Fully reconfigurable coaxial filter

The fully reconfigurable coaxial filter addresses the limitations of existing microwave filters by using dielectric tuners to control resonant frequency and coupling coefficients, enabling wide adjustability and high power handling for space applications.

JP7850182B2Active Publication Date: 2026-04-22THALES ALENIA SPACE ITALIA SPA CON UNICO SOCIO
View PDF 12 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
THALES ALENIA SPACE ITALIA SPA CON UNICO SOCIO
Filing Date
2022-07-01
Publication Date
2026-04-22

AI Technical Summary

Technical Problem

Existing microwave filters for space applications face challenges in reconfiguring frequency bandwidth and center frequency, cannot handle high power levels, and have high RF loss, making them unsuitable for on-orbit adaptability and safety in satellite payloads.

Method used

A fully reconfigurable coaxial filter using movable dielectric tuners to adjust capacitive loads at both ends of coaxial resonant circuits, allowing for precise control of resonant frequency and coupling coefficients, ensuring low insertion loss and high power handling.

Benefits of technology

The filter achieves wide adjustability of center frequency and bandwidth with low insertion loss and high power handling, suitable for space applications, meeting the demands of next-generation satellite payloads.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007850182000001
    Figure 0007850182000001
  • Figure 0007850182000002
    Figure 0007850182000002
  • Figure 0007850182000003
    Figure 0007850182000003
Patent Text Reader

Abstract

The present invention relates to a method for manufacturing a tuner comprising: a number of coaxial resonant circuits (21) each mounted such that both opposing ends (21A, 21B) are coupleable to a corresponding tuner (22, 23); a number of first tuners (22) made of a dielectric material each slidably mounted to a first end (21A) of the corresponding coaxial resonant circuit (21) such that the first tuners (22) are moveable relative to the first end (21A) to form a dielectric of a capacitive load associated with the first end (21A) of the corresponding coaxial resonant circuit (21); and a number of second tuners (23) made of a dielectric material each slidably mounted to a second end (21B) of the corresponding coaxial resonant circuit (21). and a second tuner (23) slidably mounted on a first open end (21A) and an opposite second end (21B) of a corresponding coaxial resonant circuit (21), respectively, so as to be movable relative to the second end (21B) to form a dielectric of a capacitive load associated with the opposing ends (21A, 21B) of the coaxial resonant circuit (21), wherein the first and second tuners (22, 23) are movable relative to the corresponding coaxial resonant circuit (21) to adjust the capacitive load associated with the opposing ends (21A, 21B) of the coaxial resonant circuit (21), and ultimately the resonant frequency and mutual coupling coefficient of the coaxial resonant circuit (21).
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] Cross - reference to related applications This patent application claims the priority of Italian Patent Application No. 102021000017498, filed on July 2, 2021, the entire disclosure of which is incorporated herein by reference.

[0002] The present invention generally relates to coaxial filters, and more particularly to fully reconfigurable coaxial filters operating at low frequencies, such as the L - band. Thus, the present invention more particularly refers to microwave filters. Without loss of generality, the present invention relates to fully reconfigurable coaxial filters for high - power applications, and even more particularly for space applications, especially for the development of on - orbit reconfigurable payloads predicted by the European Space Agency (ESA) for next - generation satellites, for example.

Background Art

[0003] As is known, in the past few years, flexible satellite payloads have received considerable attention because of their potential ability to adapt the capacity (i.e., its bandwidth) of communication channels according to traffic variability. This is of particular interest for space applications, such as satellites. According to the statement of the ESA study "Next generation RF technologies for affordable space - based PNT space segment", next - generation PNT satellite payloads require microwave L - band filters that enable reconfiguration of a center frequency in the range of 1140 to 1240 MHz and a frequency bandwidth in the range of 25 to 50 MHz. Furthermore, these filters must withstand relatively high power levels (higher than 100 W) and exhibit low insertion loss. In addition, these filters must meet them in relation to strict safety requirements and the severe dynamic loads of rocket launches.

[0004] Microwave filters have recently often been considered a hindrance in conventional payload architectures, particularly in space applications, where they prevent on-orbit reconfiguration of frequency bandwidth and center frequency. This limitation applies to several types of satellite services operating at several different frequency bandwidths.

[0005] Therefore, there is a need to provide adjustable microwave filters that solve the above problems, especially for space applications.

[0006] As a preliminary consideration, a broad classification may separate adjustable filters by control mechanism type, i.e., electrical or mechanical type. In particular, adjustable filters with electrical control systems include adjustable filters based on varactor diodes (which change capacitance) or ferrite devices (which act on the magnetic field components generated during use). However, these types of adjustable filters have relatively high RF (radio frequency) loss and low power handling and are affected by the emission of intermodulation products due to the inherent nonlinearity of the active device, i.e., the varactor diode or ferrite device. On the other hand, adjustable filters with mechanical control systems include adjustable filters based on mechanical actuators that are better suited to achieving high power handling and low RF loss, but these types of adjustable filters cannot simultaneously provide a wide range of adjustability of center frequency and bandwidth, sufficient mechanical robustness, and a small envelope at low frequencies.

