A kind of tripe cutting and conveying equipment and method for processing canned tripe

CN122767378APending Publication Date: 2026-09-18ABA PREFECTURE TUYOUDA AGRI TECH CO LTD
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Patent Information

Application Number
CN202611175175.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-08-04
Publication Date
2026-09-18

AI Technical Summary

Technical Problem

[0004]该装置使用时能够实现对食品的机械化切割,降低人工劳动强度,但在实际用于牛杂分切加工时,切割过程中刀具与牛杂之间产生较大的摩擦阻力,牛杂组织较软容易粘附在刀具表面,导致切割面不平整且影响分切效率;同时导向通道的高度无法调节,难以适应不同厚度牛杂的分切需求,牛杂在输送过程中容易发生偏移或挤压变形,切割后的牛杂直接堆积在输送末端,缺乏有效的自动积攒与卸料结构,仍需人工进行收集和转运,整机的自动化程度有待进一步提高,因此提出一种牛杂罐头加工用牛杂分切输送设备及方法,能够通过在切割工位设置喷涂机构对刀具和牛杂进行润滑冷却、通过可调节的导向机构适应不同厚度的牛杂、通过挡板机构实现切割后牛杂的自动积攒和卸料

Benefits of technology

[0023]This invention, through the coordinated arrangement of a first baffle, a first guide plate, and a screw, enables the device to stably guide and pre-cut offal. The first guide plate features an inclined design, facilitating the natural sliding of offal into the conveying area along the slope and preventing material accumulation and jamming. Rotating the screw moves the second guide plate up and down, forming an adjustable guiding channel in conjunction with the first guide plate. This allows for flexible adjustment of the channel height according to different thicknesses of offal, ensuring that the offal does not deviate during conveying and preventing excessive compression and deformation when the thickness is too large. Simultaneously, the array of cutting blades on the first baffle pre-cuts the offal as it passes through, initially cutting large pieces into sizes suitable for subsequent processing. This provides a uniform raw material base for the subsequent fine cutting process, ultimately achieving the effects of adapting to the cutting of offal of various specifications, improving raw material utilization, and ensuring the cutting quality of subsequent processes.

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Abstract

The present application belongs to the technical field of canned beef tripe processing, and discloses a beef tripe slitting and conveying device for canned beef tripe processing, which comprises a processing frame, a first motor is fixed to one end of the processing frame, and a spraying and cutting mechanism is installed at one end of the processing frame. The present application also provides a beef tripe slitting and conveying method for canned beef tripe processing, which comprises the following steps: S1, by putting the beef tripe to be processed into the device, guiding between the second guide plate and the first guide plate; the present application cooperates the structures of the first baffle, the first guide plate and the screw, so that the device can stably guide and pre-cut the beef tripe; the first guide plate is designed in an inclined manner, which facilitates the beef tripe to naturally slide into the conveying area along the inclined surface, and the large beef tripe is preliminarily cut into a size suitable for subsequent processing, providing uniform raw material basis for the subsequent fine slitting process, and finally achieving the effects of adapting to multi-specification beef tripe slitting, improving raw material utilization, and ensuring the slitting quality of the subsequent process.
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Description

Technical Field

[0001] This invention belongs to the field of beef offal canning technology, specifically a beef offal cutting and conveying equipment and method for beef offal canning. Background Technology

[0002] In the process of processing beef offal into canned goods, it is necessary to cut beef offal raw materials from different parts such as tripe, intestines, liver, and heart to make them suitable for canning. Existing beef offal cutting and conveying equipment usually includes a frame, a conveyor belt, and a cutting mechanism. The conveyor belt transports the beef offal raw materials to the cutting station, where the cutting mechanism cuts the beef offal.

[0003] Patent CN212707160U discloses a food cutting machine, including a frame with a conveying mechanism, a discharge port, and an electrical control device. The conveying mechanism includes a chain drive mechanism with template assemblies evenly arranged on it. Each template assembly includes a connecting plate with templates mounted on it. A buffer tray is located on the upper part of the feed end of the frame, and the electrical control device is fixedly installed on one side of the middle of the frame. A receiving tray is located at the lower part of the chain drive mechanism, and a moving conveyor device is provided between the chain drive mechanism and the receiving tray. This food cutting machine, in conjunction with the main cutting unit via a conveyor belt, can perform cutting operations on food raw materials.

