Power platform of cutting and matching module and cutting and matching machine
By combining a dual-output motor and a phase-changing coupling, the output section is integrated with three speed levels, solving the problems of large space occupation and instability of multi-functional modular equipment. It also provides a variety of assembly structures to ensure the stability of the equipment and save space.
Patent Information
- Application Number
- CN202423236916.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-27
- Publication Date
- 2026-02-06
- Estimated Expiration
- 2034-12-27
AI Technical Summary
In existing food preparation equipment, the power output speed requirements of various functional modules are different, resulting in the equipment occupying a large space and being difficult to integrate, and the transmission structure is not stable.
The combination of dual-output motors and phase-changing couplings enables the integration of outputs at three speed levels. Multiple assembly bases are provided through snap-fit bosses and groove structures. Combined with support structures and positioning handles, the equipment is ensured to be stable and space-saving.
It integrates multiple functional modules, saves kitchen space, has a more stable transmission structure, and is easy to use in the sink.
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Figure CN223885060U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the technical field of household appliances, specifically relates to a power platform of cutting and dispensing module and cutting and dispensing machine. BACKGROUND
[0002] With the improvement of people's living standards, the busy work is also inevitable, in order to save the operation time of cooking and preparing food stage, various food preparation equipment is born, however, for Chinese cooking, the food preparation link is more various, which puts forward the requirement that various functions are integrated together for the food preparation equipment, however, various functions require different power output speeds, such as the requirement of power output speed for chopping operation is relatively high, and the requirement of power output speed for noodle extrusion operation is relatively low, therefore, the food preparation equipment urgently needs to provide a transmission structure integrating multi-level speed power output.
[0003] At the same time, if the above-mentioned various function modules are used as different devices respectively, they will obviously occupy a large space, making the kitchen space, which is already not spacious, more cramped, therefore, the integrated setting of the above-mentioned function modules is also the goal pursued by the technical personnel in the technical field. CONTENT OF THE UTILITY MODEL
[0004] To solve the above technical problems, the transmission related structure and assembly component structure of the power platform are further improved in the present application, in order to integrate multi-level speed power output together and make it can adapt to the assembly of various function modules at the same time. One of the purposes of the utility model is to provide a power platform of cutting and dispensing module, and the second purpose is to provide a corresponding cutting and dispensing machine.
[0005] The specific technical solutions are described below:
[0006] A power platform of cutting and dispensing module, comprising a transmission structure and an assembly component matched with the transmission structure;
[0007] The transmission structure comprises:
[0008] A double output motor, comprising a first output and a shaft coupling output;
[0009] A variable shaft coupling provided with power by the shaft coupling output, the variable shaft coupling comprising a second output and a third output;
[0010] The rotation speed corresponding to the first output is greater than the rotation speed corresponding to the second output, and the rotation speed corresponding to the second output is greater than the rotation speed corresponding to the third output;
[0011] The assembly component is arranged on the upper shell, and the assembly component comprises:
[0012] The clamping boss has a length direction extending to a first direction, and a first through hole is formed in the clamping boss to expose the first output part;
[0013] The clamping groove has a length direction extending to a second direction, and an outer end of the clamping groove is an open end, and a third through hole is formed in an inner end of the clamping groove to expose the third output part;
[0014] The clamping boss is located above the clamping groove;
[0015] An assembly interval is arranged between the clamping boss and the inner end of the clamping groove, and a second through hole is formed in the assembly interval to expose the second output part;
[0016] The first direction and the second direction are staggered with each other.
[0017] In the technical scheme, the combination of the double-output motor and the variable-phase coupling is used, so that three levels of output parts are integrated, and operation basis is provided for various requirements of dish preparation operation.
[0018] Specifically, the assembly part comprises:
[0019] The clamping boss provides a first assembly basis, and the cutting module can be clamped and assembled with the clamping boss through the groove arranged below, and the first output part is used as power to drive corresponding cutting operation.
[0020] The clamping groove provides a second assembly basis, and the cutting module can be clamped and assembled with the clamping groove through the strip-shaped clamping tenon arranged on the side or below, and the third output part is used as power to drive corresponding cutting operation.
[0021] The assembly interval separates the clamping boss and the clamping groove, and separates the first through hole and the third through hole, so that the transmission structure is convenient to arrange, and the assembly interval serves as a third assembly basis, and the second through hole is used as power to drive corresponding cutting operation.
[0022] The clamping boss is located above the clamping groove, and the clamping boss protrudes upward and the clamping groove is recessed downward, so that the concave-convex directions of the upper and lower parts are more staggered in the vertical direction, and the first direction and the second direction are staggered with each other, so that the two assembly bases are more convenient to arrange in the horizontal direction, and the integrated arrangement is more reasonable.
[0023] The assembly part provides at least two assembly structures to adapt to the integrated arrangement of different assembly modules.
[0024] Preferably, a motor clamping groove is arranged in the clamping boss, the opening of the motor clamping groove faces downward, and the side wall of the motor clamping groove clamps and limits the upper part of the double-output motor.
