Dissolving tank with multidirectional stirring structure
Patent Information
- Application Number
- CN202310839489.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-07-10
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2043-07-10
AI Technical Summary
[0004]上述现有技术,弧形搅拌板与搅拌叶在电机的带动下转动,对位于溶解罐本体内的原料进行搅拌,缺点是,只能对溶解罐内的原料进行单一方向的搅拌,搅拌效率低,因此本申请人在实际生产过程中研发出一种新的技术方案,以解决上述技术问题
[0017] The beneficial effects of this invention are as follows: raw materials are put into the tank through the feed pipe, and then the stirring shaft is driven to rotate by the drive component, which in turn drives two disturbance plates to move in the tank. At this time, the raw materials in the tank are stirred by the stirring blades on the stirring shaft and disturbed by the two disturbance plates moving in the tank. Thus, the raw materials in the tank can be stirred and mixed in multiple directions by the stirring blades on the stirring shaft and the two disturbance plates moving in the tank, which improves the stirring efficiency and is simple and convenient to use.
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Figure CN117065607B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of dissolving tank technology, specifically a dissolving tank with a multi-directional stirring structure. Background Technology
[0002] Currently, stirring and dissolving devices are commonly used equipment in chemical production. They typically consist of a stirring shaft and a stirring mechanism inside the dissolving tank. The drive mechanism rotates the stirring shaft, which in turn drives the stirring mechanism to stir and dissolve the material.
[0003] Currently, Chinese patent application number CN202122011623.7 discloses a uniformly stirred auxiliary material dissolving tank, including a dissolving tank body. The upper end of the dissolving tank body is equipped with a dispersing feed structure, and the lower end of the dispersing feed structure is fixedly equipped with a tilting stirring structure. The bottom surface of the dissolving tank body is hemispherical, and the lower end of the tilting stirring structure is attached to the hemispherical inner wall of the dissolving tank body. A valved discharge pipe is fixedly connected to the left and right sides of the bottom surface of the dissolving tank body. Shock-absorbing support legs are fixedly installed at the four corners of the bottom surface of the dissolving tank body. The dispersing feeding structure includes a motor fixedly mounted on the middle of the upper surface of the dissolving tank body. The lower end of the motor output penetrates through the top surface of the dissolving tank body. A material dispersing structure and a material dispersing fan blade are fixedly mounted on the outer wall of the motor output shaft. A feed pipe and a liquid inlet pipe are fixedly connected to the left and right sides of the upper surface of the dissolving tank body, respectively. The tilting stirring structure includes a round rod fixedly connected to the lower end of the motor output. Stirring blades are uniformly fixedly mounted on the outer wall of the round rod. An arc-shaped stirring plate is fixedly mounted on the lower end of the round rod. The bottom surface of the arc-shaped stirring plate is in contact with the hemispherical inner wall of the dissolving tank body.
[0004] The aforementioned prior art involves an arc-shaped stirring plate and stirring blades rotating under the drive of a motor to stir the raw materials located inside the dissolving tank. The disadvantage is that it can only stir the raw materials in the dissolving tank in a single direction, resulting in low stirring efficiency. Therefore, the applicant has developed a new technical solution in actual production to solve the above-mentioned technical problems. Summary of the Invention
[0005] The purpose of this invention is to provide a dissolving tank with a multi-directional stirring structure, which has the advantage of multi-directional stirring of raw materials in the dissolving tank.
[0006] To solve the above-mentioned technical problems, the present invention adopts the following technical solution: This invention provides a dissolving tank with a multi-directional stirring structure, including a tank body, a stirring shaft, two disturbance plates, and a feed pipe disposed at the top of the tank body. The bottom of the tank body is provided with a discharge pipe, and a shut-off valve is provided on the discharge pipe. The stirring shaft and the two disturbance plates are located inside the tank body. The tank body is provided with a driving component for driving the stirring shaft to rotate and moving the two disturbance plates inside the tank body. Several sets of stirring rods are evenly distributed along the length of the stirring shaft. Each set of stirring rods includes several stirring blades, and each stirring blade is evenly distributed along the circumference of the stirring shaft.
[0007] By adopting the above technical solution, the raw materials are put into the tank through the feed pipe, and then the stirring shaft is driven to rotate by the drive component, which in turn drives the two disturbance plates to move in the tank. At this time, the raw materials in the tank are stirred by the stirring blades on the stirring shaft and disturbed by the two disturbance plates moving in the tank. Thus, the raw materials in the tank can be stirred and mixed in multiple directions by the stirring blades on the stirring shaft and the two moving disturbance plates, which improves the stirring efficiency and is simple and convenient to use.
