METHOD AND DEVICE FOR MANUFACTURING A PIPE SHELL FROM AN INSULATING MATERIAL
20220105671 · 2022-04-07
Inventors
- Nikolaus Wesely (Impflingen, DE)
- Harald Ligtenberg (Kürten, DE)
- Hans-Joachim Höller (Bergisch Gladbach, DE)
- Romain Lecomte (Köln, DE)
Cpc classification
B29C53/566
PERFORMING OPERATIONS; TRANSPORTING
B29C53/828
PERFORMING OPERATIONS; TRANSPORTING
B29C53/845
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C53/56
PERFORMING OPERATIONS; TRANSPORTING
B29C53/80
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a method and a device for manufacturing a pipe shell from an insulating material by means of which the cycle times can be further reduced while the quality of the pipe shell is simultaneously improved, by at least one web (29) of the insulating material which is provided with a binding agent being wound around a core (19) by means of at least two opposing belts (12, 13) which wrap around the core (19) partially. The method steps are characterized in that the at least one wound-up web (32) of insulating material is removed in a radial direction of the core (19) which is, however, not opposite to the direction in which the at least one web (29) of insulating material was fed by the one belt (12), especially by the wound-up web (32) being discharged through the same belt (12).
Claims
1. A method for manufacturing a pipe shell (32) of an insulating material by at least one web (29) of the insulating material which is provided with a binding agent being wound around a core (19) by means of at least two opposing belts (12, 13) which wrap around the core (19) partially, comprising the following method steps: the at least one web (29) of insulating material is fed to the core (19) by means of one of the belts (12), the at least one web (29) of insulating material is wound upon the core (19) by the at least two belts (12, 13), the at least one wound-up web (29) of insulating material is removed between the at least two belts (12, 13), characterized in that the at least one wound-up web (32) of insulating material is removed in a radial direction of the core (19) which is not opposite to the direction in which the at least one web (29) of insulating material was fed by the one belt (12), especially by the wound-up belt (32) being discharged by the same belt (12).
2. The method according to claim 1, characterized in that a heating gas, in particular hot air, is blown through the core (19) into the web (29) of the insulating material, in particular after the web (29) has been partially wound around the core (19) with at least one complete revolution.
3. The method according to claim 2, characterized in that the binding agent in the web (29) of insulating material is hardened only partially by the heating gas, especially hot air, and is hardened completely in a separate furnace after the complete winding of the web (29) to form the pipe shell (32), in particular after the core (19) has been removed from the pipe shell (32).
4. A device for performing the method according to claim 1, comprising a core (19) and at least two opposing and pre-tensioned belts (12, 13) which are each guided by two contour rollers (20, 21) movable toward and away from the belt (19) such that the belts (12, 13) each wrap around the core (19) partially.
5. The device according to claim 4, characterized in that each belt (12, 13) is guided through the contour rollers (20, 21) and through deflection rollers (14, 15, 16, 17) and is pre-tensioned by a tensioning roller (18), wherein the arrangements of the belts (12, 13) with the respectively associated contour rollers (20, 21), the deflection rollers (14 to 17) and the tensioning roller (18) are designed symmetrically.
6. The device according to claim 4, characterized in that the arrangements of the belts (2, 13) with the respectively associated contour rollers (20, 21), the deflection rollers (14 to 17) and the tensioning roller are collectively movable toward and away from each other.
7. The device according to claim 4, characterized in that at least one of the belts (12, 13), in particular all belts (12, 13) are circulatingly drivable.
8. The device according to claim 7, characterized in that the belts (12, 13) are drivable synchronously to each other or at different speeds.
9. The device according to claim 7, characterized in that the core (19) is rotatingly drivable, especially synchronously to the belts (12, 13).
10. The device according to claim 4, characterized in that the contour rollers (20, 21) are arranged to be displaced in a direction parallel to a symmetry plane between the winding devices (10, 11).
11. The device according to claim 4, characterized in that the core (19) comprises a gas-permeable sheath adapted to be impacted from the interior with a heating gas, especially hot air.
