A shredding device for producing non-fried instant noodles
By adopting a limit column and conveyor belt structure in the non-fried instant noodles production and cutting device, the problem of bonding noodles during the fall process is solved, the stable transmission and effective drying of noodles is achieved, and the production efficiency is improved.
Patent Information
- Application Number
- CN202310776460.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-28
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2043-06-28
AI Technical Summary
In the existing non-fried instant noodles production and cutting device, the spacing between the noodles after cutting is reduced, resulting in easy bonding to each other during the falling process, and there is a problem of difficulty in separation and transmission.
A two-pressure roller and baffle structure is adopted, and a cutting knife and adjustment component are provided on the baffle. Through the coordination of the limiting column and the conveyor belt, the noodles are layered and separated in the left and right directions, and the grooves on the conveyor belt are used for stable transmission, and dried through the breathable holes.
It effectively avoids the bonding between noodles during the drop and transport process, increases the spacing between noodles, ensures stable transport, and removes moisture through the drying device, improving production efficiency.
Smart Images

Figure CN116649386B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of instant noodle production, in particular to a non-fried instant noodle production and shredding device. Background Art
[0002] Instant noodles are a type of fast food that can be cooked in hot water and eaten in a short period of time; its production process includes kneading, aging, composite calendering, shredding, steaming and air cooling.
[0003] Chinese invention patent CN111802423B discloses a shredding device for non-fried instant noodles production, including a mounting frame, a calendering roller, a shredding knife, a copper comb, a wave-making net arranged at the bottom of the mounting frame, and a loosening component; including a placement plate, the center of the end surface of which is provided with a mounting groove; a toggle member, which is slidably arranged in the mounting groove, including a main body arranged along the length direction of the shredding knife and a plurality of paddle parts evenly arranged on the side wall of the main body, and a gap part for accommodating noodles to pass between two adjacent paddle parts; a power module, which pushes the toggle member to reciprocate in the mounting groove. The lateral reciprocating swing of the main body drives the paddle part to pry the noodles, so that adjacent noodles will not stick together; at the same time, the gap part plays a limiting role on the noodles, limiting the swing range of the noodles within the movement range of the gap part, and only generating a small swing.
[0004] The above device has gaps arranged to correspond to the shredded noodles one by one, and then drives the noodles to swing by swinging the paddle portion, so as to accelerate the evaporation of water on the noodles. However, in actual use, since the spacing between the shredded noodles is reduced, it is difficult for them to cooperate with the gaps during their falling process, so that the noodles may be entangled on the outside of the paddle portion. Therefore, the above device still has shortcomings.
[0005] Therefore, it is necessary to provide a non-fried instant noodle production and shredding device to solve the above technical problems. Summary of the invention
[0006] The object of the present invention is to provide a shredding device for producing non-fried instant noodles, so as to solve the problem that the existing device proposed in the above-mentioned background technology has a gap portion arranged to correspond one-to-one with the noodles after shredding, and then drives the noodles to swing by a swinging paddle portion, so as to accelerate the evaporation of water on the noodles, but in actual use, due to the reduction in the spacing between the noodles after shredding, it is difficult for them to cooperate with the gap portion during the falling process.
[0007] Based on the above ideas, the present invention provides the following technical solution: comprising two pressing rollers and a baffle plate arranged below the pressing rollers, a rotating shaft is arranged on one side of the baffle plate, a plurality of cutters for cutting the fabric into strips are arranged on a fixed sleeve outside the rotating shaft, and a strip groove corresponding to the cutter is opened on the baffle plate;
[0008] An annular clamping groove is formed on the inner side surface of two adjacent cutting knives. An adjusting component matched with the annular clamping groove is arranged on the baffle plate. A conveying component is arranged below the cutting knife. When the cutting knife moves into the strip-shaped groove, the adjusting component is clamped with the annular clamping groove on the cutting knife and slides down to the bottom end position of the cutting knife. The fabric passing through the adjusting component falls onto the conveying component for transmission.
[0009] As a further scheme of the present invention: The adjusting component includes a limiting column arranged between two strip-shaped grooves. Elastic blocks are connected to both ends of the limiting column. The blocks are matched with the annular clamping groove. The inner diameter of the annular clamping groove is larger than the outer diameter of the block. A through notch is formed on the baffle plate between the two strip-shaped grooves. The limiting column is installed at the notch. Elastic pressing rods that mutually press against the blocks are arranged at both ends of the notch. A limiting block is elastically connected to the inner bottom surface of the notch, and the inner side surface of the limiting block is an inclined surface.
