Uniform cooling device for sesame paste production
Through the design of the twisted dragon conveying cylinder and the booster tube, the lateral movement and atomization spraying technology of the twisted dragon blades are used to solve the problems of low heat dissipation efficiency and uneven material conveying in sesame paste production, achieving uniform cooling and efficient conveying, and reducing equipment maintenance costs.
Patent Information
- Application Number
- CN202510810576.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-17
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2045-06-17
AI Technical Summary
The existing sesame paste production equipment has low heat dissipation efficiency and slow internal heat dissipation, which makes it difficult to convey viscous sesame paste vertically, easily stagnant or decline, and cannot achieve uniform cooling.
The twisted dragon conveyor cylinder is combined with the booster tube, and the twisted dragon blades are reciprocating horizontally. The cooling water is sprayed through the atomization spray head at the bottom of the booster tube, combined with the spray vibration driving mechanism and the knock column design, so as to achieve the horizontal uniform cooling of the material and prevent adhesion.
It realizes uniform cooling of sesame paste, avoids local temperature difference stress and material agglomeration, improves heat exchange efficiency, reduces equipment cleaning frequency and labor costs, and is suitable for high-precision material processing scenarios.
Smart Images

Figure CN120466928A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of sesame paste cooling devices, in particular to a uniform cooling device for sesame paste production. Background Art
[0002] During conventional sesame paste production, heat is dissipated naturally, but the heat dissipation efficiency is low. At the same time, heat can only be dissipated on the surface of the sesame paste, and the heat dissipation efficiency inside the sesame paste is slow.
[0003] To solve the above problems, after searching, a Chinese patent with publication number CN216954142U discloses a cooling device for sesame paste production, which includes: a cooling device for sesame paste production, comprising a material tank, a cooling cylinder is fixed on the top inner wall of the material tank, a vertical pipe is rotatably installed at the bottom of the cooling cylinder, stirring rods are installed on both sides of the vertical pipe, a transmission box is installed at the bottom of the cooling cylinder, the vertical pipe is rotatably connected to the transmission box, a motor is installed on one side of the material tank, a driving rod is rotatably installed between the material tank and the transmission box, the output shaft of the motor is fixedly connected to the driving rod, and the driving rod is transmission-connected to the vertical pipe, a conveying screw is rotatably installed on the bottom inner wall of the material tank, the conveying screw extends into the vertical pipe, and a motor for driving the conveying screw to rotate is provided at the bottom of the material tank;
[0004] Although the above device can realize the delivery of cold water from the water inlet pipe at a low position and discharge from the discharge pipe at a high position, which has a good cooling effect, in actual use, the sesame paste enters the interior of the S-shaped cooling pipe 12 under the drive of the conveying screw. The conveying screw and the cooling pipe 12 are both arranged vertically. When the conveying screw vertically conveys the viscous sesame paste, the sesame paste needs to overcome its own gravity, and the direction of gravity is vertically downward. The viscous sesame paste has extremely poor fluidity, and its viscosity is usually 10,000-50,000 cP. The internal intermolecular force is strong, and it is difficult to form a continuous upward displacement against gravity. When the screw pushes the material upward, gravity will cause the material to generate a downward "drag force", and the sesame paste will stagnate or slide. It is impossible to vertically convey the sesame paste. Summary of the Invention
[0005] The object of the present invention is to provide a uniform cooling device for sesame paste production to solve the defects mentioned in the above background technology.
[0006] To achieve the above-mentioned purpose, a uniform cooling device for sesame paste production is provided, comprising a cooling table, a support frame is fixedly provided at the bottom of the cooling table, mounting seats are installed on both sides of the surface of the cooling table, and an auger conveying cylinder is movably installed on the cooling table through two groups of mounting seats, an auger conveying cylinder is movably provided with auger blades, a main shaft is fixedly provided in the middle of the auger blades, the end of the main shaft passes through the side wall of the auger conveying cylinder and is fixedly connected to the pulley, a driving plate is fixedly provided on the outside of the pulley, collecting boxes are fixedly provided on both sides of the cooling table, boosting pipes are movably installed on both sides of the surface of the collecting box through brackets, a plurality of groups of atomizing nozzles are evenly installed on the bottom of the boosting pipe, the distance between two adjacent groups of atomizing nozzles is consistent, and a high-pressure water inlet hose is installed on the boosting pipe.
