An aerogel automatic production line
By using hot air preheater, microwave curing modification device and hot air drying assembly design in the aerogel automatic production line, combined with an electric telescopic rod and a drive motor to drive the aerogel plate to rotate 360 degrees, the problem of uneven heat receiving of aerogel in the hot air drying step is solved, and uniform heating and efficient production of aerogel are achieved.
Patent Information
- Application Number
- CN202411902455.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-23
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2044-12-23
AI Technical Summary
In the existing aerogel production line, the hot air drying step causes uneven heat to the upper and lower ends of the aerogel, resulting in uneven drying, affecting the pore structure and thermal stability, and reducing the qualification rate of the finished product.
An automatic aerogel production line is designed, using hot air preheater, microwave curing modification device and hot air drying assembly. The aerogel plate is driven to rotate 360 degrees through an electric telescopic rod and a drive motor. Combined with the linkage effect of the sealing component and the separation component, the uniform heating of the aerogel by hot air is achieved.
Through uniform heating, changes in the aerogel pore structure are avoided, the pass rate of finished aerogels is improved, and the service life of hot air drying components is extended, and the generation efficiency of aerogel plates is improved.
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Figure CN119353907B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of aerogels, and more particularly to an automatic aerogel production line. Background Art
[0002] Aerogel is a form of solid matter with a density of 3 kilograms per cubic meter. The most common aerogel is silica aerogel, and there are many types of aerogels, including silicon-based, carbon-based, sulfur-based, metal oxide-based, and metal-based.
[0003] The hot air drying step currently used in the aerogel production process mainly uses an air heater to deliver hot air to the drying chamber, and then places the aerogel on a conveyor belt. When the conveyor belt passes through the drying chamber, the hot air in the drying chamber is used to dry the aerogel. However, this will cause uneven heating at the upper and lower ends of the aerogel and uneven drying of the aerogel, which will affect the changes in the pore structure of the aerogel, and then affect the thermal stability of the aerogel, and finally reduce the qualified rate of the finished aerogel. Summary of the invention
[0004] The object of the present invention is to provide an aerogel automatic production line to solve the problems raised in the above background technology.
[0005] An aerogel automatic production line comprises a hot air preheater, one end of the hot air preheater is connected to a first microwave curing and modifying device, one end of the first microwave curing and modifying device is connected to a second microwave curing and modifying device, and one end of the second microwave curing and modifying device is connected to a hot air drying component;
[0006] The hot air drying component includes an air heater, one end of the air heater is connected to an air supply pipe, the end of the air supply pipe away from the air heater is connected to a drying chamber, one end of the drying chamber is provided with a feed port, and the end of the drying chamber away from the feed port is provided with a discharge port, a shutter is connected above the end of the drying chamber close to the air supply pipe, the front and rear ends of the inner cavity of the drying chamber are connected to drying components, the two ends of each of the drying components are connected to a feeding component, the top of each of the feeding components is connected to a sealing component, and the inner cavity of the drying chamber is provided with a drying chamber, and sealing slides are provided at the left and right ends of the drying chamber, an air supply port is provided below one end of the drying chamber close to the air supply pipe, and an air outlet is provided above one end of the drying chamber close to the air supply pipe, the air supply port is connected to the air supply pipe, and the shutter is installed in the inner cavity of the air outlet.
[0007] Preferably, the drying component includes a first driving motor, a first connecting groove is provided at the output end of the first driving motor, first rectangular connecting blocks are connected to the upper and lower ends of the inner cavity of the first connecting groove, and rectangular guide blocks are connected to the two ends of the first driving motor, electric telescopic rods are connected to both sides of the end of the rectangular guide block close to the first driving motor, the end of the rectangular guide block connected close to one end of the second microwave curing and modification device is connected to the clamping component at the end away from the first driving motor, and a first rectangular slide groove is provided below the end of the rectangular guide block away from the first driving motor, and a second rectangular slide groove is provided above the end of the rectangular guide block away from the first driving motor, the first driving motor is fixed in the inner cavity of the drying cavity, a third rectangular slide groove is provided at the junction of the drying cavity and the drying component, and the drying component is installed in the inner cavity of the third rectangular slide groove, and the first connecting groove is provided with an inlet at one end facing the clamping component.
