A new low-carbon environmentally friendly thermal insulation building material preparation device and preparation method
By designing a new low-carbon and environmentally friendly thermally insulated building materials preparation device, the motor-driven flip wheel and mixing rod are used to achieve full mixing of raw materials, and the hydraulic rod controls the molding and the position of the nozzle, solving the problem of uneven mixing of raw materials in the existing device, and improving production efficiency and product quality.
Patent Information
- Application Number
- CN202411974413.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2044-12-30
AI Technical Summary
Existing building materials preparation devices are difficult to meet the complex process requirements such as precise mixing, forming, and even adding additives of a variety of raw materials, resulting in uneven mixing of raw materials, affecting the performance stability of the final building materials.
A new low-carbon and environmentally friendly thermal insulation building material preparation device is designed, including feeding parts and molding parts. The turning wheels driven by the motor and the stirring rod are fully stirred and mixed, and the position of the molding plate and the nozzle is controlled by the hydraulic rod to achieve accurate molding of the material and uniform spraying of additives.
It realizes precise mixing, forming of raw materials and uniform addition of additives, improves the efficiency of the production process and product quality, and ensures high quality standards of building materials.
Smart Images

Figure CN119658834B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of building material processing, and in particular to a novel low-carbon, environmentally friendly, heat-insulating building material preparation device and a preparation method thereof. Background Art
[0002] In order to achieve energy conservation and consumption reduction in buildings, waterproofing and thermal insulation have become the most basic performance indicators of building materials. Waterproofing and thermal insulation can extend the service life of building materials and ensure the safety of construction projects. With the increasing global attention to environmental protection and energy conservation, the construction industry, as one of the main areas of energy consumption and carbon emissions, has an increasingly urgent demand for new building materials and their preparation technologies. Traditional building materials have many shortcomings in thermal insulation performance, environmental protection and energy consumption, and are difficult to meet the requirements of sustainable development of modern buildings. Therefore, a new low-carbon and environmentally friendly thermal insulation building material preparation device is designed.
[0003] Some existing preparation devices have relatively simple functions and cannot meet complex process requirements such as precise mixing and molding of multiple raw materials and uniform addition of additives. For example, some devices are unable to achieve sufficient stirring when mixing the raw materials, resulting in uneven mixing of the raw materials, which affects the performance stability of the final building materials. Summary of the Invention
[0004] The embodiments of the present disclosure relate to a novel low-carbon, environmentally friendly, heat-insulating building material preparation device and a preparation method thereof, so as to solve the problem that existing building material preparation devices are difficult to meet complex process requirements such as precise mixing and molding of multiple raw materials and uniform addition of additives.
[0005] In a first aspect, the present disclosure provides a novel low-carbon, environmentally friendly, heat-insulating building material preparation device and preparation method thereof, specifically comprising: a base frame;
[0006] The top end of the movable plate is fixed with a support base, and the top end of the movable plate is fixed with a support base, and the lower end of the movable plate is fixed with a support base through bolts. The upper end of the movable plate is fixed with a support base, and the upper end of the movable plate is fixed with a support base through bolts. The upper end of the movable plate
[0007] In at least some embodiments,
[0008] A base is fixed on the chassis, and the base is located below the forming plate. Four groups of support columns are installed on the base by bolts. A top plate is fixed to the upper ends of the four groups of support columns. A No. 1 hydraulic rod is installed on the top plate by bolts, and a support block is installed on the base by bolts. The upper end surface of the support block contacts the bottom surface of the forming plate. Two groups of guide rods are fixed on the support block. A pressure plate slides on the two groups of guide rods. The piston rod of the No. 1 hydraulic rod is fixedly connected to the upper end of the pressure plate.
[0009] In at least some embodiments,
[0010] The right end of the top plate is fixed with a plate seat No. 1 and a plate seat No. 2, two sets of rails are fixed between the plate seat No. 1 and the plate seat No. 2, and movable seats are slid on the two sets of rails. A nozzle is fixed on the movable seat, and the nozzle is connected to an external additive supply device.
