Adjustable carcass splitting and weighing grading platform

The height and rotation of the carcass cutting worktable are automatically adjusted by lifting, rotating and tilting mechanisms, which solves the problems of height adjustment and manual unloading in the existing technology, realizes the automated operation of carcass cutting and weighing, and improves efficiency and convenience.

CN122123398APending Publication Date: 2026-06-02SHANDONG DEBANG FOOD CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
SHANDONG DEBANG FOOD CO LTD
Filing Date
2026-03-09
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

The existing carcass splitting workbench cannot be height adjusted, requiring manual rotation of the carcass and making unloading inconvenient, thus affecting efficiency.

Method used

It adopts a lifting, rotating and tilting mechanism. The sliding column and support cylinder are lifted by motor, the carcass dividing plate is rotated, the height is automatically adjusted and the carcass is rotated, and automatic unloading is achieved in combination with the tilting mechanism.

Benefits of technology

It enables carcass segmentation and weighing without manual operation, improving work efficiency and reducing manpower consumption.

✦ Generated by Eureka AI based on patent content.

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    Figure CN122123398A_ABST
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Abstract

This invention belongs to the field of slaughtering technology, specifically an adjustable carcass segmentation and weighing grading workbench. Addressing the problems of existing workbenches that cannot be adjusted in height, require manual carcass rotation, and are cumbersome to manually unload, the following solution is proposed: It includes a stainless steel plate, with sliding columns bolted to the four corners of the bottom of the plate. Support cylinders are slidably connected to the surfaces of the sliding columns, and a base is bolted between the bottom ends of the four support cylinders. A stabilizing platform is bolted to the top of the stainless steel plate, and a carcass segmentation plate is rotatably connected to the top of the stabilizing platform. Slag discharge ports on both sides of the bottom of the stainless steel plate are connected to slag discharge pipes, allowing the stainless steel plate to be raised and lowered to accommodate different users and different carcasses. When the carcass needs to be rotated, the stainless steel plate can be rotated, eliminating the need for manual operation and saving time and effort. Furthermore, after weighing with an electronic scale, the supporting plate can be directly rotated to guide the weighed meat downwards for unloading.
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Description

Technical Field

[0001] This invention relates to the field of slaughtering technology, and in particular to an adjustable carcass cutting and weighing grading workbench. Background Technology

[0002] A carcass cutting workbench is a core specialized piece of equipment used in livestock and poultry slaughtering and processing for splitting, deboning, cutting, and trimming carcasses of cattle, pigs, sheep, etc. Chinese patent application number 201611185096.9 discloses a meat cutting workbench, including a first base, a support, an operating table, a second base, a slide rail, and a feed trough that slides on the slide rail. The support is fixed to the top of the first base. The middle part of the operating table is hinged to one end of the support, forming a rocker structure. A water tank that can be filled from the outside is connected to the operating table, and a water outlet pipe extends from the water tank and is arranged along the edge of the operating table. Multiple water jet holes are opened on the water pipe, and a drain hole is opened at the end of the table near the water tank. The outlet end of the drain hole is connected to a flexible hose that connects to the water tank. The slide rail is supported on the second base by a connecting rod, and a filter screen is suspended between the slide rail and the second base. When the end of the operating table with the water tank is swung down, it points towards the filter screen. It has the effect of making good use of limited water resources, which reduces the amount of cleaning work and allows the worktable to be cleaned in a timely manner, thus improving the efficiency of the entire meat processing process.

[0003] However, this meat cutting workbench also has some problems. For example, the carcasses to be cut are often quite heavy. In order to cut the carcasses in different parts, it is often necessary to manually rotate the carcasses, which is time-consuming and laborious. Moreover, the height of the entire workbench is fixed and cannot be adjusted according to the height of the user and the carcasses, which affects the user's cutting effect. At the same time, after the cut meat is weighed and graded, it is necessary to manually unload it, which is very inconvenient. Summary of the Invention

[0004] In view of the technical problems of the background technology, such as the inability to adjust the height, the need to manually rotate the carcass, and the inconvenience of manual unloading, this invention proposes an adjustable carcass segmentation and weighing grading workbench.

