A starch slurry tank caking breaking device

CN224762984UActive Publication Date: 2026-09-18ZHUCHENG HUAYUAN BIOENGINEERING CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202522297289.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-30
Publication Date
2026-09-18
Estimated Expiration
2035-10-30

AI Technical Summary

Technical Problem

[0003]但是在使用过程中发现,现有的淀粉调浆设备结构比较简单,使用时不方便对侧壁上的结块进行清理,容易导致结块淀粉掉落至调好的浆中,影响浆的质量,并且在将调好的淀粉浆排出后,不方便对其内部进行清理,导致实用性较差

Benefits of technology

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: the cylinder is installed in the starch mixing tank, and then starch and other raw materials are poured into the cylinder. The starch slurry is prepared by the starch mixing tank. At the same time, the cleaning mechanism cleans the clumps on the inner wall, causing the starch clumps to fall off and dissolve into the starch slurry. This prevents starch clumps from falling into the slurry and affecting its quality when the prepared starch slurry is discharged. After the starch slurry is discharged, the rinsing mechanism works in conjunction with the cleaning mechanism to clean the residual starch slurry on the cleaning mechanism, thereby improving the practicality of the equipment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224762984U_ABST
    Figure CN224762984U_ABST
Patent Text Reader

Abstract

This utility model relates to the technical field of cleaning starch mixing tanks, and in particular to a device for breaking up clumps in starch mixing tanks. A cylinder is installed inside the starch mixing tank, and starch and other raw materials are poured into the cylinder. The starch slurry is prepared by the mixing tank, while a cleaning mechanism cleans up clumps on the inner wall, causing starch clumps to fall off and dissolve into the starch slurry. This prevents starch clumps from falling into the slurry and affecting its quality when it is discharged. After the starch slurry is discharged, a rinsing mechanism works in conjunction with the cleaning mechanism to clean any remaining starch slurry on the cleaning mechanism, thereby improving the practicality of the equipment. The device includes a cylinder, a cleaning mechanism, and a rinsing mechanism. The cleaning mechanism is installed on the cylinder, and the rinsing mechanism is installed on the cleaning mechanism. The cylinder supports the cleaning mechanism, which cleans up the clumped starch, while the rinsing mechanism cleans the inner wall of the cleaning mechanism.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the technical field of cleaning starch mixing tanks, and in particular to a device for breaking up clumps in starch mixing tanks. Background Technology

[0002] Starch mixing tanks are core equipment used in the food, pharmaceutical, and chemical industries for starch pretreatment. They are used to prepare starch slurry. Existing starch mixing equipment, such as the corn starch mixing device disclosed in utility model patent CN201099680Y and the high-efficiency stirring device for starch mixing processing disclosed in utility model patent CN214598430U, can all achieve starch mixing.

[0003] However, during use, it was found that the existing starch slurry preparation equipment has a relatively simple structure, making it inconvenient to clean the clumps on the side walls. This can easily cause the clumps of starch to fall into the prepared slurry, affecting the quality of the slurry. Furthermore, after the prepared starch slurry is discharged, it is inconvenient to clean the inside of the equipment, resulting in poor practicality. Utility Model Content

[0004] To solve the above-mentioned technical problems, this utility model provides a starch slurry mixing tank clumping removal device. The device involves installing a cylinder inside a starch mixing tank, then pouring starch and other raw materials into the cylinder. The starch slurry is prepared in the mixing tank, while a cleaning mechanism removes clumps from the inner wall, causing starch clumps to fall off and dissolve into the starch slurry. This prevents starch clumps from falling into the slurry during discharge and affecting its quality. After the starch slurry is discharged, a rinsing mechanism, in conjunction with the cleaning mechanism, removes any remaining starch slurry from the cleaning mechanism, thereby improving the practicality of the equipment.

