Fused quartz cooling equipment with uniform cooling function

By setting up a cooling mechanism and a swing mechanism in the processing box of the fused quartz cooling equipment, uniform shaking of the storage box is achieved, and the uneven cooling problem caused by the accumulation of fused quartz in the storage box is solved, and the cooling efficiency is improved.

CN120062941AInactive Publication Date: 2025-05-30LIANYUNGANG TAOSHENG FUSED QUARTZ CO LTD
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Patent Information

Application Number
CN202510526966.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-25
Publication Date
2025-05-30
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When the existing cooling equipment cools the fused silica, it causes the molten silica to accumulate in the storage box, which in turn leads to uneven cooling surfaces, reducing the working efficiency of the cooling equipment.

Method used

A uniformly cooled fused silica cooling device is designed. By setting a cooling mechanism and a swing mechanism in the processing box, the adjustment rod, connecting plate, cam and spring are used to cooperate with each other to realize the up and down movement and left and right shaking of the storage box to ensure uniform cooling of the fused silica.

Benefits of technology

Through the design of this equipment, it is possible to effectively prevent the accumulation of fused silica in the storage box, achieve its uniform cooling, and improve the working efficiency of the cooling equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of fused quartz processing, and discloses fused quartz cooling equipment with uniform cooling, the fused quartz cooling equipment comprises a treatment box and supporting legs, a cooling mechanism is arranged in the treatment box, and the cooling mechanism comprises an adjusting box I, an adjusting plate I, a spring I, an adjusting rod I and an adjusting rod II. According to the fused quartz storage device, fused quartz can be quickly and conveniently cooled through the cooling mechanism, the storage box can move left and right while moving up and down, then the fused quartz in the storage box can be better shaken, accumulation is effectively prevented, and the service life of the fused quartz storage device is prolonged. Meanwhile, a feeding pipe can be moved left and right in cooperation with work of a swing mechanism, then fused quartz can uniformly flow into a storage box, and the problems that due to the fact that the fused quartz is poured into the storage box at a time, local fused quartz is accumulated in the storage box, and the cooled surface is not uniform are solved; and the working efficiency of the cooling equipment is improved.
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Description

Technical Field

[0001] The present invention belongs to the technical field of fused quartz processing, and specifically relates to a cooling device for fused quartz with uniform cooling. Background Art

[0002] Fused quartz is also known as quartz glass. Quartz glass is a general term for vitreous SiO2, which is a supercooled liquid obtained by high-temperature melting of natural quartz, including silica and quartz crystal. According to different classification methods, quartz glass can be divided into various types. For example, from the application perspective, quartz glass can be divided into opaque quartz glass, transparent quartz glass, optical quartz glass, special quartz glass, etc. When cooling fused quartz, a cooling device is required.

[0003] When the existing cooling device is in use, it mainly combines structures such as an air-cooling component, a cooling component, and a storage component to achieve the cooling work of fused quartz. However, in actual use, when cooling fused quartz, the fused quartz is usually directly poured into the storage box and cooled by a coolant. Since the fused quartz is poured into the storage box at one time, local fused quartz will accumulate in the storage box, resulting in uneven cooling surfaces, thereby reducing the working efficiency of the cooling device.

[0004] In view of this, the present invention is specifically proposed. Summary of the Invention

[0005] To solve the above technical problems, the basic concept of the technical solution adopted by the present invention is: A cooling device for fused quartz with uniform cooling, including a processing box and support legs. A cooling mechanism is arranged inside the processing box. The cooling mechanism includes an adjustment box one, an adjustment plate one, a spring one, an adjustment rod one, and an adjustment rod two. The two ends of the adjustment plate one are slidably connected to the inner wall of the adjustment box one. The bottom of the adjustment plate one is connected to the top of the adjustment rod one. The bottom of the adjustment rod one is connected to the top of the adjustment rod two. One end of the adjustment rod two is provided with an adjustment plate two. The two ends of the adjustment plate two are slidably connected to an adjustment box two. One end of the adjustment box two is provided with a storage box. The bottom of the adjustment rod two is provided with a connecting plate one. A motor is arranged on one side of the processing box. The output end of the motor is connected to one end of a rotating rod. A stirring roller is installed on the outer wall of the rotating rod. A cam one is installed on the outer wall of the rotating rod. A support rod is arranged at the bottom of the processing box. The top of the support rod is provided with a support plate. A cooling box is installed on the top of the support plate. A circulation pump is installed on the inner wall of the cooling box. A circulation pipe is communicated on one side of the circulation pump. A moving rod one is installed on the back of the storage box; an air one-way valve is installed on the top of each adjustment box one; Swing mechanisms are arranged on both sides of the processing box.

