A metering pump and method applied to the production of polytetrafluoroethylene
The novel pump design addresses residue buildup and wear issues by maintaining continuous rotation of material within the pump body, improving precision and efficiency in tetrafluoroethylene production.
Patent Information
- Application Number
- CN202510528510.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2045-04-25
AI Technical Summary
During the production process of polytetrafluoroethylene, the raw materials are prone to stick to and retain on the inner wall of the piston chamber and the pump housing, resulting in component wear, equipment stability and metering accuracy, and affecting production efficiency and product quality.
A metering pump including a pumping mechanism, an adjustment mechanism and a driving mechanism is designed to keep the raw material rotated through the rotating state of the piston seat and the sealing ring to avoid adhesion and residue. The eccentric motor drive and worm turbine structure are used to realize the reciprocating movement of the piston, and combined with the combination of ratchet pawls and helical gears, ensuring that the raw material remains rotating during the pumping process.
It effectively prevents raw materials from sticking and remaining in the inner wall of the piston chamber and the pump housing, extends the maintenance interval of the metering pump, reduces the amplitude, improves the equipment stability and metering accuracy, and ensures the production efficiency and quality of polytetrafluoroethylene.
Smart Images

Figure CN120062072B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of metering pumps, and in particular to a metering pump and a method for producing polytetrafluoroethylene. Background Art
[0002] In the production process of polytetrafluoroethylene, accurate metering and stable delivery of raw materials are key links to ensure product quality. At present, plunger metering pumps have become the main equipment for pumping polytetrafluoroethylene raw materials in production due to their simple structure and relatively high metering accuracy.
[0003] However, the existing plunger metering pumps have many problems in practical applications. During the extraction and feeding process, due to the changes in the internal pressure of the pump body, the polytetrafluoroethylene raw material is easy to adhere to the piston chamber and the inner wall of the pump casing. These residual raw materials will not only cause excessive friction between the piston seat and the sealing ring during movement, causing component wear and shortening the service life of the metering pump, but also increase the maintenance frequency and cost of the equipment. In addition, the friction caused by the residual raw materials will cause the metering pump to produce excessive amplitude during operation, affecting the stability and metering accuracy of the equipment, and may even cause poor raw material pumping, seriously affecting the production efficiency and product quality of polytetrafluoroethylene. Summary of the invention
[0004] In view of the problems existing in the prior art, the object of the present invention is to provide a metering pump and method for producing polytetrafluoroethylene to solve the problems raised by the above background technology.
[0005] To achieve the above object, the present invention provides a metering pump for producing polytetrafluoroethylene, comprising:
[0006] A pump mechanism, used to pump polytetrafluoroethylene raw materials from the storage tank to the machine for the next processing procedure;
[0007] A pumping mechanism, used to change the pressure inside the pump mechanism to pump polytetrafluoroethylene raw materials;
[0008] An adjustment mechanism is used to rotate the polytetrafluoroethylene inside the pump mechanism during the pumping process;
[0009] A driving mechanism, used to drive the pumping mechanism to change the pressure inside the pump mechanism;
[0010] The pumping mechanism includes a limit bin and a piston bin, the limit bin is internally slidably connected with a universal coupling, the left end of the universal coupling is fixedly connected with a pulling shaft, the outer periphery of the pulling shaft is evenly distributed with spiral grooves, the left end of the spiral groove is fixedly connected with a piston seat, the outer periphery of the piston seat is fixedly connected with a sealing ring, the left end of the piston seat is fixedly connected with a spiral leaf, and the outer peripheries of the piston seat and the sealing ring are both slidably connected to the inside of the piston bin.
[0011] Preferably, the driving mechanism includes a driving chamber, a lower side of a front end of the driving chamber is fixedly connected with an eccentric motor, a driving end of a rear end of the eccentric motor is fixedly connected with a worm, the worm is meshed with a turbine, a middle part of the turbine is fixedly connected with a first driving shaft, an upper end of the first driving shaft is fixedly connected with a cam disc, a wedge block is slidably connected inside an upper end opening of the cam disc, an upper end of the wedge block is fixedly connected with a rotating seat, an upper end of the rotating seat is rotatably connected with a threaded rod through a bearing, a middle outer periphery of the threaded rod is rotatably connected with a threaded seat, an upper end of the threaded rod is fixedly connected with a turntable, and a second driving shaft is rotatably connected inside a left end of the cam disc.
[0012] Preferably, a left end of the driving chamber is fixedly connected with a right end of a limiting chamber, front and rear ends of the worm are rotatably connected to middle lower parts of front and rear inner sides of the driving chamber, and a lower end of the first driving shaft is rotatably connected to a middle part of an inner bottom wall of the driving chamber through a bearing.
[0013] Preferably, a lower end of the threaded seat is fixedly connected with a middle part of an upper end of the driving chamber, and a left end of the second driving shaft is fixedly connected with a right end of a universal coupling.
