A device for preventing and dispersing triazine amide powder agglomeration
Patent Information
- Application Number
- CN202610887956.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-06-18
- Publication Date
- 2026-09-01
AI Technical Summary
[0002]三嗪酰胺是一种重要的农药中间体,其粉体具有较强的吸湿性,且在生产干燥、储存堆放、运输过程中,受水分含量、温度波动、堆积压力及晶体自身特性影响,极易发生溶解-重结晶现象,形成晶桥,导致粉体结块团聚,结块后的粉体流动性差、分散不均匀,严重影响后续配料、反应及制剂加工的稳定性,还会造成物料浪费
1.通过设置由筛网组件与齿梳组件所构成的打散机构,在调节组件及移动组件的配合下实现对待处理物料的粗、细分级式高效打散处理,从而保障对物料的打散效果,其中,筛网组件以晃动及筛孔过滤的方式实现细打散,减轻对物料的刚性破碎,保障物料的均匀性及完整性,解决了现有通用装置打散效果差、适配性不足的问题,且针对性适配当前物料的易碎特性。
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Figure CN122665680A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of chemical equipment technology, specifically a device for preventing and dispersing triazine amide powder agglomeration. Background Technology
[0002] Triazine amide is an important pesticide intermediate. Its powder has strong hygroscopicity. During production, drying, storage, and transportation, it is easily affected by moisture content, temperature fluctuations, stacking pressure, and the characteristics of the crystal itself, which can lead to dissolution and recrystallization, forming crystal bridges. This causes the powder to clump and agglomerate. The agglomerated powder has poor flowability and uneven dispersion, which seriously affects the stability of subsequent ingredient preparation, reaction, and formulation processing, and also causes material waste.
[0003] Currently, most existing powder dispersing devices are general-purpose types. When used for triazine amide powder processing, they have the following core defects, failing to meet actual production needs and lacking a targeted integrated solution for anti-caking and dispersing: 1. Poor dispersing effect; it can only roughly break up large clumps and cannot disperse the clumps to the original powder fineness. Small agglomerates still exist after dispersing. Moreover, the dispersing process can easily cause powder wear and damage to the crystal structure, affecting the chemical activity of triazine amide. 2. It has a single function, only has the function of dispersing, and has no synchronous anti-caking design. The dispersed powder is still prone to re-caking during subsequent storage and transportation, which cannot fundamentally solve the clumping problem and does not meet the requirement of the strong hygroscopicity of triazine amide powder. 3. The operation is cumbersome and the maintenance cost is high. In addition, dust leakage is easy to occur during the dispersal process, which pollutes the environment. At the same time, there are serious problems of powder residue and inconvenient cleaning, which does not meet the environmental protection and convenience requirements of chemical production. 4. Without a graded dispersing structure, it is easy to over-disperse, resulting in uneven powder particle size, or incomplete dispersing, resulting in clumping, thus limiting its adaptability. Summary of the Invention
[0004] To overcome the aforementioned deficiencies of the prior art, this invention provides a triazine amide powder anti-caking and dispersing device. By setting up a dispersing mechanism composed of a screen assembly and a comb assembly, and with the cooperation of an adjusting component and a moving component, it achieves efficient coarse and fine classification dispersing of the material to be processed, thereby ensuring the dispersing effect. The screen assembly achieves fine dispersing through shaking and sieve filtration, reducing rigid crushing of the material and ensuring its uniformity and integrity. Furthermore, the simple structure facilitates maintenance and cleaning, further reducing the burden of equipment and subsequent manual maintenance. A spraying component and a stirring shaft are configured to spray and mix an anti-caking agent onto the dispersed material, thereby inhibiting agglomeration of the dispersed material and solving the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: A triazine amide powder anti-caking and dispersing device includes a base plate, on which a processing box and a spraying assembly are arranged. The spraying assembly is located behind the processing box and is combined with the processing box. The processing box is equipped with a dispersing mechanism for dispersing materials and a stirring shaft for stirring materials. The stirring shaft is located below the dispersing mechanism. A blocking assembly for blocking materials is provided on the discharge port of the processing box. A reduction motor is located on the spraying assembly on the rear side of the processing box. An adjustment mechanism for driving the dispersing mechanism is installed at the output end of the reduction motor. The reduction motor and the stirring shaft are linked by a gear set. The dispersing mechanism includes a screen assembly and a comb assembly, wherein the comb assembly is located above the screen assembly and disperses large clumps in the material. The adjustment mechanism includes an adjustment component and a moving component. The adjustment component is used to connect the geared motor and the screen assembly. The moving component includes two components, which are symmetrically arranged on the adjustment component and connected to the comb assembly.
