A beating device for power cable paper production
By introducing the synergistic effect of multiple components into the pulping device, the problem of insufficient contact between raw materials and blades was solved, achieving uniform pulping of cable paper and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- NINE DRAGONS PULP PAPER LESHAN CO LTD
- Filing Date
- 2023-06-27
- Publication Date
- 2026-08-04
AI Technical Summary
In existing pulping devices used for power cable paper production, when the main shaft drives the blades to rotate, the raw material generates centrifugal force and moves away from the blades, causing the blades to not be able to fully contact the raw material, thus affecting the pulping efficiency.
The design includes a pulping cylinder, a pulping main shaft, a protective sleeve, a rotating assembly, a rolling mechanism, and a reciprocating oscillating assembly. The pulping main shaft drives the main blade to rotate, the rolling mechanism drives the pulping cylinder to rotate, the reciprocating oscillating assembly drives the mixing plate to oscillate, and the second transmission assembly drives the auxiliary blade to rotate, thereby enhancing the contact between the raw material and the blade and improving the pulping uniformity.
The synergistic effect of multiple blades enhances the flowability and beating effect of raw materials, resulting in more uniform beating and improved quality of cable paper production.
Smart Images

Figure CN116590947B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of power cable paper production technology, and particularly relates to a pulping device for power cable paper production. Background Technology
[0002] Cable paper is the outermost layer wrapped around a cable to protect the insulation layer of the conductive core, preventing moisture intrusion and damage to the insulation. The paper is tough, uniform, and has high tensile, folding, and tear strength. It contains no metals, sand, or conductive acidic substances, has a high dielectric constant, a low power factor, and exhibits good stability when treated with insulating liquids. It is classified according to different thicknesses or colors. It is made from unbleached sulfate softwood pulp, after free beating, without sizing or fillers, and formed on a fourdrinier paper machine. It is used for inter-turn insulation of wires or cables.
[0003] Existing pulping devices for power cable paper production mostly use a motor to drive the main shaft to rotate. The main shaft drives the blades to pulp the raw materials. When the main shaft drives the blades to rotate, it stirs the raw materials and causes the raw materials to generate centrifugal force away from the blades. As a result, the blades cannot fully contact the raw materials, which affects the pulping efficiency. Summary of the Invention
[0004] The purpose of this invention is to provide a pulping device for the production of power cable paper, which aims to solve the problem that when the main shaft drives the blades to rotate, the raw material generates centrifugal force away from the blades, thus preventing the blades from fully contacting the raw material.
[0005] This invention is implemented as follows: a pulping device for producing power cable paper includes a base plate, on which a mounting frame and a mounting plate are fixed. It also includes a pulping cylinder, a pulping spindle, a protective sleeve, a rotating assembly, a rolling mechanism, a second transmission assembly, and a reciprocating oscillating assembly. The pulping cylinder is rotatably connected to the mounting frame, and a material pipe is provided at one end of the pulping cylinder, with a sealing cap threaded onto the material pipe. The pulping spindle is rotatably connected to the mounting plate, extending into the pulping cylinder and coaxially arranged with it. Multiple main blades are fixed on the pulping spindle. The rotating assembly and the rolling mechanism are both mounted on the mounting plate. The rotating assembly is used to drive the pulping spindle... The shaft rotates; the rolling mechanism drives the pulping cylinder to rotate by rotating the pulping main shaft; the protective sleeve is fixed on the mounting plate, and the side wall of the pulping cylinder is rotatably connected to the inner wall of the protective sleeve; the second transmission component and the reciprocating swing component are both arranged inside the protective sleeve; a first rotating shaft is rotatably connected inside the pulping cylinder, and a stirring plate is rotatably connected on the first rotating shaft; the reciprocating swing component drives the stirring plate to reciprocate and swing by rotating the pulping cylinder; an avoidance groove is provided on the stirring plate, and a pulping secondary shaft is rotatably connected to the avoidance groove; multiple auxiliary blades are fixed on the pulping secondary shaft; the second transmission component drives the pulping secondary shaft to rotate by rotating the pulping cylinder.
[0006] In a further technical solution, the rotating assembly includes an L-shaped mounting plate and a motor. The L-shaped mounting plate is fixed on the mounting plate, the motor is fixed on the mounting plate, and the rotating end of the motor is connected to the pulping main shaft.
[0007] In a further technical solution, the rolling mechanism includes an external gear ring, a drive shaft, a drive gear, and a first transmission assembly. The external gear ring is fixed to the side wall of the pulping cylinder. The drive shaft is rotatably connected to the mounting plate. The drive gear is fixed to the drive shaft and meshes with the external gear ring. The first transmission assembly is mounted on the mounting plate and drives the drive shaft to rotate by rotating the pulping main shaft.