[0005] This invention proposes an adjustable carcass segmentation and weighing grading workbench, comprising a stainless steel plate. Each of the four corners of the bottom of the stainless steel plate is bolted with a sliding column, and a support cylinder is slidably connected to the surface of each sliding column. A base is bolted between the bottom ends of the four support cylinders. A stabilizing platform is bolted to the top of the stainless steel plate, and a carcass segmentation plate is rotatably connected to the top of the stabilizing platform. Slag discharge ports on both sides of the bottom of the stainless steel plate are connected to slag discharge pipes. Transmission boxes are bolted to both sides of the top of the stainless steel plate. Hinge seats are hinged to both sides of the stainless steel plate, and a bearing is bolted to the top of each hinge seat. The carrier plate has an electronic scale attached to its top notch. A lifting mechanism is threaded between the screw holes of the four sliding columns. A rotating mechanism is keyed to the axis of the carcass dividing plate. A tilting mechanism is connected to the inner side of the hinge seat. Through the movement of the sliding columns and support cylinders, the stainless steel plate can be raised and lowered to accommodate different users and different carcasses. When the carcass needs to be rotated, the stainless steel plate can be rotated, thus eliminating the need for manual operation, saving time and effort. At the same time, after weighing with the electronic scale, the carrier plate can be directly flipped to guide the weighed meat downwards for feeding.

[0006] Preferably, the lifting mechanism includes a lifting motor, a main gear, driven gears, and a lifting assembly. The output end of the lifting motor is keyed to the shaft of the main gear. There are two driven gears, and the teeth of both driven gears mesh with the teeth of the main gear. The driven gears are connected to the lifting assembly. The power supply to the lifting motor is an external power supply or a self-contained power supply. The lifting motor is controlled by a controller. The lifting motor can drive the main gear to rotate, and the main gear can drive the two driven gears to rotate. The radius of the main gear is larger than the radius of the driven gears, which can produce an acceleration effect on the driven gears. The driven gears can drive the lifting assembly to rotate.

[0007] Preferably, the lifting assembly includes a main sprocket, a chain, auxiliary sprockets, and lead screws. There are two main sprockets and two chains, and four auxiliary sprockets and four lead screws. A key connects the bottom of the gear to the top of the main sprocket. The teeth of the main sprocket mesh with the inner side of the chain. The teeth of the two auxiliary sprockets mesh with the inner side of one chain. The axis of the auxiliary sprocket is keyed to the bottom end of the lead screw surface. The surface of the lead screw is threadedly connected to the threaded hole of the slide column. The gear can drive the main sprocket to rotate, the main sprocket can drive the chain to rotate, and the chain can drive the four auxiliary sprockets to rotate. The radius of the main sprocket is larger than the radius of the auxiliary sprockets, which can produce an acceleration effect on the auxiliary sprockets. The auxiliary sprockets can drive the lead screws to rotate, and the four lead screws can use their threads to drive the slide column to rise and fall inside the support cylinder.

[0008] Preferably, guide sprockets are engaged on both the front and rear sides of the chain. The axis of the guide sprocket is rotatably connected to the interior of the base. The bottom of the lifting motor is bolted to the middle of the top of the base. The axis of the main sprocket is rotatably connected to the bottom of the inner side of the base. The base and the support cylinder are rotatably sleeved with the lead screw. The guide sprockets can guide the chain, allowing the chain to contact the main sprocket and the auxiliary sprocket as much as possible, ensuring the smoothness of the transmission. The lifting motor is stabilized by the base. The guide sprocket and the main sprocket are rotatably set with the base through bearings, ensuring the smoothness of the rotation of the guide sprocket and the main sprocket. The lead screw rotates with the base and the support cylinder through bearings.

[0009] Preferably, the rotating mechanism includes an electric push cylinder, a slide, a hinge rod, a gear disk, and a rotating assembly. The output end of the electric push cylinder is bolted to the side of the slide. The recess of the slide is hinged to one end of the hinge rod, and the other end of the hinge rod is hinged to the bottom end of the gear disk. The gear disk is connected to the rotating assembly. The power supply to the electric push cylinder is an external power supply or a self-provided power supply. The electric push cylinder is controlled by a controller. The electric push cylinder can drive the slide to move, the slide can drive the hinge rod to move, and the hinge rod can drive the gear disk to rotate. The hinge rod and the gear disk have an eccentric structure, which facilitates the rotation of the gear disk.

