CONTACT ELEMENT
20190305458 ยท 2019-10-03
Assignee
Inventors
- Tom Kufner (Riehen, CH)
- Philipp Alexander Strehler (Basel, CH)
- Fabian Hilti (Ziefen, CH)
- Lucas Wirz (Basel, CH)
Cpc classification
H01R43/04
ELECTRICITY
H01R13/15
ELECTRICITY
H01R13/2457
ELECTRICITY
International classification
Abstract
A contact element (1) for establishing electric contact between two contact pieces comprises a support grip (2) extending in a longitudinal direction (L) as well as a plurality of contact parts (5,5a, 5b), each of which has a first contact section (6) for contacting one of the two contact pieces (K1, K2), a second contact section (7) for contacting the other one of the two contact pieces (K2, K1), and a fastening section (8) for securing the contact part (5, 5a, 5b) to the support strip (2) at a fastening point (3). Each contact part (5, 5a, 5b) comprises at least one plastically deformable connection element (50) for securing the contact part (5, 5a 5b) to the support strip (2). The at least one connection element (50) forms an integral part of the contact part (5, 5a, 5b).
Claims
1.-18. (canceled)
19. A contact element for establishing electrical contact between two contact pieces, comprising a carrier strip that extends in a longitudinal direction and a plurality of contact parts each having at least one first contact section for making contact with one of the two contact pieces, at least one second contact section for making contact with the other of the two contact pieces, and also having at least one fastening section for fastening the contact part to a fastening spot at the carrier strip, wherein each contact part comprises at least one plastically deformable connecting element for fastening the contact part to the carrier strip, wherein the at least one connecting element is an integral constituent part of the contact part and wherein the at least one connecting element has a shaft that protrudes away from the at least one fastening section and that is guided through a fastening opening in the carrier strip, wherein the shaft is plastically deformed in a forming process in such a way that the shaft forms a mechanically fixed connection with the carrier strip.
20. The contact element according to claim 19, wherein the mechanically fixed connection is a force-fitting connection and/or an interlocking connection and/or a cohesive connection.
21. The contact element according to claim 19, wherein the at least one connecting element is formed in one piece with the contact part by means of the fastening section, in particular wherein the at least one connecting element is formed from the fastening section.
22. The contact element according to claim 19, wherein the at least one connecting element is formed in one piece with the contact part by means of the fastening section, in particular wherein the at least one connecting element is formed from the fastening section and wherein the at least one connecting element is pressed out of the fastening section by means of a stamping process or a punch-through process.
23. The contact element according to claim 19, wherein the at least one connecting element is formed in one piece with the contact part by means of the fastening section, in particular wherein the at least one connecting element is formed from the fastening section and wherein the at least one connecting element is pressed out of the fastening section by means of a stamping process or a punch-through process and wherein the fastening section comprises an indentation opposite the connecting element, wherein the volume of the indentation corresponds substantially to the volume of the connecting element that has been pressed out.
24. The contact element according to claim 19, wherein the shaft, from the side of the carrier strip on which the contact parts are arranged, extends substantially completely through the fastening opening, and wherein the shaft is plastically deformed on that side of the carrier strip that is situated opposite the contact part.
25. The contact element according to claim 19, wherein, for the purpose of mechanical connection, the shaft is pushed against the wall of the fastening opening owing to the forming process.
26. The contact element according to claim 19, wherein for the purpose of mechanical connection, the connecting element, by way of its shaft, protrudes beyond the carrier strip before the plastic forming, and wherein a head section is formed at the protruding end of the shaft by the forming process, the dimension of said head section transverse to the shaft axis being larger than the cross section of the fastening opening.
27. The contact element according to claim 19, wherein for the purpose of mechanical connection, the shaft is pressed against the wall of the fastening opening owing to the forming process, and wherein, for the purpose of mechanical connection, the connecting element, by way of its shaft, protrudes beyond the carrier strip before the plastic forming, and wherein a head section is formed at the protruding end of the shaft owing to the forming process, the dimension of said head section transverse to the shaft axis being larger than the cross section of the fastening opening.
28. The contact element according to claim 19, wherein the shaft is deformed over its entire cross section with respect to the protruding part; or wherein the shaft is selectively deformed at different subregions of its cross section.
