The invention relates to bandpass filters and, more specifically, to a stripline manifold assembly that includes a stripline manifold bandpass filter for an integrated antenna diplexer.
The need to integrate more components, for example Radio Frequency (RF) cavity filters such as bandpass filters into an Antenna module in order to reduce Antenna weight is an advantage in the telecommunications industry. To address these needs, bandpass filters using transmission lines such as, for example, striplines, microstrips or coaxial components are used for newer antenna modules with custom designs rather than traditional large commercially available components that are costly, take up too much volume within an available antenna space and increase the overall antenna weight. However, these newer modules take up a larger volume of an antenna space, which increases the weight of the antenna. A module that can reduce the volume of a bandpass filter and which may be tunable to maintain a desired filter response for maximizing antenna efficiency may be beneficial to the art.
In accordance with an embodiment of the invention, a stripline manifold filter assembly for an antenna is provided that includes a stripline manifold bandpass filter. The stripline manifold filter assembly may include at least two bandpass filters that can be used for bandpass filtering of an RF signal in an antenna. In an embodiment, the stripline manifold filter assembly includes resonant sections that may share a common ground using inductive line lengths and a reduced number of coupling/grounding screws. A height of the stripline manifold assembly may be reduced by using “air” stripline manifold that may provide a high impedance section (i.e., stripline thickness relative to thickness of housing). In an embodiment, the stripline manifold filter may use capacitive loaded coaxial resonant tophats that provide an additional stepped impedance to tune the resonant frequency of the bandpass filter, which may also reduce the filter height of stripline manifold bandpass filter. In another embodiment, first and last loaded resonant sections of the stripline manifold bandpass filter may be reduced in height by using additional inductive line length with coupling bars between resonant sections. These resonant sections may be grounded using coupling screws that may share one common grounding point between the two adjacent resonant sections. Additionally, the effects of Passive Intermodulation (PIM) are also mitigated with having less mechanical fixing locations compared to conventional cavity filter grounding methods that can create potentially high current discontinuity paths to ground.
In describing embodiments of the invention illustrated herein and in the drawings, specific terminology will be resorted to for the sake of clarity. However, the invention is not intended to be limited to the specific terms so selected, and it is to be understood that each specific term includes all technical equivalents that operate in similar manner to accomplish a similar purpose. Several preferred embodiments of the invention are described for illustrative purposes, it being understood that the invention may be embodied in other forms not specifically shown in the drawings.
In accordance with an embodiment of the invention, a stripline manifold filter assembly for an antenna is provided that includes a stripline manifold bandpass filter. In an embodiment, the stripline manifold filter assembly includes coaxial resonator segments that may be selectively tuned using tuning screws. Coupling bars provide an inductive length of transmission line between immediately adjacent coaxial resonator segments. A reduced number of grounding screws may be coupled to the coaxial resonator segments that may share a common ground between the coaxial resonator segments. In an embodiment, the stripline manifold filter may use capacitive loaded coaxial resonant tophats that provide an additional stepped impedance to tune the resonant frequency of the bandpass filter, which may also reduce the filter height of stripline manifold bandpass filter. In another embodiment, first and last loaded resonant sections of the stripline manifold bandpass filter may be reduced in height by using additional inductive line length with coupling bars between resonant sections.
Referring to the figures,
Each bandpass filter 205, 210 may be configured to receive and/or transmit RF signals in specific frequency ranges. For example, in a receive mode, bandpass filter 205 may be configured to receive RF signals at signal port 215 and allow signals within cutoff frequencies, f3 and f4, to pass through to signal port 220. Bandpass filter 210 may be configured to receive RF signals at signal port 215 and allow signals within cutoff frequencies, f5 and f6, to pass through to signal port 225. Each bandpass filter 205, 210 may be tuned based on the frequency that filter bandpass is to be operated. In a non-limiting example, during reception of wireless transmissions, an RF signal may be received at signal port 215 and can selectively propagate through one of the bandpass filters 205, 210 to either signal port 220 or signal port 225 based on the bandwidth of the bandpass filter 205, 210. The bandpass filter 205, 210, may be tuned to a lower or higher frequency, and may produce a very high impedance and hence the transmit signal passes from signal port 215 to signal ports 220, 225 where it may see an impedance as a load.
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Though two couplings 450 are shown between segments 455A and 455B, and between 455C and 455D, and a single coupling 465 is shown between segments 455B and 455C, any number of couplings can be utilized, including one or more. And any number of couplings substantially similar to couplings 450, 465, may be used between resonator segments 455A-455D to provide the desired impedance connections for stripline manifold bandpass filter 415. As shown, the couplings between 455A, 455B are aligned with the couplings between 455C and 455D and offset from the coupling 465. However, any suitable arrangement can be provided, for example the couplings 450, 465 can all be aligned with one another and/or offset from each other.
