Stirrer with slicing function
By integrating a mixing tank and a slicing mechanism, the problem of traditional mixers requiring separate slicing and mixing steps is solved, enabling rapid cutting and mixing of materials and improving food processing efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANHUI YANGSUIFU HEALTH IND CO LTD
- Filing Date
- 2025-05-29
- Publication Date
- 2026-05-05
AI Technical Summary
Traditional food mixers require separate slicing and mixing processes, which is cumbersome and affects processing efficiency.
Design a mixer with slicing function, integrating a mixing tank, mixing components and slicing mechanism. The orderly feeding and slicing of materials are achieved through the pushing and transmission components. The material is cut into small pieces using a slicing mesh and a cutter and directly introduced into the mixing tank.
Simplify the operation process, improve food processing efficiency, enable rapid cutting and mixing of materials, and improve the mixing effect.
Smart Images

Figure CN224194591U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of food mixing equipment, specifically a mixer with a slicing function. Background Technology
[0002] In food processing, raw materials need to be sliced before being placed in a mixer to improve the mixing effect. Traditional mixing processes require multiple steps such as slicing and mixing, which is cumbersome and can affect food processing efficiency. Therefore, a mixer that can directly slice materials is needed. Utility Model Content
[0003] The technical problem solved by this invention is to provide a stirrer with a slicing function to address the problems mentioned in the background art.
[0004] The technical problem solved by this utility model is achieved by the following technical solution: a stirrer with slicing function, including a stirring tank, a stirring assembly installed on the stirring tank, and a slicing mechanism that cooperates with the stirring assembly. The upper end of the stirring tank is provided with a tank plate, and the stirring assembly and the slicing mechanism are respectively installed at corresponding positions on the tank plate.
[0005] The stirring assembly includes a steering gear mounted on the tank plate and a stirring shaft located at the lower end of the steering gear, and a drive motor is provided at the upper end of the steering gear;
[0006] The slicing mechanism includes a feeding box and a slicing assembly disposed on one side of the feeding box, and a pushing assembly that pushes the material in the feeding box to move in an orderly manner. A movable transmission assembly is installed at the outer end of the slicing assembly. The transmission assembly is adjusted and moved by a material feeding component. One side of the transmission assembly is connected to a steering gear, and the other side can be docked with the slicing assembly.
[0007] As a further embodiment of this utility model:
[0008] The upper end of the feeding box is integrally equipped with a feeding hopper, and a guide shaft is installed inside the feeding box. A pusher plate is slidably installed on the guide shaft. The pushing component is located on the side of the feeding box away from the slicing component to push the material introduced by the feeding hopper. The lower end of the side of the feeding box away from the slicing component is also provided with a discharge port to discharge the retained material residue.
[0009] As a further embodiment of this utility model:
[0010] The pushing assembly includes a pushing frame installed at the outer end of the feed box and a screw installed on the pushing frame. The outer end of the pushing frame is provided with a pushing motor that is connected to the screw drive. A sliding sleeve is also fixedly provided on the side of the feed box near the pushing frame. A push rod is slidably installed in the sliding sleeve. The push rod is respectively installed on both sides of the guide shaft. One side of the push rod is fixedly connected to the push plate, and the other side is connected to the synchronization plate. A screw sleeve is installed on the synchronization plate and is threadedly connected to the screw to push the screw to drive the push plate to move back and forth, so as to realize the orderly feeding of materials.
[0011] As a further embodiment of this utility model:
[0012] The slicing assembly includes a slicing box, a slicing mesh installed on one side of the slicing box, and a cutter that cooperates with the slicing mesh. The slicing box is installed on one side of the feed box, and the slicing mesh is placed against the feed inlet of the feed box. The pushing assembly pushes the material to feed, and the slicing mesh cuts the material into strips. The cutter is mounted on one side of the slicing mesh via a cutter shaft to cut the discharged material into flakes, thereby quickly cutting the material into small flakes. The lower end of the slicing box is connected to the mixing tank so that the flake material falls directly into the mixing tank.
[0013] As a further embodiment of this utility model:
[0014] A tool sleeve is fixedly installed at the outer end of the tool shaft. A polygonal docking hole is provided inside the tool sleeve to connect with the transmission assembly through the docking hole.