29. The contact element according to claim 19, wherein the shaft that protrudes away from the fastening section has, in the undeformed state, a length that corresponds at least to the thickness of the carrier strip and/or that corresponds at most to the thickness, in particular to half the thickness, of the fastening section.
30. The contact element according to claim 19, wherein there are precisely two connecting elements or more than two connecting elements for each contact part.
31. The contact element according to claim 19, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than or equal to the dimension in a second transverse axis that lies transverse to the shaft axis and to the first transverse axis.
32. The contact element according to claim 19, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than or equal to the dimension in a second transverse axis that lies transverse to the shaft axis and to the first transverse axis and wherein the forming is round or polygonal.
33. The contact element according to claim 19, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than or equal to the dimension in a second transverse axis that lies transverse to the shaft axis and to the first transverse axis and wherein the first transverse axis is oriented in a manner angularly inclined at an angle in relation to the longitudinal direction of the carrier strip; or wherein the first transverse axis is at a right angle in relation to the longitudinal axis.
34. The contact element according to claim 19, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than the dimension in a second transverse axis that lies transverse to the shaft axis and transverse to the first transverse axis, wherein the shaft is selectively deformed at various subregions of its cross section.
35. The contact element according to claim 19, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than the dimension in a second transverse axis that lies transverse to the shaft axis and transverse to the first transverse axis, wherein the shaft is selectively deformed at various subregions of its cross section and wherein the shaft is deformed at at least two subregions or exactly two subregions that are situated opposite one another with respect to the second transverse axis.
36. The contact element according to claim 19, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than the dimension in a second transverse axis that lies transverse to the shaft axis and transverse to the first transverse axis, wherein the shaft is selectively deformed at various subregions of its cross section and wherein the forming is round or polygonal.
37. The contact element according to claim 19, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than the dimension in a second transverse axis that lies transverse to the shaft axis and transverse to the first transverse axis, wherein the shaft is selectively deformed at various subregions of its cross section and wherein the first transverse axis is oriented in a manner angularly inclined at an angle in relation to the longitudinal direction of the carrier strip; or wherein the first transverse axis is at a right angle in relation to the longitudinal axis.
38. The contact element according to claim 19, wherein the at least one connecting element has a round cross section or a cross section that complements an elongate hole or an n-gonal cross section or a polygonal cross section; and/or wherein the at least one connecting element has a full cross section or a hollow cross section.
39. A contact element for establishing an electrical contact between two contact pieces, comprising a carrier strip that extends in a longitudinal direction and a plurality of contact parts each having at least one first contact section for making contact with one of the two contact pieces, at least one second contact section for making contact with the other of the two contact pieces, and also having at least one fastening section for fastening the contact part at a fastening spot at the carrier strip, wherein each contact part comprises at least one plastically deformable connecting element for fastening the contact part to the carrier strip, wherein the at least one connecting element is fixedly arranged at the contact part before the plastic forming and before the connection to the carrier strip, and wherein the at least one connecting element has a shaft that protrudes away from the fastening section and that is guided through a fastening opening in the carrier strip, wherein the shaft is plastically deformed in a forming process in such a way that the shaft forms a mechanically fixed connection, in particular a force-fitting connection and/or an interlocking connection, with the carrier strip.
40. The contact element according to claim 39, wherein the at least one connecting element, by way of the shaft, protrudes through an opening in the fastening section and is fixedly fastened to the fastening section, wherein the fastening is established in an interlocking manner and/or a force-fitting manner and/or a cohesive manner.
41. The contact element according to claim 39, wherein the shaft, from the side of the carrier strip on which the contact parts are arranged, extends substantially completely through the fastening opening, and wherein the shaft is plastically deformed on that side of the carrier strip that is situated opposite the contact part.
42. The contact element according to claim 39, wherein, for the purpose of mechanical connection, the shaft is pushed against the wall of the fastening opening owing to the forming process.
43. The contact element according to claim 39, wherein for the purpose of mechanical connection, the connecting element, by way of its shaft, protrudes beyond the carrier strip before the plastic forming, and wherein a head section is formed at the protruding end of the shaft by the forming process, the dimension of said head section transverse to the shaft axis being larger than the cross section of the fastening opening.