[0006] As a further embodiment of the present invention, the processing box includes a box body, and multiple support legs are arranged in a matrix on the bottom outer wall of the box body. The bottom of the support legs is fixedly connected to the bottom plate. Two partitions are arranged symmetrically on the left and right sides inside the box body, and a slope plate is arranged symmetrically on the front and back between the two partitions. The screen assembly is movably arranged on the two partitions and located below the two slope plates. The front shell of the box has an inspection port with an inspection plate installed in it. Both sides of the shell have openings with side plates installed in them. The top of the box is fixedly connected to the top with bolts. The discharge port of the box has an integral discharge channel.
[0007] As a further embodiment of the present invention, the sealing assembly includes an electric push rod and a sealing plate. There are two electric push rods, which are symmetrically arranged on the front and rear outer walls of the discharge channel. The sealing plate is inserted into the discharge channel to control the passage of materials. The output ends of the two electric push rods are installed on the sealing plate.
[0008] As a further embodiment of the present invention, the screen assembly includes two screen plates, which are distributed vertically between two partitions, and the two screen plates have corresponding partitions penetrating through their respective sides. The upper screen plate is in contact with the bottom of the slope plate. The comb assembly includes a hollow crossbar located between two partitions. End caps are installed at both ends of the hollow crossbar by screws. Multiple comb rollers for dispersing materials are arranged horizontally and linearly on the hollow crossbar. The multiple comb rollers are linked together by a toothed chain, which is located in the inner cavity of the hollow crossbar. Two traction belts are provided on the toothed chain. The left end of the upper traction belt passes through the corresponding end cap and is tied to the high point of the inner wall of the left partition. The right end of the lower traction belt passes through the corresponding end cap and is tied to the low point of the inner wall of the right partition. The top of the hollow crossbar is symmetrically provided with two inner grooves, and each inner groove is movably connected to a lifting rod, the top of which penetrates through the top cover.
[0009] As a further embodiment of the present invention, the stirring shaft is located directly below the screen assembly, and both ends of the stirring shaft penetrate the corresponding shell walls of the processing box. The gear set includes a driving gear disposed on the output end of the reduction motor, and a driven gear meshing with the driving gear is disposed below the driving gear. The driven gear is installed at the rear end of the stirring shaft.
[0010] As a further embodiment of the present invention, the adjustment assembly includes an elliptical disk and an adjustment rod. The elliptical disk is disposed on the output end of the geared motor. There are two adjustment rods, both of which are movably connected to the elliptical disk. The end of the adjustment rod away from the elliptical disk passes through the corresponding side plate and is fixedly connected to the corresponding screen plate.
[0011] As a further embodiment of the present invention, the movable component includes a support rod disposed on an adjusting rod, a vertical plate integrally disposed at the top end of the support rod, a movable rod movably connected to the vertical plate, the other end of the movable rod being fixedly connected to a corresponding lifting rod, and a guide frame for guiding is also disposed on the movable rod, the bottom of the guide frame being fixedly connected to the top cover by bolts.
[0012] As a further embodiment of the present invention, the spraying assembly includes a temporary storage box, a delivery pump, a U-shaped pipe and a spraying pipe, wherein the temporary storage box is disposed on the base plate and located behind the processing box, the delivery pump is disposed on the top of the temporary storage box, and a delivery pipe is installed at the inlet end of the delivery pump, the bottom end of the delivery pipe extending into the temporary storage box. The spray pipe includes two parts, which are respectively set at the bottom of the corresponding partition. The rear ends of the two spray pipes penetrate the corresponding shell wall of the box. The two ends of the U-shaped pipe are fixedly connected to the two spray pipes, and the U-shaped pipe is connected to the delivery pump through a conduit.