[0008] Preferably, the clamping assembly includes a movable frame, the lower end surface of the movable frame is connected to a first rack, the lower end inner cavity of the movable frame is connected to a second drive motor, the output end of the second drive motor is connected to a first rotating belt, the two ends of the first rotating belt are connected to a first threaded rod, and the second clamping plate and the movable frame are both rotatably connected to the first threaded rod.
[0009] Preferably, a first clamping plate is sleeved on the outer side of the upper end of the first threaded rod, a second clamping plate is connected to the bottom of the first clamping plate, and a first sliding block is connected to the upper surface of one end of the movable frame close to the rectangular guide block, a first connecting block is connected to the bottom of the first sliding block, and the initial position of the first sliding block is located in the inner cavity of the second rectangular slide groove, and the first connecting block is installed in the inner cavity of the first rectangular slide groove, and the first connecting block as a whole is composed of a circular connecting block and a second rectangular connecting block connected at both ends of the circular connecting block, and the first connecting block fits in the first connecting groove.
[0010] Preferably, the feeding assembly includes a third driving motor, the output end of the third driving motor is connected to a rotating roller, the outer surface of the rotating roller is sleeved with a conveyor belt, and the outer sides of both ends of the rotating roller are sleeved with a second rotating belt, the end of the second rotating belt away from the third driving motor is connected to a separation assembly, and both ends of the conveyor belt are sleeved with rotating rollers, and the upper end surface of the conveyor belt is in the same horizontal plane as the lower end surfaces of the feed port and the discharge port.
[0011] Preferably, the separation component includes a fourth driving motor, the output end of the fourth driving motor is sleeved with a third rotating belt, and the end of the fourth driving component output end away from the third rotating belt is connected to a ratchet, the outer side of the ratchet is connected with a pawl, the end of the pawl away from the third rotating belt is connected to a circular rotating block, the end of the circular rotating block away from the fourth driving motor is connected to a second threaded rod, the end of the second threaded rod away from the circular rotating block is connected to a circular telescopic rod, the outer side of an end of the circular telescopic rod close to the second threaded rod is connected to the first rotating wheel, and the end of the circular telescopic rod away from the second threaded rod is connected to the first gear, and the end of the pawl away from the ratchet is connected to an annular connecting block, the annular connecting block is fixedly connected to the circular rotating block, when the ratchet rotates clockwise, the pawl remains stationary, if the ratchet rotates counterclockwise, the pawl rotates counterclockwise, and the inner cavity of the first rotating wheel is provided with a second connecting groove, the side of the end of the circular telescopic rod close to the second threaded rod is connected to the third rectangular connecting block, and the third rectangular connecting block fits with the second connecting groove.
[0012] Preferably, the sealing assembly includes a rectangular sealing plate, and second racks are connected to the two side surfaces of one end of the rectangular sealing plate facing the drying assembly, and each of the second racks is meshed with a second gear at one end away from the rectangular sealing plate, and a fourth rotating belt is sleeved on the end of the second gear away from the second rack, and a circular rotating rod is connected to the end of the fourth rotating belt away from the second gear, and the rectangular sealing plate is installed in the inner cavity of the sealing slide groove, and when the rectangular sealing plate contacts the inner cavity at the lower end of the sealing slide groove, the rectangular sealing plate performs a sealing operation on the feed port and the discharge port.
[0013] Preferably, the first gear is meshed with the first rack, the end of the second rotating belt away from the third drive motor is sleeved on the outer surface of the first rotating wheel, and the end of the third rotating belt away from the fourth drive motor is sleeved on the outer surface of the circular rotating rod.
[0014] Compared with the prior art, the present invention has the following beneficial effects:
[0015] 1. In the present invention, by starting the fourth drive motor, the rectangular sealing plate will seal the feed port and the discharge port, so that the drying chamber is in a sealed state, and the first gear is separated from the drying component, and then the rectangular guide block is separated from the drying component by the electric telescopic rod, and finally the aerogel plate is driven by the first drive motor to rotate 360 degrees, so that the separation component, the sealing component and the drying component have a linkage effect, and the aerogel plate rotates 360 degrees in the drying chamber, so that the hot air delivered by the air outlet opened at the lower end of the drying chamber will evenly heat all surfaces of the aerogel plate, thereby avoiding changes in the pore structure of the aerogel plate, thereby improving the qualified rate of the finished aerogel.
