A glass factory smelting furnace coke tail gas treatment equipment

By using a combination of heating nozzles and rotating scrapers in the glass furnace, the problem of grid hole clogging was solved, achieving efficient waste gas purification and improved production efficiency.

CN115677179BActive Publication Date: 2026-04-07SHANXI PROVINCE SHENMURUICHENGFUFA GLASS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-11-01
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

In existing technologies, the grid holes of glass furnaces are prone to clogging, resulting in incomplete purification of exhaust gas, difficulty in manual unclogging, and impact on production efficiency.

Method used

The system employs unblocking and cleaning components, using heated nozzles to melt blockages, combined with a rotating scraper to clean the blockages on the inner and outer surfaces of the grid holes, and using hot air to accelerate the flow of the melted material.

Benefits of technology

It achieves efficient unblocking of grid holes, avoids the difficulties of manual unblocking, and improves production efficiency and exhaust gas purification effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the field of kiln maintenance, especially to a glass factory smelting furnace coke tail gas treatment equipment. Technical problem: manual holding of the dredging rod, dredging the grid hole, but due to the failure of the exhaust gas in it, the manual cannot enter the inside of the grid hole, leading to the difficulty of dredging work, and the blockage is all solidified and attached to the inner surface of the grid hole, which is difficult to clean up. Technical scheme: a glass factory smelting furnace coke tail gas treatment equipment, comprising a regenerator and a dredging assembly; the upper part of the regenerator is connected with the dredging assembly. The present application converts the working mode and maintenance mode of the regenerator by using the switching mode of the dredging assembly, avoids the damage of the parts on the dredging assembly caused by the overheating of the regenerator, adopts the rotary scraping mode to clean the blockage in the grid hole, uses the heating mode to melt the blockage, and heats the first scraper to avoid the blockage from being attached to its surface.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of kiln maintenance, in particular to a glass factory smelting furnace coke tail gas treatment equipment. BACKGROUND

[0002] The role of the checker in the regenerator system of the glass furnace is similar to the human lung, which helps the high-temperature combustion in the furnace to breathe and exchange air. The combustion temperature of the furnace is above 1500-1600 degrees, and only in this high temperature can the glass raw materials be well melted. The role of the regenerator is to reverse the heat storage, recover the waste gas of the furnace, preheat the combustion air, and fully burn the fuel. The hot air must pass through the checker hole into the furnace interior for combustion. The checker hole is made of refractory bricks with holes, but after a long time of work, the checker hole is easily blocked. When the checker hole is blocked, it needs to be dredged in time. If the checker is not dredged in time, it will seriously affect the exhaust gas, and thus some exhaust gas cannot pass through the regenerator, so that the exhaust gas is not purified.

[0003] In order to make the existing technology achieve the effect of fully purifying the exhaust gas, the known existing technology is a manual holding dredging rod method to dredge the checker hole. However, since part of the exhaust gas in the checker hole cannot be discharged, the manual cannot enter the interior to dredge the checker hole, which leads to difficult dredging work. In addition, the blockage is all solidified and attached to the inner surface of the checker hole, which is difficult to clean comprehensively. When comprehensive dredging is needed, the interior exhaust gas needs to be purified and then entered for interior dredging. However, since the interior space is too large, the purification work is difficult, which leads to the stop of production and affects the production efficiency. SUMMARY

[0004] In order to overcome the shortcomings of the manual holding dredging rod method to dredge the checker hole, since part of the exhaust gas in the checker hole cannot be discharged, the manual cannot enter the interior to dredge the checker hole, which leads to difficult dredging work. In addition, the blockage is all solidified and attached to the inner surface of the checker hole, which is difficult to clean comprehensively. When comprehensive dredging is needed, the interior exhaust gas needs to be purified and then entered for interior dredging. However, since the interior space is too large, the purification work is difficult, which leads to the stop of production and affects the production efficiency, the present application provides a glass factory smelting furnace coke tail gas treatment equipment.

