A pork chopping processing device

CN224722604UActive Publication Date: 2026-09-08XUANHAN BAIYANTAN AGRI & SIDELINE PROD CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202522003336.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-17
Publication Date
2026-09-08
Estimated Expiration
2035-09-17

AI Technical Summary

Technical Problem

[0005]本实用新型的目的在于提供一种猪肉斩切处理装置,其能够针对于现有技术中斩拌作业中物料受向上动能冲击顶开锅盖,引发安全隐患、物料污染及操作人员工作负荷增加的问题,提出解决方案,其能够有效规避物料抛洒污染、消除操作安全隐患并降低操作人员工作负荷

Benefits of technology

[0017] 1. The detachable connection mechanism between the chopping cover and the processing pot body in this application simultaneously achieves the requirements for stability and safety in chopping operations. The chopping cover is rotated and assembled onto the machine body to achieve opening and closing. The locking fit between the chopping cover and the processing pot body can form a closed chopping area, effectively resisting the upward load generated by the impact of chopping force on the material, avoiding the risk of material splashing and contamination caused by the unintended flipping of the chopping cover and the exposure of the chopping blade, thus ensuring food processing hygiene and operational safety from a structural perspective.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224722604U_ABST
    Figure CN224722604U_ABST
Patent Text Reader

Abstract

The utility model discloses a pork chopping processing device, the utility model relates to meat processing technical field, scheme includes: a pork chopping processing device, include: machine body, processing pot body, processing pot body rotates and is installed on the machine body, and processing pot body inside forms the dynamic switching of the processing area and chopping work area, drive assembly, drive assembly assembly is in the machine body, chopping cutter, chopping cutter is connected with drive assembly transmission, and chopping cutter is located in chopping work area, chopping protective cover, chopping protective cover rotates and is installed on the machine body, and chopping protective cover is detachably connected with processing pot body, wherein, when chopping protective cover connects the preset position of processing pot body and forms chopping work area, and chopping protective cover keeps relative fixed with processing pot body to resist the impact force of material to the upward, can effectively avoid material throwing pollution, eliminate the operation safety hidden danger and reduce the work load of operator.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of meat processing technology, specifically to a pork chopping and processing device. Background Technology

[0002] In the food production process, the crushing, mixing, and homogenization of raw materials constitute key steps. To meet these core processing requirements, equipment specializing in the fine processing of ingredients has gradually been integrated into the production system, becoming an indispensable component. This equipment can adapt to the physical characteristics of different ingredients such as meat and fruits and vegetables, achieving efficient processing of raw materials. During processing, it can treat ingredients to meet production standards in terms of shape and texture, providing uniform and fine raw materials for subsequent processing stages of various foods such as meat products and fillings. In the industrialized food production chain, it effectively plays a crucial role in connecting raw material pretreatment and finished product manufacturing.

[0003] A chopping machine disclosed in authorization announcement number (CN222548471U) mainly consists of a machine body, a worktable, a chopping pot, and a rotating shaft. The worktable is mounted on the machine body, and the chopping pot is rotatably connected to the machine body. The rotating shaft extends from the worktable towards the chopping pot and is connected to the chopping blades. In actual operation, the operator puts the material to be chopped into the chopping pot, closes the lid, and then drives the chopping blades to rotate to chop the material. At the same time, the motor drives the chopping pot to rotate, and the coordinated operation of the chopping blades and the chopping pot completes the uniform chopping operation of the material.

[0004] The structure disclosed in this patent has flaws in practical application, specifically as follows: After the operator adds the material and closes the lid, the cleaver imparts upward kinetic energy to the material during its high-speed rotation. This kinetic energy easily causes the lid to be pushed open, scattering the material in all directions. This not only causes material contamination, threatening food safety, but also exposes the cleaver directly to the external environment. If the operator accidentally touches or approaches the equipment at this time, there is a significant safety hazard. To mitigate these risks, the operator typically needs to continuously apply downward pressure to the lid, which undoubtedly increases the operator's workload and reduces the convenience and efficiency of production operations. Utility Model Content

[0005] The purpose of this utility model is to provide a pork chopping and processing device, which can address the problems in the existing technology where materials are impacted by upward kinetic energy during chopping operations, causing safety hazards, material contamination, and increased workload for operators. The device can effectively avoid material spillage and contamination, eliminate operational safety hazards, and reduce the workload of operators.