[0015] As a further embodiment of this utility model:
[0016] The transmission assembly includes a transmission sleeve and an actuating cylinder integrally disposed on one side of the transmission sleeve, and a polygonal column disposed at the outer end of the actuating cylinder. A square insert shaft is fixedly disposed at the outer end of the output shaft of the steering gear. The transmission sleeve has a square hole corresponding to the square insert shaft so that the square insert shaft can slide and connect within the transmission sleeve. Baffles are respectively disposed on both sides of the actuating cylinder. A material feeding component is disposed at the outer end of the actuating cylinder to push the transmission sleeve to move so as to insert the polygonal column into the docking hole, thereby driving the cutter shaft to rotate.
[0017] As a further embodiment of this utility model:
[0018] The transmission sleeve is also provided with a sliding plate component that slides with the square insert shaft. The sliding plate component is installed on the inner wall of the square hole of the transmission sleeve. Several roller grooves are opened on the sliding plate component, and a sliding roller is rotatably installed in the roller groove so that the sliding roller is in close contact with the square insert shaft, thereby reducing the friction force of the square insert shaft movement.
[0019] As a further embodiment of this utility model:
[0020] The material-shifting component includes a shift plate sleeved on the outer end of the shifting cylinder and flat bearings disposed on both sides of the shift plate. The shift plate abuts against the baffles on both sides of the shifting cylinder through the flat bearings to push the transmission sliding sleeve to move. A handle is connected to one side of the shift plate through a support rod, and a locking plate is provided on the other side to connect with a locking plate to lock the position of the shift plate.
[0021] As a further embodiment of this utility model:
[0022] The locking plate is installed at corresponding positions on the feed box and the steering mechanism. The locking plate has corresponding slots on the locking plate, and the locking plate is engaged in these slots to lock the position of the lever. A counterweight is also provided on the side of the locking plate away from the handle to improve the stability of the locking plate when inserted into the slot. Specifically, the operator rotates the lever using the handle to insert the locking plate into the slot, and the counterweight further enhances the stability of the locking plate.
[0023] As a further embodiment of this utility model:
[0024] One side of the tank plate is provided with an opening for adding materials into the mixing tank. A cover plate is installed on the tank plate corresponding to the opening. The cover plate is mounted on the tank plate by means of a hinge so as to open or close the opening.
[0025] Compared with existing technologies, the advantages of this invention are as follows: A slicing mechanism is installed at the top of the mixing tank to slice the material and directly introduce it into the mixing tank, thereby improving food processing efficiency. A pushing component is provided on one side of the feeding box. The driving motor controls the synchronous plate to move via a screw, and the pusher plate orderly pushes the material towards the slicing mesh. The slicing mesh cuts the material, and then the cutter cuts it into slices, achieving rapid slicing of the material into small pieces and improving the mixing efficiency. The cutter shaft is connected to the transmission component via a cutter sleeve. The feeding component controls the reciprocating movement of the transmission component to achieve synchronous connection or disconnection between the steering mechanism and the cutter shaft. This allows for slicing and introducing the material while mixing, improving work efficiency. When the slicing mechanism is not in use, the polygonal column can be disengaged from the docking hole by the feeding component to stop the cutting action. This device is simple and convenient to operate, facilitating rapid slicing of raw materials and improving the mixing effect. Attached Figure Description
[0026] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0027] Figure 2 This is a partial cross-sectional view of the present invention.
[0028] Figure 3 for Figure 1 Enlarged structural diagram at point A in the middle;
[0029] Figure 4 for Figure 2Enlarged structural diagram at point B;
[0030] The diagram shows the following components: 1. Mixing tank; 2. Feed box; 3. Push frame; 4. Slicing box; 5. Transmission sleeve; 6. Actuator plate; 11. Tank plate; 12. Steering mechanism; 13. Mixing shaft; 14. Drive motor; 15. Square insert shaft; 16. Cover plate; 21. Feed hopper; 22. Guide shaft; 23. Push plate; 24. Discharge port; 31. Screw; 32. Push motor; 33. Push rod; 34. Synchronizing plate; 41. Slicing mesh; 42. Cutter; 43. Cutter shaft; 44. Cutter sleeve; 45. Connecting hole; 51. Actuating cylinder; 52. Polygonal column; 53. Baffle; 54. Slide plate; 55. Sliding roller; 61. Surface bearing; 62. Handle; 63. Clamping plate; 64. Locking plate; 65. Slot; 66. Counterweight. Detailed Implementation
[0031] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below with reference to specific illustrations.