[0005] The technical implementation scheme of the present application is: a glass factory smelting furnace coke tail gas treatment equipment, comprising a regenerator, a dredging assembly, a nozzle, a first scraper, a cleaning assembly and a second scraper; the upper part of the regenerator is connected with the dredging assembly; the dredging assembly is connected with a plurality of nozzles for heating the blockage in the checker hole; the outer surface of the plurality of nozzles is connected with a plurality of first scrapers for cleaning the blockage in the checker hole; the lower part of the dredging assembly is connected with the cleaning assembly; and the cleaning assembly is connected with eight second scrapers for cleaning the dredged blockage.

[0006] More preferably, the nozzle end is provided with an arc-shaped structure, and a built-in igniter.

[0007] More preferably, the second scraper is provided as a whole in a T-shaped structure.

[0008] More preferably, the regenerator comprises an outer wall and checker bricks; the inner part of the outer wall is connected with a plurality of checker bricks.

[0009] More preferably, the outer wall is composed of refractory bricks as a whole.

[0010] More preferably, the dredging assembly comprises a first mounting frame and a dredging component; the outer surface of the outer wall is fixedly connected with four first mounting frames; the four first mounting frames are symmetrically arranged in two groups; each first mounting frame is fixedly connected with two dredging components which are symmetrically arranged left and right.

[0011] More preferably, each dredging component comprises a first motor, a second mounting frame, a bearing seat, an extension frame, a mounting cylinder, an electric push rod, a first extension rod, a first extension plate, a first connecting plate, a gas tank, a rubber tube, an electric winding wheel, a first connecting cylinder, a second extension rod, a second motor, a first hydraulic push rod, a second connecting plate, a second connecting cylinder, a connecting pipe, a nozzle, a first scraper, a third connecting plate, a fourth connecting plate, and a drill bit; the upper portion of the first mounting frame is fixedly connected with the first motor; the first mounting frame is rotatably connected with the second mounting frame; the output shaft of the first motor is fixedly connected with the second mounting frame; the inside of the second mounting frame is fixedly connected with two upper and lower symmetrical bearing seats; the opposite sides of the two bearing seats are each rotatably connected with an extension frame through a rotating shaft; the other ends of the two extension frames are fixedly connected with a mounting cylinder; a first extension rod is fixedly connected between the two extension frames; the inner middle portion of the second mounting frame is fixedly connected with two electric push rods; the extension ends of the two electric push rods are movably connected with a first extension plate; the first extension plate is fixedly connected with the first extension rod; the first extension plate is connected with the first connecting plate; the first connecting plate is connected with the rubber tube; the inside of the second mounting frame is connected with the gas tank; the gas tank is fixedly connected with one end of the rubber tube; the inside of the second mounting frame is fixedly connected with the electric winding wheel; the rubber tube is wound around the outer surface of the electric winding wheel; the inside of the mounting cylinder is fixedly connected with the second motor; the output shaft of the second motor is fixedly connected with the second extension rod; the other end of the second extension rod is fixedly connected with the second connecting cylinder; the inner upper portion of the mounting cylinder is fixedly connected with two left and right symmetrical first hydraulic push rods; the extension ends of the two first hydraulic push rods are each fixedly connected with a second connecting plate; the two second connecting plates are fixedly connected with a first connecting cylinder; the first connecting cylinder is in communication with the rubber tube; the first connecting cylinder is rotatably connected with the second connecting cylinder; the outer surface of the second connecting cylinder is in communication with four annularly arrayed connecting pipes; the outer surface of each connecting pipe is in communication with a plurality of nozzles; the lower portions of the four first scrapers are each fixedly connected with two third connecting plates; the same side of the two third connecting plates is rotatably connected with a fourth connecting plate through a rotating shaft; the lower portions of the four fourth connecting plates are movably connected with a drill bit; the drill bit is fixedly connected with the second connecting cylinder.

[0012] More preferably, the outer surface of the second mounting frame is attached with a fire-resistant ceramic plate.

[0013] More preferably, the gas tank is connected with an electrically driven valve.

