Noodle fish machine

By designing the extrusion, cutting and forming mechanism of the dough fish machine, the automatic processing of dough fish is achieved, solving the problem of inefficient traditional hand-made production, improving the smoothness and consistency of dough fish, and improving the taste.

CN115530195BActive Publication Date: 2025-08-26INNER MONGOLIA XIBEI CATERING GRP CO LTD +1
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Patent Information

Application Number
CN202211259294.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-14
Publication Date
2025-08-26
Estimated Expiration
2042-10-14

AI Technical Summary

Technical Problem

The traditional hand-made fish is inefficient. The surface of the fish is not smooth and has inconsistent size, which affects the taste and appearance.

Method used

A dough fish machine is designed, including an extrusion mechanism, a cutting mechanism and a forming mechanism to realize the automatic processing of the dough, and knead it through the dragon-string extrusion, cutting and forming mold to form a smooth and consistent shape of the dough.

Benefits of technology

Improve the processing efficiency of the dough fish, ensure that the surface of the dough fish is smooth and consistent in shape, and enhance the taste.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of food processing technology, and in particular to a noodle-fishing machine comprising a frame, an extrusion mechanism, a cutting mechanism, and a forming mechanism. The extrusion mechanism is disposed on the frame and comprises a hopper and an extrusion member. The hopper comprises an inlet and a discharge hole, and the extrusion member is capable of extruding dough from the discharge hole to form a strip of noodle embryo. The cutting mechanism is disposed on the frame and comprises a cutter capable of cutting the noodle embryo strip into noodle embryo segments. The forming mechanism is disposed below the cutting mechanism and comprises a conveyor belt and a forming mold. The side of the forming mold facing the conveyor belt has an open mold cavity that extends through the forming mold along the conveyor belt's conveying direction. The mold cavity cooperates with the conveyor belt to knead and shape the noodle embryo strip. The above-mentioned noodle-fishing machine realizes the automation of noodle-fishing processing, and the noodle-fishing surface is smooth and has a good taste.
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Description

Technical Field

[0001] The present invention relates to the technical field of food processing, in particular to a noodle-fish machine. Background Art

[0002] Fish noodle soup is a common noodle dish in northern China. In the northwest, especially in Shanxi and Gansu, it is a common traditional noodle dish in summer. It is named because of its shape that resembles a small fish or tadpole.

[0003] At present, noodle fish mainly relies on manual kneading. The traditional production process is to roll the dough into thick pancakes, cut it into chopstick-sized strips, and then knead them one by one on the chopping board. This is inefficient for noodle shops and it is difficult to meet supply demand. In addition, the surface of the hand-cut and kneaded noodle fish is not smooth, the size is inconsistent, and it is easy to produce edges and corners, which affects the taste and appearance. Summary of the Invention

[0004] The object of the present invention is to provide a noodle fish machine, which can realize the automation of noodle fish processing and can ensure that the processed noodle fish has a smooth surface and a consistent shape.

[0005] To achieve this object, the present invention adopts the following technical solutions:

[0006] The noodle making machine comprises a frame, an extrusion mechanism, a cutting mechanism and a forming mechanism. The extrusion mechanism is arranged on the frame and comprises a hopper and an extrusion piece. The hopper comprises an inlet and a discharge hole. The extrusion piece can extrude the dough from the discharge hole into the hopper to form a strip noodle embryo; the cutting mechanism is arranged on the frame and comprises a cutter, which can cut the strip noodle embryo into noodle embryo segments; the forming mechanism is arranged below the cutting mechanism and comprises a conveyor belt and a forming mold. The side of the forming mold facing the conveyor belt has an open mold cavity that passes through the forming mold along the conveying direction of the conveyor belt. The mold cavity cooperates with the conveyor belt to knead and shape the strip noodle embryo.

[0007] Optionally, the extrusion member is an auger, the auger is rotatably arranged inside the hopper, the auger is transmission-connected to the first power member, and the discharge hole is arranged at one end of the hopper along the propulsion direction of the auger.

[0008] Optionally, the extrusion mechanism also includes a pressing assembly, which is arranged at the inlet, and the inlet is opened at the upper end of the hopper. The pressing assembly includes a pressing bracket, a pressing roller, a pressing plate and a third power member. The pressing bracket is fixed to the inner wall of the hopper near one end of the discharge hole, and the pressing roller transmission-connected to the third power member is rotatably arranged above the pressing bracket. A pressing channel is formed between the side of the pressing roller facing the pressing bracket and the pressing bracket, and the pressing plate is telescopically arranged on the pressing roller.