[0013] Compared with the prior art, the beneficial effects of the present invention are: 1. By setting up a dispersing mechanism composed of a screen assembly and a comb assembly, and with the cooperation of the adjusting and moving components, the material to be processed is efficiently dispersed in a coarse and fine classification manner, thereby ensuring the dispersing effect of the material. Among them, the screen assembly achieves fine dispersing by shaking and screen filtration, reducing rigid crushing of the material and ensuring the uniformity and integrity of the material. This solves the problems of poor dispersing effect and insufficient adaptability of existing general devices, and is specifically adapted to the fragile characteristics of the current material.
[0014] 2. The integrated design of "dispersing + anti-caking" allows for the immediate atomization and spraying of anti-caking agent onto the powder after dispersing, and the use of a stirring shaft to agitate the material, resulting in efficient mixing of the material and the anti-caking agent. This inhibits the agglomeration of the powder during subsequent storage and transportation, solving the shortcomings of existing devices that are single-function and unable to solve the agglomeration problem, and meeting the requirements of the powder's strong hygroscopic properties.
[0015] 3. The disintegration mechanism and processing box have a simple structure, which facilitates maintenance and cleaning, further reducing the burden of equipment and subsequent manual maintenance, and solving the problems of complex structure, inconvenient maintenance and high energy consumption of existing devices. Attached Figure Description
[0016] Figure 1 A schematic diagram of the three-dimensional structure of a device for preventing and dispersing triazine amide powder agglomeration. Figure 1 ; Figure 2 A schematic diagram of the three-dimensional structure of a device for preventing and dispersing triazine amide powder agglomeration. Figure 2 ; Figure 3 for Figure 1 A partial sectional view of the structure; Figure 4 for Figure 3 A schematic diagram of the comb assembly structure; Figure 5 for Figure 4 A magnified schematic diagram of the local structure at point A; Figure 6 for Figure 3 A schematic diagram of the screen assembly structure; Figure 7 for Figure 6 A schematic diagram of the axial side view structure; Figure 8 for Figure 3 A schematic diagram of the spraying component structure.
[0017] In the diagram: 1. Base plate; 2. Processing box; 21. Box body; 22. Partition plate; 23. Slope plate; 24. Inspection plate; 25. Side plate; 26. Top cover; 3. Sealing assembly; 31. Electric push rod; 32. Sealing plate; 4. Screen assembly; 5. Comb assembly; 51. Hollow crossbar; 52. End cover; 53. Comb roller; 54. Toothed chain; 55. Lifting rod; 6. Stirring shaft; 7. Gear motor; 8. Adjustment assembly; 81. Elliptical disc; 82. Adjustment rod; 9. Moving assembly; 91. Support rod; 92. Vertical plate; 93. Moving rod; 94. Guide frame; 10. Gear set; 101. Drive gear; 102. Driven gear; 11. Spraying assembly; 111. Temporary storage box; 112. Transfer pump; 113. U-shaped pipe; 114. Spraying pipe. Detailed Implementation
[0018] Please see Figures 1-3 In this embodiment of the invention, a triazine amide powder anti-caking and dispersing device includes a base plate 1, on which a processing box 2 and a spraying component 11 are arranged. The spraying component 11 is located behind the processing box 2 and is combined with the processing box 2. The spraying component 11 sprays an anti-caking agent onto the dispersed material, thereby inhibiting the subsequent agglomeration time of the material and prolonging its dispersed state. The processing box 2 is equipped with a dispersing mechanism for dispersing materials and a stirring shaft 6 for stirring materials. The stirring shaft 6 is located below the dispersing mechanism. The materials to be dispersed enter the area where the stirring shaft 6 is located under the action of gravity. After the spraying component 11 sprays the anti-caking agent, the operation of the stirring shaft 6 makes the materials and the anti-caking agent evenly mixed. The discharge port of the processing box 2 is equipped with a blocking component 3 for material blocking, thereby controlling the passage of material. The rear side of the processing box 2 is equipped with a reduction motor 7 located on the spraying component 11. The output end of the reduction motor 7 is equipped with an adjustment mechanism for driving the movement of the dispersing mechanism. The reduction motor 7 and the stirring shaft 6 are linked by a gear set 10. The reduction motor 7 and the gear set 10 synchronously realize the driving adjustment of the dispersing mechanism and the stirring shaft 6. The dispersing mechanism includes a screen assembly 4 and a comb assembly 5. The comb assembly 5 is located above the screen assembly 4 and is used to disperse large lumps in the material. The comb assembly 5 is used to disperse the large lumps in the material to achieve coarse dispersion of the material. The screen assembly 4, located below the comb assembly 5, is used to disperse the material finely. The combination of the comb assembly 5 and the screen assembly 4 achieves multi-stage processing of the material. The adjustment mechanism includes an adjustment component 8 and a moving component 9. The adjustment component 8 is used to connect the geared motor 7 and the screen assembly 4. The moving component 9 includes two components, which are symmetrically arranged on the adjustment component 8 and connected to the toothed comb assembly 5. The assembly of the two moving components 9 on the adjusting component 8 causes the two moving components 9 to move synchronously with the movement of the adjusting component 8, thereby driving the lifting and lowering of the comb component 5.
