A condensate polishing resin separator

CN224704422UActive Publication Date: 2026-09-01BEIJING CLP JIAMEI ENVIRONMENTAL PROTECTION TECH
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Patent Information

Application Number
CN202521825770.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-26
Publication Date
2026-09-01
Estimated Expiration
2035-08-26

AI Technical Summary

Technical Problem

[0004]分离罐内部缺陷对分离完成的阴离子树脂与阳离子树脂之间进行分隔的分隔组件,在对位于下层的阳离子树脂通过分离罐底部排料口排出后,易发生位于上层的部分阴离子树脂随分离液流动从而与阳离子树脂同步排出的情况,从而导致排出的阳离子树脂内含有阴离子树脂的情况,降低分离效果

Benefits of technology

[0016]1、在对阴离子树脂和阳离子树脂进行分离处理时,实现对分离罐内的待分离的阴离子和阳离子混合树脂进行搅动效果,从而提高对阴离子和阳离子混合树脂分离效率,对阴离子树脂和阳离子树脂进行排出时,有效的避免对阳离子树脂下料时,部分阴离子树脂随阳离子树脂同步排出,导致阳离子树脂内含有阴离子树脂的情况,提高分离效果;

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Abstract

This invention provides a resin separation tank for condensate polishing, comprising a base, a separation tank with an open top fixedly mounted on the top of the base, a fixing plate fixedly mounted on the top of the outer wall of the separation tank, a vertical guide rod fixedly mounted on the top of the fixing plate, an mounting plate slidably mounted on the guide rod along its axis, and a driving mechanism acting on the mounting plate. This invention, when separating anion exchange resin and cationic resin, achieves a stirring effect on the mixed anion and cationic resin to be separated within the separation tank, thereby improving the separation efficiency. When discharging the anion and cationic resins, it effectively avoids the situation where some anion resin is discharged simultaneously with the cationic resin, resulting in the cationic resin containing anion resin, thus improving the separation effect.
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Description

Technical Field

[0001] This utility model relates to the field of water treatment technology, specifically to a resin separation tank for condensate polishing. Background Technology

[0002] Condensate polishing resin separators are crucial equipment in condensate polishing systems of thermal power plants or nuclear power plants. They are primarily used to separate the anion and cation exchange resins after the mixed bed has become exhausted. The mixed anion and cation resins are separated through hydraulic backwashing, preparing them for subsequent resin regeneration.

[0003] Existing separation tanks, when separating anion and cation exchange resins, transport spent resin into the tank, then inject a separation solution. The density difference between the anion and cation resins is used to achieve stratification. After stratification, the lower-layer cation resin or the upper-layer anion resin is discharged with the water flow through the discharge port at the bottom of the tank, thus achieving separation of the anion and cation resins. Furthermore, some separation tanks are equipped with a stirring mechanism to agitate the anion and cation resins during separation, thereby improving separation efficiency. However, in practical use, the following drawbacks still exist:

[0004] The internal defects of the separator in the separator can cause a problem. After the cation resin in the lower layer is discharged through the discharge port at the bottom of the separator, some of the anion resin in the upper layer flows with the separation liquid and is discharged simultaneously with the cation resin. This results in the discharged cation resin containing anion resin, which reduces the separation efficiency. Utility Model Content

[0005] To address the shortcomings of existing technologies, this utility model provides a condensate polishing resin separation tank, which solves the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] A condensate polishing resin separator includes a base, a separator with an open top fixedly mounted on the top of the base, a fixed plate fixedly mounted on the top of the outer wall of the separator, a vertical guide rod fixedly mounted on the top of the fixed plate, an mounting plate slidably mounted on the guide rod along the axis of the guide rod, a driving mechanism acting on the mounting plate mounted on the fixed plate for sliding or stopping the mounting plate along the guide rod, a discharge port communicating with the interior of the separator at the bottom of the separator, a discharge pipe communicating with the discharge port fixedly mounted at the bottom of the separator, an outlet pipe communicating with the interior of the outlet pipe fixedly mounted on one side of the outlet pipe, a sealing block for sealing the interior of the outlet pipe slidably mounted vertically inside the outlet pipe, the top of the sealing block being flush with the top of the outlet pipe, a driving element acting on the sealing block mounted on the outlet pipe for sliding or stopping the sealing block inside the outlet pipe;

