Rapid dissolving device for phosphate production and use method thereof
By designing a rapid dissolution device for phosphate production, the centrifugal force of the stirring paddle and the shear force of the slider crushes larger particles, and combining with the scraping assembly to clean the inner wall residue, the problem of particles not easily reacting in the production of compound phosphate is solved, and the dissolution efficiency and product quality are improved.
Patent Information
- Application Number
- CN202510461569.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2025-07-08
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
在复配磷酸盐生产过程中,添加剂与磷酸盐原料颗粒形状大小不一,较大颗粒进入配料罐后不易快速反应,影响产品质量和效率。
A quick dissolution device including a stirring mechanism, anti-blocking assembly, a scraping wall assembly and a cleaning assembly is designed to break larger particles using the centrifugal force of the agitator paddle and the shear force of the slider. Combined with the scraping assembly, the inner wall residue is cleaned to prevent clogging, and ensure dissolution efficiency and product quality.
The dissolution of larger particles of phosphate crystals is accelerated, the dissolution efficiency and solution uniformity are improved, the possibility of residual crystals in the device is reduced, and the production efficiency decrease is avoided due to blockage.
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Figure CN120268261A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of food processing equipment, and particularly relates to a rapid dissolving device for phosphate production and its use method. Background Art
[0002] Phosphate is one of the natural components of almost all foods and is widely used in food processing as an important food ingredient and functional additive. It is of great significance in inorganic chemistry, biochemistry and biogeochemistry. Compound phosphate is composed of two or more phosphates combined by physical mixing or chemical modification. The interaction and synergistic effect of its various phosphate varieties can effectively make up for the defects of single phosphate in application effect.
[0003] However, in the production process of compound phosphate, the shapes and sizes of the additive and phosphate raw material particles are different. Larger particles are not easy to react quickly after entering the batching tank, which affects the product quality and efficiency. Summary of the Invention
[0004] To solve the above technical problems, the present invention provides a rapid dissolving device for phosphate production, including a workbench. Two storage tanks are fixedly connected to the top of the workbench. Temperature control boxes are fixedly connected to the side walls of the two storage tanks. A stirring bin is fixedly connected to the top of the storage tank on the left. A motor is fixedly connected to the top of the stirring bin.
[0005] A stirring mechanism, the stirring mechanism includes a stirring paddle, a transmission rod one, a bidirectional threaded rod, a transmission rod two for driving the stirring paddle to rotate, and an anti-blocking component for preventing the filter holes of the stirring paddle from being blocked;
[0006] The output shaft of the motor is fixedly connected to the transmission rod one. The end of the transmission rod one away from the motor is fixedly connected to the bidirectional threaded rod. The other end of the bidirectional threaded rod is fixedly connected to the transmission rod two. The transmission rod two rotates through the stirring bin and extends to the outside. The side wall of the transmission rod two is fixedly connected to the stirring paddle. A funnel filter screen is fixedly connected to the bottom of the stirring bin.
[0007] Preferably, the anti-blocking component includes a chute one opened on the side wall of the stirring paddle. A slider one is slidably connected inside the chute one. A plurality of rollers are rotatably connected inside the slider one. A scraping wall component is arranged on the side wall of the bidirectional threaded rod.
[0008] Preferably, the scraping wall component includes a transmission plate threadedly penetrating through the side wall of the bidirectional threaded rod. Transmission rods three are fixedly connected to the left and right side walls of the transmission plate. Scraping plates one are fixedly connected to the ends of the two transmission rods three away from the transmission plate.
[0009] Preferably, the scraping wall assembly further includes a second chute opened at one side wall of the scraper. A second slider is slidably connected inside the second chute. A second scraper is rotatably connected to the side walls of several second sliders. Two grooves are opened at the side walls of the second sliders.
[0010] Preferably, the scraping wall assembly further includes two limiting shafts fixedly connected inside the grooves. A second scraper is rotatably connected to the side walls of the two limiting shafts. The two second scrapers are slidably connected to the inner walls of the grooves.
