Cooling water tank for vermicelli processing

By designing a transmission element in the vermicelli process cooling sink with impact dispersion mechanism combined with water fluctuations, the problem of bonding during vermicelli cooling is solved and high-quality vermicelli production is achieved.

CN222895399UActive Publication Date: 2025-05-23MINXIAN JINDA DIJING STARCH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421518355.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-30
Publication Date
2025-05-23
Estimated Expiration
2034-06-30

AI Technical Summary

Technical Problem

During the cooling process of the existing vermicelli process cooling device, multiple vermicelli are placed in contact with each other and squeezed in a cooling basket, causing the vermicelli to gradually solidify and bond together, affecting product quality.

Method used

A cooling water tank for vermicelli processing is designed, and a transmission element is used to combine the impact dispersion mechanism of water fluctuation. Through components such as rotating shaft, cam, slide seat, fixed shaft and impact roller, the vermicelli during the cooling process is dispersed and impacted to avoid bonding.

Benefits of technology

It effectively avoids the occurrence of bonding of vermicelli during cooling, improves product quality, and is easy to use.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222895399U_ABST
    Figure CN222895399U_ABST
Patent Text Reader

Abstract

The utility model discloses a cooling water tank for vermicelli processing. The cooling water tank comprises a cooling shell and an impact dispersion mechanism, vermicelli conveying grooves are formed in the upper ends of the left wall and the right wall of the cooling shell; the impact dispersion mechanism comprises rotating shafts II, cams, sliding seats, a fixed shaft and impact rollers, the rotating shafts II are uniformly and rotatably connected between the front wall and the rear wall of the cooling shell through bearings, the cams are arranged at the front ends and the rear ends of the rotating shafts II, sliding grooves are formed in protruding parts of the sides, close to the center of the cooling shell, of the cams, and the sliding seats are slidably connected into the sliding grooves; the cooling water tank for vermicelli processing further comprises a single-chip microcomputer, the single-chip microcomputer is arranged on the front side of the cooling shell, and the input end of the single-chip microcomputer is electrically connected with an external power source. The phenomenon of cooling and bonding among the vermicelli is avoided, and the use is convenient.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of vermicelli processing and cooling, in particular to a cooling water tank for vermicelli processing. Background Art

[0002] Vermicelli is a traditional specialty food made from sweet potatoes, potatoes, etc., which is processed into dry silk strips after pulping and precipitation. During the processing of vermicelli, it is necessary to cool it through a cooling device. The cooling water tank for some vermicelli processing includes a cooling water tank, a ventilation pipe, a cooling conveyor belt and a plurality of cooling baskets. The cooling conveyor belt is a chain-type annular belt conveyor belt, including two second chains, and the two second chains are connected by a second connecting rod; the cooling basket is fixedly arranged on the second connecting rod, and the spacing between adjacent cooling baskets is 10-15mm; the cooling conveyor belt and the cooling basket are arranged in the cooling water tank and immersed in the cooling water tank. The cooling water in the cooling water tank; the temperature of the cooling water is 25-35 degrees; the ventilation duct is provided with a plurality of ventilation holes, and the diameter of the ventilation holes is 1.0-1.5mm; the ventilation duct is immersed in the water of the cooling water tank, and is arranged at the bottom of the cooling water tank and below the cooling basket. This vermicelli cooling device only requires one person to monitor the temperature and time during the entire operation, and does not require manual lifting. It has high output, high production efficiency and good product quality. However, during the cooling process of the vermicelli by the device, multiple vermicelli are contacted and squeezed with each other and placed in a cooling basket. As the vermicelli gradually cools down, the vermicelli will gradually solidify and stick together, which needs to be improved. Utility Model Content

[0003] The technical problem to be solved by the utility model is to overcome the existing defects and provide a cooling water trough for vermicelli processing. The device can disperse the impact of vermicelli during the cooling process through transmission elements combined with water fluctuations to avoid cooling and sticking between vermicelli. It is easy to use and can effectively solve the problems in the background technology.