[0007] Furthermore, a circulation pipe is installed at the bottom of the collecting box, and the circulation pipe is set in an "L" shape. The collecting box is wrapped on both sides of the boosting pipe and the auger conveying cylinder. The boosting pipe is set directly above the auger conveying cylinder, and the boosting pipe and the auger conveying cylinder are set in parallel; the cross-section of the collecting box is set in an isosceles trapezoid.
[0008] Furthermore, circular perforations are provided on both side walls of the collection box, and sealing seats are installed inside the circular perforations. At the same time, an auger conveying cylinder is fixedly provided on the inner ring of the sealing seat, and the auger conveying cylinder and the collection box are sealed by the sealing seat. A discharge pipe is installed at the end of the auger conveying cylinder away from the pulley, and the discharge pipe is set in an "L" shape.
[0009] Furthermore, the pulley is driven to rotate through a reducer, an active transmission wheel and a belt, and the pulley drives the boost pipe to rotate back and forth through a spray vibration drive mechanism. Multiple groups of vibration tables are evenly installed on the circumferential outer wall of the boost pipe. The boost pipe is fixed to the drive shaft through a rotating shaft. The rotating shaft at the end of the boost pipe is set through a limit frame, and the bottom of the limit frame is fixedly connected to a mounting seat.
[0010] Furthermore, the vibration table includes a base, a transmission plate, a knocking column and a force-bearing cylinder. The base has a C-shaped cross-section and is screwed and fixed to the circumferential side wall of the boost pipe. Transmission plates are fixed on both sides of the bottom of the base, and the transmission plates are arc-shaped.
[0011] Furthermore, the two groups of transmission plates are symmetrical structures about the central axis of the boost pipe, and the bottoms of the two groups of transmission plates are fixedly provided with knocking columns, and force-bearing cylinders are fixedly installed on both sides of the knocking columns.
[0012] Furthermore, the spray vibration drive mechanism, drive shaft, interference plate, interference hole, drive plate and interference column, the interference plate is fixedly installed on the end of the drive shaft, the interference hole is opened at the bottom of the interference plate, the interference hole is adapted to the size of the interference column, and the interference column is inserted into the inside of the interference hole.
[0013] Furthermore, an interference column is fixedly connected to the bottom of the driving plate, and the interference column and the pulley are eccentrically arranged. At the same time, the rotation of the pulley drives the boost pipe to rotate back and forth through the driving plate, the interference column, the interference hole, the interference plate and the driving shaft.
[0014] Furthermore, a spiral groove is provided on the circumferential outer wall of the auger conveying cylinder, and the depth of the spiral groove is 1.5 mm. At the same time, the sesame paste inside the auger conveying cylinder is reciprocated by the auger blades during the rotation process, and a sauce inlet pipe is installed on the upper left side of the auger conveying cylinder.
[0015] Furthermore, both sides of the bottom of the cooling platform are supported and fixed by support frames, the support frames are set in a "T" shape, and base bolt positioning holes are opened inside both ends of the support frames; the cooling water inside the collection box is added to the cooling water tower through a circulation pipe and an additional pump for cooling, and then enters the inside of the boost pipe through a circulation pump and a high-pressure water inlet hose.
[0016] Compared with the prior art, the present invention has the following beneficial effects:
[0017] 1. The present invention changes the rotation direction of the auger blades, causing the material inside the auger conveying barrel to reciprocate laterally. At the same time, cooling water enters the interior of the booster pipe and is sprayed from a large number of atomizing nozzles at the bottom of the auger conveying barrel. The water is sprayed onto the circumferential outer wall of the auger conveying barrel, thereby evenly cooling the material in the reciprocating motion inside the auger conveying barrel. When the auger blades rotate clockwise and counterclockwise, they act like manual stirring, making it easier to evenly distribute the material than unidirectional stirring. The auger conveying barrel is arranged horizontally, and the auger blades inside it can smoothly transport the material back and forth.
[0018] 2. In this invention, cooling water is sprayed out through a large number of atomizing nozzles at the bottom of the booster pipe, forming a fine water mist. The contact area with the outer wall of the auger conveying cylinder is several times larger than that of traditional water spraying methods, significantly improving heat exchange efficiency. The water mist evenly covers the cylinder wall, avoiding material agglomeration or temperature stress caused by localized uneven cooling, and ensuring overall material temperature consistency.