[0005] This utility model discloses a starch slurry tank agglomeration breaking device, which includes a cylinder; it also includes a cleaning mechanism and a rinsing mechanism, wherein the cleaning mechanism is installed on the cylinder and the rinsing mechanism is installed on the cleaning mechanism; The cylinder supports the cleaning mechanism, which cleans the clumped starch, and the rinsing mechanism cleans the inner wall of the cleaning mechanism. The cylinder is installed in the starch mixing tank. Starch and other raw materials are then poured into the cylinder. The starch slurry is prepared by the starch mixing tank. At the same time, a cleaning mechanism cleans the clumps on the inner wall, causing starch clumps to fall off and dissolve into the starch slurry. This prevents starch clumps from falling into the slurry and affecting its quality when it is discharged. After the starch slurry is discharged, a rinsing mechanism works in conjunction with the cleaning mechanism to clean the residual starch slurry on the cleaning mechanism, thereby improving the practicality of the equipment.

[0006] Preferably, the cleaning mechanism includes multiple sets of rhythmic tubes (first and second), an elastic sleeve, and a control mechanism. The elastic sleeve is installed on the inner wall of the cylinder. Both sets of rhythmic tubes (first and second) are installed between the cylinder and the elastic sleeve, and are arranged in an alternating pattern. The control mechanism is connected to the sets of rhythmic tubes (first and second). The control mechanism repeatedly expels air from the sets of rhythmic tubes (first and second) in an alternating manner, thereby causing the inner wall of the elastic sleeve to vibrate, causing the starch blocks on it to fall off.

[0007] Preferably, the control mechanism includes a support base, two sets of pressure regulating cylinders, two sets of pistons, two sets of guide frames, two sets of connecting rods (first and second), two sets of electrically controlled valves, two sets of connecting pipes, and a drive mechanism. A pre-reserved groove is provided on the outer wall of the cylinder. Both sets of pressure regulating cylinders are mounted on the support base. The two sets of pistons are slidably mounted in the two sets of pressure regulating cylinders. The two sets of guide frames are respectively mounted on the tops of the two sets of pressure regulating cylinders. The two sets of connecting rods (first and second) are slidably mounted in the two sets of guide frames. One end of each connecting rod (first and second) is mounted on one of the two sets of pistons, and the other end of each connecting rod (first and second) is rotatably connected to one end of each connecting rod (second and third). The other end of rod two is installed on the drive mechanism. Two sets of electric control valves are installed at the bottom of two sets of pressure regulating cylinders. One end of each of the two sets of connecting pipes is installed on the two sets of electric control valves. The other end of each of the two sets of connecting pipes is connected to the interior of multiple sets of rhythmic tube one and multiple sets of rhythmic tube two. Both sets of connecting pipes are located in the reserved groove of the cylinder. The drive mechanism is installed on the support base to provide power to the two sets of pistons. Through the operation of the drive mechanism, the two sets of pistons move up and down alternately, causing the two sets of pressure regulating cylinders to alternately discharge and discharge air from multiple sets of rhythmic tube one and multiple sets of rhythmic tube two, thereby realizing the rhythm of the inner wall of the elastic sleeve.

[0008] Preferably, the driving mechanism includes a fixed frame, a transmission frame, multiple sets of rollers, two sets of connecting rods, two sets of eccentric wheels, and a drive motor. The fixed frame is mounted on a support base, the transmission frame is hinged to the bottom of the fixed frame, and the transmission frame is provided with a sliding groove. The multiple sets of rollers are respectively mounted on the two sets of connecting rods, and all the rollers are located in the sliding grooves of the transmission frame and are slidably connected to the transmission frame. One end of each of the two sets of connecting rods is hinged to the transmission frame. Both sets of eccentric wheels are rotatably mounted on the fixed frame, and the other end of each of the two sets of connecting rods is eccentrically rotatably mounted on the two sets of eccentric wheels. The drive motor is fixedly mounted on the fixed frame, and the output shaft of the drive motor is connected to one set of eccentric wheels. By running the drive motor, the two sets of eccentric wheels rotate, causing the transmission frame to repeatedly rock forward and backward, which in turn causes the two sets of pistons to repeatedly rise and fall in the two sets of pressure regulating cylinders.

