Method for manufacturing plate by using waste wind power generation blade and processing equipment thereof
By designing special processing equipment, using the motor to drive the central rotating shaft and agitating paddle for stirring, and combining scraper cleaning and one-way mechanism, the problem of difficult mixing of waste wind power blade materials is solved, and efficient and uniform material mixing and equipment cleaning are achieved.
Patent Information
- Application Number
- CN202510610491.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2025-07-08
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the prior art, in the process of waste wind power blades, it is difficult to efficiently mix materials for subsequent treatment, especially how to effectively use glue and materials to make plates.
A processing equipment is designed, including a frame, processing, compounding and cleaning mechanism, which is agitated by a motor driving the central rotor shaft and agitating paddle, combined with scraper cleaning and one-way mechanism to prevent glue leakage, ensuring uniform mixing and clean equipment.
It realizes efficient mixing of materials, reduces adhesion and precipitation, keeps the equipment clean, improves mixing efficiency and ensures human health and safety.
Smart Images

Figure CN120269706A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of sheet processing, and specifically to a method and processing equipment for manufacturing sheets using waste wind power blades. Background Art
[0002] Wind energy is an inexhaustible and renewable clean energy source. Currently, wind energy is mainly used for power generation and has been widely developed and applied globally. Generally, the designed service life of wind turbine blades is about 20 - 25 years. After 20 years of operation of a wind farm, the blades will be decommissioned together with the main unit. The decommissioned wind turbine is disassembled by a hoisting device, and components such as wind turbine blades, nacelles, and towers are removed in sequence; the wind turbine blades are dismembered by mechanical equipment or manually for easy transportation, and then transported to a recycling site where the decommissioned wind turbine blades are shredded into small pieces and mixed with cement for combustion. During combustion, the heat of the resin is used for energy recovery, and the remaining fiber-containing material is used as a raw material for cement production.
[0003] During the process of blade recycling and treatment, it is necessary to mix the blade debris with glue to facilitate subsequent treatment of the blade debris. Therefore, a new design has been made for how to mix materials. Summary of the Invention
[0004] To achieve the above objectives, the present invention is realized through the following technical solutions: A method and processing equipment for manufacturing sheets using waste wind power blades, including:
[0005] Preferably, the frame mechanism, which is used to support the processing equipment;
[0006] A processing mechanism, which is used to mix materials;
[0007] A compounding mechanism, which is used to agitate glue and materials;
[0008] The outside of the frame mechanism is fixedly connected to the outside of the processing mechanism, the outside of the compounding mechanism is fixedly connected to the inner wall of the processing mechanism, a first motor is fixedly connected to the top of the processing mechanism, and a second motor is fixedly connected to the bottom of the processing mechanism;
[0009] Among them, the processing mechanism includes a cylindrical shell. An annular block is fixedly connected to the outside of the cylindrical shell. The annular block plays a role in supporting and guiding to prevent deviation during rotation. The outside of the annular block is rotatably connected to the outside of the erection mechanism. A one-way mechanism and a bin door plate are respectively fixedly connected to the top of the cylindrical shell. The inner wall of the cylindrical shell is rotatably connected to a central rotating shaft. An adapter column is fixedly connected to the outside of the central rotating shaft. Stirring paddles are fixedly connected to the outside of the adapter column. The cylindrical shell is connected to the bin door plate. By rotating the bin door plate, it is convenient to feed materials into the processing mechanism. The first motor is connected to the central rotating shaft to drive the central rotating shaft to rotate. Then the central rotating shaft is connected to the stirring paddles to rotate, so as to achieve the stirring effect and mix the materials. Strip-shaped grooves are formed on the outside of the stirring paddles. The formation of strip-shaped grooves on the stirring paddles, on the one hand, enhances the stirring effect. The grooves can increase the contact area and friction between the paddle blades and the materials, making the stirring more sufficient and uniform and improving the mixing efficiency. On the other hand, it reduces the adhesion of materials, which can reduce the adhesion of materials on the surface of the paddle blades to a certain extent, keep the paddle blades clean, and facilitate continuous and efficient stirring. A receiving plate is fixedly connected to the bottom side of the inner wall of the cylindrical shell. The receiving plate plays a protective role for the compound mechanism. An output pipe is fixedly connected to the bottom of the cylindrical shell. The bottom of the cylindrical shell is connected to the second motor. The cylindrical shell is connected to the annular block. By driving the processing mechanism to rotate through the second motor, the mixing effect is achieved. A cleaning mechanism is fixedly connected to the upper side of the central rotating shaft close to the inner wall of the cylindrical shell.