[0008] Preferably, the driving component includes a first rotating shaft rotatably connected to the top of the tank and a fixing plate disposed at the top of the tank. The top of the stirring shaft has a circular groove coaxially arranged, and the bottom end of the first rotating shaft is vertically inserted into the circular groove. A limiting groove is provided on the side wall of the first rotating shaft along its length, and a limiting rod is vertically slidably connected within the limiting groove. One end of the limiting rod, away from the bottom of the limiting groove, is fixedly connected to the wall of the circular groove. The tank is equipped with a first motor for driving the first rotating shaft to rotate. The first rotating shaft is located on one side of the fixing plate, and the fixing plate is close to the first rotating shaft. A first movable plate is vertically slidably connected to one side of the stirring shaft. A rotating ring is coaxially rotatably connected to the stirring shaft, and one end of the outer wall of the rotating ring is fixedly connected to the side of the first movable plate opposite to the fixed plate. Extension rods are horizontally provided on both opposite sides of the first movable plate. Both of the two disturbance plates are L-shaped and are respectively fixedly connected to the bottom ends of the two extension rods. At this time, the stirring shaft is located between the two disturbance plates. When the first rotating shaft rotates, the first rotating shaft and the first movable plate are connected through a transmission assembly. At this time, the transmission assembly is used to drive the first movable plate to move vertically up and down on the fixed plate.
[0009] Preferably, the transmission assembly includes a first worm and a mounting groove coaxially formed on the first worm. The first worm is coaxially sleeved on the first rotating shaft through the mounting groove, and the first worm is located above the stirring shaft. A driving block is vertically slidably connected in the limiting groove, and the end of the driving block away from the bottom of the limiting groove is fixedly connected to the groove wall of the mounting groove. Two retaining rings are fixedly connected to the side of the first moving plate near the first worm, and both retaining rings are coaxially arranged with the first rotating shaft. At this time, the two retaining rings are located on the upper and lower sides of the first worm and are in contact with the first worm. A first worm wheel is rotatably connected to the side of the moving plate near the first worm, and the first worm wheel is located on one side of the first worm and meshes with the first worm. A first central shaft is provided at the center of the side of the first worm wheel away from the first moving plate, and a first swing arm is provided on the first central shaft. A first cylinder is provided on the side of the first swing arm away from the first worm wheel. The first cylinder is located at the end of the first swing arm away from the first central shaft. A first ring is rotatably connected to the first cylinder on the same axis, and a first swing rod is provided at one end of the outer wall of the first ring. The end of the first swing rod away from the first ring is hinged to the top of the tank.
[0010] Preferably, the driving component includes a horizontally arranged second worm and a central groove coaxially formed on the second worm. A second rotating shaft is rotatably connected between opposite sides of the tank body. Two sliding plates are horizontally slidably connected to the top of the tank body. The bottom ends of the two sliding plates are connected through a second moving plate, which is horizontally arranged. Two disturbance plates are opposite each other and both are located at the bottom of the second moving plate. The second rotating shaft is horizontally located above the second moving plate, and two baffles are coaxially rotatably connected to the second rotating shaft. The bottom ends of the outer walls of the two baffles are fixedly connected to the top of the second moving plate. The second worm is sleeved on the second rotating shaft through the central groove and is located between the two baffles. The sides of the two baffles that are close to each other are in contact with the second worm. A long strip groove is provided on the second rotating shaft along its length direction. A slider is horizontally slidably connected in the long strip groove. One end of the block away from the bottom of the elongated groove is fixedly connected to the wall of the central groove. The top of the second movable plate is provided with a rotating groove, and a drive shaft is rotatably connected inside the rotating groove. The stirring shaft is located below the second movable plate, and the top of the stirring shaft is coaxially and fixedly connected to the bottom of the drive shaft. The top of the drive shaft extends to the outside of the rotating groove and is provided with a second worm gear. The second worm gear is located on one side of the second worm and meshes with the second worm. The tank is provided with a second motor for driving the second rotating shaft to rotate. The top center of the second worm gear is provided with a second central shaft, and a second swing arm is provided on the second central shaft. The top of the second swing arm is provided with a second cylinder. The second cylinder is located at the end of the second swing arm away from the second central shaft. A second ring is coaxially rotatably connected to the second cylinder, and a second swing rod is provided at one end of the outer wall of the second ring. The end of the second swing rod away from the second ring is hinged to one end of the inner wall of the tank.
[0011] Preferably, the driving component includes two grooves opposite to each other at the top of the tank, and a column is rotatably connected to each of the two grooves. The bottom ends of the two columns extend outside the grooves and are horizontally provided with horizontal rods. There are two stirring shafts, and the two stirring shafts are rotatably connected to the bottom ends of the two horizontal rods respectively. Two internal gear rings are fixedly connected to the top of the tank, and the two internal gear rings are coaxial with the two columns respectively. Gears are fixedly connected to the two stirring shafts coaxially, and the two gears are located in the two internal gear rings and mesh with the two internal gear rings respectively. The top of the two tanks is horizontally provided with a sliding groove between the two columns, and a sliding rod is horizontally slidably connected in the sliding groove. The two disturbance plates are vertically provided at the bottom ends of the sliding rods and are arranged opposite to each other. The tank is provided with a driving component for simultaneously driving the two columns to rotate. When the two columns rotate, a first pushing component is provided between the two stirring shafts for pushing the sliding rod to slide horizontally in the sliding groove.
