The present disclosure generally relates to a drive assembly including movable conveyor assemblies which grip a food product as the food product is being moved to a slicing assembly of a food product slicing apparatus.
Known high-speed food slicing machines use some form of conveyor assembly to feed the food product in the forward direction. Some known high-speed food slicing machine utilize a lower conveyor assembly and an upper conveyor assembly. Because food products vary in size, the upper and lower conveyor assemblies in known machines may not fully grip the food products, which may lead to misregistration at the slicing blade. This adversely impacts the dimensions of the resulting slice. Operators would appreciate improvements to the registration of the food product as it passes through the conveyor assemblies.
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, specific embodiments 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 forward of the load assembly 24, and a drive assembly 106 mounted on the main frame 22 forward 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
As shown in
The upper drive assembly 130 includes a first support plate 136 on one side of the drive frame support plate 126 and extending parallel thereto, a second support plate 244 on the opposite side of the drive frame support plate 126 and extending parallel thereto, a rear shaft 138 extending through the support plate 136 and the drive frame support plate 126 and coupled to the motor assembly 134, a rear conveyor assembly 140 mounted on the rear shaft 138, a front shaft 142 extending through the support plate 136 and the drive frame support plate 126 and coupled to the motor assembly 134, and a front conveyor assembly 144 mounted on the front shaft 142. The rear and front conveyor assemblies 140, 144 are separated from each other by an upper gap 240. The rear shaft 138 extends through a bearing 146 mounted in the drive frame support plate 126 and the support plates 136, 244 to allow rotation of the rear shaft 138 relative to the drive frame support plate 126 and the support plates 136, 244. The front shaft 142 extends through a bearing 148 mounted in the support plates 136, 244 and through an enlarged opening 150 in the drive frame support plate 126 to allow rotation of the front shaft 142 relative to the support plates 136, 244 and movement relative to the drive frame support plate 126. The support plates 136, 244 couple the ends of the shafts 138, 142 together.
The rear conveyor assembly 140 includes an endless belt 180 wrapped around a plurality of shaft mounted wheels extending from support plate 136, including shaft 138. The endless belt 180 defines a lower surface which engages with an upper surface of the food products. The front conveyor assembly 144 includes endless belts 200, 204 wrapped around a plurality of shaft mounted wheels extending from support plate 136, including shaft 142. The endless belt defines a lower surface upon which food products will translate.
The lower drive assembly 132 includes a support plate 152 on the opposite side of the support plate 136 from the drive frame support plate 126 and extending parallel thereto, a rear shaft 154 extending through the support plate 152 and the drive frame support plate 126 and coupled to the motor assembly 134, a rear conveyor assembly 156 mounted on the rear shaft 154, a front shaft 158 extending through the support plate 152 and the drive frame support plate 126 and coupled to the motor assembly 134, and a front conveyor assembly 160 mounted on the front shaft 158. The rear and front conveyor assemblies 156, 160 are separated from each other by a lower gap 242. The rear shaft 154 extends through a bearing 162 mounted in the drive frame support plate 126 and the support plate 152 to allow rotation of the rear shaft 154 relative to the drive frame support plate 126 and to the support plate 152. The front shaft 158 extends through a bearing 164 mounted in the drive frame support plate 126 and the support plate 152 to allow rotation of the front shaft 158 relative to the drive frame support plate 126 and the support plate 152. The lower drive assembly 132 further includes a feed roller assembly 166 coupled to the front conveyor assembly 160. The bearing 146 of the rear shaft 138 of the rear conveyor assembly 140 further extends through the support plate 152.
The rear conveyor assembly 156 includes an endless belt 168 wrapped around a plurality of shaft mounted wheels extending from support plate 152, including rear shaft 154. A longitudinal axis is defined between the rear and front ends of the rear conveyor assembly 156 and the endless belt defines a planar upper surface upon which food products will translate. As shown in
As a result of this structure, support plates 136, 244 can pivot around rear shaft 138 relative to the drive frame support plate 126. The shaft 142 pivots along an arc with the support plates 136, 244 along the length of the enlarged opening 150 as shown in
As best shown in
As shown in
With reference to
The entire lifting plate 198 and the front end of the endless belt 180 can move upwardly and downwardly relative to the rear conveyor assembly 156 as shown in
As such, the lifting plate 198 and the front end of the endless belt 180 of the rear conveyor assembly 140 are capable of two movements relative to the drive frame support plate 126, the shaft 138 and the rear conveyor 156: 1) a pivoting movement relative to the rear conveyor assembly 156, and 2) an up and down movement relative to the upper plane defined by the rear conveyor assembly 156. Both movements can occur at the same time. The articulated actuator 192 may be a pneumatic cylinder.
With reference to
As best shown in
The second pivoting assembly 206 includes a lifting plate 226 pivotally mounted on the shaft 214, and an actuator 228 affixed to the shaft 214. The lifting plate 226 has a pair of upright walls 230a, 230b extending from opposite sides of a base wall 230c. The endless belt 204 is between the upright walls 230a, 230b and the base wall 230c is within the interior of the endless belt 204. Each upright wall 230a, 230b has an elongated opening 232 at an upper end thereof through which the bar 208 extends. Each opening 232 is elongated from a rear end to a front end thereof. Each upright wall 230a, 230b further has a tab 234a, 234b extending outward therefrom. The tab 234b on the upright wall 230b is vertically above the actuator 228.