[0004] This device enables mechanized cutting of food, reducing manual labor intensity. However, when used for beef offal cutting, significant frictional resistance occurs between the blades and the offal during the cutting process. The soft tissue of the offal easily adheres to the blade surface, resulting in uneven cut surfaces and affecting cutting efficiency. Furthermore, the height of the guide channel is not adjustable, making it difficult to accommodate the cutting needs of offal of varying thicknesses. Offal is prone to shifting or deformation during transport, and the cut offal accumulates directly at the end of the conveyor, lacking an effective automatic accumulation and unloading structure, requiring manual collection and transfer. The overall automation level of the machine needs further improvement. Therefore, this paper proposes a beef offal cutting and conveying equipment and method for canned beef offal processing. This equipment can lubricate and cool the blades and offal through a spraying mechanism at the cutting station, adapt to different thicknesses of offal through an adjustable guide mechanism, and automatically accumulate and unload the cut offal through a baffle mechanism. Summary of the Invention

[0005] To address the problems mentioned in the background section, this invention provides a beef offal cutting and conveying device and method for processing canned beef offal.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a beef offal cutting and conveying device for processing canned beef offal, comprising a processing frame, a first motor fixed at one end of the processing frame, a first conveying roller fixed at the drive end of the first motor, a second conveying roller rotatably connected to one end of the processing frame, a conveyor belt installed on the outside of the second conveying roller, a guide pre-cutting mechanism fixed at the top of the processing frame, a baffle mechanism installed at one end of the first conveying roller, and a spraying and cutting mechanism installed at one end of the processing frame;

[0007] The guiding pre-cutting mechanism includes a first baffle, a first guide plate, and a screw. The first baffle is fixed to the top of the processing frame, the first guide plate is fixed to one end of the first baffle, and the screw is rotatably connected to the top of the first baffle.

[0008] The baffle mechanism includes a first bevel gear, a second bevel gear, and a gear reducer. The first bevel gear is fixed to the outside of the first conveying roller, the second bevel gear is rotatably connected to one end of the processing frame, the gear reducer is fixed to the top of the processing frame, and the second bevel gear is fixed to the input end of the gear reducer.

[0009] The spraying and cutting mechanism includes a second motor, a cutting cylinder, and a delivery pump. The second motor is fixed to one end of the processing frame, the cutting cylinder is fixed to the drive end of the second motor, and the fixed end of the delivery pump is fixedly connected to the processing frame.

[0010] Preferably, the screw is externally threaded with a second guide plate, and a cutting blade is fixed to one end of the first baffle.

[0011] Preferably, the first guide plate is inclined, four sets of screws are provided, the second guide plate is parallel to the first guide plate, and several sets of cutting blades are provided, with the cutting blades arranged in an array.

[0012] Preferably, the drive end of the gear reducer is fixed with a drive disk, one end of the processing frame is fixed with a mounting frame, a support rod is rotatably connected inside the mounting frame, and one end of the support rod is fixed with a second baffle.

[0013] Preferably, the first bevel gear is provided in two sets, the first bevel gear is symmetrically distributed, and the first bevel gear is meshed with the second bevel gear.

[0014] Preferably, there are two sets of mounting brackets, which are symmetrically distributed about the central axis of the processing frame, and the drive disk is slidably connected to the support rod.

[0015] Preferably, a delivery pipe is fixed to the input end of the delivery pump, a water tank is fixed to one end of the processing frame, a nozzle is fixed to one end of the cutting cylinder, a guide cylinder is fixed inside the nozzle, and a limit block is slidably connected inside the guide cylinder.

[0016] Preferably, a cutting blade is fixed to the outside of the cutting cylinder, the cutting blade is arranged in a ring array, and the output end of the delivery pump is rotatably connected to the input end of the cutting cylinder.

[0017] Preferably, the nozzles are arranged in several groups, the nozzles are distributed in an array, the guide cylinder is inclined, and the outer wall of the limiting block is attached to the inner wall of the guide cylinder.

[0018] This invention also provides a method for cutting and conveying beef offal in canned beef offal processing, comprising the following steps:

[0019] S1. By feeding the offal to be processed into the device, the offal is guided by the second guide plate and the first guide plate, so that it falls to the top of the conveyor belt. The offal is then cut by the cutting blade. Multiple sets of screws can be rotated to move the second guide plate up and down, thereby adjusting the height of the guide channel to accommodate offal of different thicknesses.

