A shaping device for instant vermicelli

By introducing a drying and shaping mechanism and a moisture detector into the instant vermicelli shaping device, the problems of uneven heating of vermicelli and manual intervention are solved, and automated and uniform drying and efficient production are achieved.

CN117190649BActive Publication Date: 2025-09-16龙口龙须粉丝有限公司
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Patent Information

Application Number
CN202311207674.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-09-19
Publication Date
2025-09-16
Estimated Expiration
2043-09-19

AI Technical Summary

Technical Problem

现有速食粉丝定型装置中,粉丝受热不均导致定型失败或过度干燥,且烘干时间和人工观察导致加工效率低。

Method used

The drying and shaping mechanism is adopted, and the vortex blades are driven by high-temperature and high-pressure air to drive the turntable and the drum to rotate. The drying time is automatically controlled in combination with the moisture detector, and automatic unloading is achieved through the automatic opening and closing mechanism to avoid uneven heating and manual intervention.

Benefits of technology

The uniform drying and shaping of vermicelli is achieved, and the completion of drying is automatically detected, thereby improving processing efficiency and the degree of automation of the device and reducing manufacturing costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a shaping device for instant vermicelli, comprising a base, on which a drying and shaping mechanism is provided; the drying and shaping mechanism comprises a groove, the groove being formed in the base, the inner sidewall of the groove being rotatably connected to a turntable via a bearing, the upper surface of the turntable being fixedly connected to an annular cylinder, the annular cylinder being rotatably connected to multiple rotating cylinders via bearings, a column being rotatably connected to the base, the column and the turntable being rotatably connected via bearings, the column being rotatably connected to a connecting ring via bearings, the sidewall of the connecting ring being rotatably connected to multiple reciprocating screws via bearings, and a placement box being rotatably connected to the end of the rotating cylinder away from the connecting ring. The shaping device of the present invention has the advantages of ensuring that the vermicelli is fully dried and shaped, avoiding uneven drying and overdrying, and having a higher degree of automation, automatically stopping and unloading upon completion of drying, thereby improving processing efficiency.
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Description

Technical Field

[0001] The invention relates to the technical field of food production, in particular to a shaping device for instant vermicelli. Background Art

[0002] Instant food is one of the common foods in our lives. As the name suggests, fast food can be eaten quickly and does not require a complicated cooking process. There are many types of fast food, such as instant noodles, instant vermicelli, canned food, quick-frozen dumplings, etc., all of which only require simple operations to eat, which greatly facilitates our lives. Instant vermicelli is also a kind of fast food. Vermicelli is one of the common foods in China. It is a filamentous food made from mung beans, sweet potato starch, etc. Instant vermicelli can often be eaten by just brewing it with hot water. In the production process of instant vermicelli, the vermicelli is generally cooked first, and then the cooked vermicelli is dried and shaped through a shaping device to make the vermicelli fully dry and dehydrated, thereby obtaining the vermicelli cake in the instant vermicelli.

[0003] In the prior art, existing shaping devices for instant vermicelli often place vermicelli in a box, which is then placed in a device and dried by hot air. During the drying process, the vermicelli is placed in the device without being turned over, resulting in uneven heating of the vermicelli. It is possible that the vermicelli at the bottom has been dehydrated while the vermicelli at the top still has a certain amount of moisture, resulting in shaping failure, or the vermicelli at the top is dry while the vermicelli at the bottom is over-dried and becomes brittle and breaks, which directly leads to the waste of the vermicelli cake. In addition, during the drying process, the drying time is generally set, or the processing personnel judge the drying situation with the naked eye, both of which cannot effectively ensure that the vermicelli is fully dried, affecting the processing effect. For this reason, we propose a shaping device for instant vermicelli. Summary of the Invention

[0004] The purpose of the present invention is to solve the problems in the prior art and to propose a shaping device for instant vermicelli.

[0005] In order to achieve the above-mentioned object, the present invention adopts the following technical solution: a shaping device for instant vermicelli, comprising a base, on which a drying and shaping mechanism is provided;

[0006] The cam is fixedly provided with a toothed plate, and the toothed plate is meshed with the toothed plate, and the toothed plate is meshed with the toothed plate.