[0010] Preferably, the cleaning mechanism includes an adapter block. The inner wall of the adapter block is fixedly connected to the outside of the central rotating shaft. A connecting rod is fixedly connected to the outside of the adapter block. A scraping plate is fixedly connected to one side of the connecting rod away from the adapter block. Kinetic energy is provided by the rotation of the central rotating shaft. The connecting rod is connected to the scraping plate to scrape the inner wall of the equipment, so as to achieve the cleaning effect of the inner wall and prevent material residues from affecting the cleanliness inside the equipment. Circular notches are formed on the outside of the scraping plate. The formation of circular notches on the scraping plate reduces the weight and improves the material flow effect, helps to guide the fluid flow, reduces vortices and dead corners, and makes the materials flow more smoothly during the stirring process.
[0011] Preferably, a support rod is fixedly connected to the outside of the connecting rod. A support column is fixedly connected to one side of the support rod away from the connecting rod. The support rod plays a supporting role for the connecting rod, so as to achieve the effect of keeping the mechanism stable. The inner wall of the support column is fixedly connected to the outside of the central rotating shaft. A spring rod is fixedly connected to one side of the support rod close to the adapter block. The support rod is connected to the spring rod to play a buffering role. When materials are fed from the top, it impacts the equipment. Therefore, shock absorption is achieved through the elasticity of the spring, so as to achieve the role of protecting the structure.
[0012] Preferably, the one-way mechanism includes a one-way housing, an external part of the one-way housing is fixedly connected with a receiving block, a bottom part of the receiving block is plugged with a plugging block, a bottom part of the plugging block is fixedly connected with an annular base, and a bottom part of the annular base is fixedly connected with a top part of a cylinder housing. The receiving block and the plugging block are made of magnetic materials, so that the receiving block and the plugging block are plugged together, thereby achieving the effect of quick connection and facilitating disassembly and maintenance.
[0013] Preferably, a transverse partition is fixedly connected to an inner wall of the one-way housing. When glue flows from a docking block to a closing block, pressure pushes the closing block and the transverse partition to create a space, thereby achieving the effect of flowing in. A docking block is slidably connected to the inner wall of the one-way housing. A bottom part of the docking block is fixedly connected with a closing block. Through the elastic property of a spring block, the docking block is pushed upward, so that the closing block fits on the surface of the transverse partition block, thereby achieving the effect of closing and preventing glue gas from leaking, protecting the health and safety of the human body. A rubber ring is fixedly connected to an external part of the closing block. The rubber ring is connected to the closing block, thereby achieving the effect of enhancing the sealing property. A spring block is sleeved on a bottom part of the docking block.
[0014] Preferably, the composite mechanism includes a gear. An external part of the gear is meshed with a bottom part of a central rotating shaft. A bottom part of the gear is rotatably connected with a cylindrical block. A bottom part of the cylindrical block is fixedly connected with a bottom part of an inner wall of the cylinder housing. A fixing column is fixedly connected to a top part of the gear. An irregular paddle is fixedly connected to an external part of the fixing column. The first motor provides kinetic energy. By meshing the bottom part of the central rotating shaft with the gear, the composite mechanism is driven to rotate. By rotating the irregular paddle, the effect of increasing the mixing effect and improving the stirring effect is achieved. At the same time, material precipitation is avoided, thereby achieving the effect of uniform mixing. A cover plate is magnetically connected to a top part of the fixing column. The cover plate is magnetically connected to the fixing column, strengthening the fixing effect of the irregular paddle and improving the structural stability.
[0015] Preferably, the erection mechanism includes a frame housing. A frame support is fixedly connected to an external part of the frame housing. An arc track is fixedly connected to one side of an external part of the frame support. An arc groove is formed on a side of the arc track away from the frame housing. A stabilizing mechanism is fixedly connected to a middle part of an external part of the frame housing. The arc groove is slidably connected to an annular block, playing a supporting role for the processing mechanism. The frame support is connected to the arc track to play a supporting role. By driving the processing mechanism to rotate on the arc track through the second motor, the effect of rolling and mixing is achieved.
