to a half-wavelength open-ended transmission line.
In some embodiments, the filter is configured as a multiplexer or combiner in the form of a multi-port resonant cavity filter.
In some embodiments, a plurality of connection ports are provided in the housing that are configured to receive and/or transmit signals.
In some embodiments, the top wall and the side walls are integrally formed, and/or the bottom wall and the side walls are integrally formed.
According to a second aspect of the present invention, a filter device is provided. The filter device has a housing defining an internal cavity, characterized in that a plurality of resonators are mounted within the internal cavity, a first space is provided between two adjacent resonators, and a coupling-tuning element is mounted in the filter, wherein the coupling-tuning element comprises one or more solid dielectric materials and is capable of extending into the first space to tune the coupling characteristics between the two adjacent resonators.
In some embodiments, a resonance-tuning element is further mounted in the filter so as to tune the frequency characteristics of a corresponding resonator.
In some embodiments, the first space includes: a gap between the two resonators of the pair of adjacent resonators; and/or a region above or below the gap; and/or a region in front of or behind the gap.
In some embodiments, the coupling-tuning element includes a rod that is made of a polymeric compound or a ceramic.
In some embodiments, the coupling-tuning element includes a rod that is made of polyetheretherketone.
In some embodiments, the resonance-tuning element includes a rod that is made of metal.
In some embodiments, the coupling-tuning element is configured as a tuning rod.
In some embodiments, the coupling-tuning element is provided with a metal self-locking head that is configured to be secured within a mounting hole in the filter in a self-locking manner.
In some embodiments, each of the resonators has a first end and a second end opposite thereto, the first end of the resonator is electrically and mechanically connected to the housing of the filter, and the second end of the resonator is spaced apart from the housing of the filter by a second space, wherein the resonance-tuning element is capable of extending into the second space.
In some embodiments, a dielectric module is disposed in the first space, a tuning channel is disposed in the dielectric module, and the coupling-tuning element is capable of extending into the tuning channel.
In some embodiments, the extension range of the resonance-tuning element is less than a distance between the second wall and a plane where the end surface of the second end of the resonator is located.
In some embodiments, the extension range of the coupling-tuning element exceeds a distance between the second wall and a plane where the end surface of the second end of the resonator is located.
In some embodiments, the extension range of the coupling-tuning element is greater than that of the resonance-tuning element.
In some embodiments, the extension range of the coupling-tuning element is greater than 2 times the extension range of the resonance-tuning element.
In some embodiments, the resonator is constructed as a resonant column.
In some embodiments, the resonators extend substantially parallel to each other within the internal cavity.
In some embodiments, one or more coupling segments are formed between the two adjacent resonators.
In some embodiments, each resonator is equivalent to a quarter-wavelength open-ended transmission line, or equivalent to a half-wavelength open-ended transmission line.
In some embodiments, the filter is configured as a multiplexer or combiner in the form of a multi-port resonant cavity filter.
In some embodiments, a plurality of connection ports are provided on the filter to receive and/or transmit signals.
According to a third aspect of the present invention, there is provided a communication system, characterized in that the communication system comprises a filter device according to the present invention.
Embodiments of the present invention will be described below with reference to the drawings, in which several embodiments of the present invention are shown. It should be understood, however, that the present invention may be implemented in many different ways, and is not limited to the example embodiments described below. In fact, the embodiments described hereinafter are intended to make a more complete disclosure of the present invention and to adequately explain the scope of the present invention to a person skilled in the art. It should also be understood that, the embodiments disclosed herein can be combined in various ways to provide many additional embodiments.
It should be understood that, the wording in the specification is only used for describing particular embodiments and is not intended to limit the present invention. All the terms used in the specification (including technical and scientific terms) have the meanings as normally understood by a person skilled in the art, unless otherwise defined. For the sake of conciseness and/or clarity, well-known functions or constructions may not be described in detail.
The singular forms “a/an” and “the” as used in the specification, unless clearly indicated, all contain the plural forms. The words “comprising”, “containing” and “including” used in the specification indicate the presence of the claimed features, but do not preclude the presence of one or more additional features. The wording “and/or” as used in the specification includes any and all combinations of one or more of the relevant items listed.
In the specification, words describing spatial relationships such as “up”, “down”, “left”, “right”, “forth”, “back”, “high”, “low” and the like may describe a relation of one feature to another feature in the drawings. It should be understood that these terms also encompass different orientations of the apparatus in use or operation, in addition to encompassing the orientations shown in the drawings. For example, when the apparatus in the drawings is turned over, the features previously described as being “below” other features may be described to be “above” other features at this time. The apparatus may also be otherwise oriented (rotated 90 degrees or at other orientations) and the relative spatial relationships will be correspondingly altered.
It should be understood that, in all the drawings, the same reference signs present the same elements. In the drawings, for the sake of clarity, the sizes of certain features may be modified.
Embodiments of the present invention will now be described in more detail with reference to the accompanying drawings, in which exemplary embodiments are described.
The tuning performance of the tuning screws used in conventional coaxial cavity filters may be limited. Conventional tuning screws have high tuning sensitivity, that is, each time the tuning screw is adjusted to move closer or farther away from an associated resonant column of the filter, the change in the resonant frequency is relatively large, so that over-tuning or under-tuning is apt to occur. In addition, due to the high tuning sensitivity of conventional tuning screws, the manufacturing precision of the coaxial cavity filter must be high, which increases the manufacturing cost and manufacturing difficulty of the coaxial cavity filter.