[0020] S2. After the offal is cut horizontally, it moves to the bottom of the cutting cylinder. The second motor is started to drive the cutting cylinder to rotate, which drives multiple cutting blades to rotate, thereby cutting the offal at the bottom. The delivery pump is started to allow the cooling water inside the water tank to be delivered to the inside of the cutting cylinder through the delivery pipe and discharged through the nozzle. When the guide tube opening inside the nozzle is facing the top, the limit block falls into the bottom of the guide tube by its own weight to block the water outlet. At this time, the water cannot be discharged through the nozzle. When the guide tube opening is facing the bottom, the limit block slides away from the water outlet position along the inner wall of the guide tube. At this time, the water inside the cutting cylinder is discharged through the nozzle, so that cooling water is sprayed only on the direction of the offal to be cut.

[0021] S3. After cutting, the first motor is started to drive the first conveyor roller to rotate, which in turn drives the conveyor belt to move. The conveyor belt transports the offal, and the rotation of the first conveyor roller causes the first bevel gear to rotate, which in turn drives the second bevel gear to rotate. At this time, the second bevel gear drives the gear reducer to rotate, which in turn drives the drive disc to rotate. When the drive disc rotates, it causes the support rod and the second baffle to swing up and down. When the second baffle is facing down, it blocks the output end of the offal, causing the offal to accumulate. After accumulation, it is automatically lifted to complete the unloading.

[0022] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0023] This invention, through the coordinated arrangement of a first baffle, a first guide plate, and a screw, enables the device to stably guide and pre-cut offal. The first guide plate features an inclined design, facilitating the natural sliding of offal into the conveying area along the slope and preventing material accumulation and jamming. Rotating the screw moves the second guide plate up and down, forming an adjustable guiding channel in conjunction with the first guide plate. This allows for flexible adjustment of the channel height according to different thicknesses of offal, ensuring that the offal does not deviate during conveying and preventing excessive compression and deformation when the thickness is too large. Simultaneously, the array of cutting blades on the first baffle pre-cuts the offal as it passes through, initially cutting large pieces into sizes suitable for subsequent processing. This provides a uniform raw material base for the subsequent fine cutting process, ultimately achieving the effects of adapting to the cutting of offal of various specifications, improving raw material utilization, and ensuring the cutting quality of subsequent processes.

[0024] This invention, through the coordinated arrangement of a first bevel gear, a second bevel gear, and a gear reducer, enables the device to automatically accumulate and time-controlled unloading of offal using the driving force of the conveyor belt itself. The first bevel gear rotates with the first conveyor roller, and through the meshing second bevel gear, it transmits power to the gear reducer. After reduction and torque amplification, the reducer drives the drive disc to rotate. The drive disc, through a sliding connection with the support rod, causes the second baffle to periodically swing up and down. When the second baffle moves downward, it blocks the offal at the end of the conveyor, achieving quantitative accumulation. Once a certain amount has been accumulated, the second baffle automatically lifts to complete the unloading. The entire process does not require an additional independent drive source, making full use of the existing power of the conveying system, ultimately achieving the effects of reducing equipment complexity, realizing automated accumulation and unloading, and reducing manual intervention.

[0025] This invention, through the coordinated arrangement of a second motor, a cutting cylinder, and a delivery pump, enables the device to simultaneously lubricate and cool the cutting tools and offal during the slicing process. The second motor drives the cutting cylinder to rotate at high speed. Cutting blades arranged in a ring array on the outside of the cutting cylinder precisely slice the offal. The delivery pump pumps cooling water from a water tank into the cutting cylinder through a delivery pipe, and then sprays it out through a nozzle to lubricate and cool the cutting area. The guide cylinder inside the nozzle has an inclined design, and a limiting block can slide within the guide cylinder. When the nozzle rotates with the cutting cylinder to the downward position, the limiting block slides down due to gravity, opening the water outlet and spraying water. When it rotates to the upward position, the limiting block falls back down, blocking the water outlet and automatically stopping the spraying. Spraying is achieved on demand through purely mechanical gravity sensing, ultimately reducing cutting friction resistance, preventing offal from adhering to the cutting tools, maintaining a smooth and clean cutting surface, and improving slicing quality. Attached Figure Description