[0025] Further preferably, the first output part is arranged at one side of the dual-output motor, the third output part is arranged at an end of the variable coupling away from the dual-output motor, and the second output part is arranged above the third output part.
[0026] Further preferably, the inner end of the clamping groove is provided with a coupling limiting wall abutting against and clamping one side of the third output part on the variable coupling.
[0027] That is, the clamping boss and the clamping groove not only facilitate the integrated assembly of various cutting modules, but also limit the transmission structure through their own structure to prevent vibration and jumping, making the assembly of the transmission structure more stable.
[0028] Preferably, the output direction of the first output part is vertically upward, the output direction of the second output part is vertically upward, and the output direction of the third output part is horizontally arranged.
[0029] The opening direction of the first through hole is vertically upward, the opening direction of the third through hole is horizontally arranged, and the opening direction of the second through hole is vertically upward.
[0030] Preferably, the first through hole is arranged at one end of the clamping boss extending in the length direction, and the third through hole is arranged at the middle region of the inner end.
[0031] The arrangement positions and directions of the first through hole, the second through hole and the third through hole are used to adapt to the output positions and directions of the transmission structure.
[0032] Further preferably, a gap for avoiding the clamping structure is arranged between the first output part and the second output part, so that the first output part powered food preparation module can obtain the space for clamping installation, preventing the second output part from causing installation obstacles.
[0033] Further preferably, the second output part and the third output part have a common rotating output axis, so that the second output part and the third output part can be used as a power input part of the food preparation module, facilitating the internal structure arrangement of the food preparation module.
[0034] The food preparation module is, for example, a dough kneading and extruding module. The second output part is responsible for the power input of dough kneading, and the third output part is responsible for the power input of dough extruding. Since the rotating output axes of the second output part and the third output part are coplanar, the dough kneading operation can be directly followed by the dough extruding operation.
[0035] Preferably, the output power of the first output part acts on at least a module for chopping and crushing food materials.
[0036] Preferably, the output power of the second output part acts on at least a module for cutting vegetables or noodles.
[0037] Preferably, the output power of the third output part acts on at least a module for cutting meat or noodles.
[0038] Preferably, the first output part outputs power through a spline structure.
[0039] Preferably, the shaft coupling output part obtains the output directions of the second output part and the third output part and adjusts the corresponding rotating speeds of the second output part and the third output part through a bevel gear connection structure.
[0040] Preferably, the first direction and the second direction are perpendicular to each other.
[0041] Preferably, the support structure is used for both a table and a sink, and comprises:
[0042] The upper shell has a surface formed with an assembly structure of a vegetable preparation module and an internal transmission structure for power output;
[0043] The lower shell is used for bearing the upper shell and a positioning handle and has a placement space for placing a container, which is located below the upper shell;
[0044] The positioning handle is arranged between the upper shell and the lower shell in an extendable manner and is positioned in a hidden state and a clamping state through a positioning structure.
[0045] The support structure comprises a support plate arranged at a lower end of the lower shell in an extendable manner, which is exposed below the placement space when extended and hidden at a lower end surface of the lower shell when retracted.
[0046] In the above technical solution, the placement space is formed below the upper shell to accommodate a bowl or a basin, thereby saving the occupation of the kitchen table space. However, after the placement space is formed, the upper shell of the power platform still occupies a large space and has a certain weight due to the need to cover the power mechanism and the like. This structure makes the power platform top-heavy and unstable to place and even prone to fall. Therefore, the support structure is further provided, and the support plate extended in the support structure supports the power platform to make it more stable to place.
[0047] In addition, according to whether work is to be performed in the sink, the positioning handle can be in a hidden state and a clamping state respectively. When in the hidden state, the positioning handle is retracted and does not occupy additional space. When in the clamping state, the positioning handle is clamped with the inner wall of the sink to fix the position of the power platform in the sink and prevent it from moving. Meanwhile, the positioning handle itself can also serve as a handle for lifting the power platform, which facilitates its transfer.
[0048] Further, the positioning handle itself exists above the placement space, so that the center of the power platform is more biased upward, at which time the existence of the support structure is more necessary; when the positioning handle in the sink extends the clamping position, the support plate in the support structure can be retracted and hidden at the lower end face of the lower shell to prevent the support plate from occupying additional space.
[0049] Preferably, the positioning structure comprises a positioning buckle and a positioning hole group.
[0050] The positioning hole group comprises a plurality of positioning holes, and the plurality of positioning holes are arranged on the side wall of the positioning handle in the extension direction of the positioning handle, and the positioning buckle is inserted into the corresponding positioning hole to realize positioning.
[0051] Preferably, the positioning hole group is composed of a hidden positioning hole and a clamping positioning hole.
[0052] The hidden positioning hole is arranged close to one end of the positioning handle clamped in the sink.
[0053] The clamping positioning hole is arranged away from one end of the positioning handle clamped in the sink.
[0054] Preferably, the positioning buckle is inserted into the corresponding positioning hole to realize positioning through an adjusting through hole.
