A fixing device for high temperature welding of quartz devices

By designing an automatic clamping and rotating high-temperature welding and fixing device for quartz devices, the problem of manual disassembly and rotation required in existing technologies has been solved, improving welding efficiency and ease of operation.

CN118650373BActive Publication Date: 2026-01-13JIANGSU GAOXIN QUARTZ TECH CO LTD
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Patent Information

Application Number
CN202411132630.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-19
Publication Date
2026-01-13
Estimated Expiration
2044-08-19

AI Technical Summary

Technical Problem

Existing quartz device fixing devices require manual disassembly during the welding process before rotation, which reduces work efficiency and increases the labor intensity of operators.

Method used

A high-temperature welding and fixing device for quartz devices, comprising a fixing mechanism, an auxiliary mechanism, and a welding mechanism, was designed. The device achieves automatic clamping, rotation, and movement of quartz devices through components such as motors, cylinders, clamping plates, and guide rollers. The adjustment of the guide rollers and welding mechanism improves the ease of operation and efficiency.

Benefits of technology

It enables quick and convenient clamping, fixing, and rotation of quartz devices, reducing the labor intensity of operators and improving welding efficiency and the working efficiency of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of quartz device processing, and discloses a fixing device for high-temperature welding of a quartz device, which comprises a bottom plate and supporting legs, a fixing mechanism is arranged above the bottom plate, the fixing mechanism comprises a moving plate, a bearing plate one, a sliding plate one, a fixing plate one and a motor one, the top of the moving plate is connected with the bottom of the bearing plate one, and the inner wall of the bearing plate one is in sliding connection with the outer wall of the sliding plate one. The fixing device can quickly and conveniently clamp and fix the quartz device, solves the problem that when the quartz device is clamped and fixed for welding, the quartz device needs to be manually disassembled by an operator before being rotated when the quartz device needs to be rotated, the impurities on the bottom plate can be cleaned at the same time when the quartz device is moved, the working efficiency of the fixing device is improved, the labor intensity of the operator is reduced, the fixing device is practical, and is suitable for wide promotion and use.
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Description

Technical Field

[0001] This invention belongs to the field of quartz device processing technology, specifically, it relates to a fixing device for high-temperature welding of quartz devices. Background Technology

[0002] Quartz is one of the major rock-forming minerals, generally referring to low-temperature quartz. It is the most widely distributed mineral in the quartz group. Quartz is a mineral resource with very stable physical and chemical properties, and its crystals are oxide minerals belonging to the trigonal crystal system. Quartz blocks, also known as silica, are mainly used as raw materials for producing quartz sand, as well as for quartz refractories and ferrosilicon. Fixing devices are required when welding quartz devices at high temperatures.

[0003] The existing fixing device is used to clamp and fix the quartz device before welding. However, in actual use, when the quartz device needs to be rotated after clamping and fixing for welding, the operator needs to manually disassemble it before rotation can be performed. This reduces the working efficiency of the fixing device and increases the labor intensity of the operator.

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

[0005] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by the present invention is as follows:

[0006] A fixing device for high-temperature welding of quartz devices includes a base plate and supporting legs. A fixing mechanism is arranged above the base plate. The fixing mechanism includes a movable plate, a first bearing plate, a first sliding plate, a first fixed plate, and a first motor. A cylinder is mounted on the top of each of the first bearing plates. A push rod is fixed to the driving end of the cylinder, and the lower end of the push rod is fixed to the sliding plate. The top of the movable plate is connected to the bottom of the first bearing plate. The inner wall of the first bearing plate is slidably connected to the outer wall of the first sliding plate. One end of the first sliding plate is connected to one end of the first fixed plate. One side of the first fixed plate is connected to one end of the first motor. The output end of the first motor is connected to one end of a rotating rod. A rotating plate is mounted on the other end of the rotating rod. A rotating rod is mounted on one side of the rotating plate. A second fixed plate is mounted on the other side of the rotating plate. An electric telescopic rod is mounted on one side of the second fixed plate. A clamping device is mounted on one end of the electric telescopic rod. The plate has an auxiliary plate installed on one side of the clamping plate, a sliding plate slidably connected to one side of the sliding plate, a connecting plate 1 installed at one end of the sliding plate 2, a wedge plate 1 installed on one side of the connecting plate 1, a wedge plate 2 installed on the inner wall of the bearing plate 1, an adjusting bolt rotatably connected to one end of the wedge plate 2, a limit plate installed at one end of the connecting plate 1, a guide roller rotatably connected to the inner side of the limit plate, a telescopic rod 1 installed at the bottom of the sliding plate 1, a fixing plate 3 installed at the top of the sliding plate 1, a guide rod 1 installed on one side of the fixing plate 3, a connecting plate 2 slidably connected to the outer wall of the guide rod 1, a piston rod installed at the bottom of the sliding plate 1, a piston plate installed at the bottom of the piston rod, a piston box slidably connected to the outer wall of the piston plate, an air guide pipe connected to one side of the piston box, a cleaning plate installed at the bottom of the moving plate, and a displacement sensor installed at the top of the moving plate.