[0014] Preferably, the pump body mechanism includes a pump housing, a lower end of the pump housing is flange-connected with a feed inlet, an upper end of the pump housing is flange-connected with a discharge outlet, inclined openings are fixedly connected inside both the feed inlet and the discharge outlet, feed boxes are rotatably connected to upper and lower ends inside the pump housing, spiral openings are evenly formed in upper ends of the feed boxes, second springs are fixedly connected to inner tops of the feed boxes, sealing balls are fixedly connected to lower ends of the second springs, and second magnetic blocks are evenly distributed on an outer periphery of the feed boxes.
[0015] Preferably, outer peripheries of the sealing balls are slidably connected to lower inner ends of the feed boxes, and a middle part of a right end of the pump housing is fixedly connected with a left end of a piston chamber.
[0016] Preferably, the adjusting mechanism includes an adjusting chamber and a rotating chamber, first helical gears are rotatably connected to upper and lower ends of a middle part inside the adjusting chamber, the first helical gears are respectively meshed with second helical gears, driving rods are fixedly connected to middle parts of the second helical gears, straight gears are fixedly connected to left ends of the driving rods, the straight gears are respectively meshed with toothed discs, first magnetic blocks are evenly distributed inside the toothed discs, outer peripheries of the toothed discs are rotatably connected inside the rotating chamber, connecting chambers are fixedly connected to upper and lower sides of a left end of the adjusting chamber, ratchets are rotatably connected inside the connecting chambers, middle parts of the ratchets are fixedly connected to outer peripheries of middle right ends of the driving rods, the ratchets are respectively meshed with pawls, connecting rods are fixedly connected to ends of the pawls far away from the ratchets, and first springs are sleeved on outer peripheries of the connecting rods.
[0017] Preferably, the left end of the adjustment chamber is fixedly connected to the right end of the piston chamber, the right end of the adjustment chamber is fixedly connected to the left end of the limit chamber, and the first bevel gears are all engaged with the spiral grooves on the outer periphery of the pull shaft.
[0018] Preferably, the outer periphery of the drive rod is rotatably connected to the inside of the connection chamber. One end of the connection chamber close to the pull shaft is fixedly connected to the middle of the upper and lower ends of the piston chamber, and the outer periphery of the rotating chamber is fixedly connected to the upper and lower ends of the outer periphery of the pump housing.
[0019] A method for using a metering pump applied to the production of polytetrafluoroethylene, which is applied to the metering pump for the production of polytetrafluoroethylene described in any one of the above, includes the following steps:
[0020] S1. First, after adjusting the position of the wedge block inside the cam disc through the turntable, start the eccentric motor. The piston seat slides to the right inside the piston chamber, reducing the pressure in the pump body mechanism, so that the polytetrafluoroethylene raw material enters the pump housing from the feed port. At the same time, through the cooperation of the ratchet and pawl at the upper end, the first bevel gear at the upper end cannot rotate, so that the piston seat rotates through the cooperation of the spiral groove on the outer periphery of the pull shaft and the first bevel gear at the upper end, and further makes the raw material entering the piston chamber in a rotating state. And the pull shaft drives the gear disc to rotate through the cooperation of the first bevel gear and the second bevel gear at the lower end and the drive rod. Finally, through the cooperation of the first magnet and the second magnet, the feed box at the lower end is driven to rotate, so that the raw material spirally entering the feed box through the lower inclined opening is conveyed into the pump housing while maintaining a rotating state;
[0021] S2. When the piston seat moves to the left inside the piston chamber, through the cooperation of the ratchet and pawl at the lower end, the first bevel gear at the lower end stops rotating, so that the piston seat still maintains its original rotation direction inside the piston chamber, and further makes the raw material entering the piston chamber rotate in its original state. Similarly, the gear disc at the upper end drives the feed box at the upper end to rotate through the cooperation of the first magnet and the second magnet, so that the raw material entering the pump housing still maintains its original rotating state and is discharged from the pump housing through the discharge port, completing the pumping of the polytetrafluoroethylene raw material.
[0022] The beneficial effects of the metering pump and method for producing polytetrafluoroethylene provided by the present invention are as follows:
[0023] 1. When the piston seat moves to the right, the ratchet pawl at the upper end locks the ratchet wheel it meshes with. Through the cooperation of the helical gear 1 at the upper end and the helical groove on the outer periphery of the drawing shaft, the helical blade at the left end of the piston seat is driven to rotate, making the raw materials entering the interior of the piston chamber in a rotating state. Conversely, when the piston seat moves to the left, the ratchet pawl at the lower end locks the ratchet wheel it meshes with, causing the helical gear 1 at the lower end to stop rotating. When the drawing shaft drives the piston seat to move left and right inside the piston chamber, it can only rotate in one direction, thereby keeping the raw materials entering the interior of the piston chamber in a rotating state, preventing the raw materials from adhering and remaining on the inner wall of the piston chamber due to pressure changes during material extraction and feeding, and avoiding the wear of the piston seat and the sealing ring caused by friction between the piston seat and the raw materials remaining on the inner wall of the piston chamber. This extends the maintenance interval of the metering pump and reduces the possibility of excessive amplitude during the use of the metering pump due to friction between the piston seat and the raw materials remaining on the inner wall of the piston chamber.
