A slicing device for meat processing
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-18
- Publication Date
- 2026-08-11
AI Technical Summary
[0004]在现有的肉类切片装置,虽然能够对肉类进行切片,实现不同厚度的切片处理,但是在加工时,裸露在外的刀片容易受到外部异物的影响,进入刀片旋转区域,容易卡住或损坏电机、轴承等部件,同时,在清洁、维护或更换切片刀时,操作人员需直接接触设备,进一步加剧了安全隐患
1、本实用新型能够对待切片的肉类进行固定,防止在切片过程中出现位移等问题,提高加工质量,同时通过无接触传动降低刀片及其电机的损坏率,降低维护成本,对刀片实现自动切换,减少人工干预,有效保障了工作人员的安全。
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Figure CN224616493U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of meat slicing, and more specifically, to a meat slicing device. Background Technology
[0002] Meat generally refers to the edible parts of animals, including mammals (pigs, cattle, sheep), poultry (chickens, ducks, geese), fish (fish, shrimp), etc. It also includes meat products that have undergone processing such as curing and smoking, such as ham sausages and smoked meat. When processing meat, slicing can improve cutting efficiency, ensure uniform slice thickness, adapt to various types of meat, and better meet the needs of different occasions.
[0003] For example, patent application number 202322016703.0 discloses a fast and accurate meat slicing processing device, including a base plate and a connecting seat. The top of the connecting seat has a worktable, and the top edge of the worktable has a baffle with a through hole. The inner wall of the worktable has an electric push rod, one side of the electric push rod has a first push plate, and the top of the first push plate has a second push plate.
[0004] While existing meat slicing devices can slice meat to different thicknesses, the exposed blades are susceptible to foreign objects entering the blade rotation area during processing, which can easily jam or damage components such as motors and bearings. Furthermore, operators need to directly contact the equipment when cleaning, maintaining, or replacing the slicing blades, further exacerbating safety hazards.
[0005] No effective solutions have yet been proposed to address the problems in the relevant technologies. Summary of the Invention
[0006] In view of the problems in the related technologies, this utility model proposes a slicing device for meat processing to overcome the above-mentioned technical problems existing in the existing related technologies.
[0007] Therefore, the specific technical solution adopted by this utility model is as follows: A meat slicing device includes a slicing box, a control panel at one end of the slicing box, an auxiliary feeding component on one side of the slicing box for conveying meat to be sliced, a slicing blade assembly inside the slicing box, a switching component in the middle of one side of the slicing blade assembly, a feeding port on one side of the slicing box, and a discharging port at the bottom of the slicing box.
[0008] Furthermore, in order to achieve automatic conveying and fixing of meat, prevent displacement during slicing, and improve processing quality, the auxiliary feeding assembly includes a working platform that is interspersed on one side of the slicing box and cooperates with the feed inlet; a conveyor belt is provided at the end of the working platform away from the slicing box, and a support frame is provided at the end of the working platform close to the slicing box; a photoelectric sensor and an electric telescopic rod are sequentially provided at the bottom of the support frame, and a pressure plate is provided on the electric telescopic rod.
[0009] Furthermore, to achieve contactless transmission and automatic replacement of the slicing blade, the slicing blade assembly includes a blade disc disposed inside the slicing box. A connecting shaft is located at the center of one side of the blade disc, which mates with one side of the inner wall of the slicing box. Several rotating shafts are arranged through the blade disc in a direction away from the outer circumference of the connecting shaft. Limiting protrusions are provided on the outer circumference of the rotating shafts. A slicing blade is disposed at one end of the rotating shaft, and a ring of permanent magnets is disposed at the other end. The permanent magnets have a polygonal cross-section, and adjacent sets of permanent magnets have opposite magnetic properties. A drive motor is disposed on the other side of the slicing box. The output shaft of the drive motor passes through the side wall of the slicing box and is provided with a permanent magnet column. A permanent magnet mates with the ...
[0010] Furthermore, to achieve precise intermittent movement of the blade disc without manual intervention, the switching component includes a second drive motor housed inside the slicing chamber. The output shaft of the second drive motor has a second rotating shaft. A connecting bar is located at the bottom of the outer circumference of the second rotating shaft. A drive wheel is located at the top of the second rotating shaft. A rotating bar is located on the outer circumference of the second rotating shaft and at the bottom of the drive wheel. A support column connected to the inner wall of the slicing chamber is located on the side of the rotating bar away from the second rotating shaft. A third rotating shaft is located at the top of the connecting bar. A driven wheel that cooperates with the drive wheel is located at the top of the third rotating shaft. The driven wheel has several radial grooves that cooperate with the blade disc. An arc-shaped groove that cooperates with the drive wheel is located on the outer circumference of the driven wheel. The arc-shaped groove is in contact with the drive wheel. The arc surface of the arc-shaped groove and the arc surface of the drive wheel are concentric circles. When the driven wheel rotates, the radial groove faces the center of the first permanent magnet.