[0008] In a further technical solution, the first transmission component includes a first gear, a first rotating shaft, and a second gear. The first rotating shaft is rotatably connected to the mounting plate. The first gear and the second gear are respectively fixed on the pulping main shaft and the first rotating shaft, and the first gear meshes with the second gear. The transmission shaft and the first rotating shaft are connected by a belt and a pulley module.
[0009] In a further technical solution, the pulley module includes a first pulley fixed on both the drive shaft and the first rotating shaft, and the two first pulleys are connected by a first drive belt.
[0010] In a further technical solution, the second transmission component includes a third gear and an internal gear ring. The stirring plate is provided with an installation groove, and a belt transmission component is provided in the installation groove. The first rotating shaft and the pulping sub-shaft are connected by the belt transmission component. The third gear is fixed on the first rotating shaft, and the internal gear ring is provided on the inner wall of the protective sleeve, and the third gear meshes with the internal gear ring.
[0011] In a further technical solution, a fifth gear is rotatably connected to the mounting plate, a fourth gear is fixed on the material tube, and the fifth gear meshes with both the fourth gear and the internal gear ring, which is rotatably connected to the inner wall of the protective sleeve.
[0012] In a further technical solution, the belt drive assembly includes a second pulley fixed on both the first rotating shaft and the pulping sub-shaft, and the two second pulleys are connected by a second transmission belt.
[0013] A further technical solution includes a reciprocating oscillating assembly comprising a rotating disk and a push shaft. An elongated hole is provided on the side wall of the stirring plate, and the side wall of the stirring plate is slidably fitted with the inner end face of the pulping cylinder. The rotating disk is rotatably connected to the inner end face of the pulping cylinder, and the rotating disk is submerged in the inner end of the pulping cylinder. One end of the rotating disk is flush with the inner end face of the pulping cylinder. The push shaft is fixed on the rotating disk and slidably connected to the elongated hole. A transmission component is provided on the mounting plate, and the transmission component drives the rotating disk to rotate by rotating the pulping cylinder.
[0014] In a further technical solution, the transmission component includes a connecting shaft, a sixth gear, a seventh gear, and a fixing block. The fixing block is fixed on the mounting plate, the seventh gear is fixed on the fixing block, the connecting shaft is fixed at the axis of the rotating disk and passes through the end of the pulping cylinder, the sixth gear is fixed on the connecting shaft, and the sixth gear and the seventh gear mesh.
[0015] This invention provides a pulping device for producing power cable paper. A rotating assembly drives a pulping main shaft to rotate, which in turn drives multiple main blades to pulp the raw materials. A rolling mechanism drives a pulping cylinder to rotate via the rotation of the pulping main shaft, thereby increasing the flowability of the raw materials within the cylinder and making the pulping more uniform. A reciprocating oscillating assembly drives a stirring plate to oscillate back and forth via the rotation of the pulping cylinder, further agitating the raw materials and improving their flowability. A second transmission assembly drives a pulping sub-shaft to rotate via the rotation of the pulping cylinder, which in turn drives multiple auxiliary blades to rotate, thus assisting in pulping the raw materials. The oscillation of the stirring plate allows the pulping sub-shaft to move the multiple auxiliary blades, increasing their pulping range and ensuring sufficient contact between the blades and the raw materials, further improving the pulping effect and making the pulping process more uniform. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of a pulping device for producing power cable paper, provided in an embodiment of the present invention.
[0017] Figure 2 Provided for embodiments of the present invention Figure 1 Front view structural diagram;
[0018] Figure 3 Provided for embodiments of the present invention Figure 1 A top-view structural diagram;
[0019] Figure 4 Provided for embodiments of the present invention Figure 2 A schematic diagram of the internal structure from the perspective of the AA (Anti-Analog Device).
[0020] Figure 5 Provided for embodiments of the present invention Figure 2 Internal structure diagram from a mid-BB perspective;
[0021] Figure 6 Provided for embodiments of the present invention Figure 3 Internal structure diagram from a mid-CC perspective;
[0022] Figure 7 Provided for embodiments of the present invention Figure 6 A magnified structural diagram of D in the diagram;
[0023] Figure 8 Provided for embodiments of the present invention Figure 5 A schematic diagram of the structure of the stirring plate.
[0024] In the attached diagram: base plate 101, mounting frame 102, pulping cylinder 103, material pipe 104, pulping main shaft 105, first rotating shaft 106, protective sleeve 107, mixing plate 108, clearance groove 109, pulping sub-shaft 110, auxiliary blade 111, main blade 112, mounting plate 113, rotating assembly 2, L-shaped mounting plate 201, motor 202, rolling mechanism 3, external gear ring 301, transmission shaft 302, transmission gear 303, first transmission assembly 4, first gear 4 01, First rotating shaft 402, Second gear 403, First pulley 404, First transmission belt 405, Second transmission assembly 5, Mounting groove 501, Second pulley 502, Second transmission belt 503, Third gear 504, Internal gear ring 505, Fourth gear 601, Fifth gear 602, Reciprocating swing assembly 7, Long hole 701, Rotating disk 702, Push shaft 703, Connecting shaft 801, Sixth gear 802, Seventh gear 803, Fixing block 804. Detailed Implementation
[0025] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.
