High-frequency conductor system with cable-bound RF bushing
10439263 · 2019-10-08
Assignee
Inventors
Cpc classification
International classification
Abstract
A high-frequency conductor system has a high-frequency housing which comprises a housing base, a housing cover which is at a distance from the housing base, and a housing wall which runs circumferentially between the housing base and the housing cover, as a result of which an accommodation space is formed. At least one cable-bound RF bushing is arranged within the accommodation space. The cable-bound RF bushing is electrically isolated from the high-frequency housing. A capacitive coupling element is arranged on at least one part of the circumference of the cable-bound RF bushing and is electrically connected to said cable-bound RF bushing. The capacitive coupling element has two end sides which are oriented transverse or perpendicular to the propagation direction of the cable-bound RF bushing. A first coupling web is electrically connected to the high-frequency housing and is arranged at a distance from the end side in order to generate a capacitive coupling.
Claims
1. A high-frequency conductor system with at least one cable-bound RF bushing, comprising: a high-frequency housing which comprises a housing base, a housing cover which is at a distance from the housing base, and a housing wall which extends peripherally between the housing base and the housing cover to form an accommodation space; the at least one cable-bound RF bushing being arranged within the accommodation space of the high-frequency housing; the at least one cable-bound RF bushing being galvanically separated from the high-frequency housing; at least one capacitive coupling element arranged on at least part of a periphery of the at least one cable-bound RF bushing, the at least one capacitive coupling element being galvanically connected to the at least one cable-bound RF bushing; the at least one capacitive coupling element comprising two opposing end faces which are oriented transversely or perpendicularly to a propagation direction of the at least one cable-bound RF bushing; at least one first coupling web galvanically connected to the high-frequency housing and projecting into the accommodation space at least in part; the at least one first coupling web being arranged at a distance from at least one first part of at least one of the two opposing end faces of the at least one capacitive coupling element in order to generate a capacitive coupling between the at least one cable-bound RF bushing and the high-frequency housing via at least one of the two opposing end faces; a second coupling web arranged spaced apart from the first coupling web in the propagation direction of the at least one cable-bound RF bushing, a first coupling chamber being formed between the first and second coupling webs; at least a first part of the capacitive coupling element projecting into the first coupling chamber between the first and second coupling webs; and a third coupling web and a fourth coupling web, which project into the accommodation space and are arranged on a) a housing wall portion opposing a housing wall portion on which the first coupling chamber comprising the first and second coupling webs is arranged, and/or b) the housing base or the housing cover; a second coupling chamber being formed between the third and fourth coupling webs; at least a second part of the capacitive coupling element projecting into the second coupling chamber between the third and the fourth coupling webs.
2. The high-frequency conductor system according to claim 1, wherein: the high-frequency housing defines at least one opening; a tuning element is insertable or inserted through the at least one opening; and the at least one tuning element is arranged radially or at an angle to a peripheral side face of the at least one capacitive coupling element.
3. The high-frequency conductor system according to claim 1, further comprising: at least one connector, which enables electrical contacting of the at least one cable-bound RF bushing from outside the high-frequency housing; wherein the at least one cable-bound RF bushing is supported by the at least one connector and held in position within the accommodation space at a distance from the high-frequency housing.
4. The high-frequency conductor system according to claim 1, wherein: at least one or all of the first, second, third and fourth coupling webs are formed integrally with the housing base and/or the housing wall and are a part thereof.
5. The high-frequency conductor system according to claim 1, wherein: the housing base and/or the housing wall defines at least one recess; the at least one recess is formed in a region of a peripheral side face of the at least one capacitive coupling element, reducing a capacitive coupling between the peripheral side face of the at least one capacitive coupling element and the high-frequency housing.