[0008] A vertically oriented rotating shaft is rotatably mounted on the mounting plate. A second motor is fixedly mounted on the mounting plate, and the output shaft of the second motor is connected to the rotating shaft via a bevel gear assembly. The bottom end of the rotating shaft extends into the separation tank. An annular block is coaxially fixed to the bottom of the outer wall of the rotating shaft. Agitator blocks are fixedly mounted in a circular array on the outer wall of the annular block. A shaft hole extending to the bottom of the rotating shaft is opened at the center of the top of the rotating shaft. A rotating shaft is rotatably mounted on the rotating shaft and within the shaft hole. The bottom of the rotating shaft extends below the rotating shaft and is coaxial with it. A ring plate is fixedly connected to the bottom of the ring block. Multiple agitator plates are coaxially fixed to the outer wall of the ring plate. Each agitator plate corresponds to one agitator block. The agitator plates can be hidden under the agitator blocks and fit against the top of the agitator blocks. The agitator plates can also seal between two adjacent agitator blocks. The ends of both the agitator plates and the agitator blocks fit against the inner wall of the separation tank. Multiple drainage holes are provided on the top of both the agitator plates and the agitator blocks. A motor for driving the rotating shaft is fixedly installed on the rotating shaft.

[0009] Furthermore: the drive mechanism includes a threaded column that is vertically rotatably mounted on a fixed plate, the threaded column being threadedly connected to the mounting plate, and a motor being fixedly mounted on the bottom of the fixed plate, the output shaft of the motor being connected to the threaded column through a bevel gear assembly.

[0010] Furthermore: the driving component includes a driving rod that is vertical and threaded through the bottom of the discharge pipe, the top of the driving rod extends into the discharge pipe and is rotatably connected to the sealing block, and a knob is coaxially fixed to the bottom wall of the driving rod.

[0011] Furthermore: the top of the annular block is inclined downwards in a direction away from the axis of rotation, and the top of the agitating block is inclined downwards on both sides.

[0012] Furthermore, an observation port communicating with the interior of the separation tank is provided on one side of the separation tank, and a transparent glass for sealing the interior of the observation port is fixedly installed on the separation tank and located inside the observation port.

[0013] Furthermore: a feeding mechanism is installed on the base, and the discharge end of the feeding mechanism is located above the opening end of the separation tank. The feeding mechanism is used to transport and feed the resin to be separated.

[0014] Furthermore: the feeding mechanism includes a fixed frame fixedly installed on the top of the base and located on one side of the separation tank. An inclined conveying shell is fixedly installed on the top of the fixed frame. The highest end of the conveying shell extends to the top of the separation tank. An auger rod is rotatably installed inside the conveying shell. The outer side wall of the auger rod is in contact with the inner side wall of the conveying shell. A motor for driving the auger rod to rotate is fixedly installed on the conveying shell. A discharge pipe connected to the interior is fixedly installed at the bottom and the highest point of the conveying shell. The bottom of the discharge pipe extends to the top of the opening end of the separation tank. A feeding hopper connected to the interior is fixedly installed at the top and the lowest point of the conveying shell.

[0015] This invention provides a resin separation tank for condensate polishing. Compared with the prior art, it has the following advantages:

[0016] 1. When separating anion exchange resin and cation exchange resin, the mixture of anion and cation exchange resins in the separation tank is agitated to improve the separation efficiency. When discharging the anion and cation exchange resins, the process effectively avoids the situation where some anion exchange resin is discharged simultaneously with the cation exchange resin, resulting in the presence of anion exchange resin within the cation exchange resin, thus improving the separation effect.