[0026] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0027] Figure 2This is a schematic diagram of the guiding pre-cutting mechanism of the present invention;

[0028] Figure 3 This is a schematic diagram of the overall rear view structure of the present invention;

[0029] Figure 4 For the present invention Figure 3 Enlarged cross-sectional view of section A in the middle;

[0030] Figure 5 This is an enlarged structural diagram of the baffle mechanism of the present invention;

[0031] Figure 6 This is a schematic diagram of the spraying and cutting mechanism of the present invention;

[0032] Figure 7 This is a schematic diagram of the cross-sectional structure of the cutting cylinder of the present invention;

[0033] Figure 8 For the present invention Figure 7 Enlarged cross-sectional view of section B in the middle section;

[0034] Figure 9 For the present invention Figure 8 Enlarged cross-sectional view of section C.

[0035] In the diagram: 1. Processing frame; 2. First motor; 3. First conveyor roller; 4. Second conveyor roller; 5. Conveyor belt; 6. Guide pre-cutting mechanism; 601. First baffle; 602. First guide plate; 603. Screw; 604. Second guide plate; 605. Cutting blade; 7. Baffle mechanism; 701. First bevel gear; 702. Second bevel gear; 703. Gear reducer; 704. Drive disc; 705. Mounting frame; 706. Support rod; 707. Second baffle; 8. Spraying and cutting mechanism; 801. Second motor; 802. Cutting cylinder; 803. Conveying pump; 804. Conveying pipe; 805. Water tank; 806. Spray nozzle; 807. Guide cylinder; 808. Limiting block. Detailed Implementation

[0036] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0037] like Figures 1 to 9As shown, the present invention provides a beef offal cutting and conveying device for processing beef offal canned goods. A first motor 2 is fixed at one end of the processing frame 1, a first conveying roller 3 is fixed at the drive end of the first motor 2, a second conveying roller 4 is rotatably connected to one end of the processing frame 1, a conveyor belt 5 is installed on the outside of the second conveying roller 4, a guide pre-cutting mechanism 6 is fixed at the top of the processing frame 1, a baffle mechanism 7 is installed at one end of the first conveying roller 3, and a spraying and cutting mechanism 8 is installed at one end of the processing frame 1.

[0038] like Figures 1 to 3 As shown, the guide pre-cutting mechanism 6 includes a first baffle 601, a first guide plate 602, and a screw 603. The first baffle 601 is fixed to the top of the processing frame 1, the first guide plate 602 is fixed to one end of the first baffle 601, the screw 603 is rotatably connected to the top of the first baffle 601, and a second guide plate 604 is threaded to the outside of the screw 603. A cutting blade 605 is fixed to one end of the first baffle 601. The first guide plate 602 is inclined, four sets of screws 603 are provided, the second guide plate 604 is parallel to the first guide plate 602, and several sets of cutting blades 605 are provided, which are arranged in an array.

[0039] The above scheme is adopted: a guide channel is formed between the first guide plate 602 and the second guide plate 604. The offal to be processed falls into the guide channel from the feeding end. The first guide plate 602 and the second guide plate 604 are located on both sides of the offal to limit and guide it, so that the offal enters in the center along the width direction of the conveyor belt 5, avoiding deviation during the conveying process. The first baffle 601 is fixed to the top of the processing frame 1 as a mounting base. The screw 603 is rotatably connected to the top of the first baffle 601. Four sets of screws 603 are provided. The second guide plate 604 is threadedly connected to the first baffle 601 through the screws 603. When the screw 603 is rotated, the second guide plate 604... The guide plate 604 moves up and down along the axis of the screw 603, thereby changing the distance between the second guide plate 604 and the first guide plate 602, so that the guide channel can adapt to offal of different thicknesses. When the offal passes through the first baffle 601, multiple sets of cutting blades 605 fixed on the first baffle 601 perform preliminary cutting on the offal. The cutting blades 605 are arranged in an array at one end of the first baffle 601. When the offal passes through the cutting blades 605, longitudinal pre-cutting is completed. The second guide plate 604 is set parallel to the first guide plate 602, so that the width of the guide channel is consistent along the conveying direction, avoiding the offal from being squeezed and deformed due to sudden changes in width in the channel.