[0016] 2. In the present invention, by starting the fourth driving motor, the rectangular sealing plate will seal the feed port and the discharge port, so that the drying chamber is in a sealed state, and the hot air generated by the air heater is transported to the drying chamber through the hot air port below. At this time, the hot air will dry the rotating aerogel plate from bottom to top. When the gas sealing in the drying chamber reaches a certain value, the excess gas will be transported to the outside through the shutters. When the hot air thrust in the drying chamber is less than the reset force of the shutters, the air outlet will be sealed, thereby preventing tiny particles in the outside air from falling into the inner cavity of the drying chamber. This can increase the service life of the hot air drying component and thereby improve the generation efficiency of the aerogel plate.
[0017] 3. In the present invention, starting the third driving motor will drive the rotating roller and the second rotating belt to rotate, and the rotating roller will drive the aerogel plate to move to the drying chamber, and the rotation of the second rotating belt will drive the clamping assembly to move toward the direction of the first driving motor. When the aerogel plate is separated from the conveyor belt, the two clamping plates will be located in the middle part of the aerogel, and the aerogel plate will be clamped and fixed, which will cause the feeding assembly and the clamping assembly to produce a linkage effect. After the aerogel plate is clamped and fixed, the fourth driving motor is started to drive the rectangular sealing plate to seal the drying chamber, and the first gear is separated from the clamping assembly, which will cause the feeding assembly, the clamping assembly, the separation assembly, the sealing assembly and the drying assembly to produce a multiple linkage effect, thereby reducing the time required for coordination between the various steps, thereby improving the generation efficiency of the aerogel plate. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of the overall structure of the present invention.
[0019] Figure 2 It is a schematic diagram of the structure of the hot air drying component of the present invention.
[0020] Figure 3 It is a schematic diagram of the internal structure of the hot air drying component of the present invention.
[0021] Figure 4 It is a schematic diagram of the cross-sectional structure of the hot air drying component of the present invention.
[0022] Figure 5 It is a partial structural schematic diagram of the hot air drying component of the present invention.
[0023] Figure 6 It is a schematic diagram of the structure of the drying component of the present invention.
[0024] Figure 7 It is a schematic diagram of the structure of the clamping assembly of the present invention.
[0025] Figure 8 It is a schematic diagram of the rear view structure of the clamping assembly of the present invention.
[0026] Fig. 9 It is a schematic diagram of the structure of the feeding component of the present invention.
[0027] Fig.10 It is a schematic diagram of the separation component structure of the present invention.
[0028] Fig.11 It is a schematic diagram of the sealing assembly structure of the present invention.
[0029] Explanation of the reference numerals in the figure: 1, hot air preheater; 2, first microwave curing and modifying device; 3, second microwave curing and modifying device; 4, hot air drying assembly; 401, air heater; 402, air duct; 403, drying chamber; 404, feed inlet; 405, discharge outlet; 406, shutter; 407, drying assembly; 408, feeding assembly; 409, sealing assembly; 410, first driving motor; 411, first connecting groove; 412, first rectangular connecting block; 413, rectangular guide block; 414, electric telescopic rod; 415, clamping assembly; 416, moving frame; 417, first rack; 418, second driving motor; 419, first rotating belt; 420, first threaded rod; 421, first clamping plate; 422, second clamping plate; 423, first sliding block; 424, first connecting block; 425, third driving motor; 426, conveyor belt; 427, rotating roller; 428, second rotating belt; 429, separation assembly; 430, fourth driving motor; 431, third rotating belt; 432, ratchet; 433, pawl; 434, circular rotating block; 435, second threaded rod; 436, circular telescopic rod; 437, first rotating wheel; 438, rectangular sealing plate; 439, second rack; 440, second gear; 441, fourth rotating belt; 442, circular rotating rod; 443, first gear. DETAILED DESCRIPTION
[0030] Example: See Figure 1 , an aerogel automatic production line, comprising a hot air preheater 1, one end of the hot air preheater 1 is connected to a first microwave curing and modifying device 2, one end of the first microwave curing and modifying device 2 is connected to a second microwave curing and modifying device 3, one end of the second microwave curing and modifying device 3 is connected to a hot air drying component 4, and the first microwave curing and modifying device 2 adopts a 915HZ microwave curing and modifying device, and the second microwave curing and modifying device adopts a 2450HZ microwave curing and modifying device;
