Mixing and stirring device for fiber-reinforced composite daylighting tile
The mixing device for fiber-reinforced composite daylighting panels addresses adherence and cleaning issues by incorporating temperature control and dual cleaning systems, enhancing operational efficiency and ease of maintenance.
Patent Information
- Application Number
- CN202422148417.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-03
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2034-09-03
AI Technical Summary
Existing mixing devices for fiber-reinforced composite daylighting panels face issues with material adherence to internal walls, leading to reduced storage space and difficulty in cleaning due to temperature-dependent solidification and complex structures.
A mixing device with temperature control and dual cleaning mechanisms to prevent material adherence and facilitate easy cleaning, featuring a cooling system and dual cleaning systems to remove residual materials.
Effectively prevents material solidification and simplifies cleaning by controlling temperature and using dual cleaning systems to remove adhered materials, ensuring device efficiency and longevity.
Smart Images

Figure CN222920882U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of material preparation, and particularly relates to a fiber-reinforced composite daylighting tile mixing and stirring device. Background Technique
[0002] Fiber-reinforced composite daylighting tiles can effectively enhance the natural lighting effect and reduce energy consumption. The components of fiber-reinforced composite daylighting tiles include, but are not limited to, unsaturated resin, glass fiber, film, curing agent, and accelerator. They have advantages such as good corrosion resistance, heat insulation, ultraviolet resistance, and energy saving, so they are widely welcomed and applied in various fields. However, when the existing mixing device prepares the resin for daylighting tiles, the mixed material will adhere to the inner wall of the mixing device. After long-term use, excessive crusting on the inner wall of the mixing device will gradually reduce the internal storage area of the mixing device.
[0003] After retrieval, there is a resin mixing tank with the prior art publication number CN 220313826 U. In this device, a servo motor drives a threaded rod to rotate, the threaded rod drives a threaded sleeve block and an upper tank to move downward, the upper tank drives a socket shaft to move downward, and at the same time drives a limit slide plate to move upward relative to a limit chute. The socket shaft drives a stirring rod to move downward to stir and mix the resin. At the same time, a driving motor drives a driving gear to rotate, the driving gear drives a socket gear to rotate, and then drives a support shaft and a support base to rotate, thereby driving the tank body to rotate, making the resin in the tank mix more evenly. However, the external temperature will affect the solidification speed of the resin, resulting in partial solidification of the resin during the stirring process. And after taking out the mixed resin, there is still some resin adhering to the inner wall of the mixing tank and the stirring rod, and the staff needs to spend a lot of time cleaning the mixing tank and the stirring rod.
[0004] After retrieval, there is a polyester resin batching and stirring device with the prior art publication number CN 220715480 U. In this device, a lead screw assembly drives a sliding ring to move up and down, driving the distance between a slider and a driving shaft to change. The transmission module always maintains the rotational drive of the stirring shaft when the distance between the two changes, so that the distance between the stirring shaft and the driving shaft can be adjusted at any time according to the mixing situation of the raw materials during the stirring process, realizing key stirring in a certain radius area of the driving shaft. However, this device also has the problem of being difficult to clean due to its complex structure.
[0005] Therefore, a fiber-reinforced composite daylighting tile mixing and stirring device is needed, which can control the resin temperature and change the shape of the stirring device at the same time, facilitating the cleaning of the resin remaining inside the device. Summary of the Invention
[0006] The purpose of the present utility model is to overcome the deficiencies in the prior art and provide a fiber-reinforced composite daylighting tile mixing and stirring device. The present utility model cools the raw materials through the feeding device to slow down the solidification speed of the materials. At the same time, the cleaning device I and the cleaning device II cooperate to clean the materials in the mixing tank to prevent material residues from affecting the normal operation of the device.