[0010] Preferably, the rotating assembly includes a small bevel gear, a driving wheel, a transmission belt, and a driven wheel. The teeth of the gear disc mesh with the teeth of the small bevel gear. The top of the small bevel gear is keyed to the bottom of the driving wheel. The inside of the driving wheel is driven to the inside of the transmission belt. The transmission belt is driven to the driven wheel. The shaft at the top of the driven wheel is keyed to the axis of the carcass partition plate. The gear disc can drive the small bevel gear to rotate using its teeth. The small bevel gear can drive the driving wheel to rotate. The driving wheel can drive the transmission belt to rotate. The transmission belt can drive the driven wheel to rotate. The radius of the driving wheel is larger than the radius of the driven wheel, which can produce an acceleration effect on the driven wheel. The driven wheel is rotatably set to the stabilizer via a bearing. The driven wheel can drive the carcass partition plate to rotate.

[0011] Preferably, a transmission box is bolted to the middle of the bottom of the stainless steel plate, the surface of the electric push cylinder is bolted to the right side of the transmission box, the slide is slidably connected to the transmission box, the shafts of the gear plate and the drive wheel are rotatably connected to the holes inside the transmission box, the teeth of the gear plate are conical, the transmission box can protect the rotating mechanism, the electric push cylinder is fixed by the transmission box, ensuring the stability of the electric push cylinder, the slide is slidably set to the transmission box via a slide rail, guiding the slide, and the gear plate and the drive wheel are rotatably set to the transmission box via bearings, facilitating the operation of the gear plate and the drive wheel.

[0012] Preferably, the tilting mechanism includes a power motor, a screw, a slide bar, and a transmission assembly. The power motor is keyed to the screw, the surface of the screw is threaded to the screw hole of the slide bar, the slide bar is connected to the transmission assembly, and the power motor is powered on. The power supply can be an external power supply or a self-provided power supply. The power motor is controlled by a controller. The power motor can drive the screw to rotate, the screw can drive the slide bar to move using its thread, and the slide bar can drive the transmission assembly to rotate.

[0013] Preferably, the transmission assembly includes a transmission rod and a connecting shaft. The transmission rod is hinged to a slide bar and welded to the connecting shaft. Both ends of the connecting shaft are rotatably sleeved with holes on the inner side of the hinge seat. The slide bar can drive the transmission rod to move, and the transmission rod can drive the connecting shaft to move. The transmission between the transmission rod and the hinge seat is an eccentric transmission. The movement of the connecting shaft can drive the bearing plate to flip downward through the hinge seat.

[0014] Preferably, the surface of the power motor is bolted to the inner side of the transmission box, the surface of the slide bar is slidably connected to the slide groove inside the transmission box, the transmission rod passes through the opening on the side of the transmission box, the power motor is fixed by the transmission box, the transmission box can protect the tilting mechanism, the slide bar is slidably set with the transmission box through the slide rail to guide the slide bar, the side of the transmission box is provided with an opening, and the transmission rod extends to the outside of the transmission box.

[0015] The beneficial effects of this invention are: the movement of the sliding column and the support cylinder can drive the stainless steel plate to rise and fall, making it adaptable to different users and different carcasses. When the carcass needs to be rotated, the stainless steel plate can be rotated, so there is no need for manual operation, saving time and effort. At the same time, after weighing with an electronic scale, the support plate can be directly rotated to guide the weighed meat downwards for feeding. Attached Figure Description

[0016] Figure 1 This is a front view of an adjustable carcass segmentation and weighing grading workbench proposed in this invention; Figure 2 This is a top cross-sectional view of the base of an adjustable carcass division and weighing grading workbench proposed in this invention. Figure 3 This is a rear view of the transmission box of an adjustable carcass dividing and weighing grading workbench proposed in this invention. Figure 4 This is a perspective view of the support plate of an adjustable carcass division and weighing grading workbench proposed in this invention. Figure 5 This is a perspective view of the slide bar of an adjustable carcass segmentation and weighing grading worktable proposed in this invention.

