Rotor Spinning Machine Comprising a Plurality of Working Positions and a Suction Device
20170342604 · 2017-11-30
Inventors
- Romeo Pohn (Geisenfeld/Rottenegg, DE)
- Adalbert Stephan (Beilngries/Paulushofen, DE)
- Gernot Schäffler (Wäschenbeuren, DE)
- Milan Macko (Ceska Trebova, CZ)
Cpc classification
D01H4/08
TEXTILES; PAPER
F16C17/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0442
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
D01H1/16
TEXTILES; PAPER
International classification
D01H11/00
TEXTILES; PAPER
Abstract
A rotor spinning machine has a multiple number of work stations arranged side by side in the longitudinal direction of the rotor spinning machine between two front-side ends of the rotor spinning machine, each of which work stations has a multiple number of work elements for the production and winding of a yarn. The work elements comprise at least one feed device, one severing device, one spinning rotor along with one winding device. Furthermore, the rotor spinning machine has a suction device for producing a negative spinning pressure at the work stations. The suction device includes at least two separate negative pressure sources, whereas one negative pressure source is arranged on each of the two front-side ends of the rotor spinning machine, and whereas each of the negative pressure sources is connected to a separate negative pressure channel that extends in the longitudinal direction of the rotor spinning machine only over a part of the work stations, It is provided that the suction device includes at least two separate negative pressure sources, whereas at least one negative pressure source is arranged on each of the two front-side ends of the rotor spinning machine, and whereas each of the two negative pressure sources is connected to a separate negative pressure channel that extends in the longitudinal direction of the rotor spinning machine only over a part of the work stations. Thereby, each work station has an individual drive, in particular a single electric drive, for the spinning rotor.
Claims
1. Rotor spinning machine (1) with a multiple number of work stations (3) arranged side by side between two front-side ends (2) of the rotor spinning machine (1) on at least one longitudinal side of the rotor spinning machine (1), each of which work stations features a multiple number of work elements for the production and winding of a yarn, whereas the work elements comprise at least one feed device (4), one severing device (5), one spinning rotor (6) along with one winding device (7), and with a suction device (8) for producing a negative spinning pressure at the work stations (3), characterized in that the suction device (8) includes at least two separate negative pressure sources (9), whereas at least one negative pressure source (9) is arranged on each of the two front ends (2) of the rotor spinning machine (1), and whereas each of the negative pressure sources (9) is connected to a separate negative pressure channel (10) that extends (2) in the longitudinal direction of the rotor spinning machine (1) only over a part of the work stations (3), and that each work station (3) features an individual drive (11), in particular a single electric drive (11), for the spinning rotor (6).
2-17. (canceled)
Description
[0030] Additional advantages of the invention are described on the basis of the following presented embodiments. The following is shown:
[0031]
[0032]
[0033]
[0034]
[0035]
[0036] The work elements 4, 5, 6, 7 are shown in more detail in a schematic sectional view of a work station 3 in
[0037] In order to meet market demands for an increase in the productivity of rotor spinning machines 1, it is necessary to increase the number of work stations 3 per rotor spinning machine 1. This calls into question conventional machine concepts, in which the work elements 4, 5, 6, 7 of a work station 3 are each driven centrally from an end-side frame 2. In addition, there are considerable requirements for keeping the operating costs for such rotor spinning machines 1 within limits, even when the machine is extended.
[0038] Therefore, for the supply of negative pressure, the rotor spinning machine 1 shown with the present invention features a suction device 8 with at least two separate negative pressure sources 9, each of which is arranged on the two front-side ends 2 of the rotor spinning machine 1, with the present invention in the one-sided frames 12. Each of the negative pressure sources 9 is connected to a separate negative pressure channel 10. Each of the separate negative pressure channels 10 extends in the longitudinal direction of the rotor spinning machine 1 only over a part of the work stations 3. With the present invention, the negative pressure channels 10 are arranged in an aligned manner one behind the other in the longitudinal direction of the rotor spinning machine 1, such that only a small installation space is required. Thereby, it is particularly advantageous that a division 34 between the two negative pressure channels 10 may also take place in a flexible manner by means of a displaceable shutter in a continuous channel 10. In each case, each work station 3 is connected to at least one of the two negative pressure channels 10, whereas, on the other hand, only part of the work stations 3 is connected to each of the negative pressure channels 10. Furthermore, a central control device 13 is arranged in one of the frames 12, by means of which not only the drives of the negative pressure source 9, but also all other central drives 15, 16 and belt drives 19, 39 (see
[0039] By means of such a distributed supply of negative pressure with at least two shorter negative pressure channels 10, the total losses relative to the rotor spinning machine 1 can be substantially reduced, compared to a single central negative pressure source 9. The energy-saving operation of the rotor spinning machine 1 is further assisted by the fact that the spinning rotors 6 of each work station 3 are driven by means of an individual drive 11 (see
[0040] For an energy-saving operation of the rotor spinning machine 1, according to
[0041] For the drive of the other work elements, in particular of the feed device 4, of the severing device 5 and of the winding device 7, it may be advantageous to drive them by means of central drives 15, 16. According to the presentation of
[0042] According to
[0043] With the present invention, only one longitudinal side of a rotor spinning machine 1 is shown. It is understood that the rotor spinning machine 1 may feature a multiple number of work stations 3 on its two longitudinal sides. In this case, the described arrangement of the drives 15, 16 is also provided in an analogous manner on the opposite longitudinal side of the rotor motor 1. If, as with the present invention, the work stations 3 of each longitudinal side are subdivided into two groups, a total of four central drives 15, 16, each of which is arranged at each of the two front-side ends, accordingly arise for the identical work elements 4, 5, 7. Thereby, it may also be advantageous to provide the two longitudinal sides of the rotor spinning machine 1 with negative pressure, in each case separately from one another. In this case, two separate negative pressure channels 10, which are each assigned to one of the two longitudinal sides of the rotor spinning machine 1, would be arranged on each of the two front-side ends 2.