[0040] like Figures 1 to 5As shown, the baffle mechanism 7 includes a first bevel gear 701, a second bevel gear 702, and a gear reducer 703. The first bevel gear 701 is fixed to the outside of the first conveying roller 3. The second bevel gear 702 is rotatably connected to one end of the processing frame 1. The gear reducer 703 is fixed to the top of the processing frame 1. The second bevel gear 702 is fixed to the input end of the gear reducer 703. A drive disk 704 is fixed to the drive end of the gear reducer 703. A mounting frame 705 is fixed to one end of the processing frame 1. A support rod 706 is rotatably connected inside the mounting frame 705. A second baffle 707 is fixed to one end of the support rod 706. Two sets of first bevel gears 701 are provided. The first bevel gears 701 are symmetrically distributed and mesh with the second bevel gear 702. Two sets of mounting frames 705 are provided. The mounting frames 705 are symmetrically distributed about the central axis of the processing frame 1. The drive disk 704 is slidably connected to the support rod 706.

[0041] Using the above scheme: When the first conveying roller 3 rotates, it drives the first bevel gear 701 fixed to its outside to rotate synchronously. Two sets of the first bevel gear 701 are provided and symmetrically distributed. The two sets of first bevel gears 701 are respectively meshed with the second bevel gear 702. The second bevel gear 702 is rotatably connected to one end of the processing frame 1 and fixed to the input end of the gear reducer 703. The rotational motion of the first bevel gear 701 is transmitted to the second bevel gear 702 through meshing, and then the second bevel gear 702 drives the input end of the gear reducer 703 to rotate. After reducing the speed, the gear reducer 703 transmits power to the drive disc 704 at its drive end. When the drive disc 704 rotates, it drives the first bevel gear 701 to rotate. The slidingly connected support rod 706 reciprocates. The support rod 706 is rotatably connected inside the mounting frame 705. One end of the support rod 706 is fixed with a second baffle 707. When the drive disc 704 rotates one revolution, the support rod 706 drives the second baffle 707 to complete one up-and-down swing. The mounting frame 705 is provided with two sets of baffles 707 that are symmetrically distributed about the central axis of the processing frame 1, so that both ends of the second baffle 707 are supported at the same time, ensuring the stability of the second baffle 707 during the swing. When the second baffle 707 is facing down, it blocks the output end of the offal, causing the offal to accumulate on the conveyor belt 5. When the second baffle 707 is facing up, the accumulated offal is lifted and automatically slides down to complete the unloading.

[0042] like Figures 1 to 9As shown, the spraying and cutting mechanism 8 includes a second motor 801, a cutting cylinder 802, and a delivery pump 803. The second motor 801 is fixed to one end of the processing frame 1, the cutting cylinder 802 is fixed to the drive end of the second motor 801, the fixed end of the delivery pump 803 is fixedly connected to the processing frame 1, the input end of the delivery pump 803 is fixed with a delivery pipe 804, one end of the processing frame 1 is fixed with a water tank 805, one end of the cutting cylinder 802 is fixed with a nozzle 806, the inside of the nozzle 806 is fixed with a guide cylinder 807, the inside of the guide cylinder 807 is slidably connected with a limit block 808, the outside of the cutting cylinder 802 is fixed with cutting blades, the cutting blades are arranged in a ring array, the output end of the delivery pump 803 is rotatably connected to the input end of the cutting cylinder 802, several sets of nozzles 806 are arranged in an array, the guide cylinder 807 is inclined, and the outer wall of the limit block 808 is attached to the inner wall of the guide cylinder 807.

[0043] The above scheme is adopted: the cutting cylinder 802 is driven to rotate by the second motor 801, and the cutting blade fixed outside the cutting cylinder 802 rotates synchronously with the cutting cylinder 802, making horizontal cuts on the offal passing below the cutting cylinder 802. The input end of the conveying pump 803 is connected to the water tank 805 through the conveying pipe 804, and the output end of the conveying pump 803 is rotatably connected to the input end of the cutting cylinder 802. When the conveying pump 803 is running, it pumps the cooling water in the water tank 805 into the cutting cylinder 802 through the conveying pipe 804, and then discharges it through the nozzle 806 to lubricate and cool the contact parts between the cutting blade and the offal. The nozzle 806 is fixed to one end of the first motor 2 and rotates synchronously with the first conveying roller 3. The guide cylinder 807 inside 806 is inclined, and a limiting block 808 is slidably connected inside the guide cylinder 807. The outer wall of the limiting block 808 is attached to the inner wall of the guide cylinder 807. When the nozzle 806 rotates to the point where the opening faces downward, the limiting block 808 slides along the inner wall of the guide cylinder 807 toward the opening and disengages from the opening position at the bottom of the guide cylinder 807. Water in the cutting cylinder 802 is discharged from the nozzle 806 and sprayed onto the offal and cutting disc. When the nozzle 806 rotates to the point where the opening faces upward, the limiting block 808 slides back to the bottom along the inclined inner wall of the guide cylinder 807 under its own gravity and blocks the opening, preventing water from flowing out. This achieves directional spraying that automatically opens when the nozzle 806 is facing downward and automatically closes when it is facing upward.