[0011] Preferably, a third chute is opened at the side wall of the mixing bin. A first limiting block is slidably connected inside the third chute. The first limiting block is fixedly connected to the second slider. A cleaning assembly is arranged at the bottom of the mixing bin.
[0012] Preferably, the cleaning assembly includes a leakage trough opened at the bottom of the mixing bin. A threaded rod is fixedly connected to the bottom extension of the second transmission rod. A second limiting block is fixedly connected to the bottom of the threaded rod.
[0013] Preferably, the cleaning assembly further includes a third slider threadedly penetrating through the side wall of the threaded rod. Two funnels are arranged below the leakage trough. Both funnels are fixedly connected to the mixing bin.
[0014] Preferably, the cleaning assembly further includes stoppers arranged inside the two funnels. Transmission rods four are fixedly connected to the bottoms of the two stoppers. Both transmission rods four are fixedly connected to the transmission block. A feeding pipe is fixedly connected to the bottom of the mixing bin.
[0015] A method for using a rapid dissolving device for phosphate production includes the following steps:
[0016] S1: Connect the power supply. First, turn on the motor. The motor drives the first transmission rod to rotate. The first transmission rod drives the bidirectional threaded rod to rotate. The bidirectional threaded rod drives the second transmission rod to rotate, thereby driving the stirring paddle to rotate for stirring.
[0017] S2: Put in the raw materials. Then, add the prepared water and raw materials into the device from the top of the mixing bin according to the ratio. Inside the mixing bin, the raw materials will first enter the funnel filter.
[0018] The present invention has the following beneficial effects:
[0019] (1) The present invention sets up a stirring mechanism by utilizing the characteristic of generating centrifugal force during the stirring process. First, the motor is turned on. The motor drives the first transmission rod to rotate. The first transmission rod will drive the bidirectional threaded rod to rotate. The bidirectional threaded rod drives the second transmission rod to rotate, thereby driving the stirring paddle to rotate for stirring. Then, the prepared water and raw materials are added into the device from the top of the stirring bin according to the ratio. Inside the stirring bin, the raw materials will first enter the funnel filter screen. During the stirring process, relatively small raw material particles will dissolve or pass through the holes on the stirring paddle through the funnel filter screen. However, larger phosphate crystal particles are not easily dissolved and are also not easily permeable through the filter screen. Therefore, under the action of centrifugal force, the raw materials rotate with the liquid and impact on the inner walls of the funnel filter screen and the stirring paddle, which will accelerate the fragmentation and dissolution of the larger phosphate crystal particles, reduce the time required for the dissolution of the phosphate crystals, make the solution mixture more uniform, and improve the dissolution efficiency.
[0020] (2) The present invention is provided with an anti-blocking component by utilizing the characteristic that the rotation of the above-mentioned stirring paddle will generate centrifugal force on the slider. During the stirring process, some crystals of appropriate size may cause blockage of the filter holes on the funnel filter screen and the stirring paddle. During the rotation of the stirring paddle, it will be close to the inner wall of the funnel filter screen. Therefore, there will be a shearing force on the crystals blocking the filter holes of the funnel filter screen to break and dissolve the crystals. At the same time, the first slider will slide in the first chute under the action of centrifugal force, and will shear the blocked filter holes above, avoiding affecting the dissolution efficiency of the phosphate crystals due to the blockage of the filter screen.
[0021] (3) The present invention is provided with a wall-scraping component. During the rotation of the stirring paddle, the first transmission rod drives the bidirectional threaded rod to rotate. Therefore, the transmission plate will reciprocate on the bidirectional threaded rod, and at the same time, it will drive the first scraper to move up and down and rotate along with the transmission plate through the transmission rod. The first scraper will scrape the inner wall of the stirring bin, so that the liquid or crystals remaining on the inner wall will be scraped off. The scraped liquid or crystals will flow down the second chute to the bottom of the device and be scraped into the leakage trough by the scraper. The second slider will slide inside the third chute along with the rotation of the first scraper, so that the second slider will slide up and down inside the second chute. At the same time, when the second slider slides upward, the second scraper will rotate inward and will not scrape the inner wall of the second chute. When moving downward, the second scraper will move outward and scrape the inner wall of the second chute, avoiding blockage caused by a large amount of phosphate crystallization remaining in the second chute during long-term operation, cleaning and recycling the remaining phosphate solution or crystals in the device, and reducing the possibility of bacteria breeding due to the remaining phosphate crystallization in the device.