[0004] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a cooling water tank for vermicelli processing, comprising a cooling shell and an impact dispersion mechanism;

[0005] Cooling shell: vermicelli feeding troughs are provided on the upper ends of the left and right walls;

[0006] Impact dispersion mechanism: It includes a second rotating shaft, a cam, a slide, a fixed shaft and an impact roller. The second rotating shaft is evenly connected to the front and rear walls of the cooling shell through bearings. Cams are provided at both ends of the front and rear ends of the rotating shaft. The raised part of the cam close to the center of the cooling shell is provided with a slide groove. The inside of the slide groove is slidably connected with a slide. An impact roller is provided between two longitudinally adjacent slides through a fixed shaft. The device can disperse and impact the vermicelli in the cooling process through a transmission element combined with water fluctuations to avoid cooling and sticking between the vermicelli. It is easy to use.

[0007] Furthermore, it also includes a single chip microcomputer, which is arranged on the front side of the cooling shell. The input end of the single chip microcomputer is electrically connected to the external power supply, which is convenient for controlling electrical components.

[0008] Furthermore, a motor is provided on the front side of the cooling shell, the input end of the motor is electrically connected to the output end of the single-chip microcomputer, and the output shaft of the motor is fixedly connected to the front end of the second rotating shaft at the lower left end, so as to provide power for the device to perform dispersed impact on the vermicelli during the cooling process.

[0009] Furthermore, a temperature sensor is provided on the rear wall of the cooling shell, and the temperature sensor is bidirectionally electrically connected to the single-chip microcomputer to detect and upload the cooling water temperature of the vermicelli.

[0010] Furthermore, a water outlet pipe is penetrated through the lower end of the right wall of the cooling shell, and a solenoid valve is connected in series in the middle of the water outlet pipe. The input end of the solenoid valve is electrically connected to the output end of the single-chip microcomputer to automatically control the opening and closing of the water outlet pipe.

[0011] Furthermore, a uniformly distributed rotating shaft 1 is rotatably connected between the front and rear walls of the cooling shell via a bearing, and a limiting roller is provided on the outer side of the rotating shaft 1, so that the vermicelli in the cooling shell is in a horizontally stretched state.

[0012] Furthermore, the impact dispersion mechanism also includes a telescopic column, a spring and a transmission assembly. The telescopic column and the spring are both arranged between the slide groove and the adjacent slide seat. The springs are movably connected to the outer ends of the adjacent telescopic columns. A transmission assembly is provided between the two rotating shafts. The spring adaptively contracts to reduce the dispersion impact force of the impact roller on the vermicelli.

[0013] Furthermore, the transmission assembly includes pulley one, belt one, pulley two and belt two, the pulley one is arranged at the rear end of the rotating shaft two, the two adjacent pulley ones are connected by belt one transmission, the rear end of the upper rotating shaft two is provided with pulley two, and the pulleys two are connected by belt two transmission, so that the rotating shafts two rotate synchronously.

[0014] Furthermore, a protective cover is provided on the rear side of the cooling shell, and pulley one, belt one, pulley two and belt two are all located inside the protective cover, so as to provide transmission protection for the belt and the pulley.

[0015] Compared with the prior art, the beneficial effects of the utility model are: the cooling water tank for vermicelli processing has the following advantages:

[0016] When the vermicelli is cooled and moved by the external traction device, the single-chip microcomputer starts the motor to drive the second rotating shaft at the lower left end to rotate, and the belt transmission between the pulley and the belt makes the remaining second rotating shaft rotate synchronously. The second rotating shaft drives the cam to rotate, and the cam protrusion drives the impact roller to rotate. During the rotation of the impact roller, when the lower impact roller generates a vertical upward impact force on the vermicelli, the upper impact roller adjacent to it applies a vertical downward impact force to the vermicelli at this time. The vermicelli at the same position is impacted by the upper and lower vertical impact forces, combined with the water body fluctuation, so that the vermicelli is dispersed to avoid the vermicelli sticking during the cooling process. During the contact between the impact roller and the vermicelli, the telescopic end of the telescopic column and the spring elastically contract to avoid the vermicelli breaking due to excessive impact force. The cooling water trough for processing vermicelli can disperse the impact on the vermicelli during the cooling process through the transmission element combined with the water body fluctuation, and avoid the cooling and sticking phenomenon between the vermicelli. It is easy to use. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a schematic diagram of the structure of the utility model;

[0018] Figure 2 This is a schematic diagram of the rear structure of the utility model;

[0019] Figure 3 This is a schematic diagram of the internal structure of the rear side of the utility model;

[0020] Figure 4 It is a schematic diagram of the enlarged structure of point A of the utility model.