44. The contact element according to claim 39, wherein for the purpose of mechanical connection, the shaft is pressed against the wall of the fastening opening owing to the forming process, and wherein, for the purpose of mechanical connection, the connecting element, by way of its shaft, protrudes beyond the carrier strip before the plastic forming, and wherein a head section is formed at the protruding end of the shaft owing to the forming process, the dimension of said head section transverse to the shaft axis being larger than the cross section of the fastening opening.
45. The contact element according to claim 39, wherein the shaft is deformed over its entire cross section with respect to the protruding part; or wherein the shaft is selectively deformed at different subregions of its cross section.
46. The contact element according to claim 39, wherein the shaft that protrudes away from the fastening section has, in the undeformed state, a length that corresponds at least to the thickness of the carrier strip and/or that corresponds at most to the thickness, in particular to half the thickness, of the fastening section.
47. The contact element according to claim 39, wherein there are precisely two connecting elements or more than two connecting elements for each contact part.
48. The contact element according to claim 39, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than or equal to the dimension in a second transverse axis that lies transverse to the shaft axis and to the first transverse axis.
49. The contact element according to claim 39, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than or equal to the dimension in a second transverse axis that lies transverse to the shaft axis and to the first transverse axis and wherein the forming is round or polygonal.
50. The contact element according to claim 39, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than or equal to the dimension in a second transverse axis that lies transverse to the shaft axis and to the first transverse axis and wherein the first transverse axis is oriented in a manner angularly inclined at an angle in relation to the longitudinal direction of the carrier strip; or wherein the first transverse axis is at a right angle in relation to the longitudinal axis.
51. The contact element according to claim 39, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than the dimension in a second transverse axis that lies transverse to the shaft axis and transverse to the first transverse axis, wherein the shaft is selectively deformed at various subregions of its cross section.
52. The contact element according to claim 39, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than the dimension in a second transverse axis that lies transverse to the shaft axis and transverse to the first transverse axis, wherein the shaft is selectively deformed at various subregions of its cross section and wherein the shaft is deformed at at least two subregions or exactly two subregions that are situated opposite one another with respect to the second transverse axis.
53. The contact element according to claim 39, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than the dimension in a second transverse axis that lies transverse to the shaft axis and transverse to the first transverse axis, wherein the shaft is selectively deformed at various subregions of its cross section and wherein the forming is round or polygonal.
54. The contact element according to claim 39, wherein the connecting element extends along a shaft axis as seen from the fastening section, wherein the dimension in a first transverse axis, which lies transverse to the shaft axis, is larger than the dimension in a second transverse axis that lies transverse to the shaft axis and transverse to the first transverse axis, wherein the shaft is selectively deformed at various subregions of its cross section and wherein the first transverse axis is oriented in a manner angularly inclined at an angle in relation to the longitudinal direction of the carrier strip; or wherein the first transverse axis is at a right angle in relation to the longitudinal axis.
55. The contact element according to claim 39, wherein the at least one connecting element has a round cross section or a cross section that complements an elongate hole or an n-gonal cross section or a polygonal cross section; and/or wherein the at least one connecting element has a full cross section or a hollow cross section.
56. A method for producing a contact element as claimed in claim 19, wherein the method comprises the steps of a) providing the carrier strip; b) providing the contact parts; and c) connecting the contact parts to the carrier strip, and d) plastically deforming the shaft of the at least one connecting element, wherein the step of providing the contact parts comprises forming the connecting element from the contact part or fixedly fastening the connecting element to the contact part.
57. A method for producing a contact element as claimed in claim 39, wherein the method comprises the steps of a) providing the carrier strip; b) providing the contact parts; and c) connecting the contact parts to the carrier strip, and d) plastically deforming the shaft of the at least one connecting element, wherein the step of providing the contact parts comprises forming the connecting element from the contact part or fixedly fastening the connecting element to the contact part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0056] Preferred embodiments of the invention will be described below on the basis of the drawings, which serve merely for explanation and are not to be interpreted as being restrictive. The drawings show:
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[0059]
[0060]
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DESCRIPTION OF PREFERRED EMBODIMENTS
[0072] The figures show various embodiments of a contact element 1 according to the invention. In this case, the contact element 1 establishes electrical contact between a first contact piece and a second contact piece. To this end, the contact element 1 makes contact with a contact face of one contact piece and with a contact face of the other contact piece. Owing to its resilient properties that will be described in greater detail in the text that follows, the contact element is always pressed against the two contact faces of the contact pieces in the contact position.