[0024] 2. When the piston seat moves to the right, the helical gear 1 at the upper end is locked, and the helical groove on the outer periphery of the drawing shaft drives the helical gear 2 to rotate through the helical gear 1. Then, the spur gear is driven to rotate through the driving rod at the lower end, and further, the magnet 1 inside the lower end gear disk cooperates with the magnet 2 on the outer periphery of the feed box to drive the lower feed box to rotate inside the pump housing. Before the raw materials enter the interior of the lower feed box through the feed port, they are first made to rotate through the inclined opening at the lower end. After entering the interior of the lower feed box, since the lower feed box is in a rotating state, through the evenly distributed spiral openings at the upper end of the lower feed box, the raw materials are kept in a rotating state when entering the interior of the pump housing. Conversely, when the piston seat moves to the left, the upper feed box rotates. At the same time, the helical gear 1 at the lower end is locked, so that the raw materials pumped out of the interior of the pump housing still rotate in the same direction and are discharged through the upper discharge port, thereby realizing that during the pumping process of the raw materials, they always rotate in the same direction inside the pump housing. Finally, during the pumping process of the raw materials, they will not adhere and remain on the inner wall of the pump housing due to pressure changes inside the pump housing, which may affect the subsequent pumping of polytetrafluoroethylene raw materials.
[0025] 3. When the raw materials inside the piston chamber are being pumped in a rotating manner, it will further increase the rotational eddy current of the raw materials inside the pump housing during the pumping process, further ensuring that the raw materials will not adhere and remain on the inner wall of the pump housing due to pressure changes inside the pump housing. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for description in the embodiments or the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0027] Figure 1 Rear perspective three-dimensional schematic diagram of a metering pump and method for producing polytetrafluoroethylene provided by this application;
[0028] Figure 2 Front perspective three-dimensional schematic diagram of a metering pump and method for producing polytetrafluoroethylene provided by this application;
[0029] Figure 3 Front perspective sectional schematic diagram of a metering pump and method for producing polytetrafluoroethylene provided by this application;
[0030] Figure 4 First front perspective sectional partial enlarged schematic diagram of a metering pump and method for producing polytetrafluoroethylene provided by this application;
[0031] Figure 5 Second front perspective sectional partial enlarged schematic diagram of a metering pump and method for producing polytetrafluoroethylene provided by this application;
[0032] Figure 6 Third front perspective sectional partial enlarged schematic diagram of a metering pump and method for producing polytetrafluoroethylene provided by this application.
[0033] In the figure: 1. Driving mechanism; 11. Driving chamber; 12. Eccentric motor; 13. Worm; 14. Turbine; 15. First driving shaft; 16. Wedge block; 17. Rotating seat; 18. Threaded rod; 19. Threaded seat; 110. Turntable; 111. Cam disk; 112. Second driving shaft; 2. Pumping mechanism; 21. Limiting chamber; 22. Universal coupling; 23. Pulling shaft; 24. Spiral groove; 25. Piston seat; 26. Sealing ring; 27. Spiral blade; 28. Piston chamber; 3. Adjusting mechanism; 31. Adjusting chamber; 32. First helical gear; 33. Second helical gear; 34. Driving rod; 35. Straight gear; 36. Toothed disk; 37. First magnetic block; 38. Connecting chamber; 39. Ratchet; 310. Pawl; 311. Connecting rod; 312. First spring; 313. Rotating chamber; 4. Pump body mechanism; 41. Pump housing; 42. Feed inlet; 43. Discharge outlet; 44. Oblique opening; 45. Feed box; 46. Spiral opening; 47. Second spring; 48. Sealing ball; 49. Second magnetic block. Detailed implementation manners
[0034] The following further describes in detail the specific implementation manners of the present invention in conjunction with the accompanying drawings of the specification and embodiments. The following embodiments are only used to illustrate the present invention, but cannot be used to limit the scope of the present invention.