[0010] As a further scheme of the present invention: The conveying component includes two conveyor belts arranged on both sides of the bottom of the cutting knife. Grooves are formed on the outer side surface of the conveyor belt. Through ventilation holes are formed at the positions of the grooves on the conveyor belt. Side plates are arranged on both sides of the conveyor belt. A connecting pipe is communicated with the side plates. A bottom plate is fixedly connected between the two side plates on the inner side of the conveyor belt and is in contact with the conveyor belt. A U-shaped cover plate is fixedly connected between the two side plates above the conveyor belt.
[0011] As a further scheme of the present invention: Vertical shafts are rotatably arranged at both ends inside the notch. Sleeves are sleeved at both ends of the vertical shafts and are fixedly connected with the baffle plate. A coil spring is sleeved on a section of the vertical shaft located inside the sleeve. Both ends of the coil spring are fixedly connected with the outer side wall of the vertical shaft and the inner wall of the sleeve respectively. The vertical shaft penetrates through the pressing rod and is fixedly connected with the pressing rod.
[0012] As a further scheme of the present invention: Circular holes are formed at both ends of the limiting column. A turntable is rotatably connected to one end of the block close to the limiting column, and the turntable is slidably arranged inside the circular hole. A top shaft is fixedly connected to the inner side surface of the turntable. A first spring is further sleeved on the outer side of the top shaft. The first spring is arranged between the turntable and the inner end surface of the circular hole.
[0013] As a further scheme of the present invention: A guiding hole is formed on the inner side of the circular hole on the limiting column. One end of the top shaft extends into the guiding hole. A first snap ring and a second snap ring are fixedly sleeved on the outer side of the top shaft. The first snap ring is arranged outside the guiding hole, and the second snap ring is slidably arranged inside the guiding hole.
[0014] As a further scheme of the present invention: An installation groove is formed on the inner bottom surface of the notch. The limiting block is slidably arranged inside the installation groove, and a second spring is arranged inside the installation groove.
[0015] As a further solution of the present invention: the cutter is provided with a through hole.
[0016] As a further solution of the present invention: vertical plates are provided on both sides of the conveyor belt, through slots are provided on the vertical plates, and protrusions are slidably provided in the through slots, and both ends of the rotating shaft pass through the protrusions and rotate in cooperation with the protrusions.
[0017] As a further solution of the present invention: a first motor is arranged on the outer side of the vertical plate, and one end of the rotating shaft is drivingly connected to the output shaft of the first motor.
[0018] Compared with the prior art, the beneficial effects of the present invention are as follows: the noodles can be layered in the left and right directions by the limiting columns, and then when the noodles continue to descend, they will fall into the grooves on the conveyor belt, and the noodles can be transported by the conveyor belt. This device cooperates with the conveying component through the arranged adjustment component. When used specifically, the adjustment component can be used to cause the cut noodles to be layered in the left and right directions, thereby increasing the distance between two adjacent noodles and avoiding the noodles from sticking to each other during the falling process. The width of the groove on the conveyor belt is greater than the width of the noodles, so that the noodles can fall stably into the groove for transportation. During the transportation process, the cover plate is used to help dry the moisture on the noodles. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The present invention is further described below in conjunction with the accompanying drawings and embodiments.
[0020] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0021] Figure 2 It is a three-dimensional structural schematic diagram of the present invention;
[0022] Figure 3 It is a schematic diagram of the structure of the conveying assembly of the present invention;
[0023] Figure 4 It is a schematic diagram of the bottom plate and cover plate structure of the present invention;
[0024] Figure 5 It is a schematic diagram of the cutter structure of the present invention;
[0025] Figure 6 The present invention Figure 5 A schematic diagram of the enlarged structure at point A;
[0026] Figure 7 is a cross-sectional view of a limiting column of the present invention;
[0027] Figure 8 It is a schematic diagram of the limit block structure of the present invention;
[0028] Figure 9 It is a schematic diagram of the coil spring structure of the present invention;
[0029] Figure 10 It is a noodle falling scene diagram of the present invention.