[0009] Preferably, the rinsing mechanism includes a three-way water pipe and multiple sets of electrically controlled nozzles. The three-way water pipe is installed on two sets of connecting pipes and is equipped with a connecting valve. The multiple sets of electrically controlled nozzles are all installed on the inner wall of the elastic sleeve, and the multiple sets of electrically controlled nozzles are respectively connected to the interior of multiple sets of rhythmic tube one and multiple sets of rhythmic tube two. The two sets of electrically controlled valves are closed, and the connecting valves on the three-way water pipe are connected to the drainage equipment, so that water flows sequentially through the three-way water pipe and the two sets of connecting pipes into multiple sets of rhythmic tube one and multiple sets of rhythmic tube two. At the same time, the multiple sets of electrically controlled nozzles are opened, so that the multiple sets of electrically controlled nozzles spray water to wash away the starch slurry remaining on the elastic sleeve.

[0010] Preferably, the top of the cylinder is provided with multiple sets of support columns, each set of support columns is rotatably provided with a limiting seat, and the bottom of the cylinder is provided with a sealing groove; the sealing ring is installed in the sealing groove at the bottom of the cylinder, and then the cylinder is placed into the starch mixing tank. By rotating the limiting seat, the limiting seat is pressed against the top of the starch mixing tank, thereby confining the cylinder in the starch mixing tank, and at the same time, the sealing ring at the bottom of the cylinder seals the connection between the cylinder and the starch mixing tank.

[0011] Preferably, the bottom of the limiting seat is an inclined surface; this improves the ease of rotating the limiting seat.

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: the cylinder is installed in the starch mixing tank, and then starch and other raw materials are poured into the cylinder. The starch slurry is prepared by the starch mixing tank. At the same time, the cleaning mechanism cleans the clumps on the inner wall, causing the starch clumps to fall off and dissolve into the starch slurry. This prevents starch clumps from falling into the slurry and affecting its quality when the prepared starch slurry is discharged. After the starch slurry is discharged, the rinsing mechanism works in conjunction with the cleaning mechanism to clean the residual starch slurry on the cleaning mechanism, thereby improving the practicality of the equipment. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the first isometric structure of this utility model; Figure 2 This is a schematic diagram of the second isometric structure of this utility model; Figure 3 This is a front view structural diagram of the present invention; Figure 4 This is a schematic diagram of the left-side cross-sectional structure of the pressure regulating cylinder of this utility model; Figure 5 This is a schematic diagram of the left-side cross-sectional structure of the cylinder and elastic sleeve of this utility model.

[0014] The following are labels in the attached diagram: 1. Cylinder; 2. Rhythm tube one; 3. Rhythm tube two; 4. Elastic sleeve; 5. Support seat; 6. Pressure regulating cylinder; 7. Piston; 8. Guide frame; 9. Connecting rod one; 10. Connecting rod two; 11. Electric control valve; 12. Connecting pipe; 13. Fixing frame; 14. Transmission frame; 15. Roller shaft; 16. Connecting rod three; 17. Eccentric wheel; 18. Drive motor; 19. T-shaped water pipe; 20. Electric control nozzle; 21. Support column; 22. Limiting seat. Detailed Implementation

[0015] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. This utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to make the disclosure of this utility model more thorough and complete. Example 1

