Total oxygen burner of glass melting furnace
By introducing an adsorption hood, adsorption pump, and multi-layer activated carbon plate structure into the all-oxygen burner, the problem of adsorption component blockage is solved, achieving efficient purification of toxic gases and convenient replacement of activated carbon plates, thus improving the purification effect and performance of the burner.
Patent Information
- Application Number
- CN202422974762.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-04
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-12-04
AI Technical Summary
The adsorption components of existing oxy-fuel burners are easily clogged by particles, affecting the purification effect. In addition, some fine particles enter the activated carbon plate and adhere to it, reducing the purification capacity.
An all-oxygen burner for a glass melting furnace was designed, which adopts an adsorption hood, an adsorption air pump, an exhaust fan, a water storage chamber, and a multi-layer activated carbon plate structure. The adsorption air pump and the exhaust fan generate suction to separate and purify fine particles and toxic gases. The water storage chamber purifies fine particles and water-soluble gases, while the multi-layer activated carbon plates filter water-insoluble gases and discharge them through the exhaust pipe.
It achieves efficient purification of toxic gases, prevents adsorption pore blockage, simplifies the replacement process of activated carbon plates, and improves the purification efficiency and quality of the burner.
Smart Images

Figure CN223512092U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of oxygen burners, and in particular relates to an oxygen burner for glass melting furnaces. Background Technology
[0002] An oxy-fuel burner is an industrial device that enables combustion with oxygen. Oxy-fuel combustion uses industrial oxygen instead of air to burn fuel, which makes the fuel burn more completely. At the same time, nitrogen in the air does not participate in the combustion during oxy-fuel combustion, which can increase the combustion temperature while saving fuel and reducing waste emissions.
[0003] A search revealed a multi-stage oxy-fuel burner with publication number CN221463824U, comprising a burner body and a combustion cylinder. An adsorption assembly and a limiting component are installed on the burner body. The adsorption assembly includes an adsorption box fixedly mounted to the top of the burner body. Two movable blocks are slidably connected inside the adsorption box. An activated carbon plate is movably connected to one side of each of the two movable blocks facing away from each other. Guide blocks are fixedly installed on the opposite sides of each of the two movable blocks. This multi-stage oxy-fuel burner, by installing the adsorption assembly, allows the activated carbon plate to be disassembled and replaced after prolonged use, facilitating better adsorption of harmful gases generated during combustion, reducing environmental pollution, and improving the burner's performance. The limiting component restricts the connection plate, ensuring a more secure installation of the activated carbon plate and improving the adsorption efficiency of the device.
[0004] Although existing oxy-fuel burners are equipped with adsorption components to collect harmful gases, as the adsorption components are used, the adsorption pores are easily blocked by some combustion particles, affecting the adsorption effect. Moreover, some fine particles still enter the interior of the adsorption box and adhere to the activated carbon plate, which will affect the activated carbon plate's ability to purify toxic gases.
[0005] Therefore, the existing all-oxygen burner for glass melting furnaces cannot meet the needs of actual use, so there is an urgent need for improved technologies to solve the above problems. Utility Model Content
[0006] The purpose of this invention is to provide an oxygen-based burner for glass melting furnaces to solve the problems mentioned in the background art.
[0007] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:
[0008] This utility model relates to an oxygen-based burner for a glass melting furnace, comprising a burner body, an adsorption hood inside one end of the burner body, a blocking structure on one side of the adsorption hood, an adsorption tube installed on one side of the adsorption hood, an adsorption gas pump in the middle of the adsorption tube, an adsorption box installed on one side of the burner body, the lower end of one side of the adsorption box being connected to the adsorption tube box, multiple activated carbon plates detachably installed inside the adsorption box, a connecting structure between the activated carbon plates and the adsorption box, an exhaust pipe in the middle of the upper end of the adsorption box, and an exhaust fan inside the exhaust pipe.
[0009] Preferably, a water storage chamber is provided at the lower end of the adsorption box, and one end of the adsorption tube connected to the adsorption box extends into the water storage chamber. An inlet and outlet water pipe is provided at the lower end of the water storage chamber.