Coaxial resonant tophat 435 of each resonator segment 455A-455D is generally cylindrical in shape and terminates into a circular flange 475. In one non-limiting example, coaxial resonant tophat 435 may be integrally formed with resonator segment 455A-455D. However, in another example, coaxial resonant tophat 435 may initially be separately formed and later connected to resonator segment 455A-455D. Resonant tophats 435 are coupled to resonator segments 455A-455D and include a cavity that may be accessed along wall 470. The resonant tophats 435 can be integrally formed (e.g., casted) with the resonator segment 455 or can be individually fastened via mechanical fixing screws or soldered to the resonator segments 455. The resonant tophats 435 are located along one wall of the housing 410 to provide additional capacitance (controlled by the circular flange 475 diameter) to achieve lower frequency for fixed amount of tuning screw thus lowering the overall height of the filter 415. The resonant tophat 435 may have a larger outer diameter section than a diameter of resonator segment 455A-455D (e.g., larger diameter than a diameter/width of resonator segment 455A-455D that is directionally opposite to coaxial resonant tophat 435). The coaxial resonant tophat 435 includes an inner longitudinal cavity that the flange 475 that may be coupled to an inner surface of the wall 470 to provide mechanical support for the coaxial resonant tophat and as an RF ground.
Each coaxial resonant tophat 435 may provide a stepped impedance resonator where the impedance (capacitive impedance) may be tuned (i.e., changed) by varying degrees (i.e., as stepped impedances) with the resonant tuning screw 425. The stepped impedance relates to each individual tophat 435. Different geometry tophats 435 can be provided at each location, thus having varying stepped impedance tophats 435. A stepped impedance reduces the overall height of the tophat 435 and reduces the variable tuning capacitance required as a larger fixed capacitance is achieved from the diameter of the tophat. Coaxial resonant tophat 435 may be tuned by using the tuning screw 425 that can be selectively inserted or retracted into the longitudinal cavity of the coaxial resonant tophat 435. For example, inserting tuning screw 425 into the inner longitudinal cavity of coaxial resonant tophat 435 decreases the resonant frequency due to an increase in capacitance of resonator segment 455. Retracting tuning screw 425 from the inner longitudinal cavity of coaxial resonant tophat 435 from an inserted position increases the resonant frequency due to a decrease in capacitance of resonator segment 455A-455D. Resonant tuning screws 425 may also provide mechanical support of the coaxial resonant tophats 435 (
The stepped impedance of the coaxial resonant elements 455 may provide the benefit of reducing overall length of the stripline manifold assembly 400 over the prior art stripline manifold assembly 300 (
The stripline manifold filter assembly 400 may be used to overcome the limitations of conventional stripline manifold filter assemblies. For example, the height of stripline manifold assembly 400 may be reduced by using “air” stripline manifold that may provide a high impedance section (i.e., stripline thickness relative to thickness of housing 410). Additionally, filter length in the stripline manifold bandpass filter 415 may be reduced by using capacitive loaded coaxial resonant tophats 435 that provide an additional stepped impedance. Further, the first and last loaded resonant sections 455A-455B and 455C-455D can be reduced in height by using additional inductive line lengths with coupling segments 450 between resonant sections 455A-455B and 455C-455D. These resonant sections 455A-455B and 455C-455D may be grounded using coupling screws 420 that share one common grounding point between the two adjacent resonant sections 455A-455B and 455C-455D. The common grounding point 485 may mitigate the effects of Passive Intermodulation (PIM) with having less mechanical fixing locations with two coupling screws 420 as compared to conventional cavity filter grounding methods that have grounding screws on each resonant section. These additional screws can create potentially high current discontinuity paths to ground due to higher likelihood of failure in the mechanical joints. In one example embodiment, a 35% reduction in height is achieved for the filter design using the high impedance stripline section in conjunction with the stepped impedance resonant tophat. However, the height and length can vary depending on the desired application, and other suitable height and length can be provided within the spirit and scope of the invention.
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The following examples pertain to further embodiments:
Example 1 is a filter assembly, comprising a housing enclosing a cavity; a manifold bandpass filter coupled to the housing and residing within the cavity, the manifold filter including a plurality of resonator segments, each resonator segment of the plurality of resonator segments having a respective longitudinal cavity extending at least partially into the coaxial resonator; coupling segments coupled to one or more coaxial resonators of the plurality of coaxial resonators; and a plurality of resonant tuning screws, each resonant tuning screw of the plurality of resonant tuning screws received in the longitudinal cavity of a respective coaxial resonator of the plurality of coaxial resonators.