[0007] In order to achieve the above purpose, the technical solution adopted by the present utility model is:
[0008] A fiber-reinforced composite daylighting tile mixing and stirring device, comprising a mixing tank, a feeding device, a stirring device, a cleaning device I, a cleaning device II, and a support base; a sealing cover and a plurality of electric push rods I are provided on the top of the mixing tank, and the extending ends of the electric push rods I are fixedly connected to the sealing cover; two groups of the feeding devices are provided and are respectively fixedly connected to both sides of the sealing cover; the stirring device is arranged inside the mixing tank; the cleaning device I is arranged at the bottom of the mixing tank, and the cleaning device II is arranged on the top of the mixing tank; the support base is fixedly connected to the outer wall of the mixing tank; after the raw materials are cooled in the feeding device, they enter the mixing tank, and the stirring device is started to mix the raw materials. After the mixing is completed, the electric push rod I controls the sealing cover to rise and separate from the mixing tank. At the same time, the stirring device is retracted, and the support base controls the mixing tank to tilt. Subsequently, the cleaning device I scrapes the mixed materials out of the mixing tank. When the cleaning device I reaches the top of the stirring device, the cleaning device II is controlled to scrape off the materials attached to the cleaning device I; after the support base controls the mixing tank to return to its original position, the cleaning device I is controlled to return to its original position, and finally the electric push rod I controls the sealing cover to reseal the mixing tank; the feeding device includes a cooling tank, an electric motor I, a rotating joint I, a storage tank, and a rotating joint II; a water outlet and a water inlet are respectively provided above and below the cooling tank, and the water outlet is connected to the water inlet of the cooling device through the rotating joint I, and the water inlet is connected to the water outlet of the cooling device through the rotating joint I; the storage tank is fixedly connected inside the cooling tank, the discharge port provided at the bottom of the storage tank is fixedly connected to the through hole on the sealing cover, the feeding port provided above the storage tank passes through the through hole on the cooling tank and is connected to one end of the rotating joint II, and the other end of the rotating joint II is connected to the raw material bin through a pipeline; the electric motor I is fixedly connected above the storage tank through a connecting seat, and the spiral blade arranged in the discharge port is fixedly connected to the output end of the electric motor I through a connecting shaft passing through the through hole on the top of the storage tank.
[0009] The stirring device includes a mounting base, a mounting column, a pushing block, stirring rods, a double-sided rack, and an electric motor II; the mounting base is rotatably connected to the bottom of the mixing tank, and a plurality of teeth are provided on the outer side of the limiting plate I on the mounting base; the bottom of the mounting column is fixedly connected to the mounting base, and the top is fixedly connected to the limiting plate II. A plurality of connecting blocks are fixedly connected to the limiting plate II inside the connecting groove I on the mounting column, and a pair of connecting grooves II are provided inside the mounting column; the pushing block is arranged inside the mounting base. The top of the pushing block passes through the through hole on the mounting base through a plurality of sliders and is slidably connected to the connecting groove I, and the bottom end is fixedly connected to the extending ends of a pair of electric push rods II. The cylinder bodies of the electric push rods II are fixedly connected to the mounting base through connecting seats; the double-sided rack is slidably connected to the sliders fixed in the connecting groove II. The bottom of the double-sided rack is fixedly connected to the extending end of the electric push rod III through a connecting plate, and the cylinder body of the electric push rod III is fixedly connected to the mounting base through a connecting seat; there are a plurality of stirring rods. One end of the stirring rod is rotatably connected to the connecting groove I through a connecting shaft, and one end of the connecting shaft on the stirring rod passes through the through hole on the connecting groove I and is fixedly connected to the gear meshing with one side of the double-sided rack; the electric motor II is fixedly connected to the bottom of the mixing tank through a connecting seat, and the gear on the output end of the electric motor II meshes with the teeth on the limiting plate I.
[0010] The cleaning device I includes a vacuum pump, an air pump, a scraper I, and a rotating plate; the vacuum pump and the air pump are symmetrically fixed to the bottom of the mixing tank through connecting seats. The air inlet on the vacuum pump is fixedly connected to the mixing tank through a pipeline, and the air outlet on the air pump is fixedly connected to the mixing tank through a pipeline; the scraper I is slidably connected inside the mixing tank; the inner side of the rotating plate is slidably connected to the mounting column, and the outer side is rotatably connected to the scraper I, and a card slot is provided above the rotating plate.
