Suction drum with seal
10132011 · 2018-11-20
Assignee
Inventors
Cpc classification
International classification
Abstract
A rotatably mounted suction drum (14) of a device (VM) for compacting a fiber material (V) on a spinning machine having an annular drive element (20) which, in the operating position, rests via a portion of its inner surface (IF) on a portion of a circular peripheral surface (AU) of a projection (13) that extends coaxial to an axis of rotation (A1) of the suction drum (14) and is mounted on an end face (35) of the suction drum (14). In order to prevent fibers detached from the fiber material (V) from settling between the inner surface (IF) of the drive element (20) and the peripheral surface (AU) of the projection (13), the suction drum (14), on the end face (35) having the projection (13), has a peripheral elevation (36) and the drive element (20) on the side (46) directed toward the end face (35) of the suction drum (14) has a peripheral recess (37), wherein the elevation (36) protrudes into the recess (37) a labyrinth seal.
Claims
1. A rotatable suction drum (14) for a device (VM) for compacting a fiber material (V) on a spinning machine, comprising: an annular drive element (20); a projection (13) that extends coaxial to an axis of rotation (A1) of the suction drum (14) from an end face (35) of the suction drum (14), the projection configured so that, in an operating position, a portion of an inner surface (IF) of the annular drive element rests on a portion of a circular peripheral surface (AU) of the projection; at least one peripheral elevation (36) defined on the end face of the suction drum; at least one peripheral recess (37) on a side (46) of the annular drive element (20) directed toward the end face (35) of the suction drum (14); wherein the elevation (36) protrudes into the recess (37), and the elevation (36) and the recess (37) together form a labyrinth seal.
2. The suction drum according to claim 1, wherein the elevation (36) of the suction drum (14) has a height (H) of 1-5 mm.
3. The suction drum according to claim 1, wherein a spacing (A) of 0.1-0.5 mm is defined between the end face (35) of the suction drum (14) and the side (46) of the annular drive element (20) radially outward from the elevation (36) and the recess (37).
4. The suction drum according to claim 1, wherein the elevation (36) comprises a step-shaped projection on the end face (35) of the suction drum (14).
5. The suction drum according to claim 4, wherein a surface (39) of the projection (36) is directed radially outward from the axis of rotation (A1) at an angle (b) of 5-45 with respect to the axis of rotation (A1), and an outer diameter (DE) of the projection (36) constantly decreases toward the end face (35) of the suction drum (14).
6. The suction drum according to claim 1, wherein the annular drive element (20) is rotationally symmetrical.
7. A device (VM) for compacting a fiber material (V) on a spinning machine, comprising a suction drum (14) according to claim 1.
8. A spinning machine, comprising a device (VM) for compacting a fiber material (V) according to claim 7.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is shown and described in greater detail with reference to the following exemplary embodiments. In the drawings:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) Reference will now be made to the embodiments of the invention, one or more examples of which are shown in the drawings. Each embodiment is provided by way of explanation of the invention, and not as a limitation of the invention. For example features illustrated or described as part of the one embodiment can be combined with another embodiment to yield still another embodiment. It is intended that the present invention include these and other modifications and variations to the embodiments described herein.
(8)
(9) As is apparent from
(10) Following the drafting system unit 2, the spinning machine comprises a pivotably supported compaction module VM for compacting a fiber material V delivered by the drafting system unit 2. The compaction module VM has been retrofitted on the drafting system unit 2. The compaction module VM comprises two driven and revolving suction drums 14 which are acted upon by suction air and are rotatably supported on a support 16 in an axially parallel manner and spaced from each other. The support 16 comprises a suction channel SK connected to a negative pressure source SP, which suction channel is connected to the interior of the suction drums 14 via appropriate inserts 15. The compaction module VM is described in detail in WO 2012068692 A1.
(11) The drafted fiber material V delivered by the pair of delivery rollers 7, 8 is deflected downwardly and passes into the area of a suction zone SZ of a subsequent suction drum 14. The particular suction drum 14 is provided with perforations or openings on its periphery. A stationarily supported suction insert 15 is disposed in each case inside the rotatably supported suction drum 14. As schematically shown in
(12) As schematically indicated, the particular suction insert 15 has a suction slit S (
(13) The shaft 17 is fastened in a receptacle 19 of the carrier 16. In the area of the receptacle 19, the shaft 17 has a slightly larger diameter, while the ends of the shaft 17 extending from this receptacle on both sides have a tapered diameter, and are used for accommodating the particular bearing K. On its end face 35, i.e. on the end facing away from the carrier 16, the particular suction drum 14 has an annular projection 13 having an outer diameter D1. A portion of the inner surface IF of an annular drive element 20 rests on a portion of the outer periphery AU of the projection 13, wherein the clearance of this inner surface IF has a diameter D2. The drive element 20 is designed as a friction wheel.