[0030] In the figure: 1. side plate; 2. air vent; 3. groove; 4. slider; 5. screw rod; 6. first motor; 7. through groove; 8. pressure roller; 9. vertical plate; 10. baffle plate; 11. cover plate; 12. conveyor belt; 13. strip groove; 14. mounting block; 15. cutter; 16. bottom plate; 17. rotating shaft; 18. through hole; 19. annular groove; 20. limit block; 21. limit column; 22. pressure rod; 23. turntable; 24. block; 25. first spring; 26. first retaining ring; 27. top shaft; 28. second retaining ring; 29. second spring; 30. noodles; 31. vertical shaft; 32. coil spring; 33. sleeve. DETAILED DESCRIPTION
[0031] like Figures 1-3 As shown, a non-fried instant noodle production and shredding device includes a pressure roller 8 for squeezing a dough, wherein the pressure rollers 8 are two and are arranged opposite to each other, a baffle 10 is arranged below the pressure roller 8, and the top of the baffle 10 is arranged in an arc shape. When the noodles 30 are pressed into a sheet shape by the pressure roller 8, they will fit with the baffle 10, and a cutter 15 for cutting the dough into strips is arranged on one side of the baffle 10. Specifically, a rotating shaft 17 is movably arranged on one side of the baffle 10 close to the dough, and the number of the above-mentioned cutters 15 is set to multiple and all are fixedly sleeved on the outer side of the rotating shaft 17, and the multiple cutters 15 are evenly arranged on the outer side of the rotating shaft 17.
[0032] In order to avoid interference between the cutter 15 and the baffle 10, a through strip groove 13 is opened on the baffle 10, and the strip groove 13 corresponds to the cutter 15. In actual use, when the fabric moves downward along the baffle 10 to the cutter 15, the fabric is cut by rotating the cutter 15, and the cut fabric moves downward and performs subsequent transmission operations. However, the intervals between the multiple noodles 30 formed after the fabric is cut are reduced, so that the noodles 30 will stick to each other during the downward movement. Therefore, in this solution, two adjacent cutters 15 are set as a group, and An annular groove 19 is provided on the opposite sides of the two cutters 15 in the same group. An adjusting component matched with the annular groove 19 is provided on the baffle 10. A conveying component is provided below the cutter 15. When the cutter 15 moves into the strip groove 13, the adjusting component is engaged with the annular groove 19 on the cutter 15, and under the action of gravity, the adjusting component slides down to the bottom end of the cutter 15. In this process, the adjusting component drives a noodle 30 opposite to it to deflect, so that it is staggered with the adjacent two noodles 30. Specifically, Figure 10As shown, since only the inner side of the two cutting knives 15 in the same group is provided with an annular card slot 19, when the cutting knife 15 engages with the adjusting component during the specific strip cutting process, it can cause the adjacent two noodles 30 to stagger, thereby increasing the distance between the adjacent two noodles 30, which is beneficial to avoiding the mutual adhesion of the noodles 30 during the process of falling onto the conveying component.
[0033] As Figures 2-6 As shown in FIGS. 9-10, the adjusting component includes a limiting column 21 disposed between the two strip-shaped grooves 13. Elastic blocks 24 are connected to both ends of the limiting column 21. The blocks 24 cooperate with the annular card slots 19. In specific applications, the inner diameter of the annular card slots 19 should be larger than the outer diameter of the blocks 24, so that when the cutting knife 15 extends to the strip-shaped groove 13, the blocks 24 can be smoothly engaged inside the annular card slots 19.
[0034] In order to install the limiting column 21, a through slot is provided on the baffle 10 between the two strip-shaped grooves 13, and the above-mentioned limiting column 21 is installed at this slot. Pressing rods 22 that mutually press against the blocks 24 are provided at both ends of the slot. Specifically, vertical shafts 31 are rotatably provided at both ends inside the slot. Sleeve barrels 33 are sleeved on both ends of the vertical shafts 31, and the sleeve barrels 33 are fixedly connected to the baffle 10. A coil spring 32 is sleeved on a section of the vertical shaft 31 located inside the sleeve barrel 33. Specifically, both ends of the coil spring 32 are fixedly connected to the outer sidewall of the vertical shaft 31 and the inner wall of the sleeve barrel 33 respectively. The above-mentioned vertical shafts 31 penetrate through the pressing rods 22 and are fixedly connected to the pressing rods 22, and the end of the pressing rod 22 away from the vertical shaft 31 contacts the block 24, so as to form a certain pressure on the block 24 to place it inside the limiting column 21. When the cutting knife 15 moves to the strip-shaped groove 13, it will squeeze the pressing rod 22 outwards, so that the limiting block 20 can move into the annular card slot 19.
[0035] Furthermore, in order to support the limiting column 21, a limiting block 20 is elastically connected to the bottom surface inside the slot, and the inner side surface of the limiting block 20 is provided as an inclined surface, so as to clamp the limiting column 21 between the two limiting blocks 20.