[0016] Preferably, the stabilizing mechanism includes a square plate, the outside of the square plate is fixedly connected to the outside of the frame housing, one side of the square plate away from the frame housing is fixedly connected with an arc-shaped frame, both sides of the outside of the arc-shaped frame are fixedly connected with runner blocks, and the connection between the arc-shaped frame and the runner blocks serves as a support. The outside of the runner block is fixedly connected with a silica gel block. The connection between the runner block and the silica gel block stabilizes the processing mechanism, preventing shaking during rotation and keeping the equipment running stably. One side of the outside of the square plate is fixedly connected with a right-angle frame. Made of silica gel material, it reduces the wear caused by rotation and extends the service life of the equipment. The right-angle frame is connected to the arc-shaped frame to play a supporting role, and the side of the right-angle frame away from the square plate is fixedly connected to the outside of the arc-shaped frame.
[0017] A method and processing equipment for manufacturing plates using waste wind power generation blades, comprising the following steps:
[0018] Step 1, placing: Connect the glue hose to the one-way mechanism, and then send the material and glue into the processing mechanism.
[0019] Step 2, hybridizing: The processing mechanism is connected to the second motor, and the frame mechanism supports the processing mechanism. The second motor drives the processing mechanism to rotate, so that the glue and the material are hybridized.
[0020] Step 3, stirring: Stir and mix the glue and the material through the processing mechanism to promote the mixing efficiency of the material.
[0021] Step 4, reacting: The compound mechanism stirs the material inside the processing mechanism to promote the mixing reaction of the material and the glue.
[0022] Step 5, taking out: After the processing mechanism and the compound mechanism mix the material and the glue, they are discharged through the output pipe.
[0023] The present invention provides a method and processing equipment for manufacturing plates using waste wind power generation blades. It has the following beneficial effects:
[0024] 1. The method and processing equipment for manufacturing plates using waste wind turbine blades. Through the design of the processing mechanism, the cylindrical outer shell is connected to the bin door panel. By rotating the bin door panel, it is convenient to send materials into the interior of the processing mechanism. The first motor is connected to the central rotating shaft, driving the central rotating shaft to rotate. Then, the central rotating shaft is connected to the stirring paddle to rotate, thereby achieving the function of stirring and mixing the materials. The stirring paddle is provided with strip-shaped grooves. On the one hand, it enhances the stirring effect. The grooves can increase the contact area and friction between the paddle and the materials, making the stirring more sufficient and uniform, and improving the mixing efficiency. On the other hand, it reduces the adhesion of materials, which can reduce the adhesion of materials on the surface of the paddle to a certain extent, keep the paddle clean, and facilitate continuous and efficient stirring. The receiving plate plays a protective role for the composite mechanism. The bottom of the cylindrical outer shell is connected to the second motor, and the cylindrical outer shell is connected to the annular block. By driving the processing mechanism to rotate through the second motor, the effect of mixing is achieved. The annular block plays a role of support and guidance, preventing deviation during rotation.
[0025] 2. The method and processing equipment for manufacturing plates using waste wind turbine blades. Through the design of the cleaning mechanism, kinetic energy is provided by the rotation of the central rotating shaft. The connecting rod is connected to the scraper, which scrapes the inner wall of the equipment to achieve the effect of cleaning the inner wall, preventing material residue and affecting the cleanliness inside the equipment. Secondly, the scraper is provided with circular grooves to reduce the weight and improve the material flow effect, which helps to guide the fluid flow, reduce vortices and dead corners, and make the material flow more smoothly during the stirring process.
[0026] 3. The method and processing equipment for manufacturing plates using waste wind turbine blades. Through the design of the one-way mechanism, when the glue flows from the docking block to the closing block, the pressure pushes the closing block to generate a space with the cross partition, thereby achieving the effect of flowing in. When the glue stops entering, through the elastic characteristics of the spring block, the docking block is pushed upward, making the closing block fit on the surface of the cross partition block, thereby achieving the effect of closing, preventing the leakage of glue gas, and protecting the health and safety of the human body. Secondly, the rubber ring is connected to the closing block, thereby achieving the effect of enhancing the sealing performance.
[0027] 4. The method and processing equipment for manufacturing plates using waste wind turbine blades. Through the design of the composite mechanism, the first motor provides kinetic energy. By meshing the gear at the bottom of the central rotating shaft, the composite mechanism is driven to rotate. By rotating the special-shaped paddle, the effect of increasing the mixing effect and improving the stirring effect is achieved. At the same time, it avoids material precipitation, thereby achieving the effect of uniform mixing. The cover plate is magnetically connected to the fixed column to strengthen the fixing effect of the special-shaped paddle and improve the stability of the structure.