[0022] (4) The present invention is provided with a cleaning component. During stirring, the slider will always remain at the bottom of the threaded rod. When it is necessary to discharge after stirring is completed, the motor rotates in reverse, and the slider will move upward along the threaded rod until it stops after squeezing the transmission block to move the plug upward. The upward movement of the plug allows the dissolved liquid to flow from the funnel into the feed pipe through the leakage groove. When all the solution has flowed out, reverse the motor, the slider will reset, the transmission block will drive the plug to reset and block the liquid outlet, and at the same time, the slider will move downward and scrape the inner wall of the feed pipe, avoiding the deposition of phosphate crystals on the inner wall of the feed pipe due to long-term use of the device and falling into the feed pipe, which affects the product quality. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0024] Figure 1 It is a schematic cross-sectional view of the overall structure of the present invention;
[0025] Figure 2 It is a schematic diagram of the overall structure of the present invention;
[0026] Figure 3 For the present invention Figure 1 An enlarged schematic view of A in the present invention;
[0027] Figure 4 It is a schematic cross-sectional view of the cleaning component structure of the present invention;
[0028] Figure 5 For the present invention Figure 4 An enlarged schematic view of B in the present invention;
[0029] Figure 6 For the present invention Figure 4 An enlarged schematic view of D in the present invention;
[0030] Figure 7 It is a schematic cross-sectional view of the cleaning component structure of the present invention;
[0031] Figure 8 For the present invention Figure 7 An enlarged schematic view of C in the present invention;
[0032] Figure 9 It is a schematic partial cross-sectional view of the structure of the present invention;
[0033] Figure 10 It is a schematic partial structure view of the scraping wall component of the present invention;
[0034] Figure 11 It is a schematic diagram of the working process of the present invention.
[0035] In the attached drawings, the list of components represented by each reference numeral is as follows:
[0036] In the figure: 1, workbench; 11, storage box; 12, temperature control box; 13, stirring bin; 14, motor; 2, stirring mechanism; 21, funnel filter screen; 22, first transmission rod; 23, bidirectional threaded rod; 24, second transmission rod; 25, stirring paddle; 3, anti-blocking component; 31, first chute; 32, first slider; 33, roller; 4, wall scraping component; 41, transmission plate; 42, third transmission rod; 43, first scraper; 44, second chute; 45, second slider; 46, limiting shaft; 47, second scraper; 48, first limiting block; 49, third chute; 410, groove; 5, cleaning component; 51, leakage trough; 52, threaded rod; 53, second limiting block; 54, third slider; 55, funnel; 56, plug; 57, fourth transmission rod; 58, transmission block; 59, feeding pipe. Specific embodiments
[0037] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0038] Example 1, please refer to Figure 1 - Figure 4 , the present invention is a rapid dissolution device for phosphate production, including a workbench 1. Two storage boxes 11 are fixedly connected to the top of the workbench 1. Temperature control boxes 12 are fixedly connected to the side walls of the two storage boxes 11. A stirring bin 13 is fixedly connected to the top of the storage box 11 on the left side. A motor 14 is fixedly connected to the top of the stirring bin 13;
[0039] A stirring mechanism 2, the stirring mechanism 2 includes a stirring paddle 25, a first transmission rod 22, a bidirectional threaded rod 23, and a second transmission rod 24 for driving the stirring paddle 25 to rotate, and an anti-blocking component 3 for preventing the filter holes of the stirring paddle 25 from being blocked;
[0040] The output shaft of the motor 14 is fixedly connected to the first transmission rod 22. The end of the first transmission rod 22 far from the motor 14 is fixedly connected to the bidirectional threaded rod 23. The other end of the bidirectional threaded rod 23 is fixedly connected to the second transmission rod 24. The second transmission rod 24 rotates through the stirring bin 13 and extends outside the stirring bin 13. The side wall of the second transmission rod 24 is fixedly connected to the stirring paddle 25. The bottom of the stirring bin 13 is fixedly connected with a funnel filter screen 21. First, turn on the motor 14. The motor drives the first transmission rod 22 to rotate. The first transmission rod 22 drives the bidirectional threaded rod 23 to rotate. The bidirectional threaded rod 23 drives the second transmission rod 24 to rotate, thereby driving the stirring paddle 25 to rotate for stirring. Then, add the prepared water and raw materials into the device from