[0007] In the above-mentioned instant vermicelli shaping device, the drying and shaping mechanism also includes a first tube, which is fixedly connected to the base through the first tube, and connects the groove with the outside world. A plurality of vortex blades are fixedly connected to the lower surface of the turntable, and a ring seat is fixedly connected to the upper surface of the base. The ring seat is a hollow structure, and the base and the ring seat are jointly fixedly connected with a second tube, and the second tube connects the groove with the ring seat. A plurality of third tubes are fixedly connected to the top wall of the ring seat through the third tube, and an electromagnetic valve is arranged in the third tube.

[0008] In the above-mentioned instant vermicelli shaping device, a detection mechanism is provided in the base, and the detection mechanism includes a detection cavity. The detection cavity is opened in the base, and the column extends through the detection cavity. A first groove is opened on the bottom wall of the column, and a plurality of through holes are opened on the side wall of the column. The first groove connects the through holes with the detection cavity. A fourth tube is fixedly connected through the base, and the fourth tube connects the detection cavity with the outside world. A moisture detector is fixedly connected to the bottom wall of the detection cavity.

[0009] In the above-mentioned instant vermicelli shaping device, the detection mechanism also includes a control cavity, which is opened in the base, and an electromagnet is fixedly connected to the inner end wall of the control cavity. The electromagnet is connected to the moisture detector through a PLC control circuit, and a conductive plate is slidably connected in the control cavity. Several springs are fixedly connected between the conductive plate and the inner end wall of the control cavity, and a conductive ring is fixedly connected to the inner side wall of the control cavity. The conductive ring, conductive plate, and electromagnetic valve are electrically connected through a wire.

[0010] In the above-mentioned instant vermicelli shaping device, an opening and closing mechanism is provided on the column, and the opening and closing mechanism includes a second groove, which is opened on the upper surface of the column. The column is sealed and slidably connected to a fifth tube through the second groove, and the fifth tube is fixedly connected to a sealing cover through it. The column and the ring seat are jointly fixedly connected to a sixth tube through it, and the sixth tube connects the second groove with the ring seat. A pressure relief valve is provided in the fifth tube.

[0011] In the above-mentioned instant vermicelli shaping device, the opening and closing mechanism also includes a seventh tube, which is fixedly connected to the column and extends into the second groove. The seventh tube is sealingly and slidingly connected to a functional rod, and the end of the functional rod located outside the seventh tube is fixedly connected to a block.

[0012] In the above-mentioned instant vermicelli shaping device, a plurality of limiting grooves are provided on the inner side wall of the second groove, and the columns are sealed and slidably connected to a plurality of limiting blocks through the limiting grooves, and the limiting blocks are fixedly connected to the side wall of the fifth tube.

[0013] In the above-mentioned instant vermicelli shaping device, a sealing rubber ring is fixedly connected to the lower surface of the sealing cover.

[0014] Compared with the existing technology, the advantages of the present invention are:

[0015] 1. During the drying process, high-temperature and high-pressure air enters the groove and impacts the vortex blades, causing the turntable to rotate, driving the annular cylinder to rotate, and then the annular cylinder drives the rotating cylinder to rotate around the column. During the rotation process, the engagement of the gear and the ring gear causes the placement box to rotate. Combined with the hot air ejected from the third tube, the vermicelli rotates evenly and is heated and dried, which can ensure that the vermicelli is fully dried and avoid the occurrence of uneven drying and shaping.

[0016] 2. After drying, the air with moisture enters the detection chamber through the through hole and the first slot. The moisture in the air is detected by the moisture detector. When no moisture is detected, the electromagnet is powered off, thereby separating the conductive plate and the conductive ring, and ending the drying. The drying status is automatically detected during the drying process, and the drying process automatically stops after the drying is completed, avoiding the prior art of setting a fixed time or manual observation that may lead to insufficient or excessive drying, while improving the processing efficiency.