[0011] The beneficial effects of this utility model are as follows: 1. This utility model can fix the meat to be sliced, preventing displacement and other problems during the slicing process, thus improving processing quality. At the same time, it reduces the damage rate of the blades and motors through non-contact transmission, lowers maintenance costs, and enables automatic blade switching, reducing manual intervention and effectively ensuring the safety of workers.
[0012] The auxiliary feeding component enables automatic meat delivery, reducing the labor intensity of workers and fixing the meat to ensure stability during slicing and improve slicing quality.
[0013] The slicing blade assembly enables contactless transmission of the slicing blade, effectively reducing the damage rate of the motor. By setting multiple slicing blades, the workload of manual replacement and maintenance is reduced.
[0014] Precise adjustment of the blade disc is achieved by switching components, eliminating the need for manual adjustment and automatically changing the slicing blade, ensuring the safety of operators and improving the efficiency of slicing. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0016] Figure 1 This is a schematic diagram of the structure of a meat slicing device according to an embodiment of the present utility model; Figure 2 This is one of the cross-sectional views of a meat processing slicing device according to an embodiment of the present utility model; Figure 3 This is a second cross-sectional view of a meat processing slicing device according to an embodiment of the present utility model; Figure 4 yes Figure 3 Enlarged view of section A in the image; Figure 5 This is a third cross-sectional view of a meat processing slicing device according to an embodiment of the present utility model; Figure 6 This is a schematic diagram of the switching component in a meat processing slicing device according to an embodiment of the present invention.
[0017] In the picture: 1. Slicing box; 2. Control panel; 3. Auxiliary feeding assembly; 301. Working platform; 302. Conveyor belt; 303. Support frame; 304. Photoelectric sensor; 305. Electric telescopic rod; 306. Pressure plate; 4. Slicing blade assembly; 401. Blade disc; 402. Connecting shaft; 403. Rotating shaft one; 404. Limiting protrusion; 405. Slicing blade; 406. Permanent magnet one; 407. Drive Motor 1; 408, Permanent magnet column; 409, Permanent magnet 2; 410, Slide groove; 5, Switching assembly; 501, Drive motor 2; 502, Rotating shaft 2; 503, Connecting bar; 504, Drive wheel; 505, Rotating bar; 506, Limiting bar; 507, Support column; 508, Rotating shaft 3; 509, Driven wheel; 510, Radial groove; 5011, Arc groove; 6, Feed inlet; 7, Discharge outlet. Detailed Implementation
[0018] To further illustrate the various embodiments, the present invention provides accompanying drawings, which are part of the disclosure of the present invention. These drawings are mainly used to illustrate the embodiments and can be used in conjunction with the relevant descriptions in the specification to explain the operating principles of the embodiments. With reference to these contents, those skilled in the art should be able to understand other possible implementation methods and the advantages of the present invention. The components in the figures are not drawn to scale, and similar component symbols are usually used to represent similar components.
[0019] According to an embodiment of the present invention, a slicing device for meat processing is provided.
[0020] The present invention will now be further described in conjunction with the accompanying drawings and specific embodiments, such as... Figures 1-6 As shown, a meat slicing device according to an embodiment of the present invention includes a slicing box 1. The slicing box 1 has a control panel 2 at one end, an auxiliary feeding assembly 3 on one side for conveying meat to be sliced, a slicing blade assembly 4 inside the slicing box 1, a switching assembly 5 in the middle of one side of the slicing blade assembly 4, an inlet 6 on one side of the slicing box 1 that cooperates with the auxiliary feeding assembly 3, and an outlet 7 at the bottom of the slicing box 1 located below the slicing blade assembly 4.
[0021] By utilizing the above-mentioned technical solutions of this utility model, the present utility model can fix the meat to be sliced, prevent displacement during slicing, improve processing quality, and reduce the damage rate of the blades and motors through non-contact transmission, thereby reducing maintenance costs. Automatic blade switching reduces manual intervention and effectively ensures worker safety. The auxiliary feeding component 3 automatically feeds the meat and fixes it during slicing, ensuring stability, guaranteeing slice thickness, and improving slicing quality. The slicing blade assembly 4 enables non-contact transmission of the slicing blades 405, effectively reducing motor damage. Automatic replacement of multiple slicing blades 405 reduces manual intervention and effectively improves worker safety. The switching component 5 enables precise adjustment of the blade disc 401, eliminating the need for manual adjustment and automatically replacing the slicing blades 405, thus improving slicing efficiency.
