Assembly part and power platform
By using a snap-fit boss and groove structure and a three-way output transmission system, the integration problem of the multi-functional food preparation equipment module is solved, thereby improving space utilization and operational efficiency.
Patent Information
- Application Number
- CN202423236946.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-27
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2034-12-27
AI Technical Summary
In existing technologies, the separate modules of multi-functional food preparation equipment occupy kitchen space, making it difficult to achieve a reasonable integrated setup.
The design incorporates snap-fit bosses and snap-fit grooves to provide multiple assembly bases. Combined with a three-way output transmission structure, it adapts to the assembly requirements of different functional modules, including grinding, chopping, kneading, and extruding modules.
It achieves integrated assembly of multiple functional modules, with reasonable layout, improving the utilization rate of kitchen space and meeting the needs of different operations.
Smart Images

Figure CN223627385U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the technical field of household appliances, and particularly relates to an assembling component of a cutting and dispensing module and a power platform. BACKGROUND
[0002] With the improvement of people's living standards, the work is also inevitable. In order to save the operation time of the cooking and preparation stage, various preparation equipment is born, such as a chopping module with the function of chopping food materials, a dough kneading and extruding module capable of processing dough and a module capable of cutting meat and vegetables. If these modules with different functions are used as different devices respectively, they will obviously occupy a large space, making the kitchen space, which is already not spacious, more cramped. The integrated setting of the above-mentioned functional modules has become the goal pursued by the technical personnel in the technical field. CONTENT OF THE UTILITY MODEL
[0003] In order to solve the above technical problems, the assembling component structure of the power platform is further improved, so as to adapt to the assembly of multiple functional modules at the same time. One of the purposes of the utility model is to provide an assembling component of a cutting and dispensing module, and the second purpose is to provide a corresponding power platform.
[0004] The specific technical solutions are described below:
[0005] The assembling component is arranged on the upper shell and comprises:
[0006] The clamping boss has a length direction extending in the first direction, and a first through hole is formed in the clamping boss to expose the first output part;
[0007] The clamping groove has a length direction extending in the second direction, and the outer end of the clamping groove is an open opening, and the inner end is provided with a third through hole to expose the third output part;
[0008] The clamping boss is located above the clamping groove;
[0009] The first direction and the second direction are staggered with each other.
[0010] In the above technical solution, the clamping boss provides a first assembly basis, the cutting and dispensing module can be assembled by the groove arranged below, and the first output part is used as the power to drive the corresponding cutting operation;
[0011] The clamping groove provides a second assembly basis, the cutting and dispensing module can be assembled by the strip-shaped tenon arranged on the side or below, and the third output part is used as the power to drive the corresponding cutting operation;
[0012] The clamping protrusion is above the clamping groove, which can stagger the two assembly bases in the vertical direction, and the first direction and the second direction are staggered, which makes the two assembly bases more convenient to arrange in the horizontal direction, so that the integrated arrangement is more reasonable.
[0013] The assembly part provides at least two assembly structures to adapt to the integrated arrangement of different assembly modules.
[0014] Preferably, the first through hole is arranged at one end of the clamping protrusion extending in the length direction; further preferably, the opening direction of the first through hole is vertically upward.
[0015] Preferably, the third through hole is arranged in the middle region of the inner end; further preferably, the opening direction of the third through hole is horizontally arranged.
[0016] Preferably, an assembly interval is arranged between the clamping protrusion and the inner end of the clamping groove, which separates the two clamping structures and simultaneously separates the first through hole and the third through hole, facilitating the configuration of the transmission structure.
[0017] Further preferably, the assembly interval is provided with a second through hole for exposing the second output part, and the opening direction of the second through hole is vertically upward, at this time, the assembly interval as a third assembly base can drive the corresponding cutting operation through the second through hole.
[0018] The setting position and direction of the first through hole, the second through hole and the third through hole are used to adapt to the output position and output direction of the transmission structure.
[0019] Preferably, the first direction and the second direction are perpendicular to each other.
[0020] The power platform is provided with the assembly part of any one of the above technical solutions.
[0021] In summary, the technical scheme of the utility model has the following main beneficial effects:
[0022] Compared with the prior art, the assembly part of the utility model technical scheme provides a plurality of assembly structures to adapt to the integrated arrangement of different assembly modules, and has a reasonable assembly integrated arrangement mode.