[0016] like Figures 1 to 5 As shown, a starch slurry tank agglomeration breaking device includes a cylinder 1; it also includes a cleaning mechanism and a rinsing mechanism, the cleaning mechanism being installed on the cylinder 1 and the rinsing mechanism being installed on the cleaning mechanism; The cylinder 1 supports the cleaning mechanism, which cleans the clumped starch, and the rinsing mechanism cleans the inner wall of the cleaning mechanism. The cleaning mechanism includes multiple sets of rhythmic tubes 1 2, multiple sets of rhythmic tubes 2 3, an elastic sleeve 4, and a control mechanism. The elastic sleeve 4 is installed on the inner wall of the cylinder 1. The multiple sets of rhythmic tubes 1 2 and multiple sets of rhythmic tubes 2 3 are both installed between the cylinder 1 and the elastic sleeve 4, and the multiple sets of rhythmic tubes 1 2 and multiple sets of rhythmic tubes 2 3 are arranged alternately. The control mechanism is connected to the multiple sets of rhythmic tubes 1 2 and multiple sets of rhythmic tubes 2 3. The control mechanism includes a support base 5, two sets of pressure regulating cylinders 6, two sets of pistons 7, two sets of guide frames 8, two sets of connecting rods 1-9, two sets of connecting rods 2-10, two sets of electrically controlled valves 11, two sets of connecting pipes 12, and a drive mechanism. A pre-reserved groove is provided on the outer wall of the cylinder 1. Both sets of pressure regulating cylinders 6 are mounted on the support base 5. The two sets of pistons 7 are slidably mounted in the two sets of pressure regulating cylinders 6. The two sets of guide frames 8 are respectively mounted on the tops of the two sets of pressure regulating cylinders 6. The two sets of connecting rods 1-9 are slidably mounted in the two sets of guide frames 8. One end of each of the two sets of connecting rods 1-9 is respectively mounted on the two sets of guide frames 8. On piston 7, the other ends of two sets of connecting rods 9 are rotatably connected to one end of two sets of connecting rods 10 respectively. The other ends of the two sets of connecting rods 10 are both mounted on the drive mechanism. Two sets of electric control valves 11 are respectively mounted on the bottom of two sets of pressure regulating cylinders 6. One end of two sets of connecting pipes 12 is respectively mounted on the two sets of electric control valves 11. The other ends of the two sets of connecting pipes 12 are respectively connected to the interior of multiple sets of rhythmic pipes 2 and multiple sets of rhythmic pipes 3. Both sets of connecting pipes 12 are located in the reserved groove of the cylinder 1. The drive mechanism is mounted on the support seat 5 to provide power to the two sets of pistons 7. The drive mechanism includes a fixed frame 13, a transmission frame 14, multiple sets of rollers 15, two sets of connecting rods 16, two sets of eccentric wheels 17, and a drive motor 18. The fixed frame 13 is mounted on the support base 5. The transmission frame 14 is hinged to the bottom of the fixed frame 13 and has a sliding groove. The multiple sets of rollers 15 are respectively mounted on the two sets of connecting rods 16. The multiple sets of rollers 15 are all located in the sliding grooves of the transmission frame 14 and are slidably connected to the transmission frame 14. One end of each of the two sets of connecting rods 16 is hinged to the transmission frame 14. The two sets of eccentric wheels 17 are rotatably mounted on the fixed frame 13. The other end of each of the two sets of connecting rods 16 is eccentrically rotatably mounted on the two sets of eccentric wheels 17. The drive motor 18 is fixedly mounted on the fixed frame 13, and the output shaft of the drive motor 18 is connected to one set of eccentric wheels 17. The top of the cylinder 1 is provided with multiple sets of support columns 21, and each set of support columns 21 is rotatably provided with a limit seat 22. The bottom of the cylinder 1 is provided with a sealing groove. The bottom of the limiting seat 22 is an inclined surface; Install the sealing ring in the sealing groove at the bottom of the cylinder 1, then place the cylinder 1 into the starch mixing tank. By rotating the limiting seat 22, the limiting seat 22 is pressed against the top of the starch mixing tank, thereby confining the cylinder 1 within the starch mixing tank. Simultaneously, the sealing ring at the bottom of the cylinder 1 seals the connection between the cylinder 1 and the starch mixing tank. Next, install the support seat 5 on the outer wall of the starch mixing tank. Then, pour the starch and other raw materials into the sleeve 1, allowing the elastic sleeve 4 to cooperate with the bottom of the starch mixing tank to store the starch and other raw materials. Finally, the starch mixing tank... The starch is mixed with other raw materials, and the drive motor 18 runs, causing the two sets of eccentric wheels 17 to rotate. This causes the transmission frame 14 to swing forward and backward repeatedly, which in turn causes the two sets of pistons 7 to repeatedly move up and down in the two sets of pressure regulating cylinders 6. The two sets of pressure regulating cylinders 6 alternately discharge and introduce air from the multiple sets of rhythmic tubes 1 2 and multiple sets of rhythmic tubes 2 3, thereby realizing the rhythmic movement of the inner wall of the elastic sleeve 4. This causes the starch blocks to fall off and dissolve into the starch slurry, preventing starch blocks from falling into the slurry and affecting its quality when it is discharged, thus improving the practicality of the equipment. Example 2

