COMPACTOR DEVICE

20220275541 · 2022-09-01

    Inventors

    Cpc classification

    International classification

    Abstract

    A compactor device for compacting a sliver that is drawn by a drafting system of a textile machine is provided. In accordance with the invention, it is envisaged that the compactor device is designed as a channel compactor and has a guide channel, designed in the shape of a screw in the running direction of the sliver, wherein the entry opening of the guide channel is widest horizontally and the exit opening of the guide channel is arranged rotated at least 30° with respect to the entry opening.

    Claims

    1. A drafting system of air-spinning machine or roving flyer, which drafting system has a pre-draft field and a compactor device for compacting a sliver that is drawn through the drafting system, wherein the compactor device is designed as a channel compactor and has a guide channel designed in a shape of a screw in a running direction of the sliver, wherein an entry opening of the guide channel is widest horizontally and an exit opening of the guide channel is arranged at a rotation angle being between 30° and 160° with respect to the entry opening, characterized in that the compactor device is arranged in front of a roller pair of the drafting system to deliver the sliver in such a rotated manner that the edge fibres of the sliver are immediately compacted by the roller pair.

    Description

    DETAILED DESCRIPTION OF THE DRAWINGS

    [0046] The invention is explained in greater detail below on the basis of embodiment examples shown in the drawings.

    [0047] The figures show:

    [0048] FIG. 1 is a schematic front view of an air spinning machine with a number of spinning positions, each of which has an air spinning unit with an upstream drafting system,

    [0049] FIG. 2 is a side view of a drafting system shown as a four-roller drafting system positioned in front of an air spinning unit, with a channel compactor in accordance with the invention in the area of the mid-drafting field,

    [0050] FIG. 3 is a side view of a four-roller drafting system as in FIG. 2, with a channel compactor in accordance with the invention in the area of the pre-drafting field of the drafting system,

    [0051] FIG. 4 is a side view of a four-roller drafting system as in FIG. 2, with a channel compactor in accordance with the invention in front of the entry roller pair of the drafting system,

    [0052] FIG. 5 is a side view of a workstation of a roving frame, with a three-roller drafting system, that has a channel compactor in accordance with the invention in the area of the pre-drafting field of the drafting system,

    [0053] FIG. 6 is a perspective view of a first embodiment in accordance with the invention,

    [0054] FIG. 7 is a front view of the channel compactor as in FIG. 6,

    [0055] FIG. 8 is a view of another embodiment of the channel compactor in accordance with the invention, and

    [0056] FIG. 9 is a view of another embodiment of the channel compactor in accordance with the invention.

    DETAILED DESCRIPTION OF THE DRAWINGS

    [0057] FIG. 1 shows a schematic front view of an air spinning machine 1. As shown, these types of air spinning machines 1 have a number of workstations 2 positioned in a row next to one another between their so-called end stations 15, 16 at their end sides, which are often also designated as spinning positions.

    [0058] Material is processed on these spinning positions 2, for example sliver 4 stored in a spinning can 3. This means that sliver 4 is spun into a yarn at this spinning position 2.

    [0059] For this purpose, spinning position 2 has various devices. The spinning positions 2 each have, for example, a drafting system 5, an air spinning unit 6, a thread drafting device 7, a yarn clearer 8 and a winding device 11.

    [0060] The drafting system 5, which can, for example, be designed as a four-roller drafting system or as a three-roller drafting system, also has a channel compactor in accordance with the invention, which is not represented in FIG. 1 for reasons of improved clarity. This channel compactor 40 is explained below in detail using FIGS. 2 to 9.

    [0061] As indicated in FIG. 1, the yarn prepared in the air spinning unit 6 from sliver 4 is wound by an associated thread changing device 9 in cross-wound layers onto a take-up package 17, creating a cross-wound package.

    [0062] The cross-wound package 17 is held, in the usual way, in a package cradle (not shown) and is rotated during the spinning process by a package drive (also not shown).

    [0063] As further represented in FIG. 1, the workstations 2 of the air spinning machine 1 are supplied by an independently working operating unit 12, that can be moved on rails 13, 14 along the workstations depicted as spinning positions 2.

    [0064] The FIGS. 2, 3 and 4 each show a positioning option of a channel compactor 40 in accordance with the invention positioned in the area of a drafting system 5.