[0055] Preferably, the adjusting through hole is partially formed on the upper shell and partially formed on the lower shell, and the upper shell and the lower shell are combined to form the adjusting through hole.
[0056] Preferably, in the clamping state, the width of the power platform in the extension direction of the positioning handle is adapted to a span in the sink, which is usually the width of the sink.
[0057] Preferably, in the hidden state, the inner contour of the positioning handle is adapted to fit on the power platform.
[0058] Preferably, the positioning handle is clamped with the side wall of the sink through a handle part, and an elastic surface layer is arranged on the outer layer of the handle part to more closely abut against the inner wall of the sink.
[0059] Preferably, the positioning handle has a side arm on each side, and each side arm is provided with a counterweight part at an end away from the handle part; further preferably, in the clamping state of the positioning handle, the counterweight part is arranged inside the space covered by the upper shell and / or the lower shell.
[0060] In the above technical solution, the counterweight block arranged at the end of the side arm can optimize a plurality of problems existing in the power platform.
[0061] ①When the positioning handle is in a hidden state, the power platform is applied to the table top at this time, and the counterweight part is located inside the shell away from the side of the placement space, which is just opposite to the protruding direction of the protruding part of the upper shell above the placement space, that is, the protruding end of the upper shell, which originally leads to the hidden danger of the power platform being prone to fall, and the existence and setting position of the counterweight part greatly balance the problem of the center of gravity deviation caused by the above-mentioned protruding end, thus greatly improving the risk of the above-mentioned hidden danger;
[0062] ②When the positioning handle is in a clamping state, the positioning handle is stretched out with a long distance, and in the structure of long distance stretching out, the end part where the handle part is located tends to sink, which leads to the positioning handle being prone to tilt towards the end where the handle part is located, resulting in unstable clamping with the sink and even clamping failure; at this time, the counterweight part is set and still located in the internal space of the shell, the side arm takes the edge of the shell as the fulcrum, the counterweight part plays a balancing role in the gravity distribution of the positioning handle in the clamping state, so that the tendency of the positioning handle tilting towards the end where the handle part is located is reduced or even eliminated, thereby improving the risk of clamping failure hidden danger.
[0063] Preferably, the positioning buckle is composed of a positioning protrusion inserted into the positioning hole and a positioning knob convenient to hold.
[0064] Preferably, the support plate is provided with a slide rail extending along the extension direction thereof, and the support plate is extended and retracted along the slide rail.
[0065] Preferably, a first stopper is arranged in the slide rail, the first stopper limits the extension amplitude of the support plate and makes the support plate at least partially located at the lower end surface of the lower shell when being limited.
[0066] After the support plate is extended, the part limited in the slide rail is clamped in the slide rail, which provides support for the support plate and makes the force point of the gravity of the power platform mainly act on the plane of the support plate instead of the end part of the support plate, so that the power platform is more stable.
[0067] Further preferably, a second stopper is arranged on the side of the first stopper where the support plate is located, and the first stopper limits the extension amplitude of the support plate by abutting against the second stopper.
[0068] Preferably, the first stopper or the second stopper is a block-shaped member with elasticity.
[0069] Preferably, the thickness of the support plate is less than 5mm.
[0070] Preferably, the support plate is an integral rigid flat plate.
[0071] Further preferably, the support plate has an arc-shaped edge at the corner of the outer contour.
[0072] Preferably, the center of gravity of the power platform projects on the support plate in the vertical direction when the support plate is extended to the maximum extent and placed on the platform.
[0073] The cutting and processing machine is provided with the power platform according to any one of the technical solutions.
[0074] In summary, the technical solution of the utility model has the following main beneficial effects:
[0075] Compared with the prior art, the utility model integrates three kinds of output parts with different levels of rotating speed, provides an operation basis for chopping, mixing and kneading dough, cutting vegetables and meat, and the like, and provides a plurality of assembly structures for the assembly part to adapt to the integrated arrangement of different assembly modules and have a reasonable assembly and integration arrangement.
[0076] Meanwhile, the utility model technical solution accommodates a bowl or a basin in the placing space, saves the occupation of the kitchen table space, and supports the power platform through the support plate extended from the support structure to make the power platform more stable.
[0077] In addition, the positioning handle can be in a hidden state or a clamping state according to whether it is used in the sink, does not occupy additional space when in the hidden state, and can fix the position of the power platform in the sink when in the clamping state, preventing the power platform from moving, and the positioning handle itself also makes the position transfer of the power platform more convenient.
[0078] Further or more detailed beneficial effects will be described in the specific embodiments. BRIEF DESCRIPTION OF DRAWINGS
[0079] Figure 1 is a structural schematic view of the power platform described in the embodiments;
[0080] Figure 2 is a structural schematic view of the internal parts of the power platform described in the embodiments;
[0081] Figure 3 is a structural schematic view of the support structure of the power platform described in the embodiments;
[0082] Figure 4 is a structural schematic view of the power platform placed in the sink and on the platform described in the embodiments;
[0083] Figure 5 is a structural schematic view of the cutting and processing machine assembled with the dough kneading module described in the embodiments;
[0084] Figure 6 is a schematic view of a cutting and dispensing machine structure equipped with a vegetable cutting module in an embodiment;
[0085] Figure 7 is a schematic view of a cutting and dispensing machine structure equipped with a meat cutting module in an embodiment;
[0086] Figure 8 is a schematic view of a cutting and dispensing machine structure equipped with a mincing module in an embodiment.