the top of the stirring bin 13 according to the ratio. Inside the stirring bin 13, the raw materials first enter the funnel filter screen 21. During the stirring process, the relatively small raw material particles will dissolve or pass through the holes on the funnel filter screen 21 and the stirring paddle 25. However, the larger phosphate crystal particles are not easy to dissolve and are not easy to pass through the filter screen. Therefore, under the action of centrifugal force, the raw materials rotate with the liquid and impact on the inner walls of the funnel filter screen 21 and the stirring paddle 25, which will accelerate the crushing and dissolution of the larger phosphate crystal particles, reduce the time required for the dissolution of the phosphate crystals, make the solution mix more evenly, and improve the dissolution efficiency. The model of the motor used in this device is 8RDGC-25G.
[0041] Embodiment 2. Please refer to Figure 1 - Figure 11 In this invention, it is a rapid dissolution device for phosphate production. On the basis of Embodiment 1, the anti-blocking component 3 includes a first chute 31 opened on the side wall of the stirring paddle 25. A first slider 32 is slidably connected inside the first chute 31. Several rollers 33 are rotatably connected inside the first slider 32. A scraping wall component 4 is arranged on the side wall of the bidirectional threaded rod 23. During the stirring process, some crystals with appropriate sizes may cause blockage of the filter holes on the funnel filter screen 21 and the stirring paddle 25. During the rotation of the stirring paddle 25, it will closely adhere to the inner wall of the funnel filter screen 21. Therefore, there will be a shearing force on the crystals blocking the filter holes of the funnel filter screen 21 to break and dissolve the crystals. At the same time, the first slider 32 will slide inside the first chute 31 under the action of centrifugal force, and will shear the blocked filter holes on the first chute 31 to avoid affecting the dissolution efficiency of the phosphate crystals due to filter screen blockage.
[0042] The scraping wall assembly 4 includes a transmission plate 41 threaded through the side wall of the bidirectional threaded rod 23. Transmission rods three 42 are fixedly connected to both the left and right side walls of the transmission plate 41. At one end of each of the two transmission rods three 42 away from the transmission plate 41, a first scraper 43 is fixedly connected. The scraping wall assembly 4 further includes a second chute 44 opened on the side wall of the first scraper 43. Inside the second chute 44, a second slider 45 is slidably connected. Rotatably connected to the side walls of several second sliders 45 are second scrapers 47. On the side walls of the second sliders 45, two grooves 410 are opened. The scraping wall assembly 4 further includes two limiting shafts 46 fixedly connected inside the grooves 410. Rotatably connected to the side walls of the two limiting shafts 46 are second scrapers 47. The two second scrapers 47 are slidably connected to the inner walls of the grooves 410. A third chute 49 is opened on the side wall of the mixing bin 13. Inside the third chute 49, a first limiting block 48 is slidably connected. The first limiting block 48 is fixedly connected to the second slider 45. A cleaning assembly 5 is provided at the bottom of the mixing bin 13. During the rotation of the mixing paddle 25, the transmission rod one 22 drives the bidirectional threaded rod 23 to rotate. Therefore, the transmission plate 41 will perform a reciprocating motion on the bidirectional threaded rod 23, and at the same time, it will drive the first scraper 43 to move up and down and rotate along with the transmission plate 41 through the transmission rods three 42. The first scraper 43 will scrape the inner wall of the mixing bin 13, so that the liquid or crystals remaining on the inner wall will be scraped off. The scraped liquid or crystals will flow down the second chute 44 to the bottom of the device and be scraped into the leakage trough 51 by the scraper. The second slider 45 will slide inside the third chute 49 along with the rotation of the first scraper 43, so that the second slider 45 will slide up and down inside the second chute 44. At the same time, when the second slider 45 slides upward, the second scraper 47 will rotate toward the inside of the groove 410 and will not scrape the inner wall of the second chute 44. When moving downward, the second scraper 47 will move out of the groove 410 and scrape the inner wall of the second chute 44, avoiding blockage caused by a large amount of phosphate crystals remaining in the second chute 44 due to long-term operation. The residual phosphate solution or crystals inside the device are cleaned and recycled, reducing the possibility of bacteria breeding due to the residual phosphate crystals inside the device.