[0019] Please see Figure 1 and Figure 3 In this embodiment of the invention, the processing box 2 includes a box body 21. Four support legs are arranged in a matrix on the bottom outer wall of the box body 21. The bottom of the support legs is fixedly connected to the base plate 1. The loading methods between the support legs and the base plate 1 are various, such as welding, bolt fixing, etc. The interior of the box 21 has two partitions 22 arranged symmetrically on the left and right, and a slope 23 arranged symmetrically between the two partitions 22. The screen assembly 4 is movably mounted on the two partitions 22 and located below the two slopes 23. The slope plate 23 is set to block the frame in the screen assembly 4, thereby ensuring that the material to be processed can fall onto the screen of the screen plate, avoiding the accumulation of material and ensuring the processing efficiency of the material. An inspection port is provided on the front shell wall of the enclosure 21, and an inspection plate 24 is installed in the inspection port. Openings are provided on both sides of the shell wall of the enclosure 21, and side plates 25 are provided in the openings. The configuration of the inspection plate 24 and the side plates 25 is to facilitate the inspection and maintenance of the structure inside the enclosure 21. The top of the box 21 is fixedly connected to the top cover 26 by bolts, and the discharge port of the box 21 is integrally provided with a discharge channel.
[0020] The sealing assembly 3 includes an electric push rod 31 and a sealing plate 32. There are two electric push rods 31, which are symmetrically arranged on the front and rear outer walls of the discharge channel. The sealing plate 32 is inserted into the discharge channel to control the passage of materials. The output ends of the two electric push rods 31 are installed on the sealing plate 32. A strip-shaped groove is provided on the right side shell wall of the discharge channel. The sealing plate 32 is inserted into the strip-shaped groove. As the electric push rod 31 runs, it drives the sealing plate 32 to move, thereby facilitating the discharge of materials.
[0021] Please see Figures 6-7 In this embodiment of the invention, the screen assembly 4 includes two screen plates, which are distributed vertically between two partitions 22, and the two screen plates have corresponding partitions 22 passing through their respective sides. The upper screen plate is in contact with the bottom of the slope plate 23. The upper and lower screen plates move horizontally back and forth. When the lumpy material falls between the two screens, it is clamped, squeezed, and sheared by the wires. Large lumps are torn apart and dispersed. Qualified particles pass through the screen holes and fall down. Undispersed lumps are continuously kneaded by the back and forth motion. Screen selection for screen plates: prioritize screens with elastic woven wires that provide good squeezing and kneading effects, avoid rigid perforated plates, and ensure that the mesh size is larger than a single particle but smaller than the normal agglomerated particle size; Please see Figures 2-5 In this embodiment of the invention, the comb assembly 5 includes a hollow crossbar 51 located between two partitions 22. End caps 52 are respectively installed at both ends of the hollow crossbar 51 by screws. Multiple comb rollers 53 for dispersing materials are arranged horizontally and linearly on the hollow crossbar 51. The multiple comb rollers 53 are linked together by a toothed chain 54, and the toothed chain 54 is located in the inner cavity of the hollow crossbar 51. Two traction belts are provided on the toothed chain 54. The left end of the upper traction belt passes through the corresponding end cap 52 and is tied to the high part of the inner wall of the left partition 22. The right end of the lower traction belt passes through the corresponding end cap 52 and is tied to the low part of the inner wall of the right partition 22. When the comb assembly 5 moves up and down, on the one hand, the teeth on each comb roller 53 work with the screen assembly 4 to break up large lumps in the material under vertical movement. On the other hand, the two traction belts pull the toothed chain 54 during the up and down movement of the comb assembly 5, thereby driving the toothed chain 54 to move, which in turn drives each comb roller 53 to rotate, so that the comb assembly 5 further enhances the effect of breaking up large lumps in the material. The top of the hollow crossbar 51 is symmetrically provided with two inner tubes, and each inner tube is movably connected to a lifting rod 55, the top of which passes through the top cover 26.