[0022] It should be explained that the start command is sent through the human-machine interface (HMI) of the control panel 2. This command is transmitted to the PLC (programmable logic controller) through the HMI. After receiving the command, the PLC precisely controls the corresponding motor to rotate to the preset number of revolutions and drives the telescopic rod to move at the set distance. This process ensures that the equipment can perform various operations according to the set requirements, thereby ensuring the quality and efficiency of meat slicing. This is existing technology and will not be elaborated on here.
[0023] In one embodiment, the auxiliary feeding assembly 3 includes a working platform 301 that is interposed on one side of the slicing box 1 and cooperates with the feed inlet 6. A conveyor belt 302 is provided at the end of the working platform 301 away from the slicing box 1, and a support frame 303 is provided at the end of the working platform 301 close to the slicing box 1. A photoelectric sensor 304 and an electric telescopic rod 305 are sequentially provided at the bottom of the support frame 303, and a pressure plate 306 is provided on the electric telescopic rod 305. This achieves automatic feeding of meat, reducing manual intervention. Simultaneously, the photoelectric sensor 304 and the pressure plate 306 work together to fix the meat, preventing displacement during slicing and improving processing quality.
[0024] Furthermore, it should be explained that the photoelectric sensor 304 is installed at the end away from the electric telescopic rod and close to the conveyor belt 302. The photoelectric sensor 304 works based on the photoelectric effect. Its sensor consists of a transmitter and a receiver. The transmitter emits a light beam towards the object, and the reflected light beam from the object is detected by the receiver. When the object is close to the sensor, the intensity of the reflected light increases, and when the object is not present or is far away, the intensity of the reflected light decreases.
[0025] The working principle of the auxiliary feeding component 3 is as follows: The operator activates the photoelectric sensor 304 through the HMI of the control panel 2 (for example, the photoelectric sensor 304 can be a PM-T44P model, FS-V31 model, etc.). At this time, the photoelectric sensor 304 sends a detection signal to the conveyor belt. When the meat to be sliced is conveyed to the working platform 301 through the conveyor belt 302, when the photoelectric sensor 304 detects the signal of the meat, the photoelectric sensor 304 sends a start signal to the control panel 2. After receiving the start signal, the control panel 2 activates the electric telescopic rod 305 through the built-in PLC. The electric telescopic rod 305 drives the pressing plate 306 to move vertically and press the meat to be sliced. When the photoelectric sensor 304 cannot detect the signal of the meat, it sends a stop signal to the control panel 2 to reset the pressing plate 306.
[0026] In one embodiment, the slicing blade assembly 4 includes a blade disc 401 disposed inside the slicing housing 1. A connecting shaft 402, which mates with the inner wall of the slicing housing 1, is located at the center of one side of the blade disc 401. A plurality of rotating shafts 403, penetrating the blade disc 401, are disposed on the outer circumference of the blade disc 401 away from the connecting shafts 402. Limiting protrusions 404 are provided on the outer circumference of each rotating shaft 403. A slicing blade 405 is disposed at one end of each rotating shaft 403, and a ring of permanent magnets 406 are disposed at the other end of each rotating shaft 403. The permanent magnets 406 have a polygonal cross-section, and adjacent groups of... The permanent magnet 406 has opposite magnetism; a drive motor 407 is provided on the other side of the slicing box 1. The output shaft of the drive motor 407 passes through the side wall of the slicing box 1 and is provided with a permanent magnet column 408. One end of the permanent magnet column 408 is provided with a permanent magnet 409 that cooperates with the permanent magnet 406. The through position of the blade disc 401 is provided with a sliding groove 410 that cooperates with the limiting protrusion 404, so as to realize non-contact transmission of the slicing blade 405. When the slicing blade 405 is blocked by foreign objects, the drive motor 407 will not be synchronously affected, which will cause damage to the motor. At the same time, when the blade needs to be replaced, the blade can be automatically replaced through the blade disc 401.
[0027] Furthermore, it needs to be explained that the principle between permanent magnet 406 and permanent magnet 409 is the principle of magnetic coupling. The actively rotating permanent magnet 409 generates a constant magnetic field. When the drive motor 407 drives permanent magnet 409 to rotate, the magnetic field cuts the magnetic material of the driven rotor permanent magnet 406, generating an eddy current effect. The eddy current forms a reverse magnetic field in the driven rotor permanent magnet 406, which interacts with the magnetic field of the active rotor permanent magnet 409 to generate an electromagnetic torque, driving the driven rotor permanent magnet 406 to rotate synchronously.
