Glue standing, homogenizing and filtering device and use method thereof
By combining the rotating baffle of the glue-stand-standing homogenous filter device with the extrusion cone, efficient filtration of glue and automatic recycling of impurities are achieved, the problem of glue sealing the filter net is solved, the glue waste is reduced, and the filtration efficiency is improved.
Patent Information
- Application Number
- CN202510460966.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-14
- Publication Date
- 2025-08-12
AI Technical Summary
In the prior art, glue is prone to block the filter mesh during the filtration process, resulting in a decrease in filtration efficiency and increasing glue waste.
A glue stand-alt homogeneous filter device is adopted, including a loading mechanism, a filter barrel, a conical pressing bowl, an extrusion cone and a rotary baffle. Through the cooperation of the rotary baffle and an extrusion cone, the filtering of the glue and the automatic scraping of impurities are realized. The recycling mechanism is used to recover impurities to prevent impurities from entering the unfiltered glue.
It effectively solves the problem of glue sealing the filter net, reduces glue waste, improves filtration efficiency, and has good practicality and economicality.
Smart Images

Figure CN120459689A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of product filtering equipment, and in particular to a glue static homogenization filtering device and a use method thereof. Background Art
[0002] Glue is commonly used to bond materials and has a wide range of applications in industry and life.
[0003] Since glue is easily mixed with some impurities during the production process, it is usually necessary to remove the impurities before sales. The existing implementation method usually adopts the filtration method, that is, the glue is separated by passing through a filter. During the implementation process, some impurities block the filter, causing subsequent filtration to slow down. Whether it is mechanical or manual cleaning, impurities in the filter can easily fall into the unfiltered glue, resulting in an increase in the impurity content in the unfiltered glue, increasing the difficulty of filtration, slowing down the filtration efficiency and causing glue waste. Summary of the Invention
[0004] In order to solve the above problems existing in the prior art, the purpose of the present invention is to provide a glue static homogenization filtering device and a method of using the device, which can effectively solve the problem of glue blocking the filter screen and reduce glue waste.
[0005] The technical solution adopted by the present invention is: a glue static homogenization filtering device: comprising
[0006] A loading mechanism, wherein a filter barrel is provided in the loading mechanism, a disassembly cover is provided at the opening of the filter barrel, a fixed conical pressure bowl is provided in the filter barrel, a filter screen is provided on the conical pressure bowl, the conical pressure bowl is connected to the disassembly cover by a connecting pipe, an extrusion cone is provided between the conical pressure bowl and the bottom plate of the filter barrel, a scraping notch is provided on the extrusion cone, a lifting slide rod is provided at the narrow end of the extrusion cone, the lifting slide rod is slidably connected to the connecting pipe and then passes through and slidably connected to the disassembly cover, a rotating baffle is provided on the side of the extrusion cone away from the conical pressure bowl, a dew opening is provided on the rotating baffle, a rotating column is provided at the center of the rotating baffle, the rotating column passes through and is rotatably connected to the center of the extrusion cone, and a rotating structure is provided in the filter barrel to assist the rotating baffle in rotating on the axis of the rotating column.
[0007] In one embodiment, a liquid inlet pipe is provided at the bottom plate of the filter barrel, and the liquid inlet pipe is used to replenish the liquid to be filtered.
[0008] In one embodiment, the rotating structure includes a torsion groove, which is arranged in the inner cavity of the filter barrel. A straight groove 1 is provided on the side of the torsion groove close to the bottom plate of the filter barrel, and a straight groove 2 is provided at the end of the torsion groove away from the straight groove 1, which terminates at the point where the conical pressure bowl and the filter barrel conflict. A rotating guide block is provided on the rotating baffle, and the rotating guide block passes into and is slidably connected to the straight groove 2.
[0009] In one embodiment, a filtering mechanism is further provided on the disassembly cover, and the filtering mechanism includes a tail baffle, and the tail baffle is provided at one end of the lifting slide away from the rotating baffle, and the lifting slide is provided with a lifting plate in the middle between the disassembly cover and the tail baffle, and a lifting torsion groove is also provided on the lifting slide, and a lifting straight groove 1 is provided at one end of the lifting torsion groove close to the disassembly cover, and a lifting straight groove 2 is provided at one end of the lifting torsion groove close to the tail baffle, and a lifting torsion block is provided in the middle of the lifting plate, and the lifting torsion block passes into and is slidably connected to the lifting straight groove 1, and an extrusion spring is provided between the lifting plate and the tail baffle and is penetrated by the lifting slide.
