Full-automatic noodle maker
By introducing a dough diverter plate and an adjustable extrusion mechanism into the fully automatic noodle machine and using a servo motor to drive the movement of the extrusion mechanisms on both sides, the problems of slow processing speed and low power source utilization of existing noodle machines are solved, and the automation of noodle processing and highly adjustable noodle production are achieved.
Patent Information
- Application Number
- CN202422108356.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-08-29
AI Technical Summary
In the process of making noodles, the existing fully automatic noodle machine has a single noodle production outlet, a slow processing speed, a low utilization rate of the power source driving the extrusion structure, and insufficient automation in operation.
The dough is cut by a dough diverter plate and a dividing assembly, and processed in the extrusion areas on both sides through an adjustable extrusion mechanism. A single set of power components is used to drive the extrusion mechanisms on both sides to move. Combined with a servo motor and a screw system, the dough is automatically cut and extruded.
The noodle processing speed and efficiency are improved, the thickness of noodles can be adjusted according to needs, the processing cost is reduced and the degree of automation of the operation is improved.
Smart Images

Figure CN223472955U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of noodle machine technology, specifically a fully automatic noodle machine. Background Technology
[0002] A noodle machine is a specialized device for making noodles, widely used in the catering industry, noodle processing plants, and home kitchens. Through various functions and settings, it can help users make various types of noodles, such as pasta, ramen, and dumpling wrappers.
[0003] The existing patent authorization number is CN203884548U, which discloses a fully automatic noodle machine, including a base with a motor, a mixing assembly, and an extrusion assembly. The mixing assembly includes a mixing cup and a mixer connected to the base. The extrusion assembly includes a screw, a die head, and an extrusion cylinder connected to the mixing cup. A dough inlet is provided at the connection between the mixing cup and the extrusion cylinder. By setting a baffle at the dough inlet and driving the baffle to move through an automatic opening and closing device to open or close the dough inlet, it is possible to prevent flour from entering the extrusion cylinder during mixing, thereby avoiding blockage of the extrusion channel. The automatic opening and closing device automatically removes the baffle, which is user-friendly and convenient to operate. Analysis of this noodle machine shows that during the noodle making process, there is only a single noodle generation port, resulting in a slow processing speed. Moreover, when using the extrusion structure for noodle processing, the utilization rate of the power source driving the extrusion structure is not high.
[0004] Therefore, in view of the above-mentioned problems, this technical solution proposes a fully automatic noodle machine. Utility Model Content
[0005] The purpose of this invention is to provide a fully automatic noodle machine to solve the problems mentioned in the background section.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a fully automatic noodle machine, comprising a dough mixing drum and an extrusion box; the top of the extrusion box has a dough connection port, the top of which communicates with the bottom of the dough mixing drum; the dough completed inside the dough mixing drum is input into the extrusion box through the dough connection port; a set of dividing components is provided inside the dough connection port for automatically dividing the input dough; a dough diversion plate with an isosceles triangular structure is installed at the bottom of the dividing components; the dough diversion plate is used to transfer the divided dough to both sides; two extrusion zones are symmetrically opened on the lower part of both sides of the dough diversion plate; the extrusion zones contain... Equipped with an adjustable extrusion mechanism, the dough transferred by the dough diverter plate enters the extrusion zone. Under the action of the adjustable extrusion mechanism, it is processed into noodles of different diameters as required. The bottom of the two adjustable extrusion mechanisms is connected to a set of power components. The operation of the power components controls the relative movement of the two extrusion mechanisms and processes the input dough at the same time. The side of the extrusion zone away from the center of the extrusion box is connected to the noodle output port, through which the processed noodles are output. This realizes the processing mode of simultaneously processing the dough by driving the two adjustable extrusion mechanisms with a single set of power mechanisms, and outputting noodles of the required thickness.
[0007] Compared with the prior art, the beneficial effects of this utility model are: by using a dough dividing plate and a dividing component to cut the dough and then transferring it to the extrusion zones on both sides for processing, the processing speed can be improved. At the same time, by using the adjustable extrusion mechanism inside the extrusion zones on both sides, noodles of the required thickness can be selectively processed. The operation is automated and highly adjustable.
[0008] By setting a single servo motor to drive the moving extrusion plates on both sides in conjunction with the fixed extrusion table, processing efficiency can be improved and processing costs reduced to a certain extent. Attached Figure Description
[0009] Figure 1 This is a front view schematic diagram of the internal structure of the extrusion box in a fully automatic noodle machine.
[0010] Figure 2 This is a partial top view of the internal structure of the extrusion box in a fully automatic noodle machine.
