Energy-saving crushing device for correction fluid raw material processing
By introducing a control module and a weight sensing plate into the crushing device, the automatic cleaning and temporary filtration of the first filter plate are achieved, and the problems of clogging and damage of the filter net in the existing crushing device are solved, and production efficiency and product quality are improved.
Patent Information
- Application Number
- CN202510203216.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-24
- Publication Date
- 2025-05-13
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing crushing devices, the filter screen is prone to clogging and breakage, resulting in reduced crushing efficiency, unstable product quality, and lack of automated cleaning mechanisms, resulting in waste of manpower.
A crushing device for raw material processing of energy-saving correction liquid is designed, and the weight sensing plate is used to monitor the weight change of the first filter plate. When blockage or damage is detected, the cleaning chamber and adsorption pump are automatically controlled for impurities cleaning or temporary filtration.
The automated filter net cleaning and temporary filtration functions are realized, which avoids the reduction in production efficiency and product quality problems caused by filter net clogging and damage, and improves the automation level and production efficiency of the crushing device.
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Figure CN119972271A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of pulverizing devices, and more particularly to an energy-saving pulverizing device for processing correction fluid raw materials. Background Art
[0002] The energy-saving pulverizing device is one of the equipment used for processing correction fluid raw materials. Among them, the common energy-saving pulverizing device is mainly composed of a feed barrel, a pulverizing mechanism, a screening mechanism, a storage barrel, an energy-saving motor unit and a control system. The specific process of the pulverizing device for processing correction fluid raw materials is as follows: the correction fluid is transported into the outer shell through the feed barrel, and the pulverizing mechanism is driven to pulverize the correction fluid raw materials under the action of the energy-saving motor unit and the control system. After the correction fluid raw materials are pulverized, they are filtered through the screening mechanism and then transported to the storage barrel for easy access by the staff; The common screening device is the filter. When using it, we found that there are a certain amount of impurities on the surface of some correction fluid raw materials. These impurities are easily stuck on the filter, which leads to the clogging of the filter. The clogging of the filter will slow down the speed of the crushed raw materials, or even completely block them, making the crushing device unable to work normally or significantly reducing the working efficiency. This will directly affect the overall production capacity and efficiency of the correction fluid; At the same time, the filter will gradually become thinner or damaged due to wear during long-term use, resulting in the following situations: 1. Reduced screening effect: If the filter is damaged, its screening function will be greatly reduced, resulting in the impurities in the material being unable to be effectively filtered, or the particle size distribution of the material becoming uneven; 2. Reduced production efficiency: Due to the reduced screening effect caused by the damage of the filter, it may be necessary to increase the number of screenings or adopt other remedial measures to ensure product quality, which will directly reduce production efficiency; 3. Reduced product quality: After the filter is damaged, the material that has not been fully filtered may be directly mixed into the finished product, resulting in impurities or particles that do not meet the specifications in the product; it can be seen that the harm caused by the damage of the filter is huge, and in the prior art, manual observation is mainly used to determine whether the filter is blocked or damaged, thereby causing a certain amount of manpower waste; Therefore, we are in urgent need of a kind of energy-saving type correction fluid raw material processing pulverizing device, be used to solve the technical problem proposed above. Summary of the invention
[0003] In order to overcome the above-mentioned defects of the prior art, the present invention provides an energy-saving pulverizing device for processing correction fluid raw materials to solve the problems existing in the above-mentioned background technology.
[0004] The present invention provides the following technical solution: an energy-saving type pulverizing device for processing correction fluid raw materials, comprising a shell and a pulverizing mechanism, wherein a feeding barrel is installed at an input port on the top of the shell, a storage device is installed at an output port on the bottom of the shell, an energy-saving type motor unit is installed on the side of the shell, the energy-saving type motor unit is provided with an output end for transmitting the mechanical energy generated by it, the pulverizing mechanism is installed on the inner wall at the middle position of the shell, and the pulverizing mechanism is connected to the output end through a gear transmission structure to receive and transform the mechanical energy output by the energy-saving type motor unit to perform pulverizing processing on the correction fluid raw materials; A control module is provided inside the energy-saving motor unit; The inner wall of the energy-saving motor unit is provided with a U-shaped housing on the outer wall close to the output port of the housing.