[0026] The specific implementation of the present invention will be described in detail below with reference to specific embodiments.
[0027] Example 1, as Figure 1 , Figure 2 , Figure 3 , Figure 5 , Figure 6 and Figure 8As shown, a pulping device for producing power cable paper according to an embodiment of the present invention includes a base plate 101, on which a mounting frame 102 and a mounting plate 113 are fixed. The device also includes a pulping cylinder 103, a pulping spindle 105, a protective sleeve 107, a rotating assembly 2, a rolling mechanism 3, a second transmission assembly 5, and a reciprocating oscillating assembly 7. The pulping cylinder 103 is rotatably connected to the mounting frame 102, and a material pipe 104 is provided at one end of the pulping cylinder 103, with a sealing cap threaded onto the material pipe 104. The pulping spindle 105 is rotatably connected to the mounting plate 113, extending into the pulping cylinder 103 and coaxially arranged with it. Multiple main blades 112 are fixed on the pulping spindle 105. The rotating assembly 2 and the rolling mechanism 3 are both mounted on the mounting plate 113. The rotating assembly 2 is used to drive the pulping spindle 103. The shaft 105 rotates; the rolling mechanism 3 drives the pulping cylinder 103 to rotate by rotating the pulping main shaft 105; the protective sleeve 107 is fixed on the mounting plate 113, and the side wall of the pulping cylinder 103 is rotatably connected to the inner wall of the protective sleeve 107; the second transmission component 5 and the reciprocating swing component 7 are both arranged inside the protective sleeve 107; a first rotating shaft 106 is rotatably connected inside the pulping cylinder 103, and a stirring plate 108 is rotatably connected on the first rotating shaft 106; the reciprocating swing component 7 drives the stirring plate 108 to reciprocate and swing by rotating the pulping cylinder 103; an avoidance groove 109 is provided on the stirring plate 108, and a pulping sub-shaft 110 is rotatably connected on the avoidance groove 109; multiple auxiliary blades 111 are fixed on the pulping sub-shaft 110; the second transmission component 5 drives the pulping sub-shaft 110 to rotate by rotating the pulping cylinder 103.
[0028] In this embodiment of the invention, during use, the sealing cap on the feed pipe 104 is unscrewed, and then the raw material is poured into the pulping cylinder 103 through the feed pipe 104. The sealing cap is then screwed back onto the feed pipe 104. The rotating assembly 2 drives the pulping spindle 105 to rotate, and the pulping spindle 105 drives multiple main blades 112 to pulp the raw material. The rolling mechanism 3 drives the pulping cylinder 103 to rotate through the rotation of the pulping spindle 105, thereby causing the raw material inside the pulping cylinder 103 to flow, improving the fluidity of the raw material inside the pulping cylinder 103, and making the pulping of the raw material more uniform. The reciprocating oscillating assembly 7 drives the pulping cylinder 103 to rotate through the rotation of the pulping cylinder 103. The stirring plate 108 oscillates back and forth, thereby agitating the raw materials and further improving their fluidity. The second transmission component 5 drives the pulping sub-shaft 110 to rotate by rotating the pulping cylinder 103. The pulping sub-shaft 110 drives multiple auxiliary blades 111 to rotate, thereby enabling the multiple auxiliary blades 111 to perform auxiliary pulping treatment on the raw materials. The oscillation of the stirring plate 108 can cause the pulping sub-shaft 110 to move the multiple auxiliary blades 111, increasing the pulping range of the multiple auxiliary blades 111 and ensuring that the multiple auxiliary blades 111 are in full contact with the raw materials, further improving the pulping effect and making the pulping treatment of the raw materials more uniform.