An actuator 236 is affixed to the shaft 214 between the upright wall 220b of the first pivoting assembly 202 and the upright wall 230a of the second pivoting assembly 206. The tab 224b of the upright wall 220b is vertically above the actuator 236, and the tab 234a of the upright wall 230a is vertically above the actuator 236. The tabs 224b, 234b do not overlap. Accordingly, the actuator 236 can engage with either tab 224b, 234b or with both tabs 224b, 234b.
The actuators 218, 228, 236 are normally engaged with the tabs 224a, 234b, 224b, 234a to bias the front end of the lifting plates 216, 226 and the front wheel 201, 203 thereon downward toward the front conveyor assembly 160. As shown in
An actuator 238 is coupled between the drive frame support plate 126 and the support plate 136. Since the front conveyor assembly 144 is mounted to the drive frame support plate 126 and the support plate 136, the actuator 238 biases the front conveyor assembly 144 toward the front conveyor assembly 160. When a surface feature, such as a bump, on the food product causes the front conveyor assembly 144 to move upward away from the front conveyor assembly 144, the actuator 238 is overcome. The front shaft 142 moves in a pivoting arc within the enlarged opening 150 as shown in
As a result of the structure of the upper drive assembly 130, the front conveyor assembly 144 is capable of two movements relative to the drive frame support plate 126 and the lower drive assembly 132: 1) a pivoting movement by each belt 200, 204 relative to the front conveyor assembly 160, and 2) an up and down movement relative to the upper plane defined by the front conveyor assembly 160. Both movements can occur at the same time. Lifting plate 216 and wheel 201 are independently movable relative to lifting plate 216 and wheel 203 to follow the upper contour of the food product passing thereunder to provide optimal pressure on the food product as the food product is fed into the slicing assembly 28.
The rear conveyor assembly 140 of the upper drive assembly 130 is partially positioned over the rear conveyor assembly 156. The rear end of the rear conveyor assembly 140 is rearward of the rear end of the lower conveyor assembly 156 of the lower drive assembly 132. The front end of the rear conveyor assembly 140 is proximate to, but spaced from, the rear end of the front conveyor assembly 144 of the upper drive assembly 130 by the upper gap 240, and the front end of the rear conveyor assembly 156 of the lower drive assembly 132 is proximate to, but spaced from, the rear end of the front conveyor assembly 160 of the lower drive assembly 132 by the lower gap 242. and the front ends of the conveyor assemblies 140, 156 generally vertically align. As shown, the front end of the conveyor assembly 140 is rearward of the front end of the conveyor assembly 156, but they can vertically align. The front conveyor assembly 144 is positioned over the front conveyor assembly 160 and the rear ends and the front ends of the conveyor assemblies 144, 160 generally vertically align. The upper gap 240 is generally vertically above the lower gap 242.
When the loading tray assembly 104 is moved to the raised position, the front end of the conveyor 116 is underneath the rear conveyor assembly 140 and proximate to the rear end of the rear conveyor assembly 156.
The slicing assembly 28 includes a shear bar 340 mounted on the main frame 22 and a rotatable slicing blade 344 coupled to the main frame 22 for cutting the food products into slices. The shear bar 340 has an opening 350 through which the food product passes. The shear bar 340 may have a food product gripping assembly 342 as disclosed in U.S. Ser. No. 17/936,354 that works in conjunction with the feed roller 172 on the feed assembly 26 to firmly grip the food product as it passes into the slicing assembly 28. The shear bar 340 and the food product gripping assembly 342 are forward of the drive assembly 106 and the feed roller assembly 166. The slicing blade 344 is forward of the shear bar 340. The feed roller 172 and the food product gripping assembly 342 grip the food products as the food products are being sliced by the slicing blade 344. The slicing blade 344 is mounted on the frame 22 by a motor assembly (not shown) such that a lower end of the slicing blade 344 overlaps the portion of the opening through the shear bar 340.
In use, the food product is loaded on the load assembly 24 with the loading tray assembly 104 positioned in the lowered position. The conveyor 116 is activated to move the food product onto the loading tray assembly 104. Thereafter, the loading tray assembly 104 is moved to the raised position and the upper surface of the food product engages with the rear conveyor assembly 140. When the loading tray assembly 104 is moved to the raised position, the front end of the conveyor 116 is underneath the rear conveyor assembly 140 and proximate to the rear end of the rear conveyor 156. The rear conveyor assembly 140 and the conveyor 116 are activated to move the food product forward. The food product moves off of the conveyor 116 and onto the rear conveyor 156, while still being engaged by the rear conveyor assembly 140. The food product is transported between the conveyor assemblies 140, 156, over the gaps, and between the front conveyor assemblies 144, 160. When surface features on the food product are encountered by the rear conveyor assembly 140, the rear conveyor assembly 140 undergoes one or two of the movements relative rear conveyor assembly 156: 1) a pivoting movement relative to the rear conveyor assembly 156, and/or 2) an up and down movement relative to the upper plane defined by the rear conveyor assembly 156.