[0011] The cleaning device II includes a support frame I, a motor I, a scraper II, a turning plate, and a tension spring; the motor I is fixedly connected to the support frame I fixed above the mixing tank through a motor seat. The output end of the motor I passes through the through holes of the support frame I and the sealing cover through a connecting rod and is fixedly connected to the scraper II provided with pressing plates I on both sides; the connecting shafts on both sides of the turning plate pass through the through holes on the scraper II and are fixedly connected to the pressing plates II, and the tension spring is arranged between the pressing plates I and the pressing plates II along the connecting shaft on the turning plate.
[0012] The support seat includes a support frame II, a motor II, and a connecting ring; both sides of the connecting ring are rotatably connected to a pair of support frames II symmetrically fixed to both sides of the support seat through connecting shafts, and the connecting ring is fixedly connected to the outer wall of the mixing tank; the motor II is fixedly connected to one support frame II through a motor seat, and the output end of the motor II is fixedly connected to the connecting shaft on the connecting ring.
[0013] The beneficial effects of the present utility model compared with the prior art are as follows:
[0014] 1) The raw materials enter the storage bin through the feed inlet in the feeding device. At the same time, the cooling liquid circulates in the cooling box through the water inlet, water outlet and the cooling device, cooling the raw materials in the storage bin, thereby reducing the temperature of the mixed materials, slowing down the solidification speed of the materials, and preventing the materials from solidifying in the mixing box and affecting the operation of the device;
[0015] 2) The electric push rod II in the stirring device pulls down the push block, and then the electric push rod III expands and contracts, so that the double-sided rack controls the gear to drive the stirring rod to swing up and down. At the same time, the electric motor II controls the mixing box to drive the mounting column to rotate, so that the stirring rod stirs the mixed raw materials in multiple directions, accelerating the mixing rate of the raw materials; after mixing, the electric push rod III controls the stirring rod to retract into the connecting groove I again, extruding the materials in the connecting groove I. Then the electric push rod II pushes the push block upward, making the top of the push block fit the stirring rod, and extruding the materials between the push block and the stirring rod, preventing the residual materials in the connecting groove I from affecting the normal operation of the device;
[0016] 3) The electric push rod I on the mixing box controls the sealing cover to rise and separate from the mixing box, and drives the mixing box to flip through the cooperation of the motor II in the support seat and the connecting ring, pouring out the materials in the mixing box; then the air pump in the cleaning device I introduces air between the mixing box, the scraping plate I and the rotating plate, changing the pressure between the mixing box 1, the scraping plate I and the rotating plate, so that the scraping plate I and the rotating plate slide along the mounting column towards the sealing cover under the influence of the pressure and their own gravity, scraping the materials attached to the inner wall of the mixing box and the mounting column from the top of the mixing box, solving the problem that it is difficult to clean the residual materials inside the mixing box due to its excessive depth; after the limit plate II is stuck into the card slot on the rotating plate, the air pump stops supplying air, and controls the cleaning device II to scrape off the materials on the surfaces of the scraping plate I and the rotating plate; after driving the mixing box to flip and reset through the cooperation of the motor II in the support seat and the connecting ring, control the vacuum pump to extract the air between the scraping plate I and the rotating plate, changing the pressure between the mixing box and the scraping plate I and the rotating plate, so that the scraping plate I and the rotating plate slide along the mounting column towards the bottom of the mixing box under the influence of the pressure and their own gravity. After the scraping plate I and the rotating plate return to their original positions, the vacuum pump stops working;
