METHOD OF JOINING TWO COMPONENTS, AUXILIARY JOINING PART AND COMPONENTS ASSEMBLY
20190040900 ยท 2019-02-07
Inventors
Cpc classification
F16B19/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49908
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T29/49948
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T29/49954
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T29/49966
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16B19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49835
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16B5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49826
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16B37/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49906
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B21J15/022
PERFORMING OPERATIONS; TRANSPORTING
F16B17/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T29/49947
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F16B37/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B19/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method of connecting a first component and a second component with the aid of an auxiliary joining part, wherein the auxiliary joining part is formed from a pin and a plate. A position of intended fracture is present between the plate and the pin. The first component, the second component and the auxiliary joining part are brought into a stacked arrangement such that the plate contacts the first component and the pin projects away from the side of the plate remote from the first component. A force is exerted on the pin of the auxiliary joining part in the direction towards the stacked components which leads to a fracture at a position of intended fracture and the pin is used in order to pierce slugs from the stacked components. The end of the pin which is pressed through the second component, and/or a washer which is optionally provided there, is deformed in order to provide a form-locked connection to the second component or to a washer which is provided there. Furthermore, an auxiliary joining part is claimed.
Claims
1. A method of connecting a first component (21) and a second component (23) with the aid of an auxiliary joining part (11), wherein the auxiliary joining part (11) is formed from a pin (15) and a plate (13), the pin having first and second ends, and wherein a position of intended fracture (17) is present between the plate (13) and the first end of the pin (15), the method comprising the following steps: (i) the first component (21), the second component (23) and the auxiliary joining part (11) are brought into a stacked arrangement such that the plate (13) contacts the first component and the pin (15) projects away from the side of the plate (13) remote from the first component (21), (ii) a force (K) is exerted on the pin (15) of the auxiliary joining part (11) in a direction towards the stacked components (21, 23) which leads to a fracture at the position of intended fracture (17) and the pin is used in order to pierce slugs (27) from the stacked components (21, 23), (iii) at least one of the first end of the pin (15) which is pressed through the second component (23), the second component and a washer which is optionally provided there, is deformed in order to provide a form-locked connection to the second component (23) or to the washer if provided, and (iv) at least one of the plate (13) and the second end of the pin (15) which was originally remote from the plate, but is now adjacent to it, is deformed in order to also produce a form-fitted connection there.
2. A method in accordance with claim 1, wherein the components (21, 23) are areal components which have a planar shape or a three-dimensional shape and are present in the form of at least two metallic sheet parts or at least two organic sheet parts, or, in the form of at least one metallic sheet part and at least organic sheet part.
3. A method in accordance with claim 1, wherein at least during step (iii), during the punching of the stacked arrangement of the components (21, 23), the first component (21) is clamped together with the second component (23).
4. A method in accordance with claim 1, wherein the position of intended fracture (17) of the plate (13) is formed as a weakened position which serves to weaken at least one of the plate (13) and the connection between the plate (13) and the pin (15) and to break under the action of force, whereby a movement of the pin (15) relative to the plate is made possible.
5. A method in accordance with claim 1, wherein the plate (13) is of circular shape.
6. A method in accordance with claim 1, wherein the pin (15) has one of a cylindrical shape in cross-section and a prismatic shape in cross-section.
7. A method in accordance with claim 1, wherein an undercut (19) is present at at least one of the first and second ends of the pin (15).
8. A method in accordance with claim 7, wherein respective undercuts (19) are provided at the first and second ends of the pin (15).
9. A method in accordance with claim 1, wherein the pin (15) has no undercut (19).
10. An auxiliary joining part (11) consisting of a pin (15) having first and second ends and a plate (13) provided on the pin (15), with a position of intended fracture (17) being present between the plate (13) and the first end of the pin (15), the second end of the pin being a free end.
11. An auxiliary joining part (11) in accordance with claim 10, wherein the position of intended fracture is formed by a weakened position.
12. An auxiliary joining part in accordance with claim 10, wherein the position of intended fracture (17) is formed by an adhesive joint (33).