[0006] As a preferred embodiment of the present invention, the swing mechanism includes a first fixing plate, a limit box, a second cam, a force-bearing plate, and an extrusion rod. The top of the first fixing plate is connected to the bottom of the limit box. The outer wall of the rotating rod is connected to the inner wall of the second cam. One end of the second cam is in extrusion contact with the bottom of the force-bearing plate. The top of the force-bearing plate is connected to the bottom of the extrusion rod. The outer wall of the extrusion rod is slidably connected to a limit plate. The top of the extrusion rod is in extrusion contact with a wedge-shaped plate. One end of the wedge-shaped plate is provided with a second connecting plate. One end of the second connecting plate is provided with a first mounting plate. The back of the first mounting plate is provided with a moving sleeve. The inner wall of the moving sleeve is slidably connected to a guide rod. One end of the guide rod is provided with a second fixing plate. The front of the first mounting plate is provided with a first fixing rod. One end of the first fixing rod is provided with a second mounting plate. The inner wall of the second mounting plate is provided with a feed pipe.

[0007] As a preferred embodiment of the present invention, an auxiliary mechanism is provided inside the processing box. The auxiliary mechanism includes an air guide pipe, a piston box, a piston plate, a second moving rod, and a blocking plug. One end of the air guide pipe is communicated with the bottom of the piston box. The two ends of the piston plate are slidably connected to the inner wall of the piston box. The top of the piston plate is connected to the bottom of the second moving rod. The top of the second moving rod is connected to the bottom of the blocking plug. A second fixing rod is installed on one side of the piston box.

[0008] As a preferred embodiment of the present invention, the number of the first adjustment boxes is four. The first adjustment boxes are symmetrically distributed on the inner wall of the processing box. A first spring is fixedly installed between the top of the first adjustment plate and the inner wall of the first adjustment box. A second spring is fixedly installed between the second adjustment plate and the inner wall of the second adjustment box, so as to increase the stability when the storage box moves up and down and vibrates, and further effectively prevent the fused quartz from accumulating inside the storage box and enable it to shake.

[0009] As a preferred embodiment of the present invention, the number of the first cams is two. The first cams are symmetrically distributed on the outer wall of the rotating rod. One end of the circulation pipe is communicated with the bottom of the processing box. The number of the support rods is four. The support rods are symmetrically distributed on the bottom of the support plate, so as to better extrude the first connecting plate to move, and further better move the storage box.

[0010] As a preferred embodiment of the present invention, a moving groove is formed in the inner wall of the processing box. The shape of the moving groove is S-shaped. One end of the first moving rod is slidably connected to the inner wall of the moving groove. The number of the first moving rods is two. The first moving rods are symmetrically distributed on the back of the storage box, so as to make the storage box move left and right while moving up and down and vibrating, and further enable the fused quartz inside the storage box to shake.

[0011] As a preferred embodiment of the present invention, the number of the limiting boxes is two, the limiting boxes are symmetrically distributed on both sides of the processing box respectively, the number of the second cams is two, the extrusion end of one second cam is far from the bottom of the stress plate, and the extrusion end of one second cam is in extrusion contact with the bottom of the stress plate. A third spring is fixedly installed between the top of the stress plate and the bottom of the limiting plate, so that the stress plate can be moved quickly and conveniently, and then the wedge-shaped plate can be moved better, and then the feed pipe can be adjusted better.