[0007] Therefore, several solutions have been proposed to address the problem of designing tunable microwave filters at several different frequencies.

[0008] In particular, the article by JSParish, Somjit N. and Hunter IC, “Continuous Frequency and Bandwidth Tunable Combline Cavity Bandpass Filters with Internally Mounted Motors,” discloses a tunable filter 1 comprising coaxial resonant circuits 2, 3 arranged adjacent to each other at a distance d, wherein the electromagnetic coupling between adjacent coaxial resonant circuits 2, 3 is controlled through the rotation of a plate 4 made of metal (shown in Figure 1), interposed between the coaxial resonant circuits 2, 3 and suspended by a dielectric support 5, in particular, the plate 4 may be positioned, for example, at a central position relative to the coaxial resonant circuits 2, 3, i.e., approximately d / 2 from each coaxial resonant circuit 2, 3. However, the tunable filter 1 cannot handle high power levels due to the small gap (i.e., distance d / 2) between adjacent coaxial resonant circuits 2, 3, which is a critical interval for destructive discharge in multipaction (or corona) states between the rotating plate 4. Furthermore, the adjustable filter 1 has a highly sensitive frequency response versus rotation angle. More specifically, for precise control of the frequency response, it is necessary to use a highly accurate mechanical actuator and ensure high stability between mechanical position and environmental conditions, which increases the manufacturing cost and complexity of the adjustable filter 1. The rotating plate 4 shown in Figure 1 is also not suitable for ensuring such excellent mechanical stability, and this problem is particularly important to consider in space applications with severe dynamic loads during rocket launch.

[0009] Furthermore, the article by U. Rosenberg and M. Knipp, "Novel tunable high Q filter design for branching networks with extreme narrowband channels at mm-wave frequencies," discloses a filter configuration with low RF loss that can provide full reconfigurability of center frequency and bandwidth. According to this article, the resonant frequency and coupling coefficient between adjacent waveguide coaxial resonant circuits are tuned through the displacement of metal walls by sliding contacts placed at both ends of each coaxial resonant circuit. However, the solution proposed in the above article can only be applied to waveguide filters that are too bulky, i.e., have a larger envelope at low frequencies such as in the L band (for example, a dual-mode waveguide filter, as disclosed in the same article).

[0010] Another known example of a filter, schematically shown in Figure 2, is a comb-line filter 10 comprising several coaxial resonant circuits 11, more specifically, each coaxial resonant circuit 11 connected and supported at a first end by a metal housing 12 and positioned at a distance d' along the X-axis of the Cartesian reference system XYZ from adjacent coaxial resonant circuits 11. In addition, each coaxial resonant circuit 11 is the inner conductor of the corresponding coaxial line, and therefore, for simplification and to enable a better understanding of the invention, the outer conductor (indicated by, for example, an outer cover) is omitted from Figure 2. Furthermore, the housing 12 partitions a filter cavity 13, through which the multiple coaxial resonant circuits 11 extend. In addition, each coaxial resonant circuit 11 faces a corresponding opening 14 at a second end opposite the first end along the Y-axis of the Cartesian reference system XYZ, more specifically, each opening 14 is configured to receive a corresponding adjustment screw 15 and be coupled to a corresponding bolt 16. In addition, the comb-line filter 10 also includes tapping lines 17 configured to supply power to the comb-line filter 10 itself when in use, which are connected and inserted into the filter cavity 13 through their respective connecting tubes 19. More specifically, the tapping lines 17 are connected to the first and last of several coaxial resonant circuits 11, i.e., the coaxial resonant circuits 11 adjacent to the connecting tubes 19 and parallel to the respective side walls of the housing 12 (i.e., parallel to the Y-axis).

[0011] The electromagnetic coupling between adjacent coaxial resonant circuits 11 is determined as a superposition of inductive and capacitive periods with opposite signs, and their sum determines the coupling value. The two periods have equal magnitudes and cancel each other out when the length of each coaxial resonant circuit 11 is equal to one-quarter of the wavelength λ. To ensure that the coupling value is not invalid, the coaxial line of each coaxial resonant circuit 11 is terminated at its respective capacitive load (thus replacing the open-circuit state), and the length of each coaxial resonant circuit 11 is shortened to less than one-quarter of the wavelength λ. In the comb-line implementation shown in Figure 2, the capacitive load is created by the fringing electric field E in the small gap between the tip of each second end of each coaxial resonant circuit 11 and the tip of the corresponding adjustment screw 15; that is, the capacitive load of each coaxial resonant circuit 11 is created at the corresponding second end of the coaxial resonant circuit 11, and its value is adjusted by screwing in or out each screw 15 (and thus decreasing or increasing the space between the second end of each coaxial resonant circuit 11 and the associated tip of the adjustment screw 15). Thus, the introduction of the capacitive load leads to a decrease in the capacitive period of the electromagnetic coupling of the multiple coaxial resonant circuits 11, thereby generating non-zero electromagnetic coupling (i.e., non-zero coupling value) due to an imbalance between inductive and capacitive periods.