[0022] The stirring shaft 6 is located directly below the screen assembly 4, and both ends of the stirring shaft 6 penetrate the corresponding shell walls of the processing box 2. The gear set 10 includes a drive gear 101 disposed on the output end of the reduction motor 7, and a driven gear 102 meshing with the drive gear 101 is disposed below it. The driven gear 102 is installed at the rear end of the stirring shaft 6. The total number of teeth of the drive gear 101 is four times the total number of teeth of the driven gear 102. That is, one rotation of the drive gear 101 causes the driven gear 102 to move four times, thus ensuring the mixing effect of the stirring shaft 6 on the material when the reduction motor 7 is running at low speed.
[0023] The adjustment assembly 8 includes an elliptical disk 81 and an adjustment rod 82. The elliptical disk 81 is located on the output end of the geared motor 7. There are two adjustment rods 82, both of which are movably connected to the elliptical disk 81. The end of the adjustment rod 82 away from the elliptical disk 81 passes through the corresponding side plate 25 and is fixedly connected to the corresponding screen plate. An annular groove is provided on the peripheral wall of the elliptical disk 81, and two sliders are slidably connected in the annular groove. The adjusting rod 82 is connected to the sliders.
[0024] The movable component 9 includes a support rod 91 mounted on the adjusting rod 82. A vertical plate 92 is integrally mounted on the top of the support rod 91. An inclined groove is provided on the vertical plate 92. A movable rod 93 is movably connected in the inclined groove. The other end of the movable rod 93 is fixedly connected to a corresponding lifting rod 55. A guide frame 94 for guiding is also provided on the movable rod 93. The bottom of the guide frame 94 is fixedly connected to the top cover 26 by bolts. The guide frame 94 is configured to constrain and guide the moving rod 93 on the one hand, and to assist in supporting the moving rod 93 on the other hand, ensuring that it can move up and down stably with the movement of the vertical plate 92.
[0025] Please see Figure 2 and Figure 8 In this embodiment of the invention, the spraying assembly 11 includes a temporary storage box 111, a delivery pump 112, a U-shaped pipe 113 and a spraying pipe 114. The temporary storage box 111 is disposed on the base plate 1 and located behind the processing box 2. The delivery pump 112 is disposed on the top of the temporary storage box 111, and a feed pipe is installed at the feed end of the delivery pump 112. The bottom end of the feed pipe extends into the temporary storage box 111. There are two spray pipes 114, which are respectively set at the bottom of the corresponding partition 22, and the rear ends of the two spray pipes 114 penetrate the corresponding shell wall of the box 21. The two ends of the U-shaped pipe 113 are fixedly connected to the two spray pipes 114, and the U-shaped pipe 113 is connected to the delivery pump 112 through a conduit. Control valves are also installed at both ends of the U-shaped pipe 113 to control the amount of anti-caking agent sprayed.