[0019] 3. The present invention enables the boost pipe to perform reciprocating deflection under the action of the spray vibration drive mechanism, which can increase the spray area and cooling area of the atomizing nozzle on the circumferential outer wall of the auger conveyor cylinder. The spray vibration drive mechanism dynamically changes the spray angle of the atomizing nozzle, breaking through the limitations of fixed spraying, covering a larger circumferential area of the outer wall of the auger conveyor cylinder, avoiding local high-temperature spots, reducing temperature differential stress caused by spray blind spots, and extending the cylinder life. It is particularly suitable for long-distance or large-diameter conveyor cylinders. The spray vibration drive mechanism makes the spray droplets more dispersed, increasing the contact area with the cylinder wall and accelerating heat exchange.
[0020] 4. The present invention can sequentially beat the two sides of the surface of the auger conveying cylinder through multiple groups of beating columns located on both sides of the boosting tube, and can beat the sesame paste raw materials inside the auger conveying cylinder to prevent the raw materials from adhering to the inner wall of the auger conveying cylinder. When the arc-shaped beating columns deflect back and forth with the boosting tube, they beat the outer wall of the auger conveying cylinder at a high frequency, and the mechanical vibration generated can destroy the adhesion layer formed by sesame paste on the cylinder wall; when the viscosity of sesame paste increases due to lowering of temperature or evaporation of water, the vibration can reduce the adhesion between the material and the cylinder wall, avoiding material deterioration or decreased conveying efficiency due to long-term adhesion; the beating vibration can cause micro-disturbance of sesame paste in the cylinder, breaking up local accumulation formed by uneven viscosity. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a front view schematic diagram of the structure of the present invention;
[0022] Figure 2 A bottom view of the structure of the present invention;
[0023] Figure 3 A top view of the structure of the present invention;
[0024] Figure 4 is a cross-sectional view of the structure of the present invention;
[0025] Figure 5 The structure of the present invention Figure 4 Rear view;
[0026] Figure 6 The structure of the present invention Figure 4 Top view of .
[0027] Reference numerals
[0028] 1. Cooling table; 2. Collection box; 3. Circulation pipe; 4. Support frame; 5. Auger conveyor cylinder; 51. Spiral groove; 6. Discharge pipe; 7. Sauce inlet pipe; 8. Auger blade; 81. Main shaft; 82. Pulley; 9. Mounting seat; 10. Limiting frame; 11. Spray vibration drive mechanism; 111. Drive shaft; 112. Interference plate; 113. Interference hole; 114. Drive plate; 115. Interference column; 12. Booster pipe; 121. Vibration table; 1211. Holder; 1212. Transmission plate; 1213. Beating column; 1214. Force cylinder; 122. Atomizing nozzle. DETAILED DESCRIPTION
[0029] Specific implementation method 1: Please refer to Figures 1-6The present invention provides a technical solution: a uniform cooling device for sesame paste production, comprising a cooling table 1, a supporting frame 4 is fixedly provided at the bottom of the cooling table 1, mounting seats 9 are installed on both sides of the surface of the cooling table 1, and an auger conveying cylinder 5 is movably installed on the cooling table 1 through two groups of mounting seats 9. An auger conveying cylinder 5 is movably provided with an auger blade 8, a main shaft 81 is fixedly provided at the middle part of the auger blade 8, and the end of the main shaft 81 passes through the side wall of the auger conveying cylinder 5 and is fixedly connected to the pulley 82, a driving plate 114 is fixedly provided on the outside of the pulley 82, a collecting box 2 is fixedly provided on both sides of the cooling table 1, a boosting pipe 12 is movably installed on both sides of the surface of the collecting box 2 through a bracket, a plurality of groups of atomizing nozzles 122 are evenly installed on the bottom of the boosting pipe 12, the distance between two adjacent groups of atomizing nozzles 122 is consistent, and a high-pressure water inlet hose is installed on the boosting pipe 12.