[0017] 3. After drying stops, the third tube no longer sprays hot air, and the pumped air enters the second tank through the sixth tube, causing the fifth tube to slide upward, driving the sealing cover to rise, thereby opening the device. When the processing personnel observe that the sealing cover is opened, they can determine that the drying is completed and prepare to load the material, further improving the processing efficiency;

[0018] 4. When the sealing cover is opened, air will enter the seventh tube, causing the functional rod to drive the block to slide down. The block slides down, so that the placement box passing through the block cannot rotate, and the gear and the ring gear always keep meshing, so that when the gear drives the reciprocating screw to rotate, the placement box no longer rotates. Instead, the sliding column drives the push plate to reciprocate through the threaded connection, pushing the internally formed vermicelli out of the placement box and onto the base, thereby completing automatic unloading, further improving processing efficiency and increasing the degree of automation of the device;

[0019] 5. The present invention only needs to supply dry high-temperature air to the device through the first pipe to complete subsequent processes such as rotary drying, opening the sealing cover, and automatic unloading. There is no need to set up a separate power source, which makes the structure of the device more compact and reduces the manufacturing cost of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a schematic diagram of the appearance of a shaping device for instant vermicelli proposed by the present invention;

[0021] Figure 2 This is a schematic diagram of the interior of a shaping device for instant vermicelli proposed by the present invention;

[0022] Figure 3 A cross-sectional view of a shaping device for instant vermicelli proposed by the present invention;

[0023] Figure 4 for Figure 3 A magnified view of point A in the figure;

[0024] Figure 5 for Figure 3 Enlarged view of point B in FIG.

[0025] Figure 6 This is a cross-sectional view of a base in a shaping device for instant vermicelli proposed by the present invention;

[0026] Figure 7 This is a structural schematic diagram of a drying and shaping mechanism in a shaping device for instant vermicelli proposed by the present invention;

[0027] Figure 8 This is a structural schematic diagram of a box placed in a shaping device for instant vermicelli proposed by the present invention.

[0028] In the figure: 1 base, 2 groove, 3 turntable, 4 annular cylinder, 5 column, 6 gear ring, 7 rotating cylinder, 8 placement box, 9 air hole, 10 sliding column, 11 push plate, 12 reciprocating screw, 13 gear, 14 connecting ring, 15 first tube, 16 vortex blade, 17 ring seat, 18 second tube, 19 third tube, 20 solenoid valve, 21 detection chamber, 22 first groove, 23 through hole, 24 moisture detector, 25 fourth tube, 26 control chamber, 27 electromagnet, 28 conductive plate, 29 spring, 30 conductive ring, 31 second groove, 32 fifth tube, 33 pressure relief valve, 34 sixth tube, 35 seventh tube, 36 function rod, 37 block, 38 limit groove, 39 limit block, 40 sealing cover. DETAILED DESCRIPTION

[0029] The following examples are for illustrative purposes only and are not intended to limit the scope of the present invention.

[0030] Example

[0031] Reference Figures 1-8 , a shaping device for instant vermicelli, comprising a base 1, on which a drying and shaping mechanism is provided;

