Material tail intermittent ignition device for frit processing
By designing an intermittent ignition device for glass frit processing, intermittent ignition is achieved by using the cooperation of the gas solenoid valve and the ignition needle body, the problem of excessive bottom mold temperature caused by continuous heating is solved, energy consumption is reduced and processing quality is improved.
Patent Information
- Application Number
- CN202421442468.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-24
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2034-06-24
AI Technical Summary
In the prior art, continuous heating during the processing of glass frit will cause the bottom mold temperature to be too high, affecting the processing quality of glass frit and causing energy waste.
A material tail intermittent ignition device for glass frit processing is designed, including a bearing pad and a material processing controller. Through the cooperation of the gas solenoid valve and the ignition needle body, the glass frit processing controller is used to control the on-off of the gas solenoid valve and the work of the ignition needle to achieve intermittent ignition.
Through the design of intermittent ignition, energy consumption is reduced, the problem of excessive bottom mold temperature is avoided, uniform heating of the glass frit is ensured, and processing quality is improved.
Smart Images

Figure CN222886711U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of glass batch processing. Specifically, it relates to an intermittent ignition device for the material tail of glass batch processing. Background Art
[0002] After the glass batch is taken out of the kiln, it needs to be cut before being put into the bottom mold for molding. The temperature near the cut will be relatively low. However, when subsequent molding is required, the temperature of the entire glass batch needs to be uniform. Therefore, it is necessary to heat the port part. Continuous heating will cause the temperature of the bottom mold to be too high, which will have a certain impact on the processing of the glass batch and also cause waste of energy. Content of the Utility Model
[0003] The purpose of the utility model is to provide an intermittent ignition device for the material tail of glass batch processing, so as to solve the problem that continuous heating in the prior art will cause the temperature of the bottom mold to be too high and have a certain impact on the processing of the glass batch.
[0004] The utility model provides the following technical solution: An intermittent ignition device for the material tail of glass batch processing, including a receiving pad and a glass batch processing controller. An intermittent ignition mechanism is arranged on the receiving pad. The intermittent ignition mechanism includes a square through pipe and a support seat. The square through pipe is fixedly installed on the top of the receiving pad. The front and back of the square through pipe are fixedly connected with gooseneck gas pipes. The right side of the square through pipe is fixedly connected with a gas solenoid valve. The right side of the gas solenoid valve is threadedly connected with a main gas pipe. The end of the gooseneck gas pipe far away from the square through pipe is fixedly connected with a combustion nozzle. The end of the combustion nozzle far away from the gooseneck gas pipe is fixedly connected with a branch nozzle. An ignition needle body is arranged on the combustion nozzle. The gas solenoid valve and the ignition needle body are both electrically connected with the glass batch processing controller. Through the cooperation of the glass batch processing controller, the gas solenoid valve and the ignition needle body, the function of intermittent ignition can be realized.
[0005] As a preference of the above technical solution, the support seat is fixedly installed at the bottom of the receiving pad. A fitting sliding seat is movably inserted at the bottom of the support seat. The top of the inner wall of the fitting sliding seat is fixedly installed with a second magnetic block. The top of the second magnetic block is fixedly connected with the bottom of the support seat. The second magnetic block is used to position the support seat.
[0006] As a preference of the above technical solution, a support frame is slidably connected to the inner wall of the fitting sliding seat. A positioning seat is fixedly installed at the end of the support frame. A first magnetic block is fixedly installed on the inner wall of the positioning seat. The outer wall of the first magnetic block is movably connected with the outer wall of the fitting sliding seat. The first magnetic block is used to position the fitting sliding seat.
[0007] As a preference of the above technical solution, a one-way pipe is fixedly connected to the top of the square through pipe, and a porous pipe is fixedly connected to the top of the inner wall of the square through pipe. The porous pipe can make air evenly blend into the fuel gas.
[0008] As a preference of the above technical solution, a blower is fixedly connected to the middle of the one-way pipe, and a bent pipe is fixedly connected to the top of the vertical cylinder. The blower can absorb air and transport it to the inside of the square through pipe.
[0009] As a preference of the above technical solution, a socket cylinder is detachably connected to the right side of the bent pipe. A rubber ring is fixedly sleeved on the outer wall of the socket cylinder, and the outer wall of the rubber ring is movably connected to the inner wall of the bent pipe. The rubber ring can seal the connection between the socket cylinder and the bent pipe.
[0010] As a preference of the above technical solution, a HEPA filter cylinder located in the inner cavity of the bent pipe is detachably connected to the left side of the socket cylinder, and a stainless steel filter cylinder located in the inner cavity of the HEPA filter cylinder is fixedly connected to the left side of the socket cylinder. Through the cooperation of the HEPA filter cylinder and the stainless steel filter cylinder, the incoming air can be filtered to ensure safety.