[0036] The above-mentioned conveying component includes two conveyor belts 12 disposed on both sides of the bottom of the cutting knife 15. Grooves 3 are provided on the outer side surface of the conveyor belt 12 along its contour. The grooves 3 correspond to the noodles 30 formed after cutting. Through ventilation holes 2 are provided on the conveyor belt 12 at the positions of the grooves 3.
[0037] Further, side plates 1 are provided on both sides of the conveyor belt 12. The side plates 1 seal the sides of the conveyor belt 12, and connecting pipes are communicated on the side plates 1 for connecting with an external air pump. In actual application, in order to prevent hot air from being discharged through the lower half of the conveyor belt 12, a bottom plate 16 is fixedly connected between the two side plates 1 on the inner side of the conveyor belt 12, and the bottom plate 16 is in contact with the conveyor belt 12. Above the conveyor belt 12, a U-shaped cover plate 11 is fixedly connected between the two side plates 1.
[0038] During actual use, when the fabric passes between the two pressing rollers 8, it can be squeezed into a sheet and move downward along the baffle 10. When it moves to the cutting knife 15, the cutting knife 15 can perform a strip cutting operation on the fabric. At this time, an external driving component drives the rotating shaft 17 and multiple cutting knives 15 on its outer side to move towards the baffle 10. When the cutting knife 15 moves to the strip-shaped groove 13, the cutting knife 15 will squeeze the pressing rod 22 and drive the pressing rod 22 to move outwards and gradually separate from the clamping block 24. At this time, the cutting knife 15 has moved to the side of the clamping block 24. Therefore, when the clamping block 24 pops outwards, it will contact the side of the cutting knife 15. When the cutting knife 15 continues to move so that the annular clamping groove 19 corresponds to the clamping block 24, the clamping block 24 can pop out and be placed inside the annular clamping groove 19. At this time, the cutting knife 15 is driven by the rotating shaft 17 to move outwards and reset. During this process, due to the limiting effect of the annular clamping groove 19, the limiting column 21 can be driven to move out of the baffle 10. After that, the limiting column 21 will slide to the bottom position of the annular clamping groove 19 under its own gravity. Since the noodles 30 are placed between the limiting column 21 and the rotating shaft 17, when the limiting column 21 moves down along the annular clamping groove 19 to the bottom position, it can drive the noodles 30 to deflect towards the rotating shaft 17 and finally stagger with the adjacent noodles 30 in the left-right direction. Specifically, as Figure 10 shown;
[0039] Through the above-mentioned limiting column 21, the noodles 30 can be stratified in the left-right direction. After that, when the noodles 30 continue to descend, they will fall into the groove 3 on the conveyor belt 12. Since the noodles 30 are formed as Figure 10The layered state shown increases the distance between two adjacent noodles 30 in the front-to-back direction. Therefore, in specific applications, a groove 3 can be opened on the conveyor belt 12, and the width of the groove 3 is greater than the width of the noodles 30, so that the noodles 30 can accurately fall into the groove 3. As the conveyor belt 12 moves, the noodles 30 are gradually laid in the groove 3. At the same time, the external heated airflow is introduced into the inner side of the conveyor belt 12 by an air pump and discharged through the air vents 2 to dry the noodles 30, which is beneficial to remove moisture from the noodles 30. The cover plate 11 is set so that the airflow can be discharged to both sides after flowing to the cover plate 11, which is beneficial to drying the top of the noodles 30. Through this structure, the noodles 30 are placed in the groove 3, which avoids the noodles 30 from sticking to each other during the transportation and drying process.
[0040] In summary, this device cooperates with the conveying component through the setting of the adjusting component. When in specific use, the adjusting component can cause the cut noodles 30 to be layered in the left and right directions, thereby increasing the distance between two adjacent noodles 30 and avoiding the noodles 30 from sticking to each other during the falling process. The width of the groove 3 on the conveyor belt 12 is larger than the width of the noodles 30, so that the noodles 30 can fall stably into the groove 3 for transportation. During the transportation process, the cover plate 11 is helpful to dry the moisture on the noodles 30.
[0041] In practical applications, a ball bearing may be installed on the end surface of the clamping block 24 to reduce the friction between the clamping block 24 and the cutter 15 .