[0012] Preferably, the driving component includes sprockets that are both disposed at the top of two columns and are connected by a chain. The top of the outer wall of the tank is provided with a bracket, and a third motor for driving one of the sprockets to rotate is provided on the bracket.
[0013] Preferably, the first pushing member includes mounting rings that are coaxially rotatably connected to two stirring shafts, and both mounting rings are located below the internal gear ring. The two mounting rings are connected by a connecting rod, which is horizontally arranged. An inverted U-shaped slide is horizontally slidably connected to the connecting rod along its length, and the top of the slide is fixedly connected to the center of the bottom end of the slide rod.
[0014] Preferably, a disturbance rod is vertically provided at the center of the bottom end of the connecting rod, the disturbance rod is located between the two stirring shafts, and disturbance plates are provided on both sides of the disturbance rod between two adjacent sets of stirring rods.
[0015] Preferably, the driving component includes a vertical cylinder rotatably connected to the top of the tank body. The top of the tank body has a connecting groove through which the vertical cylinder communicates. An installation shaft is rotatably connected in the connecting groove, and the bottom end of the installation shaft passes vertically through the vertical cylinder. At this time, the installation shaft is coaxial with the vertical cylinder. The stirring shaft is coaxially fixedly connected to the bottom end of the installation shaft. Placement plates are provided on opposite sides of the outer wall of the vertical cylinder. Two disturbance plates are respectively fixedly connected to the bottom ends of the two placement plates. At this time, the stirring shaft is located between the two disturbance plates. The tank body is provided with a fourth motor for driving the installation shaft to rotate. When the installation shaft rotates, a second pushing component is provided on the installation shaft for pushing the vertical cylinder to rotate back and forth.
[0016] Preferably, the second pushing member includes first sliding grooves that are inclinedly arranged on opposite sides of the mounting shaft. The side wall of the mounting shaft is provided with a second sliding groove for connecting the two first sliding grooves. There are two second sliding grooves, and the two second sliding grooves are located on opposite sides of the mounting shaft and are staggered vertically. The top of the tank body is vertically provided with a side plate located on one side of the vertical cylinder. The outer wall of the vertical cylinder is inclinedly provided with a push groove corresponding to one of the first sliding grooves on the side near the side plate. The side plate is vertically slidably connected to a moving block on the side near the vertical cylinder. The side of the moving block away from the side plate is horizontally provided with a push column. The end of the push column away from the moving block passes through the push groove and extends into one of the first sliding grooves. At this time, the opposite two sides of the push groove and the opposite two sides of the first sliding groove are in contact with the push column.
[0017] The beneficial effects of this invention are as follows: raw materials are put into the tank through the feed pipe, and then the stirring shaft is driven to rotate by the drive component, which in turn drives two disturbance plates to move in the tank. At this time, the raw materials in the tank are stirred by the stirring blades on the stirring shaft and disturbed by the two disturbance plates moving in the tank. Thus, the raw materials in the tank can be stirred and mixed in multiple directions by the stirring blades on the stirring shaft and the two disturbance plates moving in the tank, which improves the stirring efficiency and is simple and convenient to use. Attached Figure Description
[0018] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0019] Figure 1 This is a schematic diagram of the structure of this embodiment; Figure 2 This is a schematic diagram illustrating the structure of the first pendulum rod in this embodiment; Figure 3 This is a schematic diagram illustrating the structure of the extension rod in this embodiment; Figure 4 for Figure 3 Enlarged structural diagram of section A in the middle; Figure 5 This is a schematic diagram illustrating the structure of the second motor in this embodiment; Figure 6 This is a schematic diagram illustrating the structure of the second pendulum rod in this embodiment; Figure 7 This is a schematic diagram illustrating the structure of the skateboard in this embodiment; Figure 8This is a schematic diagram illustrating the structure of the support in this embodiment; Figure 9 This is a structural schematic diagram illustrating the horizontal bar in this embodiment; Figure 10 This is a schematic diagram illustrating the structure of the connecting rod in this embodiment; Figure 11 This is a structural schematic diagram illustrating the side panel in this embodiment; Figure 12 This is a schematic diagram illustrating the structure of the placement plate in this embodiment; Figure 13 This is a schematic diagram illustrating the structure of the first sliding groove in this embodiment.