[0029] Example 2, as Figure 1 , Figure 2 , Figure 3 , Figure 5 , Figure 6 and Figure 8As shown, a pulping device for producing power cable paper according to an embodiment of the present invention includes a base plate 101, on which a mounting frame 102 and a mounting plate 113 are fixed. The device also includes a pulping cylinder 103, a pulping spindle 105, a protective sleeve 107, a rotating assembly 2, a rolling mechanism 3, a second transmission assembly 5, and a reciprocating oscillating assembly 7. The pulping cylinder 103 is rotatably connected to the mounting frame 102, and a material pipe 104 is provided at one end of the pulping cylinder 103, with a sealing cap threaded onto the material pipe 104. The pulping spindle 105 is rotatably connected to the mounting plate 113, extending into the pulping cylinder 103 and coaxially arranged with it. Multiple main blades 112 are fixed on the pulping spindle 105. The rotating assembly 2 and the rolling mechanism 3 are both mounted on the mounting plate 113. The rotating assembly 2 is used to drive the pulping spindle 103. Shaft 105 rotates; the rolling mechanism 3 drives the pulping cylinder 103 to rotate by rotating the pulping main shaft 105; the protective sleeve 107 is fixed on the mounting plate 113, and the side wall of the pulping cylinder 103 is rotatably connected to the inner wall of the protective sleeve 107; the second transmission component 5 and the reciprocating swing component 7 are both arranged inside the protective sleeve 107; a first rotating shaft 106 is rotatably connected inside the pulping cylinder 103, and a stirring plate 108 is rotatably connected on the first rotating shaft 106; the reciprocating swing component 7 drives the stirring plate 108 to reciprocate and swing by rotating the pulping cylinder 103; the stirring plate 108 is provided with a clearance groove 109, and a pulping secondary shaft 110 is rotatably connected to the clearance groove 109; multiple auxiliary blades 111 are fixed on the pulping secondary shaft 110; the second transmission component 5 drives the pulping secondary shaft 110 to rotate by rotating the pulping cylinder 103;
[0030] The rotating assembly 2 includes an L-shaped mounting plate 201 and a motor 202. The L-shaped mounting plate 201 is fixed on the mounting plate 113, and the motor 202 is fixed on the mounting plate 113. The rotating end of the motor 202 is connected to the pulping main shaft 105.
[0031] The rolling mechanism 3 includes an external gear ring 301, a drive shaft 302, a drive gear 303, and a first transmission assembly 4. The external gear ring 301 is fixed to the side wall of the pulping cylinder 103. The drive shaft 302 is rotatably connected to the mounting plate 113. The drive gear 303 is fixed to the drive shaft 302 and meshes with the external gear ring 301. The first transmission assembly 4 is mounted on the mounting plate 113. The first transmission assembly 4 drives the drive shaft 302 to rotate by rotating the pulping main shaft 105. The first transmission assembly 4 includes a first gear 401. A first rotating shaft 402 and a second gear 403 are provided. The first rotating shaft 402 is rotatably connected to the mounting plate 113. The first gear 401 and the second gear 403 are respectively fixed on the pulping main shaft 105 and the first rotating shaft 402, and the first gear 401 meshes with the second gear 403. The transmission shaft 302 and the first rotating shaft 402 are connected by a belt and a pulley module. The pulley module includes a first pulley 404 fixed on both the transmission shaft 302 and the first rotating shaft 402. The two first pulleys 404 are connected by a first transmission belt 405.
[0032] In this embodiment of the invention, during use, the sealing cap on the feed pipe 104 is unscrewed, and then the raw material is poured into the pulping cylinder 103 through the feed pipe 104. The sealing cap is then screwed back onto the feed pipe 104. The motor 202 drives the pulping spindle 105 to rotate, which in turn drives multiple main blades 112 to pulp the raw material. The pulping spindle 105 drives the first gear 401 to rotate, which in turn drives the second gear 403 to rotate. The second gear 403 drives the first rotating shaft 402 to rotate. The first rotating shaft 402 drives the transmission shaft 302 to rotate via the first pulley 404 and the first transmission belt 405. The transmission shaft 302 drives the transmission gear 303 to rotate, which in turn drives the external gear ring 301 to rotate. The external gear ring 301 drives the pulping cylinder 103 to rotate, thereby causing the pulping cylinder 103 to rotate. The flow of raw materials within the pulping cylinder 103 improves the fluidity of the raw materials, making the pulping more uniform. The reciprocating oscillating component 7 drives the stirring plate 108 to oscillate back and forth by rotating the pulping cylinder 103, thereby agitating the raw materials and further improving their fluidity. The second transmission component 5 drives the pulping sub-shaft 110 to rotate by rotating the pulping cylinder 103. The pulping sub-shaft 110 drives multiple auxiliary blades 111 to rotate, thereby enabling the multiple auxiliary blades 111 to perform auxiliary pulping treatment on the raw materials. The oscillation of the stirring plate 108 can cause the pulping sub-shaft 110 to move the multiple auxiliary blades 111, increasing the pulping range of the multiple auxiliary blades 111 and ensuring that the multiple auxiliary blades 111 are in full contact with the raw materials, further improving the pulping effect and making the pulping treatment of the raw materials more uniform.