[0011] Figure 3 This is a schematic diagram of the final adjustment plate in a fully automatic noodle machine.
[0012] Figure 4 for Figure 1 A magnified structural diagram of A in the diagram.
[0013] Figure 5 This is a schematic diagram of the segmentation component in a fully automatic noodle machine.
[0014] The components include: extrusion box 10, dough connection port 11, dough diverter plate 12, extrusion zone 13, bidirectional power mechanism chamber 14, servo motor 15, lead screw 16, lead screw 2 17, nut 18, slide rail 20, connecting column 21, baffle strip 22, moving extrusion plate 23, telescopic base plate 24, fixed extrusion table 25, initial deformation tube 26, noodle output port 27, final adjustment plate 28, top cover 29, pull ring 30, locking pin 31, locking groove 32, final deformation hole 33, dividing wheel 34, wheel axle 35, support column 36, transmission belt 37, and servo motor 38. Detailed Implementation
[0015] It should be noted that, in the absence of conflict, the embodiments of the present invention and the features therein can be combined with each other.
[0016] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limiting the present invention. In addition, the terms "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, features defined as "first", "second", etc. may explicitly or implicitly include one or more of the features. In the description of the present invention, unless otherwise specified, "multiple" means two or more.
[0017] In the description of this utility model, it should be noted that, unless otherwise expressly specified or limited, the terms "installed," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections, electrical connections; direct connections, indirect connections through an intermediate medium, and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on specific circumstances.
[0018] The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0019] Please see Figures 1-4An automatic noodle machine includes a dough mixing drum and an extrusion box 10. The top of the extrusion box 10 has a dough connection port 11, which connects to the bottom of the dough mixing drum. Dough completed inside the dough mixing drum is fed into the extrusion box 10 through the dough connection port 11. Inside the dough connection port 11 is a set of dividing components for automatically dividing the input dough. At the bottom of the dividing components is a dough diversion plate 12 with an isosceles triangular structure, used to transfer the divided dough to both sides. Two extrusion zones 13 are symmetrically arranged on the lower parts of both sides of the dough diversion plate 12. The extrusion zones 13 are equipped with adjustment mechanisms. The dough, transferred by the dough diverter plate 12, enters the extrusion zone 13 through the segmented extrusion mechanism. Under the action of the adjustable extrusion mechanism, it is processed into noodles of different diameters as required. The bottom of the two adjustable extrusion mechanisms is connected to a set of power components. The operation of the power components controls the relative movement of the two extrusion mechanisms and processes the input dough at the same time. The side of the extrusion zone 13 away from the center of the extrusion box 10 is connected to the noodle output port 27. The processed noodles are output outward through the noodle output port 27. Thus, the processing mode of simultaneously processing the dough by driving the two adjustable extrusion mechanisms with a single set of power mechanisms and outputting noodles of the required thickness can be realized.
[0020] In this embodiment of the invention, the dough diversion plate 12 is fixed to the inner bottom wall of the extrusion box 10 by a support column at the bottom center. The inclined surfaces on both sides of the dough diversion plate 12 are set as smooth structures to accelerate the rapid sliding of the dough. The outside of the noodle output port 27 is directly connected to the outside, so when collecting noodles, an external collection device can be directly selected for receiving.
[0021] It should be noted that the dough mixing drum is the same as that of commonly used noodle machines. The specific structure and usage can also be the same as those in the background technology, depending on the actual selection. However, its bottom must be connected to the dough connection port 11.
[0022] In one embodiment of the present invention, the adjustable extrusion mechanism includes a fixed extrusion platform 25 connected to the inner side of the noodle output port 27. A final adjustment plate 28 is vertically inserted and installed on the fixed extrusion platform 25 facing the outer side of the noodle output port 27. Multiple initial deformation tubes 26 are evenly and laterally opened inside the fixed extrusion platform 25 on the side of the final adjustment plate 28 away from the noodle output port 27. Multiple final deformation holes 33 are evenly opened on the final adjustment plate 28. A movable extrusion plate 23 is movably disposed inside the extrusion zone 13 on the side opposite to the fixed extrusion platform 25. The dough entering the extrusion zone 13 is squeezed by the movable extrusion plate 23 and the fixed extrusion platform 25. The dough comes into contact with the inner side of the plate 25. As the extrusion pressure increases, the dough gradually moves along the inside of the initial deformation tube 26 until it is transferred to the final adjustment plate 28. At this time, due to the difference between the final deformation hole 33 and the final adjustment plate 28, the tubular dough that moves along the inside of the initial deformation tube 26 is extruded and deformed again along the inside of the final deformation hole 33. Then it is output along the noodle output port 27 with the diameter of the final deformation hole 33. By first passing the dough through the initial deformation tube 26 for initial shaping and then passing it through the final deformation hole 33 for final shaping and output, the shaping speed and accuracy can be accelerated to a certain extent, while reducing the extrusion pressure of the dough on the final adjustment plate 28.