[0017] In the diagram: 1. Base; 2. Lifting motor; 3. Main gear; 4. Driven gear; 5. Main sprocket; 6. Chain; 7. Secondary sprocket; 8. Lead screw; 9. Support cylinder; 10. Sliding column; 11. Stainless steel plate; 12. Slag discharge pipe; 13. Guide sprocket; 14. Transmission box; 15. Electric pusher cylinder; 16. Slide seat; 17. Hinge rod; 18. Gear plate; 19. Small bevel gear; 20. Driving wheel; 21. Transmission belt; 22. Driven wheel; 23. Stabilizing platform; 24. Carcass dividing plate; 25. Transmission box; 26. Power motor; 27. Screw; 28. Sliding bar; 29. ​​Transmission rod; 30. Connecting shaft; 31. Hinge seat; 32. Bearing plate; 33. Electronic scale. Detailed Implementation

[0018] The present invention will be further explained below with reference to specific embodiments.

[0019] Example refer to Figure 1-5 This embodiment proposes an adjustable carcass segmentation and weighing grading workbench, including a stainless steel plate 11. Sliding columns 10 are bolted to the four corners of the bottom of the stainless steel plate 11. Support cylinders 9 are slidably connected to the surface of the sliding columns 10. A base 1 is bolted between the bottom ends of the four support cylinders 9. A stabilizing platform 23 is bolted to the top of the stainless steel plate 11. A carcass segmentation plate 24 is rotatably connected to the top of the stabilizing platform 23. Slag discharge ports on both sides of the bottom of the stainless steel plate 11 are connected to slag discharge pipes 12. Transmission boxes 25 are bolted to both sides of the top of the stainless steel plate 11. Hinge seats 31 are hinged to both sides of the stainless steel plate 11. A bearing plate 32 is bolted to the top of the hinge seat 31. An electronic scale 33 is snapped into the notch at the top of the bearing plate 32. A lifting mechanism is threaded between the screw holes of the four sliding columns 10. A rotating mechanism is keyed to the axis of the carcass segmentation plate 24. An tilting mechanism is connected to the inner side of the hinge seat 31. The lifting mechanism includes a lifting motor 2, a main gear 3, a driven gear 4, and a lifting assembly. The output end of the lifting motor 2 is keyed to the shaft of the main gear 3. There are two driven gears 4, and the teeth of both driven gears 4 mesh with the teeth of the main gear 3. The driven gears 4 are connected to the lifting assembly and the power supply of the lifting motor 2 is turned on. The power supply can be an external power supply or a self-provided power supply. The lifting motor 2 is controlled by a controller. The lifting motor 2 can drive the main gear 3 to rotate. The main gear 3 can drive the two driven gears 4 to rotate. The radius of the main gear 3 is larger than the radius of the driven gears 4, which can produce an acceleration effect on the driven gears 4. The driven gears 4 can drive the lifting assembly to rotate. The lifting assembly includes a main sprocket 5, a chain 6, secondary sprockets 7, and lead screws 8. There are two main sprockets 5 and two chains 6, and four secondary sprockets 7 and four lead screws 8. The bottom of the gear 4 is keyed to the top of the main sprocket 5. The teeth of the main sprocket 5 mesh with the inner side of the chain 6. The teeth of the two secondary sprockets 7 mesh with the inner side of one chain 6. The shaft of the secondary sprocket 7 is keyed to the bottom end of the surface of the lead screw 8. The surface of the lead screw 8 is threaded to the screw hole of the slide column 10. The gear 4 can drive the main sprocket 5 to rotate, the main sprocket 5 can drive the chain 6 to rotate, and the chain 6 can drive the four secondary sprockets 7 to rotate. The radius of the main sprocket 5 is larger than the radius of the secondary sprockets 7, which can produce an acceleration effect on the secondary sprockets 7. The secondary sprockets 7 can drive the lead screw 8 to rotate, and the four lead screws 8 can use the threads to drive the slide column 10 to rise and fall inside the support cylinder 9. The chain 6 has guide sprockets 13 meshing on both the front and rear sides. The shaft of the guide sprockets 13 is rotatably connected to the inside of the base 1. The bottom of the lifting motor 2 is bolted to the middle of the top of the base 1. The shaft of the main sprocket 5 is rotatably connected to the bottom of the inner side of the base 1. The base 1 and the support cylinder 9 are rotatably sleeved with the lead screw 8. The guide sprockets 13 can guide the chain 6, allowing the chain 6 to contact the main sprocket 5 and the auxiliary sprocket 7 as much as possible, ensuring the smoothness of the transmission. The lifting motor 2 is stabilized by the base 1. The guide sprockets 13 and the main sprocket 5 are rotatably set with the base 1 through bearings, ensuring the smoothness of the rotation of the guide sprockets 13 and the main sprocket 5. The lead screw 8 rotates with the base 1 and the support cylinder 9 through bearings. The rotating mechanism includes an electric push cylinder 15, a slide 16, a hinge rod 17, a gear 18, and a rotating assembly. The