[0011] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0012] Through the design of the fuel gas solenoid valve and the ignition needle body in the present utility model, the glass material processing controller can control the on-off of the fuel gas solenoid valve and the operation of the ignition needle body by means of the working signal of the glass material scissors, so that the structure ignites and heats during a short period of time when the scissors cut the glass material, and is in an extinguished state at other times. This can reduce the energy consumption, and at the same time is beneficial to the control of the bottom die temperature, preventing the temperature from rising too high and avoiding the problem that continuous heating will have a certain impact on the processing of the glass material. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 is a three-dimensional view of the present utility model;
[0014] Figure 2 is Figure 1 the enlarged view of the structure at A in
[0015] Figure 3 is the separated structure schematic diagram of the support seat and the fitting sliding seat of the present utility model;
[0016] Figure 4 is the sectional structure schematic diagram of the square through pipe of the present utility model;
[0017] Figure 5 is the overall exploded structure schematic diagram of the socket cylinder of the present utility model.
[0018] In the figure: 1. Receiver pad; 2. Intermittent ignition mechanism; 21. Square through pipe; 22. Gooseneck gas pipe; 221. Combustion nozzle; 222. Branch nozzle; 223. Ignition needle body; 23. Gas solenoid valve; 24. Gas pipe body; 25. Support seat; 251. Positioning seat; 252. Support frame; 253. First magnetic block; 254. Fitting slide seat; 255. Second magnetic block; 26. One-way pipe; 261. Vertical cylinder; 262. Blower; 263. Multi-hole pipe; 264. Folding pipe; 265. Plug-in cylinder; 266. Stainless steel filter cartridge; 267. HEPA filter cartridge. Specific implementation method
[0019] The following will combine the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model.
[0020] If Figure 1 - Figure 2 As shown, the utility model provides a technical solution: an intermittent ignition device for glass material processing, comprising a receiving pad 1 and a glass material processing controller, an intermittent ignition mechanism 2 is arranged on the receiving pad 1, the intermittent ignition mechanism 2 comprises a square through pipe 21 and a support seat 25, the square through pipe 21 is fixedly installed on the top of the receiving pad 1, the front and back of the square through pipe 21 are fixedly connected with a gooseneck gas pipe 22, the right side of the square through pipe 21 is fixedly connected with a gas solenoid valve 23, the right side of the gas solenoid valve 23 is threadedly connected with a gas pipe body 24, the end of the gooseneck gas pipe 22 away from the square through pipe 21 is fixedly connected with a combustion nozzle 221, The end of the combustion nozzle 221 away from the gooseneck gas pipe 22 is fixedly connected with a branch nozzle 222. The combustion nozzle 221 is provided with an ignition needle body 223. The gas solenoid valve 23 and the ignition needle body 223 are both connected with the glass material processing controller by electrical signals. The glass material processing controller controls the glass material scissors to work while controlling the gas solenoid valve 23 to open for a period of time and controlling the ignition needle body 223 to ignite, that is, to achieve the function of intermittent ignition, reduce energy waste, and avoid overheating. Through the design of the branch nozzle 222, the gas can be diverted and sprayed, the contact effect between the gas and the air is improved, and the combustion sufficiency is increased.
[0021] As an implementation method in this embodiment, such as Figure 3As shown, the support seat 25 is fixedly installed at the bottom of the receiving pad 1, and a fitting slide seat 254 is movably inserted at the bottom of the support seat 25. A second magnetic block 255 is fixedly installed at the top of the inner wall of the fitting slide seat 254. The top of the second magnetic block 255 is fixedly connected to the bottom of the support seat 25. A support frame 252 is slidably connected to the inner wall of the fitting slide seat 254. A positioning seat 251 is fixedly installed at the end of the support frame 252. A first magnetic block 253 is fixedly installed on the inner wall of the positioning seat 251. The outer wall of the first magnetic block 253 is movably connected to the outer wall of the fitting slide seat 254. The movable connection is realized by the design of the matching slide 254, so that the support seat 25 can be supported by movable limit position. The design of the second magnetic block 255 can magnetically position the support seat 25, so that the user can disassemble and maintain the square tube 21 as a whole. The matching slide 254 can slide on the outer wall of the support frame 252, so that the user can withdraw the square tube 21 as a whole, so that the user can maintain other components of the glass material processing. The design of the first magnetic block 253 can magnetically position the matching slide 254 after it slides into place.