[0010] In one embodiment, a lifting rod is provided between the lifting plate and the disassembly cover plate, and the lifting rod is controllably extendable and retractable.
[0011] In one embodiment, the filter barrel is also provided with a recovery mechanism, and the recovery mechanism includes a waste liquid leakage port provided on the filter barrel, a sliding baffle is provided on the outside of the filter barrel to abut and block the waste liquid leakage port, a waste liquid receiving barrel is provided in the middle of the filter barrel, and the waste liquid receiving barrel is sleeved on the outer side of the filter barrel, and a guide column is provided at the bottom of the waste liquid receiving barrel, and the guide column passes through and is slidably connected to the sliding baffle, and a thrust spring passed through by the guide column is provided between the sliding baffle and the bottom plate of the waste liquid receiving barrel.
[0012] In one embodiment, the recovery mechanism further includes a magnetic sleeve pipe, which is sleeved above the opening of the filter barrel, abuts against the side of the sliding baffle away from the bottom plate of the waste liquid holding barrel, and a material permeation groove is provided on the magnetic sleeve pipe.
[0013] In one embodiment, the extrusion cone is made of metal, and the magnetic sleeve adsorbs the extrusion cone.
[0014] In one embodiment, a plurality of waste liquid leakage ports are provided at the bottom of the waste liquid receiving barrel, a recovery barrel is provided at the bottom of the filter barrel, the recovery barrel is sleeved on the filter barrel, a plurality of circular arrays of oblique filter plates are provided between the inner cavity of the recovery barrel and the outer wall of the filter barrel, a leak-proof plate is provided on the side of the oblique filter plate close to the recovery barrel, and a leakage groove is provided on the outer side of the oblique filter plate close to the bottom plate of the recovery barrel.
[0015] In one embodiment, a method for using the glue static homogenization filtering device is also included, and the specific method is as follows:
[0016] S1. Pour glue into the filter barrel;
[0017] S2. After some glue passes through the dew opening and the scraper gap, the rotating baffle is rotated to seal the bottom of the extrusion cone;
[0018] S3. Lift the lifting slide bar to squeeze the glue through the filter screen in the conical pressure bowl for filtration.
[0019] S4. Rotate the extrusion cone to scrape the impurities at the bottom of the filter screen into the scraping gap;
[0020] S5. Lower the lifting slide bar to complete the glue filtration.
[0021] The beneficial effects of the present invention are as follows: the present invention is a glue static homogenization filtering device and a method for using the device, which effectively solves the problem of glue blocking the filter and reduces glue waste. The specific implementation methods are as follows:
[0022] The operator first passes the glue through the bottom of the liquid inlet pipe, and then continues to inject glue until the glue flows into a certain capacity between the extrusion cone and the conical pressure bowl through the liquid dew opening and the scraper gap. Then, the lifting rod is started to drive the lifting plate to push the extrusion spring to squeeze the tail baffle to lift the lifting slide rod, further driving the extrusion cone to lift close to the conical pressure bowl. During the lifting process of the extrusion cone, the rotating baffle is guided by the rotating guide block of the linear groove 1, the torsion groove and the linear groove 2, so that the rotating baffle rotates on the rotating column, further forming a closed cavity between the extrusion cone and the conical pressure bowl. Driven by the lifting of the lifting rod, the glue squeezed by the extrusion cone is filtered through the filter screen on the conical pressure bowl.