[0028] The working principle of the slicing blade assembly 4 is as follows: The operator sends a signal to the drive motor 407 through the HMI of the control panel 2. Under the action of the output end of the drive motor 407, the permanent magnet column 408 is driven to rotate. At the same time, the permanent magnet 406, which cooperates with the permanent magnet 409, rotates synchronously under the action of the magnetic field. The rotating permanent magnet 406 synchronously drives the rotating shaft 403 to rotate, thereby realizing the high-speed rotation of the slicing blade 405 at one end of the rotating shaft 403 to slice the meat. The sliced meat is collected and processed through the discharge port. When it is necessary to replace the slicing blade 405, the blade disc is precisely rotated by switching assembly 5.
[0029] In one embodiment, the switching component 5 includes a second drive motor 501 disposed inside the slicing box 1. The output shaft of the second drive motor 501 is provided with a second rotating shaft 502. A connecting strip 503 is provided at the bottom end of the outer circumference of the second rotating shaft 502. A drive wheel 504 is provided at the top end of the second rotating shaft 502. A rotating strip 505 is provided on the outer circumference of the second rotating shaft 502 and at the bottom of the drive wheel 504. A limit strip 506 is provided on the side of the rotating strip 505 away from the second rotating shaft 502. A support column 507 connected to the inner wall of the slicing box 1 is provided at the bottom end of the connecting strip 503. A third rotating shaft 508 is provided at the top end of the connecting strip 503. The top of the rotating shaft 508 is provided with a driven wheel 509 that cooperates with the drive wheel 504. The driven wheel 509 has several radial grooves 510 that cooperate with the limiting strip 506. The driven wheel 509 cooperates with the cutter head 401. The outer circumference of the driven wheel 509 has an arc-shaped groove 5011 that cooperates with the drive wheel 504. The arc-shaped groove 5011 is in contact with the drive wheel 504. The arc surface where the arc-shaped groove 5011 is located and the arc surface where the drive wheel 504 is located are concentric circles. When the driven wheel 509 rotates, the radial grooves 510 face the center of the permanent magnet 406, realizing precise intermittent movement of the cutter head 401 without manual intervention, and automatically changing the slicing blade 405.
[0030] The working principle of the switching component 5 is as follows: When it is necessary to switch the slicing blade 405, the operator inputs the rotation angle through the HMI of the control panel 2. The PLC in the control panel 2 sends a signal to the drive motor 501. Under the action of the output end of the drive motor 501, the rotating shaft 502 is driven to rotate. Under the action of the rotating shaft 502, the drive wheel 504 and the rotating bar 505 rotate at a constant speed. Under the rotation of the rotating bar 505, the limit bar 506 rotates into the radial groove 510 in the rotation of the driven wheel 509. When the limit bar 506 enters the radial groove 510, it pushes the driven wheel 509 to rotate 90 degrees. The driven wheel 509, which rotates 90 degrees, drives the blade disc 401 to rotate synchronously. When the limit bar 506 gradually exits the radial groove 510, the driven wheel 509 and the blade disc 401 stop rotating and remain stationary until the limit bar 506 re-enters the radial groove 510.
[0031] To facilitate understanding of the above-mentioned technical solutions of this utility model, the working principle or operation method of this utility model in actual process will be described in detail below.
[0032] In practical applications, the operator places the meat to be sliced onto the conveyor belt 302, and then sends a signal to the drive motor 407 via the HMI on the control panel 2, causing the meat to fall into the working platform 301. Simultaneously, the photoelectric sensor 304 and the pressing plate 306 slowly push and compact the meat (the working principle of the auxiliary feeding component 3 is as described above). At this time, the operator drives the drive motor 407 via the control panel 2, which, under the action of the permanent magnets 406 and 409, drives the slicing blade 405 to rotate at high speed, slicing the slowly moving meat. The sliced meat is then collected through the discharge port 7 (the working principle of the slicing blade component 4 is as described above). When the slicing blade 405 needs to be replaced, the operator inputs the rotation angle via the HMI on the control panel 2. The PLC in the control panel 2 sends a signal to the drive motor 501, which, under the action of the output of the drive motor 501, drives the blade disc 401 to rotate precisely (the working principle of the switching component 5 is as described above, enabling the replacement of the slicing blade 405).