[0020] Explanation of reference numerals in the attached figures: In the diagram: 1. Tank body; 2. Stirring shaft; 3. Bumper plate; 4. Feed pipe; 5. Discharge pipe; 6. Shut-off valve; 7. Stirring blade; 8. First rotating shaft; 9. Fixed plate; 10. Circular groove; 12. Limiting groove; 13. Limiting rod; 14. First motor; 15. First moving plate; 16. Rotating ring; 17. Extension rod; 18. First worm gear; 19. Mounting groove; 20. Drive block; 21. Retaining ring; 22. First worm gear; 23. First central shaft; 24. First swing arm; 25. First cylinder; 26. First circular ring; 27. First swing rod; 28. Second worm gear; 29. Central groove; 30. Second rotating shaft; 31. Slide plate; 32. Second moving plate; 33. Baffle; 34. Long strip groove; 35. Sliding block; 36. Rotating groove; 37. 38. Drive shaft; 39. Second worm gear; 40. Second motor; 41. Second central shaft; 42. Second swing arm; 43. Second cylinder; 44. Second ring; 45. Second swing rod; 46. Groove; 47. Column; 48. Horizontal rod; 49. Internal gear ring; 50. Gear; 51. Slide groove; 52. Slide rod; 53. Sprocket; 54. Chain; 55. Bracket; 56. Third motor; 57. Mounting ring; 58. Connecting rod; 59. Slide table; 60. Disturbing rod; 61. Disturbing plate; 62. Vertical cylinder; 63. Connecting groove; 64. Mounting shaft; 65. Placement plate; 66. Fourth motor; 67. First sliding groove; 68. Second sliding groove; 69. Slide rail; 70. Side plate; 71. Push groove; 72. Moving block; 73. Push column. Detailed Implementation
[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0022] A dissolving vessel with a multi-directional stirring structure, such as Figure 1 and Figure 2 The system includes a tank body 1, a stirring shaft 2, two disturbance plates 3, and a feed pipe 4 located at the top of the tank body 1. A discharge pipe 5 is located at the bottom of the tank body 1, and a shut-off valve 6 is provided on the discharge pipe 5. The stirring shaft 2 and the two disturbance plates 3 are located inside the tank body 1. The tank body 1 is provided with a drive component for driving the stirring shaft 2 to rotate and driving the two disturbance plates 3 to move inside the tank body 1. Several sets of stirring rods are evenly distributed along the length of the stirring shaft 2. Each set of stirring rods includes several stirring blades 7, and each stirring blade 7 is evenly distributed along the circumference of the stirring shaft 2.
[0023] like Figure 1 and Figure 2 Raw materials are fed into the tank 1 through the feed pipe 4. Then, the stirring shaft 2 is driven to rotate by the drive component, which in turn drives the two disturbance plates 3 to move inside the tank 1. At this time, the raw materials in the tank 1 are stirred by the stirring blades 7 on the stirring shaft 2 and disturbed by the two disturbance plates 3 moving inside the tank 1. Thus, the raw materials in the tank 1 can be stirred and mixed in multiple directions by the stirring blades 7 on the stirring shaft 2 and the two disturbance plates 3 moving inside the tank 1, which improves the stirring efficiency and is simple and convenient to use.
[0024] like Figure 1 and Figure 2 and Figure 3 The driving components include a first rotating shaft 8 rotatably connected to the top of the tank body 1 and a fixing plate 9 disposed at the top of the tank body 1. A circular groove 10 is coaxially provided at the top of the stirring shaft 2. The bottom end of the first rotating shaft 8 is vertically inserted into the circular groove 10. A limiting groove 12 is provided on the side wall of the first rotating shaft 8 along the length direction of the first rotating shaft 8, and a limiting rod 13 is vertically slidably connected in the limiting groove 12. One end of the limiting rod 13 away from the bottom of the limiting groove 12 is fixedly connected to the groove wall of the circular groove 10. A first motor 14 for driving the first rotating shaft 8 to rotate is provided on the tank body 1. The first rotating shaft 8 is located on one side of the fixing plate 9, and the fixing plate 9 is close to the first rotating shaft. A first movable plate 15 is vertically slidably connected to one side of the first movable plate 15. A rotating ring 16 is coaxially rotatably connected to the stirring shaft 2, and one end of the outer wall of the rotating ring 16 is fixedly connected to the side of the first movable plate 15 away from the fixed plate 9. Extension rods 17 are horizontally provided on both opposite sides of the first movable plate 15. The two disturbance plates 3 are both L-shaped and are fixedly connected to the bottom ends of the two extension rods 17 respectively. At this time, the stirring shaft 2 is located between the two disturbance plates 3. When the first rotating shaft 8 rotates, the first rotating shaft 8 and the first movable plate 15 are connected through a transmission assembly. At this time, the transmission assembly is used to drive the first movable plate 15 to move vertically up and down on the fixed plate 9.