[0010] Preferably, the blocking structure includes an adsorption plate, which is detachably installed at the lower end of the adsorption cover, and the surface of the adsorption plate is uniformly provided with adsorption holes.
[0011] Preferably, an installation sleeve is uniformly and fixedly installed on the upper end of the adsorption plate, a pressure rod is movably inserted through the lower end of the installation sleeve, and the upper end of the pressure rod is movably inserted inside the installation sleeve and fixedly installed with a movable block.
[0012] Preferably, a sealing block is fixedly installed at the lower end of the pressure rod, the sealing block is engaged with the adsorption hole, and a pin is fixedly installed at the lower end of the sealing block, the pin being movably inserted into the adsorption hole.
[0013] Preferably, the connection structure includes a mounting base, which is fixedly disposed on one side of the adsorption box. The internal width of the mounting base is greater than the thickness of the activated carbon plate, and the mounting base is located on one side of the activated carbon plate.
[0014] Preferably, the mounting base has slots on both sides, the slots are square in shape, and a mounting bracket is fixedly installed on one side of the activated carbon plate. The mounting bracket is U-shaped and is movably inserted inside the mounting base.
[0015] Preferably, both ends of the mounting bracket are provided with movable slots, which are connected to the slots. A locking post is movably inserted inside the movable slot, and one end of the locking post is movably inserted inside the slot. A double-threaded sleeve is installed in the middle of the mounting bracket, and both ends of the double-threaded sleeve are movably inserted with movable screws. One end of the movable screw is movably inserted inside the movable slot and connected to the locking post.
[0016] This utility model has the following beneficial effects:
[0017] In this invention, the operation of the adsorption pump and exhaust fan generates suction in the adsorption box and adsorption hood, drawing tiny particles and toxic gases into the interior of the adsorption hood. These gases then pass through the adsorption tube into the water storage chamber inside the adsorption box. The water in the storage chamber purifies the tiny particles and some water-soluble toxic gases, while the water-insoluble toxic gases are filtered through multiple layers of activated carbon plates and discharged through the exhaust pipe, thus facilitating effective purification of toxic gases.
[0018] In this embodiment, the user rotates the double-threaded sleeve, and the moving screw moves into the inside of the double-threaded sleeve under the action of the thread. The moving screw drives the locking pin to move into the movable groove, so that the locking pin can be pulled out from the inside of the groove, and the activated carbon plate can be pulled out from the inside of the mounting base, thereby facilitating the quick installation and replacement of the activated carbon plate. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this utility model;
[0020] Figure 2 This is a schematic diagram of the overall side structure of this utility model;
[0021] Figure 3 This is a half-sectional view of the adsorption hood mounting area in the device of this utility model.
[0022] Figure 4 This utility model Figure 3 Enlarged structural diagram at point A in the middle;
[0023] Figure 5 This is a half-sectional structural diagram of the activated carbon plate mounting location in the adsorption box of this utility model.
[0024] Figure 6 This utility model Figure 5 Enlarged structural diagram at point B.
[0025] Explanation of reference numerals in the attached drawings: 100, burner body; 200, adsorption hood; 210, adsorption tube; 211, adsorption air pump; 220, adsorption plate; 221, adsorption hole; 222, mounting sleeve; 223, movable block; 224, pressure rod; 225, sealing block; 226, ejector pin; 300, adsorption box; 310, exhaust pipe; 311, exhaust fan; 320, inlet and outlet water pipes; 330, activated carbon plate; 331, mounting bracket; 332, movable groove; 333, double-threaded sleeve; 334, moving screw; 335, locking post; 340, mounting base; 341, locking groove. Detailed Implementation
[0026] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.