[0031] See also Figure 2 , Figure 3 , Figure 4 and Figure 5The hot air drying component 4 includes an air heater 401, one end of the air heater 401 is connected to an air delivery pipe 402, the end of the air delivery pipe 402 away from the air heater 401 is connected to a drying chamber 403, one end of the drying chamber 403 is provided with a feed inlet 404, and the end of the drying chamber 403 away from the feed inlet 404 is provided with a discharge port 405, a shutter 406 is connected above the end of the drying chamber 403 close to the air delivery pipe 402, and the front and rear ends of the inner cavity of the drying chamber 403 are connected to the drying component 4 07, each drying component 407 is connected to a feeding component 408 at both ends, each feeding component 408 is connected to a sealing component 409 above, and a drying cavity is provided in the inner cavity of the drying cavity 403, and sealing slide grooves are provided at the left and right ends of the drying cavity, an air supply port is provided below one end of the drying cavity 403 near the air supply pipe 402, and an air outlet is provided above one end of the drying cavity 403 near the air supply pipe 402, the air supply port is connected to the air supply pipe 402, and the shutter 406 is installed in the inner cavity of the air outlet.
[0032] See also Figure 6 The drying component 407 includes a first driving motor 410, and a first connecting groove 411 is provided at the output end of the first driving motor 410. The first connecting groove 411 has first rectangular connecting blocks 412 connected to the upper and lower ends of the inner cavity, and the first driving motor 410 has rectangular guide blocks 413 connected to the two ends. The rectangular guide blocks 413 are connected to the electric telescopic rods 414 at both sides of the end close to the first driving motor 410, and the rectangular guide blocks 413 connected to the end close to the second microwave curing and modifying device 3 are connected to the end away from the first driving motor 410. There is a clamping component 415, and a first rectangular slide groove is opened below the end of the rectangular guide block 413 away from the first drive motor 410, and a second rectangular slide groove is opened above the end of the rectangular guide block 413 away from the first drive motor 410. The first drive motor 410 is fixed in the inner cavity of the drying chamber 403, and a third rectangular slide groove is opened at the junction of the drying chamber 403 and the drying component 407, and the drying component 407 is installed in the inner cavity of the third rectangular slide groove. The first connecting groove 411 has an inlet opened at one end of the clamping component 415.
[0033] See also Figure 7 and Figure 8 The clamping assembly 415 includes a moving frame 416, a first rack 417 is connected to the lower end surface of the moving frame 416, a second driving motor 418 is connected to the lower end inner cavity of the moving frame 416, an output end of the second driving motor 418 is connected to a first rotating belt 419, both ends of the first rotating belt 419 are connected to a first threaded rod 420, and the second clamping plate 422 and the moving frame 416 are both rotatably connected to the first threaded rod 420.
[0034] See also Figure 7 and Figure 8The first threaded rod 420 is sleeved with a first clamping plate 421 on the outer side of the upper end, and the second clamping plate 422 is connected to the lower side of the first clamping plate 421, and the upper surface of the end of the movable frame 416 close to the rectangular guide block 413 is connected to a first sliding block 423, and the lower side of the first sliding block 423 is connected to a first connecting block 424, and the initial position of the first sliding block 423 is located in the inner cavity of the second rectangular chute, and the first connecting block 424 is installed in the inner cavity of the first rectangular chute, and the first connecting block 424 is composed of a circular connecting block with The first connecting block 424 is matched with the first connecting groove 411, and the first clamping plates 421 in the two drying components 407 can be connected and the second clamping plates 422 in the two drying components 407 can be connected, so as to clamp and fix the aerogel plate with a small thickness. In this way, the first clamping plate 421 and the second clamping plate 422 both adopt clamping plates with a plurality of air vents on the surface, so as to facilitate the hot air to dry the aerogel plate through the air vents.