[0023] After the extrusion cone fits the inner cavity of the conical pressing bowl, the extrusion cone cannot be lifted any further; the lifting rod is continued to be lifted to drive the lifting twisting block on the lifting disk to pass through the lifting straight groove 1 and the middle of the lifting twisting groove, so that the lifting slide rod rotates under the push of the lifting twisting block, further driving the scraping notch on the extrusion cone to scrape the inside of the filter screen, until the scraping notch rotates to the front of the dew opening and completely scrapes the area on the inner side of the filter screen, so that the impurities inside the filter screen fall into the scraping notch, and then the lifting rod is lowered, and when the extrusion cone rotates in the opposite direction to return to its original position, the extrusion cone is continued to be driven to descend, completing the automatic scraping of the filter screen;
[0024] After the outflow is completed, the lifting rod is continuously driven down, so that the rotating baffle passes through the second linear groove, the torsional groove and the first linear groove to realize the liquid opening, the scraping gap and the connection under the conical pressure bowl. After the magnetic sleeve loses its adsorption capacity after the adsorption distance of the extrusion cone is lengthened, the thrust spring appears to push the sliding baffle to seal the waste liquid leakage and complete the reset, thereby effectively solving the problem of scraped impurities falling into the untreated glue.
[0025] In order to reduce waste, the glue in the waste liquid holding barrel falls into the oblique filter plate through the waste liquid leakage port, and slowly flows into the bottom of the rotating baffle, during which it is slowly filtered. The filtered glue can flow out through the leakage trough and be reused, and impurities fall between the leak-proof plate and the oblique filter plate, which is easy to clean.
[0026] The device is easy to operate and effectively utilizes the cooperation of the rotating baffle and the extrusion cone to solve the problem of glue blocking the filter. At the same time, the recovery mechanism can also solve the problem that impurities can easily fall into the unfiltered glue, resulting in an increase in the impurity content in the unfiltered glue, increased filtration difficulty, slowed filtration efficiency and caused glue waste. The device has good practicality and economy, and is beneficial to the promotion and use of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] The present invention will be further described in detail below with reference to the accompanying drawings and specific implementation methods.
[0028] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;
[0029] Figure 2 It is a schematic diagram of the cross-sectional three-dimensional structure of the present invention;
[0030] Figure 3 It is a partial cross-sectional three-dimensional structural schematic diagram of the present invention;
[0031] Figure 4 This is a schematic diagram of the three-dimensional structure of the torsion groove of the present invention;
[0032] Figure 5 It is a schematic diagram of the three-dimensional structure of the filtering mechanism of the present invention;
[0033] Figure 6 This is the second partial three-dimensional structural diagram of the filtering mechanism of the present invention;
[0034] Figure 7It is a schematic diagram of a partial cross-sectional three-dimensional structure of the recovery mechanism of the present invention;
[0035] Figure 8 This is the second partial cross-sectional three-dimensional structural schematic diagram of the recovery mechanism of the present invention.
[0036] Description of the drawings: 1. Loading mechanism; 11. Filter barrel; 112. Waste liquid leakage port; 113. Twisting groove; 114. Linear groove 1; 115. Linear groove 2; 116. Liquid inlet pipe; 12. Conical pressure bowl; 13. Filter screen; 14. Connecting pipe; 15. Disassembly cover; 16. Rotating baffle; 161. Dew opening; 162. Rotating column; 163. Rotating guide block; 17. Extrusion cone; 171. Scraper notch; 2. Filter mechanism; 21. Lifting slide; 211. Tail Upper baffle; 212, lifting and twisting groove; 213, lifting straight groove one; 214, lifting straight groove two; 215, extrusion spring; 31, lifting rod; 32, lifting plate; 321, lifting and twisting block; 4, recovery mechanism; 41, waste liquid receiving barrel; 412, waste liquid leakage port; 42, guide column; 421, thrust spring; 43, sliding baffle; 44, magnetic sleeve; 441, material permeation trough; 45, recovery barrel; 451, leakage trough; 46, oblique filter plate; 461, anti-leakage plate. DETAILED DESCRIPTION
[0037] In order to make the objectives, technical solutions, and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only intended to explain the present invention and are not intended to limit the present invention. That is, the embodiments described herein are only some embodiments of the present invention, not all embodiments. Generally, the components of the embodiments of the present invention described and illustrated in the drawings herein may be arranged and designed in various different configurations.
[0038] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the invention as claimed, but is merely intended to represent selected embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative work are within the scope of protection of the present invention.
