IP Library › Granted Patent US 12,394,917
Granted Patent B2
US 12,394,917 · App. 17/795,990 · Granted Aug 19, 2025

Prefabricated electrical cable, plug connector assembly, and method and apparatus for manufacturing an electrical cable

Inventors: Martin Zebhauser (Laufen, DE); Thomas Miedl (Tittmoning, DE)
Assignee: Rosenberger Hochfrequenztechnik GmbH & Co. KG
H01R9/0518H01R13/521H01R24/40H01R2103/00
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Quick Facts
Patent No.
US 12,394,917
App. No.
17/795,990
Granted
Aug 19, 2025
Kind
B2
Abstract

A prefabricated electrical cable comprises an outer conductor shield and an insulation element. The insulation element has a first longitudinal section in which the insulation element is exposed from the outer conductor shield, and a second longitudinal section which adjoins the first longitudinal section and in which the insulation element is enclosed by the outer conductor shield. A cross-sectional area of the insulation element in the first longitudinal section is changed with respect to the cross-sectional area of the insulation element in the second longitudinal section in such a way that the first longitudinal section of the insulation element can be inserted into a first longitudinal section of an outer conductor contact element of an electrical plug connector, and the insulation element is calibrated to the outer conductor contact element.

Claims (41)

1. A plug connector assembly ( 100 ), comprising:

a prefabricated electrical cable ( 1 ); and

a plug connector ( 15 ) having an outer conductor contact element ( 14 ) that defines a first plug connector portion (S 1 ), and the plug connector ( 15 ) is connected to at least one cable end of the prefabricated electrical cable ( 1 ); and

the prefabricated electrical cable ( 1 ), has an outer conductor shield ( 5 ) and an insulation element ( 4 ), and wherein the insulation element ( 4 ) has a first longitudinal portion (L 1 ) in which the insulation element ( 4 ) is laid bare from the outer conductor shield ( 5 ), and

the insulation element ( 4 ) has a second longitudinal portion (L 2 ) which adjoins the first longitudinal portion (L 1 ) and in which the insulation element ( 4 ) is enclosed by the outer conductor shield ( 5 ), and wherein

a cross-sectional area of the insulation element ( 4 ) in the first longitudinal portion (L 1 ) is modified so that a diameter of the cross-sectional area of the insulation element ( 4 ) in the first longitudinal portion (L 1 ) is different from a diameter of the cross-sectional area of the insulation element ( 4 ) in the second longitudinal portion (L 2 ); and

the diameter of the cross-sectional area of the insulation element ( 4 ) in the first longitudinal portion (L 1 ) is calibrated to the outer conductor contact element ( 14 ) so that the modified first longitudinal portion (L 1 ) of the insulation element ( 4 ) may be inserted into the first plug connector portion (S 1 ); and wherein

the modified cross-sectional area of the insulation element ( 4 ) may be Inserted into the first plug connector portion(S) without an intervening layer of air.

2. The plug connector assembly ( 100 ) as claimed in claim 1 and wherein an external diameter of the second longitudinal portion (L 2 ) of the Insulation element ( 4 ) differs from an internal diameter of the first plug connector portion (S 1 ) of the outer conductor contact element ( 14 ).

3. The plug connector assembly ( 100 ) as claimed in claim 1 and wherein within the first longitudinal portion (L 1 ) and the first plug connector portion (S 1 ) a region between the outer conductor contact element ( 14 ) and an inner conductor ( 3 ) of the prefabricated electrical cable ( 1 ) is completely filled by the insulation element ( 4 ).

4. The plug connector assembly ( 100 ) as claimed in claim 1 and wherein the insulation element ( 4 ) defines a circumferential groove ( 11 ) in a transition between the first longitudinal portion (L 1 ) and the second longitudinal portion (L 2 ).

5. The plug connector assembly ( 100 ) as claimed in claim 1 and wherein the cross-sectional area of the insulation element ( 4 ) in the entire first longitudinal portion (L 1 ) is constant, and is reduced in size in relation to the cross-sectional area of the insulation element ( 4 ) in the second longitudinal portion (L 2 ).

6. The plug connector assembly ( 100 ) as claimed in claim 1 and wherein an external diameter of the insulation element ( 4 ) along the entire first longitudinal portion (L 1 ) is constant and is reduced in diameter in relation to an external diameter of the insulation element ( 4 ) in the second longitudinal portion (L 2 ).

7. The plug connector assembly ( 100 ) as claimed in claim 1 and wherein at least one recess ( 18 ), is configured on a circumference of the insulation element ( 4 ), said at least one recess ( 18 ) in the longitudinal direction extending across the entire first longitudinal portion (L 1 ).

8. The plug connector assembly ( 100 ) as claimed in claim 1 and wherein an external diameter of the insulation element ( 4 ) in the entire first longitudinal portion (L 1 ) is constant and is enlarged in diameter in relation to an external diameter of the insulation element ( 4 ) in the second longitudinal portion (L 2 ).

9. The plug connector assembly ( 100 ) as claimed in claim 1 and wherein the outer conductor contact element ( 14 ) of the plug connector ( 15 ), has at least one insulating element ( 17 ) for compensation of a change in impedance between the first longitudinal portion (L 1 ) and the second longitudinal portion (L 2 ) and the at least one dielectric is situated in a second plug connector portion (S 2 ) that adjoins the first plug connector portion (S 1 ).