12. The device according to claim 4, characterized in that the core (19) is formed of two half cores which are arranged one behind the other viewed in the axial direction of the core such that the half cores are adapted to be pulled out from the pipe shell (32) in opposite directions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The invention will be explained in detail in the following by means of an embodiment illustrated in the drawing. The drawing shows:
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0029] The device shown in
[0030] The bottom winding device 10 comprises a belt 12 designed as a circulating continuous belt 12. Equally, the top winding device 11 comprises a belt 13 which is also designed as a circulating continuous belt. The belts 12, 13 are guided around deflection rollers 14, 15, 16 and 17 and are pre-tensioned with an adjustable tensile strength by a tensioning roller 18. At least one of the deflection rollers 14 to 17 is driven rotatingly and thus also drives the respective belt 12 or 13. For avoiding slip, a positive locking, for example toothed, connection may be provided between the respectively driven deflection rollers 14 to 17 and the associated belt 12 or 13. Additionally or alternatively the tensioning roller 18 may also be designed to be drivable and possibly toothed.
[0031] A core 19 is provided between the belts 12 and 13. Different cores 19 with different outer diameters are provisioned. For the manufacturing of a pipe shell the suitable core 19 is selected in correspondence with the desired inner diameter of the pipe shell. The core 19 is mounted to be rotated about its longitudinal axis and is taken along by the movement of the belts 12 and 13. The core may, however, also be driven rotatingly itself, in particular if slip between the core 19 and the belts 12, 13 is to be avoided. In this case the core 19 is driven synchronously to the speed of the belts 12, 13. It is also conceivable that merely the core 19 is driven rotatingly and takes along the belts 12, 13.
[0032] Each winding device 10, 11 comprises two contour rollers 20 and 21 which arrange for it that the belts 12 and 13 wrap around the core 19 in a particular radian. In the instant case the contour rollers 20, 21 are arranged such that the belts 12, 13 wrap around the core 19 by somewhat less than 180° each. Both belts 12, 13 jointly accordingly thus wrap around the core 19 almost completely.
[0033] The core 19 is provided with a gas-permeable sheath and may be impacted from the interior with a heating gas, concretely hot air, which gets radially to the outside through the gas-permeable sheath.
[0034] The bottom winding device 10 and the top winding device 11 are altogether, as illustrated by the respective double arrow 22, movable toward each other and away from each other, in the instant case concretely to the top and to the bottom. With reference to the respective winding device 10 or 11 the deflection rollers 14 to 17 are arranged on a fixed position and move jointly with the winding device 10, 11 they are associated with. The deflection rollers 14 of the bottom and top winding devices 10, 11 are, as recognizable in
[0035] The contour rollers 20, 21 are movable away from the core 19 and toward the core 19, as indicated by the double arrows 25. In the instant case the contour rollers 20, 21 are displaceable horizontally, or quite general in parallel to the symmetry plane between the winding devices 10, 11, wherein a different direction of displacement would also be possible. The horizontal direction of displacement is, however, preferred since it does not or only slightly change the wrap-around angle of the respective belt 12, 13 around the core 19.
[0036] With the device described, pipe shells are manufactured as follows:
[0037] First of all the bottom winding device 10 and the top winding device 11 are driven apart. Now, a core 19 is introduced in the device between the belts 12, 13. The outer diameter of the core 19 is chosen in correspondence with the desired inner diameter of the pipe shell to be manufactured. Now, the winding devices 10, 11 are driven together again, so that the position illustrated in
[0038] A web 29 of insulating material which is provided with a binding agent, in practice of mineral wool, is placed in the inlet aperture 23 in a suitable manner and comes to rest on the corresponding section of the lower belt 12 (
[0039] As illustrated in
[0040]
[0041] If a pipe shell with even larger wall thickness, i.e. also larger outer diameter, is desired, one or a plurality of further webs 29 of the insulating material are fed. This is shown in
[0042] As soon as the desired outer diameter and thus the desired wall thickness of the pipe tube have been achieved, the winding process is terminated. Furthermore, the supply of hot air is also stopped as soon as the binding agent has been sufficiently hardened partially. Ideally, this occurs simultaneously with the end of the winding process. A partially hardened pipe shell 32 now exists on the core. As the case may be, the belts 12, 13 continue circulating along with the core 19 until the supply of hot air can also be terminated, i.e the pipe shell 32 has been sufficiently hardened partially (
[0043] The tubular pipe shell 32 which is partially hardened now is finally removed from the device. This may take place in that the winding devices 10, 11 are again driven apart and the partially hardened pipe shell 32 is removed from the device along with the core 19. Since, however, the pipe shell 32 is already sufficiently hardened partially and is thus stabilized, the core 19 may first of all also be pulled out of the pipe shell 32 in the axial direction and only then the pipe shell 32 may be removed from the device. The belts 12, 13 meanwhile hold the pipe shell 32. The core 19 is instantly available again for the manufacturing of a further pipe shell. Only one core 19 per size (desired inner diameter of the pipe shell) is required for the device.
