WINDING MACHINE FOR WINDING LENGTHS OF MATERIAL
20170341893 · 2017-11-30
Assignee
Inventors
Cpc classification
B65H2301/4146
PERFORMING OPERATIONS; TRANSPORTING
B65H19/28
PERFORMING OPERATIONS; TRANSPORTING
B65H18/145
PERFORMING OPERATIONS; TRANSPORTING
B65H2301/41422
PERFORMING OPERATIONS; TRANSPORTING
B65H2403/942
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention relates to a winding machine for winding material webs, in particular foils or films, wherein the winding machine comprises a feeder system with a first belt feeder which, during the winding of the material web around a winding core in a first direction, wraps itself at least partially around the material web. The feeder system comprises a second belt feeder which is suitable for winding the material web in a second direction around the winding core.
Claims
1-15. (canceled)
16. A winding machine with a feeder system for winding a material web of foil or film around a winding core, comprising: at least one circulating belt; a first belt feeder constructed and arranged to wrap the at least one circulating belt at least partially around the material web during a winding of the material web around the winding core in a first direction; and a second belt feeder constructed and arranged to wind the material web in a second direction around the winding core.
17. The winding machine according to claim 16, wherein the first and the second belt feeders each comprise at least two levers.
18. The winding machine according to claim 17, wherein the levers of the first belt feeder are two-sided and centrally positioned.
19. The winding machine according to claim 17, further including two coupling links coupled to the levers of the second belt feeder to limit a pivoting movement of the levers of the second belt feeder.
20. The winding machine according to claim 16, wherein the first belt feeder comprises two-sided, centrally positioned levers and the second belt feeder comprises levers that are positioned via two coupling links to limit a pivoting movement of the levers of the second belt feeder.
21. The winding machine according to claim 17, wherein the levers have head ends and further include pressure elements arranged, respectively, in a region of the head ends of the levers.
22. The winding machine according to claim 16, wherein the winding machine includes a frame and the feeder system is pivotally arranged on the frame of the winding machine.
23. The winding machine according to claim 17, wherein the at least one circulating belt comprises is guided circulating on the first belt feeder and the second belt feeder.
24. The winding machine according to claim 23, wherein the at least one circulating belt is guided between respectively the at least two levers of the first belt feeder and the at least two levers of the second belt feeder.
25. The winding machine according to claim 23, wherein the at least one circulating belt comprises an endlessly circulating belt.
26. The winding machine according to claim 17, wherein the levers of the first and second belt feeders have head ends and further including rotating deflection rolls arranged on the head ends of the levers of the first and second belt feeders.
27. The winding machine according to claim 26, wherein the at least one circulating belt is deflected by the deflection rolls.
28. The winding machine according to claim 21, wherein the pressure elements comprise spring plates.
29. The winding machine according to claim 16, further including separate adjustment devices coupled to the first and second belt feeders to separately adjust a pivoting position of the first and second belt feeders.
30. The winding machine according to claim 17, wherein the at least two levers of the first belt feeder have a first pivoting point around which the at least two levers of the first belt feeder are pivotable, and the at least two levers of the second belt feeder have a second pivoting point around which the at least two levers of the second belt feeder are pivotable, and further including, respectively, one rotating roll which deflects the at least one circulating belt arranged between the at least two levers of the first belt feeder and between the at least two levers of the second belt feeder.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The invention is explained in further detail with the aid of the enclosed drawings, which show in:
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION OF THE INVENTION
[0023] According to
[0024] The feeder system 20 comprises at least two support plates 23, 23′ which are connected to several shafts and/or axes. Shown for this exemplary embodiment are three support plates 23, 23′, 23″, which are arranged on the frame 7 of the winding machine 1, to pivot around a pivoting point 21 with the aid of at least one adjustment means 22, for example a pneumatic cylinder or an eccentric drive. The support plates 23, 23′, 23″ are provided with an opening 24 for accommodating a winding core 25 which can be driven outside of the winding machine 1.
[0025] A first and a second belt feeder 30, 40 are arranged on both sides of the opening 24 and/or parallel to the longitudinal axis of the winding core 25.
