RIVETED JOINT
20250075718 · 2025-03-06
Assignee
Inventors
- Jan-Oliver BRASSEL (Bad Friedrichshall, DE)
- Jörg SPINDLER (Überlingen, DE)
- Jochen Rintelmann (Dessau, DE)
- Patrick SIEGMANN (Heilbronn, DE)
- Alexander WARKENTIN (Langenbrettach, DE)
Cpc classification
F16B35/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B37/068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B37/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A riveted joint in which a rivet foot of a rivet element is driven into a component with a setting force, in particular by spreading the rivet foot. The rivet foot has a reduced cross-section in the still undeformed state and has an expanded cross-section in the driven-in state. The rivet foot is designed as a bistable spring portion that has two equilibrium states, namely the undeformed cross-section-reduced state and an expanded spread state. As a result of the setting force being applied, the rivet element changes from the undeformed state to the spread state, in which the rivet foot is spread with an expanded cross-section in the component, in particular without the build-up of a springback force that biases the rivet element towards the undeformed state.
Claims
1-11. (canceled)
12. A riveted joint, comprising a rivet foot of a rivet element driven into a component with a setting force, by spreading the rivet foot, wherein the rivet foot has a reduced cross-section in the still undeformed state and has an expanded cross-section in the driven-in state, wherein the rivet foot is designed as a bistable spring portion which has two equilibrium states, namely the undeformed state of reduced cross-section and an expanded spread state, wherein, as a result of the action of the setting force, the rivet element transitions from the undeformed state to the spread state, wherein the rivet foot is spread in the component with an expanded cross-section, without the build-up of a springback force which biases the rivet element in the direction of the undeformed state.
13. The riveted joint according to claim 12, wherein the component in the undeformed state has a pilot hole at the joint to be produced, and in that in the riveted joint the rivet foot of the rivet element is spread against the inner circumference of the pilot hole.
14. The riveted joint according to claim 12, wherein the rivet element is designed rotationally symmetrically with respect to a rivet element longitudinal axis, and/or the rivet element has an expanded rivet head which merges into the rivet foot in the axial direction, and/or the rivet foot is divided into a head-side rivet foot solid material portion and into an adjoining cylindrical rivet foot wall which terminates at an annular circumferential setting edge and delimits an inner curvature open at the rivet foot tip, and/or the rivet foot wall forms the bistable spring portion.
15. The riveted joint according to claim 14, wherein, in the spread state of the rivet element, the rivet foot wall is folded over against the setting direction, namely in the direction of the rivet head, and/or the rivet foot wall extends around the rivet foot solid material portion in a dish-like manner, and/or the setting edge is in spread engagement with the inner circumference of the component pilot hole.
16. The riveted joint according to claim 13, wherein the component pilot hole has an activation contour which, in the setting process, assists in transferring the rivet element from the undeformed state to the spread state.
17. The riveted joint according to claim 13, wherein the component pilot hole is a blind hole with a closed bottom, and/or for the formation of the activation contour, the blind hole has a large-diameter insertion portion which, at a circumferential annular shoulder, merges in a step-wise manner into a small-diameter counterbore, and wherein, the setting edge of the still undeformed rivet element lies on a diameter which is larger than the inner diameter of the annular shoulder, so that, in preparation for the setting process, the rivet element can be positioned with its setting edge on the annular shoulder of the component pilot hole.
18. The riveted joint according to claim 17, wherein, during a setting stroke, the rivet element can be driven into the component pilot hole up to a dead center, and wherein, at the dead center, the rivet element is expanded radially outwards with its setting edge up to a maxi-mum diameter and/or the rivet foot tip is in surface contact with its front face with the pilot hole annular shoulder, and wherein the setting stroke is extended by stroke distance beyond the dead center, with which the rivet foot solid material portion can be driven into the pilot hole counter-bore, so that an over-forming or over-spreading of the rivet foot wall takes place, during which the rivet foot wall transitions to the spread state.
19. The riveted joint according to claim 12, wherein, during the setting process, the rivet element deforms plastically, while the component is substantially elastically stressed without plastic deformation and/or remains largely undeformed.
20. The riveted joint according to claim 13, wherein the inner circumference of the component pilot hole forms a conical insertion slope.
21. The riveted joint according to claim 12, wherein the component is a casting, with low ductility, and/or the rivet element is made of a cold-forming material in which, in the case of over-spreading, a forming limit is exceeded, above which consolidation of the rivet element material occurs.
22. The riveted joint according to claim 17, wherein the rivet foot outer diameter is dimensioned smaller than the annular shoulder outer diameter, so that the still undeformed rivet element can be positioned with its setting edge in floating support on the annular shoulder.