[0007] An auxiliary mechanism is provided above the base plate.

[0008] In a preferred embodiment of the present invention, the auxiliary mechanism includes a second motor, a bidirectional threaded rod, a third connecting plate, a second guide rod, and the output end of the second motor connected to one end of the bidirectional threaded rod. The top of the bottom plate is connected to the bottom of the third connecting plate, one side of the third connecting plate is connected to one end of the second guide rod, and the bottom of the bottom plate is connected to the top of the collection box. A placement plate is installed on the inner wall of the collection box, and an electric telescopic rod is installed on the inner side of the placement plate. A second bearing plate is installed on the top of the second electric telescopic rod, and a second telescopic rod is installed on the bottom of the second bearing plate. An adjusting rod is slidably connected to the inner side of the second bearing plate, and a guide plate is installed on the top of the adjusting rod. A second guide roller is rotatably connected to the inner side of the guide plate.

[0009] In a preferred embodiment of the present invention, an auxiliary mechanism is provided above the base plate. The auxiliary mechanism includes a second motor, a bidirectional threaded rod, a third connecting plate, a second guide rod, and the output end of the second motor connected to one end of the bidirectional threaded rod. The top of the base plate is connected to the bottom of the third connecting plate, one side of the third connecting plate is connected to one end of the second guide rod, and the bottom of the base plate is connected to the top of the collection box. A placement plate is installed on the inner wall of the collection box, and an electric telescopic rod is installed on the inner side of the placement plate. A second bearing plate is installed on the top of the second electric telescopic rod, and a second telescopic rod is installed on the bottom of the second bearing plate. An adjusting rod is slidably connected to the inner side of the second bearing plate, and a guide plate is installed on the top of the adjusting rod. A second guide roller is rotatably connected to the inner side of the guide plate.

[0010] In a preferred embodiment of the present invention, the movable plate is T-shaped, and there are two movable plates symmetrically distributed on the top of the base plate. There are four bearing plates symmetrically distributed on the top of the two movable plates. There are two sliding plates symmetrically distributed on both sides of the fixed plate. This allows for quick and convenient clamping and fixing of quartz devices, and enables movement after clamping and fixing, thereby better securing the quartz devices.

[0011] In a preferred embodiment of the present invention, there are two clamping plates, which are symmetrically distributed on one side of the rotating plate. A rotating groove is provided on one side of the fixing plate, and one end of the rotating rod is slidably connected to the inner side of the rotating groove. The connecting plate is L-shaped, and there are two guide rollers, which are symmetrically distributed on both sides of the rotating plate. This further clamps and fixes the quartz device, and better assists the quartz device in rotating, thereby enabling better welding of the quartz device.

[0012] In a preferred embodiment of the present invention, a spring is fixedly installed between the bottom of the sliding plate and the top of the moving plate. The connecting plate is L-shaped, and there are two connecting plates. A spring is installed between the two connecting plates. There are four air guides, which are symmetrically distributed on one side of the four bearing plates. This allows for the cleaning of impurities on the surface of the base plate while the quartz device is being moved, thus enabling better cleaning and collection of impurities and cleaning of the cleaning plate to prevent impurities from remaining in the cleaning plate.

[0013] In a preferred embodiment of the present invention, there are four connecting plates three, which are symmetrically distributed on the top of the base plate. There are two guide rods two, which are symmetrically distributed on one side of the four connecting plates three. The placement plate is U-shaped, which enables the clamped and fixed quartz device to be moved quickly and conveniently, so that it can be better connected and moved under the welding gun for welding.

[0014] In a preferred embodiment of the present invention, there are two telescopic rods, which are symmetrically distributed at the bottom of the bearing plate. The adjusting rods are L-shaped, and there are four adjusting rods, which are symmetrically distributed at the top of the bearing plate. A spring is fixedly installed between one side of the adjusting rod and the inner side of the bearing plate, thereby enabling quick and convenient adjustment of the position of the guide roller, further limiting and fixing the quartz device, and better assisting the quartz device in rotation, thus improving welding efficiency.