[0042] like Figures 1-2 As shown, the above-mentioned driving assembly is arranged on the first motor 6 at one end of the rotating shaft 17. Specifically, vertical plates 9 are arranged on both sides of the conveyor belt 12. A through groove 7 is opened on the vertical plate 9, and a protrusion is slidably arranged in the through groove 7. The two ends of the rotating shaft 17 pass through the protrusion and rotate with it. Specifically, one end of the rotating shaft 17 is transmission connected to the output shaft of the above-mentioned first motor 6.
[0043] Furthermore, a second motor is fixedly connected to the outer side of the vertical plate 9, and a screw rod 5 is drivingly connected to the output shaft of the second motor. A slider 4 is slidably provided on the outer side of the vertical plate 9, and the screw rod 5 passes through the slider 4 and is threadedly connected thereto. In actual application, in order to install the screw rod 5, a protrusion is fixedly connected to the outer side surface of the vertical plate 9, and the end of the screw rod 5 away from the second motor rotates with the protrusion. In order to ensure the stable rotation of the rotating shaft 17, a mounting block 14 is rotatably connected to the end of the rotating shaft 17 away from the first motor 6, and the mounting block 14 is fixedly connected to the slider 4. The above-mentioned first motor 6 is also fixed to the top of the slider 4.
[0044] In actual use, the first motor 6 drives the rotating shaft 17 and the cutter 15 on its outer side to rotate to cut the noodles 30 into strips, and the second motor drives the screw rod 5 to rotate. The screw rod 5 and the slider 4 cooperate to drive the rotating shaft 17 to move relative to the baffle 10, thereby adjusting the position of the cutter 15.
[0045] like Figures 1-3 As shown, brackets are provided on both sides of the conveyor belt 12. Specifically, rollers are provided at both ends of the conveyor belt 12 so that the conveyor belt 12 can be sleeved between the two rollers and straightened. Round shafts are fixedly connected at both ends of the rollers. The round shafts rotate with the brackets to complete the installation of the conveyor belt 12, and one of the round shafts can be connected to the output shaft of an external driving motor to drive the conveyor belt 12 to rotate. The side panel 1 is fixedly connected between the two brackets on the same side, and the vertical panel 9 is fixedly connected to the brackets.
[0046] In addition, the above-mentioned pressure roller 8 is arranged between the two vertical plates 9, and connecting shafts are fixedly arranged at both ends of the pressure roller 8. The connecting shaft passes through the vertical plates 9 and rotates with them. In actual application, a motor can be arranged on the outside of one of the vertical plates 9 so that the connecting shaft is connected to the output shaft of the motor to drive the pressure roller 8 to rotate. Of course, the above-mentioned motor, the first motor 6 and the second motor can all be servo motors.
[0047] like Figures 6-7 As shown, circular holes are provided at both ends of the limiting column 21, and the end of the clamping block 24 close to the limiting column 21 is rotatably connected to a turntable 23, and the turntable 23 is slidably arranged inside the circular hole, and a top shaft 27 is fixedly connected to the inner side of the turntable 23. In actual use, in order to limit the movement of the top shaft 27, a guide hole is provided on the limiting column 21 on the inner side of the circular hole, and one end of the top shaft 27 extends into the inside of the guide hole, and a first clamping ring 26 and a second clamping ring 28 are fixedly sleeved on the outer side of the top shaft 27, the first clamping ring 26 is arranged on the outer side of the guide hole, and the second clamping ring 28 is slidably arranged inside the circular hole. It is arranged inside the guide hole to limit the top shaft 27. In addition, a first spring 25 is also sleeved on the outside of the top shaft 27. The first spring 25 is arranged between the turntable 23 and the inner end surface of the circular hole. This structure is conducive to limiting the movement of the top shaft 27. When the pressure rod 22 gradually moves away from the limit block 20, the limit block 20 can be driven to move outward under the action of the first spring 25, so as to be stuck in the annular groove 19. Since the limit block 20 is rotatably connected to the turntable 23, when the cutter 15 rotates, the entire limit column 21 can be stably maintained at the bottom end position of the cutter 15.
[0048] like Figure 8As shown, an installation groove is formed on the inner bottom surface of the notch, and the above-mentioned limiting block 20 is slidably arranged inside the installation groove. A second spring 29 is arranged in the installation groove, so that the two ends of the second spring 29 are fixedly connected to the opposite surfaces of the installation groove and the limiting block 20 respectively.
[0049] As Figure 5 shown, a through hole 18 is formed in the cutting tool 15, which is beneficial to the disassembly of the limiting column 21. When the limiting column 21 corresponds to the through hole 18, the limiting column 21 can be removed by using an external tool to pass through the through hole 18 and squeeze the limiting block 20.
