The invention relates to coaxial filters having a frame construction.
Filters are used in telecommunications and high-frequency technology whenever only particular frequency components of a signal are to be processed further. As well as high-pass or low-pass filters, there are also band-pass or band-stop filters. Filters may be implemented digitally and may also be constructed using discrete components. The filters may be constructed on a conductor plate or be formed as coaxial filters in the form of milled or cast cavity structures. Filters of a coaxial construction are mostly produced in a pressure casting method, the fine tuning being possible by means of tuning elements which can additionally be screwed in.
A filter of this type is known for example from DE 10 2004 010 683 B3. However, a filter of this type has the drawback that the construction volume, in particular the height, is large. This leads to problems in some fields of application.
Therefore, the object of the present invention is to provide a coaxial filter having a frame construction in which the ratio of power to construction volume is improved. It should also be possible to construct this filter in as simple and cost-effective a manner as possible.
The object is achieved in accordance with independent claim 1. The dependent claims contain advantageous developments.
The coaxial filter according to the invention having a frame construction comprises at least one filter frame, which consists of an electrically conductive medium and has a receiving space, the receiving space being arranged inside the at least one electrically conductive filter frame. Further, a cover arrangement is provided, which is arranged on two opposing faces of the at least one filter frame, in such a way that the receiving space is at least predominantly closed on all sides. Exceptions may occur for example in the region of the connection sockets. At least one first resonator internal conductor is arranged in the receiving space. The at least one first resonator internal conductor is galvanically connected to a face of the at least one electrically conductive filter frame, and extends therefrom in the direction of another, in particular opposing face of the electrically conductive filter frame, and ends at a distance from the opposing face of the electrically conductive filter frame and/or is galvanically separated from the opposing face of the electrically conductive filter frame.
It is particularly advantageous that the coaxial filter is constructed in a frame construction, resulting in a very low construction height being achieved. This means that it is possible to see through the high-frequency filter in a plan view thereof when the cover arrangement is removed. The coaxial filter can be produced by casting, in particular by (aluminium or zinc) (pressure) casting. A coaxial filter of this type may be used in particular for powers of 5 to 20 watts. The power may also be lower or higher. The filter frame is preferably formed integrally with the separating web and the resonator internal conductors. A construction in a plurality of parts could also be possible. The resonator internal conductors of the filter frame could also be produced from plastics material, which would thus have to be provided with an electrically conductive layer.
In a development of the coaxial filter according to the invention, it comprises at least one electrically conductive separating web, which originates on a first face of the at least one filter frame and is galvanically conductively connected to said frame, and protrudes into the receiving space, and extends in the direction of a second face of the at least one filter frame where it ends so as to form an opening therewith, causing the receiving space to be divided into at least one first and at least one second receiving chamber and the opening connecting the two receiving chambers. The at least one first resonator internal conductor is arranged in the at least one first receiving chamber of the receiving space. The at least one first resonator internal conductor is galvanically connected either to a third face of the at least one electrically conductive filter frame or to a first face of the electrically conductive separating web, and extends therefrom either in the direction of the separating web or in the direction of the filter frame, and ends at a distance from the separating web or filter frame and is galvanically separated therefrom. The same also applies to a second resonator internal conductor, which is arranged in the second receiving chamber of the receiving space.
The coaxial filter comprises in particular a first coupling-in and/or coupling-out device and/or at least a second coupling-in and/or coupling-out device, which, from the outside, preferably via the first face of the at least one filter frame, enters the first or second receiving chamber, where it establishes predominantly capacitive or predominantly inductive coupling to the associated first or second resonator internal conductor. It is also possible for a third coupling-in and/or coupling-out device to be arranged opposing the first or second coupling-in and/or coupling-out device, this preferably being arranged on the second face, which is opposite the first face. This can thus establish predominantly capacitive or predominantly inductive coupling to a first resonator internal conductor and/or a second resonator internal conductor in the first or second receiving chamber, the resonator internal conductor being arranged in the associated receiving chamber closest to the third coupling-in and/or coupling-out device. The third coupling-in and/or coupling-out device preferably passes through the opening. The coupling-in and/or coupling-out devices may also be arranged on the third or fourth face.