[0022] As an implementation method in this embodiment, such as Figure 4 - Figure 5 As shown in FIG. 1 , a one-way tube 26 is fixedly connected to the top of the square through-tube 21, a porous tube 263 is fixedly connected to the top of the inner wall of the square through-tube 21, a vertical tube 261 is fixedly connected to the top of the one-way tube 26, a blower 262 is fixedly connected to the middle of the one-way tube 26, a folded tube 264 is fixedly connected to the top of the vertical tube 261, a plug-in tube 265 is detachably connected to the right side of the folded tube 264, a rubber ring is fixedly sleeved on the outer wall of the plug-in tube 265, and the outer wall of the rubber ring is movably connected to the inner wall of the folded tube 264, a HEPA filter cartridge 267 located in the inner cavity of the folded tube 264 is detachably connected to the left side of the plug-in tube 265, and a stainless steel filter located in the inner cavity of the HEPA filter cartridge 267 is fixedly connected to the left side of the plug-in tube 265 The cylinder 266 controls the operation of the blower 262, which can absorb the air filtered by the stainless steel filter cylinder 266 and the HEPA filter cylinder 267, and transport it to the inner cavity of the porous tube 263 in one direction through the one-way tube 26. The air then passes through the porous tube 263 and evenly blends into the gas to be burned, thereby increasing the oxygen content in the gas and the sufficiency of gas combustion. The connection relationship design of the folding tube 264, the plug-in cylinder 265, the stainless steel filter cylinder 266 and the HEPA filter cylinder 267 facilitates the user to disassemble and clean the stainless steel filter cylinder 266 and the HEPA filter cylinder 267. The glass material processing controller is connected to the blower 262 by electrical signals. During the time when the gas solenoid valve 23 is opened, the blower 262 can be controlled to run synchronously.
[0023] Working principle: When in use, the structure is positioned and installed through bolts at the positioning seat 251, and then the gooseneck gas pipe 22 is bent so that the branch nozzle 222 is aligned with the glass batch shearing position. While the glass batch processing controller controls the operation of the glass batch scissors, it controls the gas solenoid valve 23 to open for a period of time and controls the ignition needle body 223 to perform ignition work, thus realizing the function of intermittent ignition.
[0024] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it.
Claims
1. A glass material processing tail intermittent ignition device, comprising a receiving pad (1) and a glass material processing controller, characterized in that: An intermittent ignition mechanism (2) is arranged on the receiving pad (1), and the intermittent ignition mechanism (2) comprises a square through-tube (21) and a support seat (25); the square through-tube (21) is fixedly mounted on the top of the receiving pad (1); the front and back sides of the square through-tube (21) are fixedly connected to a gooseneck gas pipe (22); the right side of the square through-tube (21) is fixedly connected to a gas solenoid valve (23); the right side of the gas solenoid valve (23) is threadedly connected to a gas pipe body (24); one end of the gooseneck gas pipe (22) away from the square through-tube (21) is fixedly connected to a combustion nozzle (221); one end of the combustion nozzle (221) away from the gooseneck gas pipe (22) is fixedly connected to a branch nozzle (222); an ignition needle body (223) is arranged on the combustion nozzle (221); the gas solenoid valve (23) and the ignition needle body (223) are both electrically connected to a glass material processing controller.
2. A glass material processing tail intermittent ignition device according to claim 1, characterized in that: The support seat (25) is fixedly mounted on the bottom of the receiving pad (1); a fitting slide seat (254) is movably inserted into the bottom of the support seat (25); a second magnetic block (255) is fixedly mounted on the top of the inner wall of the fitting slide seat (254); and the top of the second magnetic block (255) is fixedly connected to the bottom of the support seat (25).
3. A glass material processing tail intermittent ignition device according to claim 2, characterized in that: A support frame (252) is slidably connected to the inner wall of the mating slide seat (254); a positioning seat (251) is fixedly mounted on the end of the support frame (252); a first magnetic block (253) is fixedly mounted on the inner wall of the positioning seat (251); and an outer wall of the first magnetic block (253) is movably connected to the outer wall of the mating slide seat (254).
4. The intermittent ignition device for glass material processing tail according to claim 1, characterized in that: The top of the square through tube (21) is fixedly connected to a one-way tube (26), the top of the inner wall of the square through tube (21) is fixedly connected to a porous tube (263), and the top of the one-way tube (26) is fixedly connected to a vertical cylinder (261).
5. The glass material processing tail intermittent ignition device according to claim 4, characterized in that: The middle of the one-way tube (26) is fixedly connected to a blower (262), and the top of the vertical cylinder (261) is fixedly connected to a folded tube (264).
6. The intermittent ignition device for glass material processing tail according to claim 5, characterized in that: The right side of the folded tube (264) is detachably connected to a plug-in tube (265), a rubber ring is fixedly sleeved on the outer wall of the plug-in tube (265), and the outer wall of the rubber ring is movably connected to the inner wall of the folded tube (264).
7. The glass material processing tail intermittent ignition device according to claim 6, characterized in that: The left side of the plug-in cylinder (265) is detachably connected to a HEPA filter cartridge (267) located in the inner cavity of the folded tube (264), and the left side of the plug-in cylinder (265) is fixedly connected to a stainless steel filter cartridge (266) located in the inner cavity of the HEPA filter cartridge (267).