(14) In the position shown in
(15) An embodiment (not shown) is also possible in which the annular drive element is provided on its outer periphery with toothing which is engaged with a toothing of the delivery roller 7, wherein the drive element has a clearance having an inner surface IF which rests on the planar outer surface AU of the projection 13, as shown in the example of
(16) As is apparent from
(17) During the compaction process, individual fibers can detach from the fiber material V to be compacted and settle on the periphery 38 of the suction drum 14. These fibers can move in the direction of the end face 35 of the suction drum 14 and thereby pass into the axial gap between the end face 35 of the suction drum 14 and the friction wheel 20. The movement of fibers can be induced, for example, by the rotation of the suction drum 14 or by the air flow produced by the rotation of the suction drum 14. There is a risk that fibers that pass into the axial gap will move to the outer periphery AU of the projection 13 and adhere thereto. As a result, the inner surface IF of the friction wheel 20 is no longer in direct contact with the outer periphery AU of the projection 13, whereby a continuous transmission of the drive torque from the friction wheel 20 onto the suction drum 14 is no longer ensured. As a result, the speed ratio between the suction drum 14 and the bottom delivery roller 7 of the drafting system 2 changes. The fiber material V to be compacted is therefore compressed in the compaction zone SZ, which negatively affects the quality of the compaction of the fiber material V. It is therefore necessary to move the friction wheel 20 away from the suction drum 14 after a certain operating time of the compaction device VM and remove the collected fibers from the outer periphery AU of the projection 13. This requires a great deal of maintenance effort and results in long downtimes of the spinning machine.
(18) As is apparent from
(19) Following the suction zone SZ, for each of the suction drums 14, a nip roller 23 is provided, which rests on the particular suction drum 14 via a pressure load and, with this suction drum, forms a nip line P. The particular nip roller 23 is rotatably supported on an axle 22 which is fastened on a bearing element 25 connected to a spring element 26 via screws 27. The spring element 26, via which a contact force of the nip roller 23 is generated in the direction of the suction drum 14, is fastened on the carrier 16 via the schematically illustrated screws 27. At the same time, the nip line P forms a so-called twist stop from which the fiber material is fed, in the conveying direction FS in the form of a compacted yarn FK with imparting of a twist, to a schematically illustrated ring spinning device 1.
(20) Extending within the carrier 16 is a suction channel SK which has an opening S2 on the inner surface of the end piece of the carrier 16, and a further opening S1 which is disposed in the area of the receptacle 19 and is connected to the interior 29 of the particular suction insert 15. In the working position, the opening S2 is disposed opposite an opening SR in the suction tube 41, whereby the interior of the suction tube 41 is connected to the suction channel SK. As is apparent from
(21) In the event of a thread break between the nip line P and the spool 33, to be able to suction yarn FK that is further delivered via the nip point P, a suction tube 30 is fastened to each side of the carrier 16, whose respective opening 31 facing the carrier 16 is connected to the channel SK. The outwardly protruding end, viewed from the carrier 16, of the particular suction tube 30 is closed. An opening 32 which points in the direction of the downwardly pulled yarn FK is provided on a portion of the periphery of the particular suction tube 30. That is, if a thread break occurs, via the suction channel SK, the end of the further delivered thread or yarn is fed to the suction tube 30 via the particular suction tube 30 under the action of the negative pressure generated via the negative pressure source SP, and the suction tube delivers the thread or yarn via the channel(s) 42 to the main channel 43 for further supply to a collection station.
(22)
(23) In contrast to the prior art (
(24) The suction drum 14 has an anodized coating and is provided with perforations or openings extending on its periphery. The openings form a hole pattern in one row. A stationarily supported suction insert 15 having a suction slit S on a portion of its periphery is disposed in the interior 28 of the suction drum 14. The suction insert 15 is held in its installed stationary position on a carrier 16 (
(25) A transparent closure cap 21 is fastened in the area of the annular projection 13, which closure cap protrudes via its outer diameter beyond the clearance D2 of the friction wheel 20. The closure cap 21 is provided with an annular projection 40 which protrudes into the clearance of the annular projection 13 of the suction drum 14. The annular projection 40 is provided with additional outwardly protruding cams which, for fixing the closure cap 21, engage in peripheral recesses within the clearance of the projection 13.
(26)
(27) In contrast to the exemplary embodiment from
(28) A closure cap 21 is fastened in the area of the annular projection 13, which closure cap protrudes via its outer diameter into the groove 45 of the friction wheel 20. As is also the case in the exemplary embodiment from
(29) An enlarged view of the projection 36 of the suction drum 14 is shown in
(30) Modifications and variations can be made to the embodiments illustrated or described herein without departing from the scope and spirit of the invention as set forth in the appended claims.