[0073] According to all of the embodiments, the contact element 1 for establishing electrical contact between the two contact pieces comprises a carrier strip 2 that extends in the longitudinal direction L and a plurality of contact parts 5, 5a, 5b that are connected to the carrier strip 2. The carrier strip 2 serves to support the contact parts 5 and not to establish electrical contact, whereas the contact parts 5 are provided for establishing electrical contact. In
[0074] As will be discussed further below, the carrier strip 2 can be of flexible or rigid design in its longitudinal direction L.
[0075] The contact parts 5 each comprise a first contact section 6 for making contact with one of the two contact pieces, a second contact section 7 for making contact with the other of the two contact pieces, and also a fastening section 8 for fastening the contact part 5 to a fastening spot 3 of the carrier strip 2.
[0076] Each of the contact parts comprises at least one connecting element 50 for fastening the contact part 5, 5a, 5b to the carrier strip 2. The connecting element 50 is provided on the fastening section 8.
[0077] In all of the embodiments shown, the at least one connecting element 50 is an integral constituent part of the contact part 5, 5a, 5b. That is to say, the at least one connecting element 50 is formed in one piece with the contact part 5, 5a, 5b. The contact part 5 and the connecting element 50 therefore form a one-piece structure. The at least one connecting element 50 has a shaft 51 that protrudes away from the fastening section 8, which shaft 51 is plastically deformed in a forming process in such a way that a mechanically fixed connection is provided between the contact part 5a, 5b and the carrier strip 2.
[0078] In
[0079]
[0080] In an alternative, not shown, it would also be conceivable that only the shaft 51 is shaped, wherein the diameter of the shaft 51 is then increased in size, so that the shaft 51 is pressed against the wall 55 in the interior of the fastening opening 53. The shaft 51 is held in the interior of the fastening opening 53 in a force-fitting manner here.
[0081] Here, the connecting element 50 is plastically deformed in the region of the bottom side 25 of the carrier strip in such a way so that a head section 54 is formed, with which head section the carrier strip 2 is clamped to the contact part 5, 5a, 5b. The connecting element 50 protrudes through the carrier strip 2 through a fastening opening 53. The fastening opening 50, in particular the shaft 51, and the fastening opening 53 have substantially the same cross section. Here, the fastening opening 53 is in the shape of an elongate hole and the shaft 51 is designed to be complementary to or match said elongate hole.
[0082] As mentioned, in all of the embodiments shown, the at least one connecting element 50 is formed in one piece on the contact part 5, 5a, 5b by means of the fastening section 8. In the embodiment shown, the at least one connecting element 50 is formed from the fastening section 8. In this case, the at least one connecting element 50 is pressed out of the fastening section 8 by means of a stamping process or punch-through process. By way of the stamping tool or a punch-through tool, the fastening section 8 is plastically deformed from the top side 22 and the connecting elements are pressed out on the bottom side 26 of the contact element 5, 5a, 5b.
[0083] This press-out operation produces an indentation 52 opposite the connecting element 50. The volume of the indentation 52 corresponds substantially to the volume of the connecting element 50 that has been pressed out.
[0084] In the embodiment according to
[0085] The carrier strip 2 has fastening openings 53 for receiving the connecting elements 50. The number of fastening openings 53 and the position thereof is matched to the number and to the position of the connecting elements 50. The fastening openings 53 in the carrier strip are produced, for example, by a punching process. Before the plastic deformation, the connecting element 50, by way of its shaft 51, protrudes beyond the carrier strip 2. After the plastic deformation, the shaft 51 extends through the fastening opening 53 and the head section 54 protrudes beyond the carrier strip 2.
[0086] The shaft is preferably deformed over its entire cross section with respect to the protruding part. As an alternative, the shaft 51 can be selectively deformed at different subregions of its cross section. In this case, the entire cross section of the shaft 51 is not deformed, but rather only a partial cross section of the shaft 51 is deformed.