[0006] This utility model is achieved through the following technical solution:

[0007] A pork chopping and processing device includes: a machine body; a processing pot body, which is rotatably mounted on the machine body and has a dynamically switchable processing area and chopping area inside; a drive assembly, which is mounted on the machine body; a chopping blade, which is drivenly connected to the drive assembly and is located within the chopping area; and a chopping cover, which is rotatably mounted on the machine body and is detachably connected to the processing pot body; wherein, when the chopping cover is connected to a preset position on the processing pot body to form the chopping area, the chopping cover and the processing pot body remain relatively fixed to resist the upward impact force of the material.

[0008] Furthermore, in this utility model, the top edge of the processing pot body is provided with a first flange along the circumferential direction; the bottom edge of the cutting cover is provided with a second flange along the circumferential direction, and the second flange and the first flange are detachably connected.

[0009] Furthermore, in this utility model, two opposingly arranged limiting ear plates are mounted on the first flange along the extending direction, one of the limiting ear plates has an assembly groove, and a locking component is installed in the assembly groove; a locking slot is provided at a preset position of the second flange, the second flange can be embedded between the two limiting ear plates, and the locking slot can form a locking engagement with the locking component.

[0010] Furthermore, in this utility model, the locking assembly includes: a locking base having a mounting groove, the locking base being installed within the mounting groove; a locking pin, the locking pin being at least partially disposed within the mounting groove; and an elastic member disposed within the mounting groove, one end of the elastic member being connected to the inner wall of the mounting groove, and the other end of the elastic member being connected to the locking pin; wherein, when the second flange is embedded between the two limiting ear plates, the locking pin can be embedded into the locking slot to form a locking engagement.

[0011] Furthermore, in this utility model, the end of the locking pin away from the mounting channel is provided with a guide slope structure; wherein, when the second flange is embedded between the two limiting ear plates, the second flange can guide and cooperate with the guide slope structure, forcing the locking pin to retract into the mounting channel.

[0012] Furthermore, in this utility model, the second flange is provided with an unlocking slide cavity extending along a preset path, and the unlocking slide cavity is connected to the locking slot; an unlocking push block is slidably installed in the unlocking slide cavity, and the unlocking push block can slide along the extension direction of the unlocking slide cavity, and at least part of the unlocking push block can extend into the locking slot; an unlocking guide groove is provided in the second flange along the extension direction, and the unlocking guide groove is connected to the unlocking slide cavity; an operating lever is connected to the unlocking push block, and the operating lever protrudes out of the outer side of the second flange after passing through the unlocking guide groove.

[0013] Furthermore, in this utility model, a pot body rotating groove is provided at the top of the machine body, and the processing pot body is rotatably installed in the pot body rotating groove; a first motor is installed inside the machine body, the output end of the first motor is connected to a first spindle, and the end of the first spindle away from the first motor is connected to the processing pot body.

[0014] Furthermore, in this utility model, the aforementioned drive assembly includes: a power housing mounted on the machine body; a second motor mounted inside the power housing; and a second spindle, one end of which is connected to the second motor, and the other end of which is connected to the cutting tool.

[0015] Furthermore, in this utility model, the bottom end of the cutting cover is provided with a tool cavity, which can form an avoidance fit with the cutting tool; an avoidance notch is provided at a preset position of the second flange, which can form an avoidance fit with the second spindle.