6. A high-frequency conductor system for use with a cable-bound RF bushing having a periphery and a propagation direction, the high-frequency conductor system comprising: a high-frequency housing comprising a housing base, a housing cover disposed at a distance from the housing base, and a housing wall which extends peripherally between the housing base and the housing cover, the high-frequency housing providing an accommodation space therein; the high frequency housing being structured to accommodate the cable-bound RF bushing within the accommodation space without galvanically contacting the cable-bound RF bushing; a capacitive coupling element structured to be disposed on at least part of a periphery of the cable-bound RF bushing and to galvanically connect to the cable-bound RF bushing; the capacitive coupling element comprising plural opposing end faces oriented transversely or perpendicularly to the propagation direction of the cable-bound RF bushing; and a coupling web galvanically connected to the high-frequency housing and at least in part projecting into the accommodation space; the coupling web being arranged at a distance from at least one of the plural opposing end faces to thereby provide capacitive coupling between the high-frequency housing and the cable-bound RF bushing; wherein capacitive coupling between the plural opposing end faces and the coupling web provides more than 50% of total capacitive coupling between the capacitive coupling element and the high-frequency housing.
7. The high-frequency conductor system according to claim 6, wherein: the coupling web is formed integrally with the housing base and/or the housing wall and is a part thereof.
8. The high-frequency conductor system according to claim 6, wherein: the housing base and/or the housing wall define at least one recess in a region of a peripheral side face of the capacitive coupling element, the recess reducing capacitive coupling between the peripheral side face and the high-frequency housing.
9. A high-frequency conductor system with at least one cable-bound RF bushing, comprising: a high-frequency housing which comprises a housing base, a housing cover which is at a distance from the housing base, and a housing wall which extends peripherally between the housing base and the housing cover to form an accommodation space; the at least one cable-bound RF bushing being arranged within the accommodation space of the high-frequency housing; the at least one cable-bound RF bushing being galvanically separated from the high-frequency housing; at least one capacitive coupling element arranged on at least part of a periphery of the at least one cable-bound RF bushing, the at least one capacitive coupling element being galvanically connected to the at least one cable-bound RF bushing; the at least one capacitive coupling element comprising opposing end faces which are oriented transversely or perpendicularly to a propagation direction of the at least one cable-bound RF bushing; and at least one capacitive coupling web galvanically connected to the high-frequency housing and projecting into the accommodation space at least in part; the at least one capacitive coupling web being arranged at a distance from at least one part of at least one of the opposing end faces of the at least one capacitive coupling element in order to generate a capacitive coupling between the at least one cable-bound RF bushing and the high-frequency housing via at least one of the opposing end faces; wherein the at least one capacitive coupling element comprises a plurality of capacitive coupling elements arranged axially spaced apart on at least part of the periphery of the at least one cable-bound RF bushing; and wherein the at least one capacitive coupling web is arranged on one or both end faces of the plurality of capacitive coupling elements to generate a capacitive coupling between the at least one cable-bound RF bushing and the high-frequency housing via at least one of the end faces.
10. The high-frequency conductor system according to claim 9, further comprising: at least one holding and positioning web, which projects at least in part into the accommodation space and is passed through by an accommodation opening over an entire thickness thereof in the propagation direction of the at least one cable-bound RF bushing; the accommodation opening being further accessible at least in a lateral direction transverse to the propagation direction over an entire thickness of the holding and positioning web; wherein the cable-bound RF bushing is mounted within the accommodation opening on the at least one holding and positioning web.
11. The high-frequency conductor system according to claim 10, wherein: an insulating medium is also arranged between the at least one cable-bound RF bushing and the at least one holding and positioning web, the insulating medium galvanically separating the holding and positioning web and the at least one cable-bound RF bushing.
12. The high-frequency conductor system according to claim 11, wherein the insulating medium comprises: (a) a dielectric layer at least on a part of the holding and positioning web on which the at least one cable-bound RF bushing is mounted; and/or (b) a dielectric layer at least on a part of the at least one cable-bound RF bushing which is mounted on the holding and positioning web; and/or (c) an insulating sleeve, which radially encloses the at least one cable-bound RF bushing at least in part in a region in which the at least one cable-bound RF bushing is mounted on the holding and positioning web.
13. The high-frequency conductor system according to claim 11, wherein: the insulating medium comprises an insulating sleeve, which radially encloses the at least one cable-bound RF bushing at least in part in a region in which the at least one cable-bound RF bushing is mounted on the holding and positioning web; and the insulating sleeve: (i) has an accommodation slit over an entire length thereof, into which the at least one cable-bound RF bushing is inserted; or (ii) consists of two sleeve halves which are movably interconnected on one face and in which the at least one cable-bound RF bushing is arranged, the two sleeve halves being clamped, clipped, screwed and/or glued to one another on another face thereof.