[0009] Optionally, there are multiple discharge holes.

[0010] Optionally, a first guide mechanism is further included, which is arranged between the extrusion mechanism and the cutting mechanism. The first guide mechanism includes a diverter plate and a material guide plate. The diverter plate is arranged at the discharge hole, and the diverter plate is provided with diverter channels corresponding to the discharge holes one by one; the material guide plate is arranged above the cutting mechanism, and the material guide plate is provided with a material guide groove corresponding to the tail end of the diverter channel at one end close to the diverter plate.

[0011] Optionally, a second guiding mechanism is further included, which is arranged between the cutting mechanism and the molding mechanism, and includes a material distribution chamber and a collecting port. The material distribution chamber is open at the top and bottom and is arranged below the cutting mechanism. It is composed of a plurality of single material chambers separated from each other. The single material chamber corresponds one-to-one to the material guide trough. The collecting port is arranged above the conveyor belt, connecting the material distribution chamber and the molding mold, and the collecting port corresponds one-to-one to the single material chamber.

[0012] Optionally, the cutting mechanism includes a slitting roller and a backflow roller, the slitting roller and the backflow roller rotate towards each other, the backflow roller is a cylindrical roller, the slitting roller includes a cutter fixing frame and the cutter, and the cutter can abut against the backflow roller when the cutter fixing frame rotates.

[0013] Optionally, the forming mold is arranged above the conveyor belt in an adjustable height.

[0014] Optionally, the mold cavity includes an inlet section, a molding section and an outlet section connected in sequence, the depths of the inlet section and the outlet section are deeper than the depth of the molding section, the width of the inlet section gradually widens from one end of the mold cavity inlet to the end connected to the molding section, the width of the outlet section gradually widens from one end connected to the molding section to one end of the mold cavity outlet, the depth of the molding section gradually becomes shallower from one end connected to the inlet section to one end connected to the outlet section, and the width of the molding section gradually decreases from the middle to both ends.

[0015] Optionally, a baffle is further included, which is arranged at the tail end of the conveyor belt, and a gap is left between the baffle and the conveyor belt to form a drop opening.

[0016] The beneficial effects of the present invention are as follows: the noodle fish machine proposed in the present invention includes an extrusion mechanism, a cutting mechanism and a forming mechanism which are arranged in sequence; the extrusion mechanism can extrude dough into strip noodle embryos; the cutting mechanism can cut the strip noodle embryos into noodle embryo segments; and the forming mechanism can knead the noodle embryo segments into noodle fish, thereby realizing the automation of noodle fish processing; and the forming mechanism can improve the toughness of the noodle embryo during the kneading process, thereby improving the taste of the finally formed noodle fish. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 1 is a schematic diagram of the three-dimensional structure of the noodle-fish machine proposed in an embodiment of the present invention;

[0018] Figure 2 1 is a front view of a noodle-fishing machine according to an embodiment of the present invention;

[0019] Figure 3 1 is a side view of the noodle-fish machine provided in an embodiment of the present invention;

[0020] Figure 4 1 is a top view of the noodle-fish machine proposed in an embodiment of the present invention;

[0021] Figure 5 Schematic diagram of the structure of the material pressing assembly proposed in an embodiment of the present invention;

[0022] Figure 6 is a cross-sectional view of a material pressing assembly proposed in an embodiment of the present invention;

[0023] Figure 7 Schematic diagram of the structure of the cutting mechanism proposed in an embodiment of the present invention (after partially hiding the tool holder);

[0024] Figure 8 Schematic diagram of the structure of the material distribution chamber proposed in an embodiment of the present invention;

[0025] Figure 9 is a schematic structural diagram of a molding assembly proposed in an embodiment of the present invention;

[0026] Figure 10 Schematic diagram of the structure of the forming mold proposed in an embodiment of the present invention;

[0027] Figure 11 It is a cross-sectional view of a forming mold proposed in an embodiment of the present invention.