[0087] Reference signs:
[0088] 1: power platform, 1.1: double-output motor, 1.11: first output, 1.12: shaft output, 1.2: phase conversion shaft, 1.21: second output, 1.22: third output;
[0089] 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, 1.4: lower shell, 1.41: placement space;
[0090] 1.5: positioning handle, 1.51: positioning buckle, 1.52: positioning hole group, 1.521: hidden positioning hole, 1.522: clamping positioning hole, 1.53: handle part, 1.54: side arm, 1.541: counterweight part;
[0091] 1.6: support structure, 1.61: support plate, 1.62: slide rail, 1.63: first stop block, 1.64: second stop block;
[0092] 2: face extruding module, 3: vegetable cutting module, 4: meat cutting module, 5: mincing module. DETAILED DESCRIPTION
[0093] The utility model is further explained in combination with embodiments:
[0094] The core technical problem faced by the technical scheme of the embodiments originates from the accurate understanding of the prior art by the inventor, and therefore, how to obtain a power platform that can save space and be stably placed is a technical problem that the inventor urgently needs to solve.
[0095] It should be noted that the embodiments do not constitute a limitation on the protection scope of the claims of the utility model, and any technical scheme that can be reasonably expected by a person 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.
[0096] The embodiments are described in detail as follows:
[0097] Please refer to the accompanying Figures 1-2, the power platform 1 comprises a transmission structure and an assembly component matched with the transmission structure, the assembly component is arranged on the upper shell 1.3 and specifically comprises 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 rectangular component as much as possible, at the same time, 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 more convenient for the assembly of the cutting module.
[0098] Specifically, the clamping boss 1.31 is provided with a first through hole 1.311 for exposing the first output part 1.11, the first through hole 1.311 is arranged at one end of the clamping boss 1.31 extending in the length direction and the opening direction is vertically upward;
[0099] 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, the third through hole 1.321 is arranged at the middle region of the inner end and the opening direction is horizontally arranged;
[0100] Among them, the first output part 1.11 is arranged on one side of the double output part motor 1.1, and the third output part 1.22 is arranged at one end of the variable coupling 1.2 away from the double output part motor 1.1.
[0101] The technical scheme of the embodiment provides two assembly structures to adapt to the integrated arrangement of different assembly modules:
[0102] The clamping boss 1.31 provides a first assembly basis, and the cutting module can be assembled by the clamping boss 1.31 through the groove arranged below, and the first output part 1.11 is used as the power drive for the corresponding cutting operation;
[0103] The clamping groove 1.32 provides a second assembly basis, and the cutting module can be assembled by the clamping groove 1.32 through the strip-shaped clamping tenon arranged on the side or below, and the third output part 1.22 is used as the power drive for the corresponding cutting operation;
[0104] The setting position and direction of the first through hole 1.311 and the third through hole 1.321 are used to adapt to the output position and output direction of the transmission structure.
[0105] In the 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, the opening direction of the second through hole 1.331 is vertically upward, and the second output part 1.21 is arranged above the third output part 1.22.
[0106] The technical scheme of the embodiment spaces the clamping boss 1.31 and the clamping groove 1.32, and simultaneously spaces the first through hole 1.311 and the third through hole 1.321, facilitating the arrangement of the transmission structure. Meanwhile, the assembly space 1.33 serves as a third assembly basis, and the corresponding cutting and arranging operation can be driven by the second through hole 1.331.
[0107] Please continue to refer to the attached Figure 2 The embodiment also includes a three-way output transmission structure used in cooperation with the above-mentioned assembly components:
[0108] The three-way output transmission structure has a double-output motor 1.1 and a variable-phase coupling 1.2 as core components. The double-output motor 1.1 is a large-torque worm reducer motor with two output shafts. The two output shafts are used to form 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.
[0109] 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.
[0110] In the technical scheme 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 and arranging modules. Specifically, the rotational speed corresponding to the first output part 1.11 is greater than the rotational speed corresponding to the second output part 1.21, and the rotational speed corresponding to the second output part 1.21 is greater than the rotational speed corresponding to the third output part 1.22.
[0111] By combining the motor with two output parts and the variable-phase coupling, the integration of three levels of output parts is achieved, providing an operation basis for various menu preparation operations.
[0112] For example, after being set in this way in the embodiment:
[0113] The first output part 1.11 has the fastest rotating speed, and its output power can be used for the chopping module for chopping food materials. The chopping module is provided below with a recess matched with the clamping protrusion 1.31 for clamping, and is provided with a transmission structure matched with the position of the first through hole 1.311 and connected with the first output part 1.11.