[0035] See also Fig. 9 The feeding component 408 includes a third driving motor 425, and the output end of the third driving motor 425 is connected to a rotating roller 427, the outer surface of the rotating roller 427 is sleeved with a conveyor belt 426, and the outer sides of the two ends of the rotating roller 427 are sleeved with a second rotating belt 428, and the end of the second rotating belt 428 away from the third driving motor 425 is connected to a separation component 429, and both ends of the conveyor belt 426 are sleeved with rotating rollers 427, the upper end surface of the conveyor belt 426 is in the same horizontal plane with the lower end surfaces of the feed port 404 and the discharge port 405, and the upper end surface of the second clamping plate 422 is in the same horizontal plane with the upper end surface of the conveyor belt 426.
[0036] See also Fig.10The separation component 429 includes a fourth driving motor 430, the output end of the fourth driving motor 430 is sleeved with a third rotating belt 431, and the end of the output end of the fourth driving motor 430 away from the third rotating belt 431 is connected to a ratchet 432, the outer side of the ratchet 432 is connected to a pawl 433, the end of the pawl 433 away from the third rotating belt 431 is connected to a circular rotating block 434, the end of the circular rotating block 434 away from the fourth driving motor 430 is connected to a second threaded rod 435, the end of the second threaded rod 435 away from the circular rotating block 434 is connected to a circular telescopic rod 436, the outer side of the end of the circular telescopic rod 436 close to the second threaded rod 435 is connected to a first rotating wheel 437, and the end of the circular telescopic rod 436 away from the second threaded rod 435 is connected to The first gear 443, and the end of the pawl 433 away from the ratchet 432 is connected with an annular connecting block, the annular connecting block is fixedly connected to the circular rotating block 434, when the ratchet 432 rotates clockwise, the pawl 433 remains stationary, if the ratchet 432 rotates counterclockwise, the pawl 433 rotates counterclockwise, and the inner cavity of the first rotating wheel 437 is provided with a second connecting groove, the side surface of the end of the circular telescopic rod 436 close to the second threaded rod 435 is connected to the third rectangular connecting block, and the third rectangular connecting block fits with the second connecting groove, the lower end of the first rotating wheel 437 is provided with a circular connecting hole, the lower part of the second threaded rod 435 is connected with a circular fixing rod, and the circular fixing rod fits with the circular connecting hole, and the end of the circular fixing rod away from the circular connecting hole is connected with the second electric telescopic rod.
[0037] See also Fig.11 The sealing component 409 includes a rectangular sealing plate 438, and second racks 439 are connected to the surfaces of both sides of one end of the rectangular sealing plate 438 facing the drying component 407, and a second gear 440 is meshed with each second rack 439 at one end away from the rectangular sealing plate 438, and a fourth rotating belt 441 is sleeved on one end of the second gear 440 away from the second rack 439, and a circular rotating rod 442 is connected to one end of the fourth rotating belt 441 away from the second gear 440, and the rectangular sealing plate 438 is installed in the inner cavity of the sealing slide groove. When the rectangular sealing plate 438 contacts the inner cavity at the lower end of the sealing slide groove, the rectangular sealing plate 438 performs a sealing operation on the feed port 404 and the discharge port 405.
[0038] The first gear 443 is meshed with the first rack 417, one end of the second rotating belt 428 away from the third driving motor 425 is sleeved on the outer surface of the first rotating wheel 437, one end of the third rotating belt 431 away from the fourth driving motor 430 is sleeved on the outer surface of the circular rotating rod 442, and the hot air preheater 1, the first microwave curing and modifying device 2, the second microwave curing and modifying device 3 and the hot air drying assembly 4 constitute an aerogel production line.
[0039] Working principle: After the aerogel is fixed and modified by microwaves, the modified aerogel will be transported to the surface of the conveyor belt 426 through the transmission belt. At this time, the third driving motor 425 is started to drive the rotating roller 427 to rotate, and the second rotating belt 428 to rotate. The rotation of the rotating roller 427 will drive the conveyor belt 426 to rotate, thereby driving the aerogel to move toward the drying component 407 until the aerogel is separated from the conveyor belt 426. The rotation of the second rotating belt 428 will drive the first rotating wheel 437 to rotate, thereby driving the circular telescopic rod 436 to rotate, and then driving the first gear 443 to rotate. As the first gear 443 rotates clockwise, it will drive the first rack 417 to move toward the first driving motor 410, thereby driving the moving frame 416, the first sliding block 423 and the first connecting block 424 to move along the first rectangular slide groove and the second rectangular slide groove toward the first driving motor 410.