output end of the electric push cylinder 15 is bolted to the side of the slide 16. The notch of the slide 16 is hinged to one end of the hinge rod 17, and the other end of the hinge rod 17 is hinged to the bottom end of the gear 18. The gear 18 is connected to the rotating assembly. The power supply to the electric push cylinder 15 is an external power supply or a self-provided power supply. The electric push cylinder 15 is controlled by a controller. The electric push cylinder 15 can drive the slide 16 to move, the slide 16 can drive the hinge rod 17 to move, and the hinge rod 17 can drive the gear 18 to rotate. The hinge rod 17 and the gear 18 have an eccentric structure, which facilitates the rotation of the gear 18. The rotating assembly includes a small bevel gear 19, a driving wheel 20, a transmission belt 21, and a driven wheel 22. The teeth of the gear disk 18 mesh with the teeth of the small bevel gear 19. The top of the small bevel gear 19 is keyed to the bottom of the driving wheel 20. The inside of the driving wheel 20 is connected to the inside of the transmission belt 21. The transmission belt 21 is connected to the driven wheel 22. The shaft at the top of the driven wheel 22 is keyed to the axis of the body partition plate 24. The gear disk 18 can drive the small bevel gear 19 to rotate using its teeth. The small bevel gear 19 can drive the driving wheel 20 to rotate. The driving wheel 20 can drive the transmission belt 21 to rotate. The transmission belt 21 can drive the driven wheel 22 to rotate. The radius of the driving wheel 20 is larger than the radius of the driven wheel 22, which can produce an acceleration effect on the driven wheel 22. The driven wheel 22 is rotatably set to the stabilizer 23 through a bearing. The driven wheel 22 can drive the body partition plate 24 to rotate. A transmission box 14 is bolted to the middle of the bottom of the stainless steel plate 11. The surface of the electric push cylinder 15 is bolted to the right side of the transmission box 14. The slide 16 is slidably connected to the transmission box 14. The shafts of the gear plate 18 and the drive wheel 20 are rotatably connected to the holes inside the transmission box 14. The teeth of the gear plate 18 are conical. The transmission box 14 can protect the rotating mechanism. The electric push cylinder 15 is fixed by the transmission box 14 to ensure the stability of the electric push cylinder 15. The slide 16 is slidably set with the transmission box 14 through the slide rail to guide the slide 16. The gear plate 18 and the drive wheel 20 are rotatably set with the transmission box 14 through the bearing to facilitate the operation of the gear plate 18 and the drive wheel 20. The tilting mechanism includes a power motor 26, a screw 27, a slide bar 28, and a transmission assembly. The power motor 26 is keyed to the screw 27, and the surface of the screw 27 is threaded to the screw hole of the slide bar 28. The slide bar 28 is connected to the transmission assembly. The power supply to the power motor 26 is an external power supply or a self-provided power supply. The power motor 26 is controlled by a controller. The power motor 26 can drive the screw 27 to rotate, and the screw 27 can drive the slide bar 28 to move using its thread. The slide bar 28 can drive the transmission assembly to rotate. The transmission assembly includes a transmission rod 29 and a connecting shaft 30. The transmission rod 29 is hinged to the slide bar 28 and welded to the connecting shaft 30. Both ends of the connecting shaft 30 are rotatably sleeved with the holes on the inner side of the hinge seat 31. The slide bar 28 can drive the transmission rod 29 to move, and the transmission rod 29 can drive the connecting shaft 30 to move. The transmission between the transmission rod 29 and the hinge seat 31 is an eccentric transmission. The movement of the connecting shaft 30 can drive the bearing plate 32 to flip downward through the hinge seat 31. The surface of the power motor 26 is bolted to the inside of the transmission box 25, the surface of the slide bar 28 is slidably connected to the slide groove inside the transmission box 25, the transmission rod 29 passes through the opening on the side of the transmission box 25, the power motor 26 is fixed by the transmission box 25, the transmission box 25 can protect the tilting mechanism, the slide bar 28 is slidably set with the transmission box 25 through the slide rail, the slide bar 28 is guided, the side of the transmission box 25 is provided with an opening, and the transmission rod 29 extends to the outside of the transmission box 25; The movement of the sliding column 10 and the support cylinder 9 can drive the stainless steel plate 11 to rise and fall, making it adaptable to different users and different carcasses. When the carcass needs to be rotated, the stainless steel plate 11 can be rotated, so there is no need for manual operation, saving time and effort. At the same time, after weighing with the electronic scale 33, the bearing plate 32 can be directly rotated to guide the weighed meat downwards for feeding.