[0027] like Figures 1 to 3 As shown, this embodiment provides a glass melting furnace oxygen burner, including a burner body 100. An adsorption hood 200 is provided inside one end of the burner body 100. A blocking structure is provided on one side of the adsorption hood 200. An adsorption pipe 210 is installed on one side of the adsorption hood 200. An adsorption air pump 211 is provided in the middle of the adsorption pipe 210. An adsorption box 300 is installed on one side of the burner body 100. The lower end of one side of the adsorption box 300 is connected to the adsorption pipe 210. Multiple activated carbon plates 330 are detachably installed inside the adsorption box 300. An exhaust pipe 310 is provided in the middle of the upper end of the adsorption box 300. An exhaust fan 311 is provided inside the exhaust pipe 310. A water storage chamber is provided at the lower end of the adsorption box 300. One end of the adsorption pipe 210 connected to the adsorption box 300 extends into the water storage chamber. An inlet and outlet water pipe 320 is provided at the lower end of the water storage chamber.
[0028] In this embodiment, the adsorption pump 211 and the exhaust fan 311 operate, causing the adsorption box 300 and the adsorption hood 200 to generate suction, drawing tiny particles and toxic gases into the interior of the adsorption hood 200, and then into the water storage chamber inside the adsorption box 300 through the adsorption pipe 210. The water inside the water storage chamber can purify the tiny particles and some water-soluble toxic gases, while the water-insoluble toxic gases are filtered through the multi-layer activated carbon plate 330 and discharged through the exhaust pipe 310, which facilitates the effective purification of toxic gases.
[0029] like Figure 3 and Figure 4 As shown, this embodiment provides a glass melting furnace oxygen burner. The blocking structure includes an adsorption plate 220. The adsorption plate 220 is detachably installed at the lower end of the adsorption hood 200. Adsorption holes 221 are evenly opened on the surface of the adsorption plate 220. An installation sleeve 222 is evenly fixedly installed at the upper end of the adsorption plate 220. A pressure rod 224 is movably inserted at the lower end of the installation sleeve 222. The upper end of the pressure rod 224 is movably inserted inside the installation sleeve 222 and a movable block 223 is fixedly installed. A sealing block 225 is fixedly installed at the lower end of the pressure rod 224. The sealing block 225 is engaged with the adsorption hole 221. A ejector pin 226 is fixedly installed at the lower end of the sealing block 225. The ejector pin 226 is movably inserted inside the adsorption hole 221.
[0030] In this embodiment, when there is no need to adsorb gas, under the action of gravity of the movable block 223, the pressure rod 224 can squeeze the sealing block 225, causing the sealing block 225 to block the adsorption hole 221. Under the action of the ejector pin 226, the tiny particles stuck inside the adsorption hole 221 can be ejected, preventing the adsorption hole 221 from being blocked and affecting the adsorption effect. At the same time, the adsorption hole 221 can be blocked to prevent it from affecting the use of the burner body 100.
[0031] like Figure 5 and Figure 6 As shown in this embodiment, a glass melting furnace oxy-fuel burner is provided, wherein a connection structure is provided between the activated carbon plate 330 and the adsorption box 300. The connection structure includes a mounting base 340, which is fixedly disposed on one side of the adsorption box 300. The internal width of the mounting base 340 is greater than the thickness of the activated carbon plate 330. The mounting base 340 is located on one side of the activated carbon plate 330, and slots 341 are provided on both sides of the mounting base 340. The slots 341 are square in shape. A mounting bracket 331 is fixedly installed on one side of the activated carbon plate 330. The mounting bracket 331 is movably inserted into the mounting base 340 in the shape of a U. Both ends of the mounting bracket 331 are provided with movable slots 332, which are connected to the slots 341. A retaining post 335 is movably inserted into the movable slot 332, and one end of the retaining post 335 is movably inserted into the slot 341. A double-threaded sleeve 333 is installed in the middle of the mounting bracket 331. Both ends of the double-threaded sleeve 333 are movably inserted with movable screws 334, and one end of the movable screws 334 is movably inserted into the movable slot 332 and connected to the retaining post 335.