[0017] 4) When the sealing cover separates from the mixing box, the tension spring in the cleaning device II resets, driving the flipping plate to rotate out from the scraping plate II and fit the inner wall of the mixing box. When the motor I controls the scraping plate II to rotate to clean the surfaces of the scraping plate I and the rotating plate in the cleaning device I, the flipping plate moves with the scraping plate II to clean the inner wall of the mixing box between the scraping plate I and the sealing cover, preventing the materials from remaining in the mixing box and affecting the normal use of the device. Description of the Drawings
[0018] Att Figure 1 is a schematic structural diagram of a fiber-reinforced composite daylighting tile mixing and stirring device of the present utility model;
[0019] Att Figure 2 is AttFigure 1 Schematic diagram of the internal structure of the mixing box;
[0020] Appendix Figure 3 is Appendix Figure 1 Schematic diagram of the structure of the blanking device in [the figure];
[0021] Appendix Figure 4 is Appendix Figure 1 Schematic diagram of the structure of the cleaning device II in [the figure];
[0022] Appendix Figure 5 is Appendix Figure 1 Schematic diagram of the structure of the turning plate in [the figure];
[0023] Appendix Figure 6 is Appendix Figure 1 Schematic diagram of the structure of the stirring device in [the figure];
[0024] Appendix Figure 7 is Appendix Figure 1 Schematic diagram of the internal structure of the stirring device in [the figure];
[0025] Appendix Figure 8 is Appendix Figure 1 Schematic diagram of the internal structure of the mounting column in [the figure];
[0026] In the figure: 1. Mixing box; 101. Sealing cover; 102. Electric push rod I; 2. Blanking device; 201. Cooling box; 2011. Water outlet; 2012. Water inlet; 202. Electric motor I; 2021. Spiral blade; 203. Rotating joint I; 204. Storage bin; 2041. Feed inlet; 2042. Discharge outlet; 205. Rotating joint II; 3. Stirring device; 301. Mounting seat; 3011. Limiting plate I; 302. Mounting column; 3021. Limiting plate II; 3022. Connecting block; 3023. Connecting groove I; 3024. Connecting groove II; 303. Pusher block; 3031. Electric push rod II; 304. Stirring rod; 3041. Gear; 305. Double-sided rack; 3051. Electric push rod III; 306. Electric motor II; 4. Cleaning device I; 401. Vacuum pump; 402. Air pump; 403. Scraper I; 404. Rotating plate; 5. Cleaning device II; 501. Support frame I; 502. Motor I; 5021. Connecting rod; 503. Scraper II; 5031. Extrusion plate I; 504. Turning plate; 5041. Extrusion plate II; 505. Tension spring; 6. Support seat; 601. Support frame II; 602. Motor II; 603. Connecting ring. Specific embodiments
[0027] For the convenience of those skilled in the art to understand, the technical solutions of the present invention will be further specifically described below in conjunction with the appendix Figure 1-8 , and the technical solutions of the present invention will be further specifically described below.
[0028] A fiber-reinforced composite daylighting tile mixing device, comprising a mixing tank 1, a feeding device 2, a stirring device 3, a cleaning device I 4, a cleaning device II 5, and a support base 6; a sealing cover 101 and a plurality of electric push rods I 102 are provided at the top of the mixing tank 1, and the extending end of the electric push rod I 102 is fixedly connected to the sealing cover 101; two groups of the feeding devices 2 are provided and are respectively fixedly connected to both sides of the sealing cover 101; the stirring device 3 is arranged inside the mixing tank 1; the cleaning device I 4 is arranged at the bottom of the mixing tank 1, and the cleaning device II 5 is arranged at the top of the mixing tank 1; the support base 6 is fixedly connected to the outer wall of the mixing tank 1;
[0029] The raw materials enter the mixing tank 1 after being cooled in the feeding device 2, and the stirring device 3 is activated to mix the raw materials. After the mixing is completed, the electric push rod I 102 controls the sealing cover 101 to rise away from the mixing tank 1. At the same time, the stirring device 3 is retracted, and the support base 6 controls the mixing tank 1 to tilt. Subsequently, the cleaning device I 4 scrapes the mixed materials out of the mixing tank 1. After the cleaning device I 4 reaches the top of the stirring device 3, the cleaning device II 5 is controlled to scrape off the materials adhering to the cleaning device I 4; after the support base 6 controls the mixing tank 1 to reset, the cleaning device I 4 is then controlled to reset, and finally the electric push rod I 102 controls the sealing cover 101 to reseal the mixing tank 1.