    [0065] In the embodiment examples, the drafting system 5, that drafts a sliver 4, is depicted as a four-roller drafting system and is arranged in front of an air spinning unit 6 of an air spinning machine 1.

    [0066] In accordance with FIG. 2, the channel compactor 40 in accordance with the invention is positioned in the area of the so-called mid-draft field 33.

    [0067] As can be seen, a sliver 4 that is drawn from a (not shown) spinning can 3 by an intake roller pair 22, which consists of an upper roller 18 and a lower roller 19, is drawn into drafting system 5, and is finally transported to air spinning unit 6 and drafted by means of the additional pairs 24, 26, 28.

    [0068] The roller pairs 24, 26, 28 are each consisting of an upper roller 20 and a lower roller 25, and upper roller 21 and a lower roller 27 or an upper roller 23 and a lower roller 29. The upper roller 21 and the lower roller 27 each work together with one of the aprons 30 or 31, which are positioned in the area of the so-called main drafting field 34. The upper roller 23 and the lower roller 29 represent the exit roller pair 28 of the drafting system 5. This means that, in the present four-roller drafting system 5, the first two roller pairs 22, 24 represent a pre-drafting field 32 for the sliver 4, looked at in running direction F of the sliver 4. The following drafting system section between the roller pair 24 and the roller pair 26 form a so-called mid-drafting field 33, in which the channel compactor 40, designed in accordance with the invention, is also positioned, while the roller pairs 26, 28, as indicated above, form the main drafting field 34 of the drafting system 5.

    [0069] As can be seen, the sliver 4 is transported to air spinning unit 6 by the roller pairs 22, 24, 26 and 28.

    [0070] Because the circumferential speeds of the roller pairs 22, 24, 26, 28 increase in the running direction F of the sliver, the sliver 4 is drafted during transport.

    [0071] The drafting of the sliver 4 can be up to 180 times its original length.

    [0072] As is moreover shown in FIG. 2, the air spinning aggregate 6 has a nozzle device 42 on its input side, the nozzles 43, 44 of which are connected with a pressurised air source 46 via a pneumatic line 45. A hollow spinning cone 47 is connected to the nozzle device 42, which is surrounded by an air chamber 48, which is connected with a low pressure source 50 via an additional pneumatic line 49.

    [0073] During the spinning operation, the air emerging from the nozzles 43, 44 creates a rotation flow, which hits the drafted sliver 4. This means that, through the cooperation of the nozzle device 42 and spinning cone 47, a yarn 10 is formed in the air spinning unit 6 that is drawn from the air spinning device 6 through the hollow spinning cone 47.

    [0074] Further details on the spinning process using this type of air spinning unit 6 can be found in German Patent Publication DE 199 26 492 A1, for example.

    [0075] The channel compactor 40, designed in accordance with the invention and in accordance with the embodiment example of FIG. 2, positioned in the area of the mid-drafting field 33, ensures that during the drafting process the sliver 4, which runs into the drafting system 5 in a flat horizontal direction, is turned in the channel compactor 40 in e.g. a vertical direction by means of its screw-shaped guide channel 35. The sliver 4 thereby temporarily receives a false twist, which leads to the compacting of the sliver 4 on all sides.

    [0076] This compacting of the sliver 4 on all sides is not only maintained during the passage of the sliver 4 through the drafting system 5, but rather is enhanced even further in drafting system 5.

    [0077] The embodiment example depicted in FIG. 3 differs from the embodiment example depicted in FIG. 2 only in the positioning of the channel compactor 40 in the area of the drafting system 5 in accordance with the invention.

    [0078] As can be seen, in the embodiment example in FIG. 3 the channel compactor 40 in accordance with the invention is positioned in the area of the pre-drafting field 32 of the drafting system 5.

    [0079] Even with such a positioning of the channel compactor 40, the sliver 4 temporarily receives a false twist and is thereby compacted on all sides.

    [0080] The embodiment example depicted in FIG. 4 also essentially differs from the embodiment examples depicted in FIGS. 2 and 3 in the positioning of the channel compactor 40 in the area of the drafting system 5 in accordance with the invention.