[0012] Furthermore, it should be noted that the capacitive load can be increased, particularly with relatively high dielectric constants, by inserting dielectric elements at the ends of the coaxial lines of each coaxial resonant circuit 11. The variable capacitive load may also be implemented using a movable dielectric tuner projecting from the upper wall surface of the housing 12 into the filter cavity 13, in which case the insertion or removal of the dielectric tuner (not shown) into or out of the opening 14 makes it possible to obtain the variable capacitive load.

[0013] Therefore, an increase in the capacitive load associated with a pair of adjacent coaxial resonant circuits 11 leads to an increase in their electromagnetic coupling, but this mechanism alone does not have to be used to adjust the filter bandwidth, because it simultaneously creates a strong change in the resonant frequency of each coaxial resonant circuit 11.

[0014] European Patent Application Publication EP3667810A1 discloses a filter device comprising multiple low-bandwidth resonant circuits and multiple high-bandwidth resonant circuits.

[0015] U.S. Patent Application Publication US2017 / 084972A1 discloses an RF filter, particularly a stripline type RF filter, comprising a casing and two or more strip conductor type resonant circuits within the casing. At a certain distance from the ends of the resonant circuits, there are one or more coupling lines between the sides of the resonant circuits that form an integral piece with the resonant circuits.

[0016] U.S. Patent Application Publication US2017 / 250678A1 discloses a method comprising the steps of: obtaining information indicating at least one reference feature; obtaining input data relating to the output of an adjustable filter; determining at least one feature of the adjustable filter based on the input data; determining an adjustment command for the adjustable filter if it is detected that at least one determined feature does not match at least one reference feature; and adding an adjustment command when adjusting the adjustable filter.

[0017] U.S. Patent Application Publication US2017 / 263992A1 discloses a coaxial filter having a frame configuration comprising at least one filter frame, comprising a conductive medium and having a receiving space. At least one first resonant circuit internal conductor is located within the receiving space. The at least one first resonant circuit internal conductor is galvanically connected to a face of at least one conductive filter frame, extending therefrom in another direction, in particular, in the direction of an opposing face of the conductive filter frame, terminating at a distance from the opposing face of the conductive filter frame, and / or galvanically isolated from the opposing face of the conductive filter frame. [Prior art documents] [Patent Documents]

[0018] [Patent Document 1] European Patent Application Publication No. 3667810 [Patent Document 2] U.S. Patent Application Publication No. 2017 / 084972 Specification [Patent Document 3] U.S. Patent Application Publication No. 2017 / 250678 [Patent Document 4] U.S. Patent Application Publication No. 2017 / 263992 [Non-patent literature]

[0019] [Non-Patent Document 1] Article by JSParish, Somjit N., and Hunter IC, "Continuous Frequency and Bandwidth Tunable Combline Cavity Bandpass Filters with Internally Mounted Motors" [Non-Patent Document 2] An article by U. Rosenberg and M. Knipp, "Novel tunable high Q filter design for branching networks with extreme narrowband channels at mm-wave frequencies" [Overview of the project] [Problems that the invention aims to solve]

[0020] In light of the foregoing, the applicant felt the need to solve the problems of the prior art, more specifically, to meet the requirements of the research statement in the ESA study "Next generation RF technologies for affordable space-based PNT space segment," thereby improving the structure and performance of current filters for space applications.

[0021] More specifically, the Applicant has in mind the cited prior art documents and aims to provide a filter, in particular a coaxial filter that is small (i.e., has a small envelope relative to the known prior art), has low insertion loss, relatively high power handling, and thus excellent performance at low frequencies.

[0022] Therefore, an object of the present invention is to provide a fully reconfigurable coaxial filter that solves the problems of the prior art.

Means for Solving the Problems

[0023] This and other objects are achieved by the present invention in terms of a fully reconfigurable coaxial filter as defined in the appended claims.

[0024] For a better understanding of the present invention, preferred embodiments, which are merely intended by way of non-limiting examples, will next be described with reference to the accompanying drawings (not all to the same scale).

Brief Description of the Drawings

[0025] [Figure 1] Perspective view of an adjustable filter according to the prior art. [Figure 2] Partial top view of a comb line filter according to the prior art. [Figure 3] Partial top view of a fully configurable coaxial filter with a dashed-line portion according to an embodiment of the present invention. [Figure 4] Cross-sectional view along section line A of FIG. 3 of the fully reconfigurable coaxial filter of FIG.

Mode for Carrying Out the Invention

[0026] The present invention will now be described in detail with reference to the accompanying drawings, enabling those skilled in the art to do so and use it. Various modifications to the described embodiments will be immediately apparent to those skilled in the art, and the overall principles described can be applied to other embodiments and applications without departing from the scope of the invention as defined in the accompanying claims. Thus, the present invention should not be considered limited to the embodiments described and illustrated herein, but the broadest scope of protection consistent with the described and claimed characteristics should be recognized.

[0027] Unless otherwise defined, all technical and scientific terms used herein have the same meanings as those commonly used by those skilled in the art in the field relating to the present invention. In case of any conflict, this description, including the definitions provided, shall be binding. Furthermore, examples are provided for illustrative purposes only and should not be considered limiting.

[0028] In particular, the block diagrams included in the attached drawings and described below are not intended to represent structural features or constitutive limitations, but rather to represent functional features, i.e., inherent characteristics of the device, which should be defined by the resulting effects and functional limitations, and therefore may be implemented in different ways to protect their functionality (or functions).