[0032] The drying and shaping mechanism includes a groove 2, which is opened in the base 1. The inner wall of the groove 2 is rotatably connected to a turntable 3 through a bearing. The upper surface of the turntable 3 is fixedly connected to an annular cylinder 4. The annular cylinder 4 is rotatably connected to multiple rotating cylinders 7 through bearings. The base 1 is fixedly connected to a column 5. The column 5 and the turntable 3 are rotatably connected through bearings. The column 5 is rotatably connected to a connecting ring 14 through a bearing. The side wall of the connecting ring 14 is rotatably connected to multiple reciprocating screws 12 through bearings. The end of the rotating cylinder 7 away from the connecting ring 14 is fixedly connected to a placement box 8. The side wall of the placement box 8 is provided with a number of air holes 9. The reciprocating screw 12 is interference-fitted with a gear 13. The side wall of the column 5 is fixedly connected to a gear ring 6 through a bracket. The gear 13 is meshed with the gear ring 6. Figure 7As shown, the gear ring 6 is an annular ring, and the upper surface is provided with teeth that mesh with the gear 13. The rotating cylinder 7 is slidably connected with a sliding column 10. The sliding connection between the sliding column 10 and the rotating cylinder 7 is provided with a damping pad, so that there is a certain damping in the sliding between the two. The sliding column 10 extends into the placement box 8 and is fixedly connected with a push plate 11. The push plate 11 is slidably connected to the inner wall of the placement box 8. The reciprocating screw 12 is threadedly connected to the corresponding sliding column 10. The air enters the groove 2 through the first tube 15 and impacts the vortex blades 16. The vortex blades 16 drive the turntable 3 to rotate under the impact of the air. The rotation of the turntable 3 drives the annular cylinder 4 to rotate. The rotation of the annular cylinder 4 drives the rotating cylinder 7 to rotate around the column 5. During the rotation around the column 5, the reciprocating screw 12 rotates through the meshing of the gear 13 and the gear ring 6. During the rotation of the lever 12, since the rotation of the placement box 8 and the rotating drum 7 is not restricted at this time, the rotation of the reciprocating screw 12 will drive the slide column 10 to rotate, and through the damping force, the slide column 10 drives the rotating drum 7 to rotate, thereby causing the placement box 8 to rotate. After the air-driven vortex blades 16 drive the turntable 3 to rotate, it enters the ring seat 17 through the second tube 18. At this time, since the solenoid valve 20 is in the open state, the air directly enters the third tube 19 and is ejected. The high-temperature air ejected from the third tube 19, in conjunction with the rotation of the placement box 30, is used to dry the vermicelli in the placement box 8 in all directions through the air holes 9 through the high-temperature air, so that it is dehydrated and shaped. Compared with the shaping device of the prior art, it can ensure that the vermicelli is fully and evenly dried and shaped, avoid insufficient shaping, and further improve the shaping efficiency.

[0033] The drying and shaping mechanism also includes a first tube 15, which is fixedly connected to the base 1 and connects the groove 2 with the outside. One end of the first tube 15 located outside the base 1 is connected to an external device for supplying high-temperature and high-pressure air, and supplies high-temperature and high-pressure air to the device. A plurality of vortex blades 16 are fixedly connected to the lower surface of the turntable 3, and a ring seat 17 is fixedly connected to the upper surface of the base 1. The ring seat 17 is a hollow structure. The base 1 and the ring seat 17 are jointly fixedly connected with a second tube 18, which connects the groove 2 with the ring seat 17. Several third tubes 19 are fixedly connected to the top wall of the ring seat 17, and an electromagnetic valve 20 is provided in the third tube 19. The present invention only needs to supply dry high-temperature air to the device through the first tube 15 to complete subsequent rotary drying, opening the sealing cover, automatic unloading and other processes. There is no need to set up a separate power source, which makes the structure of the device more compact and reduces the manufacturing cost of the device.

[0034] A detection mechanism is provided in the base 1, and the detection mechanism includes a detection cavity 21. The detection cavity 21 is opened in the base 1, and the column 5 extends through the detection cavity 21. A first groove 22 is opened on the bottom wall of the column 5, and a plurality of through holes 23 are opened on the side wall of the column 5. The first groove 22 connects the through hole 23 with the detection cavity 21. A fourth tube 25 is fixedly connected through the base 1, and the fourth tube 25 connects the detection cavity 21 with the outside world. A moisture detector 24 is fixedly connected to the bottom wall of the detection cavity 21. The moisture detector 24 can measure the moisture in the air and monitor the moisture changes in real time. The detection mechanism also includes a control chamber 26, which is opened in the base 1. The inner end wall of the control chamber 26 is fixedly connected to an electromagnet 27. The electromagnet 27 is connected to the moisture detector 24 through a PLC control circuit. The PLC control circuit can read the detection result of the moisture detector 24. When no change in moisture is detected within a certain period of time, the solenoid valve 27 can be powered off. The PLC control program is a prior art and will not be described in detail here. A conductive plate 28 is slidably connected in the control chamber 26. A number of springs 29 are fixedly connected between the conductive plate 28 and the inner end wall of the control chamber 26. A conductive ring 30 is fixedly connected to the inner side wall of the control chamber 26. The conductive ring 30, the conductive plate 28, and the solenoid valve 20 are electrically connected by a wire. The conductive ring 30 contacts the conductive plate 28 to energize the solenoid valve 20. The solenoid valve 20 is a normally closed solenoid valve and can be opened by energizing. The dried air carries moisture through the through hole 23 and enters the first The vermicelli vermicelli is placed in a slot 22 and then enters the detection chamber 21 through the first slot 22. The moisture detector 24 detects the change in moisture in the air. When drying is not completed, the moisture detector 24 can detect the moisture in the air and keep drying. When drying is completed, the vermicelli is completely dehydrated and shaped. At this time, the air entering the detection chamber 21 carries less moisture, and the content remains roughly unchanged. At this time, when the moisture detector 24 detects that the moisture no longer changes, the electromagnet 27 is powered off. After the electromagnet 27 is powered off, the magnetic attraction on the conductive plate 28 disappears. Under the elastic force of the spring 29, the conductive plate 28 is separated from the conductive ring 30, so that the solenoid valve 20 is powered off and closed, and drying is stopped. The device can continuously detect the drying situation while drying, and then automatically stop after drying is completed, effectively avoiding the situation in which the vermicelli is not dried sufficiently or excessively by setting a certain time or manual observation in the prior art.

