METHOD FOR PRODUCTION OF A COMBUSTION CHAMBER TUBE FOR RESTRAINT SYSTEMS IN VEHICLES AND DEVICE FOR IMPLEMENTATION OF THE METHOD
20170157877 ยท 2017-06-08
Assignee
Inventors
Cpc classification
B60R21/264
PERFORMING OPERATIONS; TRANSPORTING
B30B7/04
PERFORMING OPERATIONS; TRANSPORTING
B30B15/028
PERFORMING OPERATIONS; TRANSPORTING
International classification
B30B7/04
PERFORMING OPERATIONS; TRANSPORTING
B60R21/264
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method and device for production of a combustion chamber tube for restraint systems in vehicles. The combustion chamber tube is embossed by several embossing dies arranged stellate around the combustion chamber tube and movable by an annular compression module with several punches movable in synchronized fashion in the radial direction and two inner punches extending into the ends of the combustion chamber tube, each with a support mandrel and a shaping mandrel movable relative to support mandrel. The combustion chamber tube is embossed from the outside by the embossing dies radially movable via punches against the support mandrels and the ends of the combustion chamber tube are shaped by shaping mandrels movable relative to support mandrels when the embossing dies are closed.
Claims
1. A method for production of a combustion chamber tube for restraint systems in vehicles, the method comprising: embossing the combustion chamber tube with several embossing dies arranged stellate around the combustion chamber tube and movable by a ring press module with several punches movable in synchronized fashion in the radial direction and two inner punches extending into the ends of the combustion chamber tube each with a support mandrel and a shaping mandrel movable relative to support mandrel, wherein the combustion chamber tube is embossed from the outside by the embossing dies movable radially by the punches against the support mandrels and the ends of the combustion chamber tube are shaped by shaping mandrels movable relative to the support mandrels when the embossing dies are closed.
2. The method according to claim 1, wherein the support mandrels are moved into an embossing position by an adjustment device before the embossing dies are brought together and the shaping mandrels are moved relative to support mandrels after the embossing dies are brought together.
3. The method according to claim 1, wherein the combustion chamber tube is punched by a punching die with a cutting sleeve extending into the combustion chamber tube and several cutting punches arranged stellate around the combustion chamber tube and movable radially in a guide sleeve.
4. The method according to claim 3, wherein the cutting punches are moved back and forth by a ring press module with several punches movable in synchronized fashion in the radial direction.
5. A device for production of a combustion chamber tube for restraint systems in vehicles, the device comprising a ring press module with several punches arranged around the combustion chamber tube and movable in synchronized fashion in the radial direction by a control element and adjustment devices for axial displacement of two inner punches extending into both ends of the combustion chamber tube, each of which contains a support mandrel and a shaping mandrel movable relative to the support mandrel.
6. The device according to claim 5, wherein the ring press module contains holding elements provided on punches for releasable holding of several embossing dies arranged around the combustion chamber tube.
7. The device according to claim 5, wherein the adjustment device contains a slide movable on a lower frame in the longitudinal direction of the combustion chamber tube with a horizontal support, on which the support mandrels and the shaping mandrels are arranged.
8. The device according to claim 7, wherein the support arranged on the slide contains a rear part and a protruding front part, in which a push sleeve coaxial to the longitudinal axis of the combustion chamber tube is arranged for a displacement of the first shaping mandrel and a push rod is arranged within push sleeve for displacement of the first support mandrel.
9. The device according to claim 7, wherein the support arranged on the slide carries on a front end the second shaping mandrel and the second support mandrel movable relative to shaping mandrel.
10. The device according to claim 9, wherein the second support mandrel sits on a pin screwed into the front end of the second shaping mandrel and is forced against the head of pin by a spring.
11. The device according to claim 5 wherein the control element is rotatable intermittently by a reciprocating link driven by an eccentric drive for radial displacement of punches.
12. The device according to claim 9, wherein the reciprocating link contains an annular bottom part rotatable via a bearing arrangement to accommodate the annular control element and an upward protruding arm for engagement with an eccentric drive pin of a shaft of an eccentric drive.