[0023] Further or more detailed beneficial effects will be described in the specific embodiments. BRIEF DESCRIPTION OF DRAWINGS
[0024] Fig. 1 is a perspective structural schematic view of the power platform of the embodiment;
[0025] Fig. 2is the internal part structure schematic view of the power platform of the embodiment;
[0026] Fig. 3 is the structure schematic view of the cutting and processing machine equipped with the noodle extruding module in the embodiment;
[0027] Fig. 4 is the structure schematic view of the cutting and processing machine equipped with the vegetable cutting module in the embodiment;
[0028] Fig. 5 is the structure schematic view of the cutting and processing machine equipped with the meat cutting module in the embodiment;
[0029] Fig. 6 is the structure schematic view of the cutting and processing machine equipped with the stirring and crushing module in the embodiment.
[0030] Reference signs:
[0031] 1: power platform, 1.1: double-output motor, 1.11: first output, 1.12: shaft coupling output, 1.2: phase conversion shaft coupling, 1.21: second output, 1.22: third output;
[0032] 1.3: upper shell, 1.31: clamping boss, 1.311: first through hole, 1.32: clamping groove, 1.321: third through hole, 1.33: assembly interval, 1.331: second through hole;
[0033] 2: noodle extruding module, 3: vegetable cutting module, 4: meat cutting module, 5: stirring and crushing module. DETAILED DESCRIPTION
[0034] The utility model is further explained in combination with the embodiments:
[0035] The core technical problem faced by the technical scheme of the embodiments is derived from the accurate understanding of the prior art by the inventor, therefore, how to enable the power platform to simultaneously adapt to the assembly of multiple functional modules is a technical problem that the inventor urgently needs to solve.
[0036] It should be noted that the embodiments do not constitute a limitation on the protection scope of the claims of the utility model, and the technical solutions that can be reasonably expected by the skilled in the art according to the technical concepts provided / proved by the embodiments should be covered within the protection scope of the claims of the utility model.
[0037] The embodiments are described in detail as follows:
[0038] Please refer to the accompanying drawings Figs. 1-2The assembling part of the cutting module is arranged on the upper shell 1.3, and specifically includes a clamping boss 1.31 and a clamping groove 1.32, wherein the length extension direction of the clamping boss 1.31 is perpendicular to the length extension direction of the clamping groove 1.32, so as to integrate the two on a similar rectangular part as much as possible, and meanwhile, the clamping boss 1.31 is arranged above the clamping groove 1.32, so as to stagger the two in the vertical direction, so that the layout is more suitable for the transmission structure, and the assembly of the cutting module is more convenient.
[0039] Specifically, the clamping boss 1.31 is provided with a first through hole 1.311 for exposing the first output part 1.11, and the first through hole 1.311 is arranged at one end of the clamping boss 1.31 extending in the length direction and has a vertical upward opening direction.
[0040] The outer end of the clamping groove 1.32 is an open opening, and the inner end is provided with a third through hole 1.321 for exposing the third output part 1.22, and the third through hole 1.321 is arranged at the middle region of the inner end and has a horizontal opening direction.
[0041] The technical scheme of the embodiment provides two assembly structures to adapt to the integrated arrangement of different assembly modules.
[0042] The clamping boss 1.31 provides a first assembly basis, and the cutting module can be assembled by clamping the groove arranged below, and the first output part 1.11 is used as a power driving corresponding cutting operation.
[0043] The clamping groove 1.32 provides a second assembly basis, and the cutting module can be assembled by clamping the strip-shaped clamping tenon arranged on the side or below, and the third output part 1.22 is used as a power driving corresponding cutting operation.
[0044] The setting positions and directions of the first through hole 1.311 and the third through hole 1.321 are used to adapt to the output positions and directions of the transmission structure.
[0045] In the preferred embodiment, the inner ends of the clamping boss 1.31 and the clamping groove 1.32 are provided with an assembly interval 1.33, the assembly interval 1.33 is provided with a second through hole 1.331 for exposing the second output part 1.21, and the opening direction of the second through hole 1.331 is vertically upward.
[0046] The technical scheme of the embodiment separates the clamping boss 1.31 and the clamping groove 1.32, and simultaneously separates the first through hole 1.311 and the third through hole 1.321, so as to facilitate the configuration of the transmission structure, and meanwhile, the assembly interval 1.33 as a third assembly basis can be driven by the second through hole 1.331 for driving corresponding cutting operation.