[0032] like Figures 1-4 As shown,
[0033] This embodiment provides a stirrer with slicing function, including a stirring tank 1, a stirring assembly installed on the stirring tank 1, and a slicing mechanism that cooperates with the stirring assembly. The upper end of the stirring tank 1 is provided with a tank plate 11, and the stirring assembly and the slicing mechanism are respectively installed at corresponding positions on the tank plate 11.
[0034] The stirring assembly includes a steering gear 12 mounted on the tank plate 11 and a stirring shaft 13 located at the lower end of the steering gear 12. A drive motor 14 is provided at the upper end of the steering gear 12.
[0035] The slicing mechanism includes a feeding box 2 and a slicing assembly disposed on one side of the feeding box 2, and a pushing assembly that pushes the material in the feeding box 2 to move in an orderly manner. A movable transmission assembly is installed on the outer end of the slicing assembly. The transmission assembly is adjusted and moved by a material feeding component. One side of the transmission assembly is connected to the steering machine 12, and the other side can be docked with the slicing assembly.
[0036] The upper end of the feeding box 2 is integrally equipped with a feeding hopper 21, and a guide shaft 22 is installed inside the feeding box 2. A pusher plate 23 is slidably installed on the guide shaft 22. The pushing component is located on the side of the feeding box 2 away from the slicing component to push the material introduced by the feeding hopper 21. The lower end of the side of the feeding box 2 away from the slicing component is also provided with a discharge port 24 to discharge the retained material residue.
[0037] The pushing assembly includes a pushing frame 3 installed at the outer end of the feed box 2 and a screw 31 installed on the pushing frame 3. The outer end of the pushing frame 3 is provided with a pushing motor 32 that is connected to the screw 31. A sliding sleeve is also fixedly provided on the side of the feed box 2 near the pushing frame 3. A push rod 33 is slidably installed in the sliding sleeve. The push rod 33 is respectively installed on both sides of the guide shaft 22. One side of the push rod 33 is fixedly connected to the push plate 23, and the other side is connected to a synchronous plate 34. A screw sleeve is installed on the synchronous plate 34 and is threadedly connected to the screw 31 through the screw sleeve, so as to push the screw 31 to drive the push plate 23 to move back and forth, thereby realizing the orderly feeding of materials.
[0038] The slicing assembly includes a slicing box 4, a slicing mesh 41 installed on one side of the slicing box 4, and a cutter 42 that cooperates with the slicing mesh 41. The slicing box 4 is installed on one side of the feed box 2, and the slicing mesh 41 is placed against the feed inlet of the feed box 2. The pushing assembly pushes the material to feed, and the material is cut into strips by the slicing mesh 41. The cutter 42 is rotatably installed on one side of the slicing mesh 41 by a cutter shaft 43 to cut the discharged material into pieces, thereby quickly cutting the material into small pieces. The lower end of the slicing box 4 is connected to the mixing tank 1 so that the pieced material falls directly into the mixing tank 1.
[0039] A cutter sleeve 44 is fixedly installed on the outer end of the cutter shaft 43. A polygonal docking hole 45 is provided inside the cutter sleeve 44 to connect with the transmission assembly through the docking hole 45.
[0040] The transmission assembly includes a transmission sleeve 5 and an actuating cylinder 51 integrally disposed on one side of the transmission sleeve 5, and a polygonal column 52 disposed on the outer end of the actuating cylinder 51. A square insert shaft 15 is fixedly disposed on the outer end of the output shaft of the steering gear 12. The transmission sleeve 5 is provided with a square hole corresponding to the square insert shaft 15 so that the square insert shaft 15 can slide and connect within the transmission sleeve 5. Baffles 53 are respectively provided on both sides of the actuating cylinder 51. A material feeding component is disposed on the outer end of the actuating cylinder 51 to push the transmission sleeve 5 to move so as to insert the polygonal column 52 into the docking hole 45, thereby driving the cutter shaft 43 to rotate.
[0041] The transmission sleeve 5 is also provided with a sliding plate 54 that slides with the square insert shaft 15. The sliding plate 54 is installed on the inner wall of the square hole of the transmission sleeve 5. Several roller grooves are opened on the sliding plate 54. A sliding roller 55 is rotatably installed in the roller groove so that the sliding roller 55 fits against the square insert shaft 15, thereby reducing the friction of the square insert shaft 15.