[0035] As Figures 1-6 shown, this embodiment provides a metering pump for producing polytetrafluoroethylene, including:
[0036] The pump body mechanism 4 is used to pump the polytetrafluoroethylene raw material from the storage tank into the machine for the next processing procedure;
[0037] The pumping mechanism 2 is used to change the pressure inside the pump body mechanism 4 to achieve pumping of the polytetrafluoroethylene raw material;
[0038] The adjustment mechanism 3 is used to keep the polytetrafluoroethylene in a rotating state inside the pump body mechanism 4 during the pumping process;
[0039] The driving mechanism 1 is used to drive the pumping mechanism 2 to change the pressure inside the pump body mechanism 4;
[0040] The pumping mechanism 2 includes a limit bin 21 and a piston bin 28. A universal coupling 22 is slidably connected inside the limit bin 21. The left end of the universal coupling 22 is fixedly connected to a pull shaft 23. A spiral groove 24 is evenly distributed on the outer periphery of the pull shaft 23. The left end of the spiral groove 24 is fixedly connected to a piston seat 25. A sealing ring 26 is fixedly connected to the outer periphery of the piston seat 25. A spiral blade 27 is fixedly connected to the left end of the piston seat 25. The outer peripheries of the piston seat 25 and the sealing ring 26 are both slidably connected inside the piston bin 28.
[0041] In this embodiment, the driving mechanism 1 includes a driving bin 11. A eccentric motor 12 is fixedly connected to the lower side of the front end of the driving bin 11. The rear driving end of the eccentric motor 12 is fixedly connected to a worm 13. The worm 13 is meshed with a turbine 14. A driving shaft one 15 is fixedly connected to the middle of the turbine 14. A cam disk 111 is fixedly connected to the upper end of the driving shaft one 15. A wedge block 16 is slidably connected inside the upper opening of the cam disk 111. The upper end of the wedge block 16 is fixedly connected to a rotating seat 17. The upper end of the rotating seat 17 is rotatably connected to a threaded rod 18 through a bearing. The middle outer periphery of the threaded rod 18 is rotatably connected to a threaded seat 19. A turntable 110 is fixedly connected to the upper end of the threaded rod 18. A driving shaft two 112 is rotatably connected inside the left end of the cam disk 111.
[0042] In this embodiment, the left end of the driving bin 11 is fixedly connected to the right end of the limit bin 21. The front and rear ends of the worm 13 are rotatably connected to the middle and lower parts of the front and rear sides inside the driving bin 11. The lower end of the driving shaft one 15 is rotatably connected to the middle of the inner bottom wall of the driving bin 11 through a bearing.
[0043] In this embodiment, the lower end of the threaded seat 19 is fixedly connected to the middle of the upper end of the driving bin 11. The left end of the driving shaft two 112 is fixedly connected to the right end of the universal coupling 22.
[0044] Specifically, rotate the turntable 110. Through the cooperation of the threaded seat 19 and the threaded rod 18, drive the wedge block 16 at the lower end of the rotating seat 17 to move downward or upward inside the cam disk 111, thereby adjusting the metering of the metering pump for conveying polytetrafluoroethylene raw materials. Start the eccentric motor 12 to drive the turbine 14 to rotate through the worm 13. Then, through the cooperation of the first drive shaft 15 and the wedge block 16, and further through the second drive shaft 112, drive the universal coupling 22 to reciprocate inside the limit bin 21. Drive the piston seat 25 to reciprocate inside the piston chamber 28 through the pull-out shaft 23. When the piston seat 25 moves to the right inside the piston chamber 28, the sealing ball 48 inside the lower spiral opening 46 moves upward, and the sealing ball 48 inside the upper feed box 45 remains stationary. The raw material enters the inside of the lower feed box 45 from the feed port 42 and enters the inside of the pump housing 41 through the lower spiral opening 46. When the piston seat 25 moves to the left inside the piston chamber 28, the sealing ball 48 inside the lower feed box 45 resets, and the sealing ball 48 inside the upper feed box 45 moves upward. The raw material enters the inside of the discharge port 43 from the upper spiral opening 46 and is conveyed to the machine in the next processing procedure, completing the conveyance of the polytetrafluoroethylene raw material. When the piston seat 25 moves to the right, the upper pawl 310 locks the ratchet wheel 39 engaged with it. Through the cooperation of the upper first helical gear 32 and the spiral groove 24 on the outer periphery of the pull-out shaft 23, drive the spiral blade 27 at the left end of the piston seat 25 to rotate, so that the raw material entering the inside of the piston chamber 28 is in a rotating state. On the contrary, when the piston seat 25 moves to the left, the lower pawl 310 locks the ratchet wheel 39 engaged with it, so that the lower first helical gear 32 no longer rotates. When the pull-out shaft 23 drives the piston seat 25 to move left and right inside the piston chamber 28, it can only rotate unidirectionally. Thus, the raw material entering the inside of the piston chamber 28 remains in a rotating state, so that the raw material will not adhere and remain on the inner wall of the piston chamber 28 due to the pressure change during the material extraction and feeding, resulting in the friction between the piston seat 25 and the raw material remaining on the inner wall of the piston chamber 28, causing wear of the piston seat 25 and the sealing ring 26, extending the maintenance interval of the metering pump, and at the same time reducing the possibility of the metering pump having too large an amplitude during use due to the friction between the piston seat 25 and the raw material remaining on the inner wall of the piston chamber 28.