[0017] A device for breaking up clumps in a starch mixing tank includes a cylinder 1; it also includes a cleaning mechanism and a rinsing mechanism, wherein the cleaning mechanism is installed on the cylinder 1 and the rinsing mechanism is installed on the cleaning mechanism. The cylinder 1 supports the cleaning mechanism, which cleans up the clumped starch, and the rinsing cleans the inner wall of the cleaning mechanism. The cleaning mechanism includes multiple sets of rhythmic tubes 1 2, multiple sets of rhythmic tubes 2 3, an elastic sleeve 4, and a control mechanism. The elastic sleeve 4 is installed on the inner wall of the cylinder 1. The multiple sets of rhythmic tubes 1 2 and multiple sets of rhythmic tubes 2 3 are both installed between the cylinder 1 and the elastic sleeve 4, and the multiple sets of rhythmic tubes 1 2 and multiple sets of rhythmic tubes 2 3 are arranged alternately. The control mechanism is connected to the multiple sets of rhythmic tubes 1 2 and multiple sets of rhythmic tubes 2 3. The control mechanism includes a support base 5, two sets of pressure regulating cylinders 6, two sets of pistons 7, two sets of guide frames 8, two sets of connecting rods 1-9, two sets of connecting rods 2-10, two sets of electrically controlled valves 11, two sets of connecting pipes 12, and a drive mechanism. A pre-reserved groove is provided on the outer wall of the cylinder 1. Both sets of pressure regulating cylinders 6 are mounted on the support base 5. The two sets of pistons 7 are slidably mounted in the two sets of pressure regulating cylinders 6. The two sets of guide frames 8 are respectively mounted on the tops of the two sets of pressure regulating cylinders 6. The two sets of connecting rods 1-9 are slidably mounted in the two sets of guide frames 8. One end of each of the two sets of connecting rods 1-9 is respectively mounted on the two sets of guide frames 8. On piston 7, the other ends of two sets of connecting rods 9 are rotatably connected to one end of two sets of connecting rods 10 respectively. The other ends of the two sets of connecting rods 10 are both mounted on the drive mechanism. Two sets of electric control valves 11 are respectively mounted on the bottom of two sets of pressure regulating cylinders 6. One end of two sets of connecting pipes 12 is respectively mounted on the two sets of electric control valves 11. The other ends of the two sets of connecting pipes 12 are respectively connected to the interior of multiple sets of rhythmic pipes 2 and multiple sets of rhythmic pipes 3. Both sets of connecting pipes 12 are located in the reserved groove of the cylinder 1. The drive mechanism is mounted on the support seat 5 to provide power to the two sets of pistons 7. The drive mechanism includes a fixed frame 13, a transmission frame 14, multiple sets of rollers 15, two sets of connecting rods 16, two sets of eccentric wheels 17, and a drive motor 18. The fixed frame 13 is mounted on the support base 5. The transmission frame 14 is hinged to the bottom of the fixed frame 13 and has a sliding groove. The multiple sets of rollers 15 are respectively mounted on the two sets of connecting rods 16. The multiple sets of rollers 15 are all located in the sliding grooves of the transmission frame 14 and are slidably connected to the transmission frame 14. One end of each of the two sets of connecting rods 16 is hinged to the transmission frame 14. The two sets of eccentric wheels 17 are rotatably mounted on the fixed frame 13. The other end of each of the two sets of connecting rods 16 is eccentrically rotatably mounted on the two sets of eccentric wheels 17. The drive motor 18 is fixedly mounted on the fixed frame 13, and the output shaft of the drive motor 18 is connected to one set of eccentric wheels 17. The rinsing mechanism includes a three-way water pipe 19 and multiple sets of electrically controlled nozzles 20. The three-way water pipe 19 is installed on two sets of connecting pipes 12, and a connecting valve is provided on the three-way water pipe 19. The multiple sets of electrically controlled nozzles 20 are all installed on the inner wall of the elastic sleeve 4, and the multiple sets of electrically controlled nozzles 20 are respectively connected to the interior of multiple sets of rhythmic pipe 1 2 and multiple sets of rhythmic pipe 2 3. The top of the cylinder 1 is provided with multiple sets of support columns 21, and each set of support columns 21 is rotatably provided with a limit seat 22. The bottom of the cylinder 1 is provided with a sealing groove. The bottom of the limiting seat 22 is an inclined surface; The sealing ring is installed in the sealing groove at the bottom of the cylinder 1. Then, the cylinder 1 is placed into the starch mixing tank. By rotating the limiting seat 22, the limiting seat 22 is pressed against the top of the starch mixing tank, thereby confining the cylinder 1 within the starch mixing tank. At the same time, the sealing ring at the bottom of the cylinder 1 seals the connection between the cylinder 1 and the starch mixing tank. The support seat 5 is then installed on the outer wall of the starch mixing tank. Next, starch and other raw materials are poured into the sleeve 1, allowing the elastic sleeve 4 to cooperate with the bottom of the starch mixing tank to store the starch and other raw materials. Then, the starch and other raw materials are mixed through the starch mixing tank. Simultaneously, the drive motor 18 is operated, causing the two sets of eccentric wheels 17 to rotate, causing the transmission frame 14 to repeatedly rock forward and backward, thereby causing the two sets of pistons 7 to... The two sets of pressure regulating cylinders 6 are repeatedly raised and lowered, causing the two sets of pressure regulating cylinders 6 to alternately expel and introduce air from the multiple sets of rhythmic tubes 1 and 2, thereby realizing the rhythmic movement of the inner wall of the elastic sleeve 4. This causes starch blocks to fall off and dissolve into the starch slurry, preventing starch blocks from falling into the slurry and affecting its quality when it is discharged. After the starch slurry is discharged, the two sets of electric control valves 11 are closed, and the connecting valve on the three-way water pipe 19 is connected to the drainage equipment, allowing water to flow sequentially through the three-way water pipe 19 and the two sets of connecting pipes 12 into the multiple sets of rhythmic tubes 1 and 2. At the same time, the multiple sets of electric control nozzles 20 are opened, causing the multiple sets of electric control nozzles 20 to spray water to wash away the residual starch slurry on the elastic sleeve 4, thereby improving the practicality of the equipment.