[0029] To facilitate understanding of the embodiments described herein, several characteristic embodiments are referenced, and specific terminology is used to describe them. The terminology used herein is intended to describe only specific embodiments and is not intended to limit the scope of the invention.

[0030] Referring together to Figures 3 and 4, the present invention relates to a mechanically adjustable, fully reconfigurable coaxial filter 20 based on a movable dielectric.

[0031] The fully reconfigurable coaxial filter 20 is Several coaxial resonant circuits 21, each mounted such that both opposing ends 21A and 21B can be coupled to corresponding tuners 22 and 23, Several first tuners 22 made of dielectric material, each slidably mounted on the first end 21A of the corresponding coaxial resonant circuit 21 so as to be movable relative to the first end 21A to form a dielectric of a capacitive load associated with the first end 21A of the corresponding coaxial resonant circuit 21, Several second tuners 23 made of dielectric material, which are slidably mounted on the first open end 21A and the opposite second end 21B of the corresponding coaxial resonant circuit 21, respectively, so as to be movable relative to the second end 21B to form a dielectric of a capacitive load associated with the second end 21B of the corresponding coaxial resonant circuit 21. It is equipped with.

[0032] The first and second tuners 22 and 23 are movable relative to the corresponding coaxial resonant circuit 21 to adjust the capacitive loads associated with the opposing ends 21A and 21B of the coaxial resonant circuit 21, and consequently the resonant frequency and mutual coupling coefficient of the coaxial resonant circuit 21.

[0033] In particular, the first and second tuners 22 and 23 are configured to move along a vertical line VD parallel to the Y-axis of the Cartesian reference system XYZ, either in the same or opposite direction relative to the coaxial resonant circuit 21, so as to change the values ​​of the capacitive loads at both ends 21A and 21B of the coaxial resonant circuit 21, in order to adjust the corresponding values ​​of the resonant frequency and mutual coupling coefficient of the coaxial resonant circuit 21.

[0034] According to one aspect of the present invention, the first and second tuners 22, 23 are designed to be coupled to an actuator configuration 40 that can operate to move the first and second tuners 22, 23 relative to the corresponding coaxial resonant circuit 21, either independently or in a single same direction or in opposing directions.

[0035] As shown in Figure 3, each coaxial resonant circuit 21 is positioned at a distance d'' from adjacent coaxial resonant circuits 21.

[0036] Furthermore, each coaxial resonant circuit 21 is a half-wavelength coaxial resonant circuit formed by two quarter-wavelength coaxial resonant circuits connected in series (hereinafter also referred to as upper and lower quarter-wave portions 21' and 21'', respectively), and at least one of the quarter-wavelength coaxial resonant circuits is electrically shielded from the quarter-wavelength coaxial resonant circuit of the adjacent coaxial resonant circuit 21. More specifically, according to one aspect of the present invention, the lower quarter-wave portion 21'' of each coaxial resonant circuit 21 is electrically shielded from the adjacent lower quarter-wave portion 21'' of the adjacent coaxial resonant circuit 21, and furthermore, the upper quarter-wave portion 21' of each resonant circuit 21 is electrically coupled to the adjacent upper quarter-wave portion 21' of the adjacent resonant circuit 21.

[0037] The upper and lower quarter-wave portions 21' and 21'' are coupled to each other to form a virtual short-circuit plane CVSC, the latter being parallel to the XZ plane of the Cartesian reference system XYZ. Thus, the upper quarter-wave portion 21' of each coaxial resonant circuit 21 extends above the virtual short-circuit plane CVSC and forms a corresponding capacitive load at the first end 21A with the corresponding first tuner 22, and the lower quarter-wave portion 21'' of each coaxial resonant circuit 21 extends below the virtual short-circuit plane CVSC and forms a corresponding capacitive load at the second end 21B with the corresponding second tuner 23.

[0038] According to one aspect of the present invention, the coaxial resonant circuit 21 is made of a metal, for example, an aluminum alloy, Kovar (i.e., nickel-cobalt-iron alloy), or Invar (i.e., nickel-iron alloy), and the choice of metal for the coaxial resonant circuit 21 depends on the mechanical and / or thermal requirements for the selected application.

[0039] The fully reconfigurable coaxial filter 20 further, A housing 41 that encloses a filter cavity 25 containing several coaxial resonant circuits 21, Several first through-openings 27' formed within the housing 41 for each first tuner 22, each first through-opening 27' formed at a position facing the corresponding first tuner 22 so as to allow the first tuner 22 to be coupled to the actuator assembly 40, Several second through-openings 27'' formed within the housing 41 for each second tuner 23, each second through-opening 27'' formed at a position facing the corresponding second tuner 23 so as to allow the second tuner 23 to be coupled to the actuator assembly 40. It is equipped with.

[0040] The fully reconfigurable coaxial filter 21, in particular the housing 41, further comprises several (two in Figure 3) combs 28 interposed between adjacent coaxial resonant circuits 21, more specifically, the combs 28 are configured to provide electrical shielding between adjacent resonant circuits 21, more specifically between adjacent coaxial resonant circuits 21, and more specifically between adjacent coaxial resonant circuits 21, while enabling electromagnetic coupling between the upper quarter-wave portions 21' of the adjacent coaxial resonant circuits 21.

