DEVICE FOR CRIMPING MULTIFILAMENT THREADS
20170081790 · 2017-03-23
Assignee
Inventors
Cpc classification
International classification
Abstract
A technique for crimping multifilament threads involves a device having an injector installation and having a stuffing installation. The injector installation has a conveying duct having a thread inlet. The conveying duct of the injector installation opens into a stuffer chamber of the stuffing installation. The stuffer chamber in an upper chamber portion, between a plurality of wall portions of a chamber wall, has a plurality of slot-shaped air-exhaust openings. The wall portions of the chamber wall, in order to configure the air-exhaust openings, each have one flow edge which is aligned so as to be tangential to a chamber circle.
Claims
1. Device for crimping multifilament threads, having an injector installation and having a stuffing installation, wherein the injector installation has a conveying duct having a thread inlet, wherein the conveying duct of the injector installation opens into a stuffer chamber of the stuffing installation, wherein the stuffer chamber in an upper chamber portion, between a plurality of wall portions of a chamber wall, has a plurality of slot-shaped air-exhaust openings, and wherein the wall portions of the chamber wall, in order to configure the air-exhaust openings, each have one flow edge which is aligned so as to be tangential to a chamber circle.
2. Device as claimed in claim 1, wherein the flow edges of the wall portions, based on a diameter of the chamber circle, are configured so as to be symmetrical in a mutually adjacent manner.
3. Device as claimed in claim 1, wherein the chamber circle, in order to align the flow edges, in terms of diameter is chosen so as to be smaller than or equal to a cross-sectional envelope of the stuffer chamber.
4. Device as claimed in claim 1, wherein the wall portions of the chamber wall are formed by a plurality of fins, wherein the flow edges are formed on internal sides of the fins and wherein the air-exhaust openings each extend between two adjacent fins.
5. Device as claimed in claim 4, wherein the fins, so as to form a round chamber cross section of the stuffer chamber, are disposed beside one another in an overlapping manner.
6. Device as claimed in claim 4, wherein the fins in an internal wall region have a plurality of bores which open into an air-exhaust duct.
7. Device as claimed in claim 1, wherein the fins are disposed on a support, wherein the free ends of the fins lead into a lower chamber portion of the stuffer chamber.
8. Device as claimed in claim 1, wherein the injector installation has a compressed-air supply which in the conveying duct produces a swirl flow.
9. Device as claimed in claim 8, wherein the injector installation and the arrangement of the wall portions of the stuffer chamber are adapted to one another in such a manner that a rotational direction of the swirl flow counteracts an exhaust flow which exits through the air-exhaust openings.
10. Device for crimping multifilament threads, the device comprising: an injector mechanism that includes a conveying duct having a thread inlet, and a stuffing mechanism that includes a stuffer chamber having a chamber wall, wherein the conveying duct of the injector mechanism opens into the stuffer chamber of the stuffing mechanism, wherein the stuffer chamber in an upper chamber portion, between a plurality of wall portions of the chamber wall, has a plurality of slot-shaped air-exhaust openings, and wherein the wall portions of the chamber wall, to configure the air-exhaust openings, each have one flow edge which is aligned so as to be tangential to a chamber circle.
Description
[0017] The invention will be explained in more detail hereunder by means of a few exemplary embodiments of the device according to the invention, with reference to the appended figures in which:
[0018]
[0019]
[0020]
[0021]
[0022]
[0023] A first exemplary embodiment of the device according to the invention is schematically shown in a plurality of views in
[0024] As can be derived from the illustration in
[0025] The conveying duct 3 is assigned a compressed-air supply 2 through which preferably heated compressed air is introduced into the conveying duct 3. The compressed-air supply 2 is formed by a compressed-air connector 7, a compressed-air duct 6, and at least two injector bores 5.1 and 5.2. The injector bores 5.1 and 5.2 open into the conveying duct 3 in such a mutually offset manner that compressed air which is introduced into the injector bores 5.1 and 5.2 by way of the compressed-air duct 6 within the conveying duct 3 leads to a swirl flow.
[0026] During operation, a multifilament thread is suctioned into the conveying duct 3 by the vacuum effect produced at the thread inlet 4 and led to the stuffing installation 8 by means of the swirled air stream.
[0027] The stuffing installation 8 in this exemplary embodiment is formed by a stuffer chamber 9 which has an upper chamber portion 10.1 and a lower chamber portion 10.2.
[0028] In order for the upper chamber portion 10.1 of the stuffer chamber 9 to be explained, reference is additionally made to the illustration in
[0029] The diameter of the chamber circle 16 in
[0030] In order for the chamber wall 11 to be formed, the fins 14 are held by a fin support 15.
[0031] As can be derived in particular from
[0032] As can be further derived from the illustration in
[0033] During operation, a multifilament thread is conveyed by way of the conveying duct 3 of the injector installation 1 into the stuffer chamber 9 of the stuffing installation 8. At the start of the process, the stuffer chamber 9 is briefly closed off such that a thread plug is configured within the stuffer chamber 9. The thread plug fills the entire chamber cross section of the stuffer chamber 9, wherein the formation of the thread plug commencing in the upper chamber portion 10.1. In order for the conveying air of the thread from the injector installation 1 to not lead to the thread plug being blown out, the conveying air in the upper chamber portion 10.1 of the stuffer chamber 9 is laterally discharged by way of the air-exhaust openings 13 and the exhaust ducts 23 between the fins 14.
[0034] Guiding of air for ventilating the stuffer chamber is schematically indicated by flow arrows between adjacent fins 14 in
[0035] In the exemplary embodiment illustrated in
[0036] A further exemplary embodiment of the device according to the invention for crimping multifilament threads is illustrated in a plurality of views in
[0037] As opposed to the aforementioned exemplary embodiment, the chamber wall 11 of the upper chamber portion 10.1 of the stuffer chamber 9 is formed by a low number of fins 14.
[0038] As can be derived in particular from the illustration in
[0039] By virtue of the low number of fins 14 for forming the chamber wall 11, correspondingly few air-exhaust openings 13 are configured so as to be distributed across the chamber cross section. In order for intensive ventilation of the stuffer chamber 9 to nevertheless be obtained, the fins 14 have a plurality of bores 17 in an internal wall region. As can be seen in particular in the illustration of
[0040] Functioning of the exemplary embodiment as per
[0041] In the exemplary embodiments as per
[0042] An exemplary embodiment of a ventilation body 19, such as would be employable for example in the exemplary embodiment as per
[0043] The ventilation body 19 is cylindrically configured, enclosing an internal chamber portion 10.1 of a stuffer chamber 9. The chamber wall 11 is subdivided by a plurality of axially running separation slots 20 into a plurality of wall portions 12.
[0044] As can be derived in particular from
[0045] The invention thus also extends to stuffing installations of which the upper chamber portion of the stuffer chamber is formed from a ventilation body having a corresponding configuration of wall portions, or from a plurality of fins.
[0046] The devices illustrated in the exemplary embodiments may advantageously be employed for crimping multifilament yarns. Here, multifilament threads may be crimped directly in a melt-spinning process or in a multi-stage manufacturing process.