23. The riveted joint according to claim 13, wherein the rivet element is designed rotationally symmetrically with respect to a rivet element longitudinal axis, and/or the rivet element has an expanded rivet head which merges into the rivet foot in the axial direction, and/or the rivet foot is divided into a head-side rivet foot solid material portion and into an adjoining cylindrical rivet foot wall which terminates at an annular circumferential setting edge and delimits an inner curvature open at the rivet foot tip, and/or the rivet foot wall forms the bistable spring portion.
24. The riveted joint according to claim 14, wherein the component pilot hole has an activation contour which, in the setting process, assists in transferring the rivet element from the undeformed state to the spread state.
25. The riveted joint according to claim 15, wherein the component pilot hole has an activation contour which, in the setting process, assists in transferring the rivet element from the undeformed state to the spread state.
26. The riveted joint according to claim 14, wherein the component pilot hole is a blind hole with a closed bottom, and/or for the formation of the activation contour, the blind hole has a large-diameter insertion portion which, at a circumferential annular shoulder, merges in a step-wise manner into a small-diameter counterbore, and wherein, the setting edge of the still undeformed rivet element lies on a diameter which is larger than the inner diameter of the annular shoulder, so that, in preparation for the setting process, the rivet element can be positioned with its setting edge on the annular shoulder of the component pilot hole.
27. The riveted joint according to claim 15, wherein the component pilot hole is a blind hole with a closed bottom, and/or for the formation of the activation contour, the blind hole has a large-diameter insertion portion which, at a circumferential annular shoulder, merges in a step-wise manner into a small-diameter counterbore, and wherein, the setting edge of the still undeformed rivet element lies on a diameter which is larger than the inner diameter of the annular shoulder, so that, in preparation for the setting process, the rivet element can be positioned with its setting edge on the annular shoulder of the component pilot hole.
28. The riveted joint according to claim 16, wherein the component pilot hole is a blind hole with a closed bottom, and/or for the formation of the activation contour, the blind hole has a large-diameter insertion portion which, at a circumferential annular shoulder, merges in a step-wise manner into a small-diameter counterbore, and wherein, the setting edge of the still undeformed rivet element lies on a diameter which is larger than the inner diameter of the annular shoulder, so that, in preparation for the setting process, the rivet element can be positioned with its setting edge on the annular shoulder of the component pilot hole.
29. The riveted joint according to claim 13, wherein, during the setting process, the rivet element deforms plastically, while the component is substantially elastically stressed without plastic deformation and/or remains largely undeformed.
30. The riveted joint according to claim 14, wherein, during the setting process, the rivet element deforms plastically, while the component is substantially elastically stressed without plastic deformation and/or remains largely undeformed.
31. The riveted joint according to claim 15, wherein, during the setting process, the rivet element deforms plastically, while the component is substantially elastically stressed without plastic deformation and/or remains largely undeformed.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0018] An exemplary embodiment of the invention is described in the following by means of the appended figures.
[0019] In particular:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026] For a simpler understanding of the invention, reference is first made to
[0027] The setting process is carried out with the aid of a setting tool, which in
[0028] In the setting process, the rivet element 1 is not only plastically but also elastically deformed, by generating a restoring force that biases the rivet element 1 towards the undeformed state. To prevent springback to the undeformed state, the rivet foot tip is form-fittingly surrounded by component material in
[0029] In a departure from this, the riveted joint according to the invention can also be realized with a component 3, the flowability or ductility of which is reduced compared with the prior art. In fact, according to the invention, the rivet element 3 is not secured by form-fitting enclosure of the rivet foot tip by means of the component material, but by means of the securing mechanism described below:
[0030] According to
[0031]
[0032] The folding over of the rivet foot wall 11, which acts as a bistable spring portion, is supported by means of a special activation contour 32 (
[0033] The setting process is carried out with a setting tool which, in
[0034] According to the invention, the setting stroke is extended beyond the dead center T by a stroke distance s (
[0035] As can be seen from
LIST OF REFERENCE NUMERALS
[0036] 1 rivet element [0037] 3 component [0038] 5 pilot hole [0039] 7 pilot hole bottom [0040] 9 rivet head [0041] 11 rivet foot [0042] 13 rivet foot solid material portion [0043] 14 inner curvature [0044] 15 setting edge [0045] 16 spreading lines [0046] 17 rivet foot wall [0047] 19 functional portion [0048] 21 large-diameter insertion portion [0049] 23 annular shoulder [0050] 25 pilot hole counterbore [0051] 27 downholder [0052] 29 setting piston [0053] 30 die [0054] 31 flat mating contour [0055] 32 activation contour in the component pilot hole [0056] t pilot hole depth [0057] d.sub.1 setting edge diameter [0058] d.sub.2 annular shoulder inner diameter [0059] d.sub.3 annular shoulder inner diameter [0060] F.sub.S setting force [0061] d.sub.max maximum diameter [0062] T dead center [0063] s stroke distance beyond the dead center [0064] l rivet element longitudinal axis [0065] spreading angle