[0043] The cleaning component 5 includes a leakage trough 51 opened at the bottom of the stirring bin 13. A bottom side extension of the second transmission rod 24 is fixedly connected with a threaded rod 52. The bottom of the threaded rod 52 is fixedly connected with a second limiting block 53. The cleaning component 5 further includes a third slider 54 threadedly penetrating through the side wall of the threaded rod 52. Two funnels 55 are arranged below the leakage trough 51. Both of the two funnels 55 are fixedly connected with the stirring bin 13. The cleaning component 5 further includes stoppers 56 arranged inside the two funnels 55. The bottoms of the two stoppers 56 are both fixedly connected with fourth transmission rods 57. Both of the two fourth transmission rods 57 are fixedly connected with a transmission block 58. The bottom of the stirring bin 13 is fixedly connected with a feed pipe 59. During stirring, the third slider 54 will always stay at the bottom of the threaded rod 52. When discharging is required after stirring is completed, the motor 14 rotates in reverse. The third slider 54 will move upward along the threaded rod 52 until it stops after squeezing the transmission block 58 to make the stopper 56 move upward. The upward movement of the stopper 56 enables the dissolved liquid to flow into the feed pipe 59 from the funnel 55 through the leakage trough 51. When all the solution has flowed out, the motor 14 is reversed. The third slider 54 will reset. The transmission block 58 will drive the stopper 56 to reset to block the liquid outlet. At the same time, the third slider 54 moves downward and scrapes the inner wall of the feed pipe 59, avoiding the influence on the product quality caused by the deposition of phosphate crystals on the inner wall of the feed pipe 59 and falling into the feed pipe 59 due to long-term use of the device.
[0044] A method for using a rapid dissolution device for phosphate production includes the following steps:
[0045] S1: Connect the power supply. First, turn on the motor 14. The motor 14 drives the first transmission rod 22 to rotate. The first transmission rod 22 drives the bidirectional threaded rod 23 to rotate. The bidirectional threaded rod 23 drives the second transmission rod 24 to rotate, thereby driving the stirring paddle 25 to rotate for stirring.
[0046] S2: Feed the raw materials. Then, add the prepared water and raw materials into the device from the top of the stirring bin 13 according to the ratio. Inside the stirring bin 13, the raw materials will first enter the funnel filter 21.
[0047] A specific application of this embodiment is as follows: First, turn on the motor 14. The motor 14 drives the first transmission rod 22 to rotate. The first transmission rod 22 drives the bidirectional threaded rod 23 to rotate. The bidirectional threaded rod 23 drives the second transmission rod 24 to rotate, thereby driving the stirring paddle 25 to rotate for stirring. Then, the prepared water and raw materials are added into the device from the top of the stirring bin 13 according to the ratio. Inside the stirring bin 13, the raw materials first enter the funnel filter 21. During the stirring process, relatively small raw material particles will dissolve or pass through the holes on the funnel filter 21 and the stirring paddle 25, while larger phosphate crystal particles are not easily dissolved and do not easily pass through the filter. Therefore, under the action of centrifugal force, the raw materials rotate with the liquid and impact on the inner walls of the funnel filter 21 and the stirring paddle 25, which will accelerate the crushing and dissolution of larger phosphate crystal particles, reduce the time required for the dissolution of phosphate crystals, make the solution mixture more uniform, and improve the dissolution efficiency.