[0016] Compared with the prior art, this utility model has the following advantages and beneficial effects:

[0017] 1. The detachable connection mechanism between the chopping cover and the processing pot body in this application simultaneously achieves the requirements for stability and safety in chopping operations. The chopping cover is rotated and assembled onto the machine body to achieve opening and closing. The locking fit between the chopping cover and the processing pot body can form a closed chopping area, effectively resisting the upward load generated by the impact of chopping force on the material, avoiding the risk of material splashing and contamination caused by the unintended flipping of the chopping cover and the exposure of the chopping blade, thus ensuring food processing hygiene and operational safety from a structural perspective.

[0018] 2. The automatic guide locking design of the locking component in this application optimizes the convenience and reliability of the locking operation. The guide slope structure of the locking pin and the pre-tightening force of the elastic element work together to achieve automatic retraction and alignment locking of the locking pin during the process of cutting and fastening the cover, without the need for manual intervention in the locking action, simplifying the operation process while ensuring the stability of the locked state. Attached Figure Description

[0019] The accompanying drawings, which are included to provide a further understanding of the embodiments of the present invention and form part of this application, do not constitute a limitation thereof. In the drawings:

[0020] Figure 1 A schematic diagram of a pork chopping and processing device;

[0021] Figure 2 A schematic diagram of two opposingly arranged limiting lugs;

[0022] Figure 3 This is a cross-sectional view of the locking component;

[0023] Figure 4This is a diagram illustrating the cutting of the protective cap;

[0024] Figure 5 for Figure 4 Enlarged view of point A in the middle;

[0025] Figure 6 A schematic diagram showing the connection of the first spindle to the machining pot body;

[0026] Figure 7 This is a cross-sectional view of the power housing.

[0027] The attached diagram shows the markings and corresponding component names:

[0028] 1-Machine body, 2-Pot body rotating groove, 3-Processing pot body, 4-Chopping cover, 5-First flange, 6-Limiting ear plate, 7-Locking slot, 8-Power housing, 9-Second spindle, 10-Chopping tool, 11-Tool cavity, 12-Avoidance notch, 13-Chopping area, 14-Wait-to-process area, 15-Assembly channel, 16-Locking base, 17-Installation channel, 18-Locking pin, 19-Guide inclined surface structure, 20-Unlocking guide groove, 21-Unlocking slide cavity, 22-Unlocking push block, 23-Operating lever, 24-Elastic element, 25-First spindle, 26-First motor, 27-Second motor, 28-Second flange. Detailed Implementation

[0029] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the embodiments and accompanying drawings. The illustrative embodiments and descriptions of this utility model are only used to explain this utility model and are not intended to limit this utility model.

[0030] Example

[0031] Please refer to Figures 1 to 7 This utility model provides a pork chopping and processing device. It mainly includes a body 1, a processing pot 3, a drive assembly, chopping blades 10, and a chopping cover 4. The processing pot 3 is rotatably mounted on the body 1, and the rotation of the pot 3 enables dynamic switching between the processing area 14 and the chopping area 13. The drive assembly is mounted on the body 1, and the chopping blades 10 are connected to the drive assembly and correspondingly arranged within the chopping area 13. The chopping cover 4 is rotatably mounted on the body 1, and the chopping cover 4 and the processing pot 3 form a detachable connection structure.

[0032] During processing, the operator rotates the chopping cover 4 above the processing pot 3, connecting the chopping cover 4 to a preset position on the processing pot 3 to form a closed chopping area 13. The chopping cover 4 and the processing pot 3 remain relatively fixed to withstand the upward impact load during material processing. The operator feeds pork into the processing pot 3 from the waiting area 14. As the processing pot 3 rotates, the internal space of the processing pot 3 cycles through the switching between the waiting area 14 and the chopping area 13: when the pork rotates with the pot to below the chopping cover 4, it enters the chopping position, and the drive component drives the chopping blade 10 to chop the pork. The above cycle continues until the pork reaches the preset processing particle size.

[0033] During the chopping operation, the chopping cover 4 intercepts the material inside the processing pot 3, effectively preventing it from splashing under the chopping force. The connection between the chopping cover 4 and the processing pot 3 also prevents the cover from tipping over due to material impact. After processing, the operator releases the chopping cover 4 from the processing pot 3, and rotating it allows for easy removal of the processed material, while also providing space for cleaning inside the processing pot 3.