[0030] The feeding device 2 includes a cooling tank 201, an electric motor I 202, a rotary joint I 203, a storage tank 204, and a rotary joint II 205; a water outlet 2011 and a water inlet 2012 are respectively provided above and below the cooling tank 201, and the water outlet 2011 is connected to the water inlet of the cooling device through the rotary joint I 203, and the water inlet 2012 is connected to the water outlet of the cooling device through the rotary joint I 203; the storage tank 204 is fixedly connected inside the cooling tank 201, the discharge port 2042 provided at the bottom of the storage tank 204 is fixedly connected to the through hole on the sealing cover 101, the feeding port 2041 provided above the storage tank 204 passes through the through hole on the cooling tank 201 and is connected to one end of the rotary joint II 205, and the other end of the rotary joint II 205 is connected to the raw material bin through a pipeline; the electric motor I 202 is fixedly connected above the storage tank 204 through a connecting seat, and the spiral blade 2021 provided in the discharge port 2042 is fixedly connected to the output end of the electric motor I 202 through a connecting shaft passing through the through hole at the top of the storage tank 204; the raw materials enter the storage tank 204 through the feeding port 2041. At the same time, the coolant circulates in the cooling tank 201 through the water inlet 2012, the water outlet 2011, and the cooling device to cool the raw materials in the storage tank 204, thereby reducing the temperature of the mixed materials, slowing down the solidification speed of the materials, and preventing the materials from solidifying in the mixing tank 1 and affecting the operation of the device; subsequently, the electric motor I 202 and the spiral blade 2021 cooperate to send the raw materials into the mixing tank 1 through the discharge port 2042.
[0031] The stirring device 3 includes a mounting base 301, a mounting column 302, a pushing block 303, stirring rods 304, a double-sided rack 305, and an electric motor II 306; the mounting base 301 is rotatably connected to the bottom of the mixing tank 1, and a number of teeth are provided on the outer side of the limiting plate I 3011 on the mounting base 301; the bottom of the mounting column 302 is fixedly connected to the mounting base 301, and the top is fixedly connected to the limiting plate II 3021. A number of connecting blocks 3022 are fixedly connected to the limiting plate II 3021 inside the connecting groove I 3023 on the mounting column 302, and a pair of connecting grooves II 3024 are provided inside the mounting column 302; the pushing block 303 is arranged inside the mounting base 301. The top of the pushing block 303 is slidably connected to the connecting groove I 3023 through a number of sliders passing through the through holes on the mounting base 301, and the bottom end is fixedly connected to the extending ends of a pair of electric push rods II 3031. The cylinder bodies of the electric push rods II 3031 are fixedly connected to the mounting base 301 through connecting seats; the double-sided rack 305 is slidably connected to the sliders fixed in the connecting groove II 3024. The bottom of the double-sided rack 305 is fixedly connected to the extending end of an electric push rod III 3051 through a connecting plate, and the cylinder body of the electric push rod III 3051 is fixedly connected to the mounting base 301 through a connecting seat; a number of stirring rods 304 are provided. One end of each stirring rod 304 is rotatably connected to the connecting groove I 3023 through a connecting shaft, and one end of the connecting shaft on the stirring rod 304 passes through the through hole on the connecting groove I 3023 and is fixedly connected to a gear 3041 meshing with one side of the double-sided rack 305; the electric motor II 306 is fixedly connected to the bottom of the mixing tank 1 through a connecting seat, and the gear on the output end of the electric motor II 306 meshes with the teeth on the limiting plate I 3011;
[0032] The electric push rod II 3031 pulls the pushing block 303 downward. Subsequently, the electric push rod III 3051 expands and contracts, enabling the double-sided rack 305 to control the gear 3041 to drive the stirring rod 304 to swing up and down. At the same time, the electric motor II 306 controls the mixing tank 1 to drive the mounting column 302 to rotate, thereby enabling the stirring rod 304 to stir the mixed raw materials in multiple directions and accelerating the raw material mixing rate; after the mixing is completed, the electric push rod III 3051 controls the stirring rod 304 to retract into the connecting groove I 3023 again, extruding the materials in the connecting groove I 3023. Subsequently, the electric push rod II 3031 pushes the pushing block 303 upward, making the top of the pushing block 303 fit the stirring rod 304, and extruding the materials between the pushing block 303 and the stirring rod 304 to prevent the residual materials in the connecting groove I 3023 from affecting the normal operation of the device.