[0114] The second output part 1.21 has a moderate rotating speed, and its output power can be used for the module for cutting vegetables or noodles. The corresponding module is assembled on the assembly interval 1.33, and is provided with a transmission structure matched with the position of the second through hole 1.331 and connected with the second output part 1.21.
[0115] The third output part 1.22 has the slowest output rotating speed, and can be used for driving the noodle extruding module. The noodle extruding module is clamped and assembled by the strip-shaped clamping tenon and the clamping recess 1.32. The strip-shaped clamping 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.
[0116] In the preferred embodiment, the first output part 1.11 and the second output part 1.21 are provided with an interval for avoiding the clamping structure. In this case, when the chopping module is clamped and assembled at the first output part, the clamping structure of the second output part 1.21 can be avoided.
[0117] In the preferred embodiment, the second output part 1.21 and the third output part 1.22 have the coplanar rotating output shafts. 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 noodle cutting and extruding two-in-one module, which is convenient for the structure arrangement inside the module. Specifically, the second output part 1.21 is responsible for the power input for noodle cutting, and the third output part 1.22 is responsible for the power input for noodle extruding. Since the rotating output shafts of the second output part 1.21 and the third output part 1.22 are coplanar, the noodle cutting operation can be directly converted into the noodle extruding operation.
[0118] Please refer to the accompanying drawings Figures 1-4 In the preferred embodiment, the power platform 1 includes a housing composed of the upper housing 1.3 and the lower housing 1.4 which are combined together, and includes the positioning handle 1.5 and the supporting structure 1.6. Specifically, the housing is provided with the positioning handle 1.5 and the supporting structure 1.6.
[0119] The upper shell 1.3 and the lower shell 1.4 can be made of various common materials, not limited to various plastics, alloys and other materials. The upper shell 1.3 is formed with an assembly structure of a cutting module on the surface, and a transmission structure with a power output inside, so the volume of the upper shell 1.3 is relatively large. The lower shell 1.4 is used to bear the upper shell 1.3, and a placing space 1.41 for placing a container is formed on the lower shell 1.4. The placing space 1.41 is located below the upper shell 1.3 and is used to accommodate a bowl or a basin to conveniently hold prepared dishes. Therefore, the volume of the lower shell 1.4 is relatively small. The power platform 1 is in a state of head-heavy and foot-light. Whether placed in a sink or on a platform, if not fixed, it is inevitable to be displaced or even tilted, which brings trouble to food preparation work.
[0120] Therefore, the embodiment is provided with the above-mentioned positioning handle 1.5 and the supporting structure 1.6 to correspond to the placement of the power platform 1 in the sink and on the table top respectively, so as to prevent it from being stable and from being tilted.
[0121] Specifically,
[0122] The positioning handle 1.5 is arranged between the upper shell 1.3 and the lower shell 1.4 in a telescopic manner and is positioned in a hidden state and a clamping state through the positioning structure.
[0123] In the above technical solution of the embodiment, the positioning handle 1.5 can be in the hidden state and the clamping state respectively according to whether it is used in the sink. When in the hidden state, the positioning handle 1.5 is retracted and does not occupy extra space. When in the clamping state, the positioning handle 1.5 is clamped with the inner wall of the sink to fix the position of the power platform 1 in the sink and prevent it from moving. Meanwhile, the positioning handle 1.5 itself can also serve as a handle for lifting the power platform 1, which is convenient for transferring the position of the power platform 1.
[0124] Specifically, when in the hidden state, the inner contour of the positioning handle 1.5 is adapted to fit on the power platform 1. When in the clamping state, the width of the power platform 1 in the telescopic direction of the positioning handle 1.5 is consistent with the width of the sink.
[0125] The positioning structure in the above embodiment includes a positioning buckle 1.51 and a positioning hole group 1.52.
[0126] The positioning hole group 1.52 is composed of a hidden positioning hole 1.521 and a clamping positioning hole 1.522. The hidden positioning hole 1.521 is arranged near one end of the positioning handle 1.5 clamped to the sink, and the clamping positioning hole 1.522 is arranged away from the other end of the positioning handle 1.5 clamped to the sink. The positioning buckle 1.51 is inserted into the corresponding positioning hole to realize positioning.
[0127] Specifically, the positioning buckle 1.51 is composed of a positioning protrusion inserted into a positioning hole and a positioning nose convenient to hold, and when operating, the user holds the positioning nose and inserts the positioning protrusion into the positioning hole.
[0128] Before insertion, the positioning buckle 1.51 is first positioned by adjusting a through hole and then inserted into the corresponding positioning hole, and the adjusting through hole is partially formed on the upper shell 1.3 and partially formed on the lower shell 1.4, and the upper shell 1.3 and the lower shell 1.4 are combined to form the adjusting through hole.
[0129] The support structure 1.6 includes a support plate 1.61 which is telescopically arranged at the lower end of the lower shell 1.4, and when the support plate 1.61 is extended, it is located below the placement space 1.41, and when the support plate 1.61 is retracted, it is hidden at the lower end surface of the lower shell 1.4.