[0047] Please continue to refer to the attached Fig. 2 The embodiment also includes a three-way output transmission structure used in cooperation with the above assembly parts:
[0048] The three-way output transmission structure is composed of a double-output motor 1.1 and a variable-phase coupling 1.2. The double-output motor 1.1 is a large-torque worm reducer motor with two output shafts. The two output shafts are used to output power in two output parts. One of the output parts is a first output part 1.11 with a vertical upward output direction, and the other output part is a coupling output part 1.12 with a horizontal output direction. The first output part 1.11 outputs power through a spline structure.
[0049] The coupling output part 1.12 provides power to the variable-phase coupling 1.2. The input end of the variable-phase coupling 1.2 is connected to the coupling output part 1.12. The variable-phase coupling 1.2 also includes two output parts. One of the output parts is a second output part 1.21 with a vertical upward output direction, and the other output part is a third output part 1.22 with a horizontal output direction. The coupling output part 1.12 obtains different output directions of the second output part 1.21 and the third output part 1.22 through a bevel gear connection structure and adjusts the corresponding rotational speeds of the second output part 1.21 and the third output part 1.22.
[0050] In the technical solution of the embodiment, the first output part 1.11, the second output part 1.21, and the third output part 1.22 have different output rotational speeds to adapt to the needs of different cutting modules. Specifically, the rotational speed of the first output part 1.11 is greater than that of the second output part 1.21, and the rotational speed of the second output part 1.21 is greater than that of the third output part 1.22.
[0051] By combining the motor with two output parts and the variable-phase coupling, the integration of three levels of output parts is achieved, providing a basis for the operation of various menu preparation operations.
[0052] For example, after being set in this way in the embodiment:
[0053] The first output part 1.11 has the fastest rotational speed, and its output power can be used for a chopping module for chopping food. The chopping module is matched and connected to the transmission structure through a recess and a clamping boss 1.31 and a first through hole 1.311.
[0054] The second output part 1.21 has a moderate rotational speed, and its output power can be used for a module for cutting vegetables or making noodles. The corresponding module is assembled on an assembly interval 1.33 and is connected to the transmission structure through a second through hole 1.331 and a second output part 1.21.
[0055] The output speed of the third output part 1.22 is the slowest, which can be used to drive the extruding module. The extruding module is assembled by the strip-shaped tenon and the clamping groove 1.32. The strip-shaped tenon is provided with a transmission structure matched with the position of the third through hole 1.321 and connected with the third output part 1.22.
[0056] In the preferred embodiment, the first output part 1.11 and the second output part 1.21 are provided with a gap for avoiding the clamping structure. In this case, when the crushing module is clamped and installed at the first output part, the second output part 1.21 can avoid interfering with the clamping structure.
[0057] In the preferred embodiment, the second output part 1.21 and the third output part 1.22 have coplanar rotation output axes. In this embodiment, the second output part 1.21 and the third output part 1.22 can be used as the power input part of the dough kneading and extruding module. Specifically, the second output part 1.21 is responsible for the power input of dough kneading, and the third output part 1.22 is responsible for the power input of dough extruding. Since the rotation output axes of the second output part 1.21 and the third output part 1.22 are coplanar, the dough kneading operation can be directly converted to the dough extruding operation.
[0058] Specifically, when the power platform 1 is assembled with different cutting and processing modules:
[0059] Please refer to the accompanying drawings of the specification Fig. 3 The dough extruding module 2 can be assembled with the power platform 1 to realize the functions of dough kneading and dough extruding. The dough extruding module 2 includes a dough kneading and stirring structure and a dough extruding structure. The dough kneading and stirring structure includes a stirring rod. The dough extruding structure includes an extruding screw, which has a driving end and an extruding end arranged oppositely.
[0060] In this embodiment, the stirring rod of the dough extruding module 2 is drivingly connected with the second output part 1.21 exposed from the second through hole 1.331, and the driving end of the extruding screw is drivingly connected with the third output part 1.22 exposed from the third through hole 1.321, so as to realize the assembly and use of the dough cutting and processing machine. The second output part 1.21 has a moderate rotation speed, which can provide sufficient power during dough kneading without damaging the toughness of the dough. The output speed of the third output part 1.22 is the slowest, which is suitable for slow extrusion of the dough and further compacts the dough during the extrusion to obtain a more powerful taste.