[0015] In a preferred embodiment of the present invention, the bearing plate three is L-shaped, the number of reinforcing plates is two, the reinforcing plates are symmetrically distributed on both sides of the connecting plate four, the two ends of the guide rod three are fixedly connected to the inner side of the bearing plate three, the connecting plate four is Z-shaped, the top of the threaded plate is fixedly connected to one side of the connecting plate four, and the mounting plate one is T-shaped, thereby enabling quick and convenient adjustment of the welding gun position and quick and convenient disassembly and assembly of the welding gun, thus making it more convenient for operators to use.

[0016] In a preferred embodiment of the present invention, the bottom of the base plate is fixedly connected to the top of the support leg, the inner wall of the movable plate is threadedly connected to the outer wall of the bidirectional threaded rod, the bottom of the telescopic rod is fixedly connected to the top of the movable plate, one end of the base plate is fixedly connected to one end of the motor, a movable door is installed on the front of the collection box, and one side of the base plate is fixedly connected to one end of the bearing plate.

[0017] Compared with the prior art, the present invention has the following advantages:

[0018] This invention enables quick and convenient clamping and fixing of quartz devices through a fixing mechanism installed on the base plate. This solves the problem that in actual use, when clamping and fixing quartz devices for welding, operators need to manually disassemble the devices before they can be rotated. When moving the quartz devices, impurities on the base plate can be cleaned at the same time, thereby improving the working efficiency of the fixing device and reducing the labor intensity of the operators.

[0019] This invention enables the quick and convenient movement of clamped and fixed quartz devices through an auxiliary mechanism installed above the base plate. The installation of guide rod two increases the stability during movement, and guide roller two further clamps and fixes the quartz devices and assists in the rotation of the quartz devices, thereby enabling better welding work.

[0020] This invention enables quick and convenient adjustment of the welding torch position through a welding mechanism installed on one side of the base plate, thereby enabling better welding of quartz devices and quick and convenient assembly and disassembly of the welding torch, making it more convenient for operators to use and improving the convenience of the fixing device.

[0021] The specific embodiments of the present invention will now be described in further detail with reference to the accompanying drawings. Attached Figure Description

[0022] In the attached diagram:

[0023] Figure 1 A three-dimensional structural diagram of a fixing device for high-temperature welding of quartz devices;

[0024] Figure 2 A cross-sectional schematic diagram of a fixing device for high-temperature welding of quartz devices;

[0025] Figure 3 A schematic diagram of the fixing mechanism for a high-temperature welding device for quartz devices. Figure 1 ;

[0026] Figure 4 A schematic diagram of the fixing mechanism for a high-temperature welding device for quartz devices. Figure 2 ;

[0027] Figure 5 A schematic diagram of the fixing mechanism for a high-temperature welding device for quartz devices. Figure 3 ;

[0028] Figure 6 A schematic diagram of the fixing mechanism for a high-temperature welding device for quartz devices. Figure 4 ;

[0029] Figure 7 A schematic diagram of the auxiliary mechanism for fixing a quartz device during high-temperature welding. Figure 1 ;

[0030] Figure 8 A schematic diagram of the auxiliary mechanism for fixing a quartz device during high-temperature welding. Figure 2 ;

[0031] Figure 9A schematic diagram of the welding mechanism for a high-temperature welding device for quartz devices. Figure 1 ;

[0032] Figure 10 A schematic diagram of the welding mechanism for a high-temperature welding device for quartz devices. Figure 2 .

[0033] In the diagram: 1. Base plate; 2. Support leg; 3. Fixing mechanism; 301. Moving plate; 302. Bearing plate one; 303. Sliding plate one; 304. Fixing plate one; 305. Motor one; 306. Rotating rod; 307. Rotating plate; 308. Rotating rod; 309. Fixing plate two; 310. Electric telescopic rod one; 311. Clamping plate; 312. Auxiliary plate; 313. Sliding plate two; 314. Connecting plate one; 315. Wedge plate one; 316. Wedge plate two; 317. Adjusting bolt; 318. Limiting plate; 319. Guide roller one; 320. Telescopic rod one; 321. Spring one; 322. Fixing plate three; 323. Guide rod one; 324. Connecting plate two; 325. Spring two; 326. Piston rod; 327. Piston plate; 328. Piston box; 329. Air guide pipe; 330. Cleaning plate; 331. Displacement sensor; 332. Cylinder; 333. Push rod; 4. Auxiliary mechanism; 401. Motor II; 402. Bidirectional threaded rod; 403. Connecting plate III; 404. Guide rod II; 405. Collection box; 406. Placement plate; 407. Electric telescopic rod II; 408. Bearing plate II; 409. Telescopic rod II; 410. Adjusting rod; 411. Guide plate; 412. Guide roller II; 5. Welding mechanism; 501. Bearing plate III; 502. Electric telescopic rod III; 503. Connecting plate IV; 504. Reinforcing plate; 505. Guide rod III; 506. Mounting plate I; 507. Mounting plate II; 508. Fixing bolt; 509. Threaded plate; 510. Welding torch. Detailed Implementation

[0034] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate the present invention.