    [0081] As can be seen, in this embodiment example the channel compactor 40 in accordance with the invention is positioned in front of the entry roller pair 22 of the drafting system 5. Such a positioning of the channel compactor 40 means that the sliver 4 is already turned in, for example, a vertical direction from a flat horizontal position before it enters drafting system 5.

    [0082] Even with a positioning of the channel compactor 40 in front of the entry roller pair 22 of the drafting system 5, the sliver 4 temporarily receives a false twist and is thereby compacted on all sides.

    [0083] The further integration of the edge fibres into the sliver 4 that is associated with the compacting of the vertically positioned sliver 4 not only leads to an improvement in the quality of the sliver 4 running into the air spinning unit, but also leads to a significant reduction in the peeling away of fibres that occurs during the spinning process.

    [0084] FIG. 5 shows a strongly schematic side view of a workstation of a pre-spinning machine, in the represented embodiment example, the workstation of a so-called roving frame 51.

    [0085] As is generally known, slivers 4 that are not rotated are drafted using roving frames such as roving frame 51, and thereby processed into roving threads that already have some yarn rotation.

    [0086] These roving threads with some yarn rotation are then spun into fine yarns in textile machines further downstream in the production process, for example ring spinning machines.

    [0087] As depicted, the workstations of such roving frames 51 usually have two rotatable roving frame flyers 53 in one flyer bench 52, which are usually supplied by an upstream three-roller drafting system 5.

    [0088] In the present embodiment example, there is also a channel compactor 40 in accordance with the invention positioned in the area of the pre-drafting field 32 of the drafting system 5.

    [0089] As can be seen, a sliver 4 that is drawn from a (not shown) spinning can 3 by an intake roller pair 22, which consists of an upper roller 18 and a lower roller 19, is drawn into drafting system 5, and is finally transported to drafting system 5 and drafted by means of the additional roller pairs 26, 28 of drafting system 5.

    [0090] As is standard, the roller pairs 26, 28 are each composed of a top roller 21 or 23 and a bottom roller 27 or 29 whereby, looked at in the running direction F of the sliver 4, the first two roller pairs 22, 26 form a pre-drafting field 32, in which a channel compactor 40 is positioned and is designed in accordance with the invention.

    [0091] The roller pairs 26, 28 form the connected main drafting field 34 of the drafting system 5, whereby the roller pair 28 also represents the exit roller pair 28 of the drafting system 5.

    [0092] The sliver 4 is transported through the roller pairs 22, 26 and 28 to the roving frame flyer 53, which is located on a rotatable flyer bench 52, and is thereby drafted, because the circumferential speeds of the roller pairs 22, 26, 28 increase in the running direction F of the sliver 4.

    [0093] The rotating roving frame flyer 51 also ensures that the drafted sliver is twisted slightly, i.e. it becomes a so-called shaped roving frame fibre.

    [0094] As with the drafting systems for air spinning units, the channel compactor 40, positioned in the area of the pre-draft field 32 in accordance with the invention, also ensures that the sliver 4, which is initially running into the drafting system 5 in a flat horizontal direction, is twisted in, for example, a vertical direction when it runs through the channel compactor 40.

    [0095] It does this by means of its screw-shaped guide channel 35. The sliver 4 thereby temporarily receives a false twist, which leads to the compacting of the sliver 4 on all sides.

    [0096] This compacting of the sliver 4 on all sides is not only maintained as the sliver 4 is running through the drafting system 5, but rather in the area of the roller pairs 26, 28 a compacting of the vertically positioned sliver 4 occurs with the result that there is further increased integration of the edge fibres into the sliver 4.

    [0097] The roving frame thread is significantly more compact and less hairy than previously known roving frame threads, which means that the roving frame thread can be better processed during the subsequent work process on a ring spinning machine. This means that, during the processing of such compact and less hairy roving frame threads, spinning triangles occur on the spinning positions of the ring spinning machines that are minimised as regards their width, which represents a significant improvement in the quality of the roving frame threads.

    [0098] FIG. 6 shows, on a larger scale and in a perspective view, an initial embodiment of a channel compactor 40 in accordance with the invention, which preferably is manufactured in a 3D printing process from an abrasion-resistant plastic.

    [0099] As can be seen, the channel compactor 40 has a guide channel 35 with an entry opening 36 and an exit opening 37, whereby the entry opening 36, is positioned horizontally in the casing of the channel compactor 40.