In a development of the coaxial filter according to the invention, one end of the at least one first resonator internal conductor, which end is not galvanically connected to the filter frame or to the at least one separating web, comprises an extension portion in the direction of the first and/or second face of the filter frame, resulting in the at least one first resonator internal conductor being formed L-shaped or T-shaped in a plan view. This extension portion preferably extends exclusively parallel to the third or fourth face of the filter frame or parallel to the separating web. It could also extend at an inclination to the third or fourth face of the filter frame. The same also applies to the at least one second resonator internal conductor. This may also comprise an extension portion of this type. As a result, the electrically effective length of the associated resonator internal conductor is increased. At the same time, the capacitive coupling between the resonator internal conductor may also be extended towards the filter frame or the separating web via the extension portion.
The extension portions of all of the first resonator internal conductors or all of the second resonator internal conductors can thus all point in the same direction. They can also be orientated differently from one another.
So as to increase the inductive coupling between two adjacent resonator internal conductors, they can be galvanically connected via a coupling web. This coupling web may be arranged at a distance both from the filter frame and from the separating web. However, it should be arranged on the end of the resonator internal conductors at which they are galvanically connected to the filter frame and the separating web. The coupling web could also be galvanically connected to the filter frame or the separating web at the face thereof facing the filter frame or the separating web.
In a development of the coaxial filter according to the invention, at least one capacitive and/or inductive coupling is provided between two resonator internal conductors which are non-adjacent or not consecutive on the signal transmission path. Coupling of this type is preferably provided in the spacing region between the resonator internal conductors and the cover arrangement. An inductive coupling between the two resonator internal conductors is spaced apart from the other resonator internal conductors (positioned below) and from the cover arrangement. A capacitive coupling is spaced apart from all of the resonator internal conductors and from the cover arrangement. The capacitive coupling preferably has a larger area at the resonator internal conductors which are to be coupled than at the other resonator internal conductors.
In another development of the coaxial filter according to the invention, it comprises a plurality of filter frames which are arranged above one another. The cover arrangement closes off the outer filter frame from the outside and comprises at least one intermediate cover. In each case, at least one intermediate cover is arranged between every two filter frames and separates them from one another. However, the intermediate cover comprises at least one coupling opening, through which coupling between at least two resonator internal conductors of different filter frames is provided. As a result, cascading can be provided or the individual filter paths can be extended.
Various embodiments of the invention are described in the following by way of example with reference to the drawings. Like subjects have like reference numerals. In the corresponding drawings, in detail:
The cover arrangement (not shown) closes the open ends, in other words the opposing wide faces of the at least one filter frame 2. In
The first outer cover 22 is positioned on the upwards-facing or forwards-facing face 2a of the filter frame 2. It is galvanically connected to the filter frame 2. The second outer cover 23 is positioned on the downwards-facing or rearwards-facing face 2b of the filter frame 2 and is galvanically connected thereto. The two faces 2a and 2b extend mutually parallel.
The separating web 4 preferably has the same height H as the filter frame 2. This means that both the first outer cover 22 and the second outer cover 23 are positioned on the filter frame 2 and on the separating web 4 and are galvanically connected to both. They are preferably positioned over the entire first and second face 2a, 2b of the filter frame 2 or over the entire length of the separating web 4. The same also applies to the intermediate cover 20, which is shown in
In
The coaxial filter 1 of
The resonator internal conductors 7a, 7b preferably have a smaller height H than the filter frame 2. This means that the outer covers 22, 23 and if applicable the intermediate cover 20 of the cover arrangement are spaced apart from the resonator internal conductors 7a, 7b and not positioned thereon.
The first face 5a of the filter frame 2 extends parallel to the second face 5b of the filter frame 2. The third face 5c of the filter frame 2 extends parallel to the fourth face 5d of the filter frame 2. The third and fourth face 5c, 5d of the filter frame 2 extend perpendicular to the first and second face 5a, 5b of the filter frame 2.
In
In this regard, reference is made to
Preferably, the at least one first resonator internal conductor 7a is arranged in the at least one first receiving chamber 3a of the receiving space 3, whilst the at least one second resonator internal conductor 7b is arranged in the at least one second receiving chamber 3b of the receiving space 3.
Further, the resonator internal conductor 7a, 7b, the at least one separating web 4 and the corresponding filter frame 2 are formed integrally. Production is preferably by casting, in particular pressure casting, such as aluminium pressure casting. However, it would also be possible for the coaxial filter 1 according to the invention to be produced by a milling process.
