FEEDER WITH MOVING BELT
20250122038 · 2025-04-17
Assignee
Inventors
Cpc classification
B65H3/126
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present invention relates to a feeder module for discharging sheets into a converting machine. The feeder module comprises a movable discharge conveyor comprising a plurality of belt conveyors which are configured to move between a discharge position (DP) in which the belt conveyors are contacting the lowermost positioned sheet in the stack and discharges said sheet, and a clearing position (CP) in which the conveyor belts are located underneath the loading surface.
Claims
1. A feeder module for discharging sheets into a converting machine, the feeder module comprising: a loading surface configured to support a stack (S) of sheets, and a movable discharge conveyor comprising a plurality of belt conveyors, wherein each belt conveyor comprises an upper contact surface configured to enter into contact with the sheets, and wherein the belt conveyors are configured to move between a discharge position in which the belt conveyors are contacting the lowermost positioned sheet in the stack and discharges said sheet, and a clearing position in which the belt conveyors are located underneath the loading surface.
2. The feeder module according to claim 1, wherein each of the belt conveyors is guided by a motorized drive roller and an idle roller, wherein the motorized drive rollers are mounted to a drive shaft.
3. The feeder module according to claim 2, wherein the drive shaft comprises a first drive shaft member and a second drive shaft member, and wherein a first group of belt conveyors is connected to the first drive shaft member and a second group of belt conveyors is connected to the second drive shaft member.
4. The feeder module according to claim 2, wherein a belt displacement member is arranged between the drive roller and the idle roller, and wherein the belt displacement member is configured to move the belt conveyors up and down in the vertical direction.
5. The feeder module according to claim 4, wherein the belt displacement member is arranged inside a loop formed by the belt conveyor and wherein the belt displacement member is configured to contact an inner periphery of the belt conveyor.
6. The feeder module according to claim 4, wherein the belt displacement member comprises an upper displacement surface configured to move the contact surface of the conveyor belt upwards, and a lower displacement surface configured to move the return portion of the belt conveyor belt downwards.
7. The feeder module according to claim 6, wherein the upper displacement surface is provided with apertures.
8. The feeder module according to claim 6, wherein the upper and lower displacement surfaces are provided with a sliding surface configured to contact the inner periphery of the belt conveyor.
9. The feeder module according to claim 4, wherein the belt displacement member is connected to a second drive mechanism, and wherein the second drive mechanism comprises a second motor and a timed mechanism.
10. The feeder module according to claim 9, wherein the timed mechanism is an eccentric drive shaft.
11. The feeder module according to claim 3, wherein the feeder module further comprises: a suction box provided with a plurality of suction compartments, and wherein the first and second drive shaft members are located in the suction box, and wherein the suction compartments are symmetrically arranged in relation to a center axis (A) of the loading surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] The invention will now be described with reference to the appended drawings, in which like features are denoted with the same reference numbers and in which:
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[0027]
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DETAILED DESCRIPTION
[0035] General description of a Masterflex, DRO and FFG machines
[0036] Referring to the figures and in particular to
[0037] As illustrated in
[0038] A main operator interface 18 may also be provided in the proximity of the converting machine. The converting machine 1 may also comprise a bundler and a palletizer module.
[0039] As illustrated in
[0040] The lower feeder assembly 22 comprises a loading surface 24 and a sheet discharge mechanism 26. The loading surface 24 is configured to receive a stack
[0041] S of sheets 2 and the sheet discharge mechanism 26 is configured to discharge the sheets 2 one by one into the converting machine 1 in the direction of transportation T. The sheet discharge mechanism 26 comprises a plurality of belt conveyors 30 arranged side by side.
[0042] The upper feeder assembly 20 comprises a gauge 32. The gauge 32 has a distal vertical end 32 which is arranged at distance d1 from the loading surface 24. The distance d1 between the distal vertical end 32 and the loading surface 24 defines a clearance through which the lowermost positioned sheet 2 in the stack S can pass.