[0030] Working principle: When in use, the material that needs to be cooled is put into the interior of the auger conveying cylinder 5 through the sauce inlet pipe 7. At this time, the pulley 82 is driven to rotate through the reducer, the active transmission wheel and the belt, so that the main shaft 81 and the auger blade 8 inside the auger conveying cylinder 5 rotate, and the logistics inside the auger conveying cylinder 5 can be transported horizontally. At the same time, the auger blade 8 rotates in the opposite direction, so that the material inside the auger conveying cylinder 5 moves in the opposite direction. By changing the rotation direction of the auger blade 8, the material inside the auger conveying cylinder 5 is made to reciprocate horizontally. At the same time, cooling water enters the interior of the booster pipe 12 and is sprayed out from a large number of atomizing nozzles 122 at the bottom thereof, and is sprayed on the auger. On the circumferential outer wall of the conveying cylinder 5, the material in the horizontal reciprocating motion inside the auger conveying cylinder 5 is evenly cooled; the rotation and reverse rotation design of the main shaft 81 and the auger blades 8 inside the auger conveying cylinder 5, combined with the atomizing cooling water system, forms an integrated device with the functions of conveying, mixing and cooling. The forward and reverse rotation of the auger blades 8 can push the material back and forth in the auger conveying cylinder 5, breaking the problem of material accumulation or stratification due to inertia in traditional one-way transportation; when cooling the sesame paste raw materials, the reciprocating motion can allow different ingredients to be mixed synchronously during the transportation process, avoiding the subsequent separate configuration of mixing equipment; when the auger blades 8 rotate clockwise and counterclockwise, it is similar to the stirring action back and forth during manual stirring, which is better than One-way stirring makes it easier to distribute materials evenly, and is especially suitable for scenarios that require mixing while conveying; by changing the rotation direction of the auger blades 8, the conveying direction of the material can be adjusted or the conveying can be suspended as needed to meet the needs of different process flows; in the sesame paste processing production line, when it is necessary to temporarily store materials or adjust the conveying rhythm, this can be achieved by controlling the rotation direction without stopping the machine; cooling water is sprayed out through a large number of atomizing nozzles 122 at the bottom of the booster pipe 12 to form a fine water mist, and the contact area with the outer wall of the auger conveying cylinder 5 is increased several times compared with the traditional water spraying method, and the heat exchange efficiency is significantly improved. The water mist evenly covers the cylinder wall, which can avoid material agglomeration or temperature difference stress caused by local uneven cooling, and ensure the overall temperature consistency of the material; compared with continuous water flow, atomized water spray can reduce 50 % or more of water consumption. Due to the high evaporation efficiency of water mist, the unevaporated water can also be reused through the recovery system, which is especially suitable for industrial scenarios with limited water resources; there is no additional energy-consuming equipment during the cooling process, and the evaporation of water mist can reduce the ambient temperature and improve the working conditions in the workshop; the conveying, mixing and cooling functions are completed in the same auger conveyor barrel 5. Compared with the combination of traditional conveying equipment, mixing equipment and cooling equipment, it can save workshop space and reduce equipment procurement and installation costs; through the innovative combination of mechanical movement and heat exchange, while ensuring the material conveying efficiency, it achieves the dual optimization of mixing uniformity and cooling effect, and at the same time has the engineering advantages of energy saving, space saving, easy maintenance, etc., which is suitable for industrial scenarios with high requirements for material processing accuracy and environmental control;
[0031] When the boost pipe 12 sprays and cools the surface of the auger conveying cylinder 5 through a large number of atomizing nozzles 122 at the bottom, the boost pipe 12 can perform reciprocating deflection work under the action of the spray vibration drive mechanism 11, which can increase the spraying area and cooling area of the atomizing nozzle 122 on the circumferential outer wall of the auger conveying cylinder 5. The spray vibration drive mechanism 11 makes the spray angle of the atomizing nozzle 122 dynamically change, breaking through the limitation of fixed spraying, covering a larger circumferential area of the outer wall of the auger conveying cylinder 5, avoiding local high temperature points; reducing the temperature difference stress caused by spraying dead corners, extending the life of the cylinder, and is particularly suitable for long-distance or large-diameter conveying cylinders; the spray vibration drive mechanism 11 makes the spray droplets more dispersed, increases the contact area with the cylinder wall, and accelerates heat exchange; under the same flow rate, dynamic spraying has a higher utilization rate than static spraying, reducing the waste of cooling medium; periodic deflection can flush the residue on the outer wall of the cylinder, and the deflection of the boost pipe 12 is achieved by using the existing drive mechanism without the need for an additional complex control system;