The coaxial filter 1 of
It would also be conceivable for some of the first and second resonator internal conductors 7a, 7b to be connected alternately to the corresponding face of the filter frame 2 or of the separating web 4.
The coaxial filter 1 further comprises a first coupling-in and/or coupling-out device 8a, which is arranged on the first face 5a of the at least one filter frame 2 and establishes predominantly capacitive or predominantly inductive coupling to the first resonator internal conductor 7a arranged closest to the first face 5a in the first receiving chamber 3a.
The coaxial filter 1 further comprises at least one second coupling-in and/or coupling-out device 8b, which is arranged on the first face 5a of the at least one filter frame 2 and establishes predominantly capacitive or predominantly inductive coupling to the second resonator internal conductor 7b arranged closest to the first face 5a in the second receiving chamber 3b. Each coupling-in and/or coupling-out device 8a, 8b is preferably directly coupled exclusively to only one resonator internal conductor 7a, 7b.
In
In
The at least one separating web 4 extends eccentrically in particular if the coaxial filter also has m further separating webs 4, where m 1, which subdivide the receiving chamber 3 into m further receiving chambers 3a, 3b, the m further receiving chambers 3a, 3b comprising at least one further resonator internal conductor 7a, 7b each. In this case, them further separating webs 4 may be galvanically conductively connected alternately to the first and second face 5a, 5b of the at least one filter frame 2, resulting in the individual receiving chambers 3a, 3b being interconnected in a meander shape. As a result, the length of the filter path can be increased. The further separating webs 4 may also all be galvanically conductively connected to the at least one filter frame 2 on the first face 5a thereof, and protrude into the receiving space 3, and extend in the direction of the second face 5b, where they end so as to form an opening 6 thereon. In this case, there are a plurality of filter paths, preferably each filter path comprising its own coupling-in and/or coupling-out device 8a, 8b which is arranged on the first face 5a of the filter frame 2.
Just like the at least one second resonator internal conductor 7b, the at least one first resonator internal conductor 7a is individually connected to the filter frame 2 or the separating web 4 at one point. This one point is referred to as a foot point. The at least one first resonator internal conductor 7a is therefore not connected to the cover arrangement, just like the at least one second resonator internal conductor 7b. This means that the at least one first resonator internal conductor 7a and the at least one second resonator internal conductor 7b have a smaller height than the filter frame 2, resulting in them being spaced apart from the cover arrangement by a predetermined amount. This distance is preferably less than the actual thickness of the resonator internal conductor 7a, 7b. This preferably applies to all of the resonator internal conductors 7a, 7b.
In
So as to increase the electrically effective length of the resonator internal conductors 7a, 7b, in
In
The extension portions 9a, 9b preferably extend perpendicularly away from the associated resonator internal conductors 7a, 7b.
The extension portions 9a, 9b are preferably as wide as the associated resonator internal conductor 7a, 7b. They may also be narrower or wider.
The extension portions 9a, 9b are preferably shorter than the associated resonator internal conductor 7a, 7b. They are preferably shorter than the associated resonator internal conductor 7a, 7b by more than half. However, they could also be longer, i.e. the ones which face themselves through the opening 6.
The ends of the extension portions 9a, 9b of the resonator internal conductors 7a, 7b closest to the second face 5b of the filter frame can protrude beyond the end of the at least one separating web 4. The two extension portions 9a, 9b of the two resonator internal conductors 7a, 7b therefore protrude beyond the opening 6 in direct visual contact with one another, causing coupling to be achieved. However, a direct visual contact is not needed. If there is not direct visual contact the coupling is weaker.
At least one, preferably all, of the extension portions 9a, 9b extend exclusively parallel to the third or fourth face 5c, 5d of the filter frame 2. They could also extend at an inclination to the third or fourth face 5c, 5d of the filter frame 2. The two ends of a resonator internal conductor 7a, 7b are preferably equally thick and preferably spaced equally far apart from the covers enclosing them of the cover arrangement.
The distances between the individual resonator internal conductors 7a of a receiving chamber 3a are preferably equally large. The same also applies to the distances between the second resonator internal conductors 7b in the second receiving chamber 3b. The distances between the individual resonator internal conductors 7a, 7b may also be varied.