[0021] In the figure: 1 cooling shell, 2 single chip microcomputer, 3 vermicelli feeding trough, 4 rotating shaft 1, 5 limiting roller, 6 impact dispersion mechanism, 61 rotating shaft 2, 62 cam, 63 slide seat, 64 fixed shaft, 65 impact roller, 66 telescopic column, 67 spring, 68 transmission component, 681 pulley 1, 682 belt 1, 683 pulley 2, 684 belt 2, 7 shield, 8 motor, 9 temperature sensor, 10 water outlet pipe, 11 solenoid valve. DETAILED DESCRIPTION

[0022] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0023] See also Figure 1-4 , This embodiment provides a technical solution: a cooling water tank for vermicelli processing, comprising a cooling shell 1 and an impact dispersion mechanism 6;

[0024] Cooling shell 1: The upper ends of its left and right walls are provided with vermicelli feeding troughs 3, and also include a single-chip microcomputer 2, which is arranged on the front side of the cooling shell 1, and the input end of the single-chip microcomputer 2 is electrically connected to the external power supply. A motor 8 is arranged on the front side of the cooling shell 1, and the input end of the motor 8 is electrically connected to the output end of the single-chip microcomputer 2, and the output shaft of the motor 8 is fixedly connected to the front end of the rotating shaft 2 61 at the lower left end. A temperature sensor 9 is arranged on the rear wall of the cooling shell 1, and the temperature sensor 9 is bidirectionally electrically connected to the single-chip microcomputer 2. A water outlet pipe 10 is penetrated through the lower end of the right wall of the cooling shell 1, and a solenoid valve 11 is connected in series in the middle of the water outlet pipe 10, and the input end of the solenoid valve 11 is electrically connected to the output end of the single-chip microcomputer 2. A uniformly distributed rotating shaft 4 is rotatably connected between the front and rear walls of the cooling shell 1 through bearings, and a limiting roller 5 is arranged on the outer side of the rotating shaft 4. Cooling water is stored in the cooling shell 1 to feed the vermicelli. When performing cooling processing, the vermicelli is first passed from left to right in sequence through the vermicelli feeding trough 3, the outer lower end of the limiting roller 5 and between the two vertically adjacent rotating shafts 61, and the right end of the vermicelli is driven by an external traction device to cool and transport the vermicelli. When the vermicelli is subjected to external traction, the vermicelli in the cooling shell 1 is in a horizontally stretched state through the guiding limit of the two limiting rollers 5. During the cooling process of the vermicelli, the single-chip microcomputer 2 starts the temperature sensor 9 to detect the water temperature in the device, and transmits the result to the single-chip microcomputer 2 in the form of an electrical signal, thereby detecting the cooling water temperature of the vermicelli. When the cooling water temperature is higher than a certain value, the single-chip microcomputer 2 opens the solenoid valve 11 to discharge the cooling water in the device, and then transports the cooling water into the cooling shell 1 through the external water injection pipe, thereby replacing the cooling water for the vermicelli.