[0025] like Figure 1 and Figure 2 and Figure 3When it is necessary to drive the stirring shaft 2 to rotate and drive the two disturbance plates 3 to move inside the tank 1, simply turn on the first motor 14. At this time, the rotating shaft of the first motor 14 will drive the first rotating shaft 8 to rotate. The stirring shaft 2 will then follow the first rotating shaft 8 to rotate through the cooperation of the limiting groove 12 and the limiting rod 13. While the first rotating shaft 8 is rotating, the first rotating shaft 8 will drive the first moving plate 15 to move vertically up and down on the fixed plate 9 through the transmission component. At this time, the rotating stirring shaft 2 will follow the first moving plate 15 to move vertically through the rotating ring 16. This can enhance the stirring effect of each stirring plate 7 on the stirring shaft 2 on the raw materials in the tank 1. When the stirring shaft 2 follows the first moving plate 15 to move vertically through the rotating ring 16, the stirring shaft 2 will drive the limiting rod 13 to slide vertically in the limiting groove 12, and the bottom end of the first rotating shaft 8 will not contact the bottom of the circular groove 10. When the first moving plate 15 moves vertically back and forth, the two disturbance plates 3 will move vertically along with the first moving plate 15 via the two extension rods 17. Since the disturbance plate 3 is L-shaped, the raw materials in the tank 1 can be disturbed by the vertically moving L-shaped disturbance plate 3, which is simple and convenient to use.
[0026] like Figure 2 and Figure 3 and Figure 4 The transmission assembly includes a first worm gear 18 and a mounting groove 19 coaxially formed on the first worm gear 18. The first worm gear 18 is coaxially sleeved on the first rotating shaft 8 through the mounting groove 19, and the first worm gear 18 is located above the stirring shaft 2. A driving block 20 is vertically slidably connected in the limiting groove 12, and the end of the driving block 20 away from the bottom of the limiting groove 12 is fixedly connected to the groove wall of the mounting groove 19. Two retaining rings 21 are fixedly connected to the side of the first moving plate 15 near the first worm gear 18, and both retaining rings 21 are coaxially set with the first rotating shaft 8. At this time, the two retaining rings 21 are located on the upper and lower sides of the first worm gear 18 respectively and are in contact with the first worm gear 18. The first moving plate 15 is close to the first worm gear 18. A first worm gear 22 is rotatably connected to one side of a worm 18, and the first worm gear 22 is located on one side of the first worm 18 and meshes with the first worm 18. A first central shaft 23 is provided at the center of the side of the first worm gear 22 away from the first moving plate 15, and a first swing arm 24 is provided on the first central shaft 23. A first cylinder 25 is provided on the side of the first swing arm 24 away from the first worm gear 22. The first cylinder 25 is located at the end of the first swing arm 24 away from the first central shaft 23. A first ring 26 is rotatably connected to the first cylinder 25, and a first swing rod 27 is provided at one end of the outer wall of the first ring 26. The end of the first swing rod 27 away from the first ring 26 is hinged to the top of the tank 1.
[0027] like Figure 2 and Figure 3 and Figure 4When the first rotating shaft 8 rotates, it drives the first worm gear 18 to rotate between the two retaining rings 21 through the engagement of the limiting groove 12 and the driving block 20. At this time, the first worm gear 18 drives the meshing first worm wheel 22 to rotate on the first moving plate 15. The rotating first worm wheel 22 drives the first swing arm 24 to rotate along the rotation axis of the first worm wheel 22 through the first central shaft 23. At this time, the first swing arm 24 drives the first ring 26 to rotate along the rotation axis of the first worm wheel 22 through the first cylinder 25. At this time, the driving block 20 is vertically slidably connected in the limiting groove 12. One end of the first rocker arm 27 on the first ring 26 is hinged to the top of the tank 1. The first ring 26 is rotatably connected to the first cylinder 25. So when the first worm gear 22 rotates, the first moving plate 15 can be pushed to move vertically back and forth on the fixed plate 9 through the cooperation of the first rocker arm 27, the first ring 26, the first cylinder 25, the first rocker arm 24, the first central shaft 23, and the first worm gear 22. At this time, the first worm 18 will follow the first moving plate 15 through the two retaining rings 21, so that the first worm 18 and the first worm gear 22 are always in a meshing state, which is simple and convenient to use.
[0028] like Figure 5 and Figure 6 and Figure 7Alternatively, the driving component includes a horizontally arranged second worm gear 28 and a central groove 29 coaxially formed on the second worm gear 28. A second rotating shaft 30 is rotatably connected between opposite sides inside the tank body 1. Two sliding plates 31 are horizontally slidably connected to the top of the tank body 1. The bottom ends of the two sliding plates 31 are connected via a second moving plate 32, which is horizontally arranged. Two disturbance plates 3 are opposite each other and both are located at the bottom of the second moving plate 32. The second rotating shaft 30 is horizontally positioned above the second moving plate 32. Two baffles 33 are coaxially rotatably connected to the rotating shaft 30, and the bottom ends of the outer walls of the two baffles 33 are fixedly connected to the top end of the second moving plate 32. The second worm 28 is sleeved on the second rotating shaft 30 through the central groove 29, and the second worm 28 is located between the two baffles 33. The sides of the two baffles 33 that are close to each other are in contact with the second worm 28. A long strip groove 34 is provided on the second rotating shaft 30 along the length direction of the second rotating shaft 30. A slider 35 is horizontally slidably connected in the long strip groove 34. The slider 35 is away from the long strip groove. One end of the bottom of the groove 34 is fixedly connected to the wall of the central groove 29. A rotating groove 36 is provided at the top of the second moving plate 32, and a drive shaft 37 is rotatably connected within the rotating groove 36. A stirring shaft 2 is located below the second moving plate 32, and its top end is coaxially fixedly connected to the bottom end of the drive shaft 37. The top end of the drive shaft 37 extends outside the rotating groove 36 and is equipped with a second worm gear 38. The second worm gear 38 is located on one side of the second worm 28 and meshes with it. The tank body 1 is equipped with a mechanism for driving the second worm gear 37. The second motor 39 rotates on the shaft 30. The top center of the second worm gear 38 is provided with a second central shaft 40, and a second swing arm 41 is provided on the second central shaft 40. The top of the second swing arm 41 is provided with a second cylinder 42. The second cylinder 42 is located at the end of the second swing arm 41 away from the second central shaft 40. A second ring 43 is coaxially rotatably connected to the second cylinder 42, and a second swing rod 44 is provided at one end of the outer wall of the second ring 43. The end of the second swing rod 44 away from the second ring 43 is hinged to one end of the inner wall of the tank 1.