[0012] As a preferred embodiment of the present invention, the second connecting plate is L-shaped, the number of the second fixing plates is two, the second fixing plates are symmetrically distributed at both ends of the guide rod respectively, a fourth spring is fixedly installed between the moving sleeve and one side of the second fixing plate, a limiting groove is opened at the top of the processing box, and the outer wall of the feed pipe is slidably connected with the inner wall of the limiting groove, so that it can cooperate with the cooling mechanism to work, make the feed pipe slide left and right on the inner wall of the limiting groove, and then the fused quartz can flow into the storage box evenly, effectively preventing the fused quartz from piling up.

[0013] As a preferred embodiment of the present invention, the number of the air guide pipes is four, the air guide pipes are symmetrically distributed on one side of each of the four adjusting boxes respectively, a fifth spring is fixedly installed between the top of the piston plate and the inner wall of the air guide pipe, an air outlet is opened at the top of the processing box, the bottom of the blocking plug is in extrusion contact with the inner wall of the air outlet, and the second fixing rod is L-shaped, so that it can cooperate with the cooling mechanism to work, make the blocking plug move to open the air outlet, and then the hot air can be discharged, further improving the cooling efficiency.

[0014] As a preferred embodiment of the present invention, the bottom of the processing box is fixedly connected with the top of the support leg, the inner wall of the processing box is connected with the top of the first adjusting box, one end of the motor is connected with one side of the limiting box, one side of the support leg is connected with one end of the first fixing plate, and one side of the first adjusting box is communicated with one end of the air guide pipe.

[0015] The present invention has the following beneficial effects compared with the prior art: The present invention can quickly and conveniently cool down fused quartz through a cooling mechanism. Through the mutual cooperation among the first adjusting rod, the second adjusting rod, the first connecting plate, and the first cam, the storage box can move up and down and vibrate. And through the mutual cooperation between the first moving rod and the moving groove, the storage box can move left and right while moving up and down, so as to better shake the fused quartz inside the storage box and effectively prevent accumulation. At the same time, cooperating with the swinging mechanism can move the feeding pipe left and right, so as to evenly flow the fused quartz into the storage box, thereby better cooling down the fused quartz evenly. It solves the problem that in actual use, when cooling down fused quartz, the fused quartz is usually directly poured into the storage box and cooled down by air and coolant. Since the fused quartz is put into the storage box at one time, local fused quartz will accumulate in the storage box, resulting in uneven cooling surfaces, and improves the working efficiency of the cooling equipment.

[0016] The following further describes in detail the specific implementation manners of the present invention with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] In the drawings: Figure 1 is a three-dimensional structural schematic diagram of a fused quartz cooling device with uniform cooling; Figure 2 is a sectional structural schematic diagram of a fused quartz cooling device with uniform cooling; Figure 3 is a side sectional structural schematic diagram of a fused quartz cooling device with uniform cooling; Figure 4 is a structural schematic diagram of the cooling mechanism of a fused quartz cooling device with uniform cooling Figure 1 ; Figure 5 is a structural schematic diagram of the cooling mechanism of a fused quartz cooling device with uniform cooling Figure 2 ; Figure 6 is a structural schematic diagram of the cooling mechanism of a fused quartz cooling device with uniform cooling Figure 3 ; Figure 7 is a structural schematic diagram of the swinging mechanism of a fused quartz cooling device with uniform cooling Figure 1 ; Figure 8 is a structural schematic diagram of the swinging mechanism of a fused quartz cooling device with uniform cooling Figure 2 ; Figure 9 is a structural schematic diagram of the auxiliary mechanism of a fused quartz cooling device with uniform cooling Figure 1 ; Figure 10Structural schematic of an auxiliary mechanism for a molten quartz cooling device with uniform cooling Figure 2 。

