Fiber pulp homogenizing device for release paper production
By designing a fiber slurry homogenizer device including a dispersion plate and a mixed iron removal assembly, the problem of poor fiber dispersion uniformity and iron ions in the prior art is solved, and the quality and production efficiency of the isolation paper are significantly improved.
Patent Information
- Application Number
- CN202510510707.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-23
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2045-04-23
AI Technical Summary
The fiber dispersion uniformity of the existing fiber slurry homogenizer in the mixed slurry is poor, resulting in poor quality of the isolation paper and easy to mix iron ions, affecting the quality of the paper.
A fiber slurry homogenizer device for the production of isolation paper is designed, which includes a stirring tank, a rotating shaft, a dispersing plate and a mixing iron removal assembly. Through the design of the dispersion plate, the fiber balls can be stretched and evenly dispersed. The mixed iron removal assembly uses a magnetic rod to absorb iron ions to remove iron ions in the slurry.
It improves the uniformity of dispersion of fibers in the mixed slurry, improves the quality of the isolation paper, and ensures that the iron ion content in the slurry meets production requirements, ensuring the production quality of the isolation paper.
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Figure CN120037816A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of release paper production, in particular to a fiber slurry homogenizing device for release paper production. Background Art
[0002] Release paper (supercapacitor paper separator) is a functional paper with special physical and chemical properties, mainly used for isolation, protection, insulation or reinforcement in the industrial field. It is widely used in new energy (such as lithium batteries), electronics, medical, food packaging and other industries. During the production process of release paper, a homogenizer is required to mix a variety of fiber slurries. The homogenizer is used for mixing, homogenizing and debonding paper slurries.
[0003] The existing fiber slurry homogenization device gradually exposed its shortcomings during use, mainly in the following aspects: First, the fiber dispersion uniformity in the mixed slurry is poor, resulting in poor quality of the release paper. Specifically, the fibers are easily entangled into clumps during the pumping process of the slurry. After the slurry is added to the homogenization device, it needs to be stirred and mixed. As the stirring process continues, more and more fiber bundles and fiber clumps are entangled. Therefore, the fiber dispersion uniformity in the mixed slurry is poor. When there are entangled fiber clumps in the mixed slurry, the paper sheets are easily crushed to form bright spots and cause paper diseases during the subsequent drying and calendering process, which in turn leads to poor quality of the release paper.
[0004] Second, iron ions are easily mixed into the fiber slurry during the pulping and pumping process, resulting in excessive iron ion content in the mixed slurry. Specifically, during the pulping process, the metal grinding disc of the pulper wears out during high-speed shearing, releasing iron particles. During the pumping process, the impeller and sealing ring of the centrifugal pump wear out, also releasing iron particles. Therefore, the iron ion content in the mixed slurry exceeds the standard, affecting the quality of the isolation paper.
[0005] In summary, the existing technology obviously has inconveniences and defects in practical use, so it is necessary to improve it. Summary of the invention
[0006] In view of the defects in the prior art, the technical problem to be solved by the present invention is to provide a fiber slurry homogenizing device for producing release paper, which can disperse the fiber clusters in the mixed slurry and transform the fibers from the original twisted cluster state to a stretched and evenly dispersed state, thereby improving the dispersion uniformity of the fibers in the mixed slurry and improving the quality of the release paper; The homogenizing device can remove iron ions in the fiber slurry during the mixing process, so that the mixed slurry meets the production requirements of the isolation paper and ensures the production quality of the isolation paper.
