Profiled reinforcement element
10988011 · 2021-04-27
Assignee
Inventors
Cpc classification
B32B3/266
PERFORMING OPERATIONS; TRANSPORTING
B60J10/18
PERFORMING OPERATIONS; TRANSPORTING
B60J10/32
PERFORMING OPERATIONS; TRANSPORTING
Y10T428/24198
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
Abstract
A profiled reinforcement element and a method for manufacturing such an element to be embedded in an elastomer strip, in particular a sealing strip or edge protection strip, the profiled reinforcement element being formed by a metal strip which is extended by expanding incisions located at a regular distance from each other and is shaped by creating profiled sections and introducing beads. Openings that have a closed rim and are formed by expanding the incisions are completely enclosed by beads.
Claims
1. A profiled reinforcement element to be embedded in an elastomer strip, wherein the profiled reinforcement element is formed by a metal strip that is extended by expanding incisions located at a regular distance from each other and is shaped by profiled sections and beads, wherein the expanded incisions form openings, the openings including openings with a closed edge, the openings with a closed edge being completely surrounded by beads, wherein each of the completely closed openings is formed only in a respective base leg of U-shaped sections of the profiled reinforcement element, which are separated from each other by expanded edge incisions.
2. The profiled reinforcement element according to claim 1, wherein each of the beads completely surrounding the openings merges at a branching point with a bead in a U-leg of the U-shaped section.
3. The profiled reinforcement element according to claim 2, wherein the branching point is a Y-shaped branching point.
4. The profiled reinforcement element according to claim 2, wherein each of the beads in the U-legs terminates a certain distance away from or at a free end of the U-leg.
5. The profiled reinforcement element according to claim 1, wherein the beads of adjacent base legs completely surrounding the openings comprise a common bead section in all cases.
6. The profiled reinforcement element according to claim 5, wherein the beads of adjacent base legs merge with each other at Y-shaped branching points in all cases.
7. The profiled reinforcement element according to claim 1, wherein the incisions included center incisions, the center incisions forming the completely closed openings and, when seen in the longitudinal direction of the strip, overlapping the edge incisions.
8. The profiled reinforcement element according to claim 7, wherein the overlapping has an area that coincides with a bending area, in which the U-legs are bent away from the base legs, wherein the overlapping area extends through the entire bending area.
9. The profiled reinforcement element according to claim 1, wherein the beads comprise a cross-sectional profile that changes in a longitudinal direction of the bead.
10. The profiled reinforcement element according to claim 1, wherein the beads curve outwardly and/or inwardly relative to the U-shape of the profiled reinforcement element.
11. A method for producing a profiled reinforcement element to be embedded in an elastomer material of a sealing or edge-protection strip, comprising the steps of: forming incisions in a sheet-metal strip; expanding the sheet-metal strip in a longitudinal direction of the strip to form openings; profiling the expanded sheet-metal strip by bending the strip around bending axes parallel to a longitudinal axis of the strip; and completely surrounding each of the openings formed by the expansion of the incisions and which comprises a closed edge by beads, wherein each of the completely surrounded openings is formed only in a respective base leg of U-shaped sections of the profiled reinforcement element, which are separated from each other by expanded edge incisions.
12. The method according to claim 11, including introducing the beads into the sheet-metal strip before the forming of the incisions, after the forming of the incisions and before the expansion, or after the expansion.
13. The method according to claim 11, further comprising sending, immediately after processing of the sheet-metal strip, the profiled reinforcement element to an extrusion machine for producing an elastomer strip containing the profiled reinforcement element.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The invention is explained in greater detail below on the basis of exemplary embodiments and the attached drawings, which refer to these examples:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DETAILED DESCRIPTION OF THE INVENTION
(9) A strip 14 of sheet steel shown in
(10) As
(11)
(12) During this expansion process, the edge incisions 1 and the center incisions 2 are expanded in the longitudinal direction of the strip to form elongated openings 4 and also elongated openings 5, which are closed all the way around. Between each pair of adjacent openings 4 there is a section 15 for the formation of a U-shaped section consisting of U-legs 6 and a base leg 7, each of these base legs comprising one of the openings 5. Each of the U-legs 6 merges with the base leg 7 by way of two angled web sections 8 and 9. At 16, the sections 15 are connected to each other at their base legs 7.
(13)
(14) As
(15) Next to the bead sections 12 in the angled web sections 8, 9, the beads 11 comprise bead sections 13, which are common to both of the adjacent beads 11. The bead sections 13 extend along the connections 16 between the sections 15 of the profiled reinforcement element, wherein there is a Y-shaped branching point 18 at each end of the common bead sections 13.
(16)
(17) The sheet-metal strip 14 processed according to
(18) The beads 10, 11 described above make it possible to use thinner sheet metal material to produce profiled reinforcement elements with the same stiffness and flexibility properties; as a result, both weight and material can be saved. Because the U-legs 6 are bent over in the area where the edge and center incisions 1, 2 overlap and thus where the openings 4, 5 formed by the expansion of the incisions also overlap, the bead sections 12 extending at an angle in the bending area undergo almost no flattening when they are bent. The resistance of the U-shaped profile to spreading remains intact.
(19) In the exemplary embodiment being described here, the beads comprise a bead cross section which remains constant in the longitudinal direction. In a departure from that feature, the cross section can change in the longitudinal direction, in particular in such a way that the beads are prevented from flattening in the bending area.
(20) In the following figures, the same parts or parts with the same function are designated by the same reference numbers as in the preceding figures, wherein the letter “a” or “b” is appended to the reference number in question.
(21)
(22) A sheet-metal strip for forming a profiled reinforcement element shown in
(23) Each of the base legs 7b comprises two elongated openings 5b and 5b′, the longitudinal axes of which are oriented in the same direction as the longitudinal axes of the U-legs 6b. The sections 15b are connected to each other at 16b and 16b′, wherein, between the connections 16b, 16b′, there is, in addition to the openings 4b, in each case an elongated opening 20 separating the sections 15b from each other.
(24) As can be seen in
(25)
(26) Whereas it is possible to introduce the beads after the openings have already been formed by the expansion of the slotted sheet-metal strip to open up the slots or possibly even after the sheet-metal strip has already been bent into a U profile, the production of the profiled reinforcement element can also begin with the introduction of the beads. The slots would be formed and the metal strip expanded only after that. Finally, the beads could also be introduced after the formation of the incisions and before the expansion. The simultaneous production of beads and slots by means of a single tool, for example, would also be possible.
(27) The relatively tedious processing of the metal strip can be accomplished together with the extrusion of the profiled sealing element; i.e., the processed sheet metal strip which has been formed into the profiled reinforcement element can be sent immediately after processing to an extrusion machine so that it can be embedded in the sealing strip.