[0028] In the figure: 1. Frame; 2. Extrusion mechanism; 21. Hopper; 211. Hopper body; 212. Discharge port; 213. Discharge die; 22. Extrusion element; 23. Pressing assembly; 231. Pressing support; 232. Pressing roller; 233. Pressing plate; 233a. Limiting ring; 233b. Plate body; 3. First guide mechanism; 31. Diverter plate; 311. Diverter channel; 32. Guide plate; 321. Guide trough; 4. Cutting mechanism; 41. Slitting roller; 411. Cutter; 412. Cutter fixing bracket; 42. Backflow roller; 43. Knife holder; 5. Second guiding mechanism; 51. Material distribution chamber; 52. Collection port; 6. Forming mechanism; 61. Conveyor belt; 62. Forming mold; 621. Mold cavity; 621a. Inlet section; 621b. Forming section; 621c. Outlet section; 63. Mold fixing bracket; 7. Baffle; 8. Support plate. DETAILED DESCRIPTION

[0029] The present invention will be further described in detail below with reference to the accompanying drawings and examples. It will be understood that the specific embodiments described herein are intended only to illustrate the present invention and are not intended to limit the present invention. It should also be noted that, for ease of description, the accompanying drawings only illustrate portions relevant to the present invention, not all structures.

[0030] In the description of the present invention, unless otherwise expressly specified or limited, the terms "connected," "connected," and "fixed" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integration; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention in specific circumstances.

[0031] In the present invention, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may include the first and second features being in direct contact, or may include the first and second features being in contact not directly but through another feature between them. Furthermore, a first feature being "above," "above," and "above" a second feature may include the first feature being directly above or obliquely above the second feature, or may simply mean that the first feature is higher in level than the second feature. A first feature being "below," "below," and "below" a second feature may include the first feature being directly below or obliquely below the second feature, or may simply mean that the first feature is lower in level than the second feature.

[0032] In the description of this embodiment, the terms "upper," "lower," "left," and "right," etc., referring to positions or locations, are based on the positions or locations shown in the accompanying drawings and are intended solely for ease of description and simplified operation. They are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on the present invention. Furthermore, the terms "first" and "second" are used solely for descriptive purposes and have no special meaning.

[0033] This embodiment provides a noodle fish machine that can be used to process noodle fish, such as the popular oat noodle fish. The entire processing process includes multiple processes such as extrusion, cutting, and forming. Specifically, the extruder mechanism can extrude the dough inside and extrude it into uniformly thick and thin strips of noodle embryos. The cutting mechanism can cut the strips of noodle embryos into uniform lengths of noodle embryos. The forming mechanism can knead the noodle embryo segments into noodle fish. The entire process replaces manual kneading of noodle fish, and the processing efficiency is high.

[0034] refer to Figures 1-11 As shown, the noodle fish machine proposed in this embodiment includes a frame 1, an extrusion mechanism 2, a cutting mechanism 4 and a forming mechanism 6. The extrusion mechanism 2, the cutting mechanism 4 and the forming mechanism 6 are arranged in a "Z" shape on the frame 1 in sequence, wherein the extrusion mechanism 2 includes a hopper 21 and an extrusion piece 22. The hopper 21 is provided with an inlet and a discharge hole. The extrusion piece 22 is located in the hopper 21, and can extrude the dough from the discharge hole to form a strip noodle embryo; the cutting mechanism 4 is located at one end of the hopper 21 where the discharge hole is provided, and includes a cutter 411, which can cut the strip noodle embryo into noodle embryo segments; the forming mechanism is arranged below the cutting mechanism 4, and includes a conveyor belt and a forming mold. The forming mold has an open mold cavity on the side facing the conveyor belt. During the process of conveying the noodle embryo segment, the conveyor belt can drive the noodle embryo segment into the mold cavity and cooperate with the forming mold to knead the noodle embryo segment to finally form noodle fish.

[0035] The noodle fish machine proposed in this embodiment realizes the automation of noodle fish extrusion, cutting and kneading processing, thereby improving production efficiency; and through the arrangement of a conveyor belt and a forming mold with a mold cavity, the dough can be kneaded, and the processed noodle fish has a smooth and tough surface and a better taste.

[0036] refer to Figure 3 and Figure 4 As shown, the extruder 22 can be an auger, which is rotatably arranged inside the hopper 21. The first power member is transmission-connected to the auger to realize the rotation of the auger. The discharge hole is arranged at the terminal end of the hopper 21 along the axial propulsion direction of the auger. The pressure and shear force generated by the rotation of the auger can fully squeeze the dough and extrude the dough toward the discharge hole. Compared with the piston-type linear extrusion, the spiral extrusion can knead the noodle fish during the extrusion process, so that the final formed noodle fish tastes better.