[0014] More preferably, the cleaning assembly comprises a connecting frame, an air inlet pipe, a third mounting frame, a second hydraulic push rod, a fifth connecting plate, a connecting roller, a first gear, a rack, a third motor, a second gear, a second telescopic plate, a sixth connecting plate, a limiting rod and a flow guide plate; the lower part of the outer wall is fixedly connected with the connecting frame; the upper part of the connecting frame is fixedly connected with eight air inlet pipes, and the eight air inlet pipes are symmetrically arranged in four groups; the connecting frame is connected with two front and rear symmetric third mounting frames; the two third mounting frames are each fixedly connected with two left and right symmetric second hydraulic push rods; the telescopic ends of the two second hydraulic push rods on the same side are each fixedly connected with a fifth connecting plate; the two fifth connecting plates on the left side are jointly rotatably connected with a connecting roller; the two fifth connecting plates on the right side are jointly rotatably connected with another connecting roller; the four second scrapers are fixedly connected to the two connecting rollers respectively; the two connecting rollers are each fixedly connected with two front and rear symmetric first gears; the connecting frame is fixedly connected with two front and rear symmetric racks; each rack is meshed with two first gears respectively; the two third mounting frames are each fixedly connected with two left and right symmetric third motors; the output shafts of the four third motors are each fixedly connected with a second gear; the inside of the connecting frame is fixedly connected with two second telescopic plates; the telescopic ends of the two second telescopic plates are each rotatably connected with a sixth connecting plate through a rotating shaft; the opposite sides of the two sixth connecting plates are each rotatably connected with a limiting rod; the lower parts of the two sixth connecting plates are each rotatably connected with a flow guide plate; and the two flow guide plates are rotatably connected with the connecting frame.

[0015] Compared with the prior art, the present application has the following advantages: 1. The present application uses a switching mode to convert the working mode and the maintenance mode of the regenerator through the dredging assembly, avoids damage to the parts on the dredging assembly caused by overheating of the regenerator, uses a rotary scraping mode to clean the blockages in the checker holes, uses a heating mode to melt the blockages, and heats the first scraper to avoid adhesion of the blockages to the surface thereof;

[0016] 2. The present application uses a rotary scraping mode through the cleaning assembly to clean the residual blockages at the bottom of the checker bricks, uses the recovered hot air to heat and melt the blockages scraped down, and uses a vibration mode to accelerate the flow of the blockages melted in the upper layer. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 It is a first structural schematic view of the glass factory furnace coke tail gas treatment equipment of the present application;

[0018] Figure 2 It is a second structural schematic view of the glass factory furnace coke tail gas treatment equipment of the present application;

[0019] Figure 3 It is a structural schematic view of the regenerator of the glass factory furnace coke tail gas treatment equipment of the present application;

[0020] Figure 4 The first structure diagram of the dredging assembly of the glass factory smelting furnace coke tail gas treatment equipment;

[0021] Figure 5 The second structure diagram of the dredging assembly of the glass factory smelting furnace coke tail gas treatment equipment;

[0022] Figure 6 The first partial structure diagram of the dredging assembly of the glass factory smelting furnace coke tail gas treatment equipment;

[0023] Figure 7 The second partial structure diagram of the dredging assembly of the glass factory smelting furnace coke tail gas treatment equipment;

[0024] Figure 8 The third partial structure diagram of the dredging assembly of the glass factory smelting furnace coke tail gas treatment equipment;

[0025] Figure 9 The fourth partial structure diagram of the dredging assembly of the glass factory smelting furnace coke tail gas treatment equipment;

[0026] Figure 10 The A area enlarged view of the dredging assembly of the glass factory smelting furnace coke tail gas treatment equipment;

[0027] Figure 11 The structure diagram of the cleaning assembly of the glass factory smelting furnace coke tail gas treatment equipment;

[0028] Figure 12 The first structure diagram of the cleaning assembly of the glass factory smelting furnace coke tail gas treatment equipment;

[0029] Figure 13 The second structure diagram of the cleaning assembly of the glass factory smelting furnace coke tail gas treatment equipment;

[0030] Figure 14 The B area enlarged view of the cleaning assembly of the glass factory smelting furnace coke tail gas treatment equipment.