14. The high-frequency conductor system according to claim 13, wherein: the insulating sleeve has at least one coding projection and/or at least one coding opening at least on part of a periphery thereof, which engages with at least one coding opening and/or at least one coding projection on the holding and positioning web.
15. The high-frequency conductor system according to claim 13, wherein: the insulating sleeve has end faces and peripheral side faces, the end faces extending transversely or perpendicularly to the propagation direction, at least portions of the peripheral side faces being engaged with the holding and positioning web.
16. The high-frequency conductor system according to claim 13, further comprising: a) a positioning element protruding beyond a cross section of the at least one cable-bound RF bushing is also arranged on the at least one cable-bound RF bushing, the insulating sleeve being positioned on the positioning element so as to be undisplaceable or only displaceable to a limited extent in the propagation direction of the at least one cable-bound RF bushing; or b) two positioning elements protruding beyond a cross section of the at least one cable-bound RF bushing are arranged on the at least one cable-bound RF bushing, the insulating sleeve being arranged between the two positioning elements so as to be undisplaceable or only displaceable to a limited extent in the propagation direction of the at least one cable-bound RF bushing.
17. The high-frequency conductor system according to claim 16, wherein: a) the positioning element(s) is/are formed integrally with the at least one cable-bound RF bushing and is a part thereof; and/or b) the positioning element(s) is/are in the form of a positioning tab and only extend over part of the periphery of the at least one cable-bound RF bushing, or c) the positioning element(s) extend over the entire periphery of the at least one cable-bound RF bushing.
18. The high-frequency conductor system according to claim 16 wherein: the at least one capacitive coupling element and/or the insulating sleeve and/or the positioning element(s) are connected centrally or eccentrically to the at least one cable-bound RF bushing.
19. The high-frequency conductor system according to claim 16 wherein a cross-sectional shape of the at least one insulating sleeve and/or of the at least one capacitive coupling element and/or of the positioning element(s) corresponds or approximates in a plan view to a square; or a rectangle; or an oval; or a circle; or a regular or irregular n-gon.
20. The high-frequency conductor system according to claim 10, wherein: the accommodation opening within the holding and positioning web widens, conically, in a direction transverse to the propagation direction over the entire thickness in the direction of the high-frequency housing; and/or the holding and positioning web is formed integrally on the housing wall and/or on the housing base or on the housing cover; and/or the holding and positioning web projects sufficiently far into the accommodation space that the at least one cable-bound RF bushing is mounted centered in the accommodation space.
Description
(1) 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 detail, in the corresponding drawings:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12) In the prior art according to
(13) For this purpose, the high-frequency conductor system 1 further comprises at least one holding and positioning web 11, which projects at least in part into the accommodation space 10 and is passed through over the entire thickness thereof in the propagation direction 12 of the cable-bound RF bushing 3 by an accommodation opening 13. The accommodation opening 13 through which the RF bushing 3 extends is further accessible over the entire thickness, in other words over the entire width of the holding and positioning web 11, at least in a lateral direction transverse to the propagation direction 12.
(14) The cable-bound RF bushing 3 is mounted on the at least one holding and positioning web 11 within the accommodation opening 13. In this embodiment, when the housing cover 70 is open, the cable-bound RF bushing 3 can be inserted from above in the direction of the housing base 7, being kept at a distance from the housing base 7 and from both housing walls 8, 9 by the holding and positioning web 11. The holding and positioning web 11 is preferably formed integrally on the housing wall 8, 9 and/or on the housing base 7. However, the holding and positioning web 11 may also consist of a separate element, which can preferably be fixed to the housing wall 8, 9 and/or to the housing base 7 or even to the housing cover 70 by means of a screw connection. In this case, the holding and positioning web 11 may for example consist of plastics material or comprise a plastics material core which is coated with a preferably electrically conductive medium.