[0037] Specifically, two augers are provided, rotating in opposite directions, resulting in faster discharge and better kneading. To conserve energy and reduce costs, the ends of the two augers facing away from the discharge port are each fitted with intermeshing gears. One of the augers is connected to a first power element, which drives the two augers to rotate synchronously in opposite directions. A gearbox is also fitted over the gears to protect them from external interference and extend their service life. The first power element can be a variable frequency motor. By adjusting the frequency of the variable frequency motor, the speed of the dough extrusion hopper 21 can be adjusted.

[0038] The hopper 21 comprises a hopper body 211 and a discharge port 212. The discharge port 212 is open at opposite ends. The inlet end is connected to the starting point of the hopper body 211 along the axial propulsion direction of the auger. The outlet end of the discharge port 212 is detachably connected, specifically, by being screwed to a discharge die 213. A discharge hole is provided in the discharge die 213. In actual processing, the hopper 211 is often equipped with multiple discharge dies 213. The discharge holes provided on different discharge dies 213 have different diameters. By replacing the discharge dies 213, noodle fish of different specifications can be produced. Specifically, the inlet end of the discharge port 212 is larger than the outlet end to facilitate the entry of dough into the discharge hopper 21. One end of the auger extends through the hopper body 211 and is connected to the first power member. The other end is fixed to the discharge port 212 and connected to the end of the hopper body 211 via an auger positioning plate. The auger positioning plate is configured as a hollow structure, which secures the auger while not interfering with the extrusion of dough into the discharge port 212. Furthermore, the discharge holes 213 are provided with a plurality of holes, which are arranged horizontally on the discharge die to improve the efficiency of extruding the strip noodle embryo. In some embodiments, the discharge holes can also be provided in multiple rows to further improve the extrusion efficiency.

[0039] Optionally, the hopper 21 is an open trough with an upper opening, and the upper opening serves as an inlet to facilitate the placement of dough. A pressing assembly 23 is provided above the auger, and the pressing assembly 23 includes a pressing bracket 231, a pressing roller 232, a pressing plate 233, and a third power member. The pressing bracket 231 is fixed to the inner wall of the hopper 21 near the end of the discharge port 212, and can be screwed. The cylindrical pressing roller 232, which is transmission-connected to the third power member, is rotatably provided above the pressing bracket 231 and is approximately in contact with the pressing bracket 231. That is, a pressing channel is formed between the side of the pressing roller 232 facing the pressing bracket 231 and the pressing bracket, and the dough can enter the pressing channel and be squeezed. Specifically, the pressing bracket 231 is configured as an L-shape, and the side of the pressing bracket 231 facing the pressing roller 232 is configured as an arc surface consistent with the arc of the pressing roller 232. The pressing plate 233 is retractably disposed on the pressing roller 232 along its radial direction. A slot for accommodating the pressing plate 233 is provided along the outer periphery of the pressing roller 232 and along its length. The pressing plate 233 has a first state in which it extends out of the pressing roller 232 and a second state in which it retracts. When the end of the pressing plate 233 away from the pressing roller 232 abuts the pressing bracket 231, the pressing plate 233 retracts into the pressing roller 232 and transitions from the first state to the second state. The pressing roller 232 and the pressing bracket 231 cooperate to extrude the dough, thereby increasing its toughness and thus enhancing the texture of the final noodle. At the same time, any dough that has not successfully entered the discharge port 212 is brought back to the auger and re-delivered to the discharge port 212.

[0040] The third power component can also be a variable frequency motor.

[0041] Specifically, the pressing plate 233 includes a plate body 233b and a limiting ring 233a, wherein the limiting ring 233a is in the shape of an elongated circular ring, and there are two plate bodies 233b, which are respectively arranged on both sides of the length of the limiting ring 233a. Correspondingly, there are also two accommodating grooves that are interconnected. One of the two plate bodies 233b can gradually retract into the pressing roller 232 after abutting against the pressing bracket 231, while the other extends out of the pressing roller 232.

[0042] Specifically, the nip roller 232 may be formed by combining separate structures to facilitate placing the limiting ring 233 a inside the nip roller 232 .