[0005] Furthermore, a conveying hole is provided on the inner wall of the side of the U-shaped shell, a conveying U-shaped tube is installed on the inner wall of the conveying hole, a dust storage device is installed through the conveying U-shaped tube at one end away from the U-shaped shell, the dust storage device is installed on the outer wall of the shell, and the installation position is close to the position of the U-shaped shell, the dust storage device is installed with an adsorption pump on the inner wall away from the conveying U-shaped tube, and the adsorption pump is installed with a dustproof net at a position close to the inner wall of the dust storage device, which is used to block impurities generated by cleaning the surface of the first filter plate; The dust storage device comprises an inner wall defining an inner space, and the inner space is in a cavity state and is used for storing impurities generated by cleaning the surface of the first filter plate.
[0006] Furthermore, a limit plate is installed on the inner wall in the middle position of the U-shaped shell, an elastically retractable U-shaped plate is installed on the inner wall at the top of the limit plate, a first filter plate is installed on the bottom of the elastically retractable U-shaped plate, a weight sensing plate is attached to the bottom of the first filter plate, the first filter plate and the weight sensing plate are installed on the inner wall of the limit plate, and the geometric center point of the U-shaped shell, the geometric center point of the limit plate, the geometric center point of the weight sensing plate, the geometric center point of the first filter plate and the geometric center point of the elastically retractable U-shaped plate are all on the same straight line.
[0007] Furthermore, a first electrically-controlled lifting column is installed on the inner wall of the U-shaped shell at a position close to the limit plate at the top, and the first electrically-controlled lifting column is installed on the inner wall of the U-shaped shell in a vertical state. A cleaning cabin is installed on the lifting end of the first electrically-controlled lifting column, and the cleaning cabin includes an inner wall defining an internal space, and the internal space is in a cavity state, which is used to temporarily store impurities generated by cleaning the surface of the first filter plate. A conveying U-shaped pipe is connected through the inner wall of the cleaning cabin near the position of the first electrically-controlled lifting column, and a spring is installed on the inner wall of the top of the cleaning cabin, and the spring is installed on the inner wall of the cleaning cabin in a vertical state. A slide plate is installed on the bottom of the spring, and the geometric center point of the spring and the geometric center point of the slide plate are both in a straight line. An inclined plate is installed on the bottom of the slide plate, and the top of the inclined plate is installed on the bottom of the slide plate in a vertical state, and the inclined plate contacts the upper surface of the first filter plate.
[0008] Furthermore, a protective shell is installed on the inner wall of the bottom of the U-shaped shell near the limit plate, and a second electrically-controlled lifting column is installed on the inner wall of the side of the protective shell. A slider is installed at the lifting end of the second electrically-controlled lifting column, and a telescopic filter plate is installed on the top of the slider. The second electrically-controlled lifting column inputs current to drive the slider to move to a position away from the protective shell, and the slider drives the telescopic filter plate to be in a stretched state. The geometric center point of the telescopic filter plate in the fully stretched state is on the same straight line as the geometric center point of the first filter plate.
[0009] Furthermore, the weight sensing plate collects weight data generated by the first filter plate and transmits the data to the control module.
[0010] Furthermore, the control module includes a threshold unit, which simulates the simulated weight data generated by the weight sensing plate when the first filter plate is in a normal working state, and integrates the simulated weight data to form a first threshold range. The control module compares the real-time weight data with the first threshold range. When the real-time weight data is greater than the first threshold range, it is determined that the first filter plate is blocked, and the control module controls the adsorption pump and the first electric-controlled lifting column to input current to clean impurities on the surface of the first filter plate. When the real-time weight data is less than the first threshold range, it is determined that the first filter plate is damaged, and the control module controls the second electric-controlled lifting column to input current to achieve the effect of temporarily filtering and crushing the raw materials.