In addition, in many applications, it is desirable that the coaxial cavity filter be small in size in order to reduce weight, material costs, wind resistance and the like. However, as the size of a coaxial cavity filter is reduced, the space within the filter, including the space available for adjustable tuning screws to move along, may also be reduced. If a tuning screw comes too close to a metal resonant column, an electric arc may be generated that may damage the filter.
In other embodiments, the filter 1 may include additional ports to implement multiplexers, triplexers, combiners or the like. The filter according to embodiments of the present invention may include, for example, four or more ports that are used to electrically connect the filter 1 to other external devices.
In the present embodiment, the first port 3, the second port 4 and the third port 6 each comprise a coaxial connector port that is configured to receive a coaxial cable. A center conductor of each of the coaxial cables 7, 8, 9 may be electrically connected to a respective resonator within the filter 1 by soldering, and an outer conductor of each of the coaxial cables 7, 8, 9 may be electrically connected to a housing 14 of the filter 1 by soldering, thereby achieving an RF signal transmission connection from the communication device 11 to the radiating element 10 via the filter 1, or vice versa.
As shown in
As can be seen from
As can be seen from
In the present embodiment, the resonance-tuning element 30 is constructed as a metal tuning rod, such as an aluminum tuning rod, and the coupling-tuning element 16 is constructed as a rod made of a solid dielectric material such as polyetheretherketone (PEEK) having a relatively high dielectric constant. In other embodiments, the resonance-tuning element 30 and the coupling-tuning element 16 may also be constructed as an adjustment element of other materials (for example, other polymeric compound materials or ceramics) in other forms. Further, as can be seen from
Referring now to
The metal self-locking head 32 may have an externally threaded portion 34 that is configured to be secured in the mounting hole 29 in a self-locking manner, which eliminates the need to provide a nut outside the walls to tighten the screw as in the prior art. Therefore, the filter 1 of the present invention not only saves space but also simplifies the installation process.
Further, as can be seen from
In the graph of
In the case of using the metal rod, the coupling coefficient monotonically increases as the coupling-tuning element is inserted further into the inner cavity of the filter. It can be seen from
In addition, the depth to which the metal rod may be inserted into the internal cavity 20 of the filter 1 is extremely limited. In the present embodiment, the extension range of the metal rod is limited to the second space 28, and the maximum extent to which the metal rod may be inserted into the cavity is 12 mm in an example embodiment. If the metal rod is inserted further into the cavity and, in particular, into the first space 27, at least two problems may arise. First, as the structure of the filter 1 is relatively compact and the interval between adjacent resonators 21 is small, when the metal rod and the resonator 21 get too close, an electric arc tends to be generated, which may seriously damage the filter 1. Second, if inserted too close to the resonators 21, the metal rod may also affect the frequency characteristics such as the resonant frequency point of the individual resonators 21 to thereby accomplish an opposite tuning effect.
In the case of using a coupling-tuning element 16 that includes a PEEK rod, the coupling coefficient initially increases as the PEEK rod is inserted and then decreases as the PEEK rod is inserted further into the internal cavity 20 of the filter 1. In the example of
It should be noted that the filter 1 may have any suitable configuration for acting as any type of filter (e.g., duplexer, diplexer, triplexer, band-stop, band-pass, low-pass, high-pass, etc.) and may have any appropriate design, and therefore is not limited to the configuration exemplarily described in the embodiments of the present invention. Any appropriate number of resonators may be included, and the design of the individual resonators may be changed. The resonators may or may not be aligned in a straight line, and may or may not have direct galvanic connections between adjacent and/or non-adjacent resonators. Likewise, in other embodiments, the filter 1 may have any N-sided configuration, such as a trilateral configuration, a quadrilateral configuration, a pentagonal configuration, a hexagonal configuration, and the like. In addition, the filter 1 may also have curved walls.
Likewise, the tuning elements may also have various configurations, not limited to the configuration exemplarily described in the embodiments of the present invention. In other embodiments, the coupling-tuning element 16 and/or the resonance-tuning element 30 may have any shape such as cylindrical, prismatic, pyramidal, stepped configuration, or the like.
In other embodiments, the resonators 21 may also extend from any portion of the housing toward another portion of the housing. For example, some or all of the resonators 21 may extend from the bottom wall (or the top wall) of the filter 1 towards the top wall (or bottom wall) of the filter 1. In this case, the resonance-tuning element 30 and the coupling-tuning element 16 may be disposed on the top wall (or bottom wall).
In other embodiments, a dielectric module may be mounted in the first space 27 instead of configuring the first space 27 as an air-filled space. The dielectric module may have a dielectric constant higher than that of air, and the dielectric module may include a tuning channel that may, for example, match the size of the rod of the coupling-tuning element 16. In this way, the coupling-tuning element 16 can extend into the tuning channel to tune the coupling characteristics between the two adjacent resonators 21.
Likewise, a dielectric module may also be mounted in the second space 28. The dielectric module may have a dielectric constant higher than that of air, and the dielectric module may include a tuning channel that may, for example, match the size of the resonance-tuning element 30. In this way, the resonance-tuning element 30 can extend into the tuning channel to tune the frequency characteristics of the corresponding resonators 21.
Although the specific embodiments of the present disclosure have been described in detail by way of example, those skilled in the art should understand that the above examples are for illustrative purposes only and are not intended to limit the scope of the present disclosure. The various embodiments disclosed herein may be combined in any combination without departing from the spirit and scope of the disclosure. It should also be understood by those skilled in the art that various modifications may be made in the embodiments without departing from the scope and spirit of the disclosure.
Number | Date | Country | Kind |
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201910061252.8 | Jan 2019 | CN | national |