[0035] Example 1:

[0036] like Figures 1 to 10As shown, a fixing device for high-temperature welding of quartz devices includes a base plate 1 and supporting legs 2. A fixing mechanism 3 is arranged above the base plate 1. The fixing mechanism 3 includes a movable plate 301, a bearing plate 302, a sliding plate 303, a fixing plate 304, and a motor 305. Cylinders 332 are installed on the top of the bearing plate 302. A push rod 333 is fixed to the driving end of the cylinder 332, and the lower end of the push rod 333 is fixed to the sliding plate 303. The top of the movable plate 301 is connected to the bottom of the bearing plate 302. The inner wall of the bearing plate 302 is connected to the sliding plate 303. The outer wall of sliding plate 303 is slidably connected. One end of sliding plate 303 is connected to one end of fixed plate 304. One side of fixed plate 304 is connected to one end of motor 305. The output end of motor 305 is connected to one end of rotating rod 306. A rotating plate 307 is installed on the other end of rotating rod 306. A rotating rod 308 is installed on one side of rotating plate 307. A fixed plate 309 is installed on the other side of rotating plate 307. An electric telescopic rod 310 is installed on one side of fixed plate 309. A clamping plate is installed at one end of electric telescopic rod 310. 311, an auxiliary plate 312 is installed on one side of the clamping plate 311; a sliding plate 313 is slidably connected to one side of the sliding plate 303; a connecting plate 314 is installed at one end of the sliding plate 313; a wedge plate 315 is installed on one side of the connecting plate 314; a wedge plate 316 is installed on the inner wall of the bearing plate 302; an adjusting bolt 317 is rotatably connected to one end of the wedge plate 316; a limit plate 318 is installed at one end of the connecting plate 314; a guide roller 319 is rotatably connected to the inner side of the limit plate 318; a telescopic... A rod 320, a sliding plate 303 is mounted on top of a fixed plate 322, a guide rod 323 is mounted on one side of the fixed plate 322, a connecting plate 324 is slidably connected to the outer wall of the guide rod 323, a piston rod 326 is mounted at the bottom of the sliding plate 303, a piston plate 327 is mounted at the bottom of the piston rod 326, a piston box 328 is slidably connected to the outer wall of the piston plate 327, an air guide pipe 329 is connected to one side of the piston box 328, a cleaning plate 330 is mounted at the bottom of the moving plate 301, and a displacement sensor 331 is mounted at the top of the moving plate 301;

[0037] In this embodiment, the movable plate 301 is T-shaped, and there are two movable plates 301, which are symmetrically distributed on the top of the base plate 1. There are four bearing plates 302, which are symmetrically distributed on the top of the two movable plates 301. There are two sliding plates 303, which are symmetrically distributed on both sides of the fixed plate 304. This allows for quick and convenient clamping and fixing of quartz devices, and also enables movement after clamping and fixing, thus better fixing of the quartz devices.

[0038] Furthermore, there are two clamping plates 311, which are symmetrically distributed on one side of the rotating plate 307. A rotating groove is opened on one side of the fixing plate 304. One end of the rotating rod 308 is slidably connected to the inner side of the rotating groove. The connecting plate 314 is L-shaped. There are two guide rollers 319, which are symmetrically distributed on both sides of the rotating plate 307. This allows for further lateral clamping of the quartz device. The guide rollers 319 can ensure that the quartz tube can still rotate during the clamping process and can better assist the quartz device in rotating, thereby enabling better welding of the quartz device.

[0039] Furthermore, a spring 321 is fixedly installed between the bottom of the sliding plate 303 and the top of the moving plate 301. The connecting plate 324 is L-shaped, and there are two connecting plates 324. A spring 325 is installed between the two connecting plates 324. There are four air guide tubes 329, which are symmetrically distributed on one side of the four bearing plates 302. This allows the impurities on the surface of the base plate 1 to be cleaned while the quartz device is being moved, thus enabling better cleaning and collection of impurities. It also allows for cleaning of the cleaning plate 330, preventing impurities from remaining in the cleaning plate 330.