[0020] Working Principle: The workbench is placed in a suitable position via base 1. When the height of the stainless steel plate 11 needs to be adjusted, the power supply of the lifting motor 2 is turned on. The power supply can be an external power source or a standby power source. The lifting motor 2 is controlled by a controller. The lifting motor 2 can drive the main gear 3 to rotate, which in turn drives two driven gears 4. The radius of the main gear 3 is larger than the radius of the driven gears 4, which can produce an acceleration effect on the driven gears 4. The driven gears 4 can drive the main sprocket 5 to rotate, which in turn drives the chain 6 to rotate. The chain 6 can drive four auxiliary sprockets 7 to rotate, with the radius of the main sprocket 5 being larger than the radius of the auxiliary sprockets 7. The secondary sprocket 7 can accelerate the movement of the lead screw 8. The four lead screws 8 can use threads to drive the slide column 10 to rise and fall inside the support cylinder 9, thus adjusting the height of the stainless steel plate 11. The meat to be cut is placed on the carcass cutting plate 24. The power supply of the electric push cylinder 15 is turned on. The power supply can be an external power supply or a self-contained power supply. The electric push cylinder 15 is controlled by a controller. The electric push cylinder 15 can drive the slide 16 to move. The slide 16 can drive the hinge rod 17 to move. The hinge rod 17 can drive the gear plate 18 to rotate. The hinge rod 17 and the gear plate 18 have an eccentric structure, which facilitates the rotation of the gear plate 18. The rotating gear 18 drives the small bevel gear 19 to rotate, which in turn drives the driving wheel 20. The driving wheel 20 then drives the transmission belt 21, which in turn drives the driven wheel 22. The radius of the driving wheel 20 is larger than that of the driven wheel 22, thus accelerating the driven wheel 22. The driven wheel 22 is rotatably mounted on the stabilizer 23 via bearings. The driven wheel 22 drives the carcass dividing plate 24 to rotate, facilitating the carcass rotation for cutting. The cut meat is placed on the electronic scale 33 of the support plate 32 for weighing and grading. The container or conveyor belt then... The conveyor is located at the bottom of the support plate 32. The power supply of the motor 26 is connected. The power supply can be an external power supply or a self-contained power supply. The motor 26 is controlled by a controller. The motor 26 can drive the screw 27 to rotate. The screw 27 can drive the slide bar 28 to move through the thread. The slide bar 28 can drive the transmission rod 29 to move. The transmission rod 29 can drive the connecting shaft 30 to move. The transmission between the transmission rod 29 and the hinge seat 31 is an eccentric transmission. The movement of the connecting shaft 30 can drive the support plate 32 to flip downward through the hinge seat 31. The meat on the electronic scale 33 is naturally driven to slide down and fall into the receiving container or conveyor.

[0021] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. An adjustable carcass dividing and weighing grading workbench, comprising a stainless steel plate (11), characterized in that, The stainless steel plate (11) has four corners at the bottom bolted with sliding columns (10), and the surface of the sliding columns (10) is slidably connected with support cylinders (9). The bottom ends of the four support cylinders (9) are bolted together with a base (1). The top of the stainless steel plate (11) is bolted with a stabilizing platform (23). The top of the stabilizing platform (23) is rotatably connected with a body dividing plate (24). The slag discharge ports on both sides of the bottom of the stainless steel plate (11) are connected with slag discharge pipes (12). The top sides of the stainless steel plate (11) are bolted with transmission boxes (25). The sides of the stainless steel plate (11) are hinged with hinge seats (31). The top of the hinge seats (31) is bolted with a bearing plate (32). The notch on the top of the bearing plate (32) is fitted with an electronic scale (33). The screw holes of the four sliding columns (10) are threaded together with a lifting mechanism. The axis of the body dividing plate (24) is keyed with a rotating mechanism. The inner side of the hinge seat (31) is connected with an tilting mechanism.