13. The device according to claim 6, wherein the embossing dies are arranged on a common support plate.
14. The device according to claim 6, further comprising an additional ring press module with several punches arranged around the combustion chamber tube and movable in synchronized fashion in the radial direction by a control element for operation of a punching die with several cutting punches arranged stellate around the combustion chamber tube and radially movable in a guide sleeve.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Additional details and advantages of the invention are apparent from the following description of a preferred embodiment example with reference to the drawings. In the drawings:
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION
[0021] A device for production of a combustion chamber tube 1 depicted in
[0022] The reciprocating drive contains a reciprocating link 7 with an annular bottom part 9 mounted to rotate on frame 2 via a bearing arrangement 8 and an upward protruding arm 10, through which the reciprocating link 7 can be moved back and forth by a stipulated angular range via an eccentric drive for intermittent rotation of the annular bottom part 9. The eccentric drive includes a shaft 12 mounted to rotate in frame 2 and driven by a motor 11, which contains an eccentric drive pin 13 cooperating with the arm 10 of the reciprocating link 7 for back-and-forth movement. An annular control element 14, also depicted in
[0023] A ring press module, through which the embossing dies 4 can be moved to perform concentric crimping, embossing and sizing operations or also cutting punches to perform punching operations with high machining accuracy, is created by the control element 14 rotatable via the reciprocating link 7 and the punch 3 movable radically inward by the control element 14 and radially outward again by means of return spring 16 or other return elements.
[0024] A front view of a ring press module for carrying out embossing operations is shown in
[0025] It is also apparent from
[0026] For simpler changeover, the embossing dies 4 according to
[0027] The device depicted in
[0028] The left adjustment device 27 in
[0029] The right adjustment device 28 in
[0030] It follows from
[0031] Production of the combustion tube 1 is explained below with reference to
[0032] In a first process step, the two inner support mandrels 29 and 30 are pushed with the two outer shaping mandrels 31 and 32 into the position depicted in
[0033] In a next step, the embossing dies 3 provided with protrusions 52 and 53 are brought together against the support mandrels 29 and 30 according to
[0034] In a subsequent processing step, the combustion chamber tube 1 can be punched by a punching die with a cutting sleeve extending into the combustion chamber tube and several cutting punches arranged stellate around the combustion chamber tube and radially movable in a guide sleeve. Here again, the cutting punches arranged uniformly around the combustion chamber tube can be simultaneously moved, for example, by a ring press module with punches 3 movable in synchronized fashion in the radial direction and arranged around the combustion chamber tube 1, so that self-centering and precise machining is made possible.
LIST OF REFERENCE NUMERALS
[0035] 1 Combustion chamber tube [0036] 2 Frame [0037] 3 Punch [0038] 4 Embossing guide [0039] 5 Rear guide plate [0040] 6 Front guide plate [0041] 7 Reciprocating link [0042] 8 Bearing arrangement [0043] 9 Annular bottom part [0044] 10 Arm [0045] 11 Motor [0046] 12 Shaft [0047] 13 Eccentric drive pin [0048] 14 Annular control element [0049] 15 Driver [0050] 16 Return spring [0051] 17 Guide element [0052] 18 Oblique control surfaces [0053] 19 Spacer sleeve [0054] 20 Compression element [0055] 21 Oblique surface [0056] 22 Clamp-like holding element [0057] 23 Holding tab [0058] 24 Holding groove [0059] 25 Support plate [0060] 26 Mount [0061] 27 Adjustment device [0062] 28 Adjustment device [0063] 29 First support mandrel [0064] 30 Second support mandrel [0065] 31 First shaping mandrel [0066] 32 Second shaping mandrel [0067] 33 Lower frame [0068] 34 Slide [0069] 35 Rear part of a support [0070] 36 Front part of a support [0071] 37 Push sleeve [0072] 38 Push rod [0073] 39 First closure sleeve [0074] 40 Control cylinder [0075] 41 Clamping element [0076] 42 Operating rod [0077] 43 Lower frame [0078] 44 Slide [0079] 45 Support [0080] 46 Second closure sleeve [0081] 47 Pin [0082] 48 Spring [0083] 49 Head [0084] 50 Pin [0085] 51 Screw [0086] 52 Protrusion [0087] 53 Protrusion [0088] 54 Recess [0089] 55 Recess [0090] 56 Bead [0091] 57 Surface