[0011] Technical effects and advantages of the present invention: 1. The present invention is provided with a control module, which is conducive to the weight sensing plate collecting the weight data generated by the first filter plate and transmitting it to the control module. The control module analyzes the real-time weight data. When the control module determines that there is a blockage on the surface of the first filter plate, the first electric control lifting column inputs current to drive the cleaning cabin and the inclined plate to scrape the surface of the first filter plate. At the same time, the adsorption pump generates adsorption air and outputs it to the surface of the first filter plate through the delivery U-shaped pipe, the cleaning cabin and the adsorption hole to adsorb the impurities generated by scraping the surface of the first filter plate, so as to achieve the effect of automatically cleaning the impurities blocked on the surface of the first filter plate.
[0012] 2. The present invention is provided with a control module, which is conducive to the control module determining that the first filter plate is damaged, the second electric control lifting column inputs current to drive the slider to move to a position away from the protective shell, and the slider drives the telescopic filter plate to be in a stretched state. In the fully stretched state, the geometric center point of the telescopic filter plate is in the same straight line as the geometric center point of the first filter plate, so as to achieve the effect of temporarily filtering and crushing the raw materials. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 It is a schematic diagram of the overall structure of the present invention.
[0014] Figure 2 It is a schematic cross-sectional view of the overall structure of the housing of the present invention.
[0015] Figure 3 It is a schematic diagram of the overall structure of the dust storage device and the U-shaped shell of the present invention.
[0016] Figure 4 It is a schematic cross-sectional view of the overall structure of the U-shaped shell of the present invention.
[0017] Figure 5 It is a schematic cross-sectional view of the overall structure of the cleaning cabin of the present invention.
[0018] Figure 6 It is a schematic cross-sectional view of the overall structure of the protective shell of the present invention.
[0019] Figure 7 It is a schematic cross-sectional view of the overall structure of the limiting plate of the present invention.
[0020] The accompanying drawings are marked as follows: 1. outer shell; 101. energy-saving motor unit; 102. feed barrel; 103. crushing mechanism; 104. storage device; 2. dust storage device; 201. adsorption pump; 202. conveying U-shaped tube; 3. U-shaped shell; 301. limit plate; 3011. weight sensing plate; 3012. elastic telescopic U-shaped plate; 302. first filter plate; 303. conveying hole; 304. first electric-controlled lifting column; 305. protective shell; 306. cleaning cabin; 307. slide plate; 308. spring; 309. inclined plate; 310. adsorption hole; 311. telescopic filter plate; 312. second electric-controlled lifting column; 313. slider. DETAILED DESCRIPTION
[0021] The technical scheme of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the present invention. In addition, the forms of the various structures recorded in the following embodiments are merely illustrative. The energy-saving correction fluid raw material processing crushing device involved in the present invention is not limited to the various structures recorded in the following embodiments. All other embodiments obtained by ordinary technicians in this field without making creative work belong to the scope of protection of the present invention.
[0022] Reference Figure 1 to Figure 2 As shown, the present invention provides an energy-saving type of pulverizing device for processing correction fluid raw materials, comprising a housing 1 and a pulverizing mechanism 103, wherein a feeding barrel 102 is installed at the input port on the top of the housing 1, a storage device 104 is installed at the output port on the bottom of the housing 1, an energy-saving type of motor group 101 is installed on the side of the housing 1, the energy-saving type of motor group 101 is provided with an output end for transmitting the mechanical energy generated by it, the pulverizing mechanism 103 is installed on the inner wall at the middle position of the housing 1, and the pulverizing mechanism 103 is connected to the output end through a gear transmission structure to receive and transform the mechanical energy output by the energy-saving type of motor group 101 to perform pulverizing processing on the correction fluid raw materials; The energy-saving motor unit 101 is provided with a control module inside; A U-shaped housing 3 is installed on the inner wall of the energy-saving motor unit 101 near the outer wall of the output port of the housing 1.