[0043] The feeder module 12 further comprises a feeder roll assembly 34. The feed roll assembly 34 is located on a downstream side of the gauge 32 and is configured to grasp each sheet 2 to pull the sheet 2 from the loading surface 24. The feed roll assembly 34 comprises an upper feed roller 35a and a lower feed roller 35b.
[0044] As best seen in
[0045] The loading surface 24 is a flat surface which is configured to receive stacks S of sheets 2. The loading surface 24 is attached to a chassis of the feeder module. The stack of sheets S can be placed on the loading surface 24 by a loader module 10 as the one described in document EP2408698B1.
[0046] As best seen in
[0047] As illustrated in
[0048] Each belt conveyor 30 is provided with an upper contact surface 52 which is in contact with the bottom surface of the sheets 2 and a return portion 54 which is located vertically below the contact surface 52. The upper contact portion 52 of the belt conveyors 30 is thus exposed to the sheet 2 in the elongated slots 44.
[0049] The belts conveyors 30 are movable in unison between a discharge position DP in which the contact surfaces 52 of the belt conveyors 30 are located vertically above the loading surface 24, and a clearing position CP in which the contact surfaces 52 of the belt conveyors 30 are located vertically below the loading surface 24. In the discharge position DP, the lowermost positioned sheet 2 in the stack S is brought into contact with the belt conveyors 30 which drive the sheet 2 forward in the direction of transportation T.
[0050] Each belt is mounted onto the belt guiding mechanism 48. The belt guiding mechanism 48 comprises a drive roller 56 and an idle roller 58 around which the belt is mounted. The drive roller 56 and the idle roller 58 are rotatably attached to the chassis of the feeder module 12 in a first bracket 60a and a second bracket 60b.
[0051] The drive roller 56 may be connected to a drive shaft 62 which extends through the center of all drive rollers 56. In such a way, all the belt conveyors 30 are driven in unison. Alternatively, as best seen in
[0052] The common motor may be located in the center under the loading surface 24. In another variant (non-illustrated), the motor may be located on opposite exterior lateral sides of the loading surface 24.
[0053] Hence, the driving connection from the motor 39 and to each respective drive shaft 33a, 33b can be located in the center of the loading surface. Alternatively, in a non-illustrated embodiment, two motors 39 can be provided and the driving connection between each motor 39 and each drive shaft 33a, 33b can be located at an exterior portion of the loading surface 24.
[0054] Preferably, the drive roller 56 and the idle roller 58 have the same diameter. In such a way, the trajectory of the belt conveyor is symmetric. The drive roller 56 and the idle roller 58 may be toothed and configured to engage with the inner dented surface of the belt conveyors 30.
[0055] As best seen in
[0056] The upper and lower displacement surfaces 65a, 65b are parallel to each other. The upper and lower displacement surfaces 65a, 65b may be horizontal. The upper and lower displacement surfaces 65a, 65b are preferably interconnected via at least one vertical member 66a, 66b. Preferably, a first vertical member 66a and a second vertical member 66b are provided. The at least one vertical member 66a, 66b may extend across the loading surface 24 such as to interconnect all upper and lower displacement surfaces 65a, 65b of all belt conveyors 30.
[0057] As illustrated in
[0058] The displacement mechanism 50 is moved in the vertical direction by a motor 75, a toothed drive roller 74, a pulley 71 and a timed mechanism 76. The timed mechanism may comprise an eccentric shaft 76. A first bracket 78 and a second bracket 80 connected the eccentric shaft 76 to the displacement member 64. As the eccentric shaft 76 rotates, the displacement member 64 moves up and down in the vertical direction V. The belt displacement member 64 is thus connected to a second motor 75, which is separate from the motor 39.
[0059] The upper and lower displacement surfaces 65a, 65b are positioned symmetrically with respect to the drive roller 56 and the idle roller 58. The displacement member 64 thus symmetrically supports the upper contact portion 52 and the return portion 54 of the belt conveyor 30. The up and down movement of the displacement member 64 is preferably at the same distance. This makes it possible to have the same variations in the length of the belt conveyors on either side of the displacement member and therefore to limit belt tension variations.