[0032] In this embodiment, the user rotates the double-threaded sleeve 333, and the moving screw 334 moves into the double-threaded sleeve 333 under the action of the thread. The moving screw 334 drives the locking pin 335 to move into the movable groove 332, so that the locking pin 335 is pulled out from the groove 341, and the activated carbon plate 330 can be pulled out from the mounting base 340, thereby facilitating the quick installation and replacement of the activated carbon plate 330.
[0033] The above are merely preferred embodiments of the present utility model and do not limit the present utility model. Any modifications, equivalent substitutions, or improvements made to the technical solutions described in the foregoing embodiments, or to some of the technical features, shall fall within the protection scope of the present utility model.
Claims
1. A glass melting furnace oxygen burner, comprising a burner body (100), characterized in that: An adsorption hood (200) is provided inside one end of the burner body (100). A blocking structure is provided on one side of the adsorption hood (200). An adsorption tube (210) is installed on one side of the adsorption hood (200). An adsorption gas pump (211) is provided in the middle of the adsorption tube (210). An adsorption box (300) is installed on one side of the burner body (100). The lower end of one side of the adsorption box (300) is connected to the adsorption tube (210). Multiple activated carbon plates (330) are detachably installed inside the adsorption box (300). A connecting structure is provided between the activated carbon plates (330) and the adsorption box (300). An exhaust pipe (310) is provided in the middle of the upper end of the adsorption box (300). An exhaust fan (311) is provided inside the exhaust pipe (310).
2. The all-oxygen burner for a glass melting furnace according to claim 1, characterized in that: The lower end of the adsorption box (300) is provided with a water storage chamber, and one end of the adsorption tube (210) connected to the adsorption box (300) extends into the interior of the water storage chamber. The lower end of the water storage chamber is provided with an inlet / outlet water pipe (320).
3. The all-oxygen burner for a glass melting furnace according to claim 1, characterized in that: The blocking structure includes an adsorption plate (220), which is detachably installed at the lower end of the adsorption cover (200). Adsorption holes (221) are uniformly opened on the surface of the adsorption plate (220).
4. The all-oxygen burner for a glass melting furnace according to claim 3, characterized in that: The upper end of the adsorption plate (220) is uniformly fixedly installed with an installation sleeve (222), the lower end of the installation sleeve (222) is movably inserted with a pressure rod (224), and the upper end of the pressure rod (224) is movably inserted inside the installation sleeve (222) and fixedly installed with a movable block (223).
5. The all-oxygen burner for a glass melting furnace according to claim 4, characterized in that: A sealing block (225) is fixedly installed at the lower end of the pressure rod (224). The sealing block (225) is engaged with the adsorption hole (221). A pin (226) is fixedly installed at the lower end of the sealing block (225). The pin (226) is movably inserted into the adsorption hole (221).
6. The all-oxygen burner for a glass melting furnace according to claim 1, characterized in that: The connection structure includes a mounting base (340), which is fixedly disposed on one side of the adsorption box (300). The internal width of the mounting base (340) is greater than the thickness of the activated carbon plate (330), and the mounting base (340) is located on one side of the activated carbon plate (330).
7. The all-oxygen burner for a glass melting furnace according to claim 6, characterized in that: The mounting base (340) has slots (341) on both sides. The slots (341) are square in shape. The activated carbon plate (330) is fixedly mounted on one side with a mounting bracket (331). The mounting bracket (331) is U-shaped and is movably inserted inside the mounting base (340).
8. The all-oxygen burner for a glass melting furnace according to claim 7, characterized in that: Both ends of the mounting bracket (331) are provided with movable slots (332), which are connected to the slots (341). A locking post (335) is movably inserted inside the movable slot (332), and one end of the locking post (335) is movably inserted inside the slot (341). A double-threaded sleeve (333) is installed in the middle of the mounting bracket (331), and both ends of the double-threaded sleeve (333) are movably inserted with movable screws (334). One end of the movable screws (334) is movably inserted inside the movable slot (332) and connected to the locking post (335).
Citation Information
Patent Citations
Multi-stage total oxygen burner
CN221463824U