[0031] The above-mentioned attached drawings include the following reference numerals: 1-heat storage chamber, 2-dredging component, 3-cleaning component, 101-exterior wall, 102-checker brick, 201-first mounting frame, 202-first motor, 203-second mounting frame, 204-bearing seat, 205-telescopic frame, 206-mounting cylinder, 207-electric push rod, 208-first telescopic rod, 209-first telescopic plate, 2010-first connecting plate, 2011-gas cylinder, 2012-rubber hose, 2013-electric winding wheel, 2014-first connecting cylinder, 2015-second telescopic rod, 2016-second motor, 2017-first hydraulic push rod, 2 018-Second connecting plate, 2019-Second connecting cylinder, 2020-Connecting pipe, 2021-Nozzle, 2022-First scraper, 2023-Third connecting plate, 2024-Fourth connecting plate, 2025-Drill bit, 301-Connecting frame, 302-Air inlet pipe, 303-Third mounting frame, 304-Second hydraulic push rod, 305-Fifth connecting plate, 306-Connecting roller, 307-Second scraper, 308-First gear, 309-Rack, 3010-Third motor, 3011-Second gear, 3012-Second telescopic plate, 3013-Sixth connecting plate, 3014-Limiting rod, 3015-Guide plate. Detailed Implementation

[0032] First, it should be noted that in different described embodiments, the same components are given the same reference numerals or the same component names. The disclosure contained throughout this specification can be applied semantically to the same components having the same reference numerals or the same component names. The location descriptions selected in the specification, such as upper, lower, lateral, etc., also refer to the directly described and illustrated figures and are semantically applied to the new location when the location changes.

[0033] Example 1

[0034] A glass factory melting furnace semi-coke tail gas treatment equipment, such as Figures 1-14 As shown, it includes a heat storage chamber 1, a dredging assembly 2, a nozzle 2021, a first scraper 2022, a cleaning assembly 3, and a second scraper 307; the upper part of the heat storage chamber 1 is connected to the dredging assembly 2; a plurality of nozzles 2021 are connected to the dredging assembly 2; a plurality of first scrapers 2022 are connected to the outer surface of the plurality of nozzles 2021; the lower part of the dredging assembly 2 is connected to the cleaning assembly 3; eight second scrapers 307 are connected to the cleaning assembly 3.

[0035] The nozzle 2021 has an arc-shaped end and a built-in igniter.

[0036] The second scraper 307 is T-shaped.

[0037] The heat storage chamber 1 includes an outer wall 101 and checkerboard bricks 102; the interior of the outer wall 101 is connected with a number of checkerboard bricks 102.

[0038] The exterior wall 101 is entirely composed of refractory bricks.

[0039] The unblocking component 2 includes a first mounting frame 201 and unblocking parts; four first mounting frames 201 are fixedly connected to the outer surface of the outer wall 101; the four first mounting frames 201 are arranged symmetrically in pairs; each first mounting frame 201 is fixedly connected to two unblocking parts that are symmetrically arranged on the left and right.