[0017] 2. The design of the observation port and transparent glass facilitates observation of the separation status of anion exchange resin and cationic resin inside the separation tank through the transparent glass.

[0018] 3. The design of the feeding mechanism facilitates the feeding of the resin to be separated into the separation tank. Attached Figure Description

[0019] To more clearly illustrate the technical solutions in the embodiments of this utility model 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 this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0020] Figure 1 A three-dimensional structural schematic diagram of the present invention is shown;

[0021] Figure 2 A schematic diagram of the internal structure of the feeding mechanism of this utility model is shown;

[0022] Figure 3 A schematic diagram of the installation structure of the stirring block of this utility model is shown;

[0023] Figure 4 A schematic diagram of the installation structure of the sealing block of this utility model is shown;

[0024] Figure 5 A schematic diagram of the installation structure of the stirring plate of this utility model is shown;

[0025] The diagram shows: 1. Base; 2. Separating tank; 21. Fixing plate; 22. Guide rod; 23. Mounting plate; 231. Motor II; 232. Bevel gear assembly II; 24. Discharge port; 25. Discharge pipe; 26. Outlet pipe; 27. Sealing block; 28. Driving component; 281. Driving rod; 29. ​​Observation port; 3. Drive mechanism; 31. Threaded column; 32. Motor I; 33. Bevel gear assembly I; 4. Rotating shaft; 41. Annular block; 42. Agitating block; 43. Shaft hole; 44. Rotating shaft; 45. Annular plate; 46. Agitating plate; 47. Drain hole; 48. Motor I; 5. Transparent glass; 6. Feeding mechanism; 61. Fixing frame; 62. Conveying shell; 63. Screw rod; 64. Motor II; 65. Discharge pipe; 66. Feeding hopper. Detailed Implementation

[0026] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions in the embodiments of this utility model are described clearly and completely. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0027] Example

[0028] To address the technical problems in the background art, the following condensate polishing resin separator is provided:

[0029] Combination Figures 1-5As shown, this utility model provides a condensate polishing resin separation tank, including a base 1. A separation tank 2 with an open top is fixedly installed on the top of the base 1. A fixing plate 21 is fixedly installed on the top of the outer side wall of the separation tank 2. A vertical guide rod 22 is fixedly installed on the top of the fixing plate 21. An mounting plate 23 is slidably installed on the guide rod 22 along its axis. A driving mechanism 3 acting on the mounting plate 23 is installed on the fixing plate 21, which is used to make the mounting plate 23 slide along the guide rod 22 or stop sliding. A discharge port 24 communicating with the interior of the separation tank 2 is opened at the bottom of the separation tank 2. A discharge pipe 25 communicating with the discharge port 24 is fixedly installed at the bottom of the separation tank 2. Specifically, the discharge pipe 25 can be used to observe the interior of the discharge port 24. The top of the discharge pipe 25 is flush with the bottom wall of the separator 2. A discharge pipe 26 connected to the inside of the discharge pipe 25 is fixedly installed on one side of the discharge pipe 25. A sealing block 27 for sealing the inside of the discharge pipe 25 is slidably installed in the vertical direction. Specifically, the outer wall of the sealing block 27 is in contact with the cross section of the inner wall of the discharge pipe 25. An annular sealing groove is opened on the outer wall of the sealing block 27. A rubber sealing gasket that engages with the sealing block 27 is inserted in the annular sealing groove. The rubber sealing gasket abuts against the inner wall of the discharge pipe 25. The top of the sealing block 27 can be flush with the top of the discharge pipe 25. A driving member 28 that acts on the sealing block 27 is installed on the discharge pipe 25. It is used to make the sealing block 27 slide or stop sliding in the discharge pipe 25.