13. An auxiliary joining part in accordance with claim 10, wherein the position of intended fracture (17) is formed by one of a solder joint (30), a brazed joint (31) or one or more welded joints (32).
14. An auxiliary joining part in accordance with claim 10, wherein the plate (13) is held by means of a force transmitting and/or a shape matched connection (34) to the first end of the pin (15), with the connection forming the position of intended fracture (17).
15. A component assembly comprising an auxiliary joining part consisting of a pin (15) having first and second ends and a plate (13) provided on the pin (15), with a position of intended fracture (17) having been present between the plate (13) and the first end of the pin (15), a first component and a second component, the first component (21), the second component (23) and the plate (11) being in a stacked arrangement, such that the plate (13) contacts the first component, wherein at least one of the first end of the pin (15) which is pressed through the second component (23), the second component and a washer which is optionally provided there, is deformed thus providing a form-locked connection between one of the pin and the second component (23) and the pin (15) and the washer if provided, and at least one of the plate (13) and the second end of the pin (15) which was originally remote from the plate, but is now adjacent to it, is deformed thus providing a form-fitted connection there.
Description
[0028] The invention will be described in the following in more detail by way of example with reference to embodiments and referring to the drawings in which are shown:
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047] The auxiliary joining part shown in
[0048] As can be seen in
[0049] The pin 15 of the auxiliary joining part 11 can furthermore be provided with an undercut 19. In the present drawings the pin 15 is provided with at least one undercut such as 19 at the end of the pin which lies adjacent to the plate (here it is for example one undercut which is formed by four circular recesses 20). As already mentioned the pin 15 can however also have no undercuts 19 or a plurality of undercuts.
[0050] The pin 15 is preferably of cylindrical or prismatic shape. In this embodiment an advantage also results such as simple manufacture from wire material. Furthermore, a uniform and simple punching process is made possible with the aid of the pin. In addition, the manufacture is simplified and thus more economical. The formation of the possible undercuts 19 or circular recesses 20 on the surface of the pin 15 is simplified by prismatic and in particular however by a cylindrical design, since the undercut can be provided by the cold heading process but also by a rolling process.
[0051] In general the auxiliary joining part 11 consists, as shown, of a plate 13, a pin 15 and a position of intended fracture 17 introduced between them. In addition, the auxiliary joining part can have an undercut. The plate 13 and the pin 15 can, as shown in the illustrated embodiment be integrally made, with the position of intended fracture 17 in particular being formed as a weakened position with respect to the material strength or thickness. It is, however, likewise conceivable that the pin 15 is for example soldered, welded or adhesively bonded to the plate 13. The connection of the two components then forms the position of intended fracture 17. Furthermore, the pin could be fastened to the plate in a force transmitting or shape matched form, provided the force transmitting form or the shape matched form is so designed that the desired position of intended fracture 17 results. Examples for this two-part construction are shown in
[0052] In
[0053] As shown in
[0054] Through the action of force on the pin 15, for example on its upper end face 16 in the direction K, the pin 15 is separated from the plate at the position of intended fracture 17 and driven through the plate 13. Through the continued action of force the pin is punched through the first component 21 and the second component 23 (and also any further components) with slugs 27 being separated from the components. The pin 15 is driven in to such an extent that the slugs 27 fall through the bore of the die button 25 and the pin 15 is positioned, as shown in
[0055] As described in EP-A-2873473, the upper end face 16 of the pin 15 is simultaneously embossed by the plunger 49, which is shown here only purely schematically, whereby a form-fitted engagement 29 (
[0056] The first component 21 is fixedly riveted to the second component 23. The deformation or embossing 29 of the end face 16 of the pin 15 by the lower end of the plunger 49 of the setting head 41 takes place precisely as described in EP document EP-A-2873473.
[0057] A form-fitted connection with the plate 13 at the upper end of the pin 15 could likewise be achieved if the pin 15 also has an undercut 19 at the upper end as in
[0058] In like manner both end faces 16 can be deformed or embossed (as will later be explained in more detail) whereby a form-fitted connection of the auxiliary joining part 11 with the first component 21 and the second component 23 can be achieved by corresponding deformations or embossing 29. For this purpose, the die button 25 can be made in a similar manner to the plunger 49 in order to generate the embossing in similar manner to that described in EP-A-2873473.