[0130] In this embodiment, the support plate 1.61 is an integrally formed rectangular rigid flat plate, and the corners of the outer contour have arc-shaped edges, and the thickness is less than 5mm.
[0131] Specifically, the support plate 1.61 is provided with a sliding rail 1.62 extending along the extension direction thereof, and the support plate 1.61 is extended and retracted along the sliding rail 1.62, and the sliding rail 1.62 is provided with a first stop block 1.63, and the support plate 1.61 is provided with a second stop block 1.64 on the side where the first stop block 1.63 is located, and the first stop block 1.63 limits the extension amplitude of the support plate 1.61 by abutting against the second stop block 1.64, and the support plate 1.61 is at least partially located at the lower end surface of the lower shell 1.4 when it is limited.
[0132] In the technical scheme of this embodiment, the placement space 1.41 is formed below the upper shell 1.3 to accommodate a bowl or a basin, thereby saving the occupation of the kitchen countertop space, and at the same time, after the placement space 1.41 is formed, the upper shell 1.3 of the power platform 1 still occupies a large space and has a certain weight due to the need to cover the power mechanism and the like, and this structure makes the power platform 1 head-heavy and foot-light, unstable to place and even prone to fall, therefore, the embodiment is further provided with the support structure 1.6, and the support plate 1.61 extended from the support structure 1.6 supports the power platform 1 to make it more stable to place.
[0133] After the support plate 1.61 is extended, the part limited in the sliding rail 1.62 is clamped in the sliding rail 1.62 to provide support for the support plate 1.61, and the force point of the gravity of the power platform 1 mainly acts on the plane of the support plate 1.61 rather than the end of the support plate 1.61, which can make the power platform 1 more stable.
[0134] Further, the positioning handle 1.5 itself exists above the placement space 1.41, so that the center of the power platform 1 is more biased upward, at this time the existence of the support structure 1.6 is more necessary; while the positioning handle 1.5 extends the clamping position in the sink, the support plate 1.61 in the support structure 1.6 can be retracted and hidden at the lower end face of the lower shell 1.4, so as to prevent the support plate 1.61 from occupying additional space.
[0135] In a further preferred embodiment, the positioning handle 1.5 is clamped with the side wall of the sink through the handle part 1.53, and the outer layer of the handle part 1.53 is provided with an elastic surface layer, which can make the positioning handle 1.5 more closely abut on the inner wall of the sink, and also can reduce the requirement of the processing precision of the positioning handle 1.5, that is, even if the length of the positioning handle 1.5 after extension is slightly shorter than the width of the sink, the existence of the elastic surface layer can provide appropriate complementary spacing, so that the clamping of the power platform 1 is more firm.
[0136] In a further preferred embodiment, the positioning handle 1.5 has a side arm 1.54 on each side, and each side arm 1.54 is provided with a counterweight part 1.541 at the end away from the handle part 1.53, when the positioning handle 1.5 is in the clamping state, the counterweight part 1.541 is arranged inside the space covered by the upper shell 1.3, and the counterweight part 1.541 in this embodiment is made of a metal block with high density, such as a stainless steel block;
[0137] In this embodiment, the arrangement of the counterweight block 1.541 can optimize the problems existing in the power platform 1, which are as follows:
[0138] ①When the positioning handle 1.5 is in the hidden state, at this time the power platform 1 is applied to the table top, the counterweight part 1.541 is located inside the shell away from the placement space 1.41, and this side is just opposite to the protruding direction of the protruding end of the upper shell 1.3, that is, the protruding part above the placement space 1.41, which originally leads to the hidden danger of the power platform 1 being prone to fall due to the protruding end of the upper shell 1.3, and the existence and arrangement position of the counterweight part 1.541 greatly balances the problem of the center of gravity deviation caused by the protruding end, thus greatly improving the risk of the above-mentioned hidden danger;
[0139] ②When the positioning handle 1.5 is in the clamping state, at this time the power platform 1 is applied to the sink, the positioning handle 1.5 extends a long distance, in the structure of long-distance extension, the end part where the handle part 1.53 is located tends to sink, which causes the positioning handle 1.5 to be prone to tilt towards the end where the handle part 1.53 is located, so that the stress on the connecting structure of the positioning buckle 1.51 and the hidden positioning hole 1.521 is large, when there is no limiting structure with high strength at the hidden positioning hole 1.521, the clamping of the positioning handle 1.5 and the sink is prone to be unstable, and even clamping failure.
[0140] At this time, by setting the counterweight part 1.541 and keeping the counterweight part 1.541 in the internal space of the shell, the side arm 1.54 is pivoted at the edge of the shell, the counterweight part 1.541 plays a balancing role on the gravity distribution of the positioning handle 1.5 itself in the clamping state, so that the tendency of the positioning handle 1.5 to tilt to one end where the handle part 1.53 is located is reduced or even eliminated, thereby improving the risk of clamping failure.