[0028] V. The method for manufacturing plates using waste wind power generation blades and its processing equipment. Through the design of the stabilization mechanism, the arc-shaped frame is connected to the runner block to play a supporting role. The runner block is connected to the silica gel block, which stabilizes the processing mechanism, prevents shaking during rotation, and keeps the equipment running stably. Then, the silica gel material is used to reduce the wear caused by rotation and extend the service life of the equipment. The right-angle frame is connected to the arc-shaped frame to play a supporting role. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 FIG. is an external structural schematic diagram of a processing equipment for manufacturing plates using waste wind power generation blades according to the present invention;
[0030] Figure 2 FIG. is a sectional structural schematic diagram of a processing equipment for manufacturing plates using waste wind power generation blades according to the present invention;
[0031] Figure 3 FIG. is a sectional structural schematic diagram of a processing mechanism according to the present invention;
[0032] Figure 4 FIG. is a structural schematic diagram of a cleaning mechanism according to the present invention;
[0033] Figure 5 FIG. is a sectional structural schematic diagram of a one-way mechanism according to the present invention;
[0034] Figure 6 FIG. is a partial sectional structural schematic diagram of a composite mechanism according to the present invention;
[0035] Figure 7 FIG. is a structural schematic diagram of a frame mechanism according to the present invention;
[0036] Figure 8 FIG. is a structural schematic diagram of a stabilization mechanism according to the present invention;
[0037] Figure 9 FIG. is a schematic flow diagram of a processing method for manufacturing plates from blades according to the present invention.
[0038] In the figure: 1. Frame mechanism; 2. Processing mechanism; 3. Composite mechanism; 4. First motor; 5. Second motor; 11. Frame housing; 12. Frame support; 13. Arc track; 14. Arc groove; 15. Stabilizing mechanism; 151. Square plate; 152. Arc frame; 153. Runner block; 154. Silicone block; 155. Right-angle frame; 201. Cylinder housing; 202. Ring block; 203. Bin door panel; 204. Central rotating shaft; 205. Connecting column; 206. Stirring paddle; 207. Strip groove; 208. Bearing plate; 209. Output pipe; 210. Cleaning mechanism; 211. One-way mechanism; 2101. Connecting block; 2102. Connecting rod; 2103. Scraper; 2104. Circular notch; 2105. Support rod; 2106. Support column; 2107. Spring rod; 2111. One-way housing; 2112. Receiving block; 2113. Insertion block; 2114. Ring base; 2115. Docking block; 2116. Cross partition; 2117. Spring block; 2118. Rubber ring; 2119. Closing block; 31. Gear; 32. Cylindrical block; 33. Fixed column; 34. Special-shaped paddle; 35. Cover plate. Detailed implementation mode
[0039] The present invention will be further described in detail below in conjunction with the accompanying drawings and the specific implementation mode. The embodiments of the present invention are given for the purpose of illustration and description, and are not exhaustive or limited to the disclosed form. Many modifications and variations will be obvious to those of ordinary skill in the art. The embodiments are selected and described to better illustrate the principles and practical applications of the present invention, and enable those of ordinary skill in the art to understand the present invention and thus design various embodiments with various modifications suitable for specific purposes.