[0059] With respect to the drawings of
[0060] It is evident that the components 21 and 23 in this example are areal components at least in the region of the setting head 41, i.e. have a planar shape at least there. They can however also have a three-dimensional such as, for example, curved coachwork parts of a vehicle. The components 21 and 23 can be formed by two metallic sheet metal parts or by two organic sheet parts, i.e. plastic components with fiber or fabric reinforcement. As an alternative, they can be formed by one organic sheet part and one sheet metal part.
[0061] Furthermore, more than two components can be riveted together, with the further components optionally being metallic sheet parts and/or organic sheet parts.
[0062] In the illustrated embodiment of
[0063] If not only the first component 21 is formed as an organic sheet part, but rather also the second component 23, then a further metal washer (not shown) is required. This is introduced in analogous manner to the plate 13, to the stacked arrangement and is received in a corresponding washer shaped recess of the die button (likewise not shown but known from EP-A-2873473) beneath the second component 23. The washer-shaped depression can then have the ring-shaped projection 28 around the bore of the die button 25 on which the washer is ultimately supported. In other words, the metal washer contacts the side of the second component 23 remote from the component 21 and is clamped firmly there under the action of the spring-loaded hold-down member 43. In this way the first component 21 and the second component 23 are firmly clamped between the plate 13 and the metal washer. The metal washer acts as a load distributor with organic sheet parts so that the high riveting forces are uniformly taken up without damaging the organic sheet part. When a metal washer is provided the metallic material of the metal washer is likewise driven by the ring-like projection 28 of the die button into the undercuts 19, or the end face 16 of the pin 15 is, as described abovein accordance with the instructions in EP document EP-A-2873473embossed. In this way a form-fitted connection can be achieved also when a first organic sheet part 21 and a second organic sheet part 23 are present.
[0064] It is likewise conceivable that both the first component 21 and also the second component 23 are formed as metallic sheet metal parts. In this case a further metal washer is not necessary because the material of the sheet metal part itself has a corresponding flow characteristic.
[0065] Ultimately it should be brought out that a spring-loaded hold-down member 43 is not absolutely essential when using the auxiliary joining part 11 in accordance with the invention because the forces which are required in order to break the position of intended fracture 17 likewise exert a clamping force on the plate 13, the components 21 and 23 and on a washer received in the die button (as likewise described in EP-A-2873473) and it is possible that the friction forces exerted by the plunger on the plate during the piercing of the components is sufficient in order to avoid fraying out of any organic sheet parts that are present.
[0066] The auxiliary joining parts can also consist of all materials which are customary for punched rivets.
[0067] Some further examples of the invention will now be described and in this further description parts which have the same design or function as previously described parts are provided with the same reference numerals and it will be understood that the previous description likewise applies to the further examples, providing the same reference numerals are used and providing nothing is stated in contrary. For this reason, the previous description will not be unnecessarily repeated.
[0068] Referring now to
[0069] In this arrangement the lower component 23 is normally formed as an organic sheet part. This is however not essential if, for example, the lower component consists of a soft sheet metal part, the connection of which with the pin would be weak, then it could be appropriate to use a metal washer 59 which, on the one hand, enables a firm connection with the lower end of the pin 15 and, on the other hand, exerts a load distributing function at the component 23.
[0070]
[0071] One can see from
[0072]
[0073] Instead of operating with a ring-like projection 28 and with a ring nose 75 it could also be sufficient to operate with discrete projections or noses which are arranged in a ring because, depending on the material, an adequate engagement material of the so embossed part could be achieved, be it of the further washer 59 or of the plate 13 into the respective undercuts 19.