[0039] The following combination Figure 1-8 The specific embodiment of the present invention is described, a glue static homogenization filtering device, comprising
[0040] Loading mechanism 1, a filter barrel 11 is provided in the loading mechanism 1, which is a simple barrel-shaped structure. A removable cover 15 is provided at the opening of the filter barrel 11. The filtered glue can be taken out by disassembly, or it can be extracted by punching a hole at the top. The accompanying drawings are not drawn. As long as the function is realized, a liquid inlet pipe 116 is provided at the bottom plate of the filter barrel 11. The liquid inlet pipe 116 is used to replenish the liquid to be filtered. A fixed conical pressure bowl 12 is provided in the filter barrel 11, which is an inverted bowl-shaped structure. A filter screen 13 is provided on the conical pressure bowl 12 to prevent impurities from passing through. It can be replaced according to its filtering purpose. The conical pressure bowl 12 is connected to the removable cover 15 by a connecting pipe 14. There is a conical pressure bowl 12 and a bottom plate of the filter barrel 11 between the conical pressure bowl 12 and the bottom plate of the filter barrel 11. The extrusion cone 17 is provided with a scraper notch 171, and the vertical projection surface of the scraper notch 171 is the same as the vertical projection surface of the filter screen 13. The narrow end of the extrusion cone 17 is provided with a lifting slide rod 21, and the lifting slide rod 21 is slidably connected to the connecting pipe 14 and then passes through and slidably connected to the disassembly cover 15. The side of the extrusion cone 17 away from the conical pressure bowl 12 is provided with a rotating baffle 16, and a dew opening 161 is provided on the rotating baffle 16. A rotating column 162 is provided at the center of the rotating baffle 16, and the rotating column 162 passes through and is rotatably connected to the center of the extrusion cone 17. A rotating structure is provided in the filter barrel 11 to assist the rotating baffle 16 in rotating on the axis of the rotating column 162.
[0041] The rotating structure is beneficial and includes a torsion groove 113, which is provided in the inner cavity of the filter barrel 11. The torsion groove 113 rotates at several angles about the axis of the filter barrel 11. The specific angles are shown in the actual figure. A linear groove 114 is provided on the side of the torsion groove 113 close to the bottom plate of the filter barrel 11. The end of the torsion groove 113 away from the linear groove 114 is provided with a linear groove 2 115 which stops at the point where the conical pressure bowl 12 and the filter barrel 11 conflict. A rotating guide block 163 is provided on the rotating baffle 16. The rotating guide block 163 passes into and is slidably connected to the linear groove 2 115. A filtering mechanism 2 is also provided on the disassembly cover 15. The filtering mechanism 2 includes a tail baffle 211. The tail baffle 211 is provided on one side of the lifting slide 21 away from the rotating baffle 16. At the end, the lifting slide 21 is provided with a lifting plate 32 in the middle between the disassembly cover 15 and the tail baffle 211, and a lifting torsion groove 212 is also provided on the lifting slide 21. The lifting torsion groove 212 is provided with a lifting straight groove 1 213 at one end close to the disassembly cover 15, and a lifting straight groove 214 is provided at one end close to the tail baffle 211. A lifting torsion block 321 is provided in the middle of the lifting plate 32, and the lifting torsion block 321 passes into and is slidably connected to the lifting straight groove 1 213. An extrusion spring 215 penetrated by the lifting slide 21 is provided between the lifting plate 32 and the tail baffle 211. Specifically, a lifting rod 31 is provided between the lifting plate 32 and the disassembly cover 15, and the lifting rod 31 can be controllably extended and shortened to realize the function.
[0042] In practice, the lifting rod 31 is started, driving the lifting plate 32 to push the extrusion spring 215 to squeeze the tail baffle 211 to lift the lifting slide 21, further driving the extrusion cone 17 to lift close to the conical pressure bowl 12. During the lifting process of the extrusion cone 17, the rotating baffle 16 is guided by the linear groove 114, the torsion groove 113 and the linear groove 2 115 on the rotating guide block 163, causing the rotating baffle 16 to rotate on the rotating column 162, further forming a closed cavity between the extrusion cone 17 and the conical pressure bowl 12. Driven by the lifting of the lifting rod 31, the glue squeezed by the extrusion cone 17 is filtered through the filter screen 13 on the conical pressure bowl 12.