[0007] To solve the above problems, the present invention provides the following technical solutions: A fiber slurry homogenizing device for producing release paper, comprising a fixed base, on the top of the fixed base is vertically and liftably provided a stirring tank, above the stirring tank is provided a driving shaft rotatably arranged along a horizontal line, on the outer wall of the driving shaft are fixedly sleeved two detachably arranged first pipe clamps, at the bottom of the first pipe clamps are vertically and liftably provided lifting plates, between the two lifting plates are horizontally provided two rotatable shafts rotatably arranged in a synchronous and reverse manner, both ends of the rotatable shafts penetrate through the two lifting plates and are rotatably connected with the lifting plates, on the outer wall of the rotatable shafts are uniformly distributed a number of dispersing plates along the axial direction thereof, the dispersing plates on the two rotatable shafts are arranged in opposite directions, the dispersing plates are divided into an arc section and a vertical section from top to bottom, the bottom of the dispersing plate is a tip structure, when the two dispersing plates are in contact with each other, their vertical sections are in fit, at both ends of the two dispersing plates arranged in opposite directions are provided a number of hook grooves, at the bottom of the stirring tank is provided a discharge valve communicated with its inner cavity, on the outer wall of the driving shaft is sleeved a mixing and iron removing assembly.
[0008] As an optimized scheme, the mixing and iron removing assembly includes a horizontally arranged fixed plate, on the outer wall of the driving shaft are fixedly sleeved two detachably arranged second pipe clamps, the fixed plate is detachably connected with the second pipe clamps, on the top of the fixed plate are horizontally arranged in parallel a number of vertically arranged mixing plates, on the top of the fixed plate is horizontally slidably provided a sliding plate, on the top of the sliding plate are horizontally arranged in parallel a number of detachably arranged magnetic bars.
[0009] As an optimized scheme, in one of the lifting plates is provided an avoidance groove, both rotatable shafts penetrate through the avoidance groove and are rotatably and sealingly connected with the lifting plate, on the inner wall of the avoidance groove is provided a lower driven shaft rotatably arranged along a horizontal line, on the outer wall of the lower driven shaft is fixedly sleeved a driving wheel, on the outer walls of the two rotatable shafts are respectively fixedly sleeved a first synchronous wheel and a second synchronous wheel, the driving wheel is connected with the first synchronous wheel through a double-sided toothed synchronous belt, both the first synchronous wheel and the driving wheel are meshed with the inner wall of the double-sided toothed synchronous belt, the second synchronous wheel is meshed with the outer wall of the double-sided toothed synchronous belt.
[0010] As an optimized scheme, on the upper inner wall of the avoidance groove is provided an upper driven shaft rotatably arranged along a horizontal line, on the outer walls of both the upper driven shaft and the lower driven shaft are fixedly sleeved chain wheels, the two chain wheels are connected through a chain.
[0011] As an optimized scheme, at the end of the lifting plate is provided a driving motor, one end of the upper driven shaft penetrates through the lifting plate and is fixedly connected with the output shaft of the driving motor, at the end of the lifting plate is provided a detachably arranged waterproof shell, the driving motor is located inside the waterproof shell.
[0012] As an optimized scheme, at the bottom of the first pipe clamp is fixedly provided a lifting telescopic cylinder, the telescopic end of the lifting telescopic cylinder is fixedly connected with the lifting plate.
[0013] As an optimized solution, two support frames are fixedly arranged at the top of the fixed base. A bearing seat is detachably arranged at the top of the support frame. Both ends of the drive shaft extend into the two bearing seats and are rotatably connected to the bearing seats. A servo motor is arranged at the top of one of the support frames, and the output shaft of the servo motor is connected to one end of the drive shaft through a coupling.
[0014] As an optimized solution, a number of hydraulic telescopic cylinders are fixedly arranged at the top of the fixed base, and the telescopic ends of the hydraulic telescopic cylinders are fixedly connected to the mixing tank.
[0015] As an optimized solution, a rectangular groove is arranged through the bottom of the fixed plate. A reciprocating telescopic cylinder is fixedly arranged at the bottom of the fixed plate. The telescopic end of the reciprocating telescopic cylinder is fixedly connected to a connecting plate, and the bottom end of the connecting plate passes through the rectangular groove and is fixedly connected to the sliding plate.