[0045] In this embodiment, the pump body mechanism 4 includes a pump housing 41. The lower end of the pump housing 41 is flange-connected with a feed port 42, and the upper end of the pump housing 41 is flange-connected with a discharge port 43. Oblique openings 44 are fixedly connected inside both the feed port 42 and the discharge port 43. The upper and lower ends inside the pump housing 41 are rotatably connected with feed boxes 45. The upper ends of the feed boxes 45 are evenly provided with spiral openings 46. Second springs 47 are fixedly connected to the inner tops of the feed boxes 45. The lower ends of the second springs 47 are fixedly connected with sealing balls 48. Second magnetic blocks 49 are evenly distributed on the outer peripheries of the feed boxes 45.
[0046] In this embodiment, the outer periphery of the sealing ball 48 is slidably connected to the lower inner end of the feed box 45, and the middle right end of the pump housing 41 is fixedly connected to the left end of the piston chamber 28.
[0047] In this embodiment, the adjusting mechanism 3 includes an adjusting chamber 31 and a rotating chamber 313. At the upper and lower ends of the middle part inside the adjusting chamber 31, there are rotatably connected first helical gears 32. The first helical gears 32 are all meshed with second helical gears 33. In the middle of the second helical gears 33, there are fixedly connected driving rods 34. At the left ends of the driving rods 34, there are fixedly connected spur gears 35. The spur gears 35 are all meshed with a toothed disc 36. Inside the toothed disc 36, there are evenly distributed first magnetic blocks 37. The outer peripheries of the toothed disc 36 are rotatably connected inside the rotating chamber 313. At the upper and lower sides of the left end of the adjusting chamber 31, there are fixedly connected connecting chambers 38. Inside the connecting chambers 38, there are rotatably connected ratchets 39. In the middle of the ratchets 39, there are fixedly connected to the outer periphery of the middle right end of the driving rod 34. The ratchets 39 are all meshed with pawls 310. At the ends of the pawls 310 away from the ratchets 39, there are fixedly connected connecting rods 311. Around the outer peripheries of the connecting rods 311, there are sleeved first springs 312.
[0048] In this embodiment, the left end of the adjusting chamber 31 is fixedly connected to the right end of the piston chamber 28, and the right end of the adjusting chamber 31 is fixedly connected to the left end of the limiting chamber 21. The first helical gears 32 are all meshed with the spiral grooves 24 on the outer periphery of the pull shaft 23.
[0049] In this embodiment, the outer peripheries of the driving rods 34 are rotatably connected inside the connecting chambers 38. At the ends of the connecting chambers 38 close to the pull shaft 23, there are fixedly connected to the upper and lower middle parts of the piston chamber 28. The outer peripheries of the rotating chambers 313 are fixedly connected to the upper and lower ends of the outer periphery of the pump housing 41.
[0050] Specifically, when the piston seat 25 moves to the right, the bevel gear one 32 at the upper end is locked, and the spiral groove 24 on the outer periphery of the draw shaft 23 drives the bevel gear two 33 to rotate through the bevel gear one 32. Then, the spur gear 35 is driven to rotate through the drive rod 34 at the lower end. Furthermore, the magnet one 37 inside the lower end gear disc 36 cooperates with the magnet two 49 on the outer periphery of the feed box 45 to drive the lower end feed box 45 to rotate inside the pump housing 41. Before the raw material enters the inside of the lower end feed box 45 through the feed port 42, the raw material is first rotated through the inclined opening 44 at the lower end. After entering the inside of the lower end feed box 45, since the lower end feed box 45 is in a rotating state, the raw material remains in a rotating state when entering the inside of the pump housing 41 through the spiral ports 46 evenly distributed at the upper end of the lower end feed box 45. Conversely, when the piston seat 25 moves to the left, the upper end feed box 45 rotates. At the same time, the bevel gear one 32 at the lower end is locked, so that the raw material pumped out of the inside of the pump housing 41 still rotates in the same direction and is discharged through the upper end discharge port 43. Thus, during the pumping process of the raw material, it always rotates in the same direction inside the pump housing 41, and finally, during the pumping process of the raw material, it will not adhere and remain on the inner wall of the pump housing 41 due to the pressure change inside the pump housing 41, which may affect the subsequent pumping of the polytetrafluoroethylene raw material.