[0030] A vertically oriented rotating shaft 4 is rotatably mounted on the mounting plate 23. A second motor 231 is fixedly mounted on the mounting plate 23. The output shaft of the second motor 231 is connected to the rotating shaft 4 via a second bevel gear assembly 232. The second bevel gear assembly 232 includes two meshing bevel gears. One bevel gear is coaxially fixed to the output shaft of the second motor 231, and the other bevel gear is coaxially fixed to the rotating shaft 4. The bottom end of the rotating shaft 4 extends into the separation tank 2. An annular block 41 is coaxially fixed to the bottom of the outer side wall of the rotating shaft 4. A stirring block 42 is fixedly mounted in a circular array on the outer side wall of the annular block 41. A shaft hole 43 extending to the bottom is opened at the top center of the rotating shaft 4. A rotating shaft 44 is rotatably mounted on the rotating shaft 4 and within the shaft hole 43. The bottom of 4 extends below the rotating shaft 4 and is coaxially fixed with an annular plate 45. The annular plate 45 is in contact with the bottom of the annular block 41. Multiple stirring plates 46 are coaxially fixed to the outer wall of the annular plate 45. The multiple stirring plates 46 correspond one-to-one with multiple stirring blocks 42. The stirring plates 46 can be hidden below the stirring blocks 42 and are in contact with the top of the stirring blocks 42. The stirring plates 46 can block the space between two adjacent stirring blocks 42. The ends of the stirring plates 46 and the stirring blocks 42 are in contact with the inner wall of the separation tank 2. Multiple drainage holes 47 are opened on the top of the stirring plates 46 and the stirring blocks 42. Specifically, the resin powder will not flow downward through the drainage holes 47. A motor 48 for driving the rotating shaft 44 to rotate is fixedly installed on the rotating shaft 4.

[0031] When separating anion exchange resins and cation exchange resins, the mixed anion and cation resins to be separated are inverted into the separation tank 2. A separation solution for separating anion and cation exchange resins is then injected into the separation tank 2. Motor 48 rotates the rotating shaft 44, causing multiple agitator plates 46 to be concealed below the agitator block 42. Drive mechanism 3 causes the mounting plate 23 to slide back and forth along the guide rod 22, and motor 231 is activated. Bevel gear assembly 232 drives the rotating shaft 4 to rotate on the mounting plate 23, causing the agitator block 42 to rotate around the rotating shaft 4. This achieves the separation of the anion and cation exchange resins in the separation tank 2. The ion-mixed resin is agitated to improve the separation efficiency of the anion and cation mixed resin. After the separation of the anion and cation mixed resin is completed, when the anion and cation resins are discharged, the driving mechanism 3 causes the mounting plate 23 to slide along the guide rod 22, causing multiple agitator blocks 42 and multiple agitator plates 46 to move between the separated anion and cation mixed resins. Then, the motor 48 causes the rotating shaft 44 to rotate, driving the multiple agitator plates 46 to rotate around the rotating shaft 44, so that the agitator plates 46 block the space between two adjacent agitator blocks 42. At this time, the personnel use the driving component 28 to move the blocking block 27 in the discharge position. The sealing block 27 slides downwards within the tube 25, thus sliding it below the discharge pipe 26. At this point, the cation exchange resin and separation solution located below the multiple stirring blocks 42 and multiple stirring plates 46 can be discharged through the discharge pipe 25 and the discharge pipe 26. The anion exchange resin located above the multiple stirring blocks 42 and multiple stirring plates 46 remains on the top of the multiple stirring blocks 42 and multiple stirring plates 46. During this period, water is continuously injected into the separation tank 2 until the cation exchange resin located below the multiple stirring blocks 42 and multiple stirring plates 46 is completely discharged from the separation tank 2. At this point, the rotating shaft 44 is rotated by the motor 48, driving the multiple stirring plates 46 to rotate. The 6 components are hidden below the stirring block 42. The stirring block 42 scrapes the anion exchange resin remaining on the top of the stirring plate 46, causing the remaining anion exchange resin to fall to the bottom of the separation tank 2. Water is then continuously injected into the separation tank 2 to rinse the top of the multiple stirring blocks 42 until the anion exchange resin in the separation tank 2 is completely discharged with the water flow through the discharge pipe 25 and the outlet pipe 26. This completes the separation and feeding of anion exchange resin and cationic resin, effectively avoiding the situation where some anion exchange resin is discharged simultaneously with the cationic resin during the feeding of cationic resin, resulting in the cationic resin containing anion exchange resin, thus improving the separation effect.