[0044] In the instant case the web 29 was fed to the core 19 by the belt 12 from the left side. The wound-up web and/or the (partially) hardened pipe shell 32 is removed from the device in the same direction, i.e. also to the right, away from the core 19. This takes place preferably in that the wound-up web and/or (partially) hardened web is also discharged from the device by the belt 12 which is still circulating in the same direction.
[0045] As soon as the pipe shell 32 has been removed from the device, the pipe shell 32 is hardened completely in a separate furnace and is subsequently divided e.g. in two half shells in the longitudinal plane.
[0046] The core 19 may be formed integrally and is then pulled out from the pipe shell 30 over the entire length thereof. However, two partial cores positioned one behind the other in the axial direction of the core 19 and/or the pipe shell 32 may also be provided. Each of the partial cores is then pulled out of the pipe shell 32 in the axial direction to the front and/or the rear. For each partial core a shorter path thus results, so that the core 19 can altogether be pulled out of the pipe shell 30 more quickly.
[0047] The device is illustrated in the drawing such that the symmetry plane between the bottom winding device 10 and the top winding device 11 extends in a horizontal plane. The device may, however, also be oriented differently, so that the symmetry plane between the winding devices 10, 11 extends at an angle to the horizontal or even vertically. To the extent that a horizontal direction is mentioned in the instant description and the enclosed claims, this always means the direction in which the symmetry plane between the winding devices 10, 11 extends.
[0048] It is also possible to provide three or even more winding devices whose belts will then wrap around the core preferably each in a third of a circle or a quarter of a circle or a correspondingly smaller circular segment. This makes it possible to achieve an even more regular pressure distribution by the belts on the web of insulating material. Since, however, the device becomes more complex thereby, the illustrated embodiment with two winding devices 10, 11 is preferred.
[0049] The foregoing description assumes that the belts 12, 13 are driven with equal circulation speed and that also the core 19, to the extent that it has a separate drive and is not dragged along by the belts, is driven synchronously thereto. It is, however, also conceivable to drive the belts 12 and 13 specifically with different speeds. By the specifically different speeds of the two belts 12, 13 stretching or compressing effects (“crepage”) can be achieved.
[0050] Since the inner web 29 and/or at least the inner layer(s) of the web 29 have already been hardened (partially) while winding up is continued, the tensioning of the belts 12, 13 can also be varied by an appropriate force regulation of the tensioning rollers 18 from layer to layer and/or from web 29 to web 29, and hence also the bulk density. Thus, for instance, a higher bulk density may be provided in the interior and a lower bulk density in the outer area.
[0051] Since only one core 19 per desired inner diameter of the pipe shell 32 is required, the exchange of core cannot only be facilitated, but can also be automated. Thus, the cores 19 may, for instance, be provisioned in a core storage from which they are taken automatically. They might also be provisioned in a kind of revolver. The revolver moves the core 19 with the desired diameter in front of the device and a displacing unit then displaces the core 19 axially to the position between the winding devices 10, 11 illustrated in the Figures.
[0052] The pipe shell 32 may also be removed from the device in that merely the rear part in the discharge direction, i.e. the contour roller pair 21 and the roller pair 17, are driven apart in an appropriate manner.