(15) The holding and positioning web 11 projects sufficiently far into the accommodation space 10 that the cable-bound RF bushing 3 is arranged centred within the accommodation space 10. This means that it has approximately the same minimum distance from the housing walls 8, 9, the housing base 7 and the housing cover 70. However, the distance from the housing walls 8, 9, the housing base 7 and the housing cover 70 can be freely determined and may be different depending on the application.
(16) Preferably, a further insulating medium 14 is arranged between the cable-bound RF bushing 3 and the at least one holding and positioning web 11, meaning that the holding and positioning web 11 and the cable-bound RF bushing 3 are galvanically separated from one another. If the holding and positioning web 11 consists of a dielectric, a separate insulating medium 14 can be dispensed with.
(17) The insulating medium 14 may be in the form of a dielectric layer on at least part of the holding and positioning web 11, the cable-bound RF bushing 3 being mounted on this part. Alternatively or additionally, it is also possible for the insulating medium 14 to be in the form of a dielectric layer on at least the part of the cable-bound RF bushing 3 which is mounted on the holding and positioning web 11. A dielectric layer of this type could for example consist of a shrink-on tube which is applied to the RF bushing 3.
(18) Preferably, however, the insulating medium 14 is formed as an insulating sleeve 14, as is also shown in
(19) In the embodiment of
(20) In this context, preferably more than 30%, more preferably more than 40%, more preferably more than 50% of the peripheral side faces of the insulating sleeve 14 are engaged with the holding and positioning web 11.
(21) Preferably, at least one positioning element 15 is further additionally arranged on the cable-bound RF bushing 3. The at least one positioning element 15 preferably protrudes beyond the cross section of the cable-bound RF bushing 3. The diameter of the cable-bound RF bushing 3 therefore increases in the region in which the at least one positioning element 15 is arranged. Preferably, the at least one positioning element 15 is formed integrally with the cable-bound RF bushing 3 or is a part thereof. The cable-bound RF bushing 3 is preferably manufactured as a turned part. This means that the at least one positioning element 15 is already arranged on the cable-bound RF bushing 3 when the cable-bound RF bushing 3 is connected, preferably clamped, to the insulating sleeve 14. The at least one positioning element 15 results in a simplified mounting process, because it is visually clear where the insulating sleeve 14 is to be mounted. In addition, it is also ensured that the insulating sleeve 14 cannot be displaced in or counter to the propagation direction 12, in other words in the extension direction of the cable-bound RF bushing 3. The at least one positioning element 15 therefore acts as a stop limit.
(22) So as to prevent displacement of the insulating sleeve 14 in both propagation directions of the RF bushing 3 and further to simplify the mounting, two positioning elements 15 are preferably attached to the points on the RF bushing 3 between which the insulating sleeve 14 is inserted in the subsequent mounting process. The two positioning elements 15 are spaced sufficiently far apart in the propagation direction 12, in other words in the extension direction of the RF bushing 3, that the insulating sleeve 14 is placed on adjacent thereto, and preferably that each end face of the insulating sleeve is positioned against one positioning element 15.
(23) The high-frequency conductor system 1 comprises at least one capacitive coupling element 20, which is arranged on at least part of the periphery of the cable-bound RF bushing 3. The at least one capacitive coupling element 20 is galvanically connected to the cable-bound RF bushing 3. The at least one capacitive coupling element 20 comprises two end faces 21.sub.1, 21.sub.2, which are oriented transverse or perpendicular to the propagation direction 12, in other words to the extension direction of the cable-bound RF bushing 3, in other words extend transverse or perpendicular thereto.
(24) For cooperation with this at least one capacitive coupling element 20, the high-frequency conductor system 1 further provides at least one first coupling web 22.sub.1, which is galvanically connected to the high-frequency housing 2. This at least one first coupling web 22.sub.1 projects at least in part into the accommodation space 10. The at least one first coupling web 22.sub.1 is arranged at a distance from at least a first part of an end face 21.sub.1 of the capacitive coupling element 20. In this context, the aim of the invention is that the capacitive coupling between the capacitive coupling element 20 and the high-frequency housing 2 takes place predominantly via the end faces 21.sub.1, 21.sub.2 of the capacitive coupling element 20. These end faces 21.sub.1, 21.sub.2 can preferably be manufactured planar, in other words flat, thus only having a component extending perpendicular to the propagation direction 12. Capacitive couplings at rounded points are more difficult to reproduce, even if these rounded points are manufactured in a turning process.