[0011] In at least some embodiments,
[0012] The lower end of the No. 2 plate seat is installed with the No. 2 motor through bolts, and a pulley is fixed on the output shaft of the No. 2 motor. The lower end of the No. 1 plate seat is fixed with a welding seat, and a pulley is installed on the welding seat through a bearing. A No. 2 transmission belt is connected between the pulley on the output shaft of the No. 2 motor and the pulley on the welding seat, and the movable seat is fixedly connected to the No. 2 transmission belt.
[0013] In at least some embodiments,
[0014] A feeding part is provided on the base frame, and the feeding part includes a support plate and a flip seat. Two groups of support plates are provided, and the two groups of support plates are installed on the base frame by bolts. A slide plate is fixed on the two groups of support plates, and a tooth plate slides in the slide on the slide plate. A connecting plate is fixed on the tooth plate, and a No. 2 hydraulic rod is fixed on the slide plate. The piston rod of the No. 2 hydraulic rod is fixedly connected to the connecting plate. Connecting rods are installed on the two groups of support plates through bearings, and gears are fixed on the connecting rods. The gears on the connecting rods are meshed with the tooth plates, and the flip seat is connected to the two groups of connecting rods by bolts.
[0015] In at least some embodiments,
[0016] A mounting seat is installed on the flip seat by bolts, and two groups of No. 3 hydraulic rods are installed on the mounting seat by bolts. The upper ends of the piston rods of the two groups of No. 3 hydraulic rods are fixed with supporting plates, and the upper ends of the supporting plates are installed with feed plates by bolts. The feed plate and the flip seat are both hinged with connecting plates, and an intermediate seat is installed between the connecting plate on the feed plate and the connecting plate on the flip seat, and a vibrator is installed on the feed plate by bolts.
[0017] In at least some embodiments,
[0018] A hopper is installed on the upper end of the turning seat by bolts, and slide seats are installed on the left and right sides of the hopper by bolts. There are movable lifting plates in the slides on the two sets of slide seats, two sets of round rods are fixed between the two sets of lifting plates, and sealing plates are fixed on the two sets of round rods. A discharge port is provided at the lower end of the hopper, and the sealing plate is located below the discharge port at the lower end of the hopper.
[0019] In at least some embodiments,
[0020] Two sets of hinged arms are hinged on the silo, which are connected to the lifting plate through pins. Handles are fixed to the rear ends of the two sets of hinged arms, and two sets of wall seats are installed inside the silo through bolts.
[0021] In at least some embodiments,
[0022] A No. 3 motor is mounted on both sets of wall seats via bolts, a worm is fixed to the upper end of the output shaft of the No. 3 motor, a flip wheel is fixed to the worm, and four sets of stirring rods are mounted between the two sets of wall seats via bearings, a worm gear is fixed to the stirring rod, and the worm gear on the stirring rod is engaged with the worm on the output shaft of the No. 3 motor.
[0023] The present invention discloses a novel low-carbon, environmentally friendly, heat-insulating building material preparation device and preparation method thereof, comprising the following steps:
[0024] 1) Add the mixture of aerogel, clay, ceramic fiber, slag and cement into the silo, and run two sets of No. 3 motors to rotate the turning wheels and four sets of stirring rods to fully stir and mix the materials in the silo;
[0025] 2) Extend and retract the No. 2 hydraulic rod to tilt the conveyor plate to the right, and extend and retract two sets of No. 3 hydraulic rods to adjust the distance between the conveyor plate and the silo;
[0026] 3) Lift the handle to separate the blocking plate from the discharge port at the lower end of the silo, allowing the mixed material to fall onto the conveying plate. Operate the vibrator to transport the right side of the material to the forming groove on the forming plate.
