APPARATUS FOR COMPACTING AND/OR STRUCTURING A NONWOVEN, AND A STRUCTURAL SHELL
20210292946 · 2021-09-23
Assignee
Inventors
- Thomas Weigert (Sulzbach, DE)
- Peter Körner (Langen, DE)
- Florian SEILS (Seligenstadt, DE)
- Rolf Schröder (Langen, DE)
- Bernd Stork (Riedstadt, DE)
Cpc classification
D04H1/46
TEXTILES; PAPER
D04H1/495
TEXTILES; PAPER
D06C29/00
TEXTILES; PAPER
International classification
Abstract
The invention relates to a device for hydroentangling and/or structuring webs that includes an suctioning rotating drum and a structured shell, including at least two rings which can be pushed on and attached to the drum, is disposed at a distance from the cylindrical surface of the drum around. A web can be at least partially looped around the structured shell. At least one water bar including a nozzle strip with a plurality of nozzles is arranged relative to the structured shell to entangle and/or to structure and/or to perforate the web by the water jets. The invention further relates to the structured shell.
Claims
1. A device for hydroentangling and/or structuring a web, comprising: a suctioned rotating drum having a cylindrical surface; a structured shell disposed on the drum at a distance from the cylindrical surface, the structured shell including at least two rings which can be pushed on and attached to the drum, wherein the web can loop at least partially around the cylindrical surface of the structured shell; and at least one water bar including a nozzle strip with a plurality of nozzles, wherein the water bar is arranged relative to the structured shell to entangle and/or to structure and/or to perforate the web when on the structured shell by the water jets.
2. The device according to claim 1, rings collectively have a width in a longitudinal direction of the drum and the rings have edges that abut one another, and the plurality of nozzles of the water bar extend to the width of the rings and are interrupted in an area of the abutting edges of the rings.
3. The device according to claim 1, and further including distancing elements disposed on the cylindrical surface of the drum to distance the rings from the cylindrical surface of the drum.
4. The device according claim 1, further comprising clamping elements to axially affix the rings on the drum.
5. The device according claim 1, wherein the rings comprise 3D printed rings or rings made by laser sintering.
6. The according to claim 1, wherein each ring comprises at least one segment.
7. The device according claim 1, wherein each ring includes at least two sections each of which has different structuring.
8. The device according claim 1, wherein the rings have a three-dimensional pattern; which rises above a surface of the rings.
9. The device according claim 1, further including mounting rings arranged to connect the rings together at edges of the rings.
10. The device according claim 1, wherein the rings have overlapping edges at which the rings are connectable by material, positively and/or non-positively.
11. A structured shell for the use in a device for entangling and/or structuring a web by hydroentangling, wherein the structured shell comprises at least two rings.
12. The structured shell according to claim 11, wherein the rings comprise 3D printed rings or rings made by laser sintering.
13. The structured shell according to claim 11, including a surface coating to connect the at least two rings.
14. The structured shell according to claim 11, wherein each ring comprises at least one segment.
15. The structured shell according to claim 11, wherein each ring includes at least two sections each of which has different structuring.
16. The structured shell according to claim 11, wherein the rings have a three-dimensional pattern which rises above a surface of the rings.
17. The structured shell according to claim 11, further including mounting rings arranged to connect the rings together at edges of the rings.
18. The structured shell according to claim 11, wherein the rings have overlapping edges, at which the rings are connectable by material, positively and/or non-positively
19. The structure shell according to claim 11, wherein each ring comprises two segments.
20. The device according to claim 1, wherein each ring comprises two segments.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The invention is described in greater detail below in conjunction with the accompanying drawings in which a preferred exemplary embodiment of the invention is disclosed and other features and benefits will become apparent.
[0016]
[0017]
[0018]
[0019]
[0020]
DETAILED DESCRIPTION
[0021]
[0022] The structured shell 11 is made from several pieces and, in this example, consists of four individual rings 12, 13, 14, 15, which are pushed on to the drum 10. The distance of the structured shell 11 to the drum 10 can be established with spacers and/or an additional strainer shell. In this exemplary embodiment, the drum 10 has a wider width in the axial direction than the structured shell 11, which only covers a portion of the drum 10. For centring the structured shell in the middle, lateral distancing elements 25 are pushed on to the drum 10, which are attached to the front faces of the drum 10 by clamping elements 26. The clamping elements 26 with the lateral distancing elements 25 allow for a variable width of the structured shell 11, which can consist of at least two rings, or of many rings, which together cover the entire drum 10. Thereby, the installation can be adapted to the width of the continuous web of material to be treated to minimize energy use. Alternative attachments for the rings are possible within the scope of the invention, for example a bracing of the rings between drum and ring by spring-loaded clamping elements or other mechanical fastener that will be apparent to those skilled in the art.
[0023] The water bar 1 illustrated in
[0024]
[0025]
[0026] The ring 12 includes alternating sections 12c, 12d, 12e with different structuring such that either a continuous uniform pattern is created in the web over the width of the ring 12 or separate or continuous areas with different patterns are producible in the web.
[0027] An enlarged area broken out in
[0028]
[0029]
[0030] In
[0031] As at least two rings 12, 13 form the structured shell 11, manufacturing methods can be employed which are not readily possible for the entire working width of a drum 10 for hydroentangling. In particular, laser sintering or other 3D print methods allow for complex surface structuring, which are not possible with traditional stamping and/or etching methods.
[0032] Separately mounting the rings 12, 13, 14, 15 releasably to the drum 10 results in the advantage of easy mounting and flexibly adapting to the width of the web to be treated. The rings 12, 13, 14, 15 with different surfaces can be mounted in optional order and arrangement, which makes manufacturing strip-shaped webs very flexible. In this case, the water bar 1 with an adapted nozzle strip 2 is adaptable to the structured shell 11, wherein, in the area of the abutting edges of the rings, the nozzle strip 2 has interruptions 5, so that no strip-marks form in the web.
[0033] Mounting the rings 12, 13, 14, 15 non-releasably to each other before or as assembled on the drum 10, results in an integrally structured shell 11 after the mounting is completed. Based on the manufacturing method, this can have a more varied surface structuring than would be possible with a one-piece structured shell 11. If it is intended to produce a wide web without longitudinal strips having a complex surface structuring and/or perforation, the individual rings 12, 13, 14, 15 can be joined to each other as well and the surface can be electroplated, for example nickel plated such as to be able to manufacture an integral structured shell 11 from individual rings. This shell is advantageous in that complex surface structuring is possible without the manufacturing method producing longitudinal strips in the web. The nozzle strip 2 can be correspondingly adapted and embodied with or without interruptions 5.