[0141] In a preferred embodiment, the inner part of the clamping boss 1.31 is provided with a motor clamping groove, the opening of the motor clamping groove is downward, and the side wall of the motor clamping groove clamps and limits the upper part of the double-output part motor 1.1. At the same time, the inner end of the clamping groove 1.32 is provided with a shaft coupling limiting wall, which abuts and clamps one side of the third output part 1.22 on the variable shaft coupling 1.2. In this embodiment, the clamping boss 1.31 and the clamping groove 1.32 not only facilitate the integrated assembly of various cutting and matching modules, but also limit the transmission structure through their own structure to prevent vibration and jumping, making the assembly of the transmission structure more stable.
[0142] In a further preferred embodiment, the first stop block 1.63 or the second stop block 1.64 is a block-shaped member with elasticity, so as to avoid rigid collision when the supporting plate 1.61 expands and contracts.
[0143] In a further preferred embodiment, when the supporting plate 1.61 is extended to the maximum amplitude, the center of gravity of the cutting and matching machine power platform is projected on the supporting plate 1.61 in the vertical direction, so as to obtain better supporting effect.
[0144] The embodiment also includes a cutting and matching machine, which is provided with the power platform 1 of any of the above embodiments.
[0145] Specifically, when the power platform 1 is assembled with different cutting and matching modules:
[0146] Please refer to the accompanying drawings of the specification Figure 5 The dough mixing and extruding module 2 can be assembled with the power platform 1 to realize the functions of mixing and extruding dough. The dough mixing and extruding module 2 comprises a dough flocculation stirring structure and a dough flocculation extruding structure. The dough flocculation stirring structure comprises a stirring rod. The dough flocculation extruding structure comprises an extruding screw, which has a driving end and an extruding end arranged oppositely.
[0147] In this embodiment, the stirring rod of the dough extruding module 2 is drivingly connected with the second output portion 1.21 exposed from the second through hole 1.331, and the driving end of the dough extruding screw is drivingly connected with the third output portion 1.22 exposed from the third through hole 1.321, so as to realize the assembly and use of the dough extruding and cutting machine. The second output portion 1.21 has a moderate rotating speed, which can provide sufficient power during the dough mixing process without damaging the toughness of the dough.
[0148] Please refer to the accompanying drawings of the specification Figure 6 The vegetable cutting module 3 can be assembled with the power platform 1 to realize the vegetable cutting function. The bottom of the vegetable cutting module 3 is provided with an input port of the second output portion 1.21, and the inside of the vegetable cutting module 3 is provided with a vegetable cutting structure connected with the second output portion 1.21 exposed from the second through hole 1.331. In this embodiment, the vegetable cutting structure is driven by the second output portion 1.21 to rotate the cutter disc to cut and process the added vegetables. The second output portion 1.21 has a moderate rotating speed, which is suitable for slicing or shredding general vegetables, and can ensure the cutting efficiency without making the cutter disc rotate too fast to make the cut vegetables too fine.
[0149] Please refer to the accompanying drawings of the specification Figure 7 The meat cutting module 4 can be assembled with the power platform 1 to realize the vegetable cutting function. When the meat cutting module 4 is assembled with the power platform 1, the meat cutting module 4 is connected with the third output portion 1.22 exposed from the third through hole 1.321 through the gear transmission shaft on the gear box. In this embodiment, the gear box transmits the power input by the third output portion 1.22 to the meat cutting structure to realize the cutting and processing of meat food. The third output portion 1.22 has the slowest rotating speed, and the meat food is usually soft and not easy to form a shape suitable for cutting. The slow rotating speed provides sufficient time for the meat food to deform, so as to facilitate the cutting. Therefore, the third output portion 1.22 is especially suitable for stable cutting of meat food.
[0150] Please refer to the accompanying drawings of the specification Figure 8 The crushing module 5 can be assembled with the power platform 1 to realize the crushing function. The crushing module 5 is clamped on the power platform 1, and the crushing module 5 is provided with a crushing transmission shaft. The lower end of the crushing transmission shaft is drivingly connected with the first output portion 1.11 exposed from the first through hole 1.1311, so as to drive the crushing cutter head on the crushing transmission shaft to rotate and cut the input food. The first output portion 1.11 has the fastest rotating speed, and the output speed is especially suitable for the crushing module 5 for crushing food.
[0151] In the description of the present specification, the description referring to the terms "embodiment", "basic embodiment", "preferred embodiment", "other embodiment", "example", "specific example", or "some examples" and the like means that the specific features, structures, materials or characteristics described in connection 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 terms does not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0152] Although preferred embodiments of the present application have been described, those skilled in the art who have the benefit of the present disclosure can make additional alterations and modifications of these embodiments once the basic inventive concept is appreciated. Therefore, the appended claims are intended to include within their scope all alternatives, modifications and equivalents of the preferred embodiments as falling within the scope of the present application.
[0153] Obviously, those skilled in the art can make various modifications and variations to the present application without departing from the spirit and scope of the present application. Thus, if these modifications and variations of the present application fall within the scope of the claims of the present application and their equivalents, the present application also intends to include these modifications and variations.