[0032] The boost pipe 12 is reciprocated in the following manner: when the pulley 82 rotates, the interference post 115 eccentrically arranged thereon performs a circular motion, causing the interference post 115 to move inside the interference hole 113, driving the interference plate 112 to reciprocate around the drive shaft 111, thereby achieving reciprocating deflection of the boost pipe 12;
[0033] When the boost pipe 12 is reciprocatingly deflected, a large number of holders 1211 are provided on it, and arc-shaped knocking columns 1213 are provided on both sides of the holder 1211. The multiple groups of knocking columns 1213 located on both sides of the boost pipe 12 can tap on both sides of the surface of the auger conveying cylinder 5 in turn, and can knock the sesame paste raw materials inside the auger conveying cylinder 5 to prevent the raw materials from adhering to the inner wall of the auger conveying cylinder 5. When the arc-shaped knocking columns 1213 reciprocate with the boost pipe 12, they tap the outer wall of the auger conveying cylinder 5 at a high frequency, and the mechanical vibration generated can destroy the adhesion layer formed by sesame paste on the cylinder wall; when the viscosity of sesame paste increases due to lowering of temperature or evaporation of water, the vibration can reduce the adhesion between the material and the cylinder wall, and avoid deterioration of the material or reduction of conveying efficiency due to long-term adhesion; the beating vibration can make the sesame paste in the cylinder produce The vibration can generate micro-disturbance to break up the local accumulation caused by uneven viscosity. For example, the material close to the cylinder wall solidifies first due to rapid heat dissipation. In the transportation of sesame paste, vibration can improve the fluidity of the material, ensure the stable transportation volume, and avoid the fluctuation of transportation volume caused by adhesion. When traditional auger conveys viscous materials, it is necessary to stop the machine every shift to clean the cylinder wall, and the beating design can extend the cleaning cycle to 3-5 days. Taking the sesame paste production line with an average daily production of 8 hours as an example, the cleaning hours can be reduced by about 200-300 hours per year, reducing labor costs while improving equipment utilization. The beating column 1213 adopts a cylindrical design. When beating, surface contact is used instead of point contact to avoid local impact damage to the cylinder wall. If high-protein materials such as sesame paste adhere to the cylinder wall for a long time, they are prone to become rancid due to microbial reproduction. The beating design can greatly reduce the amount of residue on the cylinder wall.
[0034] Specific embodiment 2: This embodiment is a further limitation of specific embodiment 1. A circulation pipe 3 is installed at the bottom of the collecting box 2. The circulation pipe 3 is set in an "L" shape. The collecting box 2 is wrapped on both sides of the boosting pipe 12 and the auger conveying cylinder 5. The boosting pipe 12 is set directly above the auger conveying cylinder 5. The boosting pipe 12 and the auger conveying cylinder 5 are set in parallel; the cross-section of the collecting box 2 is set in an isosceles trapezoid.
[0035] Specific embodiment three: This embodiment is a further limitation of specific embodiment two. Circular through-holes are provided on both side walls of the collecting box 2, and sealing seats are installed inside the circular through-holes. At the same time, an auger conveying cylinder 5 is fixedly provided on the inner ring of the sealing seat. The auger conveying cylinder 5 and the collecting box 2 are sealed by the sealing seat. A discharge pipe 6 is installed at the end of the auger conveying cylinder 5 away from the pulley 82, and the discharge pipe 6 is set in an "L" shape.
[0036] Specific embodiment four: This embodiment is a further limitation of specific embodiment one. The pulley 82 is driven to rotate by a reducer, an active transmission wheel and a belt. The pulley 82 drives the boost pipe 12 to rotate back and forth through the spray vibration drive mechanism 11. Multiple groups of vibration tables 121 are evenly installed on the circumferential outer wall of the boost pipe 12. The boost pipe 12 is fixed to the drive shaft 111 through a rotating shaft. The rotating shaft at the end of the boost pipe 12 is set through the limit frame 10, and the bottom of the limit frame 10 is fixedly connected to the mounting seat 9.