[0023] In the embodiment of the present application, a vibration pump is installed on the side of the U-shaped shell 3 to control (3) to be in a vibration state to accelerate the filtering efficiency of the crushed raw materials.
[0024] The specific working process of the embodiments of this part of the application is as follows: the correction fluid raw material is input into the crushing chamber of the outer shell 1 through the feed barrel 102, the energy-saving motor unit 101 generates mechanical energy to drive the crushing mechanism 103 to crush the correction fluid raw material through the gear transmission structure, and the crushed correction fluid raw material is input into the storage device 104 through the output port of the outer shell 1, so that the staff can take it conveniently.
[0025] Reference Figures 1 to 3 As shown, the present invention provides an energy-saving type of pulverizing device for processing correction fluid raw materials, the inner wall of the side of the U-shaped shell 3 is provided with a conveying hole 303, the inner wall of the conveying hole 303 is installed with a conveying U-shaped tube 202, the conveying U-shaped tube 202 is penetrated and installed with a dust storage device 2 at one end away from the U-shaped shell 3, the dust storage device 2 is installed on the outer wall of the shell 1, and the installation position is close to the position of the U-shaped shell 3, the dust storage device 2 is installed with an adsorption pump 201 on the inner wall away from the conveying U-shaped tube 202, and the adsorption pump 201 is installed with a dustproof net at a position close to the inner wall of the dust storage device 2, which is used to block impurities generated by cleaning the surface of the first filter plate 302; The dust storage device 2 includes an inner wall defining an inner space, and the inner space is in a cavity state and is used to store impurities generated by cleaning the surface of the first filter plate 302 .
[0026] In the embodiment of the present application, the specific working process of this part of the application embodiment is: the adsorption pump 201 generates adsorption air, which is input into the cleaning chamber 306 through the conveying U-shaped tube 202, and is conveyed to the outer wall of the first filter plate 302 through the adsorption hole 310, and is used for cleaning and adsorbing impurities on the surface of the first filter plate 302.
[0027] Reference Figures 2 to 7 As shown, the present invention provides an energy-saving type of pulverizing device for processing correction fluid raw materials, wherein a limit plate 301 is installed on the inner wall at the middle position of the U-shaped shell 3, an elastic telescopic U-shaped plate 3012 is installed on the inner wall at the top of the limit plate 301, a first filter plate 302 is installed on the bottom of the elastic telescopic U-shaped plate 3012, a weight sensing plate 3011 is attached to the bottom of the first filter plate 302, the first filter plate 302 and the weight sensing plate 3011 are installed on the inner wall of the limit plate 301, and the geometric center point of the U-shaped shell 3, the geometric center point of the limit plate 301, the geometric center point of the weight sensing plate 3011, the geometric center point of the first filter plate 302 and the geometric center point of the elastic telescopic U-shaped plate 3012 are all on the same straight line; The top inner wall of the U-shaped shell 3 is provided with a first electrically controlled lifting column 304 at a position close to the limit plate 301. The first electrically controlled lifting column 304 is vertically mounted on the inner wall of the U-shaped shell 3. A cleaning chamber 306 is mounted at the lifting end of the first electrically controlled lifting column 304. The cleaning chamber 306 includes an inner wall defining an inner space. The inner space is in a cavity state and is used to temporarily store impurities generated by cleaning the surface of the first filter plate 302. The cleaning chamber 306 penetrates the inner wall near the position of the first electrically controlled lifting column 304. A conveying U-shaped tube 202 is passed through and connected, a spring 308 is installed on the inner wall of the top of the cleaning chamber 306, the spring 308 is installed on the inner wall of the cleaning chamber 306 in a vertical state, a slide plate 307 is installed on the bottom of the spring 308, the geometric center point of the spring 308 and the geometric center point of the slide plate 307 are both in a straight line, an inclined plate 309 is installed on the bottom of the slide plate 307, the top of the inclined plate 309 is installed on the bottom of the slide plate 307 in a vertical state, and the inclined plate 309 contacts the upper surface of the first filter plate 302; A protective shell 305 is installed on the inner wall of the bottom of the U-shaped shell 3 near the limit plate 301, and a second electrically-controlled lifting column 312 is installed on the inner wall of the side of the protective shell 305. A slider 313 is installed on the lifting end of the second electrically-controlled lifting column 312, and a telescopic filter plate 311 is installed on the top of the slider 313. The second electrically-controlled lifting column 312 inputs current to drive the slider 313 to move to a position away from the protective shell 305, and the slider 313 drives the telescopic filter plate 311 to be in a stretched state. The geometric center point of the telescopic filter plate 311 in the fully stretched state is on the same straight line as the geometric center point of the first filter plate 302. The weight sensing plate 3011 collects the weight data generated by the first filter plate 302 and transmits it to the control module.