[0040] When the aerogel is separated from the conveyor belt 426, the third driving motor 425 is turned off, and the first connecting block 424 is overlapped with the first connecting groove 411, and the first clamping plate 421 and the second clamping plate 422 are located in the middle of the aerogel plate, and the first rack 417 is meshed with the first gear 443 connected to one end near the discharge port 405. At this time, the second driving motor 418 is started, and the first rotating belt 419 is driven to rotate, thereby driving the first threaded rod 420 to rotate, and then driving the first clamping plate 421 to move downward along the first threaded rod 420 until the lower end surface of the first clamping plate 421 contacts the upper end surface of the aerogel plate. At this time, the first clamping plate 421 and the second clamping plate 422 clamp and fix the aerogel plate;
[0041] When the first clamping plate 421 and the second clamping plate 422 perform a clamping and fixing operation on the aerogel plate, the second electric telescopic rod is started to perform a telescopic operation, thereby driving the circular fixing rod to move toward one end of the circular connecting hole until the circular fixing rod and the circular connecting hole are completely overlapped, thereby fixing the first rotating wheel 437, and then starting the fourth driving motor 430 to rotate counterclockwise, thereby driving the third rotating belt 431 to rotate, and driving the ratchet 432 to rotate, and the counterclockwise rotation of the third rotating belt 431 will drive the circular rotating rod 442 to rotate, thereby driving the fourth rotating belt 441 to rotate, and then driving the second gear 440 to rotate, and the counterclockwise rotation of the second gear 440 will drive the second rack 439 to move downward, thereby driving the rectangular sealing plate 438 to move downward along the sealing slide groove until the rectangular sealing plate 438 coincides with the lower end inner cavity of the sealing slide groove, thereby sealing the feed port 404 and the discharge port 405, and making the drying chamber in a sealed state;
[0042] The counterclockwise rotation of the ratchet 432 will drive the pawl 433 to rotate, thereby driving the circular rotating block 434 to rotate, and then driving the second threaded rod 435 to rotate. The rotation of the second threaded rod 435 will drive the circular telescopic rod 436 to move in the direction of the second threaded rod 435, thereby driving the first gear 443 to move in the direction of the second threaded rod 435. When the rectangular sealing plate 438 coincides with the lower end inner cavity of the sealing slide groove, the first gear 443 will be retracted into the inner cavity of the third rectangular slide groove, and then the electric telescopic rod 414 will be started to retract, so that the rectangular guide block 413 is separated from the drying component 407. At this time, the air heater 401 and the first drive motor 410 are started, and the air heater 401 will generate hot air. The air is transported to the drying chamber through the air duct 402, and then the excess air is discharged to the outside through the shutter 406, and the first driving motor 410 will drive the first connecting block 424 to rotate 360 degrees, thereby driving the clamping assembly 415 to rotate, and then driving the aerogel plate to rotate, so that all sides of the aerogel plate are heated evenly. When the aerogel plate has completed the hot air drying operation, the first driving motor 410 is stopped and the inlet is directed toward the discharge port 405, and then the drying assembly 407, the sealing assembly 409 and the separation assembly 429 are restored to their original positions, and the feeding assembly 408 connected to one end of the discharge port 405 is allowed to transport the aerogel plate until the aerogel plate is transported to the outside through the discharge port 405, and the operation is terminated.
[0043] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The above embodiments and descriptions are only preferred examples of the present invention and are not intended to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention may have various changes and improvements, which fall within the scope of the present invention. The scope of protection of the present invention is defined by the attached claims and their equivalents.