[0037] Specific embodiment five: This embodiment is a further limitation of specific embodiment one. The vibration table 121 includes a base 1211, a transmission plate 1212, a knocking column 1213 and a force-bearing cylinder 1214. The base 1211 has a C-shaped cross-section and is screwed and fixed on the circumferential side wall of the boost pipe 12. Transmission plates 1212 are fixed on both sides of the bottom of the base 1211, and the transmission plates 1212 are arranged in an arc shape.
[0038] Specific embodiment six: This embodiment is a further limitation of specific embodiment five. The two groups of transmission plates 1212 are symmetrical structures about the central axis of the boost pipe 12. The bottoms of the two groups of transmission plates 1212 are fixedly provided with knocking columns 1213, and force-bearing cylinders 1214 are fixedly installed on both sides of the knocking columns 1213.
[0039] Specific embodiment seven: This embodiment is a further limitation of specific embodiment four, including a spray vibration drive mechanism 11, a drive shaft 111, an interference plate 112, an interference hole 113, a drive plate 114 and an interference column 115. The interference plate 112 is fixedly installed on the end of the drive shaft 111, and an interference hole 113 is provided at the bottom of the interference plate 112. The interference hole 113 is adapted to the size of the interference column 115, and the interference column 115 is inserted into the inside of the interference hole 113.
[0040] Specific embodiment eight: This embodiment is a further limitation of specific embodiment eight. The bottom of the driving plate 114 is fixedly connected to an interference column 115, and the interference column 115 and the pulley 82 are eccentrically arranged. At the same time, the pulley 82 rotates through the driving plate 114, the interference column 115, the interference hole 113, the interference plate 112 and the driving shaft 111 to drive the boost pipe 12 to rotate reciprocatingly.
[0041] Specific embodiment nine: This embodiment is a further limitation of specific embodiment one. A spiral groove 51 is provided on the circumferential outer wall of the auger conveying cylinder 5. The depth of the spiral groove 51 is 1.5 mm. At the same time, the sesame paste inside the auger conveying cylinder 5 is reciprocated by the auger blades 8 during the rotation process. A sauce inlet pipe 7 is installed on the upper left side of the auger conveying cylinder 5.
[0042] A spiral groove 51 is provided on the circumferential outer wall of the auger conveying cylinder 5. The spiral groove 51 is processed on the surface of the outer cylinder so that the spray water flows along the spiral groove 51, simulating the conveying characteristics of the auger blades, enhancing the relative movement of the water flow and the outer cylinder, and improving the heat exchange efficiency; the spiral groove 51 can cause the water flow to generate vortexes, destroy the boundary layer on the surface of the outer cylinder of the auger conveying cylinder 5, and improve the heat dissipation coefficient; it can enhance the flow path of the cooling water and improve the heat exchange efficiency.
[0043] Specific embodiment ten: This embodiment is a further limitation of specific embodiment one. Both sides of the bottom of the cooling platform 1 are supported and fixed by support frames 4. The support frames 4 are "T"-shaped, and base bolt positioning holes are opened inside both ends of the support frames 4. The cooling water inside the collection box 2 is added to the cooling water tower through the circulation pipe 3 and the additional pump for cooling, and then enters the inside of the boost pipe 12 through the circulation pump and the high-pressure water inlet hose.
Claims
1. A uniform cooling device for sesame paste production, comprising a cooling table (1), characterized in that: A support frame (4) is fixedly provided at the bottom of the cooling table (1), and mounting seats (9) are installed on both sides of the surface of the cooling table (1). At the same time, an auger conveying cylinder (5) is movably installed on the cooling table (1) through two groups of mounting seats (9), and a dragon blade (8) is movably provided inside the auger conveying cylinder (5). A main shaft (81) is fixedly provided in the middle of the dragon blade (8), and the end of the main shaft (81) passes through the side wall of the auger conveying cylinder (5) and is fixedly connected to the pulley (82). A driving plate (114) is fixedly provided on the outside of the pulley (82). Collection boxes (2) are fixedly provided on both sides of the cooling table (1), and boosting pipes (12) are movably installed on both sides of the surface of the collection box (2) through brackets. A plurality of groups of atomizing nozzles (122) are evenly installed on the bottom of the boosting pipe (12), and the distance between two adjacent groups of atomizing nozzles (122) is consistent. A high-pressure water inlet hose is installed on the boosting pipe (12).