[0033] Example 3, as Figures 1-8 As shown, a pulping device for producing power cable paper according to an embodiment of the present invention includes a base plate 101, on which a mounting frame 102 and a mounting plate 113 are fixed. The device also includes a pulping cylinder 103, a pulping spindle 105, a protective sleeve 107, a rotating assembly 2, a rolling mechanism 3, a second transmission assembly 5, and a reciprocating oscillating assembly 7. The pulping cylinder 103 is rotatably connected to the mounting frame 102, and a material pipe 104 is provided at one end of the pulping cylinder 103, with a sealing cap threaded onto the material pipe 104. The pulping spindle 105 is rotatably connected to the mounting plate 113, extending into the pulping cylinder 103 and coaxially arranged with it. Multiple main blades 112 are fixed on the pulping spindle 105. The rotating assembly 2 and the rolling mechanism 3 are both mounted on the mounting plate 113. The rotating assembly 2 is used to drive the pulping spindle 103. Shaft 105 rotates; the rolling mechanism 3 drives the pulping cylinder 103 to rotate by rotating the pulping main shaft 105; the protective sleeve 107 is fixed on the mounting plate 113, and the side wall of the pulping cylinder 103 is rotatably connected to the inner wall of the protective sleeve 107; the second transmission component 5 and the reciprocating swing component 7 are both arranged inside the protective sleeve 107; a first rotating shaft 106 is rotatably connected inside the pulping cylinder 103, and a stirring plate 108 is rotatably connected on the first rotating shaft 106; the reciprocating swing component 7 drives the stirring plate 108 to reciprocate and swing by rotating the pulping cylinder 103; the stirring plate 108 is provided with a clearance groove 109, and a pulping secondary shaft 110 is rotatably connected to the clearance groove 109; multiple auxiliary blades 111 are fixed on the pulping secondary shaft 110; the second transmission component 5 drives the pulping secondary shaft 110 to rotate by rotating the pulping cylinder 103;
[0034] The rotating assembly 2 includes an L-shaped mounting plate 201 and a motor 202. The L-shaped mounting plate 201 is fixed on the mounting plate 113, and the motor 202 is fixed on the mounting plate 113. The rotating end of the motor 202 is connected to the pulping main shaft 105.
[0035] The rolling mechanism 3 includes an external gear ring 301, a drive shaft 302, a drive gear 303, and a first transmission assembly 4. The external gear ring 301 is fixed to the side wall of the pulping cylinder 103. The drive shaft 302 is rotatably connected to the mounting plate 113. The drive gear 303 is fixed to the drive shaft 302 and meshes with the external gear ring 301. The first transmission assembly 4 is mounted on the mounting plate 113. The first transmission assembly 4 drives the drive shaft 302 to rotate by rotating the pulping main shaft 105. The first transmission assembly 4 includes a first gear 401. A first rotating shaft 402 and a second gear 403 are provided. The first rotating shaft 402 is rotatably connected to the mounting plate 113. The first gear 401 and the second gear 403 are respectively fixed on the pulping main shaft 105 and the first rotating shaft 402, and the first gear 401 meshes with the second gear 403. The drive shaft 302 and the first rotating shaft 402 are connected by a belt and a pulley module. The pulley module includes a first pulley 404 fixed on both the drive shaft 302 and the first rotating shaft 402. The two first pulleys 404 are connected by a first drive belt 405.
[0036] The second transmission assembly 5 includes a third gear 504 and an internal gear ring 505. The stirring plate 108 is provided with a mounting groove 501, and a belt drive assembly is disposed within the mounting groove 501. The first rotating shaft 106 and the pulping sub-shaft 110 are connected via the belt drive assembly. The third gear 504 is fixed on the first rotating shaft 106, and the internal gear ring 505 is disposed on the inner wall of the protective sleeve 107, meshing with it. A fifth gear 602 is rotatably connected to the mounting plate 113, and a fourth gear 601 is fixed to the material pipe 104. The fifth gear 602 meshes with both the fourth gear 601 and the internal gear ring 505, which is rotatably connected to the inner wall of the protective sleeve 107. The belt drive assembly includes second pulleys 502 fixed to both the first rotating shaft 106 and the pulping sub-shaft 110, and the two second pulleys 502 are connected via a second transmission belt 503.