[0027] 4) Run two sets of No. 1 motors to transport the forming plate to the right, so that the forming groove on the forming plate is directly below the pressing plate, and extend the No. 1 hydraulic rod to press the pressing plate downward to complete the material forming;
[0028] 5) After molding, continue to run the No. 1 motor to transport the molding plate to the right, and adjust the front and rear position of the nozzle by running the No. 2 motor. Spray the waterproof and fireproof additive onto the surface of the molded material through the nozzle, and dry and solidify to obtain the final product.
[0029] The present invention provides a novel low-carbon, environmentally friendly, heat-insulating building material preparation device and preparation method thereof, which has the following beneficial effects:
[0030] The present invention is provided with a feeding part and a forming part, and the material is mixed and conveyed by the feeding part. The forming plate is conveyed to the right by running two groups of No. 1 motors, so that the forming groove on the forming plate is located directly below the pressing plate, and the No. 1 hydraulic rod is extended to press the pressing plate downward to complete the material forming. The front and rear positions of the nozzle are adjusted by running the No. 2 motor, and the waterproof and fire-proof additive is sprayed onto the surface of the formed material through the nozzle, and the final product is dried and solidified, thereby realizing the precise mixing and forming of the raw materials and the uniform addition of additives, making the entire production process more efficient and accurate, while ensuring the high quality standards of the final product.
[0031] In addition, the two sets of wall seats in the present invention are firmly mounted with a No. 3 motor by bolts, a worm is fixed to the upper end of the output shaft of the No. 3 motor, and a flip wheel is fixed to the worm, and the flip wheel is designed to rotate through the driving force of the No. 3 motor. In order to achieve a wider stirring range and a more uniform mixing effect, four sets of stirring rods are installed between the two sets of wall seats through bearings. The design of the stirring rods allows them to rotate synchronously under the drive of the No. 3 motor, thereby comprehensively and deeply stirring and mixing the materials in the silo, realizing all-round stirring of the materials in the silo, which not only improves the mixing efficiency, but also ensures the uniformity of the material mixing, provides high-quality raw materials for the subsequent molding process, and lays a solid foundation for the smooth progress of the entire production process. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments are briefly introduced below.
[0033] The drawings described below only relate to some embodiments of the present invention, but are not intended to limit the present invention.
[0034] In the attached figure:
[0035] Figure 1 2 is a schematic diagram of the overall structure of a novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to an embodiment of the present invention;
[0036] Figure 2 2. It is a structural schematic diagram of a feeding component of a novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to an embodiment of the present invention;
[0037] Figure 3 2 is a schematic structural diagram of a feed plate of a novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to an embodiment of the present invention;
[0038] Figure 4 This is a new low-carbon environmentally friendly heat-insulating building material preparation device according to an embodiment of the present invention. Figure 3 Schematic diagram of the enlarged structure at A;
[0039] Figure 52 is a schematic structural diagram of a turning seat of a novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to an embodiment of the present invention;
[0040] Figure 6 2 is a schematic structural diagram of a wall base of a novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to an embodiment of the present invention;
[0041] Figure 7 2. It is a schematic structural diagram of a molded part of a novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to an embodiment of the present invention;
[0042] Figure 8 2 is a schematic structural diagram of a forming plate of a novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to an embodiment of the present invention;
[0043] Figure 9 This is a new low-carbon environmentally friendly heat-insulating building material preparation device according to an embodiment of the present invention. Figure 8 Schematic diagram of the enlarged structure at B;
[0044] Figure 10 2 is a schematic structural diagram of a base of a novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to an embodiment of the present invention;
[0045] Figure 11 This is a new low-carbon environmentally friendly heat-insulating building material preparation device according to an embodiment of the present invention. Figure 10 Schematic diagram of the enlarged structure at C.