[0016] As an optimized solution, a number of threaded sleeves are fixedly arranged at the top of the sliding plate, and the bottom end of the magnetic bar extends into the threaded sleeve and is threadedly connected to the threaded sleeve.
[0017] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. When mixing fiber slurries, different fiber slurries are added into the mixing tank through a delivery pump. The lifting telescopic cylinder drives the lifting plate to move downward, and then drives the attached spreading plate to move downward. During the downward movement of the spreading plate, the tip structure thereof will penetrate the fiber clusters in the mixed slurry. The drive motor drives the upper driven shaft to rotate. Under the transmission of the sprocket and the chain, the lower driven shaft rotates. Under the transmission of the drive wheel, the double-sided tooth synchronous belt, the first synchronous wheel and the second synchronous wheel, the two rotating shafts rotate synchronously in opposite directions. The spreading plates on the two rotating shafts separate, and then the fiber clusters are unfolded. After one unfolding of the fiber clusters, the two rotating shafts reset to make the spreading plates fit together, and the lifting plate moves upward to the initial height. The servo motor can drive the drive shaft to rotate, and then adjust the angle of the spreading plate, so as to be able to unfold the fiber clusters in the mixed slurry at different positions in the mixing tank. This homogenizing device can disperse the fiber clusters in the mixed slurry, change the fibers from the original twisted and clustered state to a stretched and evenly dispersed state, improve the dispersion uniformity of the fibers in the mixed slurry, and improve the quality of the separator paper; 2. The structure of the spreading plate is divided into an arc section and a vertical section from top to bottom. Through this structure, not only can the unfolding length of the fiber clusters be increased, but also it can be inserted into the fiber clusters with smaller gaps and is more convenient for penetrating the fiber clusters. The fiber clusters penetrated can be prevented from falling off through the arranged hook grooves; 3. When mixing the slurry in the mixing tank, the servo motor drives the drive shaft to rotate 180°. The hydraulic telescopic cylinder drives the mixing tank to move upward to a preset position. At this time, the mixing plate and the magnetic rod are located inside the mixing tank. The servo motor drives the drive shaft to swing back and forth, thereby driving the mixing plate and the magnetic rod to swing back and forth. During the process of the mixing plate swinging back and forth, different slurries in the mixing tank are mixed. The magnetic rod adsorbs iron ions in the mixed slurry. This homogenizing device can remove iron ions from the slurry during the mixing of fiber slurry, making the mixed slurry meet the production requirements of the release paper and ensuring the production quality of the release paper. 4. During the process of the magnetic rod swinging back and forth, the reciprocating telescopic cylinder drives the sliding plate to slide horizontally back and forth, thereby driving the magnetic rod to move horizontally back and forth. The horizontally reciprocating magnetic rod increases the adsorption range of iron ions in the mixed slurry, thereby accelerating the adsorption speed of iron ions. 5. The magnetic rod and the threaded sleeve are connected by a threaded connection. When cleaning the iron ions adsorbed on the magnetic rod, the servo motor drives the magnetic rod to rotate upward, and rotating the magnetic rod can remove it, simplifying the cleaning operation of the magnetic rod and improving the practicability of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for the description of the specific embodiments or the prior art. In all the drawings, similar elements or parts are generally identified by similar reference numerals. In the drawings, the elements or parts are not necessarily drawn to actual scale.
[0019] Figure 1 is a schematic structural diagram of the present invention; Figure 2 is a schematic structural diagram of the interior of the mixing tank of the present invention; Figure 3 is a schematic structural diagram of the dispersion plate of the present invention; Figure 4 is a schematic structural diagram of the mixing and iron removal assembly of the present invention; Figure 5 is a schematic structural diagram of the top of the sliding plate of the present invention; Figure 6 is a schematic structural diagram of the interior of the lifting plate of the present invention; Figure 7 is a schematic structural diagram of the end of the lifting plate of the present invention; Figure 8 is a schematic structural diagram of the threaded sleeve and the magnetic rod of the present invention.