[0048] During the stirring process, some crystals of appropriate size may cause blockage of the filter holes on the funnel filter 21 and the stirring paddle 25. During the rotation of the stirring paddle 25, it will closely adhere to the inner wall of the funnel filter 21. Therefore, there will be a shearing force on the crystals blocking the filter holes of the funnel filter 21 to break and dissolve the crystals. At the same time, the first slider 32 will slide in the first chute 31 under the action of centrifugal force, and will shear the blocked filter holes on the first chute 31 to avoid affecting the dissolution efficiency of phosphate crystals due to filter blockage.
[0049] During the rotation of the stirring paddle 25, the first transmission rod 22 drives the bidirectional threaded rod 23 to rotate. Therefore, the transmission plate 41 will reciprocate on the bidirectional threaded rod 23, and at the same time, it will drive the first scraper 43 to move up and down and rotate along with the transmission plate 41 through the third transmission rod 42. The first scraper 43 will scrape the inner wall of the stirring bin 13, so that the remaining liquid or crystals on the inner wall will be scraped off. The scraped liquid or crystals will flow down the second chute 44 to the bottom of the device and be scraped into the leak trough 51 by the scraper. The second slider 45 will slide inside the third chute 49 along with the rotation of the first scraper 43, so that the second slider 45 will slide up and down inside the second chute 44. At the same time, when the second slider 45 slides upward, the second scraper 47 will rotate into the groove 410 and will not scrape the inner wall of the second chute 44. When moving downward, the second scraper 47 will move out of the groove 410 and scrape the inner wall of the second chute 44 to avoid blockage caused by a large amount of phosphate crystallization remaining in the second chute 44 during long-term operation. Clean and recycle the remaining phosphate solution or crystals in the device, reducing the possibility of bacteria breeding due to the remaining phosphate crystallization in the device.
[0050] During stirring, the third slider 54 will always remain at the bottom of the threaded rod 52. When it is necessary to discharge the solution after stirring is completed, the motor 14 rotates in reverse, and the third slider 54 will move upward along the threaded rod 52 until it stops after squeezing the transmission block 58 to move the plug 56 upward. The upward movement of the plug 56 causes the dissolved liquid to flow from the funnel 55 into the feed pipe 59 through the leakage groove 51. When all the solution has flowed out, the motor 14 is reversed, the third slider 54 will reset, and the transmission block 58 will drive the plug 56 to reset to block the liquid outlet. At the same time, the third slider 54 moves downward and scrapes the inner wall of the feed pipe 59, avoiding the deposition of phosphate crystals on the inner wall of the feed pipe 59 due to long-term use of the device, which may fall into the feed pipe and affect the product quality.
[0051] The preferred embodiments of the present invention disclosed above are only used to help explain the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and utilize the present invention well. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. A rapid dissolution device for phosphate production, comprising a workbench (1), two storage tanks (11) are fixedly connected to the top of the workbench (1), temperature control boxes (12) are fixedly connected to the side walls of the two storage tanks (11), a stirring bin (13) is fixedly connected to the top of the storage tank (11) on the left side, and a motor (14) is fixedly connected to the top of the stirring bin (13), characterized in that, It further includes: A stirring mechanism (2), the stirring mechanism (2) includes a stirring paddle (25), a first transmission rod (22), a bidirectional threaded rod (23), and a second transmission rod (24) for driving the rotation of the stirring paddle (25), and an anti-blocking component (3) for preventing the filter holes of the stirring paddle (25) from being blocked; The output shaft of the motor (14) is fixedly connected to the first transmission rod (22), one end of the first transmission rod (22) away from the motor (14) is fixedly connected to the bidirectional threaded rod (23), the other end of the bidirectional threaded rod (23) is fixedly connected to the second transmission rod (24), the second transmission rod (24) rotates through the stirring bin (13) and extends outside the stirring bin (13), the side wall of the second transmission rod (24) is fixedly connected to the stirring paddle (25), and the bottom of the stirring bin (13) is fixedly connected with a funnel filter screen (21).