[0033] The cleaning device I 4 includes a vacuum pump 401, an air pump 402, a scraper I 403, and a rotating plate 404; the vacuum pump 401 and the air pump 402 are symmetrically fixed at the bottom of the mixing tank 1 through a connecting seat, and the air inlet on the vacuum pump 401 is fixedly connected to the mixing tank 1 through a pipeline, and the air outlet on the air pump 402 is fixedly connected to the mixing tank 1 through a pipeline; the scraper I 403 is slidably connected in the mixing tank 1; the inner side of the rotating plate 404 is slidably connected to the mounting column 302, the outer side is rotatably connected to the scraper I 403, and a card slot is provided above the rotating plate 404;
[0034] The electric push rod I 102 controls the sealing cover 101 to rise and separate from the mixing tank 1, and controls the mixing tank 1 to tilt through the support seat 6 to pour out the materials in the mixing tank 1; then the air pump 402 passes air between the mixing tank 1 and the scraper I 403 and the rotating plate 404 to change the pressure between the mixing tank 1 and the scraper I 403 and the rotating plate 404, so that the scraper I 403 and the rotating plate 404 slide along the mounting column 302 towards the sealing cover 101 under the influence of pressure and their own gravity, and scrape the materials attached to the inner wall of the mixing tank 1 and the mounting column 302 from the top of the mixing tank 1, solving the problem that it is difficult to clean the deep mixing tank 1 and the residual materials inside; after the limiting plate II 3021 is inserted into the card slot on the rotating plate 404, the air pump 402 stops supplying air, and controls the cleaning device II 5 to scrape off the materials on the surfaces of the scraper I 403 and the rotating plate 404; after controlling the mixing tank 1 to reset through the support seat 6, control the vacuum pump 401 to pump out the air between the scraper I 403 and the rotating plate 404, change the pressure between the mixing tank 1 and the scraper I 403 and the rotating plate 404, so that the scraper I 403 and the rotating plate 404 slide along the mounting column 302 towards the bottom of the mixing tank 1 under the influence of pressure and their own gravity, and the vacuum pump 401 stops working until the scraper I 403 and the rotating plate 404 return to their original positions.
[0035] The cleaning device II 5 includes a support frame I 501, a motor I 502, a scraper II 503, a turning plate 504, and a tension spring 505. The motor I 502 is fixedly connected to the support frame I 501 fixed above the mixing tank 1 through a motor base. The output end of the motor I 502 passes through the through holes in the support frame I 501 and the sealing cover 101 through a connecting rod 5021 and is fixedly connected to the scraper II 503 with extrusion plates I 5031 provided on both sides. The connecting shafts on both sides of the turning plate 504 pass through the through holes in the scraper II 503 and are fixedly connected to the extrusion plates II 5041. The tension spring 505 is arranged along the connecting shaft on the turning plate 504 between the extrusion plate I 5031 and the extrusion plate II 5041. When the sealing cover 101 is separated from the mixing tank 1, the tension spring 505 resets, thereby driving the turning plate 504 to rotate out of the scraper II 503 and fit against the inner wall of the mixing tank 1. When the motor I 502 controls the scraper II 503 to rotate to clean the surfaces of the scraper I 403 and the rotating plate 404, the turning plate 504 moves along with the scraper II 503 to clean the inner wall of the mixing tank 1 between the scraper I 403 and the sealing cover 101, preventing materials from remaining in the mixing tank 1 and affecting the normal use of the device.
[0036] The support base 6 is provided with a support frame II 601, a motor II 602, and a connecting ring 603. The two sides of the connecting ring 603 are rotationally connected to a pair of support frames II 601 symmetrically fixed on both sides of the support base 6 through connecting shafts, and the connecting ring 603 is fixedly connected to the outer wall of the mixing tank 1. The motor II 602 is fixedly connected to one support frame II 601 through a motor base, and the output end of the motor II 602 is fixedly connected to the connecting shaft on the connecting ring 603. The motor II 602 and the connecting ring 603 cooperate to drive the mixing tank 1 to flip, facilitating the pouring out of the materials in the mixing tank 1.