[0020] In the figure: 1 - fixed base; 2 - support frame; 3 - servo motor; 4 - coupling; 5 - bearing seat; 6 - drive shaft; 7 - hybrid iron removal component; 8 - first pipe clamp; 9 - lifting plate; 10 - mixing tank; 11 - discharge valve; 12 - hydraulic telescopic cylinder; 13 - rotating shaft; 14 - spreading plate; 15 - lower driven shaft; 16 - first synchronous pulley; 17 - double-sided tooth synchronous belt; 18 - chain; 19 - sprocket; 20 - upper driven shaft; 21 - avoidance groove; 22 - drive wheel; 23 - second synchronous pulley; 24 - hook groove; 25 - drive motor; 26 - waterproof housing; 27 - lifting telescopic cylinder; 28 - magnetic bar; 29 - mixing plate; 30 - fixing plate; 31 - second pipe clamp; 32 - reciprocating telescopic cylinder; 33 - connecting plate; 34 - rectangular groove; 35 - sliding plate; 36 - threaded sleeve. Specific embodiments
[0021] Hereinafter, embodiments of the technical solution of the present invention will be described in detail with reference to the accompanying drawings. The following embodiments are only used to more clearly illustrate the technical solution of the present invention, and therefore are only examples and cannot be used to limit the protection scope of the present invention.
[0022] As Figures 1 to 8 shown, a fiber pulp homogenizing device for the production of release paper includes a fixed base 1. A mixing tank 10 is vertically lifted and arranged at the top of the fixed base 1. Above the mixing tank 10, a drive shaft 6 is rotatably arranged along a horizontal line. Two detachably arranged first pipe clamps 8 are fixedly sleeved on the outer wall of the drive shaft 6. A lifting plate 9 is vertically lifted at the bottom of the first pipe clamp 8. Two horizontally arranged and synchronously and reversely rotating rotating shafts 13 are horizontally arranged between the two lifting plates 9. The two ends of the rotating shaft 13 penetrate through the two lifting plates 9 and are rotatably connected to the lifting plates 9. A plurality of spreading plates 14 are evenly distributed along the axial direction of the outer wall of the rotating shaft 13. The spreading plates 14 on the two rotating shafts 13 are arranged back to back. The spreading plate 14 is divided into an arc section and a vertical section from top to bottom. The bottom of the spreading plate 14 is a tip structure. When the two spreading plates 14 are in contact, their vertical sections are in contact. A plurality of hook grooves 24 are arranged at the opposite ends of the two spreading plates 14. A discharge valve 11 communicating with the inner cavity of the mixing tank 10 is arranged at the bottom of the mixing tank 10. A hybrid iron removal component 7 is sleeved on the outer wall of the drive shaft 6.
[0023] The hybrid iron removal component 7 includes a horizontally arranged fixing plate 30. Two detachably arranged second pipe clamps 31 are fixedly sleeved on the outer wall of the drive shaft 6. The fixing plate 30 is detachably connected to the second pipe clamp 31. A plurality of vertically arranged mixing plates 29 are horizontally arranged in parallel at the top of the fixing plate 30. A sliding plate 35 is horizontally slidably arranged at the top of the fixing plate 30. A plurality of detachably arranged magnetic bars 28 are horizontally arranged in parallel at the top of the sliding plate 35.