[0042] The material-shifting component includes a shift plate 6 sleeved on the outer end of the shifting cylinder 51 and a plane bearing 61 disposed on both sides of the shift plate 6. The shift plate 6 abuts against the baffles 53 on both sides of the shifting cylinder 51 through the plane bearings 61 to push the transmission sliding sleeve 5 to move. A handle 62 is connected to one side of the shift plate 6 through a support rod, and a locking plate 63 is provided on the other side to connect with the locking plate 64 through the locking plate 63 to lock the position of the shift plate 6.
[0043] The locking plate 64 is installed at corresponding positions on the feed box 2 and the steering mechanism 12. The locking plate 64 has corresponding slots 65 on the locking plate 63. The locking plate 63 is engaged in the slots 65 to lock the position of the lever 6. A counterweight 66 is also provided on the side of the locking plate 63 away from the handle 62 to improve the stability of the locking plate 63 when inserted into the slot 65. Specifically, the operator rotates the lever 6 using the handle to insert the locking plate 63 into the slot 65, and the counterweight 66 further enhances the stability of the locking plate 63.
[0044] One side of the tank plate 11 is provided with an opening for adding materials into the mixing tank 1. A cover plate 16 is installed on the tank plate 11 corresponding to the opening. The cover plate 16 is mounted on the tank plate 11 by means of a hinge so as to open or close the opening.
[0045] Specifically, a slicing mechanism is installed at the top of the mixing tank 1 to slice the material and directly introduce it into the mixing tank 1, thereby improving food processing efficiency. A pushing component is located on one side of the feeding box 2. The driving motor 32 controls the movement of the synchronous plate 34 via the screw 31, and the pusher plate 23 pushes the material orderly towards the slicing mesh 41. The slicing mesh 41 cuts the material, and the cutter 42 cuts the material into slices, achieving rapid slicing of the material into small pieces and improving the mixing efficiency. The cutter shaft 43 is connected to the transmission component via the cutter sleeve 44. The feeding component controls the reciprocating movement of the transmission component to achieve synchronous transmission connection or disconnection between the steering machine 12 and the cutter shaft 43. This allows for slicing and introducing the material while mixing, improving work efficiency. When the slicing mechanism is not in use, the polygonal column 52 can be disengaged from the docking hole 45 by controlling the feeding component to stop the cutter 42 from moving. This device is simple and convenient to operate, facilitating rapid slicing of raw materials and improving the mixing effect.
[0046] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents. It should be noted that, in this document, the use of relational terms such as "first" and "second" is merely used to distinguish one entity or operation from another, and does not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, 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 a process, method, article, or apparatus. In the absence of further restrictions, an element defined by the phrase "comprising a..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
Claims
1. A stirrer with a slicing function, characterized in that: It includes a mixing tank (1), a mixing assembly installed on the mixing tank (1), and a slicing mechanism that cooperates with the mixing assembly. The upper end of the mixing tank (1) is provided with a tank plate (11), and the mixing assembly and the slicing mechanism are respectively installed at corresponding positions on the tank plate (11). The stirring assembly includes a steering gear (12) mounted on the tank plate (11) and a stirring shaft (13) located at the lower end of the steering gear (12). The upper end of the steering gear (12) is provided with a drive motor (14). The slicing mechanism includes a feeding box (2) and a slicing assembly disposed on one side of the feeding box (2), and a pushing assembly that pushes the material in the feeding box (2) to move in an orderly manner. A movable transmission assembly is installed on the outer end of the slicing assembly. The transmission assembly is adjusted and moved by a material feeding component. One side of the transmission assembly is connected to the steering machine (12) for transmission, and the other side can be connected to the slicing assembly.
2. A stirrer with slicing function according to claim 1, characterized in that: The upper end of the feed box (2) is integrally equipped with a feed hopper (21), and a guide shaft (22) is installed inside the feed box (2). A push plate (23) is slidably installed on the guide shaft (22). The pushing component is set on the side of the feed box (2) away from the slicing component to push the material introduced by the feed hopper (21). The lower end of the side of the feed box (2) away from the slicing component is also provided with a discharge port (24) to discharge the retained material residue.