[0018] In the figure: 1. Processing box; 2. Support legs; 3. Cooling mechanism; 301. Adjustment box 1; 302. Adjustment plate 1; 303. Spring 1; 304. Adjustment rod 1; 305. Adjustment rod 2; 306. Adjustment plate 2; 307. Adjustment box 2; 308. Spring 2; 309. Storage box; 310. Connecting plate 1; 311. Motor; 312. Rotating rod; 313. Stirring roller; 314. Cam 1; 315. Support rod; 316. Support plate; 317. Cooling box; 318. Circulation pump; 319. Circulation pipe; 320. Moving rod 1; 4. Oscillation mechanism; 401. Fixed plate 1; 402. Limiting box; 403. Cam 2; 404. Force-bearing plate; 405. Extrusion rod; 406. Limiting plate; 407. Spring 3; 408. Wedge-shaped plate; 409. Connecting plate 2; 410. Mounting plate 1; 411. Moving sleeve; 412. Guide rod; 413. Fixed plate 2; 414. Spring 4; 415. Fixed rod 1; 416. Mounting plate 2; 417. Feed pipe; 5. Auxiliary mechanism; 501. Air guide pipe; 502. Piston box; 503. Piston plate; 504. Moving rod 2; 505. Blocking plug; 506. Fixed rod 2; 507. Spring 5. Detailed implementation mode

[0019] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the following will clearly and completely describe the technical solutions in the embodiments in conjunction with the accompanying drawings in the embodiments of the present invention. The following embodiments are used to illustrate the present invention.

[0020] Embodiment 1:

[0021] As Figures 1 to 10As shown in the figure, a cooling device for uniformly cooling fused quartz includes a processing box 1 and support legs 2. A cooling mechanism 3 is arranged inside the processing box 1. The cooling mechanism 3 includes an adjustment box one 301, an adjustment plate one 302, a spring one 303, an adjustment rod one 304, and an adjustment rod two 305. The inner wall of the adjustment box one 301 is slidably connected to both ends of the adjustment plate one 302. The bottom of the adjustment plate one 302 is connected to the top of the adjustment rod one 304. The bottom of the adjustment rod one 304 is connected to the top of the adjustment rod two 305. One end of the adjustment rod two 305 is installed with an adjustment plate two 306. Both ends of the adjustment plate two 306 are slidably connected to an adjustment box two 307. One end of the adjustment box two 307 is installed with a storage box 309. The bottom of the adjustment rod two 305 is installed with a connecting plate one 310. One side of the processing box 1 is provided with a motor 311. The output end of the motor 311 is connected to one end of a rotating rod 312. The outer wall of the rotating rod 312 is installed with a stirring roller 313. The outer wall of the rotating rod 312 is installed with a cam one 314. The bottom of the processing box 1 is provided with a support rod 315. The top of the support rod 315 is installed with a support plate 316. The top of the support plate 316 is installed with a cooling box 317. The inner wall of the cooling box 317 is installed with a circulation pump 318. One side of the circulation pump 318 is communicated with a circulation pipe 319. The back of the storage box 309 is installed with a moving rod one 320; In this embodiment, the number of the adjustment boxes one 301 is four. The adjustment boxes one 301 are symmetrically distributed on the inner wall of the processing box 1. A spring one 303 is fixedly installed between the top of the adjustment plate one 302 and the inner wall of the adjustment box one 301. A spring two 308 is fixedly installed between the adjustment plate two 306 and the inner wall of the adjustment box two 307. Thereby, the stability of the up-and-down movement and vibration of the storage box 309 can be increased. Furthermore, it can effectively prevent the fused quartz from accumulating inside the storage box 309 and can make it shake; Furthermore, the number of the cams one 314 is two. The cams one 314 are symmetrically distributed on the outer wall of the rotating rod 312. One end of the circulation pipe 319 is communicated with the bottom of the processing box 1. The number of the support rods 315 is four. The support rods 315 are symmetrically distributed at the bottom of the support plate 316. Thereby, it can better squeeze the connecting plate one 310 to move, and further can better move the storage box 309; Even further, a moving groove is formed on the inner wall of the processing box 1. The shape of the moving groove is S-shaped. One end of the moving rod one 320 is slidably connected to the inner wall of the moving groove. The number of the moving rods one 320 is two. The moving rods one 320 are symmetrically distributed on the back of the storage box 309. Thereby, while the storage box 309 moves up and down and vibrates, the storage box 309 can move left and right and vibrate, and further the fused quartz inside the storage box 309 can be shaken.