[0028] In the embodiment of the present application, when the control module determines that the surface of the first filter plate 302 is clogged, the control module controls the crushing mechanism 103 to stop the input of current, and the control module controls the vibration pump to input a stable working current, thereby ensuring that the crushed raw materials on the surface of the first filter plate 302 are filtered. Since the first filter plate 302 is clogged, the vibration pump needs to work for 20-30 minutes, further ensuring that the crushed materials on the surface of the first filter plate 302 do not remain on its surface, and ensuring that the cleaning chamber 306 and the inclined plate 309 are not affected by the crushed raw materials when cleaning the surface of the first filter plate 302.
[0029] The specific working process of the embodiment of this part of the application is as follows: the weight sensing plate 3011 collects the weight data generated by the first filter plate 302 and transmits it to the control module. The control module analyzes the real-time weight data. When the control module determines that there is a blockage on the surface of the first filter plate 302, the first electrically controlled lifting column 304 inputs current to drive the cleaning chamber 306 and the inclined plate 309 to scrape the surface of the first filter plate 302. At the same time, the adsorption pump 201 generates adsorption air which is output to the surface of the first filter plate 302 through the conveying U-shaped tube 202, the cleaning chamber 306 and the adsorption hole 310, and adsorbs the impurities generated by the scraping of the surface of the first filter plate 302, so as to achieve the effect of automatically cleaning the impurities blocked on the surface of the first filter plate 302. When the control module determines that the first filter plate 302 is damaged, 312 inputs current to drive the slider 313 to move to a position away from the protective shell 305. The slider 313 drives the telescopic filter plate 311 to be in a stretched state. When it is in a fully stretched state, the geometric center point of the telescopic filter plate 311 is in the same straight line as the geometric center point of the first filter plate 302, so as to achieve the effect of temporarily filtering and crushing the raw materials.
[0030] Reference Figures 1 to 7 As shown, the present invention provides an energy-saving type of pulverizing device for processing correction fluid raw materials, the control module includes a threshold unit, the threshold unit simulates the simulated weight data generated by the weight sensing plate 3011 when the first filter plate 302 is in a normal working state, and integrates the simulated weight data to form a first threshold range, the control module compares the real-time weight data with the first threshold range, when the real-time weight data is greater than the first threshold range, it is determined that the first filter plate 302 is blocked, the control module controls the adsorption pump 201 and the first electric control lifting column 304 to input current, and performs impurity cleaning operation on the surface of the first filter plate 302; When the real-time weight data is less than the first threshold range, it is determined that the first filter plate 302 is damaged, and the control module controls the second electric-controlled lifting column 312 to input current to achieve the effect of temporarily filtering and crushing the raw materials.