[0025] Impact dispersion mechanism 6: It includes a second rotating shaft 61, a cam 62, a slide 63, a fixed shaft 64 and an impact roller 65. The second rotating shaft 61 is evenly connected to the front and rear walls of the cooling shell 1 through a bearing. Cams 62 are provided at both ends of the front and rear ends of the second rotating shaft 61. The cam 62 is provided with a slide groove at a raised part of the side close to the center of the cooling shell 1. The slide 63 is slidably connected inside the slide groove. An impact roller 65 is provided between two longitudinally adjacent slides 63 through a fixed shaft 64. The impact dispersion mechanism 6 also includes a telescopic column 66, a spring 67 and a transmission assembly 68. The telescopic column 66 and the spring 67 are arranged between the slide groove and the adjacent slide 63. The spring 67 is It is movably connected with the outer end of the adjacent telescopic column 66, and a transmission component 68 is provided between the rotating shaft 61, and the transmission component 68 includes a pulley 1 681, a belt 1 682, a pulley 2 683 and a belt 2 684. The pulley 1 681 is arranged at the rear end of the rotating shaft 61, and the two adjacent pulleys 1 681 are connected by the belt 1 682. The rear end of the rotating shaft 2 61 on the upper side is provided with a pulley 2 683, and the pulleys 2 683 are connected by the belt 2 684. A protective cover 7 is provided on the rear side of the cooling shell 1, and the pulley 1 681, the belt 1 682, the pulley 2 683 and the belt 2 684 are all located inside the protective cover 7. During the cooling process, the single chip computer 2 starts the motor 8 to drive the rotating shaft 2 61 at the lower left end to rotate, and the belt transmission between the pulley 1 681 and the belt 1 682 and the belt transmission between the pulley 2 683 and the belt 2 684 are used to make the remaining rotating shaft 2 61 rotate synchronously. The respective diameters of the pulley 1 681 and the pulley 2 683 are different, so the belt transmission of the belt 1 682 and the belt 2 684 can be realized. The rotating shaft 2 61 drives the cam 62 to rotate, and the raised part of the cam 62 drives the impact roller 65 to rotate. During the rotation of the impact roller 65, when the impact roller 65 on the lower side generates a vertical upward impact force on the vermicelli, the upper side adjacent to it The impact roller 65 applies a vertical downward impact force to the vermicelli at this time, and the vermicelli in the same position is impacted by the coordination of the upper and lower vertical impact forces. Combined with the fluctuation of the water body, the vermicelli is dispersed to avoid the vermicelli sticking during the cooling process. During the contact between the impact roller 65 and the vermicelli, the telescopic end of the telescopic column 66 and the spring 67 elastically contract to avoid the vermicelli breakage due to excessive impact force. The pulley and belt are protected by the protective cover 7. The cooling water trough for vermicelli processing can disperse the impact on the vermicelli during the cooling process through the transmission element combined with the fluctuation of the water body to avoid the cooling and sticking phenomenon between the vermicelli. It is easy to use.

[0026] The working principle of a cooling water trough for processing vermicelli provided by the utility model is as follows: cooling water is stored in a cooling shell 1. When the vermicelli is cooled, the vermicelli is first passed through the vermicelli feeding trough 3, the lower end of the outer side of the limiting roller 5 and the two vertically adjacent rotating shafts 61 from left to right in sequence. The right end of the vermicelli is driven by an external traction device to cool and transport the vermicelli. When the vermicelli is subjected to external traction, the vermicelli is guided and limited by the two limiting rollers 5 so that the vermicelli in the cooling shell 1 is in a horizontally stretched state. During the strip cooling process, the single chip computer 2 starts the motor 8 to drive the lower left end of the shaft 2 61 to rotate, and the remaining shaft 2 61 is synchronously rotated through the belt transmission between the pulley 1 681 and the belt 1 682 and the belt transmission between the pulley 2 683 and the belt 2 684. The respective diameters of the pulley 1 681 and the pulley 2 683 are different, which can realize the belt transmission of the belt 1 682 and the belt 2 684. The shaft 2 61 drives the cam 62 to rotate, and the raised part of the cam 62 drives the impact roller 65 During the rotation of the impact roller 65, when the impact roller 65 on the lower side generates a vertical upward impact force on the vermicelli, the impact roller 65 on the upper side adjacent to it applies a vertical downward impact force to the vermicelli at this time, and the vermicelli at the same position is impacted by the coordination of the upper and lower vertical impact forces, combined with the fluctuation of the water body, so that the vermicelli are dispersed to avoid the adhesion of the vermicelli during the cooling process. During the contact between the impact roller 65 and the vermicelli, the telescopic end of the telescopic column 66 and the spring 67 elastically contract to avoid the breakage of the vermicelli due to excessive impact force. The pulley and the belt are protected by the protective cover 7. During the cooling process of the vermicelli, the single-chip microcomputer 2 starts the temperature sensor 9 to detect the water temperature in the device, and transmits the result to the single-chip microcomputer 2 in the form of an electrical signal, so as to detect the cooling water temperature of the vermicelli. When the cooling water temperature is higher than a certain value, the single-chip microcomputer 2 opens the solenoid valve 11 to discharge the cooling water in the device, and then transports the cooling water to the cooling shell 1 through the external water injection pipe, so as to replace the cooling water for the vermicelli.