[0022] Embodiment 2:

[0023] Swing mechanisms 4 are arranged on both sides of the processing box 1; The swing mechanism 4 includes a first fixing plate 401, a limit box 402, a second cam 403, a force-bearing plate 404, and an extrusion rod 405. The top of the first fixing plate 401 is connected to the bottom of the limit box 402. The outer wall of the rotating rod 312 is connected to the inner wall of the second cam 403. One end of the second cam 403 is in extrusion contact with the bottom of the force-bearing plate 404. The top of the force-bearing plate 404 is connected to the bottom of the extrusion rod 405. The outer wall of the extrusion rod 405 is slidably connected to a limit plate 406. The top of the extrusion rod 405 is in extrusion contact with a wedge-shaped plate 408. One end of the wedge-shaped plate 408 is provided with a second connecting plate 409. One end of the second connecting plate 409 is provided with a first mounting plate 410. The back of the first mounting plate 410 is provided with a moving sleeve 411. The inner wall of the moving sleeve 411 is slidably connected to a guide rod 412. One end of the guide rod 412 is provided with a second fixing plate 413. The front of the first mounting plate 410 is provided with a first fixing rod 415. One end of the first fixing rod 415 is provided with a second mounting plate 416. The inner wall of the second mounting plate 416 is provided with a feed pipe 417; In this embodiment, the number of limit boxes 402 is two. The limit boxes 402 are symmetrically distributed on both sides of the processing box 1 respectively. The number of second cams 403 is two. One extrusion end of one second cam 403 is far from the bottom of the force-bearing plate 404, and one extrusion end of one second cam 403 is in extrusion contact with the bottom of the force-bearing plate 404. A third spring 407 is fixedly installed between the top of the force-bearing plate 404 and the bottom of the limit plate 406, so that the force-bearing plate 404 can be moved quickly and conveniently. Furthermore, the wedge-shaped plate 408 can be moved better, and then the feed pipe 417 can be adjusted better. And the second cams 403 on both sides of the processing box 1 are staggeredly distributed, ensuring that when one of them forms extrusion on the pressure-receiving plate 404, the other second cam 403 will not form extrusion, so as to ensure the final left-right movement effect of 417; Furthermore, the shape of the second connecting plate 409 is L-shaped. The number of second fixing plates 413 is two. The second fixing plates 413 are symmetrically distributed at both ends of the guide rod 412 respectively. A fourth spring 414 is fixedly installed between the moving sleeve 411 and one side of the second fixing plate 413. A limit groove is opened at the top of the processing box 1. The outer wall of the feed pipe 417 is slidably connected to the inner wall of the limit groove, so as to cooperate with the cooling mechanism 3 to work, make the feed pipe 417 slide left and right on the inner wall of the limit groove, and then make the fused quartz flow into the storage box 309 evenly, effectively preventing the fused quartz from piling up.

[0024] Embodiment 3:

[0025] An auxiliary mechanism 5 is arranged inside the processing box 1; The auxiliary mechanism 5 includes an air duct 501, a piston box 502, a piston plate 503, a second moving rod 504, and a blocking plug 505. One end of the air duct 501 is communicated with the bottom of the piston box 502. The inner wall of the piston box 502 is slidably connected to both ends of the piston plate 503. The top of the piston plate 503 is connected to the bottom of the second moving rod 504. The top of the second moving rod 504 is connected to the bottom of the blocking plug 505. A second fixing rod 506 is installed on one side of the piston box 502; In this embodiment, the number of the air ducts 501 is four. The air ducts 501 are symmetrically distributed on one side of the four first adjustment boxes 301 respectively. A fifth spring 507 is fixedly installed between the top of the piston plate 503 and the inner wall of the air duct 501. An air outlet is formed in the top of the processing box 1. The bottom of the blocking plug 505 is in pressing contact with the inner wall of the air outlet. The second fixing rod 506 is in an L shape, so as to be able to cooperate with the cooling mechanism 3 to work, move the blocking plug 505 to open the air outlet, and further discharge the hot air, thereby further improving the cooling efficiency; Furthermore, the bottom of the processing box 1 is fixedly connected to the top of the support leg 2. The inner wall of the processing box 1 is connected to the top of the first adjustment box 301. One end of the motor 311 is connected to one side of the limit box 402. One side of the support leg 2 is connected to one end of the first fixing plate 401. One side of the first adjustment box 301 is communicated with one end of the air duct 501.