[0026] The first belt feeder 30 shown in
[0027] The second belt feeder 40 also comprises at least two levers 41, 41′ between which the belt 37 is arranged. Each lever 41, 41′ is provided on one end with a head 44 and a pressure element 38, also taking the form of a spring plate in this case. The pressure element 38 can also be arranged between two levers 41′, 41″. A deflection roll 45 is furthermore arranged on each head 44 which connects two levers 41, 41′ and functions to deflect the belt 37. An adjustment means 43 in the form of a pneumatic cylinder is arranged at the other end of each lever 41, 41′ which can pivot the lever 41 around a pivoting point 42. A roll 46 is furthermore arranged at the pivoting point 42, the axis of which connects the two levers 41, 41′, across which the belt 37 is guided. For this exemplary embodiment, the lever is also embodied as a two-sided lever which can, however, be pivoted around two spaced-apart coupling joints in the form of a four-bar linkage, so that the head 44 of the lever 41 realizes a defined pivoting movement which will be explained later on.
[0028] The belt 37 moves through the first and second belt feeder 30, 40 and, in the process, is guided via the deflection rolls 35 and 45 to the rolls 36 and 46. From there, the belt 37, which is embodied as endless belt and/or as a flat belt, moves to a drive roll 26 and a belt tensioner 27. The drive roll 26 optionally drives the belt in one direction or the other, depending on the feeding direction for the material web 2. The belt tensioner 27 ensures a sufficient tension between a parked position and a winding position for the feeder system 20.
[0029] Even if only one or two levers 31, 31′ and/or 41, 41′ are mentioned in the three preceding paragraphs,
[0030] Shown in
[0031] According to
[0032] Feeding the material web 2 “from below” takes place as previously described in connection with
[0033] Depending on the strength or rigidity of the material web 2, it can also be supplied for both winding variants via a guide sheet, not shown herein, to the winding core 25.
[0034] In contrast to the prior art, both belt feeders 30, 40 can also be operated separately, wherein a material web 2 can be wound clockwise or counter-clockwise around a winding core 25. Two winding directions are therefore possible. As a result of the rotational direction for the winding of the material web 2, the belt feeder 30, 40 is engaged, for which the head 34, 44 points in the winding direction. The second belt feeder 40 points with its head 44 in the direction past the winding core 25 and thus winds up the material web 2 in clockwise direction for the “feeding from above.” The first belt feeder 30 points with its head 34 in counter-clockwise direction past the winding core 25 and thus winds up the material web counter-clockwise for the “feeding from below.” Even if a belt feeder (30 or 40) is not engaged, its head (34 or 44) functions as a deflection point for the belt 37, so that the wrap-around angle is maximized.
[0035] Of course, it is also possible to design the second belt feeder 40 with a changeable lever geometry, similarly as for the first belt feeder 30, so that both belt feeders 30, 40 can realize a variable winding diameter range. The embodiment shown herein, however, has the advantage that because of the limited pivoting range of the second belt feeder 40, the complete feeder system 20 requires less space since, otherwise, the feeder system 20 must be positioned farther from the frame 7 of the winding machine 1, corresponding to the enlarged pivoting range of the levers 41, 41′. The geometric conditions are thus changed since the feeder system 20 can also be pivoted around the pivoting point 21. Corresponding to the different client requirements, a compact winding machine can be provided because of the differing lever system, or a winding machine with variable winding diameter, wherein for both types of embodiment it is possible to wind in two directions.
[0036] Corresponding to the embodiment shown in
[0037] A further improvement can be achieved in that the deflection rolls 35 and 45 are designed in part to have a diameter large enough so that the deflection rolls 35 and/or 45 on the head 34, 44 of the levers 31, 41 rest on the material web 2 during the winding operation and not the belt 37. The wrapping angle is slightly reduced as a result, but a malfunction due to a jammed belt 37 is no longer possible.
[0038] It will be understood that the above description of the present invention is susceptible to various modifications, changes and adaptations, and that the same are intended to be comprehended within the meaning and range of equivalents of the appended claims.