[0046] Reference Signs List
[0047] 1. Chassis;
[0048] 2. Feeding parts; 21. Support plate; 211. Chute plate; 212. Tooth plate; 213. Connecting plate; 214. Hydraulic rod No. 2; 215. Connecting rod; 22. Turning seat; 23. Mounting seat; 231. Hydraulic rod No. 3; 232. Support plate; 24. Feed plate; 241. Connecting plate; 242. Intermediate seat; 243. Vibrator; 25. Hopper; 252. Chute seat; 2511. Lifting plate; 251. Round rod; 2512. Blocking plate; 253. Articulated arm; 254. Handle; 26. Wall seat; 261. Motor No. 3; 2611. Turning wheel; 262. Stirring rod;
[0049] 3. Molding part; 31. Track plate; 311. Rotating rod; 312. Transmission belt No. 1; 313. Movable plate; 314. Connecting seat; 315. Support seat; 32. Support rod; 33. Molding plate; 331. Molding groove; 34. Gearbox; 341. Motor No. 1; 35. Base; 351. Support column; 352. Top plate; 353. Hydraulic rod No. 1; 354. Support block; 3541. Guide rod; 355. Press plate; 36. Plate seat No. 1; 361. Welding seat; 362. Transmission belt No. 2; 363. Track rod; 364. Moving seat; 365. Sprinkler; 37. Plate seat No. 2; 371. Motor No. 2. DETAILED DESCRIPTION
[0050] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the described embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0051] Please refer to Figures 1 to 11 :
[0052] Example 1:
[0053] The present invention proposes a novel low-carbon, environmentally friendly, heat-insulating building material preparation device and preparation method thereof, comprising: a base frame 1;
[0054] The upper end of the chassis 1 is provided with a forming part 3, which includes a rail plate 31. The rail plate 31 is provided with four groups. A rotating rod 311 is connected between the two groups of rail plates 31 close to the left side of the chassis 1 and the two groups of rail plates 31 close to the right side of the chassis 1. The front and rear ends of the rotating rod 311 are fixed with pulleys. The rail plate 31 is installed with a pulley through a bearing. A No. 1 transmission belt 312 is connected between the pulley on the rail plate 31 and the pulley on the rotating rod 311. A movable plate 313 is slid on the rail plate 31. The lower end of the movable plate 313 is installed with a connecting seat 314 by bolts. The connecting seat 314 is fixed with a pulley through a bearing. The bolts are locked on the No. 1 transmission belt 312, and the upper ends of the four groups of movable plates 313 are fixed with support seats 315. The upper parts of the two groups of support seats 315 near the front side of the base frame 1 and the upper parts of the two groups of support seats 315 near the rear side of the base frame 1 are fixed with support rods 32. The two groups of support rods 32 are fixed with forming plates 33 by bolts, and the forming plates 33 are provided with forming grooves 331, and two groups of gearboxes 34 are fixed on the base frame 1 by bolts. The output shafts of the two groups of gearboxes 34 are respectively connected to the front ends of the two groups of rotating rods 311, and the No. 1 motor 341 is fixed on the two groups of gearboxes 34 by bolts.
[0055] In the embodiment of the present disclosure,
[0056] A base 35 is fixed on the underframe 1, and the base 35 is located below the forming plate 33. Four groups of support columns 351 are installed on the base 35 by bolts, and a top plate 352 is fixed to the upper ends of the four groups of support columns 351. A No. 1 hydraulic rod 353 is installed on the top plate 352 by bolts, and a support block 354 is installed on the base 35 by bolts. The upper end surface of the support block 354 contacts the bottom surface of the forming plate 33, and two groups of guide rods 3541 are fixed on the support block 354. A pressure plate 355 slides on the two groups of guide rods 3541. The piston rod of the No. 1 hydraulic rod 353 is fixedly connected to the upper end of the pressure plate 355. Its function is to extend the No. 1 hydraulic rod 353 to press the pressure plate 355 downward, and the mixture in the forming groove 331 is extruded and formed by the pressure plate 355.