10. A method for fabricating an electrical cable ( 1 ) comprising the steps:

providing an electrical cable ( 1 ) that has an insulation element ( 4 ) in a first longitudinal portion (L 1 ) and in an adjoining second longitudinal portion (L 2 );

laying bare the insulation element ( 4 ) from an outer conductor shield ( 5 ) of the electrical cable ( 1 ) in the first longitudinal portion (L 1 );

modifying a cross-sectional area of the laid bare insulation element ( 4 ) in the first longitudinal portion (L 1 ) so that a diameter of the modified cross-sectional area of the insulation element ( 4 ) in the first longitudinal portion (L 1 ) is different from a diameter of the cross-sectional area of the insulation element ( 4 ) in the adjoining second longitudinal portion (L 2 ); and

providing a plug connector ( 15 ) that has an outer conductor contact element ( 14 ) that defines a first plug connector portion (S 1 ); and

calibrating the diameter of the modified cross-sectional area of the first longitudinal portion (L 1 ) of the insulation element ( 4 ) to the outer conductor contact element ( 14 ) so that the first longitudinal portion (L 1 ) of the insulation element ( 4 ) is insertable into the first plug connector portion (S 1 ); and

inserting the modified cross-sectional area of the first longitudinal portion (L 1 ) of the insulation element ( 4 ) into the first plug connector portion (S 1 ) of the outer conductor contact element ( 14 ) of the plug connector ( 15 ); and

inserting a cable end of the electrical cable ( 1 ) into the outer conductor contact element ( 14 ) of the plug connector ( 15 ); and

connecting the inserted electrical cable ( 1 ) to the outer conductor contact element ( 14 ); and wherein

the modified cross-sectional area of the insulation element ( 4 ) may be inserted into the first plug connector portion(S)) without an intervening layer of air.

11. The method for fabricating an electrical cable ( 1 ) as claimed in claim 10 , and wherein the modification of the cross-sectional area in the first longitudinal portion (L 1 ) takes place by means of compressing the first longitudinal portion (L 1 ).

12. The method for fabricating an electrical cable ( 1 ) as claimed in claim 10 and wherein the modification of the cross-sectional area in the first longitudinal portion (L 1 ) takes place by means of swaging the first longitudinal portion (L 1 ) in a forming process, preferably in a stamping or hot-stamping process.

13. The method for fabricating an electrical cable ( 1 ) as claimed in claim 10 and wherein the modification of the cross-sectional area in the first longitudinal portion (L 1 ) of the insulation element ( 4 ) is by means of a separation tool ( 23 ) that scores the insulation element ( 4 ) in a radial direction, and whereupon the separation tool ( 23 ) while in the radial cutting position is moved axially relative to the insulation element ( 4 ), and in a direction toward the cable end, so as to peel away an insulation layer ( 25 ) from the insulation element ( 4 ).

14. The method for fabricating an electrical cable ( 1 ) as claimed in claim 13 and wherein the separation tool ( 23 ) has at least one shaped knife ( 24 ) that is adapted to the shape of the provided cross-sectional area of the first longitudinal portion (L 1 ) and actuatable toward the insulation element ( 4 ).

15. The method for fabricating an electrical cable ( 1 ) as claimed in claim 10 and wherein the insulation material ( 4 ), at least in the first longitudinal portion (L 1 ), is heated immediately prior to and/or during the modification of the cross-sectional area.

16. The method for fabricating an electrical cable ( 1 ) as claimed in claim 13 and wherein the separation tool ( 23 ) is heated, preferably to an operating temperature between approximately 50° C. and 250° C.

17. The method for fabricating an electrical cable ( 1 ) as claimed in claim 10 and wherein in parallel to the modification of the cross-sectional area in the first longitudinal portion (L 1 ), a sharp-edged web ( 10 ) of a stamping installation ( 8 ) is scored into the insulation element ( 4 ) in a preferably fully circumferential groove ( 11 ) in a transition between the first longitudinal portion (L 1 ) and the second longitudinal portion (L 2 ).

18. The method for fabricating an electrical cable ( 1 ) as claimed in claim 10 and wherein the modification of the cross-sectional area in the first longitudinal portion (L 1 ) takes place by means of a separation process, preferably by a laser, photon, electron or ion beam, or a water jet.

19. The method for fabricating an electrical cable ( 1 ) as claimed in claim 15 and wherein the separation tool ( 23 ) has at least two shaped knifes ( 24 ) that are adapted to the shape of the provided cross-sectional area of the first longitudinal portion (L 1 ) of the insulation element ( 4 ) and the two shaped knives ( 24 ) are actuatable toward one another.

20. The method for fabricating an electrical cable ( 1 ) as claimed in claim 13 and wherein the separation tool ( 23 ) is heated, preferably to an operating temperature between approximately between 170° C. and 200° C.

21. An apparatus for fabrication of an electrical cable ( 1 ), comprising:

a processing installation ( 21 ) for modifying a cross-sectional area of the electrical cable ( 1 ) in a first longitudinal portion (L 1 ) of an insulation element ( 4 ) of the electrical cable ( 1 ) that has been laid bare from an outer conductor shield ( 5 ); and

a joining installation ( 20 ) for inserting the electrical cable ( 1 ) into an outer conductor contact element ( 14 ) of a plug connector ( 15 ); and wherein,

the processing installation ( 21 ) modifies a cross-sectional area of the insulation element ( 4 ) of the electrical cable ( 1 ) in the first longitudinal portion (L 1 ) in such a manner that the first longitudinal portion (L 1 ) is insertable into a first plug connector portion (S 1 ) of the outer conductor contact element ( 14 ); and wherein

the first longitudinal portion (L 1 ) the insulation element ( 4 ) is calibrated to the outer conductor contact element ( 14 ).

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 20, 2022
From: ZEBHAUSER, MARTIN; MIEDL, THOMAS
To: ROSENBERGER HOCHFREQUENZTECHNIK GMBH & CO. KG
Reel/Frame 062161/0736 →
Priority Claims (1)
DE 10 2020 102 059.7 · Jan 29, 2020 · national
Continuity (1)
Related Publication 20230268676A1 · Aug 24, 2023
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