[0031] The specific workflow of this application is as follows: Step 1: The correction fluid raw material is input into the crushing chamber of the housing 1 through the feed barrel 102, and the energy-saving motor unit 101 generates mechanical energy to drive the crushing mechanism 103 through the gear transmission structure to crush the correction fluid raw material. The crushed correction fluid raw material is input into the storage device 104 through the output port of the housing 1, which is convenient for the staff to take the operation; Step 2: The adsorption pump 201 generates adsorption air, which is input into the cleaning chamber 306 through the delivery U-shaped tube 202, and is delivered to the outer wall of the first filter plate 302 through the adsorption holes 310, for cleaning and adsorbing impurities on the surface of the first filter plate 302; Step 3, the weight sensing plate 3011 collects the weight data generated by the first filter plate 302 and transmits it to the control module. The control module analyzes the real-time weight data. When the control module determines that there is a blockage on the surface of the first filter plate 302, the first electrically controlled lifting column 304 inputs current to drive the cleaning chamber 306 and the inclined plate 309 to scrape the surface of the first filter plate 302. At the same time, the adsorption pump 201 generates adsorption air and outputs it to the surface of the first filter plate 302 through the delivery U-shaped tube 202, the cleaning chamber 306 and the adsorption hole 310, so as to adsorb the impurities generated by the scraping of the surface of the first filter plate 302, so as to achieve the effect of automatically cleaning the impurities blocked on the surface of the first filter plate 302; When the control module determines that the first filter plate 302 is damaged, the second electric-controlled lifting column 312 inputs current to drive the slider 313 to move to a position away from the protective shell 305. The slider 313 drives the telescopic filter plate 311 to be in a stretched state. When it is in a fully stretched state, the geometric center point of the telescopic filter plate 311 is in the same straight line as the geometric center point of the first filter plate 302, so as to achieve the effect of temporarily filtering and crushing the raw materials.
[0032] Finally, a few points should be explained: First, in the description of this application, it should be noted that, unless otherwise specified and limited, the terms "installed", "connected", and "connected" should be understood in a broad sense, which may refer to mechanical connection or electrical connection, or internal communication between two components, or direct connection. "upper", "lower", "left", "right", etc. are only used to indicate relative positional relationships. When the absolute position of the object being described changes, the relative positional relationship may change; Secondly: In the drawings of the embodiments disclosed in the present invention, only the structures related to the embodiments disclosed in the present invention are involved, and other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of the present invention can be combined with each other; Finally: The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. An energy-saving type pulverizing device for processing correction fluid raw materials, comprising a housing (1) and a pulverizing mechanism (103), wherein a feeding cylinder (102) is installed at an input port on the top of the housing (1), a storage device (104) is installed at an output port on the bottom of the housing (1), and an energy-saving type motor unit (101) is installed on the side of the housing (1), characterized in that: The energy-saving motor group (101) is provided with an output end for transmitting the mechanical energy generated by the motor group (101), the crushing mechanism (103) is installed on the inner wall at the middle position of the housing (1), and the crushing mechanism (103) is connected to the output end via a gear transmission structure to receive and transform the mechanical energy output by the energy-saving motor group (101) to crush the correction fluid raw material; A control module is provided inside the energy-saving motor unit (101); A U-shaped housing (3) is installed on the inner wall of the energy-saving motor unit (101) and on the outer wall close to the output port of the housing (1).
2. The energy-saving pulverizing device for processing correction fluid raw materials according to claim 1, characterized in that: The inner wall of the side of the U-shaped shell (3) is provided with a conveying hole (303), the inner wall of the conveying hole (303) is installed with a conveying U-shaped tube (202), the conveying U-shaped tube (202) is penetrated by a dust storage device (2) at one end away from the U-shaped shell (3), the dust storage device (2) is installed on the outer wall of the shell (1), and the installation position is close to the location of the U-shaped shell (3), the dust storage device (2) is installed with an adsorption pump (201) at the inner wall away from the conveying U-shaped tube (202), and the adsorption pump (201) is installed with a dustproof net at a position close to the inner wall of the dust storage device (2), which is used to block impurities generated by cleaning the surface of the first filter plate (302); The dust storage device (2) comprises an inner wall defining an internal space, the internal space being in a hollow state and being used to store impurities generated by cleaning the surface of the first filter plate (302).