[0040] Example 2:

[0041] An auxiliary mechanism 4 is provided above the base plate 1;

[0042] The auxiliary mechanism 4 includes a second motor 401, a bidirectional threaded rod 402, a third connecting plate 403, a second guide rod 404, and a collection box 405. The output end of the second motor 401 is connected to one end of the bidirectional threaded rod 402. The top of the base plate 1 is connected to the bottom of the third connecting plate 403. One side of the third connecting plate 403 is connected to one end of the second guide rod 404. The bottom of the base plate 1 is connected to the top of the collection box 405. A placement plate 406 is installed on the inner wall of the collection box 405. An electric telescopic rod 407 is installed on the inner side of the placement plate 406. A bearing plate 408 is installed on the top of the electric telescopic rod 407. A telescopic rod 409 is installed on the bottom of the bearing plate 408. An adjusting rod 410 is slidably connected to the inner side of the bearing plate 408. A guide plate 411 is installed on the top of the adjusting rod 410. A guide roller 412 is rotatably connected to the inner side of the guide plate 411.

[0043] In this embodiment, there are four connecting plates 403, which are symmetrically distributed on the top of the base plate 1. There are two guide rods 404, which are symmetrically distributed on one side of the four connecting plates 403. The placement plate 406 is U-shaped, which allows the clamped and fixed quartz device to be moved quickly and conveniently so that it can be better connected and moved under the welding gun 510 for welding.

[0044] Furthermore, there are two telescopic rods 409, which are symmetrically distributed at the bottom of the bearing plate 408. The adjusting rods 410 are L-shaped, and there are four adjusting rods 410, which are symmetrically distributed at the top of the bearing plate 408. A spring 3 is fixedly installed between one side of the adjusting rod 410 and the inner side of the bearing plate 408, so that the position of the guide roller 412 can be quickly and conveniently adjusted, thereby further limiting and fixing the quartz device, and better assisting the rotation of the quartz device, thus improving the welding efficiency.

[0045] Example 3:

[0046] A welding mechanism 5 is provided on one side of the base plate 1;

[0047] The welding mechanism 5 includes a bearing plate 3 501, an electric telescopic rod 3 502, a connecting plate 4 503, a reinforcing plate 504, and a guide rod 3 505. The inner wall of the bearing plate 3 501 is connected to the outer wall of the electric telescopic rod 3 502. The bottom of the electric telescopic rod 3 502 is connected to the top of the connecting plate 4 503. One side of the connecting plate 4 503 is connected to one end of the reinforcing plate 504. The inner wall of the reinforcing plate 504 is slidably connected to the outer wall of the guide rod 3 505. An installation plate 1 506 is installed on the inner wall of the connecting plate 4 503. An installation plate 2 507 is inserted into the bottom of the installation plate 1 506. A fixing bolt 508 is threadedly connected to the inner wall of the installation plate 2 507. A threaded plate 509 is threadedly connected to the outer wall of the fixing bolt 508. A welding gun 510 is installed at the bottom of the installation plate 2 507.

[0048] In this embodiment, the bearing plate 3 501 is L-shaped, and there are two reinforcing plates 504. The reinforcing plates 504 are symmetrically distributed on both sides of the connecting plate 4 503. The two ends of the guide rod 3 505 are fixedly connected to the inner side of the bearing plate 3 501. The connecting plate 4 503 is Z-shaped. The top of the threaded plate 509 is fixedly connected to one side of the connecting plate 4 503. The mounting plate 1 506 is T-shaped, which allows for quick and convenient adjustment of the position of the welding gun 510 and quick and convenient disassembly and assembly of the welding gun 510, making it more convenient for operators to use.

[0049] Furthermore, the bottom of the base plate 1 is fixedly connected to the top of the support leg 2, the inner wall of the movable plate 301 is threadedly connected to the outer wall of the bidirectional threaded rod 402, the bottom of the telescopic rod 320 is fixedly connected to the top of the movable plate 301, one end of the base plate 1 is fixedly connected to one end of the motor 401, the front of the collection box 405 is equipped with a movable door, and one side of the base plate 1 is fixedly connected to one end of the bearing plate 501.