[0026] The implementation principle of a molten quartz cooling device with uniform cooling in this embodiment is as follows: When it is necessary to cool molten quartz, the operator connects the feed pipe 417 to an external device, so that the molten quartz can flow into the storage box 309 through the feed pipe 417, and can cooperate with the swing mechanism 4 to swing the feed pipe 417, so that the molten quartz can flow evenly into the storage box 309. By starting the circulation pump 318 to work, the coolant inside the cooling box 317 can be transported to the processing box 1 through the circulation pipe 319, and the coolant can be circulated, so as to cool and lower the temperature of the molten quartz. At this time, by starting the motor 311 to work, the rotating rod 312 is driven to rotate. By the rotation of the rotating rod 312, the stirring roller 313 is driven to rotate. By the rotation of the stirring roller 313, the coolant can be stirred, so as to increase the flow rate of the coolant inside the processing box 1, so as to better circulate and cool. And the liquid level of the coolant at the bottom of the inner cavity of the processing box 1 should be lower than the upper port of the storage box 309 to prevent the coolant from entering the storage box 309. As the rotating rod 312 rotates, the first cam 314 is driven to rotate. By the rotation of the first cam 314, it can contact the first connecting plate 310 and can squeeze the first connecting plate 310 to move. By the movement of the second adjusting rod 305, the second adjusting box 307 can be indirectly driven to move. By the movement of the second adjusting box 307, the storage box 309 is driven to move. As the second adjusting rod 305 moves, the first adjusting rod 304 is driven to move. By the movement of the first adjusting rod 304, the first adjusting plate 302 slides inside the first adjusting box 301 and squeezes the first spring 303. When the first cam 314 is not in contact with the first connecting plate 310, it can be reset by the elastic force of the first spring 303, so that the storage box 309 moves up and down and vibrates, so as to make the molten quartz inside the storage box 309 shake, preventing uneven cooling. As the storage box 309 moves, the first moving rod 320 can be driven to slide in the moving groove. And through the cooperation between the first moving rod 320 and the moving groove, the storage box 309 can move left and right. By the movement of the storage box 309, the second adjusting plate 306 slides inside the second adjusting box 307 and squeezes the second spring 308, so that the storage box 309 can move left and right and vibrate when moving up and down, so as to make the molten quartz inside the storage box 309 shake more violently, so as to better cool and lower the temperature of the molten quartz, and can evenly cool the molten quartz, improving the working efficiency of the cooling device; When it is necessary to cool down the fused quartz, the operator connects the feed pipe 417 to an external device, so that the fused quartz can flow into the storage box 309 through the feed pipe 417. By starting the cooling mechanism 3 to work, the fused quartz can be cooled down. At this time, the rotation of the rotating rod 312 in the cooling mechanism 3 can drive the rotation of the second cam 403. The rotation of the second cam 403 drives the movement of the force-bearing plate 404. The movement of the force-bearing plate 404 drives the extrusion rod 405 to slide on the inner wall of the limiting plate 406. The sliding of the force-bearing plate 404 can squeeze the third spring 407. As the extrusion rod 405 slides, it can contact one side of the wedge-shaped plate 408 and squeeze the wedge-shaped plate 408 to move. The movement of the wedge-shaped plate 408 drives the movement of the second connecting plate 409. The movement of the second connecting plate 409 drives the movement of the first mounting plate 410. The movement of the first mounting plate 410 drives the movement of the moving sleeve 411 on the guide rod 412 and squeezes the fourth spring 414. As the first mounting plate 410 moves, it drives the movement of the first fixing rod 415. The movement of the first fixing rod 415 drives the movement of the second mounting plate 416. The movement of the second mounting plate 416 drives the movement of the feed pipe 417, so that the feed pipe 417 can move left and right, and then the fused quartz can flow evenly into the storage box 309, and then can cooperate with the cooling mechanism 3 to better cool down the fused quartz, effectively preventing the fused quartz from accumulating in the storage box 309, and further improving the working efficiency of the cooling equipment; When it is necessary to cool down the fused quartz, the operator connects the feed pipe 417 to an external device, so that the fused quartz can flow into the storage box 309 through the feed pipe 417. By starting the cooling mechanism 3 to work, the fused quartz can be cooled down, and the feed pipe 417 can be moved left and right in cooperation with the cooling mechanism 3, so that the fused quartz can flow evenly into the storage box 309. At this time, as the first adjusting plate 302 in the cooling mechanism 3 slides inside the first adjusting box 301, it can squeeze the first spring 303 and the air inside the first adjusting box 301. Then the air inside the first adjusting box 301 can enter the piston box 502 through the air guide pipe 501, so that the piston plate 503 can slide inside the piston box 502. The sliding of the piston plate 503 drives the movement of the second moving rod 504. The movement of the second moving rod 504 drives the movement of the blocking plug 505. And as the piston plate 503 slides, it can squeeze the fifth spring 507. As the blocking plug 505 moves, the ventilation hole can be opened, so that the hot air inside the processing box 1 can flow to the outside. And a check valve is installed on the top of each first adjusting box 301, which is convenient for sucking external air when the piston inside the first adjusting box 301 resets, facilitating the secondary extrusion operation, so that the fused quartz can be cooled down better.