[0041] The fully reconfigurable coaxial filter 20 further, An input port 26 is formed within the housing 41 and has a tapping line 29 coupled to the input coaxial resonant circuit 21, An output port (not shown in Figure 3, hereafter referred to by the same reference number as the input port 26, i.e., 26) is formed within the housing 41 and coupled to the output coaxial resonant circuit 21, and has a tapping line (not shown in Figure 3, hereafter referred to by the same reference number as the tapping line 29, i.e., 29) and It is equipped with.

[0042] More specifically, the input and output ports 26 are located below the virtual short-circuit plane CVSC of the input and output coaxial resonant circuit 21.

[0043] More specifically, according to one aspect of the present invention, the input and output coaxial resonant circuits 21 are the first and last coaxial resonant circuits 21 of several coaxial resonant circuits 21, and are therefore adjacent to the lateral wall surface of the housing 41 (i.e., the wall surface parallel to the Y-axis).

[0044] Furthermore, port 26, tapping line 29, and the corresponding coaxial resonant circuit 21 are magnetically coupled to each other. In addition, tapping line 29 is coupled to the lower quarter wave portion 21" of the corresponding coaxial resonant circuit 21, and the movement of the first and second tuners 22, 23 relative to the coaxial resonant circuit 21 along the vertical line VD also changes the vertical (i.e., along the Y axis) position of the virtual short-circuit plane CVSC, and therefore the value of the coupling coefficient between port 26 and the corresponding coaxial resonant circuit 21 changes with the vertical position of the virtual short-circuit plane CVSC. Furthermore, the change in the vertical position of the virtual short-circuit plane CVSC is associated with the change in the vertical position of the associated resonant electric field, which changes in accordance with the change in the vertical position of the virtual short-circuit plane CVSC.

[0045] Furthermore, note that each virtual short-circuit plane CVSC is defined by a corresponding line parallel to the X-axis of the Cartesian reference system XYZ.

[0046] Furthermore, the position of each virtual short-circuit plane CVSC along the Y-axis is controlled by the movement of the corresponding tuners 22, 23 when all reconfigurable coaxial filters 20 are used. More specifically, when used, the input coaxial resonant circuit 21 and input port 26 define a magnetic loop and are therefore coupled to each other, and the coupling between the input coaxial resonant circuit 21 and input port 26, and therefore the corresponding tapping line 29, is also defined as an input coupling. Similarly, when used, the output coaxial resonant circuit 21 and output port 26 define a magnetic loop and are therefore coupled to each other, thereby defining an output coupling between the output coaxial resonant circuit 21 and output port 26, and therefore the corresponding tapping line 29. According to one aspect of the present invention, by arranging the input port 26 and tapping line 29 below a virtual short-circuit plane CVSC, a change in the input coupling between the input coaxial resonant circuit 21 and the input port 26 is created by the displacement of the first and second tuners 22, 23 coupled to the input coaxial resonant circuit 21 and has the same sign as a change in the coupling between the input coaxial resonant circuit 21 and adjacent coaxial resonant circuits 21. According to one aspect of the present invention, this coherence with respect to changes in input coupling and changes in inter-resonant circuit coupling makes it possible to ensure appropriate adjustment of the filter bandwidth. In fact, according to the principles of filter logic, in order to increase (or decrease) the filter bandwidth of the fully reconfigurable coaxial filter 20, according to one aspect of the present invention, a change in the coherence (i.e., having the same sign) of all coupling coefficients, i.e., internal coupling and corresponding external coupling between coaxial resonant circuits 21, i.e., input coupling and output coupling, is required. More specifically, the considerations made for input coupling are also valid for output coupling.

[0047] Housing 41 further, Frame 24 and, The first and second covers 30 and 31 are coupled to the frame 24 on their opposing surfaces. It is equipped with.

[0048] More specifically, the coaxial resonant circuits 21 are arranged side-by-side within the frame 24 on a plane parallel to the first and second covers 30, 31 (i.e., each plane parallel to the XY plane), and are supported by the first and second covers 30, 31 via at least one support 32, in this embodiment the fully reconfigurable coaxial filter 20 comprises one support 32. Furthermore, as shown in Figure 4, the first and second tuners 22, 23 are positioned between the corresponding coaxial resonant circuits 21 and the first and second covers 30, 31.

[0049] Therefore, the first and second covers 30, 31, made of metal (e.g., aluminum alloy, Kovar or Invar), cover the coaxial resonant circuit 21, thereby physically shielding them from the external environment. As also shown in Figure 4, the pair of first tuners 22 and the pair of second tuners 23 are positioned between their respective coaxial resonant circuits 21 and the first and second covers 30, 31 (and thus along a direction parallel to the X-axis), so that the first and second tuners 22, 23 can slide along the vertical line VD between the corresponding coaxial resonant circuits 21 and the first and second covers 30, 31, thereby changing the value of the capacitive load and the coupling value between port 26 and the corresponding coaxial resonant circuit 21.