[0037] A fiber-reinforced composite daylighting tile mixing and stirring device has the following working process:
[0038] Raw materials enter the storage tank 204 through the feed inlet 2041 in the feeding device 2 for temperature reduction treatment. At the same time, the electric motor I 202 and the spiral blade 2021 cooperate to send the raw materials from the discharge port 2042 into the mixing tank 1. Subsequently, the electric push rod II 3031 in the stirring device 3 pulls down the push block 303, and the electric push rod III 3051 and the double-sided rack 305 cooperate to control the gear 3041 to drive the stirring rod 304 to swing up and down. At the same time, the electric motor II 306 controls the mixing tank 1 to drive the mounting column 302 to rotate, enabling the stirring rod 304 to stir the mixed raw materials in multiple directions.
[0039] After mixing is completed, the electric push rod III 3051 controls the stirring rod 304 to reset, and the electric push rod II 3031 controls the push block 303 to reset. Subsequently, the electric push rod I 102 controls the sealing cover 101 to rise and separate from the mixing tank 1, and the mixing tank 1 is tilted through the support base 6 to pour out the materials in the mixing tank 1. Subsequently, the air pump 402 in the cleaning device I 4 is used to introduce air between the mixing tank 1, the scraping plate I 403, and the rotating plate 404, changing the pressure between the mixing tank 1, the scraping plate I 403, and the rotating plate 404. As a result, under the influence of pressure and its own gravity, the scraping plate I 403 and the rotating plate 404 slide along the mounting column 302 towards the sealing cover 101, scraping the materials adhering to the inner wall of the mixing tank 1 and the mounting column 302 from the top of the mixing tank 1. After the limiting plate II 3021 is inserted into the card slot on the rotating plate 404, the air pump 402 stops supplying air and controls the cleaning device II 5 to scrape off the materials on the surfaces of the scraping plate I 403 and the rotating plate 404. After the mixing tank 1 is reset through the support base 6, the vacuum pump 401 is controlled to extract the air between the scraping plate I 403 and the rotating plate 404, changing the pressure between the mixing tank 1, the scraping plate I 403, and the rotating plate 404. As a result, under the influence of pressure and its own gravity, the scraping plate I 403 and the rotating plate 404 slide along the mounting column 302 towards the bottom of the mixing tank 1. When the scraping plate I 403 and the rotating plate 404 return to their original positions, the vacuum pump 401 stops working. Finally, the electric push rod I 102 controls the sealing cover 101 to reseal the mixing tank 1.
[0040] In summary, electronic or electrical components including but not limited to motors, electric motors, air pumps, vacuum pumps, and electric push rods are components in the prior art, obtained through private customization or purchase. The electrical connections between the components are all conventional circuit connections or electrical connections in the prior art and are not within the protection scope of the present utility model.
[0041] The above content is only an example and explanation of the structure of the present utility model. Those skilled in the art of this technology can make various modifications, supplements, or use similar methods to replace the specific embodiments described. As long as they do not deviate from the structure of the utility model or exceed the scope defined by this claim book, they should all fall within the protection scope of the present utility model.
Claims
1. A fiber-reinforced composite skylight tile mixing and stirring device, comprising a mixing box, a feeding device, a stirring device, a cleaning device I, a cleaning device II, and a support seat; a sealing cover and a plurality of electric push rods I are provided on the top of the mixing box, and the extended end of the electric push rod I is fixedly connected to the sealing cover; the feeding device is provided with two groups, which are respectively fixedly connected to both sides of the sealing cover; the stirring device is provided on the inner side of the mixing box; the cleaning device I is provided at the bottom of the mixing box, and the cleaning device II is provided at the top of the mixing box; the support seat is fixedly connected to the outer wall of the mixing box; Features The unloading device includes a cooling box, an electric motor I, a rotating joint I, a storage box, and a rotating joint II; a water outlet and a water inlet are respectively provided on the top and bottom of the cooling box, and the water outlet is connected to the water inlet of the cooling device through the rotating joint I, and the water inlet is connected to the water outlet of the cooling device through the rotating joint I; the storage box is fixedly connected to the inner side of the cooling box, the discharge port provided at the bottom of the storage box is fixedly connected to the through hole on the sealing cover, the feed port provided at the top of the storage box is connected to one end of the rotating joint II through the through hole on the cooling box, and the other end of the rotating joint II is connected to the raw material bin through a pipeline; the electric motor I is fixedly connected to the top of the storage box through a connecting seat, and the spiral blade provided in the discharge port is fixedly connected to the output end of the electric motor I through the through hole on the top of the storage box through a connecting shaft.