[0051] A method for using a metering pump applied to the production of polytetrafluoroethylene, which is applied to a metering pump for the production of polytetrafluoroethylene in any one of the above, and includes the following steps:
[0052] S1. First, after adjusting the position of the wedge block 16 inside the cam disc 111 through the turntable 110, start the eccentric motor 12. The piston seat 25 slides to the right inside the piston chamber 28 to reduce the pressure in the pump body mechanism 4, so that the polytetrafluoroethylene raw material enters the pump housing 41 from the feed port 42. At the same time, through the cooperation of the ratchet wheel 39 and the ratchet pawl 310 at the upper end, the bevel gear one 32 at the upper end cannot rotate. Thus, the piston seat 25 rotates through the cooperation of the spiral groove 24 on the outer periphery of the draw shaft 23 and the bevel gear one 32 at the upper end. Furthermore, the raw material entering the inside of the piston chamber 28 is in a rotating state. And the draw shaft 23 drives the gear disc 36 to rotate through the cooperation of the bevel gear one 32 and the bevel gear two 33 and the drive rod 34 at the lower end, and finally drives the lower end feed box 45 to rotate through the cooperation of the magnet one 37 and the magnet two 49, so that the raw material spirally entering the inside of the feed box 45 through the inclined opening 44 at the lower end is transported to the inside of the pump housing 41 while remaining in a rotating state;
[0053] S2. When the piston seat 25 moves leftward inside the piston chamber 28, through the cooperation of the ratchet wheel 39 at the lower end and the pawl 310, the helical gear 32 at the lower end stops rotating, so that the piston seat 25 still maintains its original rotation direction inside the piston chamber 28. As a result, the raw material entering the piston chamber 28 rotates while maintaining its original state. Similarly, the upper end gear disc 36 drives the upper end feed box 45 to rotate through the cooperation of the first magnet 37 and the second magnet 49, so that the raw material entering the pump housing 41 still maintains its original rotating state and is discharged from the pump housing 41 through the discharge port 43, completing the pumping of the polytetrafluoroethylene raw material.
[0054] Specifically, during the rotational pumping process of the raw material inside the piston chamber 28, the rotational eddy current of the raw material inside the pump housing 41 during the pumping process will be further increased, further ensuring that the raw material will not adhere and remain on the inner wall of the pump housing 41 when the internal pressure of the pump housing 41 changes.
[0055] Working principle: First, rotate the turntable 110. Through the cooperation of the threaded seat 19 and the threaded rod 18, drive the wedge block 16 at the lower end of the rotating seat 17 to move downward or upward inside the cam disk 111, thereby adjusting the metering of the metering pump for conveying polytetrafluoroethylene raw materials. Start the eccentric motor 12 to drive the turbine 14 to rotate through the worm 13. Then, through the cooperation of the drive shaft one 15 and the wedge block 16, and further drive the universal coupling 22 to reciprocate inside the limit bin 21 through the drive shaft two 112. Drive the piston seat 25 to reciprocate inside the piston chamber 28 through the pull shaft 23. When the piston seat 25 moves to the right inside the piston chamber 28, the sealing ball 48 inside the lower spiral port 46 moves upward, and the sealing ball 48 inside the upper feed box 45 remains stationary. The raw material enters the inside of the lower feed box 45 from the feed port 42 and enters the inside of the pump housing 41 through the lower spiral port 46. When the piston seat 25 moves to the left inside the piston chamber 28, the sealing ball 48 inside the lower feed box 45 resets, and the sealing ball 48 inside the upper feed box 45 moves upward. The raw material enters the inside of the discharge port 43 from the upper spiral port 46 and is conveyed to the machine in the next processing procedure to complete the conveyance of the polytetrafluoroethylene raw material. When the piston seat 25 moves to the right, the upper pawl 310 locks the ratchet 39 engaged with it. Through the cooperation of the upper helical gear one 32 and the spiral groove 24 on the outer periphery of the pull shaft 23, drive the spiral blade 27 at the left end of the piston seat 25 to rotate, so that the raw material entering the inside of the piston chamber 28 is in a rotating state. On the contrary, when the piston seat 25 moves to the left, the lower pawl 310 locks the ratchet 39 engaged with it, so that the lower helical gear one 32 no longer rotates, so that the pull shaft 23 drives the piston seat 25 to move left and right inside the piston chamber 28, and can only rotate unidirectionally. Thus, the raw material entering the inside of the piston chamber 28 remains in a rotating state, so that the raw material will not adhere and remain on the inner wall of the piston chamber 28 due to the pressure change during the pumping and feeding, resulting in the piston seat 25 rubbing against the raw material remaining on the inner wall of the piston chamber 28 during the movement of the piston seat 25 inside the piston chamber 28, causing wear of the piston seat 25 and the sealing ring 26, extending the maintenance interval of the metering pump, and at the same time reducing the possibility of the metering pump having too large an amplitude during use due to the piston seat 25 rubbing against the raw material remaining on the inner wall of the piston chamber 28. When the piston seat 25 moves to the right, the upper helical gear one 32 is locked, and the spiral groove 24 on the outer periphery of the pull shaft 23 drives the helical gear two 33 to rotate through the helical gear one 32. Then, drive the spur gear 35 to rotate through the lower drive rod 34. Further, through the cooperation of the magnet one 37 inside the lower gear disk 36 and the magnet two 49 on the outer periphery of the feed box 45, drive the lower feed box 45 to rotate inside the pump housing 41. Before the raw material enters the inside of the lower feed box 45 through the feed port 42, first make the raw material in a rotating state through the lower inclined opening 44. After entering the inside of the lower feed box 45, since the lower feed box 45 is in a rotating state,Then, through the spiral ports 46 evenly distributed at the upper end of the lower feed box 45, the raw materials are kept in a rotating state when entering the interior of the pump housing 41. Conversely, when the piston seat 25 moves to the left, the upper feed box 45 rotates. At the same time, the lower bevel gear 32 is locked, so that the raw materials pumped out of the interior of the pump housing 41 still rotate in the same direction and are discharged through the upper discharge port 43. Thus, during the pumping process of the raw materials, the rotation in the interior of the pump housing 41 always maintains a constant direction. Finally, during the pumping process of the raw materials, the raw materials will not adhere and remain on the inner wall of the pump housing 41 due to the pressure change in the pump housing 41, which may affect the subsequent pumping of the polytetrafluoroethylene raw materials. Moreover, during the rotating pumping process of the raw materials in the piston chamber 28, the rotational eddy current of the raw materials in the pump housing 41 during the pumping process will be further increased, further ensuring that the raw materials will not adhere and remain on the inner wall of the pump housing 41 when the pressure in the pump housing 41 changes.