When surface features on the food product are encountered by the front conveyor assembly 144, the front conveyor assembly 144 undergoes one or two of the movements relative front conveyor assembly 160: 1) a pivoting movement by each belt 200, 204 relative to the front conveyor assembly 160, and/or 2) an up and down movement relative to the upper plane defined by the front conveyor assembly 160. This causes the food product to be firmly gripped during passage through the conveyor assemblies 140/156 and 144 ,160 and onto the feed roller 172 and through the shear bar 340. The rings 178 bite into the food product as the food product passes into the opening of the shear bar 340. The food product is sliced by the slicing blade 344 to cut the food product into individual slices. The individual slices fall onto the output assembly 30 for packaging.
In some embodiments and as shown, the feed assembly 26 includes a side strapping assembly 108 which side straps the food product along one side as it passes through the drive assembly 106 prior to entry into the slicing assembly 28. The side strapping assembly 108, see
The shaft outboard end 274 has a non-circular profile, and may be hexagonal. The side strapping blade 280 is positioned to the outboard side of the rear conveyor assembly 156 opposite to the side on which the drive frame support plate 126 and the motor 262 are provided. The axis of rotation of the side strapping blade 280 provided by the driving shaft 278 is transverse to the longitudinal axis of the rear conveyor assembly 156, and the side strapping blade 280 is parallel to the longitudinal axis of the rear conveyor assembly 156.
The blade driving assembly 276 includes first and second plates 284, 286 which are spaced apart from each other. The shaft outboard end 274 extends through the plates 284, 286 and is coupled thereto by bearings 287. The blade driving assembly 276 further includes a toothed gear 288 affixed to the shaft outboard end 274 and which is positioned between the plates 284, 286. The toothed gear 288 is mounted for co-rotation with the shaft outboard end 274. The blade driving assembly 276 further includes a drive belt 290 looped around the toothed gear 288 and a toothed gear 292 affixed to the blade shaft 278. When the motor 262 is driven, the gear 264 on the motor shaft 262a drives the belt 270, which rotates the gear 268 and the shaft 266, which rotates the gear 288 and the drive belt 290, which rotates the gear 292, the blade shaft 278 and the side strapping blade 280. The side strapping blade 280 cuts a side portion of the food product with which the side strapping blade 280 engages. A chute 294 is mounted between the side strapping blade 280 and the plate 284 which collects the trim cut from the food product during the side strapping and provides a path for disposal of the trim.
The clamp 282 is coupled to the shaft 296. The clamp 282 includes a split ring 300 between the first and second plates 284, 286, and a handle 302 mounted to the split ring 300. The split ring 300 is mounted on a cylindrical portion of the shaft 296. The split ring 300 includes an encircling portion 304 that partially encircles the cylindrical portion of the shaft 296, a rear end portion 306, and a front end portion 308. The end portions 306, 308 are spaced apart from each other by a space 310. The space 310 is parallel to the axis of the shaft 296. Each plate 284, 286 has a split 312 which extends from the opening 313 through which the shaft 296 extends to a bottom end of the plate 284, 286. The splits 312 in the plates 284, 286 align with the space 310 between the end portions 306, 308 of the split ring 300. The end portions 306, 308 of the split ring 300 are coupled to each plate 284, 286 by fasteners 314, 316. The end portions 306, 308 have aligned passageways 318, 320 therethrough which are perpendicular to the axis of the shaft 296 and open into the space 310. Passageway 318 is threaded, and passageway 320 is unthreaded. The handle 302 includes a pivotable grip portion 324 and a fastener 322 extended therefrom. The fastener 322 has a rounded head engaged with rounded head 326 of the pivotable grip portion 324 and a threaded shaft extending therefrom. The shaft of the fastener 322 is threadedly engaged with the wall forming the passageway 318 of the rear end portion 306, and passes through the unthreaded passageway 320 in the front end portion 308. The rounded head 326 seats within a cam surface 328 of the front end portion 308. A nut 330 is coupled to the rear end of the threaded shaft of the fastener 322.
When the grip portion 324 is in the position as shown in
The distance the side strapping blade 280 is from the rear conveyor assembly 156 can be varied so as to vary the width of the side strapped food product by releasing the split ring 300 to increase the widths of the splits 312 and the space 310 and sliding the blade driving assembly 276, the driving shaft 278, the side strapping blade 280 and the clamp 282 along the lengths of the shafts 266, 296. After the desired position is reached, the split ring 300 is re-engaged to prevent the sliding movement of these components of the side strapping assembly 108 relative to the shaft outboard end 274 and the shaft 296.
While the side strapping assembly 108 is only shown and described as being on one side of the rear conveyor assembly 156, a second side strapping assembly 108 can be provided on the other side of the rear conveyor assembly 156 so that both sides of the food product can be side strapped.
In some embodiments, and as shown, the feed assembly 26 further includes a sensor system 110. As shown in
While particular embodiments are 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 |