[0018] Residual water in the first and second rhythmic tubes 2 and 3 will not affect their contraction and expansion; the internal wiring of the cylinder 1 can be used to power multiple sets of electrically controlled nozzles 20; the electrically controlled valve 11, drive motor 18 and multiple sets of electrically controlled nozzles 20 of the starch slurry tank agglomeration breaking device of this utility model are commercially available, and technicians in this industry only need to install and operate them according to the accompanying instruction manual, without requiring any creative work from technicians in this field.

[0019] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.

Claims

1. A device for breaking up clumps in a starch slurry mixing tank, comprising a cylinder (1); characterized in that, It also includes a cleaning mechanism and a flushing mechanism, with the cleaning mechanism installed on the cylinder (1) and the flushing mechanism installed on the cleaning mechanism; The cylinder (1) supports the cleaning mechanism, which cleans the clumped starch, and the rinsing mechanism cleans the inner wall of the cleaning mechanism.

2. The starch slurry mixing tank agglomeration breaking device as described in claim 1, characterized in that, The clearing mechanism includes multiple sets of rhythmic tubes (2), multiple sets of rhythmic tubes (3), elastic sleeve (4), and a control mechanism. The elastic sleeve (4) is installed on the inner wall of the cylinder (1). Multiple sets of rhythmic tubes (2) and multiple sets of rhythmic tubes (3) are installed between the cylinder (1) and the elastic sleeve (4), and multiple sets of rhythmic tubes (2) and multiple sets of rhythmic tubes (3) are arranged alternately. The control mechanism is connected to multiple sets of rhythmic tubes (2) and multiple sets of rhythmic tubes (3).