[0040] The first embodiment is as Figures 1 to 3 shown. The present invention provides a technical solution: a method for manufacturing a board using waste wind power generation blades and its processing equipment, including a frame mechanism 1 for supporting the processing equipment;
[0041] a processing mechanism 2 for mixing materials;
[0042] a composite mechanism 3 for stirring glue and materials;
[0043] The outside of the frame mechanism 1 is fixedly connected to the outside of the processing mechanism 2, the outside of the composite mechanism 3 is fixedly connected to the inner wall of the processing mechanism 2, the top of the processing mechanism 2 is fixedly connected with a first motor 4, and the bottom of the processing mechanism 2 is fixedly connected with a second motor 5;
[0044] Among them, the processing mechanism 2 includes a cylindrical shell 201. An annular block 202 is fixedly connected to the outside of the cylindrical shell 201. The outside of the annular block 202 is rotatably connected to the outside of the frame mechanism 1. A one-way mechanism 211 and a bin door plate 203 are fixedly connected to the top of the cylindrical shell 201 respectively. A central rotating shaft 204 is rotatably connected to the inner wall of the cylindrical shell 201. An adapter column 205 is fixedly connected to the outside of the central rotating shaft 204. An agitation paddle 206 is fixedly connected to the outside of the adapter column 205. A strip-shaped groove 207 is opened on the outside of the agitation paddle 206. A receiving plate 208 is fixedly connected to the bottom side of the inner wall of the cylindrical shell 201. An output pipe 209 is fixedly connected to the bottom of the cylindrical shell 201. A cleaning mechanism 210 is fixedly connected to the upper side of the central rotating shaft 204 close to the inner wall of the cylindrical shell 201. The cylindrical shell 201 is connected to the bin door plate 203. By rotating the bin door plate 203, it is convenient to feed materials into the processing mechanism 2. The first motor 4 is connected to the central rotating shaft 204 to drive the central rotating shaft 204 to rotate. Then the central rotating shaft 204 is connected to the agitation paddle 206 to rotate, so as to achieve the effect of stirring and mixing the materials. The strip-shaped groove 207 is opened on the agitation paddle 206. On the one hand, it enhances the stirring effect. The grooving can increase the contact area and friction between the paddle and the materials, making the stirring more sufficient and uniform, and improving the mixing efficiency. On the other hand, it reduces the adhesion of materials, which can reduce the adhesion of materials on the surface of the paddle to a certain extent, keep the paddle clean, and is conducive to continuous and efficient stirring. The receiving plate 208 plays a protective role for the composite mechanism 3. The bottom of the cylindrical shell 201 is connected to the second motor 5. The cylindrical shell 201 is connected to the annular block 202. By driving the processing mechanism 2 to rotate through the second motor 5, the mixing effect is achieved. The annular block 202 plays a supporting and guiding role to prevent deviation during rotation.
[0045] Second Embodiment. On the basis of the first embodiment, please refer to Figures 4 to 6 As shown, the cleaning mechanism 210 includes an adapter block 2101. The inner wall of the adapter block 2101 is fixedly connected to the outside of the central rotating shaft 204. A connecting rod 2102 is fixedly connected to the outside of the adapter block 2101. A scraping plate 2103 is fixedly connected to one side of the connecting rod 2102 away from the adapter block 2101. A circular groove 2104 is opened on the outside of the scraping plate 2103. The rotation of the central rotating shaft 204 provides kinetic energy. The connecting rod 2102 is connected to the scraping plate 2103 to scrape the inner wall of the equipment, so as to achieve the cleaning effect of the inner wall and prevent material residue from affecting the cleanliness inside the equipment. Secondly, the circular groove 2104 is opened on the scraping plate 2103 to reduce the weight and improve the material flow effect, which helps to guide the fluid flow, reduce vortices and dead corners, and make the material flow more smoothly during the stirring process.
[0046] A support rod 2105 is fixedly connected to the outside of the connecting rod 2102. A support column 2106 is fixedly connected to the side of the support rod 2105 away from the connecting rod 2102. The inner wall of the support column 2106 is fixedly connected to the outside of the central rotating shaft 204. A spring rod 2107 is fixedly connected to the side of the support rod 2105 close to the connecting block 2101. The support rod 2105 plays a supporting role for the connecting rod 2102, so as to keep the mechanism stable. Secondly, the support rod 2105 is connected to the spring rod 2107 to play a buffering role. When the material is put into use from the top, it impacts the equipment. Therefore, shock absorption is achieved through the elasticity of the spring, so as to protect the structure.
[0047] The one-way mechanism 211 includes a one-way outer shell 2111. A receiving block 2112 is fixedly connected to the outside of the one-way outer shell 2111. A plug-in block 2113 is inserted into the bottom of the receiving block 2112. A ring-shaped base 2114 is fixedly connected to the bottom of the plug-in block 2113. The bottom of the ring-shaped base 2114 is fixedly connected to the top of the cylinder outer shell 201. The receiving block 2112 and the plug-in block 2113 are made of magnetic materials, so that the receiving block 2112 is inserted into the plug-in block 2113, so as to achieve the function of quick connection, which is convenient for disassembly and maintenance.