[0027] It is worth noting that the single chip microcomputer 2 disclosed in the above embodiment can adopt MSP430, the motor 8 can adopt Y80M1-2, the temperature sensor 9 can adopt AM2303, and the solenoid valve 11 can adopt ZQDF-3Y-40. The single chip microcomputer 2 controls the motor 8, the temperature sensor 9 and the solenoid valve 11 using methods commonly used in the prior art.

[0028] The above description is only an embodiment of the present invention, and does not limit the patent scope of the present invention. Any equivalent structure or equivalent process transformation made by using the contents of the specification and drawings of the present invention, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.

Claims

1. A cooling water tank for vermicelli processing, characterized in that: It comprises a cooling shell (1) and an impact dispersion mechanism (6); The cooling shell (1) has vermicelli feeding troughs (3) formed at the upper ends of the left and right walls; The impact dispersion mechanism (6) comprises a second rotating shaft (61), a cam (62), a slide seat (63), a fixed shaft (64) and an impact roller (65). The second rotating shaft (61) is evenly rotatably connected between the front and rear walls of the cooling shell (1) through a bearing. Cams (62) are provided at both the front and rear ends of the second rotating shaft (61). A slide groove is provided at a raised portion of the cam (62) close to the center of the cooling shell (1). The slide seat (63) is slidably connected inside the slide groove. An impact roller (65) is provided between two longitudinally adjacent slide seats (63) through a fixed shaft (64).

2. The cooling water tank for processing vermicelli according to claim 1, characterized in that: It also comprises a single chip computer (2), wherein the single chip computer (2) is arranged on the front side of the cooling shell (1), and an input end of the single chip computer (2) is electrically connected to an external power supply.

3. The cooling water tank for processing vermicelli according to claim 2, characterized in that: A motor (8) is provided on the front side of the cooling shell (1); the input end of the motor (8) is electrically connected to the output end of the single-chip computer (2); and the output shaft of the motor (8) is fixedly connected to the front end of the second rotating shaft (61) at the lower left end.

4. The cooling water tank for processing vermicelli according to claim 2, characterized in that: A temperature sensor (9) is provided on the rear wall of the cooling shell (1), and the temperature sensor (9) is bidirectionally electrically connected to the single-chip computer (2).

5. The cooling water tank for processing vermicelli according to claim 2, characterized in that: A water outlet pipe (10) is provided through the lower end of the right wall of the cooling shell (1), a solenoid valve (11) is connected in series in the middle of the water outlet pipe (10), and an input end of the solenoid valve (11) is electrically connected to an output end of the single chip computer (2).

6. The cooling water tank for processing vermicelli according to claim 1, characterized in that: A uniformly distributed rotating shaft (4) is rotatably connected between the front and rear walls of the cooling shell (1) via a bearing, and a limiting roller (5) is provided on the outer side of the rotating shaft (4).

7. The cooling water tank for processing vermicelli according to claim 1, characterized in that: The impact dispersion mechanism (6) further comprises a telescopic column (66), a spring (67) and a transmission assembly (68); the telescopic column (66) and the spring (67) are both arranged between the slide groove and the adjacent slide seat (63); the spring (67) is movably sleeved with the outer end of the adjacent telescopic column (66); and a transmission assembly (68) is arranged between the second rotating shaft (61).

8. The cooling water tank for processing vermicelli according to claim 7, characterized in that: The transmission assembly (68) comprises a pulley 1 (681), a belt 1 (682), a pulley 2 (683) and a belt 2 (684); the pulley 1 (681) is arranged at the rear end of the rotating shaft 2 (61); two adjacent pulleys 1 (681) are connected to each other through the belt 1 (682); the rear end of the rotating shaft 2 (61) on the upper side is provided with a pulley 2 (683); the pulleys 2 (683) are connected to each other through the belt 2 (684).

9. The cooling water tank for processing vermicelli according to claim 8, characterized in that: A protective cover (7) is provided on the rear side of the cooling shell (1), and pulley one (681), belt one (682), pulley two (683) and belt two (684) are all located inside the protective cover (7).