[0057] In the embodiment of the present disclosure,
[0058] The right end of the top plate 352 is fixed with a plate seat 36 and a plate seat 37. Two sets of rails 363 are fixed between the plate seat 36 and the plate seat 37. A movable seat 364 is slid on the two sets of rails 363. A nozzle 365 is fixed on the movable seat 364. The nozzle 365 is connected to the external additive supply device. The lower end of the plate seat 37 is fixed with a No. 2 motor 371 by bolts. A pulley is fixed on the output shaft of the No. 2 motor 371. The lower end of the plate seat 36 is fixed with a welding seat 36 1. A pulley is installed on the welding seat 361 through a bearing. A No. 2 transmission belt 362 is connected between the pulley on the output shaft of the No. 2 motor 371 and the pulley on the welding seat 361. The movable seat 364 is fixedly connected to the No. 2 transmission belt 362. Its function is to spray the waterproof and fireproof additive onto the surface of the formed material through the nozzle 365 to improve the fireproof and waterproof performance of the material. Running the No. 2 motor 371 to operate the No. 2 transmission belt 362 can adjust the front and rear position of the nozzle 365.
[0059] In the embodiment of the present disclosure,
[0060] A feeding part 2 is provided on the base frame 1. The feeding part 2 includes a support plate 21 and a flip seat 22. Two groups of support plates 21 are provided. Both groups of support plates 21 are mounted on the base frame 1 by bolts. A slide plate 211 is fixed on both groups of support plates 21. A tooth plate 212 slides in the slide on the slide plate 211. A connecting plate 213 is fixed on the tooth plate 212. A No. 2 hydraulic rod 214 is fixed on the slide plate 211. The piston rod of the No. 2 hydraulic rod 214 is fixedly connected to the connecting plate 213. Connecting rods 215 are installed on both groups of support plates 21 through bearings. A gear is fixed on the connecting rod 215. The gear on the connecting rod 215 is meshed with the tooth plate 212. The flip seat 22 is connected to the two groups of connecting rods 215 by bolts. The mounting seat 23 has two groups of No. 3 hydraulic rods 231 installed on the mounting seat 23 by bolts, and the upper ends of the piston rods of the two groups of No. 3 hydraulic rods 231 are fixed with supporting plates 232, and the upper ends of the supporting plates 232 are installed with feed plates 24 by bolts. The feed plates 24 and the flip seat 22 are both hinged with connecting plates 241, and an intermediate seat 242 is installed between the connecting plate 241 on the feed plate 24 and the connecting plate 241 on the flip seat 22. A vibrator 243 is installed on the feed plate 24 by bolts, and its function is to: extend and retract the No. 2 hydraulic rod 214 to make the tooth plate 212 drive the connecting rod 215 to rotate, so that the feed plate 24 tilts to the right, extend and retract the two groups of No. 3 hydraulic rods 231 to adjust the distance between the feed plate 24 and the silo 25, and operate the vibrator 243 to realize material transportation.
[0061] Example 2, based on Example 1,
[0062] The upper end of the flip seat 22 is equipped with a hopper 25 by bolts, and the left and right sides of the hopper 25 are equipped with chute seats 252 by bolts. There are lifting and lowering plates 2511 in the chutes of the two sets of chute seats 252. Two sets of round rods 251 are fixed between the two sets of lifting and lowering plates 2511, and blocking plates 2512 are fixed on the two sets of round rods 251. A discharge port is provided at the lower end of the hopper 25, and the blocking plate 2512 is located below the discharge port at the lower end of the hopper 25. Two sets of hinged arms 253 are hinged on the hopper 25, and the hinged arms 253 are connected to the lifting and lowering plates 2511 by pins. The rear ends of the two sets of hinged arms 253 are fixed with handles 254. Two sets of wall seats 26 are installed inside the hopper 25 by bolts. Their function is to lift the handle 254 to separate the blocking plate 2512 from the discharge port at the lower end of the hopper 25, so that the mixed material falls onto the conveying plate 24.