Claims

1. A fused quartz cooling device for uniform cooling, comprising a processing box (1) and a support leg (2), characterized in that: The processing box (1) is provided with a cooling mechanism (3) inside, the cooling mechanism (3) comprising an adjusting box (301) and a spring (303), the inner wall of the adjusting box (301) is slidably connected to both ends of an adjusting plate (302), the bottom of the adjusting plate (302) is connected to the top of an adjusting rod (304), the bottom of the adjusting rod (304) is connected to the top of a second adjusting rod (305), and an adjusting plate (306) is installed at one end of the second adjusting rod (305); a motor (311) is provided at one side of the processing box (1), the output end of the motor (311) is connected to one end of a rotating rod (312), and an air check valve is installed at the top of each adjusting box (301); Swing mechanisms (4) are provided on both sides of the processing box (1). The swing mechanisms (4) include a fixed plate (401), a limit box (402), a cam (403), a force plate (404), and an extrusion rod (405). The top of the fixed plate (401) and the bottom of the limit box (402) are connected to each other, the outer wall of the rotating rod (312) and the inner wall of the cam (403) are connected to each other, and one end of the cam (403) is in extrusion contact with the bottom of the force plate (404).

2. A uniformly cooled fused quartz cooling device according to claim 1, characterized in that: The top of the force-bearing plate (404) and the bottom of the extrusion rod (405) are connected to each other, the outer wall of the extrusion rod (405) is slidably connected to the limit plate (406), the top of the extrusion rod (405) is extruded and contacted with a wedge plate (408), one end of the wedge plate (408) is installed with a second connecting plate (409), one end of the second connecting plate (409) is installed with a first mounting plate (410), a moving sleeve (411) is installed on the back of the first mounting plate (410), a guide rod (412) is slidably connected to the inner wall of the moving sleeve (411), one end of the guide rod (412) is installed with a second fixing plate (413), the front of the first mounting plate (410) is installed with a first fixing rod (415), one end of the first fixing rod (415) is installed with a second mounting plate (416), and a feeding pipe (417) is installed on the inner wall of the second mounting plate (416).

3. A uniformly cooled fused quartz cooling device according to claim 1, characterized in that: An auxiliary mechanism (5) is arranged inside the processing box (1), and the auxiliary mechanism (5) includes an air guide pipe (501), a piston box (502), a piston plate (503), a second movable rod (504), and a blocking plug (505). One end of the air guide pipe (501) is connected to the bottom of the piston box (502), the inner wall of the piston box (502) is slidably connected to the two ends of the piston plate (503), the top of the piston plate (503) is connected to the bottom of the second movable rod (504), the top of the second movable rod (504) is connected to the bottom of the blocking plug (505), and a second fixed rod (506) is installed on one side of the piston box (502).