2. The uniform cooling device for sesame paste production according to claim 1, characterized in that: A circulation pipe (3) is installed at the bottom of the collection box (2), and the circulation pipe (3) is set in an "L" shape. The collection box (2) is wrapped around both sides of the boosting pipe (12) and the auger conveying cylinder (5). The boosting pipe (12) is set directly above the auger conveying cylinder (5), and the boosting pipe (12) and the auger conveying cylinder (5) are set in parallel; the cross-section of the collection box (2) is set in an isosceles trapezoidal shape.
3. The uniform cooling device for sesame paste production according to claim 2, characterized in that: Circular through-holes are provided on both side walls of the collecting box (2), and sealing seats are installed inside the circular through-holes. Meanwhile, an auger conveying cylinder (5) is fixedly provided on the inner ring of the sealing seat. The auger conveying cylinder (5) and the collecting box (2) are sealed by the sealing seat. A discharge pipe (6) is installed at the end of the auger conveying cylinder (5) away from the pulley (82), and the discharge pipe (6) is arranged in an "L" shape.
4. The uniform cooling device for sesame paste production according to claim 1, characterized in that: The pulley (82) is driven to rotate by a speed reducer, an active transmission wheel and a belt. The pulley (82) drives the boost pipe (12) to rotate back and forth through a spray vibration drive mechanism (11). Multiple groups of vibration tables (121) are evenly installed on the circumferential outer wall of the boost pipe (12). The boost pipe (12) is fixed to the drive shaft (111) through a rotating shaft. The rotating shaft at the end of the boost pipe (12) passes through a limiting frame (10). The bottom of the limiting frame (10) is fixedly connected to a mounting seat (9).
5. The uniform cooling device for sesame paste production according to claim 1, characterized in that: The vibration table (121) comprises a holder (1211), a transmission plate (1212), a knocking column (1213) and a force-bearing cylinder (1214); the holder (1211) has a C-shaped cross section and is screwed and fixed on the circumferential side wall of the boost pipe (12); transmission plates (1212) are fixedly arranged on both sides of the bottom of the holder (1211); and the transmission plates (1212) are arranged in an arc shape.
6. The uniform cooling device for sesame paste production according to claim 5, characterized in that: The two groups of transmission plates (1212) are symmetrical structures about the central axis of the boost pipe (12). The bottoms of the two groups of transmission plates (1212) are fixedly provided with knocking columns (1213), and both sides of the knocking columns (1213) are fixedly installed with force cylinders (1214).
7. The uniform cooling device for sesame paste production according to claim 4, characterized in that: The spray vibration drive mechanism (11), the drive shaft (111), the interference piece (112), the interference hole (113), the drive plate (114) and the interference column (115) are characterized in that the interference piece (112) is fixedly mounted on the end of the drive shaft (111), the interference hole (113) is provided at the bottom of the interference piece (112), the interference hole (113) is adapted to the size of the interference column (115), and the interference column (115) is inserted into the inside of the interference hole (113).
8. The uniform cooling device for sesame paste production according to claim 8, characterized in that: The bottom of the driving plate (114) is fixedly connected to an interference column (115), and the interference column (115) and the pulley (82) are eccentrically arranged. At the same time, the pulley (82) rotates through the driving plate (114), the interference column (115), the interference hole (113), the interference plate (112) and the driving shaft (111) to drive the boost pipe (12) to rotate back and forth.
9. The uniform cooling device for sesame paste production according to claim 1, characterized in that: A spiral groove (51) is provided on the circumferential outer wall of the auger conveying cylinder (5), and the depth of the spiral groove (51) is 1.5 mm. At the same time, the sesame paste inside the auger conveying cylinder (5) is subjected to reciprocating motion by the dragon blade (8) during the rotation process. A sauce inlet pipe (7) is installed on the upper left side of the auger conveying cylinder (5).
10. The uniform cooling device for sesame paste production according to claim 1, characterized in that: The bottom sides of the cooling platform (1) are supported and fixed by support frames (4), the support frames (4) are arranged in a "T" shape, and base bolt positioning holes are provided inside both ends of the support frames (4); the cooling water inside the collection box (2) is added to the inside of the cooling water tower through the circulation pipe (3) and the boosting pump for cooling, and then enters the inside of the boosting pipe (12) through the circulation pump and the high-pressure water inlet hose.
Citation Information
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