The present disclosure generally relates to a pivoting loading tray apparatus for a food product slicing apparatus which is used to slice food products.
Food product slicing apparatuses have a pivotable lift tray which moves food product from a lowered position to a raised position for engagement with a drive assembly that moves the food product to a slicing assembly. In operation, the food product is received on the lift tray when in the lowered position, and then the lift tray is pivoted to engage the food product with the drive assembly. Once the food product moves off of the lift tray, the lift tray is pivoted to the lowered position for receiving the next food product. The food product slicing apparatus continuously moves between these two positions during operation.
The organization and manner of the structure and operation of the disclosed embodiments, together with further objects and advantages thereof, may best be understood by reference to the following description, taken in connection with the accompanying drawings, which are not necessarily drawn to scale, wherein like reference numerals identify like elements in which:
While the disclosure may be susceptible to embodiment in different forms, there is shown in the drawings, and herein will be described in detail, a specific embodiment with the understanding that the present disclosure is to be considered an exemplification of the principles of the disclosure, and is not intended to limit the disclosure to that as illustrated and described herein. Therefore, unless otherwise noted, features disclosed herein may be combined together to form additional combinations that were not otherwise shown for purposes of brevity. It will be further appreciated that in some embodiments, one or more elements illustrated by way of example in a drawing(s) may be eliminated and/or substituted with alternative elements within the scope of the disclosure.
Food product slicing apparatuses and methods associated with the same are included in the present disclosure. With reference to the figures, one example of a food product slicing apparatus 20 is shown. The food product slicing apparatus 20 is used to slice food products into slices. The food products may be comprised of a wide variety of edible materials including, but not limited to meat, such as pork bellies, beef, chicken, fish, etc., and cheese.
As generally shown in
In an embodiment, and as shown, the load assembly 24 includes a loading frame 40 on which a conveyor 44 is provided. Other load assemblies 24 may be provided.
The feed assembly 26 includes a loading tray assembly 104 mounted on the main frame 22 downstream of the load assembly 24, and a drive assembly 106 mounted on the main frame 22 downstream of the loading tray assembly 104. The loading tray assembly 104 moves food products from the load assembly 24 to the drive assembly 106, and the drive assembly 106 moves food products to the slicing assembly 28.
As shown in
The conveyor 116 includes an endless belt wrapped around a plurality of wheels, with at least one of the wheels being a drive wheel or being driven by a separate drive wheel. A longitudinal axis is defined between an upstream end 116a of the conveyor 116 and a downstream end 116b of the conveyor 116. The endless belt defines a planar upper surface 122 upon which food products will translate.
The loading tray assembly 104 is pivotable between a first, lowered position, see
An elongated bar 124 may be provided on the support frame 112 and extends over the upper surface 122 of the endless belt of the conveyor 116 from generally the upstream end 116a to the downstream end 116b thereof. The bar 124 is coupled to the support frame 112 by an adjustment mechanism which is configured to move the bar 124 across a portion of the upper surface 122 of the endless belt of the conveyor 116. The bar 124 is always parallel to the longitudinal axis of the endless belt of the conveyor 116. The side of the food product is engaged with the bar 124 to properly align the food product on the conveyor 116.
The drive assembly 106 includes a drive frame plate 126 fixedly coupled to, and cantilevered from, the main frame 22, an upper drive assembly 130 cantilevered from the drive frame plate 126, a lower drive assembly 132 cantilevered from the drive frame plate 126, and a motor assembly 134 coupled to the drive frame plate 126 and to the upper and lower drive assemblies 130, 132. The drive frame plate 126 extends parallel to the longitudinal axis of the food product slicing apparatus 20. The upper drive assembly 130 includes an upstream conveyor 140 mounted on an upstream shaft 138, and a downstream conveyor 144 mounted on a downstream shaft 142. The conveyors 140, 144 may include endless belts wrapped around a plurality of shaft mounted wheels. The endless belts defines a planar surfaces upon which food products will translate. The downstream end of the upstream conveyor 140 is proximate to, but spaced from, the upstream end of the downstream conveyor 144 such that an upper gap 240, see
The upstream conveyor 140 is partially positioned over the upstream conveyor 156 and the downstream ends of the conveyor assemblies 140, 156 generally align. The upstream end of the upstream conveyor 140 is upstream of the upstream end of the upstream conveyor 156. The downstream conveyor 144 is positioned over the downstream conveyor 160 and the upstream ends and the downstream ends of the downstream conveyors 144, 160 generally align. The upper gap 240 is generally vertically above the lower gap 242 as shown in
When the loading tray assembly 104 is moved to the third position, as described herein, the downstream end 116b of the conveyor 116 is underneath the upstream conveyor 140 and proximate to the upstream end of the upstream conveyor 156.
The motor assembly 134 includes a motor 246 which is coupled to the shafts 138, 142, 154, 158 to drive the conveyors 140, 144, 156, 160. A single motor 246 may be provided to drive all of the conveyors 140, 144, 156, 160 at the same speed. If only a single motor 246 is used, the cost and complexity of the food product slicing apparatus 20 is reduced.
As shown in
In use, food product is loaded on the conveyor 44 of the load assembly 24 and the loading tray assembly 104 positioned in the first, lowered position as shown in
Once the front end of the food product is sensed by the sensor system 110, the loading tray assembly 104 is returned to the first, lowered position shown in
The first food product is sensed by the sensor system 110 as it passes through the gaps 240, 242. After the food product passes through the gaps 240, 242, the food product enters passes between the downstream conveyors 144, 160. The food product then passes through the slicing assembly 28 to cut the food product into individual slices. The individual slices fall onto the output assembly 30 for packaging.
After the food product passes through the gaps 240, 242, the loading tray assembly 104 moves from the second, partially raised position shown in
An elongated bar 124 may be provided on the support frame 112 and extends over the upper surface 122 of the endless belt of the conveyor 116 from generally the upstream end to the downstream end thereof. The bar 124 is coupled to the support frame 112 by an adjustment mechanism which is configured to move the bar 124 across a portion of the upper surface 122 of the endless belt of the conveyor 116. The bar 124 is always parallel to the longitudinal axis of the endless belt of the conveyor 116. The side of the food product is engaged with the bar 124 to properly align the food product on the conveyor 116.
One or more sensors in communication with the control system 32 be provided on the main frame 22 to sense the positions of the loading tray assembly 104 in the positions shown in
While a particular embodiment is illustrated in and described with respect to the drawings, it is envisioned that those skilled in the art may devise various modifications without departing from the spirit and scope of the appended claims. It will therefore be appreciated that the scope of the disclosure and the appended claims is not limited to the specific embodiment illustrated in and discussed with respect to the drawings and that modifications and other embodiments are intended to be included within the scope of the disclosure and appended drawings. Moreover, although the foregoing descriptions and the associated drawings describe example embodiments in the context of certain example combinations of elements and/or functions, it should be appreciated that different combinations of elements and/or functions may be provided by alternative embodiments without departing from the scope of the disclosure and the appended claims.
This application claims the priority of U.S. provisional application Ser. No. 63/271,459, filed on Oct. 25, 2021, the contents of which are incorporated herein in its entirety.
Number | Date | Country | |
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63271459 | Oct 2021 | US |