[0050] The implementation principle of the fixing device for high-temperature welding of quartz devices in this embodiment is as follows: When welding of quartz devices is required, the operator places the quartz device on the clamping plate 311. By activating the electric telescopic rod 310, the two clamping plates 311 can move relative to each other. The movement of the clamping plates 311 can drive the auxiliary plate 312 to slide, thereby quickly and conveniently clamping and fixing the quartz device, thus enabling better welding work. After the quartz device is clamped and fixed, the cylinder 332, in conjunction with the push rod 333, pushes the fixing plate 304 downward, thereby fixing the device. The movement of plate 304 causes telescopic rod 320 to extend and retract, simultaneously compressing spring 321, thus effectively increasing the stability of the fixed plate 304 during movement. The downward movement of the fixed plate 304 causes sliding plate 303 to slide inside the bearing plate 302. During the downward sliding of sliding plate 303, the fixed plate 322, guide rod 323, connecting plate 324, wedge plate 315, and limiting plate 318 simultaneously slide downward. Specifically, the limiting plate 318, connecting plate 324, and guide rod 323 move simultaneously with the fixed plate 304. Moving downwards, the limiting plate 318 slides on the guide rod 323 during movement. The sliding plate 303 indirectly drives the connecting plate 314 to move. The movement of the connecting plate 314 drives the wedge plate 315 to move. When the wedge plate 315 moves, it contacts the wedge plate 316, thus squeezing the connecting plate 314. The movement of the connecting plate 314 causes the sliding plate 313 to slide on one side of the sliding plate 303. The movement of the connecting plate 314 drives the limiting plate 318 to move. The movement of the limiting plate 318 drives the connecting plate 324 to move on the guide rod 323. Sliding on 323, the movement of connecting plate 2 324 can compress spring 2 325 to move. When the quartz device is removed, the elastic force of telescopic rod 1 320 and spring 1 321 can reset sliding plate 1 303, thereby gradually separating wedge plate 1 315 from wedge plate 2 316, and then resetting limiting plate 318. At this time, the movement of limiting plate 318 can drive guide roller 1 319 to move. The movement of guide roller 1 319 can limit and fix the quartz device, thereby playing an auxiliary role in rotation and clamping during rotation, and thus better clamping and fixing.

[0051] When welding quartz components, the motor 305 is started, driving the rotating rod 306 to rotate. The rotating rod 306 then drives the rotating plate 307 to rotate, which in turn drives the rotating rod 308 to rotate within the rotating groove, increasing the stability of the rotating plate 307. As the rotating plate 307 rotates, the quartz component rotates, facilitating better welding. After welding, the adjusting bolt 317 is rotated, moving the wedge plate 316 and releasing the limiting fixation on the wedge plate 315, allowing the limiting plate 318 to reset. At this point, the clamping plate 311 releases the limiting fixation on the quartz component, allowing it to be removed. After the quartz component is clamped and fixed, the moving plate 301 moves, driving the cleaning plate 3... The movement of the cleaning plate 330 allows for the cleaning of impurities on the surface of the base plate 1, improving the collection and cleaning of impurities. As the sliding plate 303 moves, it drives the piston rod 326, which in turn drives the piston plate 327 to slide inside the piston box 328. This compresses the air inside the piston box 328, allowing it to be blown onto the cleaning plate 330 through the air guide pipe 329, thus cleaning the cleaning plate 330 and preventing impurities from remaining there. This makes it easier for operators to use. When the fixed plate 304 moves downwards, the displacement sensor 331 detects this movement. Upon detection, it activates the electric telescopic rods 407 and 502, enabling them to work synchronously for better operation and increased work efficiency.

[0052] The operator places the quartz component onto the clamping plate 311. Once clamped and fixed, the second motor 401 is activated, driving the bidirectional threaded rod 402 to rotate. The rotation of the bidirectional threaded rod 402 causes the two moving plates 301 to slide relative to each other on the second guide rod 404, thus moving and aligning the quartz component for better welding. When the second electric telescopic rod 407 operates, it moves the second support plate 408. The movement of the second support plate 408 causes the second telescopic rod 409 to extend and retract, increasing the stability of the second support plate 408's movement. The movement of the second support plate 408 indirectly moves the second guide roller 412. The two guide rollers 412 can move to contact the quartz device, and with continuous movement, they can drive the guide plate 411 to move. The movement of the guide plate 411 drives the adjusting rod 410 to slide on the support plate 408. The sliding of the adjusting rod 410 can compress the spring 3, thereby adjusting the distance between the two guide rollers 412, so that it can clamp quartz devices of different sizes, and further clamp and fix the quartz devices, and better rotate the quartz devices, improve the stability of rotation, and better perform welding work. By installing the collection box 405, the impurities generated during welding can be collected and stored, which makes it more convenient for operators to handle them centrally later.

[0053] The operator places the quartz device onto the clamping plate 311. After clamping and fixing, the quartz device is moved below the welding torch 510. When the electric telescopic rod 3 502 operates, it can drive the connecting plate 4 503 to move. The movement of the connecting plate 4 503 causes the reinforcing plate 504 to slide on the guide rod 3 505, thereby increasing the stability of the connecting plate 4 503 during movement. The movement of the connecting plate 4 503 can indirectly drive the movement of the welding torch 510, thereby adjusting the height of the welding torch 510 and enabling better welding of the quartz device. When the welding torch 510 needs to be disassembled, the operator rotates the fixing bolt 508 to move it, causing the fixing bolt 508 to be pulled out of the mounting plate 2 507 and the threaded plate 509. This allows the mounting plate 2 507 to be pulled out of the mounting plate 1 506, thus enabling the welding torch 510 to be removed and replaced. When installation is required, the welding torch 510 is inserted into the mounting plate 1 506, and the fixing bolt 508 is fixed to the mounting plate 2 507 and the fixing bolt 508 to complete the fixation. This makes disassembly and assembly more convenient and easier for operators to use.