[0035] The column 5 is provided with an opening and closing mechanism, which includes a second groove 31. The second groove 31 is opened on the upper surface of the column 5. The column 5 is sealed and slidably connected to the fifth tube 32 through the second groove 31. The fifth tube 32 is fixedly connected to the sealing cover 40. The column 5 and the ring seat 17 are jointly fixedly connected with the sixth tube 34. The sixth tube 34 connects the second groove 31 with the ring seat 17. A pressure relief valve 33 is provided in the fifth tube 32. The pressure relief valve 33 automatically opens after the pressure reaches a certain value. This is the existing technology and is not described in detail here. When the fifth tube 32 slides up, it drives the sealing cover 40 to rise and open. Until the fifth tube 32 moves to the limit position, it can no longer rise, and the pressure in the second groove 31 continues to increase until it increases to the opening pressure of the pressure relief valve 33. The pressure relief valve 33 opens, allowing the air to be discharged, and the sealing cover 40 opens, and the drying and shaping of the staff can be lifted up and prepared for loading.

[0036] The opening and closing mechanism also includes a seventh tube 35, which is fixedly connected to the column 5 and extends into the second groove 31. The seventh tube 35 is sealed and slidably connected to a functional rod 36. The functional rod 36 is fixedly connected to a stopper 37 at one end outside the seventh tube 35. When the stopper 37 slides down and contacts the placement box 8, the stopper 37 limits the placement box 8, so that the placement box 8 cannot rotate. When the placement box 8 cannot rotate, the rotating drum 7 cannot rotate accordingly. At this time, the gear 13 and the ring gear 6 still remain in a meshing state, so that the rotation of the reciprocating screw 12 at this time will cause the slide 10 to slide back and forth through the threaded connection. The slide 10 drives the push plate 11 to slide back and forth in the placement box 8, pushing the dried and shaped vermicelli inside out of the placement box 8 and onto the base 1, so that the vermicelli in the placement box 8 passing through the stopper 37 is automatically discharged. After drying is completed, the vermicelli is automatically unloaded, further improving the processing efficiency and the degree of automation of the device.

[0037] A plurality of limit grooves 38 are provided on the inner side wall of the second groove 31, and the column 5 is sealed and slidably connected with a plurality of limit blocks 39 through the limit grooves 38. The limit blocks 39 are fixedly connected to the side walls of the fifth tube 32. Through the setting of the limit blocks 39 and the limit grooves 38, the sliding of the fifth tube 32 is limited to prevent it from sliding out of the second groove 31 excessively, thereby ensuring the stable operation of the device.

[0038] A sealing rubber ring is fixedly connected to the lower surface of the sealing cover 40. The setting of the sealing rubber ring ensures the sealing of the connection between the sealing cover 40 and the upper surface of the base 1, avoiding air leakage at the connection to affect the drying and shaping effect.

[0039] In the present invention, the vermicelli to be dried and shaped is placed in the placement box 8, the sealing cover 40 is closed, and the external high-temperature and high-pressure equipment is turned on to supply high-temperature and high-pressure air into the device through the first pipe 15.