3. A stirrer with slicing function according to claim 2, characterized in that: The pushing assembly includes a pushing frame (3) installed at the outer end of the feed box (2) and a screw (31) installed on the pushing frame (3). The outer end of the pushing frame (3) is provided with a pushing motor (32) that is connected to the screw (31) in a transmission. A sliding sleeve is also fixedly provided on the side of the feed box (2) near the pushing frame (3). A push rod (33) is slidably installed in the sliding sleeve. The push rod (33) is installed on both sides of the guide shaft (22). One side of the push rod (33) is fixedly connected to the push plate (23), and the other side is connected to a synchronous plate (34). A screw sleeve is installed on the synchronous plate (34) and is threadedly connected to the screw (31) through the screw sleeve to push the screw (31) to drive the push plate (23) to move back and forth.
4. A stirrer with slicing function according to claim 1, characterized in that: The slicing assembly includes a slicing box (4), a slicing mesh (41) installed on one side of the slicing box (4), and a cutter (42) that cooperates with the slicing mesh (41). The slicing box (4) is installed on one side of the feed box (2), and the slicing mesh (41) abuts against the feed inlet of the feed box (2). The pushing assembly pushes the material to feed, and the material is cut into strips by the slicing mesh (41). The cutter (42) is rotatably installed on one side of the slicing mesh (41) by the cutter shaft (43) to cut the discharged material into slices. The lower end of the slicing box (4) is connected to the mixing tank (1) so that the sliced material falls directly into the mixing tank (1).
5. A stirrer with slicing function according to claim 4, characterized in that: A cutter sleeve (44) is fixedly installed on the outer end of the cutter shaft (43). A polygonal docking hole (45) is provided inside the cutter sleeve (44) to connect with the transmission assembly through the docking hole (45).
6. A stirrer with slicing function according to claim 5, characterized in that: The transmission assembly includes a transmission sleeve (5) and an actuating cylinder (51) integrally disposed on one side of the transmission sleeve (5), and a polygonal column (52) disposed at the outer end of the actuating cylinder (51). A square insert shaft (15) is fixedly provided at the outer end of the output shaft of the steering gear (12). The transmission sleeve (5) is provided with a square hole corresponding to the square insert shaft (15) so that the square insert shaft (15) can be slidably connected in the transmission sleeve (5). Baffles (53) are provided on both sides of the actuating cylinder (51). A material feeding component is disposed at the outer end of the actuating cylinder (51) to push the transmission sleeve (5) to move so as to insert the polygonal column (52) into the docking hole (45), thereby driving the cutter shaft (43) to rotate.
7. A stirrer with slicing function according to claim 6, characterized in that: The transmission sleeve (5) is also provided with a sliding plate (54) that slides with the square insert shaft (15). The sliding plate (54) is installed on the inner wall of the square hole of the transmission sleeve (5). Several roller grooves are opened on the sliding plate (54). A sliding roller (55) is rotatably installed in the roller groove so that the sliding roller (55) fits against the square insert shaft (15), thereby reducing the friction of the square insert shaft (15) moving.
8. A stirrer with slicing function according to claim 7, characterized in that: The material-shifting component includes a shift plate (6) sleeved on the outer end of the shifting cylinder (51) and a plane bearing (61) disposed on both sides of the shift plate (6). The shift plate (6) abuts against the baffles (53) on both sides of the shifting cylinder (51) through the plane bearings (61) to push the transmission sleeve (5) to move. A handle (62) is connected to one side of the shift plate (6) through a support rod, and a locking plate (63) is provided on the other side to connect with the locking plate (64) through the locking plate (63) to lock the position of the shift plate (6).
9. A stirrer with slicing function according to claim 8, characterized in that: The locking plate (64) is installed at the corresponding positions of the feed box (2) and the steering gear (12). The locking plate (64) is provided with slots (65) corresponding to the locking plate (63). The locking plate (63) is locked in the slots (65) to lock the position of the lever (6). The side of the locking plate (63) away from the handle (62) is also provided with a counterweight (66) to improve the stability of the locking plate (63) when inserted into the slot (65). Specifically, the operator rotates the lever (6) through the handle to insert the locking plate (63) into the slot (65) and increases the stability of the locking plate (63) through the counterweight (66).
10. A stirrer with slicing function according to claim 1, characterized in that: The tank plate (11) has an opening on one side for adding materials into the mixing tank (1). A cover plate (16) is installed on the tank plate (11) corresponding to the opening. The cover plate (16) is mounted on the tank plate (11) by hinge so as to open or close the opening.