[0034] Please refer to Figure 1 In some embodiments of this application, the top edge of the processing pot body 3 is provided with a first flange 5 along the circumferential direction, and the bottom edge of the chopping cover 4 is correspondingly provided with a second flange 28 along the circumferential direction. The detachable engagement of the second flange 28 and the first flange 5 realizes the connection between the chopping cover 4 and the processing pot body 3. The close engagement of the second flange 28 and the first flange 5 not only ensures the reliability of the connection to resist the impact of materials during processing, but also allows for easy disengagement, meeting the usage requirements of rotating and opening the chopping cover 4.

[0035] Specifically, two opposing limiting ears 6 are installed on the first flange 5. One of the limiting ears 6 has an assembly groove 15, in which a locking component is embedded. A corresponding locking slot 7, adapted to the locking component, is provided on the second flange 28. When the chopping cover 4 is rotated to the position where it engages with the processing pot body 3, the second flange 28 engages between the two limiting ears 6 to form a limit, and the locking component automatically aligns with the locking slot 7, achieving a rigid connection between the chopping cover 4 and the processing pot body 3. This ensures connection strength to withstand processing impacts while also providing convenient opening and closing of the chopping cover 4.

[0036] Please refer to Figure 2 and Figure 3For example, the locking assembly consists of a locking base 16, a locking pin 18, and an elastic element 24 (reset spring): the locking base 16 is integrally formed with a mounting groove 17, and the locking base 16 is embedded in the mounting groove 15; the locking pin 18 is slidably installed in the mounting groove 17, and the elastic element 24 is coaxially disposed in the mounting groove 17, with one end of the elastic element 24 rigidly connected to the inner wall of the mounting groove 17 and the other end connected to the tail end of the locking pin 18.

[0037] In actual operation, before the cutting cover 4 is rotated above the processing pot body 3, the operator presses the locking pin 18 to make it fully retract into the installation groove 17. After the second flange 28 is embedded into the limiting ear plate 6 and the locking slot 7 is aligned with the locking pin 18, the locking pin 18 is automatically locked into the locking slot 7 under the reset elastic force of the elastic element 24, thus completing the locking action.

[0038] When the second flange 28 is inserted between the two limiting ear plates 6, the edge of the second flange 28 forms a wedge-shaped guiding engagement with the guide inclined surface structure 19, forcing the locking pin 18 to retract into the mounting groove 17, simultaneously compressing the elastic element 24 to generate pre-tightening potential energy. Once the second flange 28 is fully inserted and the locking groove 7 and the locking pin 18 are aligned, the elastic element 24 releases the pre-tightening force, driving the locking pin 18 to automatically engage with the locking groove 7, completing the locking engagement. The automatic guiding locking mechanism achieves automatic mechanical reset, eliminating the need for manual intervention in the operation of the locking pin 18 and optimizing the continuity of the operation process.

[0039] Please refer to Figure 4 and Figure 5 In some embodiments of this application, the second flange 28 has an unlocking slide cavity 21 extending along a preset trajectory, which is connected to the locking groove 7. An unlocking push block 22 is slidably embedded in the unlocking slide cavity 21, and part of the unlocking push block 22 can extend into the locking groove 7. The unlocking push block 22 can reciprocate along the extension direction of the unlocking slide cavity 21. The second flange 28 has an unlocking guide groove 20 communicating with the unlocking slide cavity 21. An operating lever 23 is installed on the unlocking push block 22, and the operating lever 23 protrudes out of the outer side of the second flange 28 after passing through the unlocking guide groove 20.

[0040] During operation, the operator moves the operating lever 23 along the unlocking guide groove 20, which drives the unlocking push block 22 to slide synchronously along the unlocking slide cavity 21. When the unlocking push block 22 moves towards the locking slot 7 and extends into it, the unlocking push block 22 and the guide inclined surface structure 19 of the locking pin 18 form a wedge fit, thereby pushing the locking pin 18 to the outside of the locking slot 7, releasing the locking constraint between the locking pin 18 and the locking slot 7, and realizing the separation of the processing pot body 3 and the chopping cover 4.