(25)
(26) The second coupling web 22.sub.2 is arranged at a distance from the first coupling web 22.sub.1 in the propagation direction 12. A first coupling chamber 23.sub.1 is formed between the two coupling webs 22.sub.1, 22.sub.2. A first part of the capacitive coupling element 20 projects into this first coupling chamber 23.sub.1.
(27) The statements made for the first and second coupling webs 22.sub.1, 22.sub.2 also apply to the third and fourth coupling webs 22.sub.3, 22.sub.4.
(28) So as to be able to reduce capacitive coupling of a peripheral side face 26 to the high-frequency housing 2 insofar as possible, at least one recess 24 is formed in the housing base 7 and/or in one or both of the housing walls 8, 9. This increases the space filled with a dielectric, preferably with air, between the peripheral side face 26 of the capacitive coupling element 20 and the high-frequency housing 2, reducing the capacitive coupling via the peripheral side face 26.
(29) Preferably, the at least one first coupling web 22.sub.1 and also the further coupling webs 22.sub.2, 22.sub.3, 22.sub.4 are formed integrally with the housing base 7 and/or with the housing wall 8, 9 and/or are part thereof.
(30) Preferably, the high-frequency conductor system 1 is made of aluminium. The accommodation space 10 is preferably created by a milling process, the coupling webs 22.sub.1, 22.sub.2, 22.sub.3, 22.sub.4 and/or the holding and positioning web 11 being left behind in this case.
(31) It is also possible for the coupling webs 22.sub.1, 22.sub.2, 22.sub.3, 22.sub.4 to be manufactured separately and for example to be rigidly connected to the high-frequency housing 2 via a screw connection. The coupling webs 22.sub.1, 22.sub.2, 22.sub.3, 22.sub.4 preferably consist of a metal, but may also consist of a dielectric which has been coated at least in part with an electrically conductive layer.
(32) The coupling webs 22.sub.1, 22.sub.2, 22.sub.3, 22.sub.4 may be of a height which extends from the housing base 7 to the housing cover 70. The height therefore corresponds to the height of the housing walls 8, 9.
(33) Because the coupling webs 22.sub.1, 22.sub.2, 22.sub.3, 22.sub.4 are required for manufacturing a capacitive coupling which has to have a value which can be precisely calculated in advance, the coupling webs 22.sub.1, 22.sub.2, 22.sub.3, 22.sub.4 may differ from one another in whole or in part both in height and in width. Referring to
(34)
(35)
(36)
(37) The insulating sleeve 14 is in the form of a dumbbell. The at least one holding and positioning web 11 comprises the accommodation opening 13 which passes through it completely in the propagation direction 12. This accommodation opening 13 is further accessible over the entire thickness of the holding and positioning web 11 at least in a lateral direction transverse to the propagation direction 12. This means that the holding and positioning web 11 extends further than the insulating sleeve 14 held thereby in the direction of the housing cover. The holding and positioning web 11 therefore has for example a U-shaped form or a peak-trough-peak form, the insulating sleeve 14 being arranged in the trough or closer to in the trough than to on the peak.
(38) The insulating sleeve 14, shown here in a longitudinal section, in other words in the propagation direction 12, has regions of increased diameter and regions of reduced diameter. The holding and positioning element 11 engages in the region of reduced diameter. However, the insulating sleeve 11 could also being configured precisely the other way around, in such a way that the region of increased diameter engages in a recess in the holding and positioning web 11.
(39) Further, the integral formation of the capacitive coupling element 20 together with the cable-bound RF bushing 3 is also shown. The capacitive coupling element 20 is arranged at a distance from the housing base 7. The propagation of the capacitive coupling element 20 in the direction of the housing base 7 is preferably of a length shorter than the total of the length of the holding and positioning web 11 plus the radius of the insulating sleeve 14.