[0087] The connecting elements 50 are situated at a distance in relation to one another here, wherein the distance is, in particular, formed in such a way that the connecting elements 50 do not touch in the deformed state.
[0088] The connecting element 50 extends along a center axis S as seen from the fastening section 8.
[0089] According to the embodiment of
[0090] According to the embodiment of
[0091] According to the embodiment of
[0092] According to the embodiment of
[0093] The cross section of the connecting element 50 can be exchanged in accordance with the embodiments. However, the connecting element 50 can also have an oval cross section or an n-gonal cross section or polygonal cross section.
[0094] The fastening by way of the at least one connecting element 50 could be assisted by way of a welded or soldered connection, in addition to the mechanical fastening. The connecting element 50 could therefore be welded or soldered to the carrier strip 2.
[0095] In a second embodiment of the connecting element, the at least one connecting element is arranged fixedly on the contact part before the riveting and before the connection to the carrier strip. The second configuration can be used in all of the embodiments shown herein. That is to say, the contact part 5, 5a, 5b can be connected to the connecting element 50 before the connection to the carrier strip 2. According to the second embodiment, the at least one connecting element preferably protrudes by way of the shaft through an opening in the fastening section and is fixedly fastened to the fastening section, wherein the fastening is established in an interlocking manner and/or a force-fitting manner and/or a cohesive manner.
[0096] An exemplary carrier strip 2, to which the contact parts 5 are fastened, is shown in the embodiment of
[0097] In the embodiment shown, the carrier strip 2 comprises a plurality of fastening spots in the form of fastening lugs 3. In this case, the fastening lugs 3, as seen in the longitudinal direction L, are spaced in relation to one another. Two rows of fastening lugs 3 are provided in the embodiment shown. One row comprises first fastening lugs 3a that are arranged one behind the other in the longitudinal direction L, and the other comprises second fastening lugs 3b that are likewise arranged one behind the other in the longitudinal direction L. The two rows therefore extend in the longitudinal direction L, wherein the rows are at a distance in relation to one another in a transverse direction that runs transverse to the longitudinal direction. The distance between the fastening lugs 3 is identical in both rows. However, the first fastening lugs 3a are arranged in a manner offset by an offset in relation to the second fastening lugs 3b in the longitudinal direction L.
[0098] The figures show a symmetrical arrangement of the fastening lugs 3 with respect to the longitudinal direction L. An asymmetrical arrangement is likewise conceivable.
[0099] A center line M that likewise extends in the longitudinal direction L lies centrally between the row of first fastening lugs 3a and the row of second fastening lugs 3b. The first fastening lugs 3a and the second fastening lugs 3b are at a transverse distance in relation to the center line M with respect to the transverse direction.
[0100] The contact parts 5 are fastened to the carrier strip 2 at the fastening lugs 3. If the force F is now applied to the carrier strip 2, the distance between the fastening lugs 3 changes and there is therefore also a change in the distance between the contact parts 5.
[0101] In the embodiment shown, in each case two fastening lugs 3 that immediately follow one another in the longitudinal direction L are connected to one another by means of a web 4. Here, the web 4 extends in a manner inclined at an angle in relation to the longitudinal direction L. In the embodiment shown, a first web 4a extends from a first fastening lug 3a to a second fastening lug 3b. The web 4 is respectively formed on the inner edges 21 of the respective fastening lug 3a, 3b. In this case, the inner edge 21 is that edge of the fastening lug 3a, 3b that faces the respective other fastening lug 3b, 3a. A second web 4b extends to a further first fastening lug 3a. In this case, the web 4b extends away from the same inner edge 21 of the second fastening lug 3b on which the first web 4a is formed on. The second web 4b is likewise inclined at an angle in relation to the longitudinal direction L.
[0102] In other words: The webs 4a, 4b extend alternately from a fastening lug 3a in the first row to a fastening lug in the second row 3b, and vice versa. A meandering structure of the carrier strip 2 that can be easily deformed in respect of its length is achieved owing to the arrangement in this way of the fastening lugs 3a, 3b and of the webs 4a, 4b.
[0103] This arrangement of the webs 4 and of the fastening lug 3 is then repeated many times over the longitudinal direction L, so that the actual carrier strip 2 that has a large number of fastening lugs 3 and webs 4 can be provided.