[0024] One of the lifting plates 9 is provided with an avoidance groove 21 inside. Both of the rotating shafts 13 penetrate through the avoidance groove 21 and are rotationally and sealingly connected to the lifting plate 9. The inner wall of the avoidance groove 21 is provided with a lower driven shaft 15 rotatably arranged along the horizontal line. A driving wheel 22 is fixedly sleeved on the outer wall of the lower driven shaft 15. First synchronous wheels 16 and second synchronous wheels 23 are respectively fixedly sleeved on the outer walls of the two rotating shafts 13. The driving wheel 22 is connected to the first synchronous wheel 16 through a double-sided tooth synchronous belt 17. Both the first synchronous wheel 16 and the driving wheel 22 are meshed with the inner wall of the double-sided tooth synchronous belt 17. The second synchronous wheel 23 is meshed with the outer wall of the double-sided tooth synchronous belt 17.
[0025] The upper inner wall of the avoidance groove 21 is provided with an upper driven shaft 20 rotatably arranged along the horizontal line. Chain wheels 19 are fixedly sleeved on the outer walls of both the upper driven shaft 20 and the lower driven shaft 15. The two chain wheels 19 are connected through a chain 18.
[0026] A driving motor 25 is provided at the end of the lifting plate 9. One end of the upper driven shaft 20 penetrates through the lifting plate 9 and is fixedly connected to the output shaft of the driving motor 25. A detachable waterproof shell 26 is provided at the end of the lifting plate 9. The driving motor 25 is located inside the waterproof shell 26.
[0027] A lifting telescopic cylinder 27 is fixedly provided at the bottom of the first pipe clamp 8. The telescopic end of the lifting telescopic cylinder 27 is fixedly connected to the lifting plate 9.
[0028] Two support frames 2 are fixedly provided at the top of the fixed base 1. A detachable bearing seat 5 is provided at the top of the support frame 2. Both ends of the driving shaft 6 extend into the two bearing seats 5 and are rotationally connected to the bearing seats 5. A servo motor 3 is provided at the top of one of the support frames 2. The output shaft of the servo motor 3 is connected to one end of the driving shaft 6 through a coupling 4.
[0029] A number of hydraulic telescopic cylinders 12 are fixedly provided at the top of the fixed base 1. The telescopic ends of the hydraulic telescopic cylinders 12 are fixedly connected to the mixing tank 10.
[0030] A rectangular groove 34 is provided through the bottom of the fixing plate 30. A reciprocating telescopic cylinder 32 is fixedly provided at the bottom of the fixing plate 30. The telescopic end of the reciprocating telescopic cylinder 32 is fixedly connected to a connecting plate 33. The bottom end of the connecting plate 33 passes through the rectangular groove 34 and is fixedly connected to a sliding plate 35.
[0031] A number of threaded sleeves 36 are fixedly provided at the top of the sliding plate 35. The bottom end of the magnetic bar 28 extends into the threaded sleeve 36 and is threadedly connected to the threaded sleeve 36.
[0032] The working principle of this device is as follows: When mixing fiber slurries, different fiber slurries are added into the stirring tank 10 through a delivery pump. The lifting and telescopic cylinder 27 drives the lifting plate 9 to move downward, thereby driving the attached spreading plate 14 to move downward. During the downward movement of the spreading plate 14, the tip structure thereof will penetrate the fiber mass in the mixed slurry. The driving motor 25 drives the upper driven shaft 20 to rotate. Under the transmission of the sprocket 19 and the chain 18, the lower driven shaft 15 rotates. Under the transmission of the driving wheel 22, the double-sided tooth synchronous belt 17, the first synchronous wheel 16 and the second synchronous wheel 23, the two rotating shafts 13 rotate synchronously and reversely. The spreading plates 14 on the two rotating shafts 13 separate, thereby unfolding the fiber mass. After one unfolding of the fiber mass, the two rotating shafts 13 reset to make the spreading plates 14 fit together, and the lifting plate 9 moves upward to the initial height. The servo motor 3 can drive the driving shaft 6 to rotate, thereby adjusting the angle of the spreading plate 14, so that the fiber masses in the mixed slurry at different positions in the stirring tank 10 can be unfolded. This homogenizing device can disperse the fiber masses in the mixed slurry, change the fibers from the original twisted and massed state to a state of being unfolded and evenly dispersed, improve the even dispersion of the fibers in