[0043] It can be understood that the retractable arrangement of the pressing plate 233 on the pressing roller 232 is not limited to the above-mentioned method, and can also be achieved by other methods. For example, a spring can be set at the pressing plate 233 and the receiving groove that accommodates the pressing plate 233, and the spring provides power for the pressing plate 233 to pop out of the receiving groove.

[0044] In order to reduce the friction between the pressing plate 233 and the pressing material, one end of the pressing plate 233 extending from the pressing roller 232 is rounded.

[0045] refer to Figure 7 As shown, the cutting mechanism 4 includes a knife holder 43, a slitting roller 41 and a backflow roller 42. The knife holder 43 is fixed on the frame 1 and is a rectangular structure with upper and lower ends open. The slitting roller 41 and the backflow roller 42 are arranged on the knife holder 43 and rotate in parallel. The slitting roller 41 and the backflow roller 42 rotate in opposite directions, wherein the backflow roller 42 is a cylindrical cylinder. The slitting roller 41 includes a cutter fixing frame 412 and a cutter 411. The cutter fixing frame 412 is rotatably connected to the knife holder 43, and the cutter 411 is fixed to the cutter fixing frame 412 along the length direction of the cutter fixing frame 412. During the rotation process, the cutter 411 can abut against the backflow roller 42 to cut the strip noodle blank into noodle blank segments. Specifically, the number of cutters 411 can be set to multiple, and they are arranged at radial intervals along the rotating axis of the cutter fixing bracket 412. In this embodiment, the number of cutters 411 is set to two, and the two cutters 411 are arranged on the same horizontal plane. The slitting drum 41 rotates once and can abut against the backflow drum 42 twice, that is, the strip noodle embryo is cut twice.

[0046] The rotation of the slitting drum 41 and the backflow drum 42 can be achieved by separate power devices. In this embodiment, to achieve synchronization, the rotation of the slitting drum 41 and the backflow drum 42 is achieved by the same power device, that is, the slitting drum 41 and the backflow drum 42 are both rotated by a second power member. Specifically, the same end of the slitting drum 41 and the backflow drum 42 is respectively provided with mutually meshing gears, and the second power member is connected to one end of the slitting drum 41 and the backflow drum 42. The second power member can also be a variable frequency motor. By adjusting the frequency of the first power member and the second power member, the length of the noodle blank segment can be adjusted.

[0047] Of course, the cutting mechanism 4 can also use a cutter 411 that can generally move back and forth in a straight line for cutting, which does not affect the realization of the cutting function.

[0048] refer to Figure 9 As shown, the conveyor belt 61 in the forming mechanism 6 is disposed below the cutting mechanism 4, and the forming die 62 is height-adjustably mounted on the conveyor belt 61. By adjusting the distance between the forming die 62 and the conveyor belt 61, the thickness of the final formed noodle fish can be adjusted. Specifically, the forming die 62 is screwed to the conveyor belt fixing plate used to mount the conveyor belt 61. The screw used for screwing is fitted with a mold fixing bracket 63 and a nut for fixing the forming die from top to bottom. By adjusting the height of the nut on the screw, the height of the forming die fixed to the mold fixing bracket 63 can be adjusted.

[0049] The number of the forming dies 62 is consistent with the number of the discharge holes, and the forming dies 62 are arranged at intervals along the length direction of the die fixing frame 63 .

[0050] refer to Figure 10-11 As shown, the mold cavity 621 is set at the bottom of the forming mold 62 along the conveying direction of the conveyor belt, and the mold cavity 621 includes an inlet section 621a, a forming section 621b and an outlet section 621c connected in sequence, wherein the depths of the inlet section 621a and the outlet section 621c are deeper than the depth of the forming section 621b, and the width of the inlet section 621a gradually widens from the inlet end of the mold cavity 621 to the end connected to the forming section 621b, so that the noodle embryo segment enters the mold cavity 621, and the width of the outlet section 621c gradually widens from the end connected to the forming section 621b to the outlet end of the mold cavity 621, so that the formed noodle segment leaves the mold cavity 621, and the depth of the forming section 621b gradually becomes shallower from the end connected to the inlet section 621a to the end connected to the outlet section 621c, imitating the gradually increasing kneading force of the human palm on the noodle embryo segment. In order to reduce the sharp corners, the width of the forming section 621b gradually decreases from the middle to the two ends.