Claims
1. An aerogel automatic production line, comprising a hot air preheater (1), characterized in that: One end of the hot air preheater (1) is connected to a first microwave curing and modifying device (2), one end of the first microwave curing and modifying device (2) is connected to a second microwave curing and modifying device (3), and one end of the second microwave curing and modifying device (3) is connected to a hot air drying component (4); The hot air drying component (4) comprises an air heater (401), one end of the air heater (401) is connected to an air supply pipe (402), the end of the air supply pipe (402) away from the air heater (401) is connected to a drying chamber (403), one end of the drying chamber (403) is provided with a feed port (404), and the end of the drying chamber (403) away from the feed port (404) is provided with a discharge port (405), a shutter (406) is connected above the end of the drying chamber (403) close to the air supply pipe (402), the front and rear ends of the inner cavity of the drying chamber (403) are connected to drying components (407), the two ends of each drying component (407) are connected to a feed component (408), and the top of each feed component (408) is connected to a sealing component (409); The feeding assembly (408) comprises a third driving motor (425), the output end of the third driving motor (425) is connected to a rotating roller (427), the outer surface of the rotating roller (427) is sleeved with a conveyor belt (426), and the outer sides of both ends of the rotating roller (427) are sleeved with a second rotating belt (428), and the end of the second rotating belt (428) away from the third driving motor (425) is connected to a separation assembly (429); The separation component (429) comprises a fourth drive motor (430), the output end of the fourth drive motor (430) is sleeved with a third rotating belt (431), and the end of the output end of the fourth drive motor (430) away from the third rotating belt (431) is connected to a ratchet (432), the outer side of the ratchet (432) is connected to a pawl (433), the end of the pawl (433) away from the third rotating belt (431) is connected to a circular rotating block (434), the end of the circular rotating block (434) away from the fourth drive motor (430) is connected to a second threaded rod (435), the end of the second threaded rod (435) away from the circular rotating block (434) is connected to a circular telescopic rod (436), the outer side of an end of the circular telescopic rod (436) close to the second threaded rod (435) is connected to a first rotating wheel (437), and the end of the circular telescopic rod (436) away from the second threaded rod (435) is connected to a first gear (443).
2. The aerogel automatic production line according to claim 1, characterized in that: The drying component (407) comprises a first driving motor (410), the output end of the first driving motor (410) is provided with a first connecting groove (411), the upper and lower ends of the inner cavity of the first connecting groove (411) are connected to first rectangular connecting blocks (412), and the two ends of the first driving motor (410) are connected to rectangular guide blocks (413), the two sides of the rectangular guide block (413) close to the first driving motor (410) are connected to electric telescopic rods (414), and the end of the rectangular guide block (413) close to one end of the second microwave curing and modification device (3) and away from the first driving motor (410) is connected to a clamping component (415).
3. The aerogel automatic production line according to claim 2, characterized in that: The clamping assembly (415) comprises a movable frame (416), the lower end surface of the movable frame (416) is connected to a first rack (417), the lower end inner cavity of the movable frame (416) is connected to a second drive motor (418), the output end of the second drive motor (418) is connected to a first rotating belt (419), and both ends of the first rotating belt (419) are connected to a first threaded rod (420).
4. The aerogel automatic production line according to claim 3, characterized in that: A first clamping plate (421) is sleeved on the outer side of the upper end of the first threaded rod (420), a second clamping plate (422) is connected below the first clamping plate (421), and a first sliding block (423) is connected to the upper surface of one end of the movable frame (416) close to the rectangular guide block (413), and a first connecting block (424) is connected below the first sliding block (423).
5. The aerogel automatic production line according to claim 4, characterized in that: The sealing component (409) comprises a rectangular sealing plate (438), and second racks (439) are connected to the surfaces of both sides of one end of the rectangular sealing plate (438) facing the drying component (407), and each second rack (439) is meshed with a second gear (440) at one end away from the rectangular sealing plate (438), and a fourth rotating belt (441) is sleeved on one end of the second gear (440) away from the second rack (439), and a circular rotating rod (442) is connected to one end of the fourth rotating belt (441) away from the second gear (440).
6. The aerogel automatic production line according to claim 5, characterized in that: The first gear (443) is meshed with the first rack (417); one end of the second rotating belt (428) away from the third drive motor (425) is sleeved on the outer surface of the first rotating wheel (437); and one end of the third rotating belt (431) away from the fourth drive motor (430) is sleeved on the outer surface of the circular rotating rod (442).
Citation Information
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