[0029] like Figure 5 and Figure 6 and Figure 7 When it is necessary to drive the stirring shaft 2 to rotate and move the two disturbance plates 3 within the tank 1, simply turn on the second motor 39. At this time, the rotating shaft of the second motor 39 will drive the second rotating shaft 30 to rotate. The second rotating shaft 30 will then drive the second worm 28 to rotate between the two baffles 33 through the cooperation of the elongated groove 34 and the slider 35. The second worm 28 will then drive the drive shaft 37 to rotate within the rotating groove 36 through the meshing second worm wheel 38. At this time, the drive shaft 37 will drive the stirring shaft 2 to rotate. While the second worm 28 drives the drive shaft 37 to rotate in the rotating groove 36 through the second worm wheel 38 meshing with it, the second worm wheel 38 drives the second swing arm 41 to rotate along the rotation axis of the second worm wheel 38 through the second central shaft 40. The second swing arm 41 drives the second ring 43 to rotate along the rotation axis of the second worm wheel 38 through the second cylinder 42. At this time, because the slider 35 is horizontally slidably connected in the elongated groove 34, one end of the second swing rod 44 on the second ring 43 is hinged to one end of the inner wall of the tank 1, and the second ring 43 is rotatably connected to the second cylinder 42, when the second worm wheel 38 rotates, through the cooperation of the second swing rod 44, the second ring 43, the second cylinder 42, the second swing arm 41, the second central shaft 40, and the second worm wheel 38, the second moving plate 32 can be pushed to drive the two sliding plates 31 and the two disturbance plates 3 to move horizontally in the tank 1. At this time, the two horizontally moving disturbance plates 3 can disturb the raw materials in the tank 1. When the second moving plate 32 moves horizontally, the second worm 28 will follow the second moving plate 32 through the two stop cylinders 33, so that the second worm 28 and the second worm wheel 38 are always in a meshing state, which is simple and convenient to use.
[0030] like Figure 8 and Figure 9 and Figure 10Alternatively, the driving component includes two grooves 45 oppositely formed at the top of the tank body 1, with a column 46 rotatably connected to each groove 45. The bottom ends of the two columns 46 extend outside the grooves 45 and are horizontally provided with horizontal rods 47. There are two stirring shafts 2, which are rotatably connected to the bottom ends of the two horizontal rods 47. Two internal gear rings 48 are fixedly connected to the top of the tank body 1, and the two internal gear rings 48 are coaxial with the two columns 46. Gears 49 are fixedly connected to the two stirring shafts 2, and the two gears 49 are located in the two internal gear rings 48 and mesh with the two internal gear rings 48. A sliding groove 50 is horizontally provided at the top of the two tank bodies 1 between the two columns 46, and a sliding rod 51 is horizontally slidably connected in the sliding groove 50. Two disturbance plates 3 are vertically arranged at the bottom ends of the sliding rods 51 and are arranged opposite to each other. The tank body 1 is provided with... The driving component simultaneously drives the two columns 46 to rotate. When the two columns 46 rotate, a first pushing component is provided between the two stirring shafts 2 to push the slide rod 51 to slide horizontally in the slide groove 50. The driving component includes sprockets 52 that are both set at the top of the two columns 46 and are connected by a chain 53. A bracket 54 is provided at the top of the outer wall of the tank 1, and a third motor 55 for driving one of the sprockets 52 to rotate is provided on the bracket 54. The first pushing component includes mounting rings 56 that are coaxially rotatably connected to the two stirring shafts 2 and are both located below the internal gear ring 48. The two mounting rings 56 are connected by a connecting rod 57. The connecting rod 57 is horizontally set, and an inverted U-shaped slide table 58 is horizontally slidably connected to the connecting rod 57 along the length of the connecting rod 57. The top of the slide table 58 is fixedly connected to the center of the bottom end of the slide rod 51.