the mixed slurry, and improve the quality of the release paper; The structure of the spreading plate 14 is divided into an arc section and a vertical section from top to bottom. Through this structure, not only can the unfolding length of the fiber mass be increased, but also it can be inserted into fiber masses with smaller gaps and is more convenient for penetrating the fiber masses. The arranged hook groove 24 can prevent the penetrated fiber masses from falling off; When mixing the slurry in the stirring tank 10, the servo motor 3 drives the driving shaft 6 to rotate 180°. The hydraulic telescopic cylinder 12 drives the stirring tank 10 to move upward to a preset position. At this time, the mixing plate 29 and the magnetic bar 28 are located in the stirring tank 10. The servo motor 3 drives the driving shaft 6 to swing reciprocally, thereby driving the mixing plate 29 and the magnetic bar 28 to swing reciprocally. During the reciprocating swing of the mixing plate 29, different slurries in the stirring tank 10 are mixed. The magnetic bar 28 adsorbs iron ions in the mixed slurry. This homogenizing device can remove iron ions in the slurry during the mixing process of the fiber slurry, make the mixed slurry meet the production requirements of the release paper, and ensure the production quality of the release paper; During the reciprocating swing of the magnetic bar 28, the reciprocating telescopic cylinder 32 drives the sliding plate 35 to slide horizontally and reciprocally, thereby driving the magnetic bar 28 to move horizontally and reciprocally. The horizontally reciprocating magnetic bar 28 increases the adsorption range of iron ions in the mixed slurry, thereby accelerating the adsorption speed of iron ions; The magnetic bar 28 is connected to the threaded sleeve 36 by a threaded connection. When cleaning the iron ions adsorbed on the magnetic bar 28, the servo motor 3 drives the magnetic bar 28 to rotate upward, and by rotating the magnetic bar 28, it can be removed, simplifying the cleaning operation of the magnetic bar 28 and improving the practicability of the equipment.
[0033] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some or all of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention, and they should all be covered within the scope of the claims and the description of the present invention.
Claims
1. A fiber slurry homogenizing device for producing release paper, characterized in that: The invention comprises a fixed base (1), wherein a stirring tank (10) is provided on the top of the fixed base (1) for vertical lifting, a driving shaft (6) is provided above the stirring tank (10) for rotation along a horizontal line, two detachable first pipe clamps (8) are fixedly sleeved on the outer wall of the driving shaft (6), a lifting plate (9) is provided on the bottom of the first pipe clamp (8) for vertical lifting, two rotating shafts (13) for synchronous reverse rotation are provided horizontally between the two lifting plates (9), two ends of the rotating shaft (13) pass through the two lifting plates (9) and are rotationally connected to the lifting plates (9), and the The outer wall of the rotating shaft (13) is evenly distributed with a plurality of scattering plates (14) along its axial direction. The scattering plates (14) on the two rotating shafts (13) are arranged opposite to each other. The scattering plates (14) are divided into an arc section and a vertical section from top to bottom. The bottom of the scattering plates (14) is a pointed structure. When the two scattering plates (14) are abutted against each other, their vertical sections are in contact with each other. The two scattering plates (14) are provided with a plurality of hook grooves (24) at the opposite ends. The bottom of the stirring tank (10) is provided with a discharge valve (11) connected to its inner cavity. The outer wall of the driving shaft (6) is sleeved with a mixing iron removal component (7).
2. The fiber slurry homogenizing device for producing release paper according to claim 1, characterized in that: The mixed iron removal assembly (7) comprises a horizontally arranged fixed plate (30), the outer wall of the driving shaft (6) is fixedly sleeved with two detachably arranged second pipe clamps (31), the fixed plate (30) and the second pipe clamps (31) are detachably connected, a plurality of vertically arranged mixing plates (29) are horizontally arranged in parallel on the top of the fixed plate (30), a sliding plate (35) is horizontally slidably arranged on the top of the fixed plate (30), and a plurality of detachably arranged magnetic bars (28) are horizontally arranged in parallel on the top of the sliding plate (35).