[0104] As mentioned above, the carrier strip can also be designed in some other way. As an alternative, the carrier strip 2 can be designed in such a way that it is substantially not deformed in the longitudinal direction L when a force F is applied to the carrier strip 2. In this variant, the carrier strip 2 is designed in a manner such that its length cannot be changed. A carrier strip 2 of this kind can be formed from a flat strip, the thickness of said strip being several times smaller than the width of said strip.
[0105] In the embodiment shown according to
[0106]
[0107]
[0108] In the embodiment according to
[0109] In the deflected state, the free ends 9 can protrude through the carrier strip 2 through a recess 35 in the carrier strip 2. The recess 35 is preferably provided by the intermediate region between two webs 4.
[0110] The fastening section 8 abuts flat against the carrier strip 2.
[0111] Depending on the type of fastening of the contact part 5, 5a, 5b, the second contact section 7 is likewise a free end or abuts on the bottom side 25 of the carrier strip 2. This will be discussed further in the text that follows in connection with the fastening of the contact parts 5, 5a, 5b.
[0112] In the embodiment according to
[0113] In the embodiment according to
[0114] In the embodiment according to
[0115] In the embodiment according to
[0116] In the embodiment according to
[0117] In the embodiment according to
[0118] In the embodiment according to
[0119] In the shown embodiment, the second contact section 7 has an optional indentation 28 that, as seen centrally through the second contact section 7 and transverse to the longitudinal direction L, extends into the second contact section 7. A defined division of the contact faces can be achieved by way of the indentation 28, as a result of which the contact resistance is more accurately definable.
[0120] The contact part 5 further has a raised portion 29 in the region of the outer edge 13 of the fastening lug 3. The raised portion 29 then adjoins the second contact section 7. Owing to the raised portion 29, the fastening section 8 is situated in a manner offset to the rear from the contact section 7, so that the fastening lug 3 and the head section 54 are likewise offset from the contact section 7 in such a way that they do not have a negative influence on the contact process.
[0121] The contact part 5 is in the form of a bow in the embodiment of
[0122] In the embodiment of
[0123] The contact part 5 is in the form of a rectangular part in the embodiment of
[0124] In the embodiment of
[0125] The contact part 5 is in the form of a triangle in the embodiment of
[0126] The carrier strip is designed according to the embodiment in line with
[0127]
[0128] The connecting element 50, as seen from the fastening section 8, extends along a shaft axis S. Here, the dimension in a first transverse axis Q1 that lies transverse to the shaft axis S is larger than the dimension in a second transverse axis Q2 that lies transverse to the shaft axis S and transverse to the first transverse axis Q1. The shaft 51 is selectively deformed at different subregions 70 of its cross section. In the embodiment shown, the shaft 51 is deformed at exactly two subregions 70 that are situated opposite one another with respect to the second transverse axis Q2.
[0129] In the embodiment shown, the deformation is polygonal and, in the region of the outer side of the shaft 51, fits with the shape of the shaft 51. The deformation is provided with a rounded portion 72 in the region 71 between the two subregions 70 that are deformed. There can be an optional indentation, which can be produced by the deformation, in the region 71 between the two subregions.
TABLE-US-00001 LIST OF REFERENCE SIGNS 1 Contact element 2 Carrier strip 3, 3a, 3b Fastening lugs 4 Web 5, 5a, 5b Contact part 6 First contact section 7 Second contact section 8 Fastening section 9 Free end 11 Rounded portion 12 Rounded portion 13 Outer edge 21 Inner edge 22 Top side 23 Bending spot 24 Surface 25 Bottom side 26 Bottom side 28 Indentation 29 Raised portion 35 Recess 50 Connecting element 51 Shaft 52 Indentation 53 Fastening opening 54 Head section 55 Wall 60 Bow bend 61 Free ends 62 Main web 63 Fastening web 64 Triangle tip 65 Tip 70 Subregion 71 Region 72 Rounded portion S Shaft axis Q1 First transverse axis Q2 Second transverse axis C Transverse distance L Longitudinal direction M Center line P, P Arrow Z1 Intermediate space Z2 Intermediate space F Force X Length R11 Rounded portion axis R12 Rounded portion axis Angle