[0031] like Figure 8 and Figure 9 and Figure 10 When it is necessary to drive the stirring shaft 2 to rotate and move the two disturbance plates 3 inside the tank 1, simply turn on the third motor 55. At this time, the rotating shaft of the third motor 55 will drive one of the sprockets 52 to rotate, and the other sprocket 52 will drive the other sprocket 52 to rotate through the chain 53. The two sprockets 52 will drive the two columns 46 to rotate respectively. At this time, the columns 46 will drive the stirring shaft 2 to rotate along the rotation axis of the columns 46 through the horizontal rod 47. When the columns 46 drive the stirring shaft 2 to rotate along the rotation axis of the columns 46 through the horizontal rod 47, because the gear 49 on the stirring shaft 2 meshes with the internal gear ring 48 on the tank 1, when the columns 46 drive the stirring shaft 2 to rotate along the rotation axis of the columns 46 through the horizontal rod 47, the stirring shaft 2 can rotate on the horizontal rod 47 through the cooperation of the gear 49 and the internal gear ring 48. At this time, the stirring effect of each stirring plate 7 on the stirring shaft 2 on the raw materials in the tank 1 can be improved. When the two stirring shafts 2 rotate along the rotation axes of the two columns 46 respectively, the mounting rings 56 on the two stirring shafts 2 are connected by a connecting rod 57, and the sliding table 58 and the sliding rod 51 are fixedly connected to the horizontally sliding connected sliding table 58 on the connecting rod 57. Therefore, when the two stirring shafts 2 rotate along the rotation axes of the two columns 46 respectively, the two stirring shafts 2 will drive the connecting rod 57 to move through the mounting rings 56. At this time, through the cooperation of the two stirring shafts 2, the two mounting rings 56, the connecting rod 57, the sliding table 58 and the sliding rod 51, the sliding rod 51 can be pushed to slide horizontally in the sliding groove 50. At this time, the sliding rod 51 will drive the two disturbance plates 3 to move horizontally in the tank 1, disturbing the raw materials in the tank 1. Since the mounting rings 56 are rotatably connected to the stirring shafts 2, the mounting rings 56 will not affect the rotation of the stirring shafts 2 on the horizontal plate, making it simple and convenient to use.
[0032] like Figure 9 and Figure 10 A disturbance rod 59 is vertically provided at the center of the bottom end of the connecting rod 57. The disturbance rod 59 is located between the two stirring shafts 2, and disturbance plates 60 are provided on both sides of the disturbance rod 59 between the two adjacent stirring rods. The purpose of this arrangement is that when the two stirring shafts 2 drive the connecting rod 57 to move through the mounting ring 56, the raw materials in the tank 1 can be further disturbed by the disturbance rod 59 on the connecting rod 57 and the disturbance plates 60 provided on the disturbance rod 59. Since the disturbance plates 60 on the disturbance rod 59 are located between the two adjacent stirring rods, the disturbance plates 60 will not affect the operation of each stirring plate 7 in each stirring rod group, making it simple and convenient to use.
[0033] like Figure 11 and Figure 12 and Figure 13Alternatively, the driving component includes a vertical cylinder 61 rotatably connected to the top of the tank body 1. A connecting groove 62 is provided at the top of the tank body 1, through which the vertical cylinder 61 communicates. An installation shaft 63 is rotatably connected within the connecting groove 62, with its bottom end passing vertically through the vertical cylinder 61. At this time, the installation shaft 63 is coaxial with the vertical cylinder 61. A stirring shaft 2 is coaxially and fixedly connected to the bottom end of the installation shaft 63. Placement plates 64 are provided on opposite sides of the outer wall of the vertical cylinder 61. Two disturbance plates 3 are respectively fixedly connected to the bottom ends of the two placement plates 64. At this time, the stirring shaft 2 is located between the two disturbance plates 3. A fourth motor 65 is provided on the tank body 1 to drive the installation shaft 63 to rotate. When the installation shaft 63 rotates, a second pushing component is provided on the installation shaft 63 to push the vertical cylinder 61 to rotate back and forth. The second pushing component includes first sliding members that are inclinedly arranged on opposite sides of the installation shaft 63. The moving groove 66 and the side wall of the mounting shaft 63 are provided with a second sliding groove 67 for connecting the two first sliding grooves 66. There are two second sliding grooves 67, and the two second sliding grooves 67 are located on opposite sides of the mounting shaft 63 and are staggered vertically. The top of the tank body 1 is vertically provided with a side plate 69 located on one side of the vertical cylinder 61. The outer wall of the vertical cylinder 61 is inclinedly provided with a push groove 70 corresponding to one of the first sliding grooves 66 on the side of the side plate 69. The side plate 69 is vertically slidably connected to a moving block 71 on the side of the side plate 69 near the vertical cylinder 61. The side of the moving block 71 away from the side plate 69 is horizontally provided with a push column 72. The end of the push column 72 away from the moving block 71 passes through the push groove 70 and extends into one of the first sliding grooves 66. At this time, the opposite two sides of the groove wall of the push groove 70 and the opposite two sides of the groove wall of the first sliding groove 66 are in contact with the push column 72.