3. The fiber slurry homogenizing device for producing release paper according to claim 1, characterized in that: An avoidance groove (21) is provided inside one of the lifting plates (9), and both of the two rotating shafts (13) penetrate the avoidance groove (21) and are rotatably sealed with the lifting plate (9). A lower driven shaft (15) is provided on the inner wall of the avoidance groove (21) and is rotatably arranged along a horizontal line. A driving wheel (22) is fixedly sleeved on the outer wall of the lower driven shaft (15). A first synchronous wheel (16) and a second synchronous wheel (23) are fixedly sleeved on the outer walls of the two rotating shafts (13), respectively. The driving wheel (22) is connected to the first synchronous wheel (16) via a double-sided toothed synchronous belt (17), and both the first synchronous wheel (16) and the driving wheel (22) are meshed with the inner wall of the double-sided toothed synchronous belt (17), and the second synchronous wheel (23) is meshed with the outer wall of the double-sided toothed synchronous belt (17).
4. The fiber slurry homogenizing device for producing release paper according to claim 3, characterized in that: An upper driven shaft (20) rotatably arranged along a horizontal line is provided on the upper inner wall of the avoidance groove (21), and sprockets (19) are fixedly mounted on the outer walls of the upper driven shaft (20) and the lower driven shaft (15), and the two sprockets (19) are connected via a chain (18).
5. The fiber slurry homogenizing device for producing release paper according to claim 4, characterized in that: A drive motor (25) is provided at the end of the lifting plate (9); one end of the upper driven shaft (20) passes through the lifting plate (9) and is fixedly connected to the output shaft of the drive motor (25); a detachable waterproof shell (26) is provided at the end of the lifting plate (9); and the drive motor (25) is located in the waterproof shell (26).
6. The fiber slurry homogenizing device for producing release paper according to claim 1, characterized in that: A lifting and telescopic cylinder (27) is fixedly provided at the bottom of the first pipe clamp (8), and a telescopic end of the lifting and telescopic cylinder (27) is fixedly connected to the lifting plate (9).
7. The fiber slurry homogenizing device for producing release paper according to claim 1, characterized in that: Two support frames (2) are fixedly provided on the top of the fixed base (1), and a detachably arranged bearing seat (5) is provided on the top of the support frame (2). Both ends of the drive shaft (6) extend into the two bearing seats (5) and are rotatably connected to the bearing seats (5). A servo motor (3) is provided on the top of one of the support frames (2), and the output shaft of the servo motor (3) is connected to one end of the drive shaft (6) via a coupling (4).
8. The fiber slurry homogenizing device for producing release paper according to claim 1, characterized in that: A plurality of hydraulic telescopic cylinders (12) are fixedly provided on the top of the fixed base (1), and the telescopic ends of the hydraulic telescopic cylinders (12) are fixedly connected to the mixing tank (10).
9. The fiber slurry homogenizing device for producing release paper according to claim 2, characterized in that: A rectangular groove (34) is provided through the bottom of the fixed plate (30), a reciprocating telescopic cylinder (32) is fixedly provided on the bottom of the fixed plate (30), a connecting plate (33) is fixedly connected to the telescopic end of the reciprocating telescopic cylinder (32), and the bottom end of the connecting plate (33) passes through the rectangular groove (34) and is fixedly connected to the sliding plate (35).
10. The fiber slurry homogenizing device for producing release paper according to claim 2, characterized in that: A plurality of threaded sleeves (36) are fixedly provided on the top of the sliding plate (35), and the bottom end of the magnetic rod (28) extends into the threaded sleeve (36) and is threadably connected to the threaded sleeve (36).
Citation Information
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