[0063] Example 3, based on Example 1 and Example 2,
[0064] A No. 3 motor 261 is mounted on both sets of wall seats 26 by bolts, a worm is fixed to the upper end of the output shaft of the No. 3 motor 261, a flip wheel 2611 is fixed to the worm, and four sets of stirring rods 262 are mounted between the two sets of wall seats 26 by bearings, a worm wheel is fixed to the stirring rod 262, and the worm wheel on the stirring rod 262 is engaged with the worm on the output shaft of the No. 3 motor 261. Its function is to run the two sets of No. 3 motors 261 to rotate the flip wheel 2611 and the four sets of stirring rods 262, so that they can fully stir and mix the materials in the silo 25.
[0065] The present invention discloses a novel low-carbon, environmentally friendly, heat-insulating building material preparation device and preparation method thereof, comprising the following steps:
[0066] 1) Add the mixture of aerogel, clay, ceramic fiber, slag and cement into the silo 25, and operate the two sets of No. 3 motors 261 to rotate the turning wheels 2611 and the four sets of stirring rods 262 to fully stir and mix the materials in the silo 25;
[0067] 2) Extend the No. 2 hydraulic rod 214 to tilt the conveyor plate 24 to the right, and extend the two sets of No. 3 hydraulic rods 231 to adjust the distance between the conveyor plate 24 and the silo 25;
[0068] 3) Lift the handle 254 to separate the blocking plate 2512 from the discharge port at the lower end of the silo 25, allowing the mixed material to fall onto the conveying plate 24. Operate the vibrator 243 to transport the right side of the material into the forming groove 331 on the forming plate 33.
[0069] 4) Run the two sets of No. 1 motors 341 to move the forming plate 33 to the right, so that the forming groove 331 on the forming plate 33 is directly below the pressing plate 355, and extend the No. 1 hydraulic rod 353 to press the pressing plate 355 downward to complete the material forming;
[0070] 5) After forming, continue to operate the No. 1 motor 341 to transport the forming plate 33 to the right, and adjust the front and rear positions of the nozzle 365 by operating the No. 2 motor 371. The waterproof and fireproof additive is sprayed onto the surface of the formed material through the nozzle 365, and dried and solidified to obtain the final product.
[0071] The working principle of this embodiment is as follows: a mixture of aerogel, clay, ceramic fiber, slag and cement is added into the silo 25, two sets of No. 3 motors 261 are operated to rotate the flip wheel 2611 and the four sets of stirring rods 262 to fully stir and mix the materials in the silo 25, the No. 2 hydraulic rod 214 is extended and retracted to tilt the conveying plate 24 to the right, the two sets of No. 3 hydraulic rods 231 are extended and retracted to adjust the distance between the conveying plate 24 and the silo 25, the handle 254 is lifted to separate the blocking plate 2512 from the discharge port at the lower end of the silo 25, and the mixed materials fall onto the conveying plate 24, and the material is transported. The vibrator 243 is operated to transport the material from the right side to the molding groove 331 on the molding plate 33. Two sets of No. 1 motors 341 are operated to transport the molding plate 33 to the right side so that the molding groove 331 on the molding plate 33 is located directly below the pressing plate 355. The No. 1 hydraulic rod 353 is extended to press the pressing plate 355 downward to complete the material molding. The No. 1 motor 341 is continued to operate to transport the molding plate 33 to the right side. The front and rear positions of the nozzles 365 are adjusted by operating the No. 2 motor 371. The waterproof and fire-proof additive is sprayed onto the surface of the molded material through the nozzle 365, and the material is dried and solidified to obtain the final product.
[0072] In this article, there are several points to note:
[0073] 1. The drawings of the embodiments of the present disclosure only relate to the structures related to the embodiments of the present disclosure. Other structures may refer to conventional designs.
[0074] 2. In the absence of conflict, the embodiments of the present disclosure and the features therein may be combined with each other to form new embodiments.