[0048] A cross partition 2116 is fixedly connected to the inner wall of the one-way outer shell 2111. A docking block 2115 is slidably connected to the inner wall of the one-way outer shell 2111. A closing block 2119 is fixedly connected to the bottom of the docking block 2115. A rubber ring 2118 is fixedly connected to the outside of the closing block 2119. A spring block 2117 is sleeved on the bottom of the docking block 2115. When the glue flows from the docking block 2115 to the closing block 2119, the pressure pushes the closing block 2119 to generate a space with the cross partition 2116, so as to achieve the function of flowing in. When the glue stops entering, through the elastic characteristic of the spring block 2117, the docking block 2115 is pushed upward, so that the closing block 2119 fits on the surface of the cross partition 2116, so as to achieve the function of closing, prevent the leakage of glue gas, protect the health and safety of the human body. Secondly, the rubber ring 2118 is connected to the closing block 2119, so as to enhance the sealing performance.
[0049] The composite mechanism 3 includes a gear 31. The outside of the gear 31 is meshed and connected to the bottom of the central rotating shaft 204. A cylindrical block 32 is rotatably connected to the bottom of the gear 31. The bottom of the cylindrical block 32 is fixedly connected to the bottom of the inner wall of the cylinder housing 201. A fixed column 33 is fixedly connected to the top of the gear 31. A special-shaped paddle 34 is fixedly connected to the outside of the fixed column 33. A cover plate 35 is magnetically connected to the top of the fixed column 33. The first motor 4 provides kinetic energy. By meshing the bottom of the central rotating shaft 204 with the gear 31, the composite mechanism 3 is driven to rotate. By rotating the special-shaped paddle 34, the mixing effect is increased and the stirring effect is improved. At the same time, material precipitation is avoided, so as to achieve the effect of uniform mixing. The cover plate 35 is magnetically connected to the fixed column 33 to strengthen the fixing effect of the special-shaped paddle 34 and improve the structural stability.
[0050] The third embodiment, on the basis of the first and second embodiments, please refer to Figures 7 to 9 As shown, the frame mechanism 1 includes a frame housing 11. A frame support 12 is fixedly connected to the outside of the frame housing 11. An arc track 13 is fixedly connected to one side of the outside of the frame support 12. An arc groove 14 is opened on the side of the arc track 13 away from the frame housing 11. A stabilizing mechanism 15 is fixedly connected to the middle of the outside of the frame housing 11. The arc groove 14 is slidably connected to the annular block 202 to support the processing mechanism 2. The frame support 12 is connected to the arc track 13 to play a supporting role. The processing mechanism 2 is driven by the second motor 5 to rotate on the arc track 13, so as to achieve the effect of rolling and mixing.
[0051] The stabilizing mechanism 15 includes a square plate 151. The outside of the square plate 151 is fixedly connected to the outside of the frame housing 11. An arc-shaped frame 152 is fixedly connected to the side of the square plate 151 away from the frame housing 11. Rotating wheel blocks 153 are fixedly connected to both sides of the outside of the arc-shaped frame 152. A silica gel block 154 is fixedly connected to the outside of the rotating wheel block 153. A right-angle frame 155 is fixedly connected to one side of the outside of the square plate 151. The side of the right-angle frame 155 away from the square plate 151 is fixedly connected to the outside of the arc-shaped frame 152. The arc-shaped frame 152 is connected to the rotating wheel block 153 to play a supporting role. The rotating wheel block 153 is connected to the silica gel block 154 to stabilize the processing mechanism 2, prevent shaking during rotation, and keep the equipment running stably. Then, through the silica gel material, the wear generated by rotation is reduced, and the service life of the equipment is prolonged. The right-angle frame 155 is connected to the arc-shaped frame 152 to play a supporting role.
[0052] A processing method for manufacturing a board using waste wind power generation blades includes the following steps:
[0053] Step 1, placement: Connect the glue hose to the one-way mechanism 211, and then send the material and glue into the processing mechanism 2;
[0054] Step 2: Hybridization. The processing mechanism 2 is connected to the second motor 5. The frame mechanism 1 supports the processing mechanism 2. The second motor 5 drives the processing mechanism 2 to rotate, so as to hybridize the glue and the material.
[0055] Step 3: Stirring. The glue and the material are stirred and mixed by the processing mechanism 2 to promote the mixing efficiency of the material.
[0056] Step 4: Reaction. The composite mechanism 3 stirs the material inside the processing mechanism 2 to promote the mixing reaction of the material and the glue.