[0050] According to one aspect of the present invention, the first and second tuners 22, 23 are shaped to fill the gap between each coaxial resonant circuit 21 and the first and second covers 30, 31 along the variable length of the coaxial wire of each coaxial resonant circuit 21. That is, the first and second tuners 22, 23 move along the vertical line VD by a length appropriate to a particular application of the fully reconfigurable coaxial filter 20. More specifically, when the first and / or second tuners 22, 23 are positioned within the gap between each coaxial resonant circuit 21 and the covers 30, 31, the increasing termination of the associated coaxial wire of each coaxial resonant circuit 21 becomes dielectrically filled, reducing its characteristic impedance, thereby ensuring smooth and nearly linear adjustment of capacitive and inductive loads over a wide adjustment range.

[0051] Furthermore, the support 32 is made of a dielectric material, and each coaxial resonant circuit 21 is fixed to the first cover 30, that is, so that it does not move when the first and second tuners 22 and 23 are moved during use.

[0052] According to one aspect of the present invention, the fully reconfigurable coaxial filter 20 is suitable for high-power applications where it is necessary to transfer heat generated by resistive losses in the center of the conductor to the housing surrounding the latter. For this reason, the material forming the support 32 is selected to be suitable for such operation, and therefore the support 32 is made of AlN, for example, which is characterized by excellent thermal conductivity (about 170 W / mK) and fairly low dielectric loss. A more suitable material is Shapal Hi-M Soft®, for example, which is easier to machine and has lower thermal conductivity.

[0053] Furthermore, according to another aspect of the present invention, referring to Figure 4, the support 32 is centered relative to each coaxial resonant circuit 21, and thus the support 32 is placed substantially on the line defining the virtual short-circuit plane CVSC, and the electric field E is minimized. In this way, electrical losses inside the dielectric support can be minimized.

[0054] As noted above with reference to Figure 3, the coaxial resonant circuit 21 is a half-wavelength coaxial resonant circuit, and, referring to the conventional comb-line filter in Figure 2, each coaxial resonant circuit 21 of the fully reconfigurable coaxial filter 20 has a quarter-wavelength line (i.e., the lower quarter-wave portion 21") added that terminates as an open circuit at the second end 21B, thereby eliminating the short circuit located at the first end of each coaxial resonant circuit 11, i.e., the bottom end of each coaxial resonant circuit 11, in the comb-line configuration of Figure 2. Therefore, each coaxial resonant circuit 21 is longer than the corresponding coaxial resonant circuit 11 in Figure 2, and forms an open circuit at the second end 21B, however Thus, the quarter-wavelength line described above acts as an impedance inverter that converts an adjustable capacitive load to an adjustable inductive load placed in a virtual short-circuit plane CVSC, in the first approximation. Therefore, in principle, the configuration of Figure 3, which has half-wavelength coaxial resonant circuits mounted at both ends of a capacitive tuner (i.e., a variable capacitive load between the ends 21A, 21B and the tuners 22, 23), is equivalent to a comb-line coaxial resonant circuit, such as the one shown in Figure 2, where the bottom short circuit (i.e., the first end of the coaxial resonant circuit 11 in Figure 2) is replaced with an inductive tuner (i.e., the lower quarter-wave portion 21") of the coaxial resonant circuit 21).

[0055] As is evident from the previous paragraph, unlike the configuration shown in Figure 2, the tapping line 29 and the input and output ports 26 of the fully reconfigurable coaxial filter 20 in Figure 1 are moved and connected to the lower quarter-wave portion 21" of the input and output coaxial resonant circuit 21. This modified form therefore ensures a change in the coherence of all coupling coefficients as a result of a vertical translation of the virtual short-circuit plane of the coaxial resonant circuit 21.

[0056] Furthermore, according to one aspect of the present invention, coupling between adjacent coaxial resonant circuits 21 within a fully reconfigurable coaxial filter 20 requires only the upper quarter-wave portion 21' of the coaxial resonant circuit 21, while the lower quarter-wave portion 21'' of each coaxial resonant circuit 21 is electrically shielded from the adjacent coaxial resonant circuit 21.

[0057] The upper part of the fully reconfigurable coaxial filter 20 (i.e., the portion located above the virtual short-circuit plane CVSC) is very similar to the comb-line filter shown in Figure 2. The lower part of the fully reconfigurable coaxial filter 20 (i.e., the portion located below the virtual short-circuit plane CVSC) acts as a set of variable inductive loads that replace the fixed short circuit associated with the coaxial resonant circuit 11 of the comb-line filter shown in Figure 2.

[0058] During use, a mechanical actuator moves multiple first and second tuners 22, 23 along the vertical line VD in either the same or opposing direction. In either case, the vertical displacement of each of the first and second tuners 22, 23 allows for complete control of all relevant filter parameters (i.e., internal and external coupling coefficients and resonant frequencies), thereby achieving a superior electrical response (i.e., a response close to the ideal frequency response required for a fully reconfigurable coaxial filter 20 for space applications, for example) over a wide adjustment range for all relevant settings (i.e., center frequency and bandwidth). Thus, wide adjustability is achieved without sacrificing power handling, low insertion loss, and compactness, which are characteristic of fixed, non-reconfigurable coaxial filters such as those shown in Figure 2.