[0032] Combination Figures 1-5As shown, the driving mechanism 3 includes a threaded post 31 that is vertically rotatably mounted on the fixed plate 21. The threaded post 31 is threadedly connected to the mounting plate 23. A motor 32 is fixedly mounted on the bottom of the fixed plate 21. The output shaft of the motor 32 is connected to the threaded post 31 through a bevel gear assembly 33. Specifically, the bevel gear assembly 33 includes two meshing bevel gears. One bevel gear is coaxially fixed to the output shaft of the motor 32, and the other bevel gear is coaxially fixed to the threaded post 31. In use, the motor 32 is turned on, and the output shaft of the motor 32 rotates. This drives the threaded post 31 to rotate on the fixed plate 21 through the bevel gear assembly 33. The threaded post 31 is threadedly connected to the mounting plate 23, thereby allowing the mounting plate 23 to slide along the guide rod 22.

[0033] Combination Figures 1-5 As shown, the driving component 28 includes a driving rod 281 that is vertical and threaded through the bottom of the discharge pipe 25. The top of the driving rod 281 extends into the discharge pipe 25 and is rotatably connected to the sealing block 27. A knob is coaxially fixed to the bottom wall of the driving rod 281. In use, the operator applies a rotational force to the driving rod 281 through the knob. The driving rod 281 moves spirally on the discharge pipe 25 and rotates between the driving rod 281 and the sealing block 27, thereby driving the sealing block 27 to slide inside the discharge pipe 25. The operation is simple.

[0034] Combination Figures 1-5 As shown, the top of the annular block 41 is inclined downward in a direction away from the rotating shaft 4, and the top of the stirring block 42 is inclined downward on both sides, which facilitates the resin powder on the top of the annular block 41 and the stirring block 42 to slide downward, thereby effectively avoiding the situation where resin powder remains on the top of the annular block 41 and the stirring block 42.

[0035] Combination Figures 1-5 As shown, an observation port 29 communicating with the interior is provided on one side of the separation tank 2. A transparent glass 5 for sealing the interior of the observation port 29 is fixedly installed on the separation tank 2 and located inside the observation port 29. The installation structure of sealing the observation port 29 with the transparent glass 5 is existing technology and will not be described in detail here. The design of the observation port 29 and the transparent glass 5 makes it easy to observe the separation state of the anion exchange resin and the cation exchange resin inside the separation tank 2 through the transparent glass 5.

[0036] Combination Figures 1-5 As shown, a feeding mechanism 6 is installed on the base 1. The discharge end of the feeding mechanism 6 is located above the opening end of the separation tank 2. The feeding mechanism 6 is used to transport and feed the resin to be separated. The design of the feeding mechanism 6 makes it easy to feed the resin to be separated into the separation tank 2.

[0037] Combination Figures 1-5As shown, the feeding mechanism 6 includes a fixed frame 61 fixedly installed on the top of the base 1 and located on one side of the separation tank 2. An inclined conveying shell 62 is fixedly installed on the top of the fixed frame 61, with the highest end of the conveying shell 62 extending above the separation tank 2. An auger rod 63 is rotatably installed inside the conveying shell 62, with the outer wall of the auger rod 63 fitting against the inner wall of the conveying shell 62. A motor 64 for driving the auger rod 63 to rotate is fixedly installed on the conveying shell 62. A discharge pipe 65, communicating with the interior of the conveying shell 62, is fixedly installed at the bottom and highest point of the conveying shell 62. The bottom of the conveying shell 62 extends above the opening of the separation tank 2. A feeding hopper 66, which is connected to the inside of the conveying shell 62, is fixedly installed on the top and bottom of the conveying shell 62. During use, the personnel guide the resin to be separated into the feeding hopper 66. The resin to be separated falls into the conveying shell 62 under its own weight. During this period, the control motor 64 is turned on. The output shaft of the control motor 64 rotates and drives the auger rod 63 to rotate, thereby conveying the resin falling into the conveying shell 62 towards the feed pipe 65. Thus, the resin to be separated falls into the separation tank 2 through the feed pipe 65, realizing the effect of feeding the resin to be separated into the separation tank 2.