(40) The opening 25 for receiving the tuning element passes preferably perpendicularly through the housing cover 70, in such a way that the tuning element can be or is introduced into the accommodation space 10 perpendicular to the propagation direction 12.
(41)
(42)
(43) The accommodation opening 13 of the holding and positioning web 11 increases in cross section in the direction of the high-frequency housing 2. This increase is preferably conical or parabolic. By way of this accommodation opening 13, which is accessible over the entire thickness of the holding and positioning web 11 in the lateral direction transverse to the propagation direction 12, the insulating sleeve 14 can be inserted together with the cable-bound RF bushing 3.
(44)
(45) Instead of an accommodation slit 40 which is accessible over the entire length of the insulating sleeve 14 in a lateral direction transverse to the propagation direction 12, the insulating sleeve 14 may also be constructed in such a way that it for example consists of two sleeve halves which are movably interconnected on one face and in which the cable-bound RF bushing 3 is arranged, the two sleeve halves being clamped, clipped, screwed or glued to one another on the other face thereof.
(46) This insulating sleeve 14, which in this case too has the shape of a dumbbell in cross section, has regions of a larger diameter and regions of a smaller diameter. In general, it can be said that the insulating sleeve 14 has at least one coding projection 50 and/or at least one coding opening 51 at least on part of the periphery thereof, which engages with at least one coding opening 52 and/or at least one coding projection 53 on the holding and positioning web 11.
(47) Considered in cross section, the insulating sleeve 14 is preferably engaged with the holding and positioning web 11 over a region greater than 90, preferably greater than 120, preferably greater than 150, preferably greater than 180.
(48) The coding projection 50 and/or the coding opening 51 may be formed over the entire length of the insulating sleeve 14.
(49) The positioning element 15, of which preferably two, spaced apart from one another, are formed on the cable-bound RF bushing in an integral formation therewith, acts as a stop limit for the insulating sleeve 14 in the propagation direction 12. The positioning element 15 has a smaller length and preferably a smaller diameter than the insulating sleeve 14. It is shown that the positioning element 15 extends over the entire periphery of the cable-bound RF bushing 3. However, it is also possible for the at least one positioning element 15 to be in the form of a positioning tab and thus only to extend over part of the periphery of the cable-bound RF bushing 3. However, this can no longer be manufactured solely by a milling process.
(50) The insulating sleeve 14 preferably consists of plastics material or a rubber.
(51) The insulating sleeve 14 and/or the at least one positioning element 15 are connected centrally or eccentrically to the cable-bound RF bushing 3.
(52)
(53) Like the first and second coupling webs 22.sub.1, 22.sub.2, the third and fourth coupling webs 22.sub.3, 22.sub.4 are arranged spaced apart on a housing wall 9. A second coupling chamber 22.sub.2 is formed between the third and fourth coupling webs 22.sub.3, 22.sub.4. This second coupling chamber may be enlarged by a recess 24. The recess 24 may also extend into the housing base 7. By way of a recess 24 of this type in the housing base 7, the first coupling chamber 23.sub.1 and the second coupling chamber 23.sub.2 are also further interconnected. Just as the first coupling webs 22.sub.1, 22.sub.2 are arranged on the housing base 7 and/or on a housing wall 8, the third or fourth coupling webs 22.sub.3, 22.sub.4 are arranged symmetrically with respect thereto on the housing base 7 or a housing wall 9. Preferably, the third housing web 22.sub.3 is arranged on a housing wall 8, 9 opposing the housing wall 8, 9 on which the first coupling web 22.sub.1 of the first coupling chamber 23.sub.1 is arranged. The same applies to the fourth coupling web 22.sub.4 and the second coupling web 22.sub.2. However, it is also possible for the third coupling web 22.sub.3 to be arranged on the housing base 7 or on the housing cover 70 (not shown until
(54) The RF bushing 3 may also have a kink or curve, causing the propagation direction 12 to change at this point.
(55)
(56)
(57) The cable-bound RF bushing 3 is supported by the at least one connector 4.sub.1, 4.sub.2, and held in position at a distance from the high-frequency housing 2 within the accommodation space 10. The RF bushing 3 may be held solely by the at least one connector 4.sub.1, 4.sub.2, as shown in