[0044] This invention also provides a method for cutting and conveying beef offal in canned beef offal processing, comprising the following steps:

[0045] S1. By feeding the offal to be processed into the device, the offal is guided by the second guide plate 604 and the first guide plate 602, so that the offal falls to the top of the conveyor belt 5. The offal to be processed is cut by the cutting blade 605. The height of the guide channel can be adjusted by rotating multiple sets of screws 603, which drive the second guide plate 604 to move up and down, so as to adapt to offal of different thicknesses.

[0046] S2. After the beef offal is cut laterally, it moves to the bottom of the cutting cylinder 802. The second motor 801 is started to drive the cutting cylinder 802 to rotate, so that the cutting cylinder 802 rotates and drives multiple sets of cutting blades to rotate, thereby cutting the beef offal at the bottom. The delivery pump 803 is started so that the cooling water inside the water tank 805 can be delivered to the inside of the cutting cylinder 802 through the delivery pipe 804 and discharged through the nozzle 806. When the opening of the guide cylinder 807 inside the nozzle 806 is facing the top, the limiting block 808 falls into the bottom of the guide cylinder 807 by its own weight and blocks the water outlet. At this time, the water cannot be discharged through the nozzle 806. When the opening of the guide cylinder 807 is facing the bottom, the limiting block 808 slides away from the water outlet position along the inner wall of the guide cylinder 807. At this time, the water inside the cutting cylinder 802 is discharged through the nozzle 806, so that cooling water is sprayed only on the direction of the beef offal to be cut.

[0047] S3. After cutting, the first motor 2 is started to drive the first conveyor roller 3 to rotate, which in turn drives the conveyor belt 5 to move. After the conveyor belt 5 conveys the beef offal, the rotation of the first conveyor roller 3 causes the first bevel gear 701 to rotate, which in turn drives the second bevel gear 702 to rotate. At this time, the second bevel gear 702 drives the gear reducer 703 to rotate, which in turn drives the drive disc 704 to rotate. When the drive disc 704 rotates, it causes the support rod 706 and the second baffle 707 to swing up and down. When the second baffle 707 is facing down, it blocks the output end of the beef offal, causing the beef offal to accumulate. After accumulation, it is automatically lifted to complete the unloading.

[0048] Working principle and usage process of this invention:

[0049] During operation, the operator puts the offal to be processed into the feed end of the processing rack 1. The offal falls into the guide channel composed of the first guide plate 602 and the second guide plate 604. The first guide plate 602 and the second guide plate 604 limit the sides of the offal and guide it to enter the center along the width direction of the conveyor belt 5. Under the guidance of the guide channel, the offal moves forward along the conveying direction of the conveyor belt 5. The distance between the second guide plate 604 and the first guide plate 602 can be adjusted by rotating the screw 603 so that the guide channel can accommodate offal of different thicknesses. When the offal passes through the first baffle 601, it is initially cut by multiple sets of cutting blades 605 fixed on the first baffle 601. The cutting blades 605 are arranged in an array along the width direction of the offal. When the offal passes through the gap between adjacent cutting blades 605, it completes the longitudinal pre-cutting and forms several parallel longitudinal cuts on the surface of the offal.