2. The rapid dissolution device for phosphate production according to claim 1, wherein: The anti-blocking component (3) includes a first chute (31) opened on the side wall of the stirring paddle (25), a first slider (32) is slidably connected inside the first chute (31), several rollers (33) are rotatably connected inside the first slider (32), and a wall scraping component (4) is arranged on the side wall of the bidirectional threaded rod (23).
3. The rapid dissolution device for phosphate production according to claim 2, wherein: The wall scraping component (4) includes a transmission plate (41) threadedly penetrating through the side wall of the bidirectional threaded rod (23), transmission rods three (42) are fixedly connected to the left and right side walls of the transmission plate (41), and scraping plates one (43) are fixedly connected to the ends of the two transmission rods three (42) away from the transmission plate (41).
4. The rapid dissolution device for phosphate production according to claim 3, characterized in that: The wall scraping component (4) further includes a second chute (44) opened on the side wall of the scraping plate one (43), second sliders (45) are slidably connected inside the second chute (44), scraping plates two (47) are rotatably connected to the side walls of several second sliders (45), and two grooves (410) are opened on the side walls of the second sliders (45).
5. A rapid dissolution device for phosphate production according to claim 4, characterized in that: The wall scraping component (4) further includes two limiting shafts (46) fixedly connected inside the grooves (410), scraping plates two (47) are rotatably connected to the side walls of the two limiting shafts (46), and the two scraping plates two (47) are slidably connected to the inner walls of the grooves (410).
6. The rapid dissolution device for phosphate production according to claim 5, wherein: The wall scraping component (4) further includes a third chute (49) opened on the side wall of the stirring bin (13), a first limiting block (48) is slidably connected inside the third chute (49), the first limiting block (48) is fixedly connected to the second slider (45), and a cleaning component (5) is arranged at the bottom of the stirring bin (13).
7. The rapid dissolution device for phosphate production according to claim 6, wherein: The cleaning component (5) includes a leakage trough (51) opened at the bottom of the stirring bin (13), a threaded rod (52) is fixedly connected to the bottom extension of the second transmission rod (24), and a second limiting block (53) is fixedly connected to the bottom of the threaded rod (52).
8. A rapid dissolution device for phosphate production according to claim 7, characterized in that: The cleaning component (5) further includes a third slider (54) threadedly penetrating through the side wall of the threaded rod (52), two funnels (55) are arranged below the leakage trough (51), and the two funnels (55) are both fixedly connected to the stirring bin (13).
9. A rapid dissolution device for phosphate production according to claim 8, characterized in that: The cleaning component (5) further includes plugs (56) arranged inside the two funnels (55). The bottoms of the two plugs (56) are fixedly connected with transmission rods four (57), and the two transmission rods four (57) are fixedly connected with a transmission block (58). The bottom of the stirring bin (13) is fixedly connected with a feeding pipe (59).
10. A method for using a rapid dissolution device for phosphate production, which uses a rapid dissolution device for phosphate production as described in claim 9, characterized in that: including the following steps S1: Connect the power supply. First, turn on the motor (14). The motor (14) drives the transmission rod one (22) to rotate. The transmission rod one (22) drives the bidirectional threaded rod (23) to rotate. The bidirectional threaded rod (23) drives the transmission rod two (24) to rotate, thereby driving the stirring paddle (25) to rotate for stirring; S2: Put in the raw materials. Then, add the prepared water and raw materials into the device from the top of the stirring bin (13) according to the ratio. Inside the stirring bin (13), the raw materials will first enter the funnel filter (21).