4. The uniformly cooled fused quartz cooling device according to claim 1, characterized in that: The two ends of the second adjustment plate (306) are slidably connected to the second adjustment box (307), one end of the second adjustment box (307) is installed with a storage box (309), the bottom of the second adjustment rod (305) is installed with a connecting plate (310), the outer wall of the rotating rod (312) is installed with a stirring roller (313), the outer wall of the rotating rod (312) is installed with a cam (314), the bottom of the processing box (1) is provided with a support rod (315), the top of the support rod (315) is installed with a support plate (316), and the top of the support plate (316) is installed with a cooling box (317). A circulation pump (318) is installed on the inner wall of the cooling box (317), and a circulation pipe (319) is arranged on one side of the circulation pump (318); a moving rod (320) is installed on the back of the storage box (309); the number of the regulating boxes (301) is four, and the regulating boxes (301) are symmetrically distributed on the inner wall of the processing box (1); a spring (303) is fixedly installed between the top of the regulating plate (302) and the inner wall of the regulating box (301); and a spring (308) is fixedly installed between the regulating plate (306) and the inner wall of the regulating box (307).

5. A uniformly cooled fused quartz cooling device according to claim 4, characterized in that: The number of the cams (314) is two, and the cams (314) are symmetrically distributed on the outer wall of the rotating rod (312). One end of the circulation pipe (319) is connected to the bottom of the processing box (1). The number of the support rods (315) is four, and the support rods (315) are symmetrically distributed on the bottom of the support plate (316).

6. The uniformly cooled fused quartz cooling device according to claim 4, characterized in that: The inner wall of the processing box (1) is provided with a movable groove, the shape of the movable groove is S-shaped, one end of the movable rod 1 (320) is slidably connected to the inner wall of the movable groove, the number of the movable rods 1 (320) is two, and the movable rods 1 (320) are symmetrically distributed on the back of the storage box (309).

7. The uniformly cooled fused quartz cooling device according to claim 2, characterized in that: There are two limit boxes (402) and the limit boxes (402) are symmetrically distributed on both sides of the processing box (1). There are two cams (403), one of which has an extrusion end away from the bottom of the force-bearing plate (404) and one of which has an extrusion end in extrusion contact with the bottom of the force-bearing plate (404). A spring (407) is fixedly installed between the top of the force-bearing plate (404) and the bottom of the limit plate (406).

8. The uniformly cooled fused quartz cooling device according to claim 2, characterized in that: The shape of the connecting plate 2 (409) is L-shaped, the number of the fixed plates 2 (413) is two, and the fixed plates 2 (413) are symmetrically distributed at both ends of the guide rod (412). A spring 4 (414) is fixedly installed between the movable sleeve (411) and one side of the fixed plate 2 (413). A limiting groove is provided on the top of the processing box (1), and the outer wall of the feed pipe (417) is slidably connected to the inner wall of the limiting groove.

9. The uniformly cooled fused silica cooling device according to claim 3, characterized in that: The number of the air guide pipes (501) is four, and the air guide pipes (501) are symmetrically distributed on one side of the four adjustment boxes (301). A spring (507) is fixedly installed between the top of the piston plate (503) and the inner wall of the air guide pipe (501). An air outlet is opened on the top of the processing box (1), and the bottom of the blocking plug (505) is in compression contact with the inner wall of the air outlet. The shape of the fixing rod (506) is L-shaped.

10. The uniformly cooled fused silica cooling device according to claim 1, characterized in that: The bottom of the processing box (1) is fixedly connected to the top of the support leg (2), the inner wall of the processing box (1) is interconnected with the top of the regulating box (301), one end of the motor (311) is interconnected with one side of the limit box (402), one side of the support leg (2) is interconnected with one end of the fixing plate (401), and one side of the regulating box (301) is connected to one end of the air guide pipe (501).

Citation Information

Patent Citations

  • Rapid cooling device for cooling fused quartz

    CN115218576A

  • Rapid cooling device for cooling fused quartz

    CN210070632U

  • Rapid cooling device for cooling fused quartz

    CN212512519U

  • A molten quartz cooling device for uniform cooling

    CN218811342U