Claims
1. A non-fried instant noodle production shredding device, comprising two pressing rollers and a baffle arranged below the pressing rollers. A rotating shaft is arranged on one side of the baffle, and a plurality of cutting knives for cutting the noodle dough into strips are fixedly sleeved on the outer side of the rotating shaft. It is characterized in that: A strip-shaped groove corresponding to the cutting knife is formed in the baffle plate; Annular clamping grooves are formed in the inner sides of two adjacent cutting knives. An adjusting component matched with the annular clamping grooves is arranged on the baffle plate. A conveying component is arranged below the cutting knives. When the cutting knives move into the strip-shaped grooves, the adjusting component is clamped with the annular clamping grooves on the cutting knives and slides down to the bottom end position of the cutting knives. The fabric passing through the adjusting component falls onto the conveying component for transmission; The adjusting component includes a limiting column arranged between the two strip-shaped grooves. Elastic blocks are connected to both ends of the limiting column. The blocks are matched with the annular clamping grooves. The inner diameter of the annular clamping groove is larger than the outer diameter of the block. A through notch is formed in the baffle plate between the two strip-shaped grooves. The limiting column is installed at the notch. Pressing rods that mutually extrude the blocks are elastically arranged at both ends of the notch. When the cutting knives move to the strip-shaped grooves, the pressing rods can be extruded outwards. A limiting block is elastically connected to the inner bottom surface of the notch, and the inner side surface of the limiting block is an inclined surface.
2. The non-fried instant noodle production shredding device according to claim 1, characterized in that: The conveying component includes two conveyor belts arranged at the bottom of the cutting knives. Grooves are formed in the outer sides of the conveyor belts. Through air holes are formed in the conveyor belts at the positions of the grooves. Side plates are arranged on both sides of the conveyor belts. Connecting pipes are communicated with the side plates. A bottom plate is fixedly connected between the two side plates on the inner side of the conveyor belt and is in contact with the conveyor belt. A U-shaped cover plate is fixedly connected between the two side plates above the conveyor belt.
3. A non-fried instant noodle production shredding device according to claim 1, characterized in that: Vertical shafts are rotatably arranged at both ends inside the notch. Sleeves are sleeved at both ends of the vertical shafts and are fixedly connected with the baffle plate. A coil spring is sleeved on a section of the vertical shaft located inside the sleeve. Both ends of the coil spring are fixedly connected with the outer side wall of the vertical shaft and the inner wall of the sleeve respectively. The vertical shaft penetrates through the pressing rod and is fixedly connected with the pressing rod.
4. A non-fried instant noodle production shredding device according to claim 1, characterized in that: Round holes are formed at both ends of the limiting column. A turntable is rotatably connected to one end of the block close to the limiting column, and the turntable is slidably arranged inside the round hole. A top shaft is fixedly connected to the inner side surface of the turntable. A first spring is sleeved on the outer side of the top shaft. The first spring is arranged between the turntable and the inner end surface of the round hole.
5. A non-fried instant noodle production shredding device according to claim 4, characterized in that: A guiding hole is formed in the limiting column inside the round hole. One end of the top shaft extends into the guiding hole. A first snap ring and a second snap ring are fixedly sleeved on the outer side of the top shaft. The first snap ring is arranged outside the guiding hole, and the second snap ring is slidably arranged inside the guiding hole.
6. A non-fried instant noodle production shredding device according to claim 1, characterized in that: An installation groove is formed in the inner bottom surface of the notch. The limiting block is slidably arranged inside the installation groove, and a second spring is arranged inside the installation groove.
7. A non-fried instant noodle production shredding device according to claim 1, characterized in that: A through hole is formed in the cutting knife.
8. A non-fried instant noodle production shredding device according to claim 2, characterized in that: Vertical plates are arranged on both sides of the conveyor belt. Through grooves are formed in the vertical plates, and convex blocks are slidably arranged inside the through grooves. Both ends of the rotating shaft pass through the convex blocks and are rotatably matched with the convex blocks.
9. A non-fried instant noodle production shredding device according to claim 8, characterized in that: A first motor is arranged outside the vertical plate. One end of the rotating shaft is in transmission connection with the output shaft of the first motor.
Citation Information
Patent Citations
A shredding device for non-fried instant noodles production
CN111802423B
Noodle strip cutting device and noodle strip separating plate
CN102083319A
Cutting and slitting device for noodle production
CN116076539A