[0038] Working principle and usage process of this utility model:

[0039] In the first step, when separating anion exchange resin and cation exchange resin, the mixed anion and cation exchange resin to be separated is fed into the feeding hopper 66. The resin to be separated falls into the conveying shell 62 under its own weight. The second motor 64 is turned on, driving the auger rod 63 to rotate, thereby conveying the resin falling into the conveying shell 62 towards the feed pipe 65, and then falling into the separation tank 2 through the feed pipe 65. The separation solution for separating anion and cation exchange resin is then injected into the separation tank 2. The first motor 48 causes the rotating shaft 44 to rotate, driving multiple stirring plates 46 to be hidden under the stirring block 42. The first motor 32 is turned on, causing the mounting plate 23 to slide back and forth along the guide rod 22. The second motor 231 is turned on, driving the rotating shaft 4 to rotate on the mounting plate 23, causing the stirring block 42 to rotate around the rotating shaft 4. This can achieve the agitation of the mixed anion and cation exchange resin to be separated in the separation tank 2, thereby improving the separation efficiency of the mixed anion and cation exchange resin.

[0040] The second step involves observing the separation state of the anion exchange resin and cation exchange resin inside the separator 2 through the transparent glass 5. After the separation of the anion and cation exchange resin is completed, when discharging the anion and cation exchange resin, the motor 32 is turned on, causing the mounting plate 23 to slide along the guide rod 22. This causes multiple stirring blocks 42 and multiple stirring plates 46 to move between the separated anion and cation exchange resins. Then, the motor 48 rotates the rotating shaft 44, causing multiple stirring plates 46 to rotate around the rotating shaft 44. This causes the stirring plates 46 to seal between adjacent stirring blocks 42. The operator applies a rotational force to the drive rod 281 through the knob, causing the sealing block 27 to slide within the discharge pipe 25 until it slides below the discharge pipe 26. At this point, the cation exchange resin and separation solution located below the multiple stirring blocks 42 and multiple stirring plates 46 can be discharged through the discharge pipe 25 and the discharge pipe 26. Anion exchange resin remains on top of multiple agitator blocks 42 and multiple agitator plates 46. During this process, water is continuously injected into the separation tank 2 until the cationic resin located below the multiple agitator blocks 42 and multiple agitator plates 46 is completely discharged from the separation tank 2. At this time, the rotating shaft 44 is rotated by motor 48, which drives the multiple agitator plates 46 to hide below the agitator blocks 42 respectively. The agitator blocks 42 scrape the anion exchange resin remaining on top of the agitator plates 46, causing the anion exchange resin remaining on top of the agitator plates 46 to fall downward to the bottom of the separation tank 2. Water is then continuously injected into the separation tank 2 to rinse the top of the multiple agitator blocks 42 until the anion exchange resin in the separation tank 2 is completely discharged with the water flow through the discharge pipe 25 and the outlet pipe 26. This completes the separation and feeding of anion exchange resin and cationic resin, effectively avoiding the situation where some anion exchange resin is discharged simultaneously with the cationic resin during feeding, resulting in the cationic resin containing anion exchange resin, thus improving the separation effect.

[0041] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0042] The above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model.