[0059] More specifically, in a first embodiment of the present invention (shown in Figure 3) in which the first and second tuners 22, 23 are moved in the same direction along the vertical line VD, i.e., from the upper wall surface to the bottom wall surface of the frame 24 as shown in Figure 3, the applicant has confirmed that the configuration of the fully reconfigurable coaxial filter 20 shown in Figures 3 and 4 allows for an increase in the capacitive load associated with the first end 21A and a decrease in the capacitive load associated with the second end 21B when used, thereby increasing the amplitude value of the corresponding coupling coefficient of each coaxial resonant circuit 21 while maintaining the resonant frequency value of each coaxial resonant circuit 21.

[0060] Therefore, the opposite change in the capacitive load applied to the two resonant circuit ends that maintain the resonant frequency is obtained by lowering the positions of the first and second tuners 22, 23 relative to their starting position (shown in Figure 4) along the vertical line VD (i.e., toward the bottom wall surface of the housing 41), more specifically, each first tuner 22 is configured to enter its respective first opening 27', and each second tuner 23 is configured to exit its respective second opening 27''.

[0061] Small relative changes in either the capacitance or inductive electromagnetic coupling values ​​produce a significant change in the total coupling. Thanks to this, the adjustment mechanism that characterizes this fully reconfigurable coaxial filter 20 provides an effective means of controlling the amplitude of the coupling coefficient.

[0062] Furthermore, the applicant noted that this change in capacitive load at the ends 21A and 21B of the coaxial resonant circuit 21 corresponds to a corresponding displacement in the opposite direction (i.e., upward, toward the upper wall surface of the housing 41) of the virtual short circuit associated with each coaxial resonant circuit 21, and that the displacement of the position of the virtual short circuit, i.e., the virtual short circuit plane CVSC, leads to an increase in input coupling due to the increased distance between the virtual short circuit associated with each coaxial resonant circuit 21 and the tapping point, i.e., the connection point between the input and output coaxial resonant circuits 21 and their respective tapping lines 29.

[0063] According to a second embodiment of the present invention, the first and second tuners 22, 23 are configured to move in opposite directions along a vertical line VD to increase both capacitive loads at the ends 21A, 21B of the coaxial resonant circuit 21, thereby changing the value of the resonant frequency while maintaining the amplitude value of the corresponding coupling coefficient of each coaxial resonant circuit 21. Thus, the applicant has verified that by making a change in the coherence of the capacitive loads (i.e., by moving the first and second tuners 22, 23 in opposite directions along a vertical line VD, thereby moving the first tuner 22 toward the bottom wall of the housing 41 and the second tuner 23 toward the top wall of the housing 41), the fully reconfigurable coaxial filter 20 makes it possible to change the resonant frequency of the coaxial resonant circuit 21 without affecting the amplitude of the coupling coefficient.

[0064] Within this fully reconfigurable coaxial filter 20, the superposition of two types of displacements (either in the same or opposite direction) of the first and second adjustable capacitive loads at the ends 21A and 21B of the coaxial resonant circuit 21 allows for complete control of the coupling coefficient and resonant frequency of the coaxial resonant circuit.

[0065] Furthermore, it should be noted that within any odd-order N symmetric inline filter obtained through the configurations shown in Figures 3 and 4, there are (N+1) / 2 independent coupling coefficients (one external coupling coefficient and (N-1) / 2 internal coupling coefficients). (N+1) / 2 is also the number of independently opposing changes in the capacitive load at the ends of each coaxial resonant circuit, ensuring complete control of the coupling coefficients associated with the inline filter.

[0066] Furthermore, within any odd-order N symmetric inline filter, there are (N+1) / 2 independent resonant frequencies. (N+1) / 2 is also the number of independent coherence changes of the capacitive load at the ends of each coaxial resonant circuit, thereby ensuring complete control of the coaxial resonant circuit frequency. Thus, considering the fully reconfigurable coaxial filter 20 described above, any odd-order symmetric coaxial filter offers complete tunability of all circuit parameters, namely all coupling coefficients (internal and external) and all resonant frequencies.

[0067] From the foregoing, the technical advantages and innovative characteristics of the present invention will be immediately apparent to those skilled in the art.

[0068] More specifically, the fully reconfigurable coaxial filter 20 offers complete adjustability of all circuit parameters, particularly the coupling coefficients (internal and external) and resonant frequency of the coaxial resonant circuit 21. Thanks to such complete control, the fully reconfigurable coaxial filter 20 is able to achieve excellent electrical response (i.e., a response close to the ideal response for the fully reconfigurable coaxial filter 20) to all relevant settings (i.e., center frequency and bandwidth) over a wide adjustment range. Such wide adjustability is achieved without sacrificing power handling, low insertion loss, and compactness, which are characteristic of fixed, non-reconfigurable coaxial filters.

[0069] In other words, the fully reconfigurable coaxial filter 20 offers a configuration characterized by wide adjustability of center frequency and bandwidth, high power handling, low insertion loss, and a small envelope, thereby making it suitable for meeting the demanding requirements imposed by the flexible payloads expected for next-generation navigation satellites.