[0044]
[0045] An additional problem with the equipping of a rotor spinning machine 1 with a very large number of work stations 3 is the disposal of the completely wound coils 32 along with the supply of the work stations 3 with empty sleeves 37. If the disposal of the coils 32 takes place by means of a package conveyor belt 18, considerable friction losses arise in the guide plates (not shown) of the rotor spinning machine 1.
[0046] Therefore, in the embodiment of
[0047] The removal of the coils 32 can take place in various ways. For example, a coil lift (not shown), by means of which one or more coils are brought from the conveyor belt 18 to a convenient removal height and are removed there by an operator, can be provided. However, it is also conceivable for the coils 32 to be removed continuously from the end of the rotor spinning machine 1 by an automatic removal device (not shown) and supplied for further use.
[0048] With the present invention, a transfer device 38, for example a roller track, is arranged at the transfer point between the two package transport belts 18, by means of which the coils 32 can be transferred from the first to the second package conveyor belt 18.
[0049] A central supply device 21 is provided for supplying the work stations 3 with empty sleeves 37. This includes a central storage unit 30 for empty sleeves 37 along with a transport device, for example a sleeve transport belt 37, which is solely illustrated by a dotted line. This has a drive 39 in one of the two frames 12, and, with the present invention, extends over all work stations 3 of a longitudinal side of the rotor spinning machine 1.
[0050] In the embodiment of
[0051] With the present invention, in the area of the intermediate frame 17, an intermediate storage unit 20, in which a smaller number of empty sleeves 37 can be stored, is provided. Thus, it is possible to supply the work stations 3, which are located farther away from the central sleeve storage unit 30, from the intermediate storage unit 20, and the work stations located near the central sleeve storage unit 30, from the central sleeve storage unit 30. For this purpose, the intermediate storage unit 20 has a removal device, in order to take the empty sleeves 37 back to the sleeve conveyor belt 36. Thereby, it is advantageous that only a single sleeve transport belt 36 is required. By means of such sleeve transport belt 36, empty sleeves 37 are fed both from the central sleeve storage unit 30 to the individual work stations 3 and to the intermediate storage unit 20. If the rotor spinning machine 1 is designed as a double-sided machine, it is expedient to provide a separate sleeve transport belt 36 for each longitudinal side of the rotor spinning machine 1.
[0052]
[0053] The invention is not limited to the illustrated embodiments. Thus, by way of derogation from the view shown in
[0054] Furthermore, with regard to the coil disposal, it is also conceivable to drive the package transport belts 18 in different directions, and dispose of the coils 32 at both ends 2 of the rotor spinning machine 1. Likewise, two sleeve transport belts 36 can also be arranged one behind the other on each longitudinal side of the rotor spinning machine 1. If an intermediate frame 17 is provided, the drives of the sleeve transport belts 36 can, of course, also be arranged therein.
[0055] Additional variations and combinations within the framework of the claims also fall under the invention.
LIST OF REFERENCE SIGNS
[0056] 1 Rotor spinning machine
[0057] 2 Front-side end of the rotor spinning machine
[0058] 3 Work station
[0059] 4 Feed device
[0060] 5 Severing device
[0061] 6 Spinning rotor
[0062] 7 Winding device
[0063] 8 Suction device
[0064] 9 Negative pressure source
[0065] 10 Negative pressure channel
[0066] 11 Individual drive for spinning rotor
[0067] 12 Frame
[0068] 13 Central control device
[0069] 14 Individual drive for the feed device
[0070] 15 Central drive for the winding device
[0071] 16 Central drive for the severing device
[0072] 17 Intermediate frame
[0073] 18 Package conveyor belt
[0074] 19 Drive of the package conveyor belt
[0075] 20 Intermediate storage unit for empty sleeves
[0076] 21 Central supply device for empty sleeves
[0077] 22 Winding roller shaft
[0078] 23 Tangential belt for the severing roller drive
[0079] 24 Storage hopper
[0080] 25 Deflection rollers
[0081] 26 Winding roller
[0082] 27 Traversing device
[0083] 28 Thread guide rod
[0084] 29 Draw-off device
[0085] 30 Central sleeve storage unit
[0086] 31 Yarn
[0087] 32 Coil
[0088] 33 Waxing device
[0089] 34 Division of negative pressure channels
[0090] 35 Division of the work stations
[0091] 36 Sleeve conveyor belt
[0092] 37 Empty sleeves
[0093] 38 Transfer device
[0094] 39 Drive of the sleeve conveyor belt