The invention relates to a compression sleeve for securing a cable in a connector, the cable having a jacket below which an outer conductor is provided, the connector being formed by a connector body and a front nut, the compression sleeve having two sections, a first section or first end of which encloses a portion of the outer conductor whose surface is corrugated, and a second section or second end of which encloses the jacket enclosing the cable.
When transmitting HF signals through cables that are connected by connectors in which the center conductor and the outer conductor of the cable are stripped of insulation, it is very important that quite stable, electrical conditions prevail inside the connector. These electrical conditions must not change even when the cable is subjected to mechanical impacts, e.g. in the vicinity of the connector.
In particular, it is important that the outer conductor of the cable cannot move relative to the holding means that are present inside the connector. Such holding means may be a compression sleeve having two sections. The first section or first end of the compression sleeve encloses the outer conductor of the cable, while the second section or second end encloses the jacket of the cable. As a threaded front nut is screwed together with the connector body, the compression sleeve exerts a pressure against the cable.
In a prior art compression sleeve, the pressure is exerted against the cable jacket by projections arranged on the inner side of the second section or second end of the compression sleeve, which may have the unfortunate effect that the first section or first end of the compression sleeve does not obtain a sufficient grip around the outer conductor. This may mean that if the portion of the cable disposed near the connector is subjected to physical impacts, the compression sleeve may be disengaged partly from the outer conductor. This means that the electrical conditions change, causing wrong signal transmission through the cable.
Accordingly, an objection of the invention is to provide a compression sleeve where the above-mentioned drawbacks are remedied.
The object of the invention is achieved by a compression sleeve which is characterized in that the first section or first end of the compression sleeve is enclosed by a compression ring which, when the front nut is threaded together with the connector body, presses the first section or first end of the compression sleeve against the outer conductor of the cable.
This ensures a very firm and stable grip around the outer conductor which cannot be changed by physical impacts exerted against the portion of the cable which is disposed near the connector.
The first section or first end of the compression sleeve is configured as a coned or ramped surface and the transition between the first section or first end and the second section or second end is configured as a coned or ramped surface. When the compression ring is formed with a coned or ramped surface that adjoins the coned or ramped surface of the first section or first end, a great clamping force is achieved from the compression sleeve against both the cable jacket and the outer conductor.
To enhance the contact between the compression sleeve and the outer conductor of the cable, it is advantageous that the first section or first end of the compression sleeve have an inner, rounded portion that corresponds to the corrugated portion of the outer conductor. In other words, the entire inner surface of the first section or first end of the compression sleeve has the same geometry as the outer surface of the exposed outer conductor.
To ensure that the compression sleeve cannot slide axially relative to the outer conductor, it is advantageous that the coned or ramped surface at the first section or first end of the compression sleeve terminate by a projection defining a hole which has the same diameter as the hole in the free end of the exposed outer conductor.
Finally, it is expedient that the inner surface of the second section or second end of the compression sleeve is formed with a projection, which ensures damping of vibrations from the cable, when it is manipulated in the vicinity of the connector.
Referring to
The cable 1 has a jacket 2 which encloses an outer conductor 3 with corrugated portions 4, which in turn encloses the center conductor 5 of the cable, a dielectric (not shown) being provided between the center conductor 5 and the outer conductor 3.
When the front nut 11 and connector body 7 are screwed together, surface 13 of second section or second end 6 will engage a first surface on connector body 7. Projections 8 and 9 on the inner side of the second section or second end 6b of the compression sleeve 6 will exert a pressure against jacket 2 of cable 1, while a pressure will be exerted against the first section or first end 6a in an axial direction toward the outer conductor 3.
If the jacket 2 of cable 1 in the vicinity of the connector is subjected to mechanical impacts, this may cause the compression sleeve 6 in the first section or first end 6a to lose contact, which in turn means that the electrical characteristic of the cable 1 near the outer conductor 3 will be unstable at an engagement face 12 between the outer conductor 3 and the first section or first end 6a of the compression sleeve 6.
Referring now to
A compression ring 15 of metal is mounted externally on the first section or first end 14a, compression ring 15 having a compression ring passageway 27 which fits for engagement with the outer surface of the first section or first end 14a. At the end facing the second section or second end 14b of compression sleeve 14, the compression ring 15 has a coned or second compression ring ramped surface 17 which adjoins a coned or second compression sleeve ramped surface 23 on the second section or second end 14b.
At the opposite end of the second section, compression ring 15 has an additional coned or first compression ring ramped surface 21 which adjoins a coned or first compression sleeve ramped surface 20 of the first section or first end 14a of compression sleeve 14.
Referring to
It will now be explained how the cable 1 is inserted into the connector. The compression sleeve 14 with the compression ring 15 is pushed inwards over cable 1, so that the compression sleeve second section or second end 14b with an annular projection 22 encloses the cable jacket 2. Meanwhile, first section or first end 14a of compression sleeve 14 encloses outer conductor 3.
When the front nut 11 is screwed together with connector body 7, surface 16 of second section or second end 14b of compression sleeve engages a first surface 26 on connector body 7. Compression sleeve 14 applies pressure against the cable jacket 2 at annular projection 22 and at area 18, while the transitional opening 19 presses the first section or first end 14a of the compression sleeve 14 tightly against the outer conductor 3. Outer conductor 3 will thus be secured firmly and immovably in the connector.
While I have illustrated and described preferred embodiments of my invention, it is understood that this is capable of modifications, and I therefore do not wish to be limited to precise details set forth, but desire to avail myself of such changes and alterations as fall within the purview of the following claims.
Number | Date | Country | Kind |
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2006 00693 | May 2006 | DK | national |
Number | Name | Date | Kind |
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3963320 | Spinner | Jun 1976 | A |
5267877 | Scannelli et al. | Dec 1993 | A |
6939169 | Islam et al. | Sep 2005 | B2 |
Number | Date | Country |
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0599602 | Jun 1994 | EP |
Number | Date | Country | |
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20070270032 A1 | Nov 2007 | US |