[0023] Specifically, the fixed extrusion table 25 corresponding to the upper side of the final adjustment plate 28 has an insertion channel. The final adjustment plate 28 moves vertically along the insertion channel. While limiting the final adjustment plate 28 laterally, it can also keep the final adjustment plate 28 able to move vertically and move from inside the extrusion box 10 for replacement.
[0024] A top cover 29 is fixedly installed on the top of the final adjustment plate 28. A pull ring 30 is installed in the middle of the top of the top cover 29. Pins 31 are symmetrically installed at the bottom of both ends of the top cover 29. A slot 32 is opened on the top of the fixed pressing table 25 corresponding to the pin 31. The pin 31 is engaged with the slot 32 to fix the final adjustment plate 28.
[0025] A baffle strip 22 is installed on the top of the movable extrusion plate 23. The height of the baffle strip 22 is greater than the top of the fixed extrusion table 25. The baffle strip 22 is used to prevent the dough from being squeezed upward when the movable extrusion plate 23 and the fixed extrusion table 25 are extruding.
[0026] In a preferred embodiment of the present invention, the power assembly includes a bidirectional power mechanism chamber 14 located at the bottom of the extrusion box 10. A servo motor 15 is fixedly installed at one end inside the bidirectional power mechanism chamber 14. The output end of the servo motor 15 is connected to a horizontally distributed lead screw 16. A second lead screw 17 is installed at the end of the first lead screw 16 via a connecting block. The end of the second lead screw 17 is rotatably connected to the inner wall of the bidirectional power mechanism chamber 14 via a bearing. The first lead screw 16 and the second lead screw 17 have the same length but opposite tooth groove directions. The connecting block is located at the vertical center of the extrusion box 10. A nut 18 is threaded onto both the first lead screw 16 and the second lead screw 17. The nut 18 is equipped with a guide device to limit its rotation. The servo motor 15 is started to drive the lead screw 16 and lead screw 17 to rotate, which synchronously drives the two sets of nuts 18 to move relative to each other. A connecting column 21 is fixedly installed on the top of the nut 18. A transverse slide 20 is opened on the inner wall of the extrusion box 10 corresponding to the top of the connecting column 21. The connecting column 21 moves along the inside of the slide 20 and its top is fixedly connected to the bottom of the moving extrusion plate 23 in the corresponding extrusion area 13. This realizes the function of simultaneously driving the two sets of moving extrusion plates 23 to move relative to each other by a single servo motor 15, and then cooperating with the fixed extrusion table 25 on the corresponding side to extrude the dough.
[0027] Specifically, to prevent the dough inside the extrusion zone 13 from transferring along the slide 20 to the bidirectional power mechanism chamber 14 during the extrusion process, a telescopic base plate 24 is connected between the lower part of the opposite side wall of the moving extrusion plate 23 and the fixed extrusion table 25. The telescopic base plate 24 moves and extends synchronously with the moving extrusion plate 23. The moving extrusion plate 23 supports the dough inside the extrusion zone 13 and prevents it from falling through the slide 20.
[0028] As a preferred embodiment of the present invention, see [reference]. Figure 5 The dividing component includes a dividing wheel 34 rotatably disposed at the top center of the dough dividing plate 12. A wheel axle 35 is installed in the center of the dividing wheel 34. The two wheel axles 35 are rotatably positioned inside the dough dividing plate 12 by support columns 36. One set of wheel axles 35 is rotatably connected to a transmission belt 37. A servo motor 38 is rotatably connected to the bottom end of the transmission belt 37. When the servo motor 38 is started, it rotates under the connection of the transmission belt 37, driving the dividing wheel 34 to rotate, thereby dividing the dough falling along the dough connection port 11. Then, under the action of gravity, the dough is transferred along the inclined surfaces on both sides of the dough dividing plate 12 to the extrusion zone 13 for processing.
[0029] The working principle of this utility model is as follows: In the idle position of this device, all the above-mentioned driving components, which refer to power elements, electrical components and adapted power supplies, are connected by wires. The electrical components are connected in sequence. The detailed connection method is known in the field. The following mainly introduces the working principle and process, and does not describe the electrical control. During processing, the flour is placed in the mixing drum and stirred to form dough. Then it is transferred to the dough connection port 11. After being divided by the dividing wheel 34, it is transferred along the dough diversion plate 12 to the two extrusion areas 13. Then the servo motor 15 is started to drive the lead screw 16 and lead screw 27 to rotate. Then it drives the two moving extrusion plates 23 to move toward the corresponding fixed extrusion table 25 to extrude the dough. Then the final deformation hole 33 with the required diameter is selected. The final adjustment plate 28 is inserted into the output position outside the fixed extrusion table 25. Then the dough is first initially shaped through the initial deformation tube 26, and then shaped through the final deformation hole 33 and output along the noodle output port 27.