Claims
1. A power platform of a cutting module, comprising a transmission structure and an assembly component matched with the transmission structure, characterized in that: the transmission structure comprises: a double-output motor (1.1) comprising a first output (1.11) and a shaft output (1.12); a variable phase shaft coupling (1.2) powered by the shaft output (1.12), the variable phase shaft coupling (1.2) comprising a second output (1.21) and a third output (1.22); the assembly component is arranged on an upper shell (1.3), and the assembly component comprises: a clamping boss (1.31) having a first through hole (1.311) for exposing the first output (1.11); a clamping groove (1.32) having an open end and a third through hole (1.321) at the inner end for exposing the third output (1.22); the clamping boss (1.31) is located above the clamping groove (1.32); an assembly gap (1.33) is arranged between the clamping boss (1.31) and the inner end of the clamping groove (1.32), and the assembly gap (1.33) has a second through hole (1.331) for exposing the second output (1.21).
2. The power platform of claim 1, wherein: The output direction of the first output (1.11) is vertically upward, the output direction of the second output (1.21) is vertically upward, and the output direction of the third output (1.22) is horizontally arranged; the opening direction of the first through hole (1.311) is vertically upward, the opening direction of the third through hole (1.321) is horizontally arranged, and the opening direction of the second through hole (1.331) is vertically upward.
3. The power platform of claim 2, wherein: The first output (1.11) is arranged on one side of the double-output motor (1.1), the third output (1.22) is arranged at an end of the variable phase shaft coupling (1.2) away from the double-output motor (1.1), and the second output (1.21) is arranged above the third output (1.22).
4. The power platform of claim 2, wherein: The second output (1.21) and the third output (1.22) have a common rotating output axis.
5. The power platform of claim 2, wherein: The output power of the first output (1.11) at least acts on a module for crushing food materials, the output power of the second output (1.21) at least acts on a module for cutting vegetables or mixing noodles, and the output power of the third output (1.22) at least acts on a module for cutting meat or extruding noodles.
6. The power platform of claim 2, wherein: The shaft output (1.12) obtains the output directions of the second output (1.21) and the third output (1.22) through a bevel gear connection structure, and adjusts the respective rotating speeds of the second output (1.21) and the third output (1.22).
7. The power platform of claim 1, wherein: Further comprising a support structure for table and tank, the support structure comprising: the upper shell (1.3) internally covering the transmission structure; The lower shell (1.4) is used to carry the upper shell (1.3) and the positioning handle (1.5), and is formed with a placing space (1.41) for placing a container, which is located below the upper shell (1.3); The positioning handle (1.5) is arranged between the upper shell (1.3) and the lower shell (1.4) in a telescopic manner, and is positioned in a hidden state and a clamping state through a positioning structure; The support structure (1.6) comprises a support plate (1.61) arranged at the lower end of the lower shell (1.4) in a telescopic manner, and the support plate (1.61) is exposed below the placing space (1.41) when it is extended and is hidden at the lower end surface of the lower shell (1.4) when it is retracted.
8. The power platform of claim 7, wherein: The positioning structure comprises a positioning buckle (1.51) and a positioning hole group (1.52); The positioning hole group (1.52) comprises a plurality of positioning holes arranged on the side arm (1.54) of the positioning handle (1.5) in a spaced manner along the telescopic direction of the positioning handle (1.5), and the positioning buckle (1.51) is inserted into the corresponding positioning hole to realize positioning.
9. The power platform of claim 8, wherein: The positioning hole group (1.52) is composed of a hidden positioning hole (1.521) and a clamping positioning hole (1.522); The hidden positioning hole (1.521) is arranged at one end close to the positioning handle (1.5) clamped to the sink; The clamping positioning hole (1.522) is arranged at one end away from the positioning handle (1.5) clamped to the sink.
10. The power platform of claim 8, wherein: The positioning buckle (1.51) is inserted into the corresponding positioning hole through an adjusting through hole to realize positioning.
11. The power platform of claim 10, wherein: The adjusting through hole is partially formed on the upper shell (1.3) and partially formed on the lower shell (1.4), and the upper shell (1.3) and the lower shell (1.4) are combined to form the adjusting through hole.
12. The power platform of claim 7, wherein: Both sides of the support plate (1.61) are provided with sliding rails (1.62) extending along the telescopic direction thereof, and the support plate (1.61) is telescopically movable along the sliding rails (1.62).
13. The power platform of claim 12, wherein: The sliding rails (1.62) are provided with a first stop block (1.63), which limits the extension amplitude of the support plate (1.61) and makes the support plate (1.61) at least partially located at the lower end surface of the lower shell (1.4) when it is limited.
14. The power platform of claim 13, wherein: The side of the support plate (1.61) where the first stop block (1.63) is located is provided with a second stop block (1.64), and the first stop block (1.63) limits the extension amplitude of the support plate (1.61) by abutting against the second stop block (1.64).
15. The power platform of claim 7 or 13, wherein: When the support plate (1.61) is extended to the maximum amplitude, the gravity center of the power platform is projected on the support plate (1.61) in the vertical direction.
16. A cutter compiler characterized in that: The power platform provided with any one of claims 1-15 is arranged.