[0050] The pre-cut offal continues to move forward with the conveyor belt 5 into the working area of ​​the cutting cylinder 802. The second motor 801 drives the cutting cylinder 802 to rotate. Multiple sets of cutting blades are fixed on the outside of the cutting cylinder 802 and distributed in a ring array. When the cutting cylinder 802 rotates, it drives the multiple sets of cutting blades to rotate synchronously, performing transverse cutting on the offal passing below the cutting cylinder 802. The transverse cutting, together with the previous longitudinal cuts, completes the slitting process of the offal. The conveying pump 803 pumps the cooling water in the water tank 805 into the cutting cylinder 802 through the conveying pipe 804. The cooling water is discharged from the cutting cylinder 802 through the nozzle 806, lubricating and cooling the contact parts between the cutting blades and the offal, reducing the frictional resistance between the cutting blades and the offal during the cutting process, and preventing the offal tissue from adhering to the surface of the cutting blades, thus keeping the cut surface flat.

[0051] The nozzle 806 rotates synchronously with the first conveying roller 3. When the nozzle 806 reaches the position with the opening facing downwards, the limiting block 808 slides along the inner wall of the guide cylinder 807 towards the opening. The limiting block 808 disengages from the opening position at the bottom of the guide cylinder 807, allowing water to flow out from the nozzle 806 and spray onto the surface of the offal and the cutting blade. When the nozzle 806 continues to rotate to the position with the opening facing upwards, the limiting block 808 slides down to the bottom along the inclined inner wall of the guide cylinder 807 under its own gravity and blocks the opening position, preventing water in the cutting cylinder 802 from being discharged from the nozzle 806. This ensures that the nozzle 806 only sprays when the opening faces the offal, avoiding water being wasted by spraying upwards.

[0052] After being cut, the offal continues to move towards the discharge end along the conveyor belt 5. The first motor 2 drives the first conveyor roller 3 to rotate. While the first conveyor roller 3 drives the conveyor belt 5 to move, the first bevel gear 701 fixed outside the first conveyor roller 3 rotates synchronously. The first bevel gear 701 drives the second bevel gear 702 to rotate through meshing. The second bevel gear 702 transmits the rotational motion to the input end of the gear reducer 703. After the gear reducer 703 reduces the speed, it outputs power to the drive disc 704. When the drive disc 704 rotates, it converts the circular motion into the reciprocating swing of the support rod 706 through a sliding connection. The support rod 706 drives the second baffle 707 to swing up and down in the mounting frame 705. When the second baffle 707 swings down, it blocks the offal from continuing to be discharged, causing the offal to gradually accumulate on the conveyor belt 5. When the second baffle 707 swings up, the accumulated offal is lifted and automatically slides down into the collection container at the discharge end under the action of gravity.

[0053] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0054] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A beef offal cutting and conveying device for processing canned beef offal, comprising a processing rack (1), characterized in that: One end of the processing frame (1) is fixed with a first motor (2), the drive end of the first motor (2) is fixed with a first conveyor roller (3), one end of the processing frame (1) is rotatably connected with a second conveyor roller (4), a conveyor belt (5) is installed on the outside of the second conveyor roller (4), a guide pre-cutting mechanism (6) is fixed at the top of the processing frame (1), a baffle mechanism (7) is installed at one end of the first conveyor roller (3), and a spraying and cutting mechanism (8) is installed at one end of the processing frame (1). The guide pre-cutting mechanism (6) includes a first baffle (601), a first guide plate (602) and a screw (603). The first baffle (601) is fixed to the top of the processing frame (1), the first guide plate (602) is fixed to one end of the first baffle (601), and the screw (603) is rotatably connected to the top of the first baffle (601). The baffle mechanism (7) includes a first bevel gear (701), a second bevel gear (702), and a gear reducer (703). The first bevel gear (701) is fixed to the outside of the first conveying roller (3). The second bevel gear (702) is rotatably connected to one end of the processing frame (1). The gear reducer (703) is fixed to the top of the processing frame (1). The second bevel gear (702) is fixed to the input end of the gear reducer (703). The spraying and cutting mechanism (8) includes a second motor (801), a cutting cylinder (802) and a delivery pump (803). The second motor (801) is fixed at one end of the processing frame (1), the cutting cylinder (802) is fixed at the driving end of the second motor (801), and the fixed end of the delivery pump (803) is fixedly connected to the processing frame (1).

2. The offal cutting and conveying equipment for processing canned offal according to claim 1, characterized in that: The screw (603) is externally threaded with a second guide plate (604), and a cutting blade (605) is fixed at one end of the first baffle (601).

