Pipe component and method for manufacturing a pipe component
09951894 ยท 2018-04-24
Assignee
Inventors
Cpc classification
F01N13/1816
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B21D39/048
PERFORMING OPERATIONS; TRANSPORTING
F16L7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L11/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L11/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L11/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N13/1805
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16L11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L11/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L11/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B21D39/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A pipe component with an outer pipe element and at least one inner pipe element arranged inside the outer pipe element is provided. The outer pipe element is formed as a flexible pipe element with a plurality of projections, in particular corrugations, and/or at least one corrugated portion. On at least one point the outer pipe element and the at least one inner pipe element each have a projection pointing to the outside in a radial direction, wherein the outside of the projection of the at least one inner pipe element at least partly flatly rests against the inside of the projection of the outer pipe element or of another inner pipe element, so that by means of the projections a connection exists between the at least one inner pipe element and the outer pipe element. The invention furthermore relates to a method for manufacturing a pipe component.
Claims
1. A pipe component comprising an outer pipe element and at least one inner pipe element arranged inside the outer pipe element, wherein the outer pipe element is formed as a flexible pipe element having an outer diameter with at least one projection and wherein on at least one point the outer pipe element and the at least one inner pipe element each have a projection pointing to the outside in a radial direction, wherein the outside of the projection of the at least one inner pipe element at least partially conforms with the inside of the projection of the outer pipe element or of another inner pipe element, so that by means of the projections a connection exists between the at least one inner pipe element and the outer pipe element, wherein the outer diameter of the outer pipe element does not change when the inner pipe is secured thereto; wherein the projections positively restrain relative motion between the outer pipe element and the inner pipe element in both axial and tangential directions.
2. The pipe component according to claim 1, wherein the at least one inner pipe element includes at least two pipe sections and at least one connecting element for connecting the pipe sections.
3. The pipe component according to claim 1, wherein the at least one inner pipe element includes a pipe section.
4. The pipe component according to claim 1, wherein the at least one inner pipe element is formed as a flexible pipe element.
5. The pipe component according to claim 1, wherein the projections at least partly are circumferentially formed around the outer pipe element and around the at least one inner pipe element.
6. The pipe component according to claim 1, wherein the projections have a positive radial connection by substantially punctual protrusions.
7. The pipe component according to claim 1, wherein the at least one connection is formed as a non-rotatable connection.
8. The pipe component according to claim 1, wherein the wall thickness of the outer pipe element is smaller than the wall thickness of the at least one inner pipe element.
9. The pipe component according to claim 1, wherein the outer pipe element and/or the at least one inner pipe element at least partly have a flexible corrugated portion.
10. The pipe component according to claim 1, wherein it is formed as at least one part of an exhaust-gas pipe component.
11. The pipe component according to claim 10, wherein the outer pipe element includes at least two corrugated portions and the connection between the outer pipe element and the at least one inner pipe element is arranged between the at least two corrugated portions.
12. The pipe component according to claim 1, wherein on at least one of the ends of the at least one inner pipe element a flange element is arranged.
13. The pipe component according to claim 1, wherein the outer pipe element and the at least one inner pipe element are connected at the axial ends of the exhaust-gas pipe component.
14. The pipe component according to claim 1, wherein between the at least one inner pipe element and the outer pipe element or another inner pipe element a sleeve-shaped spacer is arranged.
15. The pipe component according to claim 1, further comprising at least one connecting element for keeping the distance between the at least one inner pipe element and the outer pipe element.
16. A method for manufacturing a pipe component, wherein a) at least one inner pipe element is arranged in a flexible outer pipe element with at least one projection, wherein the outer pipe element has an outer diameter, b) a deforming tool is introduced into the at least one inner pipe element, c) directed radially to the outside from the deforming tool a plastic deformation of the at least one inner pipe element and of the outer pipe element is effected, wherein the deformation is carried out such that, d) the outside of a projection of the at least one inner pipe element at least partly flatly rests against the inside of the projection of the outer pipe element or against the inside of the projection of another inner pipe element, so that by means of the projections a connection between the at least one inner pipe element and the outer pipe element is produced, wherein the outer surface is defined by the outer diameter of the outer pipe element and is not expanded during this deformation.
17. The method according to claim 16, wherein the deforming tool includes elements with a substantially arc-shaped outer contour, which are movable radially to the outside.
18. The method according to claim 16, wherein the deforming tool includes elements with a contour pointing substantially acutely to the outside, which are movable radially to the outside.
19. The method according to claim 16, wherein the deforming tool is a spreading tool, a hydroforming tool, a device for deforming with elastomers, a device for electromagnetic shaping and/or a device for roll forming.
20. The method according to claim 16, wherein when forming the projection on the outside of the outer pipe element, a female die is held against the outside of the outer pipe element as a negative mold for the projection.