[0043] The filter barrel 11 is also provided with a recovery mechanism 4, which includes a waste liquid leakage port 112 provided on the filter barrel 11, a sliding baffle 43 is provided on the outside of the filter barrel 11 to abut and block the waste liquid leakage port 112, a waste liquid receiving barrel 41 is provided in the middle of the filter barrel 11, the waste liquid receiving barrel 41 is sleeved on the outer side of the filter barrel 11, and a guide column 42 is provided at the bottom of the waste liquid receiving barrel 41, the guide column 42 passes through and is slidably connected to the sliding baffle 43, and the sliding baffle 43 is connected to the waste liquid receiving barrel 41. A thrust spring 421 passed through by a guide column 42 is provided between the bottom plates of the material barrel 41. The recovery mechanism 4 also includes a magnetic sleeve pipe 44. The magnetic sleeve pipe 44 is sleeved above the opening of the filter barrel 11. The magnetic sleeve pipe 44 abuts against the side of the sliding baffle 43 away from the bottom plate of the waste liquid holding barrel 41. A material penetration groove 441 is provided on the magnetic sleeve pipe 44. The extrusion cone 17 is made of metal. The magnetic sleeve pipe 44 adsorbs the extrusion cone 17 and can slide up and down with the extrusion cone 17. A plurality of waste liquid leakage ports 412 are provided at the bottom of the waste liquid receiving barrel 41, a recovery barrel 45 is provided at the bottom of the filter barrel 11, and the recovery barrel 45 is sleeved on the filter barrel 11. A plurality of circular arrays of oblique filter plates 46 are provided between the inner cavity of the recovery barrel 45 and the outer wall of the filter barrel 11, which are similar to the filter screen 13 and can be used for filtering. The specific number is shown in the actual figure. A leak-proof plate 461 is provided on the side of the oblique filter plate 46 close to the recovery barrel 45, and a leakage groove 451 is provided on the outer side of the oblique filter plate 46 close to the bottom plate of the recovery barrel 45.
[0044] In practice, the glue in the waste liquid receiving barrel 41 falls into the oblique filter plate 46 through the waste liquid leakage port 412, and slowly flows into the bottom of the rotating baffle 16, during which it is slowly filtered. The filtered glue can flow out through the leakage groove 451 and be reused, and impurities fall between the leak-proof plate 461 and the oblique filter plate 46, which is convenient for cleaning.
[0045] Advantageously, a method for using the glue static homogenization filtering device is also included, and the specific method is as follows:
[0046] S1. Inject glue into the filter barrel 11;
[0047] S2. After a number of glue passes through the dew opening 161 and the scraper notch 171, the rotating baffle 16 is rotated to seal the bottom of the extrusion cone 17;
[0048] S3 lifting the lifting slide 21, squeeze the glue through the conical pressure bowl 12 within the filter screen 13 to complete the filtration;
[0049] S4 rotates the extrusion cone 17, scraping the impurities at the bottom of the filter screen 13 into the scraper notch 171;
[0050] S5. Lower the lifting slide bar 21 to complete the glue filtration.
[0051] Working principle of the present invention:
[0052] The operator first passes the glue through the bottom of the liquid inlet pipe 116, and then continues to inject glue until the glue flows into a certain capacity between the extrusion cone 17 and the conical pressing bowl 12 through the dew opening 161 and the scraper notch 171. Then, the lifting rod 31 is started to drive the lifting plate 32 to push the extrusion spring 215 to squeeze the tail baffle 211 to lift the lifting slide 21, further driving the extrusion cone 17 to lift and approach the conical pressing bowl 12. During the lifting process of the extrusion cone 17, the rotating baffle 16 is guided by the linear groove 114, the torsion groove 113 and the linear groove 2 115 on the rotating guide block 163, so that the rotating baffle 16 rotates on the rotating column 162, further forming a closed cavity between the extrusion cone 17 and the conical pressing bowl 12. Driven by the lifting of the lifting rod 31, the glue squeezed by the extrusion cone 17 is filtered through the filter screen 13 on the conical pressing bowl 12.