[0033] In summary, by utilizing the above-mentioned technical solution of this utility model, the auxiliary feeding component 3, the slicing blade component 4, and the switching component 5 work together to safely slice meat, ensuring worker safety and improving slicing quality and efficiency. The auxiliary feeding component 3 automatically feeds the meat and fixes it during slicing, ensuring stability, slice thickness, and improved slicing quality. The slicing blade component 4 enables contactless transmission of the slicing blade 405, effectively reducing motor damage. Multiple slicing blades 405 are automatically replaced, reducing manual intervention. The switching component 5 precisely adjusts the blade disc 401 without manual adjustment, automatically replacing the slicing blade 405 and improving slicing efficiency.
[0034] In this utility model, unless otherwise explicitly specified and limited, the terms "installation", "setting", "connection", "fixing", "screw connection", etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of two components or the interaction between two components. Unless otherwise explicitly limited, those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0035] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A meat slicing device, comprising a slicing box (1), characterized in that, A control panel (2) is provided at one end of the slicing box (1), and an auxiliary feeding component (3) is provided on one side of the slicing box (1) for conveying the meat to be sliced; The slicing box (1) is equipped with a slicing blade assembly (4). A switching component (5) is provided in the middle of one side of the slicing blade assembly (4); The slicing box (1) has a feed inlet (6) on one side that cooperates with the auxiliary feeding assembly (3), and the slicing box (1) has a discharge outlet (7) located below the slicing blade assembly (4) at the bottom.
2. The meat slicing device according to claim 1, characterized in that, The auxiliary feeding assembly (3) includes a working platform (301) that is interspersed on one side of the slicing box (1) and cooperates with the feed inlet (6). A conveyor belt (302) is provided at one end of the working platform (301) away from the slicing box (1), and a support frame (303) is provided at one end of the working platform (301) close to the slicing box (1). The bottom end of the support frame (303) is provided with a photoelectric sensor (304) and an electric telescopic rod (305), and the bottom end of the electric telescopic rod (305) is provided with a pressure plate (306).
3. The meat slicing device according to claim 1, characterized in that, The slicing blade assembly (4) includes a blade disc (401) disposed inside the slicing box (1). A connecting shaft (402) is disposed in the middle of one side of the blade disc (401) and engages with one side of the inner wall of the slicing box (1). A plurality of rotating shafts (403) passing through the blade disc (401) are disposed in the direction away from the outer circumference of the connecting shaft (402). A limiting protrusion (404) is disposed on the outer circumference of the rotating shafts (403). A slicing blade (405) is disposed at one end of the rotating shafts (403). A ring of permanent magnets (406) is disposed at the other end of the rotating shafts (403). The cross-section of the permanent magnets (406) is a polygonal structure, and the magnetism of two adjacent sets of permanent magnets (406) is opposite. On the other side of the slicing box (1), a drive motor (407) is provided. The output shaft of the drive motor (407) passes through the side wall of the slicing box (1) and is provided with a permanent magnet column (408). One end of the permanent magnet column (408) is provided with a permanent magnet (409) that cooperates with the permanent magnet (406).
4. A meat slicing device according to claim 3, characterized in that, The cutter head (401) has a groove (410) at the through position that cooperates with the limiting protrusion (404).
5. A meat slicing device according to claim 3, characterized in that, The switching component (5) includes a second drive motor (501) disposed inside the slicing box (1). The output shaft of the second drive motor (501) is provided with a second rotating shaft (502). A connecting strip (503) is provided at the bottom of the outer side of the second rotating shaft (502). A drive wheel (504) is provided at the top of the second rotating shaft (502). A rotating strip (505) is provided on the outer side of the second rotating shaft (502) and at the bottom of the drive wheel (504). A limit strip (506) is provided on the side of the rotating strip (505) away from the second rotating shaft (502). The bottom end of the connecting strip (503) is provided with a support column (507) connected to the inner wall of the slicing box (1). The top end of the connecting strip (503) is provided with a rotating shaft three (508). The top end of the rotating shaft three (508) is provided with a driven wheel (509) that cooperates with the driving wheel (504). The driven wheel (509) has several radial grooves (510) that cooperate with the limiting strip (506). The driven wheel (509) cooperates with the cutter head (401).
6. A meat slicing device according to claim 5, characterized in that, The driven wheel (509) has an arc-shaped groove (5011) on its outer circumference that cooperates with the driving wheel (504). When the arc-shaped groove (5011) is in contact with the driving wheel (504), the arc surface where the arc-shaped groove (5011) is located and the arc surface where the driving wheel (504) is located are concentric circles.
7. A meat slicing device according to claim 6, characterized in that, When the driven wheel (509) rotates, the radial groove (510) is oriented toward the center of the permanent magnet (406).
Citation Information
Patent Citations
Rapid and accurate meat slicing processing device
CN220741264U