In
The same also applies to the extension portions 9b of the second resonator internal conductor 7b. In
The first and second coupling webs 10a, 10b are attached to the side faces of the adjacent first and second resonator internal conductors 7a, 7b , which are arranged parallel to the first and second face 5a, 5b of the filter frame 2. The coupling webs 10a, 10b are preferably attached in the first half of the length of the resonator internal conductors 7a, 7b. The first half starts from the foot point of the resonator internal conductor 7a, 7b.
To adjust the coupling between two adjacent resonator internal conductors 7a, 7b, separating screens or separating walls 11a, 11b are used.
Likewise, a second separating screen 11a (also referred to as a second separating wall) is formed, which is arranged between two adjacent second resonator internal conductors 7b. The same statements apply thereto as to the first separating screen 11a.
The separating screens 11a, 11b are preferably the same height as the separating web 4 and the filter frame 2. When a cover arrangement is placed on, they preferably contact the cover arrangement. They are therefore preferably galvanically connected, on the opposing faces thereof, to the associated cover arrangement which is placed on (for example outer cover 22, 23 or intermediate cover 20).
The separating screens 11a, 11b may also consist of two parts, the two parts converging towards the centre from two opposing faces 5c, 4a and ending so as to form a gap with respect to one another. The two parts are therefore preferably positioned diametrically opposite one another. The separating screens 11a, 11b and the separating web 4 or filter frame 2 are preferably formed integrally.
In
In
In
The coupling element 15 is preferably arranged in equal parts in the first and in the second receiving chamber 3a, 3b. The coupling faces 15a, 15b each face in the same direction, and preferably in the direction in which the extension portions 9a, 9b are also directed. In
In
The cover arrangement (not shown) closes off the outer filter frame 2 at one face. The cover arrangement further comprises at least n-1 intermediate covers 20. At least one of the intermediate covers 20 is arranged between every two filter frames 2. The at least one intermediate cover 20 comprises at least one coupling opening 18, through which coupling between at least two resonator internal conductors 7a, 7b of different filter frames 2 is provided.
Thus, the filter path can be extended in a very simple manner, whilst the coaxial filter 1 is simultaneously of a compact construction. Different filter paths can thus also be combined with one another.
For this purpose, the resonator internal conductors 7a, 7b comprise, on the end at which they are galvanically separated from the filter frame 2 or separating web 4, a recess which is preferably circle-sector-shaped in a plan view and into which the tuning element 19 extends. This recess which is circle-sector-shaped in a plan view may also continue in the filter frame 2, as shown in
The tuning elements 19 may also be arranged alongside the extension portion 9aor 9b of the associated resonator internal conductor 7a, 7b.
For the coaxial filer 1 having a frame construction, the following facts also apply.
A surface of the at least one first and/or second resonator internal conductor 7a, 7b, which extends parallel to the cover arrangement, in other words to the outer covers 22, 23, is larger than the largest side face of the at least one first and/or second resonator internal conductor 7a, 7b, which extends transverse, preferably perpendicular, to the cover arrangement, in other words to the outer covers 22, 23. In
A cross section and a longitudinal section through the at least one first and/or second resonator internal conductor 7a, 7b is preferably polygonal, in particular rectangular or square.
A surface of the at least one first and/or second separating screen 11a, 11b which extends parallel to the cover arrangement, in other words to the outer covers 22, 23, is smaller than the largest or smallest side face of the at least one first and/or second separating screen 11a, 11b which extends transverse, preferably perpendicular, to the cover arrangement, in other words to the outer covers 22, 23, In
Two directly adjacent first and/or second resonator internal conductors 7a, 7b which are arranged in the same receiving chamber 3a, 3b preferably have visual contact with one another. Preferably, a receiving chamber 3a, 3b comprises at least two resonator internal conductors 7a, 7b. Separating devices within the associated receiving chamber 3a, 3b, such as separating screens 11a, 11b, do not extend over the entire width of the associated receiving chamber 3a, 3b. The width is defined for example by the at least one separating web 4 with respect to the third face 5c or the fourth face 5d of the filter frame 2. As a result, (direct) coupling of two resonator internal conductors 7a, 7b in the same receiving chamber 3a, 3b is possible, even if this coupling is weaker when a separating screen 11a, 11b is used than without one.
The invention is not limited to the embodiments described. Within the scope of the invention, all described and/or illustrated features can be combined with one another as desired.
Number | Date | Country | Kind |
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10 2016 104 608.6 | Mar 2016 | DE | national |