[0053] After the extrusion cone 17 fits the inner cavity of the conical pressing bowl 12, the extrusion cone 17 cannot be lifted any further; the lifting rod 31 is continued to be lifted to drive the lifting twist block 321 on the lifting plate 32 to pass through the lifting straight groove 1 213 and the middle of the lifting twist groove 212, so that the lifting slide 21 is driven by the lifting twist block 321 to rotate, further driving the scraping notch 171 on the extrusion cone 17 to scrape the inside of the filter screen 13, until the scraping notch 171 rotates to the front of the dew opening 161 and completely scrapes the area around the inner side of the filter screen 13, so that the impurities inside the filter screen 13 fall into the scraping notch 171, and then the lifting rod 31 is lowered. When the extrusion cone 17 rotates in the opposite direction to return to its original position, the extrusion cone 17 is continued to be driven to descend, completing the automatic scraping of the filter screen 13;
[0054] In order to effectively prevent the scraped impurities from falling into the untreated glue, when the extrusion cone 17 completes the above process and descends, it drives the magnetic sleeve pipe 44 to squeeze the sliding baffle 43 and squeeze the thrust spring 421 to move downward along the guide of the guide column 42 until the waste liquid leakage port 112 is connected to the waste liquid receiving barrel 41, and the impurity waste liquid in the scraping gap 171 passes through the waste liquid leakage port 112 and the material penetration groove 441 of the magnetic sleeve pipe 44 and falls into the waste liquid receiving barrel 41. After the outflow is completed, it continues to The lifting rod 31 is driven to descend, so that the rotating baffle 16 passes through the second linear groove 115, the torsion groove 113 and the first linear groove 114, and realizes the return of the dew opening 161, the scraper notch 171 and the lower part of the conical pressing bowl 12. After the magnetic sleeve 44 loses its adsorption capacity after the adsorption distance of the extrusion cone 17 is lengthened, the thrust spring 421 appears to push the sliding baffle 43 to block the waste liquid leakage 112 and complete the return, thereby effectively preventing the scraped impurities from falling into the untreated glue.
[0055] In order to reduce waste, the glue in the waste liquid receiving barrel 41 falls into the oblique filter plate 46 through the waste liquid leakage port 412, and slowly flows into the bottom of the rotating baffle 16, during which it is slowly filtered. The filtered glue can flow out through the leakage groove 451 and be reused, and impurities fall between the leak-proof plate 461 and the oblique filter plate 46, which is convenient for cleaning.
[0056] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in the present invention based on the specific circumstances.
[0057] The above content is merely an example and explanation of the structure of the present invention. Those skilled in the art of the present invention may make various modifications or additions to the described specific embodiments or replace them in a similar manner. As long as they do not deviate from the structure of the invention or exceed the scope defined by the claims, they shall fall within the scope of protection of the present invention.
Claims
1. A glue static homogenization filtering device, characterized by: include A loading mechanism (1) is provided in the loading mechanism (1), wherein a filter barrel (11) is provided with a disassembly cover (15) at the opening of the filter barrel (11), a fixed conical pressing bowl (12) is provided in the filter barrel (11), a filter screen (13) is provided on the conical pressing bowl (12), the conical pressing bowl (12) is connected to the disassembly cover (15) by a connecting pipe (14), an extrusion cone (17) is provided between the conical pressing bowl (12) and the bottom plate of the filter barrel (11), a scraping notch (171) is provided on the extrusion cone (17), and a lifting slide rod is provided at the narrow end of the extrusion cone (17) (21), the lifting slide rod (21) is slidably connected to the connecting pipe (14) and then passes through and slidably connected to the disassembly cover (15), the extrusion cone (17) is provided with a rotating baffle (16) on the side away from the conical pressure bowl (12), the rotating baffle (16) is provided with a dew opening (161), the rotating baffle (16) is provided with a rotating column (162) at the center of the rotating baffle (16), the rotating column (162) passes through and is rotatably connected to the center of the extrusion cone (17), and a rotating structure is provided in the filter barrel (11) to assist the rotating baffle (16) to rotate on the axis of the rotating column (162).
2. The glue static homogenization filtering device according to claim 1, characterized in that: A liquid inlet pipe (116) is provided at the bottom plate of the filter barrel (11), and the liquid inlet pipe (116) is used to replenish the liquid to be filtered.
3. The glue static homogenization filtering device according to claim 1, characterized in that: The rotating structure includes a torsion groove (113), the torsion groove (113) is arranged in the inner cavity of the filter barrel (11), a linear groove (114) is provided on the side of the torsion groove (113) close to the bottom plate of the filter barrel (11), and a linear groove (115) is provided at the end of the torsion groove (113) away from the linear groove (114) and terminated at the point where the conical pressure bowl (12) and the filter barrel (11) collide with each other, and a rotating guide block (163) is provided on the rotating baffle (16), and the rotating guide block (163) passes into and is slidably connected to the linear groove (115).