3. The beef offal cutting and conveying equipment for processing canned beef offal according to claim 2, characterized in that: The first guide plate (602) is inclined, the screw (603) is provided in four groups, the second guide plate (604) is parallel to the first guide plate (602), and the cutting blade (605) is provided in several groups, and the cutting blade (605) is distributed in an array.

4. The beef offal cutting and conveying equipment for processing canned beef offal according to claim 1, characterized in that: The drive end of the gear reducer (703) is fixed with a drive disk (704), and one end of the processing frame (1) is fixed with a mounting frame (705). The mounting frame (705) is rotatably connected with a support rod (706), and one end of the support rod (706) is fixed with a second baffle (707).

5. The offal cutting and conveying equipment for processing canned offal according to claim 1, characterized in that: The first bevel gear (701) is provided in two sets, and the first bevel gear (701) is symmetrically distributed. The first bevel gear (701) meshes with the second bevel gear (702).

6. The beef offal cutting and conveying equipment for processing canned beef offal according to claim 4, characterized in that: The mounting bracket (705) is provided in two sets. The mounting bracket (705) is symmetrically distributed about the central axis of the processing frame (1). The drive disk (704) is slidably connected to the support rod (706).

7. The beef offal cutting and conveying equipment for processing canned beef offal according to claim 1, characterized in that: The input end of the delivery pump (803) is fixed with a delivery pipe (804), one end of the processing frame (1) is fixed with a water tank (805), one end of the cutting cylinder (802) is fixed with a nozzle (806), a guide cylinder (807) is fixed inside the nozzle (806), and a limit block (808) is slidably connected inside the guide cylinder (807).

8. The beef offal cutting and conveying equipment for processing canned beef offal according to claim 1, characterized in that: Cutting blades are fixed to the outside of the cutting cylinder (802), and the cutting blades are arranged in a ring array. The output end of the delivery pump (803) is rotatably connected to the input end of the cutting cylinder (802).

9. The beef offal cutting and conveying equipment for processing canned beef offal according to claim 7, characterized in that: The nozzles (806) are arranged in several groups and are distributed in an array. The guide cylinder (807) is inclined and the outer wall of the limiting block (808) is attached to the inner wall of the guide cylinder (807).

10. A method for cutting and conveying beef offal in canned beef offal processing, employing a beef offal cutting and conveying device as described in any one of claims 1-9, characterized in that: Includes the following steps: S1. By feeding the offal to be processed into the device, the offal is guided by the second guide plate (604) and the first guide plate (602) to fall onto the top of the conveyor belt (5), and the offal to be processed is cut by the cutting blade (605). The device can also rotate multiple sets of screws (603) to move the second guide plate (604) up and down, thereby adjusting the height of the guide channel to accommodate offal of different thicknesses. S2. After horizontal cutting, the offal is moved to the bottom of the cutting cylinder (802), and the second motor (801) is started to drive the cutting cylinder (802) to rotate. When the cutting cylinder (802) rotates, it drives multiple sets of cutting blades to rotate, thereby cutting the offal at the bottom. The delivery pump (803) is started to allow the cooling water inside the water tank (805) to be delivered to the inside of the cutting cylinder (802) through the delivery pipe (804) and discharged through the nozzle (806). When the opening of the guide cylinder (807) inside the head (806) faces the top, the limiting block (808) falls into the bottom of the guide cylinder (807) by its own weight to block the water outlet. At this time, water cannot be discharged through the nozzle (806). When the opening of the guide cylinder (807) faces the bottom, the limiting block (808) slides away from the water outlet position along the inner wall of the guide cylinder (807). At this time, the water inside the cutting cylinder (802) is discharged through the nozzle (806), so that cooling water is sprayed only in the direction of the offal to be cut. S3. After cutting, start the first motor (2) to drive the first conveyor roller (3) to rotate, which in turn drives the conveyor belt (5) to move. After the conveyor belt (5) conveys the offal, the rotation of the first conveyor roller (3) causes the first bevel gear (701) to rotate and drive the second bevel gear (702) to rotate. At this time, the second bevel gear (702) drives the gear reducer (703) to rotate, which in turn drives the drive disc (704) to rotate. When the drive disc (704) rotates, it drives the support rod (706) and the second baffle (707) to swing up and down. When the second baffle (707) is facing down, it blocks the output end of the offal, causing the offal to accumulate. After accumulation, it is automatically lifted to complete the unloading.

Citation Information

Patent Citations

  • Food cutting machine

    CN212707160U