[0075] The above are only specific implementation methods of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any technician familiar with this technical field can easily think of changes or replacements within the technical scope disclosed in this disclosure, and they should all be covered by the protection scope of the present disclosure.
Claims
1. A new low-carbon, environmentally friendly, thermal insulation building material preparation device, comprising: The chassis (1) is characterized in that The upper end of the base frame (1) is provided with a forming member (3), the forming member (3) includes a rail plate (31), and the rail plate (31) is provided with four groups. A rotating rod (311) is connected between two groups of rail plates (31) close to the left side of the base frame (1) and two groups of rail plates (31) close to the right side of the base frame (1). The front and rear ends of the rotating rod (311) are fixed with pulleys. A pulley is installed on the rail plate (31) through a bearing. A first transmission belt (312) is connected between the pulley on the rail plate (31) and the pulley on the rotating rod (311). A movable plate (313) is slidably provided on the rail plate (31). The lower end of the movable plate (313) is provided with a connecting seat (314) by bolts. The connecting seat (314) is fixed with a pulley. ) is locked on the No. 1 transmission belt (312) by bolts, the upper ends of the four groups of movable plates (313) are fixed with support seats (315), the upper ends of the two groups of support seats (315) close to the front side of the base frame (1) and the upper ends of the two groups of support seats (315) close to the rear side of the base frame (1) are fixed with support rods (32), and the two groups of support rods (32) are fixed with forming plates (33) by bolts, and the forming plates (33) are provided with forming grooves (331), and two groups of gearboxes (34) are fixed on the base frame (1) by bolts, and the output shafts of the two groups of gearboxes (34) are respectively connected to the front ends of the two groups of rotating rods (311), and the two groups of gearboxes (34) are fixed with No. 1 motors (341) by bolts; The base frame (1) is provided with a feeding member (2), which includes a supporting plate (21) and a turning seat (22). A hopper (25) is mounted on the upper end of the turning seat (22) by bolts. Slide seats (252) are mounted on the left and right sides of the hopper (25) by bolts. A lifting plate (2511) is movable in the slides on the two sets of slide seats (252). Two sets of round rods (2511) are fixed between the two sets of lifting plates (2511). A blocking plate (2512) is fixed on the two sets of round rods (251). A discharge port is provided at the lower end of the hopper (25). The blocking plate (2512) is located below the discharge port at the lower end of the hopper (25). Two sets of hinged hinged hinges are provided on the hopper (25). The hinged arm (253) is connected to the lifting plate (2511) through a pin shaft. The rear ends of the two sets of hinged arms (253) are fixed with handles (254). Two sets of wall seats (26) are installed inside the silo (25) through bolts. A No. 3 motor (261) is installed on both sets of wall seats (26) through bolts. A worm is fixed on the upper end of the output shaft of the No. 3 motor (261). A flip wheel (2611) is fixed on the worm. Four sets of stirring rods (262) are installed between the two sets of wall seats (26) through bearings. A worm wheel is fixed on the stirring rod (262). The worm wheel on the stirring rod (262) is engaged with the worm on the output shaft of the No. 3 motor (261).
2. A novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to claim 1, characterized in that: A base (35) is fixed on the base frame (1), and the base (35) is located below the forming plate (33). Four groups of support columns (351) are installed on the base (35) by bolts. A top plate (352) is fixed to the upper ends of the four groups of support columns (351). A No. 1 hydraulic rod (353) is installed on the top plate (352) by bolts. A support block (354) is installed on the base (35) by bolts. The upper end surface of the support block (354) contacts the bottom surface of the forming plate (33). Two groups of guide rods (3541) are fixed on the support block (354). A pressure plate (355) slides on the two groups of guide rods (3541). The piston rod of the No. 1 hydraulic rod (353) is fixedly connected to the upper end of the pressure plate (355).