[0037] In this embodiment of the invention, during use, the sealing cap on the feed pipe 104 is unscrewed, and then the raw material is poured into the pulping cylinder 103 through the feed pipe 104. The sealing cap is then screwed back onto the feed pipe 104. The motor 202 drives the pulping spindle 105 to rotate, and the pulping spindle 105 drives multiple main blades 112 to pulp the raw material. The pulping spindle 105 drives the first gear 401 to rotate, which in turn drives the second gear 403 to rotate. The second gear 403 drives the first rotating shaft 402 to rotate, and the first rotating shaft 402 drives the transmission shaft 302 via the first pulley 404 and the first transmission belt 405. The rotation of the transmission shaft 302 drives the transmission gear 303 to rotate, which in turn drives the external gear ring 301 to rotate. The external gear ring 301 then drives the pulping cylinder 103 to rotate, thereby causing the raw material within the pulping cylinder 103 to flow, improving its fluidity and making the pulping more uniform. The reciprocating oscillating assembly 7, through the rotation of the pulping cylinder 103, drives the stirring plate 108 to oscillate reciprocally, further agitating the raw material and improving its fluidity. The pulping cylinder 103 drives the first rotating shaft 106 to revolve around the axis of the pulping cylinder 103. The third gear 504 revolves around the axis of the pulping cylinder 103, causing it to rotate relative to the internal gear ring 505. The internal gear ring 505 pushes the third gear 504 to rotate, which in turn drives the first rotating shaft 106 to rotate. The first rotating shaft 106, through the second pulley 502 and the second transmission belt 503, drives the pulping sub-shaft 110 to rotate. The pulping sub-shaft 110 drives multiple auxiliary blades 111 to rotate, thus enabling the multiple auxiliary blades 111 to perform auxiliary pulping treatment on the raw materials. Next, the pulping main shaft 105 drives the fourth gear 601 to rotate, and the fourth gear 601 drives the fifth gear 103 to rotate. When gear 602 reverses, the fifth gear 602 drives the internal gear ring 505 to rotate. The internal gear ring 505 moves in the opposite direction to the revolution of the third gear 504, thereby accelerating the rotation speed of the internal gear ring 505 and the third gear 504, thus accelerating the rotation speed of the auxiliary blade 111 and improving the pulping effect of the auxiliary blade 111. By swinging the stirring plate 108, the pulping sub-shaft 110 can drive multiple auxiliary blades 111 to move, increasing the pulping range of multiple auxiliary blades 111, and making multiple auxiliary blades 111 fully contact the raw materials, further improving the pulping effect of the raw materials and making the pulping treatment of the raw materials more uniform.
[0038] Example 4, as Figures 1-8As shown, a pulping device for producing power cable paper according to an embodiment of the present invention includes a base plate 101, on which a mounting frame 102 and a mounting plate 113 are fixed. The device also includes a pulping cylinder 103, a pulping spindle 105, a protective sleeve 107, a rotating assembly 2, a rolling mechanism 3, a second transmission assembly 5, and a reciprocating oscillating assembly 7. The pulping cylinder 103 is rotatably connected to the mounting frame 102, and a material pipe 104 is provided at one end of the pulping cylinder 103, with a sealing cap threaded onto the material pipe 104. The pulping spindle 105 is rotatably connected to the mounting plate 113, extending into the pulping cylinder 103 and coaxially arranged with it. Multiple main blades 112 are fixed on the pulping spindle 105. The rotating assembly 2 and the rolling mechanism 3 are both mounted on the mounting plate 113. The rotating assembly 2 is used to drive the pulping spindle 103. Shaft 105 rotates; the rolling mechanism 3 drives the pulping cylinder 103 to rotate by rotating the pulping main shaft 105; the protective sleeve 107 is fixed on the mounting plate 113, and the side wall of the pulping cylinder 103 is rotatably connected to the inner wall of the protective sleeve 107; the second transmission component 5 and the reciprocating swing component 7 are both arranged inside the protective sleeve 107; a first rotating shaft 106 is rotatably connected inside the pulping cylinder 103, and a stirring plate 108 is rotatably connected on the first rotating shaft 106; the reciprocating swing component 7 drives the stirring plate 108 to reciprocate and swing by rotating the pulping cylinder 103; the stirring plate 108 is provided with a clearance groove 109, and a pulping secondary shaft 110 is rotatably connected to the clearance groove 109; multiple auxiliary blades 111 are fixed on the pulping secondary shaft 110; the second transmission component 5 drives the pulping secondary shaft 110 to rotate by rotating the pulping cylinder 103;
[0039] The rotating assembly 2 includes an L-shaped mounting plate 201 and a motor 202. The L-shaped mounting plate 201 is fixed on the mounting plate 113, and the motor 202 is fixed on the mounting plate 113. The rotating end of the motor 202 is connected to the pulping main shaft 105.
[0040] The rolling mechanism 3 includes an external gear ring 301, a drive shaft 302, a drive gear 303, and a first transmission assembly 4. The external gear ring 301 is fixed to the side wall of the pulping cylinder 103. The drive shaft 302 is rotatably connected to the mounting plate 113. The drive gear 303 is fixed to the drive shaft 302 and meshes with the external gear ring 301. The first transmission assembly 4 is mounted on the mounting plate 113. The first transmission assembly 4 drives the drive shaft 302 to rotate by rotating the pulping main shaft 105. The first transmission assembly 4 includes a first gear 401. A first rotating shaft 402 and a second gear 403 are provided. The first rotating shaft 402 is rotatably connected to the mounting plate 113. The first gear 401 and the second gear 403 are respectively fixed on the pulping main shaft 105 and the first rotating shaft 402, and the first gear 401 meshes with the second gear 403. The drive shaft 302 and the first rotating shaft 402 are connected by a belt and a pulley module. The pulley module includes a first pulley 404 fixed on both the drive shaft 302 and the first rotating shaft 402. The two first pulleys 404 are connected by a first drive belt 405.