Claims

1. A resin separator for condensate polishing, characterized in that: The system includes a base, on which a separation tank with an open top is fixedly mounted. A fixing plate is fixedly mounted on the top of the outer wall of the separation tank. A vertical guide rod is fixedly mounted on the top of the fixing plate. An installation plate is slidably mounted on the guide rod along its axis. A drive mechanism is mounted on the fixing plate to act on the installation plate, which is used to make the installation plate slide or stop sliding along the guide rod. A discharge port communicating with the interior of the separation tank is opened at the bottom of the separation tank. A discharge pipe communicating with the discharge port is fixedly mounted at the bottom of the separation tank. A discharge pipe communicating with the interior of the discharge pipe is fixedly mounted on one side of the discharge pipe. A sealing block for sealing the interior of the discharge pipe is slidably mounted vertically inside the discharge pipe. The top of the sealing block can be flush with the top of the discharge pipe. A drive component is mounted on the discharge pipe to act on the sealing block, which is used to make the sealing block slide or stop sliding inside the discharge pipe. A vertically oriented rotating shaft is rotatably mounted on the mounting plate. A second motor is fixedly mounted on the mounting plate, and the output shaft of the second motor is connected to the rotating shaft via a bevel gear assembly. The bottom end of the rotating shaft extends into the separation tank. An annular block is coaxially fixed to the bottom of the outer wall of the rotating shaft. Agitator blocks are fixedly mounted in a circular array on the outer wall of the annular block. A shaft hole extending to the bottom of the rotating shaft is opened at the center of the top of the rotating shaft. A rotating shaft is rotatably mounted on the rotating shaft and within the shaft hole. The bottom of the rotating shaft extends below the rotating shaft and is coaxial with it. A ring plate is fixedly connected to the bottom of the ring block. Multiple agitator plates are coaxially fixed to the outer wall of the ring plate. Each agitator plate corresponds to one agitator block. The agitator plates can be hidden under the agitator blocks and fit against the top of the agitator blocks. The agitator plates can also seal between two adjacent agitator blocks. The ends of both the agitator plates and the agitator blocks fit against the inner wall of the separation tank. Multiple drainage holes are provided on the top of both the agitator plates and the agitator blocks. A motor for driving the rotating shaft is fixedly installed on the rotating shaft.

2. The condensate polishing resin separator according to claim 1, characterized in that: The drive mechanism includes a threaded column that is vertically rotatably mounted on a fixed plate. The threaded column is threadedly connected to the mounting plate. A motor is fixedly mounted on the bottom of the fixed plate. The output shaft of the motor is connected to the threaded column through a bevel gear assembly.

3. The condensate polishing resin separator according to claim 1, characterized in that: The driving component includes a vertically oriented driving rod threaded through the bottom of the discharge pipe. The top of the driving rod extends into the discharge pipe and is rotatably connected to the sealing block. A knob is coaxially fixed to the bottom wall of the driving rod.

4. The condensate polishing resin separator according to claim 1, characterized in that: The top of the annular block slopes downward away from the axis of rotation, and the top of the agitating block slopes downward on both sides.

5. The condensate polishing resin separator according to claim 1, characterized in that: The separation tank has an observation port on one side that communicates with its interior, and a transparent glass plate is fixedly installed on the separation tank and inside the observation port to seal the inside of the observation port.

6. The condensate polishing resin separator according to claim 1, characterized in that: The base is equipped with a feeding mechanism, the discharge end of which is located above the opening of the separation tank. The feeding mechanism is used to transport and feed the resin to be separated.

7. A condensate polishing resin separator according to claim 6, characterized in that: The feeding mechanism includes a fixed frame fixedly installed on the top of the base and located on one side of the separation tank. An inclined conveying shell is fixedly installed on the top of the fixed frame. The highest end of the conveying shell extends to the top of the separation tank. An auger rod is rotatably installed inside the conveying shell. The outer side wall of the auger rod is in contact with the inner side wall of the conveying shell. A motor for driving the auger rod to rotate is fixedly installed on the conveying shell. A discharge pipe connected to the interior is fixedly installed at the bottom and the highest point of the conveying shell. The bottom of the discharge pipe extends to the top of the opening end of the separation tank. A feeding hopper connected to the interior is fixedly installed at the top and the lowest point of the conveying shell.