2. A fiber reinforced composite lighting tile mixing and stirring device according to claim 1, characterized in that The stirring device includes a mounting seat, a mounting column, a push block, a stirring rod, a double-sided rack, and an electric motor II; the mounting seat is rotatably connected to the bottom of the mixing box, and a plurality of gear teeth are provided on the outer side of the limit plate I on the mounting seat; the bottom of the mounting column is fixedly connected to the mounting seat, and the top is fixedly connected to the limit plate II, a plurality of connecting blocks are located inside the connecting groove I on the mounting column and are fixedly connected to the limit plate II, and a pair of connecting grooves II are provided inside the mounting column; the push block is arranged inside the mounting seat, and the top of the push block is slidably connected to the connecting groove I through the through holes on the mounting seat through a plurality of sliders, and the bottom end is fixedly connected to the extended ends of a pair of electric push rods II, and the electric push rods II The cylinder body is fixedly connected to the mounting seat through a connecting seat; the double-sided rack is slidably connected to the slider fixed in the connecting groove II, the bottom of the double-sided rack is fixedly connected to the extended end of the electric push rod III through a connecting plate, and the cylinder body of the electric push rod III is fixedly connected to the mounting seat through a connecting seat; the stirring rod is provided with a plurality of stirring rods, one end of the stirring rod is rotatably connected to the connecting groove I through a connecting shaft, and one end of the connecting shaft on the stirring rod passes through a through hole on the connecting groove I and is fixedly connected to a gear meshed with one side of the double-sided rack; the electric motor II is fixedly connected to the bottom of the mixing box through a connecting seat, and the gear on the output end of the electric motor II meshes with the gear teeth on the limit plate I.
3. The fiber-reinforced composite skylight tile mixing and stirring device according to claim 1, characterized in that The cleaning device I comprises a vacuum pump, an air pump, a scraper I and a rotating plate; the vacuum pump and the air pump are symmetrically fixed to the bottom of the mixing box through a connecting seat, and the air inlet on the vacuum pump is fixedly connected to the mixing box through a pipeline, and the air outlet on the air pump is fixedly connected to the mixing box through a pipeline; the scraper I is slidably connected in the mixing box; the inner side of the rotating plate is slidably connected to the mounting column, and the outer side is rotatably connected to the scraper I, and a slot is provided above the rotating plate.
4. The fiber-reinforced composite skylight tile mixing and stirring device according to claim 1, characterized in that The cleaning device II includes a support frame I, a motor I, a scraper II, a flip plate, and a tension spring; the motor I is fixedly connected to the support frame I fixedly connected to the top of the mixing box through a motor seat, and the output end of the motor I is fixedly connected to the scraper II with extrusion plates I on both sides through a connecting rod passing through the through holes on the support frame I and the sealing cover; the connecting shafts on both sides of the flip plate pass through the through holes on the scraper II and are fixedly connected to the extrusion plate II, and the tension spring is arranged between the extrusion plate I and the extrusion plate II along the connecting shaft on the flip plate.
5. The fiber-reinforced composite skylight tile mixing and stirring device according to claim 1, characterized in that The support seat is provided with a support frame II, a motor II and a connecting ring; the two sides of the connecting ring are rotatably connected to a pair of support frames II symmetrically fixed on both sides of the support seat through connecting shafts, and the connecting ring is fixedly connected to the outer wall of the mixing box; the motor II is fixedly connected to a support frame II through a motor seat, and the output end of the motor II is fixedly connected to the connecting shaft on the connecting ring.
Citation Information
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