[0057] Step 5: Discharge. After the processing mechanism 2 and the composite mechanism 3 mix the material and the glue, they are discharged through the output pipe 209.
[0058] During use, the staff connects the glue pipe to the one-way mechanism 211 inside the processing mechanism 2. The one-way mechanism 211 conveys the glue. On the one hand, it facilitates the entry of the glue. On the other hand, it plays a sealing role. When the glue is stirred, it will produce odor. To avoid the emission of the odor and affect the health and safety of the human body. Secondly, the staff inputs the material from the top of the processing mechanism 2. A first motor 4 is arranged at the top of the processing mechanism 2. The bottom of the first motor 4 is connected to the central rotating shaft 204. The central rotating shaft 204 provides kinetic energy for the processing mechanism 2. Then the processing mechanism 2 mixes the material and the glue, so as to achieve the mixing effect and facilitate subsequent processing. Secondly, when rotating, to prevent the glue and the material from adhering to the inner wall of the equipment after mixing, the cleaning mechanism 210 inside the processing mechanism 2 scrapes the inner wall of the equipment, so as to achieve the effect of cleaning the inner wall of the equipment, prevent material residue, avoid waste of resources and reduce resource costs.
[0059] The composite mechanism 3 is arranged inside the processing mechanism 2. The composite mechanism 3 is meshed with the central rotating shaft 204. The composite mechanism 3 rotates at the bottom of the inner wall of the processing mechanism 2, so as to achieve the effect of increasing the mixing effect and improving the stirring efficiency. At the same time, it avoids the situation that the material precipitates at the bottom and causes uneven mixing. Thus, the composite mechanism 3 plays a role in keeping the stirring uniform.
[0060] The frame mechanism 1 is connected to the outside of the processing mechanism 2. The frame mechanism 1 plays a supporting role for the processing mechanism 2. At the same time, a second motor 5 is arranged at the bottom of the processing mechanism 2. The second motor 5 rotates in the opposite direction to the first motor 4 to form a reverse rolling, so as to achieve the effect of drum-type mixing. Therefore, the frame mechanism 1 keeps the processing mechanism 2 stable and keeps the equipment running normally. After stirring, the material is taken out through the output pipe 209 inside the processing mechanism 2.
[0061] Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all embodiments. All other embodiments obtained by those of ordinary skill in the art and related fields based on the embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention. The structures, devices, and operation methods not specifically described and explained in the present invention shall be implemented by conventional means in the art unless otherwise specified and limited.
Claims
1. A processing device for manufacturing plates using waste wind power generation blades, characterized in that, Including: A frame mechanism (1) for supporting processing equipment. A processing mechanism (2) for mixing materials. A compound mechanism (3) for agitating glue and materials. The exterior of the frame mechanism (1) is fixedly connected to the exterior of the processing mechanism (2), the exterior of the compound mechanism (3) is fixedly connected to the inner wall of the processing mechanism (2), a first motor (4) is fixedly connected to the top of the processing mechanism (2), and a second motor (5) is fixedly connected to the bottom of the processing mechanism (2). Among them, the processing mechanism (2) includes a cylindrical outer shell (201), an annular block (202) is fixedly connected to the exterior of the cylindrical outer shell (201), the exterior of the annular block (202) is rotatably connected to the exterior of the frame mechanism (1), a one-way mechanism (211) and a bin door plate (203) are respectively fixedly connected to the top of the cylindrical outer shell (201), a central rotating shaft (204) is rotatably connected to the inner wall of the cylindrical outer shell (201), a connecting column (205) is fixedly connected to the exterior of the central rotating shaft (204), a stirring paddle (206) is fixedly connected to the exterior of the connecting column (205), a strip-shaped groove (207) is formed in the exterior of the stirring paddle (206), a receiving plate (208) is fixedly connected to the bottom side of the inner wall of the cylindrical outer shell (201), an output pipe (209) is fixedly connected to the bottom of the cylindrical outer shell (201), and a cleaning mechanism (210) is fixedly connected to the upper side of the central rotating shaft (204) close to the inner wall of the cylindrical outer shell (201).