[0056] The above embodiments are only used to illustrate the present invention, rather than limiting the present invention. Although the present invention has been described in detail with reference to the embodiments, those of ordinary skill in the art should understand that various combinations, modifications or equivalent replacements of the technical solutions of the present invention do not depart from the spirit and scope of the technical solutions of the present invention, and should all be covered within the scope of the claims of the present invention.
Claims
1. A metering pump applied to the production of polytetrafluoroethylene, characterized in that, Including: A pump body mechanism (4) for pumping polytetrafluoroethylene raw materials from a storage tank into a machine for the next processing procedure; A pumping mechanism (2) for changing the pressure inside the pump body mechanism (4) to achieve pumping of polytetrafluoroethylene raw materials; An adjustment mechanism (3) for keeping polytetrafluoroethylene in a rotating state inside the pump body mechanism (4) during the pumping process; A driving mechanism (1) for driving the pumping mechanism (2) to change the pressure inside the pump body mechanism (4); The pumping mechanism (2) includes a limit bin (21) and a piston bin (28). A universal coupling (22) is slidably connected inside the limit bin (21). The left end of the universal coupling (22) is fixedly connected to a pull shaft (23). Helical grooves (24) are evenly distributed on the outer circumference of the pull shaft (23). The left end of the helical groove (24) is fixedly connected to a piston seat (25). A sealing ring (26) is fixedly connected to the outer circumference of the piston seat (25). A helical blade (27) is fixedly connected to the left end of the piston seat (25). The outer circumferences of the piston seat (25) and the sealing ring (26) are both slidably connected inside the piston bin (28); The adjustment mechanism (3) includes an adjustment bin (31) and a rotating bin (313). Helical gears one (32) are rotatably connected to the upper and lower ends of the middle part inside the adjustment bin (31). The helical gears one (32) are both meshed with helical gears two (33). Driving rods (34) are fixedly connected to the middle parts of the helical gears two (33). Straight gears (35) are fixedly connected to the left ends of the driving rods (34). The straight gears (35) are both meshed with a toothed disc (36). Magnetic blocks one (37) are evenly distributed inside the toothed disc (36). The outer circumferences of the toothed disc (36) are rotatably connected inside the rotating bin (313). Connecting bins (38) are fixedly connected to the upper and lower sides of the left end of the adjustment bin (31). Ratchets (39) are rotatably connected inside the connecting bins (38). The middle parts of the ratchets (39) are fixedly connected to the outer circumferences of the middle right ends of the driving rods (34). The ratchets (39) are both meshed with pawls (310). Connecting rods (311) are fixedly connected to the ends of the pawls (310) away from the ratchets (39). Spring one (312) is sleeved on the outer circumferences of the connecting rods (311).
2. The metering pump applied to the production of polytetrafluoroethylene according to claim 1, characterized in that: The driving mechanism (1) includes a driving chamber (11). A lower side at the front end of the driving chamber (11) is fixedly connected with an eccentric motor (12). A driving end at the rear end of the eccentric motor (12) is fixedly connected with a worm (13). The worm (13) is meshed with a turbine (14). A middle part of the turbine (14) is fixedly connected with a first driving shaft (15). An upper end of the first driving shaft (15) is fixedly connected with a cam disc (111). A wedge block (16) is slidably connected inside an upper end opening of the cam disc (111). An upper end of the wedge block (16) is fixedly connected with a rotating seat (17). An upper end of the rotating seat (17) is rotatably connected with a threaded rod (18) through a bearing. A middle outer periphery of the threaded rod (18) is rotatably connected with a threaded seat (19). An upper end of the threaded rod (18) is fixedly connected with a turntable (110). A second driving shaft (112) is rotatably connected inside a left end of the cam disc (111).