Claims

1. A fixing device for high temperature soldering of quartz devices, comprising a base plate (1), support legs (2), characterized in that, The bottom plate (1) is provided with a fixing mechanism (3), the fixing mechanism (3) includes a moving plate (301), a bearing plate one (302), a sliding plate one (303), a fixed plate one (304), a motor one (305), the top of bearing plate one (302) is equipped with a cylinder (332), the drive end of cylinder (332) is fixed with a push rod (333), and the lower end of push rod (333) is fixed on sliding plate (303), the top of moving plate (301) is connected with the bottom of bearing plate one (302), the inner wall of bearing plate one (302) is connected with the outer wall of sliding plate one (303), one end of sliding plate one (303) is connected with one end of fixed plate one (304), one side of fixed plate one (304) is connected with one end of motor one (305), the output end of motor one (305) is connected with one end of rotating rod (306), the other end of rotating rod (306) is installed with rotating plate (307), one side of rotating plate (307) is installed with rotating rod (308), the other side of rotating plate (307) is installed with fixed plate two (309), one side of fixed plate two (309) is installed with electric telescopic rod one (310), one end of electric telescopic rod one (310) is installed with clamping plate (311), one side of clamping plate (311) is installed with auxiliary plate (312), one side of sliding plate one (303) is connected with sliding plate two (313), one end of sliding plate two (313) is installed with connecting plate one (314), one side of connecting plate one (314) is installed with wedge plate one (315), the inner wall of bearing plate one (302) is installed with wedge plate two (316), the fixed plate one (304) is moved downward to drive the sliding plate one (303) to slide in the inner side of bearing plate one (302), the fixed plate three (322), guide rod one (323), connecting plate two (324), wedge plate one (315) and limiting plate (318) are simultaneously slid downward in the process that the sliding plate one (303) slides downward, specifically, the limiting plate (318), connecting plate two (324) and guide rod one (323) are simultaneously moved downward along with the fixed plate one (304), the limiting plate (318) slides on the guide rod one (323) during the movement, the connecting plate one (314) is indirectly moved by the sliding of the sliding plate one (303), the connecting plate one (314) is moved to drive the sliding plate two (313) to slide on one side of the sliding plate one (303), the limiting plate (318) is moved by the movement of the connecting plate one (314), the connecting plate two (324) is slid on the guide rod one (323) by the movement of the limiting plate (318), spring two (325) is moved by the movement of the connecting plate two (324). One end of the wedge-shaped plate two (316) is rotationally connected with an adjusting bolt (317), one end of the connecting plate one (314) is installed with a limiting plate (318), the inner side of the limiting plate (318) is rotationally connected with a guide roller one (319), the bottom of the sliding plate one (303) is installed with a telescopic rod one (320), the top of the sliding plate one (303) is installed with a fixed plate three (322), one side of the fixed plate three (322) is installed with a guide rod one (323), the outer wall of the guide rod one (323) is slidably connected with a connecting plate two (324), the bottom of the sliding plate one (303) is installed with a piston rod (326), the bottom of the piston rod (326) is installed with a piston plate (327), the outer wall of the piston plate (327) is slidably connected with a piston box (328), one side of the piston box (328) is connected with a gas guide pipe (329) in communication, the bottom of the moving plate (301) is installed with a cleaning plate (330), the top of the moving plate (301) is installed with a displacement sensor (331); The shape of the moving plate (301) is T-shaped, the number of the moving plate (301) is two, the moving plate (301) is respectively and symmetrically distributed on the top of the bottom plate (1), the number of the bearing plate one (302) is four, the bearing plate one (302) is respectively and symmetrically distributed on the top of the two moving plates (301), the number of the sliding plate one (303) is two, the sliding plate one (303) is respectively and symmetrically distributed on the two sides of the fixed plate one (304); The number of the clamping plate (311) is two, the clamping plate (311) is respectively and symmetrically distributed on one side of the rotating plate (307), the fixed plate one (304) is provided with a rotating groove on one side, one end of the rotating rod (308) is slidably connected with the inner side of the rotating groove, the shape of the connecting plate one (314) is L-shaped, the number of the guide roller one (319) is two, the guide roller one (319) is respectively and symmetrically distributed on the two sides of the rotating plate (307); The spring one (321) is fixedly installed between the bottom of the sliding plate one (303) and the top of the moving plate (301), the shape of the connecting plate two (324) is L-shaped, the connecting plate two (324) is two, the spring two (325) is installed between the two connecting plate two (324), the number of the gas guide pipe (329) is four, the gas guide pipe (329) is respectively and symmetrically distributed on one side of the four bearing plates one (302); The bottom plate (1) is provided with an auxiliary mechanism (4) above, the auxiliary mechanism (4) comprises a motor two (401), a double-thread rod (402), a connecting plate three (403), a guide rod two (404) and a collection box (405), the output end of the motor two (401) is connected with one end of the double-thread rod (402), the top of the bottom plate (1) is connected with the bottom of the connecting plate three (403), one side of the connecting plate three (403) is connected with one end of the guide rod two (404), and the bottom of the bottom plate (1) is connected with the top of the collection box (405).