21. The method according to claim 16, wherein the connecting element is preformed already with a projection, and wherein then the outside of the projection of the at least one inner pipe element at least partly flatly rests against the inside of the projection of the outer pipe element or against the inside of the projection of another inner pipe element, so that by means of the projections a connection between the at least one inner pipe element and the outer pipe element is produced.
22. The method according to claim 16, wherein directed radially to the outside from the deforming tool a plastic deformation of the at least one inner pipe element is effected such that a smooth pipe or a connecting element is deformed.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the invention will be shown by way of example in the following Figures, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9) The outer pipe element 1 includes two corrugated portions 21, 22 (see
(10) In this case, an inner pipe element 2 is arranged in an outer pipe element 1. It is, however, very well possible to arrange a plurality of inner pipe elements 2 in a plurality of outer pipe elements 1, which all are radially spaced from each other, so that air gaps each are present between the pipes.
(11) In the embodiment shown here, the outer pipe element 1 is formed slightly thinner walled than the inner pipe element 2. In the inner pipe element 2 the thicker wall leads to the fact that after a deformationwhich will yet be described belowthe elastic recovery is less than in a thinner walled material. Hence, the thinner outer material always securely rests against the thicker inner material.
(12) As materials for the outer pipe element 1 and/or the inner pipe element 2, e.g. austenitic stainless steels can be used, which have a sufficient deformability. It is, however, also possible to use other metallic materials, such as nickel-based materials, which do not fall under the category of stainless steels.
(13) In the embodiment shown here, the inner pipe element 2 and the outer pipe element 1 are positively and non-positively connected with each other by a connection of two projections 11, 12. The manufacture of the projections 11, 12 will yet be explained in detail in connection with
(14) The projection 12 represents a circumferential bulge which points radially to the outside (direction of arrow R in
(15) Due to this type of connection 15, the two pipe elements 1, 2 are non-rotatably secured against each other. Axially beside the connection 15, further corrugated portions 21, 22 can be arranged, for example (see
(16)
(17)
(18) For example in a motor vehicle, such flexible pipe component 100 can serve for decoupling an exhaust system from the engine or also for the decoupling between elements of the exhaust system.
(19) The inner pipe element 2 includes two substantially smooth pipe sections 5 (e.g. a folded spiral-seam tube, possibly with a braid), which are connected with a connecting element 4. The smooth design results in a better flow guidance. There is also effected an improved insulation due to the air gap between inner pipe element 2 and outer pipe element 1.
(20) In the illustrated embodiment (see
(21) The outer pipe elements 1 each have a first corrugated portion 21 and a second corrugated portion 22. Since the outer corrugated portions 21 have a relatively low natural frequency and can vibrate in natural resonance due to engine and road surface excitations, damping of the system is expedient. This is achieved by a rubbing folded spiral-seam tube which is connected with the outer corrugated portions 21, 22 via the projection.
(22) In
(23)
(24) There is produced an in-situ connection which does not require a particular design (e.g. a smooth region for applying a welding seam).
(25) When the outer edge of the punching tool 30 is shaped differently, for example has an attached mandrel, a punctual deformation can be produced in the region of the connection 15, so that a connection 15, as shown in
(26) The connection 15 also can be achieved by means of other deforming tools 30, such as e.g. hydroforming devices, devices for deforming elastomers, a device for electromagnetic shaping and/or a device for roll forming. These methods or devices also can be used in combination with each other.
(27)
(28) The inner pipe elements 2A, 2B each are formed integrally, i.e. there is no connecting means 4.
(29) The outer surfaces of the side walls of the projection 12B of the first inner pipe element 2B flatly rest in parallel against the inner surfaces of the projection 12A of the second inner pipe element 2A. The outer surfaces of the projection 12A of the second inner pipe element 2A in turn rest against the inside of the projection 11 of the outer pipe element 1. In essence, a plurality of corrugations here are inserted into each other in radial direction.
(30)
(31) Independent of whether an inner pipe element 2 with a preformed connecting means 3 or with a connecting means preformed in situ is used, the manufacture of the at least partly flat connection of the outside of the projection 12 of the at least one inner pipe element 2 with the inside of the projection 11 of the outer pipe element 1 (or another inner pipe element 2, as in
LIST OF REFERENCE NUMERALS
(32) 1 outer pipe element 2, 2A, 2B inner pipe element 3 flange element 4 connecting element 5 pipe sections 11 projection of outer pipe element 12 projection of inner pipe element 15 connection between inner pipe element and outer pipe element 21 first corrugated portion 22 second corrugated portion 30 deforming tool, spreading tool 31 movable element at the spreading tool 32 female die 100 pipe component; exhaust-gas pipe component