4. The glue static homogenization filtering device according to claim 3, characterized in that: The disassembly cover (15) is further provided with a filter mechanism (2), the filter mechanism (2) comprising a tail baffle (211), the tail baffle (211) being provided at one end of the lifting slide (21) away from the rotating baffle (16), the lifting slide (21) being provided with a lifting plate (32) in the middle between the disassembly cover (15) and the tail baffle (211), the lifting slide (21) being further provided with a lifting torsion groove (212), the lifting torsion groove (212) being close to the disassembly cover One end of the cover plate (15) is provided with a lifting straight groove (213), and one end of the lifting torsion groove (212) close to the tail baffle (211) is provided with a lifting straight groove (214). A lifting torsion block (321) is provided in the middle of the lifting plate (32), and the lifting torsion block (321) is passed through and slidably connected to the lifting straight groove (213). An extrusion spring (215) penetrated by the lifting slide rod (21) is provided between the lifting plate (32) and the tail baffle (211).
5. The glue static homogenization filtering device according to claim 4, characterized in that: A lifting rod (31) is provided between the lifting plate (32) and the disassembly cover plate (15), and the lifting rod (31) can be controllably extended or shortened.
6. The glue static homogenization filtering device according to claim 1, characterized in that: The filter barrel (11) is also provided with a recovery mechanism (4), the recovery mechanism (4) comprising a waste liquid leakage port (112) provided on the filter barrel (11), a sliding baffle (43) abutting against and blocking the waste liquid leakage port (112) provided on the outside of the filter barrel (11), a waste liquid receiving barrel (41) provided in the middle of the filter barrel (11), the waste liquid receiving barrel (41) sleeved on the outer side of the filter barrel (11), a guide column (42) provided at the bottom of the waste liquid receiving barrel (41), the guide column (42) passing through and slidably connected to the sliding baffle (43), a thrust spring (421) passed through by the guide column (42) provided between the sliding baffle (43) and the bottom plate of the waste liquid receiving barrel (41).
7. The glue static homogenization filtering device according to claim 6, characterized in that: The recovery mechanism (4) further comprises a magnetic sleeve pipe (44), the magnetic sleeve pipe (44) being sleeved above the opening of the filter barrel (11), the magnetic sleeve pipe (44) being in contact with the side of the sliding baffle (43) away from the bottom plate of the waste liquid receiving barrel (41), and a material permeation groove (441) being provided on the magnetic sleeve pipe (44).
8. The glue static homogenization filtering device according to claim 7, characterized in that: The extrusion cone (17) is made of metal, and the magnetic sleeve (44) adsorbs the extrusion cone (17).
9. The glue static homogenization filtering device according to claim 7, characterized in that: The waste liquid receiving barrel (41) is provided with a plurality of waste liquid leakage ports (412) at the bottom, the filter barrel (11) is provided with a recovery barrel (45) at the bottom, the recovery barrel (45) is sleeved on the filter barrel (11), a plurality of circumferential arrays of oblique filter plates (46) are provided between the inner cavity of the recovery barrel (45) and the outer wall of the filter barrel (11), a leak-proof plate (461) is provided on the side of the oblique filter plate (46) close to the recovery barrel (45), and a liquid leakage groove (451) is provided on the outer side of the oblique filter plate (46) close to the bottom plate of the recovery barrel (45).
10. A method for using a glue static homogenization filtering device, using the glue static homogenization filtering device according to any one of claims 1 to 9, characterized in that: The specific method is as follows: S1. Inject glue into the filter barrel (11); S2. After some glue passes through the dew opening (161) and the scraper notch (171), the rotating baffle (16) is rotated to seal the bottom of the extrusion cone (17); S3 lift the lifting slide (21), squeeze the glue through the conical pressure bowl (12) within the filter screen (13) to complete the filtration; S4 rotates the extrusion cone (17) to scrape the impurities at the bottom of the filter screen (13) into the scraper notch (171); S5. Lower the lifting slide bar (21) to complete the glue filtration.