[0040] Air enters the groove 2 through the first tube 15 and impacts the vortex blades 16. Under the impact of the air, the vortex blades 16 drive the turntable 3 to rotate. The rotation of the turntable 3 drives the annular cylinder 4 to rotate. The rotation of the annular cylinder 4 drives the rotating cylinder 7 to rotate around the column 5. During the rotation around the column 5, the reciprocating screw 12 rotates through the engagement of the gear 13 and the ring gear 6. During the rotation of the reciprocating screw 12, since the rotation of the placement box 8 and the rotating cylinder 7 is not restricted at this time, the rotation of the reciprocating screw 12 will drive the slide column 10 to rotate, and the slide column 10 drives the rotating cylinder 7 to rotate through the damping force, thereby causing the placement box 8 to rotate.

[0041] After the air drives the vortex blades 16 to rotate the turntable 3, it enters the ring seat 17 through the second tube 18. At this time, since the solenoid valve 20 is in the open state, the air directly enters the third tube 19 and is ejected. The high-temperature air ejected from the third tube 19, in conjunction with the rotation of the placement box 30, dries the vermicelli in the placement box 8 in all directions through the air holes 9, dehydrating and shaping it.

[0042] The dried air carries moisture and enters the first slot 22 through the through hole 23, and then enters the detection chamber 21 through the first slot 22. The moisture detector 24 detects the change in moisture in the air. When drying is not completed, the moisture detector 24 can detect the moisture in the air and keep drying. When drying is completed, the vermicelli is completely dehydrated and shaped. At this time, the air entering the detection chamber 21 carries less moisture and the content remains roughly unchanged. At this time, when the moisture detector 24 detects that the moisture no longer changes, the electromagnet 27 is powered off. After the electromagnet 27 is powered off, the magnetic attraction on the conductive plate 28 disappears. Under the elastic force of the spring 29, the conductive plate 28 is separated from the conductive ring 30, thereby powering off the solenoid valve 20 and closing it.

[0043] After the solenoid valve 20 is closed, the air entering at this time will enter the second groove 31 through the sixth tube 34. After the air enters the second groove 31, on the one hand, it causes the fifth tube 32 to slide up, and on the other hand, it enters the seventh tube 35, causing the functional rod 36 to slide, thereby causing the block 37 to slide down. The block 37 contacts the placement box 8. When the fifth tube 32 slides up, it drives the sealing cover 40 to rise and open until the fifth tube 32 moves to the limit position and it can no longer rise. The pressure in the second groove 31 continues to increase until it increases to the opening pressure of the pressure relief valve 33. The pressure relief valve 33 opens, allowing the air to be discharged, and the sealing cover 40 opens, which can lift the staff to complete the drying and shaping, and prepare for loading.

[0044] When the stopper 37 slides down and contacts the placement box 8, the stopper 37 limits the placement box 8, so that the placement box 8 cannot rotate. When the placement box 8 cannot rotate, the rotating drum 7 cannot rotate accordingly. At this time, the gear 13 and the ring gear 6 still maintain an engaged state, so that the rotation of the reciprocating screw 12 will cause the slide column 10 to slide back and forth through the threaded connection. The slide column 10 drives the push plate 11 to slide back and forth in the placement box 8, pushing the dried and shaped vermicelli inside out of the placement box 8 and onto the base 1, so that the vermicelli in the placement box 8 passing through the stopper 37 is automatically discharged. The processing personnel collect the fallen vermicelli and then put in the vermicelli to be dried and shaped, and continue to dry and shape according to the above steps.

[0045] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.

Claims

1. A shaping device for instant vermicelli, comprising a base (1), characterized in that: The base (1) is provided with a drying and shaping mechanism; The drying and shaping mechanism comprises a groove (2), the groove (2) being provided in the base (1), the inner side wall of the groove (2) being rotatably connected to a turntable (3) via a bearing, the upper surface of the turntable (3) being fixedly connected to an annular cylinder (4), the annular cylinder (4) being rotatably connected to a plurality of rotating cylinders (7) via bearings, the base (1) being fixedly connected to a column (5), the column (5) being rotatably connected to the turntable (3) via bearings, the column (5) being rotatably connected to a connecting ring (14) via bearings, the side wall of the connecting ring (14) being rotatably connected to a plurality of reciprocating screws (12) via bearings, the rotating cylinder ( 7) One end away from the connecting ring (14) is fixedly connected to a placement box (8), a plurality of air holes (9) are provided on the side wall of the placement box (8), the reciprocating screw (12) is interference-fitted with a gear (13), the side wall of the column (5) is fixedly connected to a gear ring (6) through a bracket, the gear (13) is meshed with the gear ring (6), the rotating cylinder (7) is slidably connected to a slide column (10), the slide column (10) extends into the placement box (8) and is fixedly connected to a push plate (11), the push plate (11) is slidably connected to the inner wall of the placement box (8), and the reciprocating screw (12) is threadedly connected to the corresponding slide column (10).

