This application relates generally to item feed systems and, more specifically, to a bulk feeding apparatus of a type that may be used in filling machines in which items are conveyed, checked, counted and grouped for purposes of filling containers or packages with a set number of the items.
In the packaging of bulk quantity items, such as pharmaceutical tablets or capsules, the items must be counted and grouped in order to fill containers, packages or other receptacles with a desired number of the items. Large quantities of the items are handled by filling machines that are used for this purpose, and the items are fed to the machine from a bulk feeding apparatus.
Accordingly, an improved bulk feeding apparatus that delivers consistent item quantity onto an initial conveyor of the filling machine.
In one aspect, a filling machine for filling containers with items includes an item conveyor, and a bulk feeder for feeding items onto the item conveyor. The bulk feeder includes a hopper for holding a plurality of the items, the hopper having an outlet opening, and a feed assembly positioned adjacent the outlet opening, the feed assembly having an inlet and an outlet, the inlet positioned to receive items from the outlet opening of the hopper, the outlet positioned so that items can be fed on to the item conveyor. The feed assembly includes an item collecting compartment for collecting items that pass through the inlet from the hopper, and a pusher movable from a first position to a second position. In the first position, the pusher is retracted from the collecting compartment. As the pusher moves from the first position to the second position, the pusher moves through the collecting compartment to push items in the collecting compartment to the outlet and onto the item conveyor.
In another aspect, a filling machine for filling containers with items includes a housing at least in part defining an internal space, the housing having an opening, with a rotatable disc is sealingly mounted in the opening. An item conveyor is located external of the internal space. A pusher is external of the internal space and is movable from a first position to a second position so as to push items onto the item conveyor. A drive is located within the internal space, the drive operatively connected for rotating the rotatable disc. The rotatable disc is coupled to move the pusher linearly as the rotatable disc rotates.
In yet another aspect, a filling machine for filling containers with items includes housing at least in part defining an internal space, the housing having an opening, an item conveyor external of the internal space, a pusher external of the internal space and movable from a first position to a second position so as to push items onto the item conveyor. A motor is operatively connected for moving the pusher. A controller is operatively connected to control the motor, the controller configured to rotate the motor such that the pusher is repeatedly moved back and forth between the first position and the second position. The controller is configured to rotate the motor such that the pusher is moved from the first position to the second position in a first travel time, and the pusher is moved from the second position to the first position in a second travel time, wherein the second travel time is shorter than the first travel time.
In still another aspect, a filling machine for filling containers with a specified number of items is provided and includes an item conveyor having an infeed end and a discharge end, the discharge end located such that items traveling along the conveyor are delivered to multiple paths for delivery into containers. A bulk feeder feeds items onto the infeed end of the item conveyor. The bulk feeder includes a hopper for holding a plurality of the items, the hopper having an upper inlet opening and a lower outlet opening, and a feed assembly positioned adjacent the lower outlet opening. The feed assembly includes an inlet and an outlet, the inlet positioned to receive items from the outlet opening of the hopper, the outlet positioned so that items can be fed on to the infeed end of the item conveyor. The feed assembly includes an item collecting compartment below the inlet for collecting items from the hopper and a pusher movable from a first position to a second position. In the first position, the pusher is retracted from the collecting compartment. As the pusher moves from the first position to the second position the pusher moves through the collecting compartment to push items in the collecting compartment to the feed assembly outlet and onto the infeed end of the item conveyor.
The details of one or more embodiments are set forth in the accompanying drawings and the description below. Other features, items, and advantages will be apparent from the description and drawings, and from the claims.