[0026] The working principle of this invention is as follows: When the equipment is running, the geared motor 7 is started by the external controller. When the geared motor 7 is running, it synchronously drives the elliptical disk 81 in the adjustment component 8 and the driving gear 101 in the gear set 10 to rotate. The driving gear 101 and the driven gear 102 mesh and drive each other, thereby synchronously driving the stirring shaft 6 to rotate and move, so as to stir the material after multi-stage dispersion treatment. When the elliptical disk 81 rotates, it drives the two adjusting rods 82 on it to move outward or close synchronously, and the movement of the two adjusting rods 82 causes the two moving components 9 connected to them to move synchronously. When the adjusting rod 82 is in motion, it drives the two screen plates in the screen assembly 4 to move synchronously. The two screen plates move in an alternating motion as they move with the corresponding adjusting rod 82, thereby achieving a highly efficient dispersing effect on the material. When the moving component 9 is in motion, the support rod 91 drives the vertical plate 92 to move, and the moving rod 93 is slidably connected to the vertical plate 92. As the vertical plate 92 moves, the moving rod 93 drives the lifting rod 55 in the comb assembly 5 to move up and down. The lifting rod 55 causes the comb assembly 5 to move up and down as a whole. During the lifting and lowering motion, the hollow crossbar 51 in the comb assembly 5 synchronously drives the multiple comb rollers 53 arranged on it to move up and down. During the lifting and lowering motion, the toothed chain 54 arranged on the comb rollers 53 moves under the action of two traction belts, so that each comb roller 53 rotates synchronously during the lifting and lowering motion, thereby realizing the breaking up of large agglomerated materials. After the equipment is pre-run, the material to be processed is put into the box 21 through the feeding pipe. Due to the spatial separation achieved by the two partitions 22, the material falls onto the screen assembly 4 between the two partitions 22. At this time, under the movement of the comb assembly 5 and the screen assembly 4, the material is graded and dispersed. After being broken up, the material falls through the screen holes of the lower screen plate in the screen assembly 4 and then accumulates inside the box 21. At this time, the conveying pump 112 in the spray assembly 11 is started by the external controller to spray the anti-caking agent in the temporary storage box 111 onto the broken up material through the U-shaped pipe 113 and the spray pipe 114. At this time, the continuous movement of the stirring shaft 6 agitates the material and the anti-caking agent, making them evenly mixed. When unloading is required, the electric push rod 31 in the sealing assembly 3 is activated by the external controller. The electric push rod 31 drives the sealing plate 32 to move, thereby opening the discharge channel. This allows the material that has been broken up and processed in the processing box 2 to be discharged under gravity. Furthermore, the continuous operation of the stirring shaft 6 during the material discharge process further improves the efficiency of material discharge.
[0027] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A device for preventing and dispersing triazine amide powder agglomeration, comprising a base plate (1), characterized in that: The base plate (1) is provided with a processing box (2) and a spraying assembly (11). The spraying assembly (11) is located behind the processing box (2) and is combined with the processing box (2). The processing box (2) is provided with a dispersing mechanism for dispersing materials and a stirring shaft (6) for stirring materials. The stirring shaft (6) is located below the dispersing mechanism. The discharge port of the processing box (2) is provided with a sealing assembly (3) for sealing materials. The rear side of the processing box (2) is provided with a reduction motor (7) located on the spraying assembly (11). The output end of the reduction motor (7) is equipped with an adjustment mechanism for driving the dispersing mechanism. The reduction motor (7) and the stirring shaft (6) are linked by a gear set (10). The dispersing mechanism includes a screen assembly (4) and a comb assembly (5), wherein the comb assembly (5) is located above the screen assembly (4) and disperses large clumps in the material. The adjustment mechanism includes an adjustment component (8) and a moving component (9). The adjustment component (8) is used to connect the geared motor (7) and the screen assembly (4). The moving component (9) includes two components, which are symmetrically arranged on the adjustment component (8) and connected to the comb assembly (5).
2. The triazine amide powder anti-caking and dispersing device according to claim 1, characterized in that, The processing box (2) includes a box body (21). Multiple support legs are arranged in a matrix on the bottom outer wall of the box body (21). The bottom of the support legs is fixedly connected to the bottom plate (1). Two partitions (22) are arranged symmetrically on the left and right sides inside the box body (21). Slopes (23) are arranged symmetrically on the front and back between the two partitions (22). The screen assembly (4) is movably arranged on the two partitions (22) and located below the two slopes (23). The front shell wall of the box (21) is provided with an inspection port, and an inspection plate (24) is installed in the inspection port. Both sides of the shell wall of the box (21) are provided with notches, and side plates (25) are provided in the notches. The top of the box (21) is fixedly connected with a top cover (26) by bolts. The discharge port of the box (21) is provided with an integral discharge channel.