[0051] In order to achieve effective connection between the various mechanisms and allow the noodles to flow smoothly between the extrusion, cutting and molding processes, the noodle-fishing machine proposed in this embodiment also includes a first guide mechanism 3 and a second guide mechanism 5. The first guide mechanism 3 is arranged between the extrusion mechanism 2 and the cutting mechanism 4, and the second guide mechanism 5 is arranged between the cutting mechanism 4 and the molding mechanism 6.

[0052] like Figure 4 As shown, the first guide mechanism 3 includes a diverter plate 31 and a guide plate 32, wherein the diverter plate 31 is arranged at the discharge port 212, and the diverter channel 311 corresponding to the discharge hole is provided on the diverter plate 31; the guide plate 32 is arranged above the cutting mechanism 4 through the guide plate 32 fixing frame, and a guide groove 321 corresponding to the tail end of the diverter channel 311 is provided at one end thereof close to the diverter plate 31, and the size of the guide groove 321 is larger than the size of the discharge hole. The strip noodle embryos extruded from the discharge hole can pass through the guide groove 321 along the diverter channel 311 and then move to the cutting mechanism 4 for cutting, thereby ensuring that the strip noodle embryos extruded from the extrusion mechanism 2 can smoothly fall into the cutting mechanism 4, while avoiding interference between the strip noodle embryos.

[0053] like Figure 8-9 As shown, the second guide mechanism 5 includes a material distribution chamber 51 and a collection port 52. The material distribution chamber 51 is open at the top and bottom and is vertically arranged below the cutting mechanism 4. It is composed of multiple mutually separated single material chambers, and the single material chambers correspond one-to-one with the material guide trough. The collection port 52 is arranged above the conveyor belt 61, connecting the material distribution chamber 51 and the forming mold 62. One end of the collection port is arranged below the material distribution chamber 51, and the other end is fixed to the forming mold 62. The collection port 52 gradually converges from one end of the material distribution chamber 51 to one end of the forming mold 62 and finally converges to the same width as the inlet of the forming mold 62 to ensure that the dough pieces can smoothly enter the forming mold 62. Similarly, the collection port 52 corresponds one-to-one with the single material chamber.

[0054] The conveying power of the conveyor belt 61 comes from a fourth power member, which can be a servo motor. The servo motor is used to adjust the conveying speed of the conveyor belt to match the falling of the noodles.

[0055] The noodle fish machine in this embodiment also includes a tray, which is arranged below the tail of the conveyor belt 61, specifically on the support plate 8 provided on the frame 1. The formed noodle fish can fall from the conveyor belt 61 onto the tray for easy transportation.

[0056] The tail of the conveyor belt 61 is also connected to a baffle 7. A certain gap is left between the baffle 7 and the conveyor belt 61 to form a drop port. The baffle 7 is set to an arc-shaped surface, which can prevent the noodles from being thrown out of the conveyor belt 61 due to inertia, and ensure that the noodles fall accurately from the drop port into the tray below the conveyor belt 61.

[0057] Optionally, casters are provided at the bottom of the frame 1 to facilitate the movement of the entire noodle-fish machine.

[0058] After the above-mentioned noodle fish machine is started, the dough is placed in the hopper 21 and pushed forward by the auger. With the assistance of the pressing component 23, the dough smoothly enters the discharge port 212 and is squeezed into strip-shaped noodle embryos through the discharge hole. It enters the cutting mechanism 4 through the diverter plate 31 and the guide plate 32 to be cut into noodle embryo segments. The noodle embryo segments pass through the dividing cavity and the collecting port and enter the forming mold. The noodle fish is formed by kneading between the forming mold and the conveyor belt. The shape of the noodle fish can be adjusted by the distance between the forming mold and the conveyor belt. Finally, the noodle fish falls from the conveyor belt into the tray, completing the processing of the noodle fish.

[0059] Obviously, the above embodiments of the present invention are merely examples for the purpose of clearly illustrating the present invention and are not intended to limit the embodiments of the present invention. A person skilled in the art would be able to make various obvious changes, readjustments, and substitutions without departing from the scope of protection of the present invention. It is not necessary and impossible to enumerate all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the claims of the present invention.