2. The adjustable carcass segmentation and weighing grading workbench according to claim 1, characterized in that, The lifting mechanism includes a lifting motor (2), a main gear (3), a driven gear (4), and a lifting assembly. The output end of the lifting motor (2) is keyed to the shaft of the main gear (3). There are two driven gears (4), and the teeth of the two driven gears (4) mesh with the teeth of the main gear (3). The driven gears (4) are connected to the lifting assembly.

3. The adjustable carcass segmentation and weighing grading workbench according to claim 2, characterized in that, The lifting assembly includes a main sprocket (5), a chain (6), a secondary sprocket (7), and a lead screw (8). There are two main sprockets (5) and two chains (6), and four secondary sprockets (7) and four lead screws (8). The bottom of the gear (4) is keyed to the top of the main sprocket (5). The teeth of the main sprocket (5) mesh with the inner side of the chain (6). The teeth of the two secondary sprockets (7) mesh with the inner side of one chain (6). The axis of the secondary sprocket (7) is keyed to the bottom end of the surface of the lead screw (8). The surface of the lead screw (8) is threaded to the screw hole of the slide column (10).

4. An adjustable carcass segmentation and weighing grading workbench according to claim 3, characterized in that, The chain (6) is engaged with guide sprockets (13) on both the front and rear sides. The axis of the guide sprockets (13) is rotatably connected to the inside of the base (1). The bottom of the lifting motor (2) is bolted to the middle of the top of the base (1). The axis of the main sprocket (5) is rotatably connected to the bottom of the inside of the base (1). The base (1) and the support cylinder (9) are rotatably sleeved with the lead screw (8).

5. An adjustable carcass segmentation and weighing grading workbench according to claim 1, characterized in that, The rotating mechanism includes an electric cylinder (15), a slide (16), a hinge rod (17), a gear plate (18), and a rotating assembly. The output end of the electric cylinder (15) is bolted to the side of the slide (16). The notch of the slide (16) is hinged to one end of the hinge rod (17). The other end of the hinge rod (17) is hinged to the bottom end of the gear plate (18). The gear plate (18) is connected to the rotating assembly.

6. An adjustable carcass segmentation and weighing grading workbench according to claim 5, characterized in that, The rotating assembly includes a small bevel gear (19), a driving wheel (20), a transmission belt (21), and a driven wheel (22). The teeth of the gear disc (18) mesh with the teeth of the small bevel gear (19). The top of the small bevel gear (19) is keyed to the bottom of the driving wheel (20). The inside of the driving wheel (20) is connected to the inside of the transmission belt (21). The transmission belt (21) is connected to the driven wheel (22). The shaft at the top of the driven wheel (22) is keyed to the center of the body partition plate (24).

7. An adjustable carcass segmentation and weighing grading workbench according to claim 6, characterized in that, The transmission box (14) is bolted to the middle of the bottom of the stainless steel plate (11). The surface of the electric push cylinder (15) is bolted to the right side of the transmission box (14). The slide (16) is slidably connected to the transmission box (14). The shafts of the gear plate (18) and the drive wheel (20) are rotatably connected to the holes inside the transmission box (14). The teeth of the gear plate (18) are conical teeth.

8. An adjustable carcass segmentation and weighing grading workbench according to claim 1, characterized in that, The tilting mechanism includes a power motor (26), a screw (27), a slide bar (28), and a transmission assembly. The power motor (26) is keyed to the screw (27), the surface of the screw (27) is threaded to the screw hole of the slide bar (28), and the slide bar (28) is connected to the transmission assembly.

9. An adjustable carcass segmentation and weighing grading workbench according to claim 8, characterized in that, The transmission assembly includes a transmission rod (29) and a connecting shaft (30). The transmission rod (29) is hinged to the slide bar (28), and the transmission rod (29) is welded to the connecting shaft (30). Both ends of the connecting shaft (30) are rotatably sleeved with the holes on the inner side of the hinge seat (31).

10. An adjustable carcass segmentation and weighing grading workbench according to claim 9, characterized in that, The surface of the power motor (26) is bolted to the inside of the transmission box (25), the surface of the slide bar (28) is slidably connected to the slide groove inside the transmission box (25), and the transmission rod (29) passes through the opening on the side of the transmission box (25).