    [0100] This means that the entry opening 36 of the channel compactor 40 has its greatest width horizontally, when the channel compactor 40 is attached to the relevant drafting system construction, for example by means of locking devices 41.

    [0101] In this mounted state a sliver 4, the running direction of which is labelled with F in FIG. 5, can run into the guide channel 35 of the channel compactor 40 in a flat, horizontal direction through the entry opening 36.

    [0102] Because the exit opening 37 is positioned at an angle α with respect to the entry opening 36, in the embodiment example of FIGS. 6, 7, 8 and 9 at 90°, the sliver 4 is also twisted when running through the channel compactor 40 and has a vertical direction after running out of channel compactor 40.

    [0103] According to the embodiment examples in FIGS. 6 and 7, the guide channel 35 has a light cross-section area, which is formed by two narrowing ellipses 38 extending towards the centre from both sides. This means that there are flange-like protrusions 39 between the ellipses 38.

    [0104] Such a design ensures an even, secure guiding of the sliver 4 through the channel compactor 40 during its passage.

    [0105] FIG. 7 shows a front view of the channel compactor 40 in accordance with the invention pursuant to FIG. 6.

    [0106] As can clearly be seen here, the exit opening 37 is positioned at an angle of α with respect to the entry opening 36. The angle α has a measurement in the embodiment example of, for example, 90°. However, other angles between, for example, 30° and 160° are also possible.

    [0107] FIGS. 8 and 9 show further possible embodiments of a channel compactor 40 according to the invention.

    [0108] FIG. 8 shows a channel compactor 40, the guide channel 35 of which has a maximum width of B in the area of its horizontally positioned entry opening 36. As, can be seen, this maximum width B then reduces throughout the guide channel 35 and has its final minimum width of B-X in the area of the exit opening 37, which is arranged rotated in a vertical direction compared to the entry opening 36.

    [0109] FIG. 9 shows a channel compactor 40, which is comparable in principle. In this embodiment, the guide channel 35 of the channel compactor 40 has a minimum width of B.sub.1 in the area of its horizontally positioned entry opening 36. This minimum width B.sub.1 then reduces through the guide channel 35 and has its final maximum width B.sub.1+X in the area of the exit opening 37, which is arranged rotated in a vertical direction compared to the entry opening 36.

    LIST OF REFERENCE NUMBERS

    [0110] 1 Air spinning machine

    [0111] 2 Spinning position

    [0112] 3 Spinning can

    [0113] 4 Sliver

    [0114] 5 Drafting system

    [0115] 6 Air spinning unit

    [0116] 7 Yarn take-up device

    [0117] 8 Yarn clearer

    [0118] 9 Yarn changing device

    [0119] 10 Yarn

    [0120] 11 Winding device

    [0121] 12 Operating unit

    [0122] 13 Rail

    [0123] 14 Rail

    [0124] 15 End frame

    [0125] 16 End frame

    [0126] 17 Cross-wound package

    [0127] 18 Top roller

    [0128] 19 Bottom roller

    [0129] 20 Top roller

    [0130] 21 Top roller

    [0131] 22 Entry roller pair

    [0132] 23 Top roller

    [0133] 24 Roller pair

    [0134] 25 Bottom roller

    [0135] 26 Roller pair

    [0136] 27 Bottom roller

    [0137] 28 Roller pair

    [0138] 29 Bottom roller

    [0139] 30 Apron

    [0140] 31 Apron

    [0141] 32 Pre-draft field

    [0142] 33 Mid-draft field

    [0143] 34 Main draft field

    [0144] 35 Guide channel

    [0145] 36 Entry opening

    [0146] 37 Exit opening

    [0147] 38 Ellipse

    [0148] 39 Protrusion

    [0149] 40 Channel compactor

    [0150] 41 Locking device

    [0151] 42 Nozzle device

    [0152] 43 Nozzle

    [0153] 44 Nozzle

    [0154] 45 Pneumatic line

    [0155] 46 Pressurised air source

    [0156] 47 Spinning cone

    [0157] 48 Air chamber

    [0158] 49 Pneumatic line

    [0159] 50 Negative pressure source

    [0160] 51 Roving frame

    [0161] 52 Flyer bench

    [0162] 53 Flyer

    [0163] F running direction