2. The processing equipment for manufacturing plates using waste wind power generation blades according to claim 1, characterized in that: The cleaning mechanism (210) includes a connecting block (2101), the inner wall of the connecting block (2101) is fixedly connected to the exterior of the central rotating shaft (204), a connecting rod (2102) is fixedly connected to the exterior of the connecting block (2101), a scraping plate (2103) is fixedly connected to the side of the connecting rod (2102) away from the connecting block (2101), and a circular groove opening (2104) is formed in the exterior of the scraping plate (2103).
3. The processing equipment for manufacturing plates using waste wind power generation blades according to claim 2, characterized in that: A support rod (2105) is fixedly connected to the exterior of the connecting rod (2102), a support column (2106) is fixedly connected to the side of the support rod (2105) away from the connecting rod (2102), the inner wall of the support column (2106) is fixedly connected to the exterior of the central rotating shaft (204), and a spring rod (2107) is fixedly connected to the side of the support rod (2105) close to the connecting block (2101).
4. The processing equipment for manufacturing plates using waste wind power generation blades according to claim 1, characterized in that: The one-way mechanism (211) includes a one-way outer shell (2111), a receiving block (2112) is fixedly connected to the exterior of the one-way outer shell (2111), a plugging block (2113) is inserted into the bottom of the receiving block (2112), a circular base (2114) is fixedly connected to the bottom of the plugging block (2113), and the bottom of the circular base (2114) is fixedly connected to the top of the cylindrical outer shell (201).
5. The processing equipment for manufacturing plates by using waste wind power generation blades according to claim 4, characterized in that: The inner wall of the one-way housing (2111) is fixedly connected with a transverse partition (2116). The inner wall of the one-way housing (2111) is slidably connected with a docking block (2115). The bottom of the docking block (2115) is fixedly connected with a closing block (2119). The outer part of the closing block (2119) is fixedly connected with a rubber ring (2118). The bottom of the docking block (2115) is sleeved with a spring block (2117).
6. The processing equipment for manufacturing plates using waste wind power generation blades according to claim 1, wherein: The composite mechanism (3) includes a gear (31). The outer part of the gear (31) is meshed with the bottom of the central rotating shaft (204). The bottom of the gear (31) is rotatably connected with a cylindrical block (32). The bottom of the cylindrical block (32) is fixedly connected with the bottom of the inner wall of the cylindrical housing (201). The top of the gear (31) is fixedly connected with a fixed column (33). The outer part of the fixed column (33) is fixedly connected with a special-shaped paddle (34). The top of the fixed column (33) is magnetically connected with a cover plate (35).
7. The processing equipment for manufacturing plates by using waste wind power generation blades according to claim 1, characterized in that: The frame mechanism (1) includes a frame housing (11). The outer part of the frame housing (11) is fixedly connected with a frame bracket (12). One side of the outer part of the frame bracket (12) is fixedly connected with an arc track (13). An arc groove (14) is formed on the side of the arc track (13) away from the frame housing (11). The middle part of the outer part of the frame housing (11) is fixedly connected with a stabilizing mechanism (15).
8. The processing equipment for manufacturing plates using waste wind power generation blades according to claim 7, characterized in that: The stabilizing mechanism (15) includes a square plate (151). The outer part of the square plate (151) is fixedly connected with the outer part of the frame housing (11). The side of the square plate (151) away from the frame housing (11) is fixedly connected with an arc-shaped frame (152). Both sides of the outer part of the arc-shaped frame (152) are fixedly connected with runner blocks (153). The outer part of the runner block (153) is fixedly connected with a silica gel block (154). One side of the outer part of the square plate (151) is fixedly connected with a right-angle frame (155). The side of the right-angle frame (155) away from the square plate (151) is fixedly connected with the outer part of the arc-shaped frame (152).
9. A processing method for manufacturing a board using waste wind power generation blades, characterized in that, It includes the following steps: Step 1, placement. Connect the rubber hose to the one-way mechanism (211), and then send the material and glue into the processing mechanism (2). Step 2, hybrid mixing. The processing mechanism (2) is connected to the second motor (5). The frame mechanism (1) supports the processing mechanism (2). The second motor (5) drives the processing mechanism (2) to rotate to mix the glue and the material. Step 3, stirring. Stir and mix the glue and the material through the processing mechanism (2) to improve the mixing efficiency of the material. Step 4, reaction. The composite mechanism (3) stirs the material inside the processing mechanism (2) to promote the mixing reaction of the material and the glue. Step 5, taking out. After the processing mechanism (2) and the composite mechanism (3) mix the material and the glue, discharge them through the output pipe (209).