3. The starch slurry mixing tank agglomeration breaking device as described in claim 2, characterized in that, The control mechanism includes a support base (5), two sets of pressure regulating cylinders (6), two sets of pistons (7), two sets of guide frames (8), two sets of connecting rods (9), two sets of connecting rods (10), two sets of electrically controlled valves (11), two sets of connecting pipes (12), and a drive mechanism. A pre-reserved groove is provided on the outer wall of the cylinder (1). Both sets of pressure regulating cylinders (6) are mounted on the support base (5). The two sets of pistons (7) are slidably mounted in the two sets of pressure regulating cylinders (6). The two sets of guide frames (8) are respectively mounted on the top of the two sets of pressure regulating cylinders (6). The two sets of connecting rods (9) are slidably mounted in the two sets of guide frames (8). One end of each set of connecting rods (9) is respectively mounted on... On the two sets of pistons (7), the other ends of the two sets of connecting rods (9) are rotatably connected to the other ends of the two sets of connecting rods (10). The other ends of the two sets of connecting rods (10) are installed on the drive mechanism. The two sets of electric control valves (11) are installed at the bottom of the two sets of pressure regulating cylinders (6). One end of the two sets of connecting pipes (12) is installed on the two sets of electric control valves (11). The other ends of the two sets of connecting pipes (12) are connected to the interior of the multiple sets of rhythmic pipes (2) and the multiple sets of rhythmic pipes (3). The two sets of connecting pipes (12) are located in the reserved groove of the cylinder (1). The drive mechanism is installed on the support seat (5) to provide power to the two sets of pistons (7).

4. The starch slurry mixing tank agglomeration breaking device as described in claim 3, characterized in that, The drive mechanism includes a fixed frame (13), a transmission frame (14), multiple sets of rollers (15), two sets of connecting rods (16), two sets of eccentric wheels (17), and a drive motor (18). The fixed frame (13) is mounted on a support base (5), and the transmission frame (14) is hinged to the bottom of the fixed frame (13). The transmission frame (14) is provided with a sliding groove. The multiple sets of rollers (15) are respectively mounted on the two sets of connecting rods (10), and the multiple sets of rollers (15) are all located on the transmission frame (14). In the chute, multiple sets of rollers (15) are slidably connected to the transmission frame (14). One end of each of the two sets of connecting rods (16) is hinged to the transmission frame (14). Two sets of eccentric wheels (17) are rotatably mounted on the fixed frame (13). The other end of each of the two sets of connecting rods (16) is eccentrically mounted on the two sets of eccentric wheels (17). The drive motor (18) is fixedly mounted on the fixed frame (13), and the output shaft of the drive motor (18) is connected to one set of eccentric wheels (17).

5. The starch slurry mixing tank agglomeration breaking device as described in claim 3, characterized in that, The rinsing mechanism includes a three-way water pipe (19) and multiple sets of electrically controlled nozzles (20). The three-way water pipe (19) is installed on two sets of connecting pipes (12), and a connecting valve is provided on the three-way water pipe (19). The multiple sets of electrically controlled nozzles (20) are all installed on the inner wall of the elastic sleeve (4), and the multiple sets of electrically controlled nozzles (20) are respectively connected to the interior of multiple sets of rhythmic pipe one (2) and multiple sets of rhythmic pipe two (3).

6. The starch slurry mixing tank agglomeration breaking device as described in claim 1, characterized in that, The top of the cylinder (1) is provided with multiple sets of support columns (21), and each set of support columns (21) is rotatably provided with a limit seat (22). The bottom of the cylinder (1) is provided with a sealing groove.

7. The starch slurry mixing tank agglomeration breaking device as described in claim 6, characterized in that, The bottom of the limiting seat (22) is an inclined surface.

Citation Information

Patent Citations

  • Corn starch pulping device

    CN201099680Y

  • Efficient stirring device for starch size mixing processing

    CN214598430U