3. A metering pump applied to the production of polytetrafluoroethylene according to claim 2, characterized in that: A left end of the driving chamber (11) is fixedly connected to a right end of a limit chamber (21). Front and rear ends of the worm (13) are rotatably connected to middle lower parts of front and rear inner sides of the driving chamber (11). A lower end of the first driving shaft (15) is rotatably connected to a middle part of an inner bottom wall of the driving chamber (11) through a bearing.
4. A metering pump applied to the production of polytetrafluoroethylene according to claim 3, characterized in that: A lower end of the threaded seat (19) is fixedly connected to a middle part of an upper end of the driving chamber (11). A left end of the second driving shaft (112) is fixedly connected to a right end of a universal coupling (22).
5. A metering pump applied to the production of polytetrafluoroethylene according to claim 4, characterized in that: The pump body mechanism (4) includes a pump housing (41). A lower end of the pump housing (41) is flange-connected with a feed inlet (42). An upper end of the pump housing (41) is flange-connected with a discharge outlet (43). Oblique openings (44) are fixedly connected inside both the feed inlet (42) and the discharge outlet (43). Feed boxes (45) are rotatably connected to upper and lower ends inside the pump housing (41). Spiral openings (46) are evenly formed in upper ends of the feed boxes (45). Second springs (47) are fixedly connected to inner tops of the feed boxes (45). Lower ends of the second springs (47) are fixedly connected with sealing balls (48). Second magnetic blocks (49) are evenly distributed on an outer periphery of the feed boxes (45).
6. The metering pump applied to the production of polytetrafluoroethylene according to claim 5, wherein: Outer peripheries of the sealing balls (48) are slidably connected to lower inner ends of the feed boxes (45). A middle part of a right end of the pump housing (41) is fixedly connected to a left end of a piston chamber (28).
7. A metering pump applied to the production of polytetrafluoroethylene according to claim 6, characterized in that: A left end of the adjustment chamber (31) is fixedly connected to a right end of the piston chamber (28). A right end of the adjustment chamber (31) is fixedly connected to a left end of the limit chamber (21). The first helical gears (32) are meshed with spiral grooves (24) on an outer periphery of the pull shaft (23).
8. A metering pump applied to the production of polytetrafluoroethylene according to claim 7, characterized in that: Outer peripheries of the driving rods (34) are rotatably connected inside the connection chambers (38). One ends of the connection chambers (38) close to the pull shaft (23) are fixedly connected to middle parts of upper and lower ends of the piston chamber (28). Outer peripheries of the rotating chambers (313) are fixedly connected to upper and lower ends of an outer periphery of the pump housing (41).
9. A method for using a metering pump applied to the production of polytetrafluoroethylene, which is applied to the metering pump for the production of polytetrafluoroethylene described in claim 8, and is characterized in that, Comprising the following steps: S1. First, after adjusting the position of the wedge block (16) inside the cam disk (111) through the turntable (110), start the eccentric motor (12). The piston seat (25) slides rightward inside the piston chamber (28), reducing the pressure in the pump body mechanism (4), causing the polytetrafluoroethylene raw material to enter the pump housing (41) from the feed port (42). At the same time, through the cooperation of the ratchet wheel (39) and the pawl (310) at the upper end, the first helical gear (32) at the upper end cannot rotate. Thus, the piston seat (25) rotates through the cooperation with the first helical gear (32) via the spiral groove (24) on the outer periphery of the pull rod (23), causing the raw material entering the piston chamber (28) to be in a rotating state. Moreover, the pull rod (23) drives the gear disk (36) to rotate through the cooperation of the first helical gear (32) and the second helical gear (33) at the lower end and the drive rod (34), and finally drives the lower feed box (45) to rotate through the cooperation of the first magnetic block (37) and the second magnetic block (49), causing the raw material spirally entering the feed box (45) through the lower inclined opening (44) to be conveyed into the pump housing (41) while maintaining a rotating state; S2. When the piston seat (25) moves leftward inside the piston chamber (28), through the cooperation of the ratchet wheel (39) and the pawl (310) at the lower end, the first helical gear (32) at the lower end stops rotating. Thus, the piston seat (25) still maintains its original rotation direction inside the piston chamber (28), and the raw material entering the piston chamber (28) rotates in its original state. Similarly, the upper gear disk (36) drives the upper feed box (45) to rotate through the cooperation of the first magnetic block (37) and the second magnetic block (49), causing the raw material entering the pump housing (41) to be discharged from the pump housing (41) through the discharge port (43) while still maintaining its original rotating state, completing the pumping of the polytetrafluoroethylene raw material.
Citation Information
Patent Citations
Metering pump used for producing polytetrafluoroethylene
CN204299837U
Pump device
JP2001132621A