[0041] The second transmission assembly 5 includes a third gear 504 and an internal gear ring 505. The stirring plate 108 is provided with a mounting groove 501, and a belt drive assembly is disposed within the mounting groove 501. The first rotating shaft 106 and the pulping sub-shaft 110 are connected via the belt drive assembly. The third gear 504 is fixed on the first rotating shaft 106, and the internal gear ring 505 is disposed on the inner wall of the protective sleeve 107, meshing with it. A fifth gear 602 is rotatably connected to the mounting plate 113, and a fourth gear 601 is fixed to the material pipe 104. The fifth gear 602 meshes with both the fourth gear 601 and the internal gear ring 505, which is rotatably connected to the inner wall of the protective sleeve 107. The belt drive assembly includes second pulleys 502 fixed to both the first rotating shaft 106 and the pulping sub-shaft 110, and the two second pulleys 502 are connected via a second transmission belt 503.
[0042] The reciprocating oscillating assembly 7 includes a rotating disk 702 and a push shaft 703. An elongated hole 701 is provided on the side wall of the stirring plate 108. The side wall of the stirring plate 108 is slidably engaged with the inner end face of the pulping cylinder 103. The rotating disk 702 is rotatably connected to the inner end face of the pulping cylinder 103, and the rotating disk 702 is recessed into the inner end of the pulping cylinder 103. One end of the rotating disk 702 is flush with the inner end face of the pulping cylinder 103. The push shaft 703 is fixed to the rotating disk 702 and slidably connected to the elongated hole 701. The mounting plate 1... A transmission component is provided on the 13, which drives the rotating disk 702 to rotate by rotating the pulping cylinder 103. The transmission component includes a connecting shaft 801, a sixth gear 802, a seventh gear 803, and a fixing block 804. The fixing block 804 is fixed on the mounting plate 113, the seventh gear 803 is fixed on the fixing block 804, the connecting shaft 801 is fixed at the axis of the rotating disk 702, and the connecting shaft 801 passes through the end of the pulping cylinder 103. The sixth gear 802 is fixed on the connecting shaft 801, and the sixth gear 802 and the seventh gear 803 mesh.
[0043] In this embodiment of the invention, during use, the sealing cap on the feed pipe 104 is unscrewed, and then the raw material is poured into the pulping cylinder 103 through the feed pipe 104. The sealing cap is then screwed back onto the feed pipe 104. The motor 202 drives the pulping spindle 105 to rotate, and the pulping spindle 105 drives multiple main blades 112 to pulp the raw material. The pulping spindle 105 drives the first gear 401 to rotate, which in turn drives the second gear 403 to rotate. The second gear 403 drives the first rotating shaft 402 to rotate. The first rotating shaft 402 drives the transmission shaft 302 to rotate via the first pulley 404 and the first transmission belt 405. The transmission shaft 302 drives the transmission gear 303 to rotate, and the transmission gear 303 drives the external gear ring. Rotation of 301 causes the external gear ring 301 to drive the pulping cylinder 103 to rotate, which in turn causes the raw material inside the pulping cylinder 103 to flow, improving the fluidity of the raw material and making the pulping more uniform. The pulping cylinder 103 drives the connecting shaft 801 and the sixth gear 802 to revolve around the axis of the pulping cylinder 103, which in turn causes the sixth gear 802 to rotate relative to the seventh gear 803. The seventh gear 803 then drives the sixth gear 802 to rotate, which in turn drives the connecting shaft 801 to rotate. The connecting shaft 801 drives the rotating disk 702 to rotate, and the rotating disk 702 drives the push shaft 703 to revolve around the axis of the rotating disk 702. This causes the push shaft 703 to drive the stirring plate 108 to oscillate back and forth through the elongated hole 701. This causes the mixing plate 108 to agitate the raw materials, further improving their fluidity. The pulping cylinder 103 drives the first rotating shaft 106 to revolve around its axis. The first rotating shaft 106 drives the third gear 504 to revolve around its axis, causing the third gear 504 to rotate relative to the internal gear ring 505. The internal gear ring 505 pushes the third gear 504 to rotate, which in turn drives the first rotating shaft 106 to rotate. The first rotating shaft 106, through the second pulley 502 and the second transmission belt 503, drives the pulping sub-shaft 110 to rotate. The pulping sub-shaft 110 drives multiple auxiliary blades 111 to rotate, thereby enabling the multiple auxiliary blades 111 to perform auxiliary pulping treatment on the raw materials. Secondly, the pulping main shaft 105 drives the fourth gear 601 to rotate, the fourth gear 601 drives the fifth gear 602 to rotate in reverse, and the fifth gear 602 drives the internal gear ring 505 to rotate. The internal gear ring 505 moves in the opposite direction of the revolution of the third gear 504, thereby accelerating the rotation speed of the internal gear ring 505 driving the third gear 504, thus accelerating the rotation speed of the auxiliary blades 111 and improving the pulping effect of the auxiliary blades 111. By swinging the stirring plate 108, the pulping sub-shaft 110 can drive multiple auxiliary blades 111 to move, increasing the pulping range of multiple auxiliary blades 111, so that multiple auxiliary blades 111 can fully contact the raw materials, further improving the pulping effect of the raw materials and making the pulping treatment of the raw materials more uniform.