[0041] It should be noted that the load generated by the weight of the unlocking pusher 22 itself is insufficient to overcome the static frictional resistance between the locking pin 18 and the guide slope structure 19. Under normal circumstances, it will not cause displacement of the locking pin 18, ensuring the inherent stability of the locking mechanism and guaranteeing operational safety. In addition, when the operator pushes the unlocking pusher 22 to extend it into the locking slot 7, it can form a mechanical stop on the locking pin 18, blocking the locking path between the locking pin 18 and the locking slot 7. In this state, the locking function of the chopping cover 4 and the processing pot 3 is temporarily disabled, which is suitable for various working conditions: except for scenarios where the chopping cover 4 needs to be frequently opened and closed during small batch material processing, it can prevent the chopping cover 4 from accidentally locking and interfering with the inspection and adjustment of components during equipment maintenance; during material change, the cover can be kept in an unlocked state, which facilitates quick switching of processing flow for different types of materials; for the local accumulation situation that is prone to occur during the processing of high viscosity materials, the cover angle can be flexibly adjusted for auxiliary treatment without repeated unlocking.

[0042] The specific implementation method of locking the unlocking pusher 22 into the locking slot 7 is common knowledge in the field and will not be described in detail here. In the above state, the locking path of the locking pin 18 is mechanically blocked, keeping the chopping cover 4 and the processing pot body 3 in an unlocked state. This is suitable for scenarios where the cover needs to be operated frequently, which simplifies the operation process and meets the flexible operation requirements under specific working conditions.

[0043] Please refer to Figure 6 In some embodiments of this application, a pot body rotation groove 2 is provided at the top of the machine body 1, and the processing pot body 3 is rotatably assembled in the pot body rotation groove 2; a first motor 26 is installed inside the machine body 1, and the output end of the first motor 26 is connected to the main shaft of the first spindle 25 for transmission. The end of the first spindle 25 away from the motor is rigidly connected to the processing pot body 3. The relative motion adaptation structure between the processing pot body 3 and the pot body rotation groove 2 can be achieved by using a bearing assembly to reduce rotational friction, or by using a slider and a sliding groove to form a sliding guide. Both solutions can meet the rotation requirements of the processing pot body 3.

[0044] Please refer to Figure 7 In some embodiments of this application, the drive assembly consists of a power housing 8, a second motor 27, and a second spindle 9: the power housing 8 is mounted on the upper part of the machine body 1, the second motor 27 is integrated into the inner cavity of the power housing 8, the output end of the second motor 27 is connected to the second spindle 9, and the other end of the second spindle 9 is rigidly connected to the cutting tool 10. An external control module on the power housing 8 can regulate the second motor 27, which can transmit power to the cutting tool 10 via the second spindle 9.

[0045] Please refer to Figure 1In some embodiments of this application, the bottom end of the cutting cover 4 is provided with a tool cavity 11, the inner contour of which adapts to the movement trajectory of the cutting tool 10; a clearance notch 12 is provided at a preset position of the second flange 28, the geometric dimensions of which form a clearance fit with the contour of the second spindle 9. When the cutting cover 4 and the processing pot body 3 are fastened together, the tool cavity 11 achieves rotational clearance of the cutting tool 10 through spatial reservation, and the clearance notch 12 achieves static clearance of the second spindle 9 through positional adaptation, thereby eliminating mechanical interference.

[0046] The specific embodiments described above further illustrate the purpose, technical solution, and beneficial effects of this utility model. It should be understood that the above description is only a specific embodiment of this utility model and is not intended to limit the scope of protection of this utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the scope of protection of this utility model.