3. The triazine amide powder anti-caking and dispersing device according to claim 2, characterized in that, The sealing assembly (3) includes an electric push rod (31) and a sealing plate (32). There are two electric push rods (31), which are symmetrically arranged on the front and rear outer walls of the discharge channel. The sealing plate (32) is inserted into the discharge channel to control the passage of materials. The output ends of the two electric push rods (31) are installed on the sealing plate (32).
4. The triazine amide powder anti-caking and dispersing device according to claim 2, characterized in that, The screen assembly (4) includes two screen plates, which are distributed between two partitions (22) and the two screen plates are respectively connected to the partitions (22) on both sides. The upper screen plate is attached to the bottom of the slope plate (23). The comb assembly (5) includes a hollow crossbar (51) located between two partitions (22). End caps (52) are installed at both ends of the hollow crossbar (51) by screws. Multiple comb rollers (53) for dispersing materials are arranged horizontally on the hollow crossbar (51). The multiple comb rollers (53) are linked together by a toothed chain (54). The toothed chain (54) is located in the inner cavity of the hollow crossbar (51). Two traction belts are provided on the toothed chain (54). The left end of the upper traction belt passes through the corresponding end cap (52) and is tied to the high part of the inner wall of the left partition (22). The right end of the lower traction belt passes through the corresponding end cap (52) and is tied to the low part of the inner wall of the right partition (22). The top of the hollow crossbar (51) is symmetrically provided with two inner tubes, and each inner tube is movably connected with a lifting rod (55), the top of which penetrates the top cover (26).
5. The triazine amide powder anti-caking and dispersing device according to claim 1, characterized in that, The stirring shaft (6) is located directly below the screen assembly (4), and both ends of the stirring shaft (6) penetrate the corresponding shell walls of the processing box (2). The gear set (10) includes a drive gear (101) set on the output end of the reduction motor (7), and a driven gear (102) meshing with the drive gear (101) is provided below the drive gear (101). The driven gear (102) is installed at the rear end of the stirring shaft (6).
6. The triazine amide powder anti-caking and dispersing device according to claim 4, characterized in that, The adjustment assembly (8) includes an elliptical disk (81) and an adjustment rod (82). The elliptical disk (81) is located on the output end of the geared motor (7). There are two adjustment rods (82), both of which are movably connected to the elliptical disk (81). The end of the adjustment rod (82) away from the elliptical disk (81) passes through the corresponding side plate (25) and is fixedly connected to the corresponding screen plate.
7. The triazine amide powder anti-caking and dispersing device according to claim 6, characterized in that, The movable component (9) includes a support rod (91) mounted on an adjusting rod (82). A vertical plate (92) is integrally mounted on the top of the support rod (91). A movable rod (93) is movably connected to the vertical plate (92). The other end of the movable rod (93) is fixedly connected to a corresponding lifting rod (55). A guide frame (94) for guiding is also mounted on the movable rod (93). The bottom of the guide frame (94) is fixedly connected to the top cover (26) by bolts.
8. The triazine amide powder anti-caking and dispersing device according to claim 1, characterized in that, The spraying assembly (11) includes a storage tank (111), a delivery pump (112), a U-shaped pipe (113), and a spraying pipe (114). The storage tank (111) is located on the base plate (1) and behind the processing tank (2). The delivery pump (112) is located on the top of the storage tank (111), and the inlet end of the delivery pump (112) is equipped with a feed pipe, the bottom end of which extends into the storage tank (111). The spray pipe (114) includes two, which are respectively set at the bottom of the corresponding partition (22), and the rear ends of the two spray pipes (114) penetrate the corresponding shell wall of the box (21). The two ends of the U-shaped pipe (113) are fixedly connected to the two spray pipes (114), and the U-shaped pipe (113) is connected to the delivery pump (112) through a conduit.