[0030] The preferred embodiments of this patent have been described in detail above. However, this patent is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of this patent.
Claims
1. A fully automatic noodle machine, characterized in that, Includes a dough mixing drum and a dough extruder (10); the dough extruder (10) has a dough connection port (11) on the top, the top of the dough connection port (11) is connected to the bottom of the dough mixing drum, a set of dividing components is provided inside the dough connection port (11), a dough diversion plate (12) with an isosceles triangle structure is installed at the bottom of the dividing components, two extrusion areas (13) are symmetrically opened on the lower part of both sides of the dough diversion plate (12), an adjustable extrusion mechanism is provided inside the extrusion area (13), a set of power components is connected to the bottom of the adjustable extrusion mechanisms on both sides, and a noodle output port (27) is connected to the side of the extrusion area (13) away from the center of the dough extruder (10).
2. The fully automatic noodle machine according to claim 1, characterized in that, The dough distribution plate (12) is fixed to the bottom wall of the extrusion box (10) by a support column at the bottom center. The inclined surfaces on both sides of the dough distribution plate (12) are set as smooth structures.
3. The fully automatic noodle machine according to claim 2, characterized in that, The adjustable extrusion mechanism includes a fixed extrusion platform (25) connected to the inside of the noodle output port (27). A final adjustment plate (28) is vertically inserted on the outside of the fixed extrusion platform (25) facing the noodle output port (27). Multiple initial deformation tubes (26) are evenly and horizontally opened inside the fixed extrusion platform (25) on the side of the final adjustment plate (28) away from the noodle output port (27). Multiple final deformation holes (33) are evenly opened on the final adjustment plate (28). A movable extrusion plate (23) is movably arranged inside the extrusion area (13) on the side relative to the fixed extrusion platform (25).
4. A fully automatic noodle machine according to claim 3, characterized in that, The fixed extrusion table (25) corresponding to the upper side of the final adjustment plate (28) is provided with an insertion channel, and the final adjustment plate (28) moves vertically along the insertion channel.
5. A fully automatic noodle machine according to claim 4, characterized in that, The top of the final adjustment plate (28) is fixedly installed with a top cover (29), a pull ring (30) is installed in the middle of the top of the top cover (29), and pins (31) are symmetrically installed at the bottom of both ends of the top cover (29). The top of the fixed extrusion table (25) corresponding to the pins (31) is provided with a slot (32), and the pins (31) are engaged with the slots (32).
6. A fully automatic noodle machine according to claim 5, characterized in that, The power assembly includes a bidirectional power mechanism chamber (14) located at the bottom of the extrusion box (10). A servo motor (15) is fixedly installed at one end inside the bidirectional power mechanism chamber (14). The output end of the servo motor (15) is connected to a horizontally distributed lead screw (16). A lead screw (2) (17) is installed at the end of the lead screw (16) via a connecting block. The end of the lead screw (2) (17) is rotatably connected to the inner wall of the bidirectional power mechanism chamber (14) via a bearing. The lead screw (16) and the lead screw (2) (17) have the same length and opposite tooth groove directions. The connecting block is placed in the vertical middle position of the extrusion box (10). A nut (18) is threaded onto both the first lead screw (16) and the second lead screw (17). The nut (18) is equipped with a guide device to limit its rotation. A connecting column (21) is fixedly installed on the top of the nut (18). A transverse slide (20) is opened on the inner wall of the extrusion box (10) corresponding to the top of the connecting column (21). The connecting column (21) moves along the inside of the slide (20) and its top is fixedly connected to the bottom of the moving extrusion plate (23) in the corresponding extrusion area (13).
7. A fully automatic noodle machine according to claim 6, characterized in that, The dividing assembly includes a dividing wheel (34) rotatably disposed at the top center of the dough dividing plate (12), a wheel axle (35) is installed in the center of the dividing wheel (34), and the two wheel axles (35) are rotatably positioned in the dough dividing plate (12) by the support column (36). One set of wheel axles (35) is rotatably connected to a transmission belt (37) and the bottom end of the transmission belt (37) is rotatably connected to a servo motor (38).
Citation Information
Patent Citations
Full-automatic noodle machine
CN203884548U