2. A high temperature soldered mounting for a quartz device as claimed in claim 1, characterized in that The inner wall of the collecting box (405) is provided with a placing plate (406), the inner side of the placing plate (406) is provided with an electric telescopic rod two (407), the top of the electric telescopic rod two (407) is provided with a bearing plate two (408), the bottom of the bearing plate two (408) is provided with a telescopic rod two (409), the inner side of the bearing plate two (408) is slidably connected with an adjusting rod (410), the top of the adjusting rod (410) is provided with a guide plate (411), and the inner side of the guide plate (411) is rotatably connected with a guide roller two (412).

3. A high temperature soldered mounting for a quartz device as claimed in claim 2, wherein The bottom plate (1) is provided with a welding mechanism (5), the welding mechanism (5) comprises a bearing plate three (501), an electric telescopic rod three (502), a connecting plate four (503), a reinforcing plate (504) and a guide rod three (505), the inner wall of the bearing plate three (501) and the outer wall of the electric telescopic rod three (502) are connected with each other, the bottom of the electric telescopic rod three (502) and the top of the connecting plate four (503) are connected with each other, one side of the connecting plate four (503) and one end of the reinforcing plate (504) are connected with each other, the inner wall of the reinforcing plate (504) and the outer wall of the guide rod three (505) are slidably connected, the inner wall of the connecting plate four (503) is provided with a mounting plate one (506), the bottom of the mounting plate one (506) is inserted with a mounting plate two (507), the inner wall of the mounting plate two (507) is threadedly connected with a fixing bolt (508), the outer wall of the fixing bolt (508) is threadedly connected with a threaded plate (509), and the bottom of the mounting plate two (507) is provided with a welding gun (510).

4. The apparatus of claim 3, wherein the apparatus is configured to be used in a high temperature soldering process. The number of the connecting plate three (403) is four, the connecting plate three (403) is symmetrically distributed on the top of the bottom plate (1), the number of the guide rod two (404) is two, the guide rod two (404) is symmetrically distributed on one side of the four connecting plate three (403), and the shape of the placing plate (406) is U-shaped.

5. A high temperature soldered mounting for a quartz device as claimed in claim 4, wherein The number of the telescopic rod two (409) is two, the telescopic rod two (409) is symmetrically distributed on the bottom of the bearing plate two (408), the shape of the adjusting rod (410) is L-shaped, the number of the adjusting rod (410) is four, the adjusting rod (410) is symmetrically distributed on the top of the bearing plate two (408), and the spring three is fixedly installed between one side of the adjusting rod (410) and the inner side of the bearing plate two (408).

6. A high temperature soldered mounting for a quartz device as claimed in claim 5, wherein The shape of the bearing plate three (501) is L-shaped, the number of the reinforcing plate (504) is two, the reinforcing plate (504) is symmetrically distributed on the two sides of the connecting plate four (503), the two ends of the guide rod three (505) and the inner side of the bearing plate three (501) are fixedly connected, the shape of the connecting plate four (503) is Z-shaped, the top of the threaded plate (509) and one side of the connecting plate four (503) are fixedly connected, and the shape of the mounting plate one (506) is T-shaped.

7. A high temperature soldered mounting for a quartz device as claimed in claim 6, wherein The bottom of the bottom plate (1) is fixedly connected with the top of the supporting leg (2), the inner wall of the moving plate (301) is in threaded connection with the outer wall of the bidirectional threaded rod (402), the bottom of the telescopic rod one (320) is fixedly connected with the top of the moving plate (301), one end of the bottom plate (1) is fixedly connected with one end of the motor two (401), the front of the collecting box (405) is provided with a movable door, and one side of the bottom plate (1) is fixedly connected with one end of the bearing plate three (501).

Citation Information

Patent Citations

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