Referring now to
Each outfeed section 54 is configured to repeatedly deliver a consistent quantity of items to the upper section of its vibratory conveyor. In this regard, the hopper 52 includes an upper inlet opening 80 and a lower outlet opening or openings 82. Each outfeed section 54 includes a feed assembly 84 positioned adjacent the lower outlet opening of the hopper. The feed assembly has a cover 85, a pusher 94 and a guide assembly 93. An inlet 86 is provided in the cover. The inlet 86 is positioned to receive items from the outlet opening of the hopper 52, and an outlet 88 is formed at the end of the guide assembly 93, with the outlet positioned so that items can be fed on to the infeed end 90 of the item conveyor 56. The feed assembly 84 includes an item collecting compartment 92 adjacent the inlet 86 for collecting items from the hopper that have moved down through the inlet 86. A fixed, laterally extending segment 87 of the cover 85 is provided to help define, in combination with the upward angle of the compartment floor 89, a chicane in the path of items. In particular, items from the hopper enter the compartment 92 via the opening 86 and gravity forces the items toward the lower end of the compartment (bottom right in
A pusher 94 is movable back and forth between a first position (
The drive assembly for the pusher is particularly noteworthy. In this regard, the filling machine 50 includes a housing 100 at least in part defining an internal space. The housing includes a rear section 102 along which each feed assembly 84 is located. Part of the rear section 102 of the housing is shown at 104 in
The drive assembly includes a rotatable motor 112 positioned within the internal space 114 of the housing. The rotatable motor 112 is linked to effect rotation of the rotatable discs 110. Here, each rotatable disc includes a projecting drive link 116 (e.g., a pin) offset from a central rotation axis 118 of the rotatable disc. The pusher 94 includes a lower side or housing facing side with drive slots 120 facing the rotatable disc and into which the drive link 116 projects, such that an orbital movement of the drive link about the central axis 118 causes the drive link 116 to engage a side of the drive slot 120 to effect linear movement of the pusher. In this arrangement, the drive links 116 act as cam pins and the slots 120 act as cam followers. The pusher includes an upper side with a guide pin 117 that slides along a guide slot 121 on the lower or inward side of the cover 85.
The rotatable motor 112 can effect rotation of the discs 110 in either direction. Here, the motor 112 includes an output shaft 130 coupled (e.g., directly or by way of an intermediate transmission) to rotate a drive gear 132. The drive gear 132 is geared to drive a driven gear 134 that is coupled to rotate one of the rotatable discs 110, and the driven gear 134 is geared to drive another driven gear 136 that is coupled to rotate the other rotatable disc 110.
A controller 300 is operatively connected to control the motor 112. The controller 300 is configured to rotate the motor 112 such that the drive gear is in turn rotated such that the pusher 94 is repeatedly moved back and forth between the first position and the second position. In one implementation, the controller 200 is configured to rotate the motor 112 so as to rotate the drive gear 132 such that the pusher 94 is moved at a constant speed when moving from the first position to the second position, in order to feed items onto the conveyor 56 in a uniform manner. The controller may also be configured to rotate the motor 112 so as to rotate the drive gear 132 such that the pusher 94 is moved from the first position to the second position in a first travel time, and the pusher 94 is moved from the second position back to the first position in a second travel time, wherein the second travel time is shorter than the first travel time. In this manner, the speed of repetitive feed operations can be increased overall, while still maintaining an appropriate pusher speed suitable for the feed of the items onto the conveyor.
In one example, as best represented by the sequence of
As previously mentioned, the discs 110 are sealingly engaged in the openings 108 of the housing segment 106. The purpose of this arrangement is to maintain the drive system for the pusher within the internal space 114 of the housing so that the drive system will not be exposed to fines or other particulates, such as dust from pharmaceutical tablets. Thus, the exterior of the machine can be readily cleaned, without the need to open up the machine and clean the pusher drive system.
Referring to
As also shown, an annular bearing 162 is located inward of the annular seal 150 and the annular bearing 162 is engaged with both a guide hub portion 164 of the rotatable disc and a spaced apart guide plate 166 that is also connected to the hub 164 (e.g., by fasteners). Interconnection of the gear 136 to the disc 110 is also shown, whereby rotating of the gear 136 rotates the disc 110.
As used herein, the term controller is intended to broadly encompass any circuit (e.g., solid state, application specific integrated circuit (ASIC), an electronic circuit, a combinational logic circuit, a field programmable gate array (FPGA)), processor(s) (e.g., shared, dedicated, or group—including hardware or software that executes code), software, firmware and/or other components, or a combination of some or all of the above, that carries out the control functions of the device/machine or the control functions of any component thereof.
It is to be clearly understood that the above description is intended by way of illustration and example only, is not intended to be taken by way of limitation, and that other changes and modifications are possible.
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62987557 | Mar 2020 | US |