[0034] like Figure 11 and Figure 12 and Figure 13The two first sliding grooves 66 and the two second sliding grooves 67 form a slide 68. When it is necessary to drive the stirring shaft 2 to rotate and move the two disturbance plates 3 within the tank 1, simply turn on the fourth motor 65. At this time, the rotating shaft of the fourth motor 65 will drive the mounting shaft 63 to rotate, which in turn will drive the stirring shaft 2 to rotate within the tank 1. While the mounting shaft 63 is rotating, since the two second sliding grooves 67 are used to connect the two first sliding grooves 66, and the two second sliding grooves 67 are staggered vertically on opposite sides of the mounting shaft 63, one end of the pusher 72 on the moving block 71 passes through the pusher groove on the vertical cylinder 61. 70 extends into the slide 68 formed by the two first sliding grooves 66 and the two second sliding grooves 67. Therefore, when the mounting shaft 63 rotates, the slide 68 formed by the two first sliding grooves 66 and the two second sliding grooves 67, in cooperation with the push column 72, can drive the moving block 71 to slide vertically up and down on the side plate 69. At this time, through the cooperation of the push column 72 and the push groove 70, the vertical cylinder 61 can be pushed to rotate back and forth on the tank 1. At this time, the two disturbance plates 3 will follow the vertical cylinder 61 and swing back and forth along the rotation axis of the vertical cylinder 61 through the two placement plates 64 respectively, disturbing the raw materials in the tank 1. It is simple and convenient to use.
[0035] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this invention and their equivalents, this invention also intends to include these modifications and variations.
Claims
1. A dissolving tank with a multi-directional stirring structure, characterized in that, The tank includes a tank body (1), a stirring shaft (2), two disturbance plates (3), and a feed pipe (4) set at the top of the tank body (1). The bottom of the tank body (1) is provided with a discharge pipe (5), and a shut-off valve (6) is provided on the discharge pipe (5). The stirring shaft (2) and the two disturbance plates (3) are located inside the tank body (1). The tank body (1) is provided with a drive component for driving the stirring shaft (2) to rotate and driving the two disturbance plates (3) to move inside the tank body (1). Several sets of stirring rods are evenly distributed along the length direction of the stirring shaft (2). Each set of stirring rods includes several stirring blades (7), and each stirring blade (7) is evenly distributed along the circumference of the stirring shaft (2). The driving component includes two grooves (45) opposite to each other at the top of the tank (1), and a column (46) is rotatably connected in each of the two grooves (45). The bottom ends of the two columns (46) extend outside the grooves (45) and are horizontally provided with horizontal rods (47). There are two stirring shafts (2), and the two stirring shafts (2) are rotatably connected to the bottom ends of the two horizontal rods (47). Two internal gear rings (48) are fixedly connected to the top of the tank (1), and the two internal gear rings (48) are coaxial with the two columns (46). Gears (49) are coaxially fixedly connected to the two stirring shafts (2), and the two gears are... The wheels (49) are located in the two internal gear rings (48) and mesh with the two internal gear rings (48) respectively. The top of the two tanks (1) is horizontally provided with a sliding groove (50) between the two columns (46), and a sliding rod (51) is horizontally connected in the sliding groove (50). The two disturbance plates (3) are vertically arranged at the bottom of the sliding rod (51) and are arranged opposite to each other. The tank (1) is provided with a driving member for simultaneously driving the two columns (46) to rotate. When the two columns (46) rotate, a first pushing member is provided between the two stirring shafts (2) for pushing the sliding rod (51) to slide horizontally in the sliding groove (50). The first pusher includes mounting rings (56) that are coaxially rotatably connected to two stirring shafts (2), and both mounting rings (56) are located below the internal gear ring (48). The two mounting rings (56) are connected by a connecting rod (57). The connecting rod (57) is horizontally arranged, and an inverted U-shaped slide (58) is horizontally slidably connected to the connecting rod (57) along the length direction of the connecting rod (57). The top of the slide (58) is fixedly connected to the center of the bottom end of the slide rod (51). The bottom center of the connecting rod (57) is vertically provided with a disturbance rod (59), which is located between two stirring shafts (2), and disturbance plates (60) are provided on both sides of the disturbance rod (59) between two adjacent stirring rods.
2. A dissolving tank with a multi-directional stirring structure as described in claim 1, characterized in that, The driving component includes sprockets (52) that are both located at the top of two columns (46) and are connected by a chain (53). The top of the outer wall of the tank (1) is provided with a bracket (54) and a third motor (55) is provided on the bracket (54) for driving one of the sprockets (52) to rotate.
Citation Information
Patent Citations
Auxiliary material dissolving tank with uniform stirring function
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