3. A novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to claim 2, characterized in that: A plate seat No. 1 (36) and a plate seat No. 2 (37) are fixed to the right end of the top plate (352), two sets of rail rods (363) are fixed between the plate seat No. 1 (36) and the plate seat No. 2 (37), a movable seat (364) is slidably mounted on the two sets of rail rods (363), a nozzle (365) is fixed on the movable seat (364), and the nozzle (365) is connected to an external additive supply device.
4. A novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to claim 3, characterized in that: The lower end of the No. 2 plate seat (37) is fixed with a No. 2 motor (371) by means of bolts, a pulley is fixed on the output shaft of the No. 2 motor (371), a welding seat (361) is fixed on the lower end of the No. 1 plate seat (36), a pulley is installed on the welding seat (361) via a bearing, a No. 2 transmission belt (362) is connected between the pulley on the output shaft of the No. 2 motor (371) and the pulley on the welding seat (361), and the movable seat (364) is fixedly connected to the No. 2 transmission belt (362).
5. The novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to claim 1, characterized in that: The support plates (21) are provided with two groups. Both groups of support plates (21) are mounted on the base frame (1) by bolts. A chute plate (211) is fixed on both groups of support plates (21). A tooth plate (212) slides in the chute on the chute plate (211). A connecting plate (213) is fixed on the tooth plate (212). A second hydraulic rod (214) is fixed on the chute plate (211). The piston rod of the second hydraulic rod (214) is fixedly connected to the connecting plate (213). Connecting rods (215) are mounted on both groups of support plates (21) by bearings. A gear is fixed on the connecting rod (215). The gear on the connecting rod (215) is engaged with the tooth plate (212). The flip seat (22) is connected to the two groups of connecting rods (215) by bolts.
6. A novel low-carbon, environmentally friendly, heat-insulating building material preparation device according to claim 5, characterized in that: The turning seat (22) is mounted with a mounting seat (23) by means of bolts, and two groups of No. 3 hydraulic rods (231) are mounted on the mounting seat (23) by means of bolts. The upper ends of the piston rods of the two groups of No. 3 hydraulic rods (231) are fixed with supporting plates (232), and the upper ends of the supporting plates (232) are mounted with a feed plate (24) by means of bolts. The feed plate (24) and the turning seat (22) are both hinged with a connecting plate (241), and an intermediate seat (242) is mounted between the connecting plate (241) on the feed plate (24) and the connecting plate (241) on the turning seat (22), and a vibrator (243) is mounted on the feed plate (24) by means of bolts.
7. A method for preparing a novel low-carbon, environmentally friendly, thermal insulation building material preparation device according to any one of claims 1 to 6, characterized in that: The following steps are involved: 1) Adding a mixture of aerogel, clay, ceramic fiber, slag and cement into the silo (25), and operating two sets of No. 3 motors (261) to rotate the turning wheels (2611) and four sets of stirring rods (262) to fully stir and mix the materials in the silo (25); 2) Extending the second hydraulic rod (214) to tilt the conveying plate (24) to the right, and extending the two sets of third hydraulic rods (231) to adjust the distance between the conveying plate (24) and the silo (25); 3) Lifting the handle (254) to separate the blocking plate (2512) from the discharge port at the lower end of the hopper (25), the mixed material falls onto the conveying plate (24), and the vibrator (243) is operated to transport the material from the right side to the forming groove (331) on the forming plate (33); 4) Run two sets of No. 1 motors (341) to transport the forming plate (33) to the right, so that the forming groove (331) on the forming plate (33) is located directly below the pressing plate (355), and extend the No. 1 hydraulic rod (353) to press the pressing plate (355) downward to complete the material forming; 5) After forming, the first motor (341) is continued to operate to transport the forming plate (33) to the right, and the front and rear positions of the nozzle (365) are adjusted by operating the second motor (371). The waterproof and fireproof additive is sprayed onto the surface of the formed material through the nozzle (365), and the final product is obtained by drying and curing.
Citation Information
Patent Citations
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