Sub-quantity scale having an air nozzle along a conveying channel, and a method of operating a sub-quantity scale
10184823 ยท 2019-01-22
Assignee
Inventors
Cpc classification
B65G45/22
PERFORMING OPERATIONS; TRANSPORTING
B08B5/02
PERFORMING OPERATIONS; TRANSPORTING
G01G13/00
PHYSICS
International classification
B65G45/22
PERFORMING OPERATIONS; TRANSPORTING
B08B5/02
PERFORMING OPERATIONS; TRANSPORTING
G01G13/00
PHYSICS
G01G13/02
PHYSICS
Abstract
A sub-quantity scale and method for transferring a sub-quantity are provided. The scale includes a product feeding device, a product distributing device and a plurality of sub-quantity storage containers for transferring the sub-quantities to a weighing device, from which the sub-quantities pass into a packaging container. The product is fed into the sub-quantity storage containers by using vibration conveyor devices, each of which has a conveying channel and is assigned to one of the sub-quantity storage containers. A nozzle device subjects a conveying surface of the conveying channel to an air flow oriented in the conveying direction. The nozzle device is arranged in a transfer area between the product distributing device and the conveying channel.
Claims
1. A sub-quantity scale comprising: a product feeding device, a product distributing device, and a plurality of sub-quantity storage containers for transferring sub-quantities of a product to a weighing device, from which the sub-quantities pass into a packaging container, vibration conveyor devices, between the product distributing device and the plurality of sub-quantity containers, which feed the product into the sub-quantity storage containers, each of which having a conveying channel and a conveying direction and being assigned to one of the sub-quantity storage containers, and a nozzle device for subjecting a conveying surface of the conveying channel to an air flow oriented in the conveying direction, wherein the nozzle device is arranged in a transfer area between the product distributing device and the conveying channel, wherein the nozzle device is arranged below a transfer edge of the product distributing device and is recessed against the conveying direction of the conveying channel with respect to the transfer edge, in order to subject the product to the air flow during free fall from the product distributing device into the conveying channel.
2. The sub-quantity scale according to claim 1, wherein the nozzle device is arranged at a placement end of the conveying channel below a projection of the product distributing device, said projection overlapping the placement end and being limited by the transfer edge.
3. The sub-quantity scale according to claim 1, wherein the nozzle device is designed in such a manner that the conveying surface is subjected to the air flow in such a manner that an air cushion is formed on the conveying surface.
4. The sub-quantity scale according to claim 3, wherein the nozzle device is designed in such a manner that the air flow has a substantially rectangular flow cross-section.
5. The sub-quantity scale according to claim 4, wherein the nozzle device comprises at least one nozzle having a rectangular nozzle slot.
6. The sub-quantity scale according to claim 4, wherein the nozzle device comprises a plurality of nozzles arranged in a row and parallel to the conveying surface of the conveying channel.
7. A nozzle device for a sub-quantity scale according to claim 1, wherein the nozzle device forms a modular unit together with the conveying channel.
8. A method comprising: transferring a sub-quantity of a product fed to a product distributing device by a product feeding device to a sub-quantity storage container, which serves to transfer the sub-quantities to a weighing device, from which the sub-quantities pass into a packaging container, wherein transferring comprises: feeding the product into the sub-quantity storage containers by vibration conveyor devices, each of which has a conveying channel and a conveying direction and being assigned to one of the sub-quantity storage containers, and in a transfer area between the product distributing device and the conveying channel, subjecting a conveying surface of the conveying channel to an air flow oriented in the conveying direction by a nozzle device, which is arranged below a transfer edge of the product distributing device and is recessed against the conveying direction of the conveying channel with respect to the transfer edge, in order to subject the product to the air flow during free fall from the product distributing device into the conveying channel.
9. The method according to claim 8, wherein the air flow is applied in such a manner that an air cushion is formed on the conveying surface of the conveying channel.
10. The method according to claim 8, wherein the air flow is applied in such a manner that the air flow is formed parallel to the conveying surface of the conveying channel.
11. The method according to claim 8, wherein the air flow is applied to the conveying surface in a discontinuous manner.
12. The method according to claim 8, wherein the air flow is applied to the conveying surface as a function of process parameters of the operation of the sub-quantity scale.
13. The method according to claim 12, comprising applying the air flow while at the same time subjecting the conveying channel to vibrations.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
BRIEF DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
(4)
(5) In the example of the sub-quantity scale 10 illustrated in
(6) When the sub-quantity scale 10 is in operation, the product to be distributed to the sub-quantity storage containers 15 continuously passes through the product feeding device 12 onto the product distributing device 13. The product, which is salad leaves in the case at hand, is distributed to the conveying channels 16 by the rotating product distributing device 13 and is conveyed into the sub-quantity storage containers 15 by the conveying channels 16, which are subjected to oscillations. From the sub-quantity storage containers 15, the product sub-quantities are passed through the opening of the bottom hatch 22 to the intermediate storage devices 21 arranged below, which are provided with weighing devices (not illustrated) for determining the product sub-quantities contained in the intermediate storage devices 21.
(7) As a consequence of the product sub-quantities conveyed into the respective sub-quantity storage containers 15 and not being exactly defined in terms of their amount, the intermediate storage device 21 contain different product sub-quantities after receiving the product sub-quantities from the sub-quantity storage containers 15. To fill a packaging container 26 arranged below the product discharge device 25, a combination of intermediate storage devices 21 is now opened by operating their bottom hatches 23 in such a manner that the sum of the combination of product sub-quantities corresponds to the desired product weight or the desired filling amount of the product filled into the packaging container 26.
(8) As becomes apparent from a combined view of
(9) As is shown in particular in
(10) In the case at hand, the nozzle device 27 comprises a nozzle 32 that has a nozzle slot (not illustrated) oriented parallel to the conveying surface 29 and forming a substantially fan-shaped air flow in the exit area of the nozzle 32, said fan-shaped air flow, in cooperation with side edges of the conveying channel 16 forming flow guide elements, allowing a substantially rectangular flow cross-section to form at a sufficient distance from the nozzle 32.
(11) As in particular
(12)
(13) An exemplary embodiment of the present application allows products, in particular leaf salads, to be filled even in case of a comparatively high moisture content.
(14) Although the present disclosure has been described with reference to one or more examples, workers skilled in the art will recognize that changes may be made in form and detail without departing from the scope of the disclosure and/or the appended claims.