3. The energy-saving pulverizing device for processing correction fluid raw materials according to claim 1, characterized in that: A limit plate (301) is installed on the inner wall at the middle position of the U-shaped shell (3), an elastically retractable U-shaped plate (3012) is installed on the inner wall at the top of the limit plate (301), a first filter plate (302) is installed on the bottom of the elastically retractable U-shaped plate (3012), a weight sensing plate (3011) is attached to the bottom of the first filter plate (302), the first filter plate (302) and the weight sensing plate (3011) are installed on the inner wall of the limit plate (301), and the geometric center point of the U-shaped shell (3), the geometric center point of the limit plate (301), the geometric center point of the weight sensing plate (3011), the geometric center point of the first filter plate (302) and the geometric center point of the elastically retractable U-shaped plate (3012) are all on the same straight line.
4. The energy-saving pulverizing device for processing correction fluid raw materials according to claim 3, characterized in that: A first electrically controlled lifting column (304) is installed on the inner wall of the top of the U-shaped housing (3) at a position close to the limit plate (301). The first electrically controlled lifting column (304) is installed on the inner wall of the U-shaped housing (3) in a vertical state. A cleaning chamber (306) is installed at the lifting end of the first electrically controlled lifting column (304). The cleaning chamber (306) includes an inner wall defining an internal space. The internal space is in a cavity state and is used to temporarily store impurities generated by cleaning the surface of the first filter plate (302). The cleaning chamber (306) is connected to the inner wall of the cleaning chamber (306) at a position close to the first electrically controlled lifting column (304). A conveying U-shaped tube (202) is provided. A spring (308) is installed on the inner wall of the top of the cleaning chamber (306). The spring (308) is installed on the inner wall of the cleaning chamber (306) in a vertical state. A slide plate (307) is installed on the bottom of the spring (308). The geometric center point of the spring (308) and the geometric center point of the slide plate (307) are both on a straight line. An inclined plate (309) is installed on the bottom of the slide plate (307). The top of the inclined plate (309) is installed on the bottom of the slide plate (307) in a vertical state. The inclined plate (309) contacts the upper surface of the first filter plate (302).
5. The energy-saving pulverizing device for processing correction fluid raw materials according to claim 3, characterized in that: A protective shell (305) is installed on the inner wall of the bottom of the U-shaped housing (3) at a position close to the limit plate (301), and a second electrically controlled lifting column (312) is installed on the inner wall of the side of the protective shell (305). A slider (313) is installed at the lifting end of the second electrically controlled lifting column (312), and a telescopic filter plate (311) is installed on the top of the slider (313). The second electrically controlled lifting column (312) inputs current to drive the slider (313) to move to a position away from the protective shell (305), and the slider (313) drives the telescopic filter plate (311) to be in a stretched state. The geometric center point of the telescopic filter plate (311) in the fully stretched state is on the same straight line as the geometric center point of the first filter plate (302).
6. The energy-saving pulverizing device for processing correction fluid raw materials according to claim 3, characterized in that: The weight sensing plate (3011) collects weight data generated by the first filter plate (302) and transmits the data to the control module.
7. An energy-saving pulverizing device for processing correction fluid raw materials according to any one of claims 2 to 6, characterized in that: The control module comprises a threshold unit, wherein the threshold unit simulates simulated weight data generated by the weight sensing plate (3011) when the first filter plate (302) is in a normal working state, and integrates the simulated weight data to form a first threshold range. The control module compares the real-time weight data with the first threshold range. When the real-time weight data is greater than the first threshold range, it is determined that the first filter plate (302) is blocked, and the control module controls the adsorption pump (201) and the first electric-controlled lifting column (304) to input current to clean impurities from the surface of the first filter plate (302); When the real-time weight data is less than the first threshold range, it is determined that the first filter plate (302) is damaged, and the control module controls the second electrically controlled lifting column (312) to input current, thereby achieving the effect of temporarily filtering and crushing the raw materials.