[0061] Please refer to the accompanying drawings of the specification Fig. 4The cutting module 3 can be assembled with the power platform 1 to realize the cutting function, wherein the bottom of the cutting module 3 is provided with an input port of the second output part 1.21, and the inside of the cutting module 3 is provided with a cutting structure connected with the second output part 1.21 exposed from the second through hole 1.331. In the embodiment, the cutting structure is driven by the second output part 1.21 to rotate the cutter disc to cut and process the added vegetables. The second output part 1.21 has a moderate rotating speed, which is suitable for slicing or shredding the general vegetables, so as to guarantee the cutting efficiency and prevent the cutter disc from rotating too fast to make the cut vegetables too fine.
[0062] Please refer to the accompanying drawings of the specification Fig. 5 The cutting module 3 can be assembled with the power platform 1 to realize the cutting function, wherein the bottom of the cutting module 3 is provided with an input port of the second output part 1.21, and the inside of the cutting module 3 is provided with a cutting structure connected with the second output part 1.21 exposed from the second through hole 1.331. In the embodiment, the cutting structure is driven by the second output part 1.21 to rotate the cutter disc to cut and process the added vegetables. The second output part 1.21 has a moderate rotating speed, which is suitable for slicing or shredding the general vegetables, so as to guarantee the cutting efficiency and prevent the cutter disc from rotating too fast to make the cut vegetables too fine.
[0063] Please refer to the accompanying drawings of the specification Fig. 6 The cutting module 3 can be assembled with the power platform 1 to realize the cutting function, wherein the bottom of the cutting module 3 is provided with an input port of the second output part 1.21, and the inside of the cutting module 3 is provided with a cutting structure connected with the second output part 1.21 exposed from the second through hole 1.331. In the embodiment, the cutting structure is driven by the second output part 1.21 to rotate the cutter disc to cut and process the added vegetables. The second output part 1.21 has a moderate rotating speed, which is suitable for slicing or shredding the general vegetables, so as to guarantee the cutting efficiency and prevent the cutter disc from rotating too fast to make the cut vegetables too fine.
[0064] The embodiment also includes the power platform 1, which is provided with the assembly part of any one of the above-mentioned embodiments.
[0065] In the description of the present specification, the description of the terms "embodiment", "basic embodiment", "preferred embodiment", "other embodiment", "example", "specific example", or "some examples" means that the specific features, structures, materials or characteristics described in combination with the embodiment or example are included in at least one embodiment or example of the present application. In the present specification, the illustrative description of the above-mentioned terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0066] While the preferred embodiments of the application have been described, those skilled in the art will note that various modifications and changes can be made thereto without departing from the spirit and scope of the application. Accordingly, it is intended that all such modifications and changes be included within the scope of the application as claimed.
[0067] Obviously, many modifications and variations of the present application are possible in light of the above teachings. It is, therefore, to be understood that within the scope of the appended claims and their equivalents, the application can be practiced otherwise than as specifically described.
Claims
1. An assembly part provided on the upper case (1.3), characterized in that, Comprising: A clamping boss (1.31) having a length direction extending to a first direction, a first through hole (1.311) is formed on the clamping boss (1.31) to expose the first output part (1.11); A clamping groove (1.32) having a length direction extending to a second direction, the outer end of the clamping groove (1.32) is an open end, and a third through hole (1.321) is formed on the inner end to expose the third output part (1.22); The clamping boss (1.31) is located above the clamping groove (1.32); The first direction and the second direction are staggered with each other.
2. The assembly component of claim 1, wherein: The first through hole (1.311) is arranged at one end of the clamping boss (1.31) extending along the length direction.
3. The assembly component of claim 2, wherein: The opening direction of the first through hole (1.311) is vertically upward.
4. The assembly component of claim 1, wherein: The third through hole (1.321) is arranged at the middle area of the inner end.
5. The assembly component of claim 4, wherein: The opening direction of the third through hole (1.321) is horizontally arranged.
6. The assembly component of claim 1, wherein: The inner end between the clamping boss (1.31) and the clamping groove (1.32) is provided with an assembly gap (1.33).
7. The assembly component of claim 6, wherein: The assembly gap (1.33) is provided with a second through hole (1.331) to expose the second output part (1.21).
8. The assembly component of claim 7, wherein: The opening direction of the second through hole (1.331) is vertically upward.
9. The fitting member according to claim 1 or 3 or 5, characterized by: The first direction and the second direction are perpendicular to each other.
10. A power platform characterized by: The assembly part of any one of claims 1-9 is provided.