Claims

1. A pork chopping processing apparatus, characterized by comprising: include: Body (1); The processing pot body (3) is rotatably mounted on the machine body (1), and the processing pot body (3) forms a dynamically switching processing area (14) and a chopping area (13); A drive assembly, which is mounted on the body (1); A cutting tool (10) is connected to the drive assembly and is located in the cutting area (13). A chopping cover (4) is rotatably mounted on the machine body (1) and is detachably connected to the processing pot body (3); When the cutting cover (4) is connected to the processing pot body (3) at a preset position to form a cutting area (13), the cutting cover (4) and the processing pot body (3) remain relatively fixed to resist the upward impact force of the material.

2. The pork chopping and processing device according to claim 1, characterized in that, The top edge of the processing pot body (3) is provided with a first flange (5) along the circumferential direction; The bottom edge of the cutting cover (4) is provided with a second flange (28) along the circumferential direction, and the second flange (28) is detachably connected to the first flange (5).

3. The pork chopping processing apparatus according to claim 2, characterized by Two opposing limiting ear plates (6) are mounted on the first flange (5) along the extension direction. One of the limiting ear plates (6) is provided with an assembly groove (15), and a locking component is installed in the assembly groove (15). A locking groove (7) is provided at a preset position on the second flange (28). The second flange (28) can be embedded between the two limiting ear plates (6), and the locking groove (7) can form a locking engagement with the locking component.

4. The pork chopping processing apparatus according to claim 3, characterized by The locking component includes: Locking base (16) having mounting channel (17) and the locking base (16) being installed in the mounting channel (15); A locking pin (18) is at least partially disposed within the mounting channel (17); An elastic element (24) is disposed in the mounting channel (17), one end of the elastic element (24) is connected to the inner wall of the mounting channel (17), and the other end of the elastic element (24) is connected to the locking pin (18). When the second flange (28) is embedded between the two limiting ear plates (6), the locking pin (18) can be embedded in the locking slot (7) to form a locking engagement.

5. The pork chopping processing apparatus according to claim 4, wherein The locking pin (18) is provided with a guide slope structure (19) at the end away from the mounting channel (17); When the second flange (28) is embedded between the two limiting ear plates (6), the second flange (28) can guide and cooperate with the guide inclined surface structure (19), forcing the locking pin (18) to retract into the mounting channel (17).

6. The pork chopping processing apparatus according to claim 5, wherein The second flange (28) is provided with an unlocking slide cavity (21) extending along a preset path inside, and the unlocking slide cavity (21) is connected to the locking groove (7); An unlocking push block (22) is slidably installed in the unlocking slide cavity (21). The unlocking push block (22) can slide along the extension direction of the unlocking slide cavity (21). At least part of the unlocking push block (22) can extend into the locking slot (7). The second flange (28) is provided with an unlocking guide groove (20) along the extending direction, and the unlocking guide groove (20) is connected to the unlocking sliding cavity (21); The unlocking push block (22) is connected to an operating lever (23), which passes through the unlocking guide groove (20) and protrudes out of the outer side of the second flange (28).

7. The pork chop processing apparatus of any one of claims 1 to 6, wherein, The top of the machine body (1) is provided with a pot body rotation groove (2), and the processing pot body (3) is rotatably installed in the pot body rotation groove (2); The machine body (1) is equipped with a first motor (26), the output end of the first motor (26) is connected to a first spindle (25), and the end of the first spindle (25) away from the first motor (26) is connected to the processing pot body (3).

8. The pork chop processing apparatus of any one of claims 2 to 6, wherein, The driving component includes: A power housing (8) is mounted on the body (1); The second motor (27) is installed inside the power housing (8); The second spindle (9) is connected at one end to the second motor (27) and at the other end to the cutting tool (10).

9. The pork chopping processing apparatus according to claim 8, characterized by The bottom end of the cutting cover (4) is provided with a knife cavity (11), which can form a clearance fit with the cutting knife (10); The second flange (28) has a clearance notch (12) at a preset position, and the clearance notch (12) can form a clearance fit with the second spindle (9).

Citation Information

Patent Citations

  • Chopper mixer

    CN222548471U