[0044] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A beating device for power cable paper production, comprising a base plate, a mounting frame and a mounting plate fixed on the base plate, characterized in that, Also includes: Pulping cylinder, pulverizing main shaft, protective sleeve, rotating assembly, rolling mechanism, second transmission assembly, and reciprocating oscillating assembly; The pulping cylinder is rotatably connected to the mounting frame, and a material pipe is provided at one end of the pulping cylinder, with a sealing cap threaded onto the material pipe; The pulping spindle is rotatably connected to the mounting plate. The pulping spindle extends into the pulping cylinder and is coaxial with the pulping cylinder. Multiple main blades are fixed on the pulping spindle. Both the rotating assembly and the rolling mechanism are mounted on the mounting plate. The rotating assembly is used to drive the pulping main shaft to rotate; the rolling mechanism drives the pulping cylinder to rotate by rotating the pulping main shaft. The protective sleeve is fixed on the mounting plate, and the side wall of the pulping cylinder is rotatably connected to the inner wall of the protective sleeve. The second transmission component and the reciprocating swing component are both located inside the protective sleeve. The pulping cylinder is rotatably connected to a first rotating shaft, and a stirring plate is rotatably connected to the first rotating shaft. The reciprocating oscillating component drives the stirring plate to oscillate back and forth by rotating the pulping cylinder. The mixing plate is provided with a clearance groove, and a pulping sub-shaft is rotatably connected to the clearance groove. Multiple auxiliary blades are fixed on the pulping sub-shaft. The second transmission component drives the pulping sub-shaft to rotate by rotating the pulping cylinder. The second transmission assembly includes a third gear and an internal gear ring. The stirring plate is provided with an installation groove, and a belt transmission assembly is provided in the installation groove. The first rotating shaft and the pulping sub-shaft are connected by the belt transmission assembly. The third gear is fixed on the first rotating shaft, and the internal gear ring is provided on the inner wall of the protective sleeve, and the third gear meshes with the internal gear ring. A fifth gear is rotatably connected to the mounting plate, and a fourth gear is fixed on the pulping main shaft. The fifth gear meshes with both the fourth gear and the internal gear ring, and the internal gear ring is rotatably connected to the inner wall of the protective sleeve. The belt drive assembly includes a second pulley fixed on both the first rotating shaft and the pulping sub-shaft, and the two second pulleys are connected by a second drive belt. The reciprocating oscillating assembly includes a rotating disk and a push shaft. The side wall of the stirring plate is provided with an elongated hole. The side wall of the stirring plate is slidably engaged with the inner end face of the pulping cylinder. The rotating disk is rotatably connected to the inner end face of the pulping cylinder and is submerged in the inner end of the pulping cylinder. The rotating disk is located at one end of the pulping cylinder and is flush with the inner end face of the pulping cylinder. The push shaft is fixed on the rotating disk and slidably connected to the elongated hole. A transmission component is provided on the mounting plate. The transmission component drives the rotating disk to rotate by rotating the pulping cylinder. The transmission component includes a connecting shaft, a sixth gear, a seventh gear, and a fixing block. The fixing block is fixed on the mounting plate, the seventh gear is fixed on the fixing block, the connecting shaft is fixed at the axis of the rotating disk and passes through the end of the pulping cylinder, the sixth gear is fixed on the connecting shaft, and the sixth gear and the seventh gear mesh.
2. The beating device for power cable paper production according to claim 1, characterized in that, The rotating assembly includes an L-shaped mounting plate and a motor. The L-shaped mounting plate is fixed on the mounting plate, and the motor is fixed on the mounting plate. The rotating end of the motor is connected to the pulping main shaft.
3. The beating device for power cable paper production according to claim 1, characterized in that, The rolling mechanism includes an external gear ring, a drive shaft, a drive gear, and a first transmission assembly. The external gear ring is fixed to the side wall of the pulping cylinder. The drive shaft is rotatably connected to the mounting plate. The drive gear is fixed to the drive shaft and meshes with the external gear ring. The first transmission assembly is mounted on the mounting plate and drives the drive shaft to rotate by rotating the pulping main shaft.
4. The beating device for power cable paper production according to claim 3, characterized in that, The first transmission assembly includes a first gear, a first rotating shaft, and a second gear. The first rotating shaft is rotatably connected to the mounting plate. The first gear and the second gear are respectively fixed on the pulping main shaft and the first rotating shaft, and the first gear meshes with the second gear. The transmission shaft and the first rotating shaft are connected by a belt and a pulley module.
5. The beating device for power cable paper production according to claim 4, characterized in that, The pulley module includes a first pulley fixed on both the drive shaft and the first rotating shaft, and the two first pulleys are connected by a first drive belt.