[0070] Furthermore, this fully reconfigurable coaxial filter 20 also provides a configuration with relatively high power handling in terms of multi-pacion discharge, heat dissipation, and PIM (product of intermodulation) generation.

[0071] In conclusion, it is clear that many modifications and variations can be made to the present invention and that they fall within the scope of the invention as defined in the appended claims. [Explanation of symbols]

[0072] 20 Fully Reconfigurable Coaxial Filters 21 Coaxial resonant circuit 21A End, first end 21B End, second end 22 Tuners 23 Tuners 24 frames 25 Filter Cavity 26 ports, input ports, output ports 27' Through opening, first through opening 27" through opening, second through opening 29 Tapping lines 30 covers, 1st cover 31 Cover, 2nd Cover 32 Support 40 Actuator Component 41 Housing

Claims

1. Several coaxial resonant circuits (21) are each mounted such that both opposing ends (21A, 21B) can be coupled to corresponding tuners (22, 23), Several first tuners (22) made of dielectric material, each slidably mounted to the first end (21A) of the corresponding coaxial resonant circuit (21) so as to be movable relative to the first end (21A) in order to form a dielectric of a capacitive load associated with the first end (21A) of the corresponding coaxial resonant circuit (21), The present invention comprises several second tuners (23) made of dielectric material, each second tuner (23) slidably mounted on the second end (21B) of the corresponding coaxial resonant circuit (21), opposite to the first end (21A), so as to be movable relative to the second end (21B), in order to form a dielectric of a capacitive load associated with the second end (21B) of the corresponding coaxial resonant circuit (21), Each coaxial resonant circuit (21) is a half-wavelength coaxial resonant circuit formed by two quarter-wavelength coaxial resonant circuits (21', 21'') connected in series, and at least one of the quarter-wavelength coaxial resonant circuits is electrically shielded from the quarter-wavelength coaxial resonant circuit (21'') of the adjacent coaxial resonant circuit (21), in a fully reconfigurable coaxial filter (20), A fully reconfigurable coaxial filter (20) further comprising several combs (28) interposed between adjacent coaxial resonant circuits (21) and configured to provide electrical shielding between the quarter-wavelength coaxial resonant circuits (21") of adjacent coaxial resonant circuits (21"), wherein the first and second tuners (22, 23) are movable relative to the corresponding coaxial resonant circuits (21) to adjust the capacitive load associated with the opposing ends (21A, 21B) of the coaxial resonant circuits (21), thereby adjusting the resonant frequency and coupling coefficient of the coaxial resonant circuits (21).

2. The fully reconfigurable coaxial filter (20) according to claim 1, wherein the first and second tuners (22, 23) are designed to be coupled to an actuator configuration (40) that is operable to move the first and second tuners (22, 23) relative to the corresponding resonant circuit (21) in either one identical or opposing direction, independently or dependently.

3. A housing (41) that encloses a filter cavity (25) containing several coaxial resonant circuits (21), A number of first through-openings (27') formed within the housing (41) for each first tuner (22), each first through-opening (27') formed at a position facing the corresponding first tuner (22) so as to enable the first tuner (22) to be coupled to the actuator assembly (40), The fully reconfigurable coaxial filter (20) according to claim 2, further comprising several second through-openings (27") formed within the housing (41) for each second tuner (23), the second through-openings (27") being formed at positions facing the corresponding second tuner (23) so as to enable the second tuner (23) to be coupled to the actuator assembly (40).

4. An input port (26) is formed within the housing (41) and has a tapping line (29) coupled to the input coaxial resonant circuit (21), The housing (41) is formed within the output port (26) which has a tapping line (29) coupled to the output coaxial resonant circuit (21), The fully reconfigurable coaxial filter (20) according to claim 3, wherein the two series-connected quarter-wavelength coaxial resonant circuits (21', 21'') of each coaxial resonant circuit (21) are coupled to form a virtual short-circuit plane (CVSC), and the input and output ports (26) are located below the virtual short-circuit plane (CVSC) of the input and output coaxial resonant circuits (21).

5. The housing (41) further, Frame (24) and It comprises first and second covers (30, 31) which are coupled to the frame (24) on their opposing surfaces, The coaxial resonant circuit (21) is arranged side by side within the frame (24) on a plane parallel to the first and second covers (30, 31), and is supported by the first and second covers (30, 31) via at least one support (32). The fully reconfigurable coaxial filter (20) according to claim 3, wherein the first and second tuners (22, 23) are positioned between the corresponding coaxial resonant circuit (21) and the first and second covers (30, 31).

6. The fully reconfigurable coaxial filter (20) according to claim 5, wherein at least one support (32) is made of aluminum nitride.

7. A fully reconfigurable coaxial filter (20) according to claim 1, An assembly (20, 40) comprising an actuator configuration (40) coupled to the first and second tuners (22, 23) and operable to move the first and second tuners (22, 23) relative to the associated coaxial resonant circuit (21).

Citation Information

Patent Citations

  • Filters having resonators with negative coupling

    EP3667810A1

  • JP1981111507U

  • Filter

    JP1981119501A

  • Combinational structure of dielectric resonator

    JP1982181203A

  • Improvements in cavity filters

    JP2003514421A