Claims

1. Noodle fish machine, characterized in that, include: Rack (1); An extrusion mechanism (2) is provided on the frame (1), comprising a hopper (21) and an extrusion member (22), wherein the hopper (21) comprises an inlet and a discharge hole, and the extrusion member (22) is capable of extruding the dough from the discharge hole into the hopper (21) to form a strip-shaped dough embryo; A cutting mechanism (4), arranged on the frame (1), comprises a cutter (411) capable of cutting the strip noodle dough into noodle dough segments; A forming mechanism (6) is arranged below the cutting mechanism (4), comprising a conveyor belt (61) and a forming die (62), wherein the forming die (62) has a die cavity (621) on a side facing the conveyor belt (61) and passing through the forming die (62) along the conveying direction of the conveyor belt (61), and the die cavity (621) cooperates with the conveyor belt (61) to knead and shape the noodle strips; The mold cavity (621) comprises an inlet section (621a), a molding section (621b) and an outlet section (621c) connected in sequence. The depths of the inlet section (621a) and the outlet section (621c) are deeper than the depth of the molding section (621b). The width of the inlet section (621a) gradually widens from the inlet end of the mold cavity (621) to the end connected to the molding section (621b). The width of the outlet section (621c) gradually widens from the end connected to the molding section (621b) to the outlet end of the mold cavity (621). The depth of the molding section (621b) gradually becomes shallower from the end connected to the inlet section (621a) to the end connected to the outlet section (621c). The width of the molding section (621b) gradually decreases from the middle to both ends.

2. The noodle-fish machine according to claim 1, characterized in that: The extrusion member (22) is an auger, which is rotatably arranged inside the hopper (21), the auger is transmission-connected to the first power member, and the discharge hole is arranged at the terminal end of the hopper (21) along the propulsion direction of the auger.

3. The noodle-fish machine according to claim 2, characterized in that: The extrusion mechanism (2) further comprises a pressing assembly (23), the pressing assembly (23) being arranged at the inlet, the pressing assembly (23) comprising a pressing support (231), a pressing roller (232), a pressing plate (233) and a third power member, the pressing support (231) being fixedly connected to the inner wall of the hopper (21) near one end of the discharge hole, the pressing roller (232) being transmission-connected to the third power member being rotatably arranged above the pressing support (231), a pressing channel being formed between the side of the pressing roller (232) facing the pressing support (231) and the pressing support (231), and the pressing plate (233) being telescopically arranged on the pressing roller (232).

4. The noodle-fish machine according to claim 1, characterized in that: There are multiple discharge holes.

5. The noodle-fish machine according to claim 4, characterized in that: The invention also includes a first guide mechanism (3), which is arranged between the extrusion mechanism (2) and the cutting mechanism (4), and includes a diverter plate (31) and a guide plate (32). The diverter plate (31) is arranged at the discharge hole, and the diverter plate (31) is provided with diverter channels (311) corresponding to the discharge holes one by one; the guide plate (32) is arranged above the cutting mechanism (4), and one end of the guide plate (32) close to the diverter plate (31) is provided with a guide groove (321) corresponding to the tail end of the diverter channel (311).

6. The noodle-fish machine according to claim 5, characterized in that: The invention also includes a second guide mechanism (5), which is arranged between the cutting mechanism (4) and the forming mechanism (6), and includes a material distribution chamber (51) and a collecting port (52). The material distribution chamber (51) is open at the top and bottom and is arranged below the cutting mechanism (4). It is composed of a plurality of single material chambers separated from each other. The single material chambers correspond one-to-one with the material guide trough (321). The collecting port (52) is arranged above the conveyor belt (61) and connects the material distribution chamber (51) and the forming mold (62). The collecting port (52) corresponds one-to-one with the single material chamber.

7. The noodle-fish machine according to claim 1, characterized in that: The cutting mechanism (4) comprises a slitting roller (41) and a backflow roller (42), wherein the slitting roller (41) and the backflow roller (42) rotate in opposite directions, wherein the backflow roller (42) is a columnar roller, and the slitting roller (41) comprises a cutter fixing frame (412) and the cutter (411), wherein the cutter (411) can abut against the backflow roller (42) when rotating with the cutter fixing frame (412).

8. The noodle-fish machine according to claim 1, characterized in that: The forming die (62) is arranged above the conveyor belt (61) in an adjustable height.

9. The noodle-fish machine according to claim 1, characterized in that: It also includes a baffle (7), which is arranged at the tail end of the conveyor belt (61), and a gap is left between the baffle (7) and the conveyor belt (61) to form a material drop opening.

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