In Example 2, the circuit of Example 1 can include, a cover coupled to the housing, the cover configured to enclose the manifold bandpass filter inside the cavity.
In Example 3, the circuit of Example 1 or 2 can include, wherein the manifold bandpass filter includes at least two output filters arranged as bandpass filters.
In Example 4, the circuit of Example 1 to 3 can include, wherein each coupling segment is configured to provide a filter coupling between immediately adjacent coaxial resonators of the plurality of coaxial resonators.
In Example 5, the circuit of Example 1 to 4 can include, wherein at least one coupling segment is configured to provide an inductive impedance between immediately adjacent coaxial resonators of the plurality of coaxial resonators.
In Example 6, the circuit of Example 1 to 5 can include, further comprising coupling bars coupled to the housing, each coupling bar is configured to be selectively inserted into or retracted from the cavity.
In Example 7, the circuit of Example 16 can include, wherein each of the coupling bars is configured to couple two immediately adjacent coaxial resonators of the plurality of coaxial resonators.
In Example 8, the circuit of Example 1 to 7 can include, wherein each of the coaxial resonators includes a resonant tophat impedance section having the longitudinal cavity.
In Example 9, the circuit of Example 8 can include, wherein each of the resonant tuning screws is configured to be selectively inserted into the longitudinal cavity of the resonant tophat impedance section or to be selectively retracted from the longitudinal cavity of the resonant tophat impedance section.
In Example 10, the circuit of Example 9 can include, wherein each of the resonant tuning screws is configured to change an impedance of the resonant tophat impedance section when inserted into the longitudinal cavity.
In Example 11, the circuit of Example 1 to 10 can include, further comprising a plurality of grounding screws, each grounding screw configured to mechanically ground the manifold bandpass filter to the housing.
In Example 12, the circuit of Example 11 can include, wherein each of the grounding screws is configured to be coupled to adjacent coaxial resonators and provide a common ground between the adjacent coaxial resonators.
Example 13 is a manifold bandpass filter, comprising a plurality of resonator segments, each resonator segment of the plurality of resonator segments having a respective longitudinal cavity extending at least partially into the coaxial resonator; coupling segments coupled to one or more coaxial resonators of the plurality of coaxial resonators; and a plurality of resonant tuning screws, each resonant tuning screw of the plurality of resonant tuning screws received in the longitudinal cavity of a respective coaxial resonator of the plurality of coaxial resonators.
In Example 14, the circuit of Example 13 can include, wherein the manifold bandpass filter includes at least two output filters arranged as bandpass filters.
In Example 15, the circuit of Example 13 to 14 can include, wherein each coupling segment is configured to provide a filter coupling between immediately adjacent coaxial resonators of the plurality of coaxial resonators.
In Example 16, the circuit of Example 13 to 15 can include, wherein each of the coupling segments is configured to provide an inductive impedance between immediately adjacent coaxial resonators of the plurality of coaxial resonators.
In Example 17, the circuit of Example 13 to 16 can include, further comprising a plurality of coupling bars, wherein each coupling bar of the plurality of coupling bars is configured to couple two immediately adjacent coaxial resonators of the plurality of coaxial resonators.
In Example 18, the circuit of Example 13 to 17 can include, wherein each coaxial resonator of the plurality of coaxial resonators includes a resonant tophat impedance section having the longitudinal cavity.
In Example 19, the circuit of Example 13 to 18 can include, wherein each resonant tuning screw of the plurality of resonant tuning screws is configured to be selectively inserted into the longitudinal cavity of the resonant tophat impedance section or to be selectively retracted from the longitudinal cavity of the resonant tophat impedance section.
In Example 20, the circuit of Example 19 can include, wherein each of the resonant tuning screws is configured to change an impedance of the resonant tophat impedance section when inserted into the longitudinal cavity.
In Example 21, the circuit of Example 13 to 20 can include, further comprising a plurality of grounding screws, each grounding screw of the plurality of grounding screws is configured to be coupled to adjacent coaxial resonators and provide a common ground between the adjacent coaxial resonators.
The foregoing description and drawings should be considered as illustrative only of the principles of the invention. The invention may be configured in a variety of shapes and sizes and is not intended to be limited by the embodiments. Numerous applications of the invention will readily occur to those skilled in the art. Therefore, it is not desired to limit the invention to the specific examples disclosed or the exact construction and operation shown and described. Rather, all suitable modifications and equivalents may be resorted to, falling within the scope of the invention.
The present application claims the benefit of U.S. Provisional Application No. 62/310,249, filed Mar. 18, 2016, the entire contents of which are incorporated herein by reference.
Number | Date | Country | |
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62310249 | Mar 2016 | US |