[0074] A particularly preferred embodiment of the inner plunger 73 and of the outer plunger 71 which are used for a discrete embossing of the plate 13 at three points is shown in
[0075]
[0076] If one now considers the sectional drawing of
[0077] One can see from
[0078] The die button 25 is, in this example, also made in two parts with an outer sprung cylinder 26 and an inner fixed cylinder 35 with a ring-like projection or ring nose 28. The outer cylinder 26 cooperates with the hold-down member 43 in order to preload the components under spring pressure. In the closed position of the press as shown in
[0079] In a further closing phase of the press which is finished in
[0080] The free ends of the tongues 87 press at the upper side of the plate 13 which is bounded on all sides and thus can only deform in the manner described. One can see at the position 105 that a corner region of the pin 15 has been pressed in. The other two positions 105 cannot be seen in the drawings of
[0081] In the example of
[0082] If the lower component 23 is an organic component then one can operate with a washer in die button 25 in analogy to the illustrations of
[0083] Although in the illustration of
[0084] Finally, reference is made to
[0085] The die button must however be so designed that the lower, recess-free, end of the pin is deformed solely by a ring-like embossing, or by embossing at local positions, so that the embossed material comes to lie below the lower component 23, if this is a metallic sheet metal part, or comes to lie beneath a washer if the lower component 23 is an organic component. This could take place in such a way that the die button 25 is designed as a reversed version of the setting head 41 of
[0086] It is also conceivable to use an auxiliary joining part 11 with a pin 15 without any undercuts, circular recesses or threads if the setting head is designed as described in the
[0087] Other designs of the setting head 41 and the die button 25 can also be considered when a cylindrical pin is used so long as it is designed in order to form a form-fitted connection with the plate 13 or with a further washer or with the lowermost component.
[0088] When designations such as top and bottom or similar geometric expressions are used in this application then this is always related to the orientation of the drawings and should not be understood as a geometric restriction.
REFERENCE NUMERAL LIST
[0089] 11 auxiliary joining part [0090] 13 plate [0091] 15 pin [0092] 16 end face [0093] 17 position of intended fracture [0094] 18 recess [0095] 19 undercut [0096] 20 circular recesses at the pin 15 [0097] 21 first component [0098] 23 second component [0099] 25 die button [0100] 26 outer cylinder of the die button 25 [0101] 27 slug [0102] 28 ring-like projection [0103] 29 deformation/embossing [0104] 30 solder joint [0105] 31 brazed joint [0106] 32 welded positions [0107] 33 adhesive joint [0108] 34 force transmitting and form-fitted connection [0109] 35 inner cylinder of the die button 25 [0110] 41 setting head [0111] 43 hold-down member [0112] 45 holder [0113] 47 ring [0114] 49 plunger [0115] 51 upper platen/tool of the press [0116] 53 intermediate platen/tool of the press [0117] 55 lower platen/tool of the press [0118] 57 spring [0119] 59 washer [0120] 61 recess of the die button 25 [0121] 63 opening of the die button 25 [0122] 65 passage of the die button 25 [0123] 67 component assembly [0124] 69 indentation [0125] 71 outer plunger of the setting head 41, hold down member [0126] 73 inner plunger of the setting head 41 [0127] 75 ring nose of the outer plunger 71 [0128] 77 indentation of the plate 13 [0129] 79 cylindrical body of the outer plunger 71 [0130] 81 flats of the cylindrical body 79 [0131] 83 cloverleaf-like passage of the outer plunger [0132] 85 leaves of the cloverleaf-like passage of the outer plunger 71 [0133] 87 tongues of the inner plunger 73 [0134] 89 collar of the outer plunger 71 [0135] 91 collar of the inner plunger 73 [0136] 93 recess of the inner plunger 73 [0137] 95 free ends of the tongues 87 [0138] 96 dish [0139] 97 cylindrical sections of the inner plunger [0140] 99 end recess of the outer plunger [0141] 101 free space [0142] 103 arms of the dish 96 [0143] 105 position, pressed-in corner region of the pin 15 [0144] 107 raised portions at the upper side of the plate 13, lugs [0145] B direction of movement of the pin [0146] K action of force [0147] L central longitudinal axis [0148] S-S sectional plane [0149] T-T sectional plane