2. The instant vermicelli shaping device according to claim 1, characterized in that: The drying and shaping mechanism further comprises a first tube (15), the first tube (15) is fixedly connected to the base (1), the first tube (15) connects the groove (2) with the outside, a plurality of vortex blades (16) are fixedly connected to the lower surface of the turntable (3), a ring seat (17) is fixedly connected to the upper surface of the base (1), the ring seat (17) is a hollow structure, the base (1) and the ring seat (17) are fixedly connected to a second tube (18), the second tube (18) connects the groove (2) with the ring seat (17), a plurality of third tubes (19) are fixedly connected to the top wall of the ring seat (17), and a solenoid valve (20) is arranged in the third tube (19).

3. The instant vermicelli shaping device according to claim 2, characterized in that: A detection mechanism is provided in the base (1), and the detection mechanism includes a detection cavity (21). The detection cavity (21) is provided in the base (1), and the column (5) extends through the detection cavity (21). A first groove (22) is provided on the bottom wall of the column (5), and a plurality of through holes (23) are provided on the side wall of the column (5). The first groove (22) connects the through holes (23) with the detection cavity (21). A fourth tube (25) is fixedly connected through the base (1), and the fourth tube (25) connects the detection cavity (21) with the outside world. A moisture detector (24) is fixedly connected to the bottom wall of the detection cavity (21).

4. The instant vermicelli shaping device according to claim 3, characterized in that: The detection mechanism further comprises a control chamber (26), wherein the control chamber (26) is provided in the base (1), an electromagnet (27) is fixedly connected to the inner end wall of the control chamber (26), and the electromagnet (27) is connected to the moisture detector (24) via a PLC control circuit, a conductive plate (28) is slidably connected in the control chamber (26), a plurality of springs (29) are fixedly connected between the conductive plate (28) and the inner end wall of the control chamber (26), a conductive ring (30) is fixedly connected to the inner side wall of the control chamber (26), and the conductive ring (30), the conductive plate (28), and the electromagnetic valve (20) are electrically connected via a wire.

5. The instant vermicelli shaping device according to claim 1, characterized in that: The column (5) is provided with an opening and closing mechanism, which includes a second groove (31) which is provided on the upper surface of the column (5). The column (5) is sealingly and slidingly connected to a fifth tube (32) through the second groove (31). The fifth tube (32) is fixedly connected to a sealing cover (40) through the second groove. The column (5) and the ring seat (17) are fixedly connected to a sixth tube (34) through the sixth tube (34). The second groove (31) is connected to the ring seat (17). A pressure relief valve (33) is provided in the fifth tube (32).

6. The instant vermicelli shaping device according to claim 5, characterized in that: The opening and closing mechanism further comprises a seventh tube (35), the seventh tube (35) being fixedly connected to the column (5) and extending into the second groove (31), the seventh tube (35) being sealingly and slidingly connected to a functional rod (36), and one end of the functional rod (36) located outside the seventh tube (35) being fixedly connected to a stopper (37).

7. The instant vermicelli shaping device according to claim 5, characterized in that: The inner side wall of the second groove (31) is provided with a plurality of limiting grooves (38), and the upright column (5) is sealed and slidably connected to a plurality of limiting blocks (39) through the limiting grooves (38), and the limiting blocks (39) are fixedly connected to the side wall of the fifth tube (32).

8. The instant vermicelli shaping device according to claim 5, characterized in that: A sealing rubber ring is fixedly connected to the lower surface of the sealing cover (40).

Citation Information

Patent Citations

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