[0040] Each unblocking component includes a first motor 202, a second mounting frame 203, a bearing seat 204, a telescopic frame 205, a mounting cylinder 206, an electric push rod 207, a first telescopic rod 208, a first telescopic plate 209, a first connecting plate 2010, a gas cylinder 2011, a rubber hose 2012, an electric winding reel 2013, a first connecting cylinder 2014, a second telescopic rod 2015, a second motor 2016, a first hydraulic push rod 2017, a second connecting plate 2018, a second connecting cylinder 2019, a connecting pipe 2020, a nozzle 2021, a first scraper 2022, a third connecting plate 2023, a fourth connecting plate 2024, and a drill bit 2025; the first motor 202 is bolted to the upper part of the first mounting frame 201; the first mounting frame A second mounting frame 203 is rotatably connected to 201; the output shaft of the first motor 202 is fixedly connected to the second mounting frame 203; two symmetrical bearing seats 204 are fixedly connected inside the second mounting frame 203; each of the two bearing seats 204 is rotatably connected to a telescopic frame 205 via a rotating shaft; the other ends of the two telescopic frames 205 are fixedly connected to a mounting cylinder 206; a first telescopic rod 208 is fixedly connected between the two telescopic frames 205; two electric push rods 207 are bolted to the inner center of the second mounting frame 203; the telescopic ends of the two electric push rods 207 are hinged to a first telescopic plate 209; the first telescopic plate 209 is fixedly connected to the first telescopic rod 208; a first telescopic rod 208 is connected to the first telescopic plate 209. A connecting plate 2010; a rubber tube 2012 is connected to the first connecting plate 2010; a gas cylinder 2011 is connected inside the second mounting frame 203; one end of the gas cylinder 2011 is fixedly connected to the rubber tube 2012; an electric winding wheel 2013 is bolted inside the second mounting frame 203; the rubber tube 2012 is wound around the outer surface of the electric winding wheel 2013; a second motor 2016 is bolted inside the mounting cylinder 206; a second telescopic rod 2015 is fixedly connected to the output shaft of the second motor 2016; a second connecting cylinder 2019 is fixedly connected to the other end of the second telescopic rod 2015; two left-right symmetrical first hydraulic push rods 2017 are fixedly connected to the upper inner part of the mounting cylinder 206; the telescopic ends of the two first hydraulic push rods 2017... Each fixed connection has a second connecting plate 2018; a first connecting cylinder 2014 is fixedly connected between the two second connecting plates 2018; the first connecting cylinder 2014 is connected to the rubber tube 2012; the first connecting cylinder 2014 is rotatably connected to the second connecting cylinder 2019; four annular array connecting pipes 2020 are connected to the outer surface of the second connecting cylinder 2019; the outer surface of each connecting pipe 2020 is connected to several nozzles 2021; two third connecting plates 2023 are fixedly connected to the lower part of each of the four first scrapers 2022; a fourth connecting plate 2024 is rotatably connected between the two third connecting plates 2023 on the same side via a rotating shaft; a drill bit 2025 is hinged to the lower part of the four fourth connecting plates 2024.The drill bit 2025 is fixedly connected to the second connecting sleeve 2019.

[0041] The outer surface of the second mounting frame 203 is fitted with a fire-resistant ceramic plate.

[0042] The first telescopic pole 208 is a two-way telescopic pole.

[0043] The gas cylinder 2011 is connected to an electrically driven valve.

[0044] The cleaning component 3 includes a connecting frame 301, an air inlet pipe 302, a third mounting frame 303, a second hydraulic push rod 304, a fifth connecting plate 305, a connecting roller 306, a first gear 308, a rack 309, a third motor 3010, a second gear 3011, a second telescopic plate 3012, a sixth connecting plate 3013, a limiting rod 3014, and a guide plate 3015; the lower part of the outer wall 101 is fixedly connected to the connecting frame 301; the upper part of the connecting frame 301 is fixedly connected to eight air inlet pipes 3. 02. Eight intake pipes 302 are arranged symmetrically in groups of four; two symmetrical third mounting frames 303 are connected to the connecting frame 301; each of the two third mounting frames 303 is fixedly connected to two symmetrical second hydraulic push rods 304; each of the telescopic ends of the two second hydraulic push rods 304 on the same side is fixedly connected to a fifth connecting plate 305; the two fifth connecting plates 305 on the left are rotatably connected to a connecting roller 306; the two fifth connecting plates 305 on the right... Two connecting rollers 306 are rotatably connected together; four second scrapers 307 are fixedly connected to each of the two connecting rollers 306; two front-to-back symmetrical first gears 308 are fixedly connected to each of the two connecting rollers 306; two front-to-back symmetrical racks 309 are fixedly connected to the connecting frame 301; each rack 309 meshes with one of the two first gears 308; two left-to-right symmetrical third motors 3010 are fixedly connected to each of the two third mounting frames 303; a second gear 3011 is fixedly connected to the output shaft of each of the four third motors 3010; two second telescopic plates 3012 are fixedly connected inside the connecting frame 301; a sixth connecting plate 3013 is rotatably connected to the telescopic ends of the two second telescopic plates 3012 via a rotating shaft; a limiting rod 3014 is rotatably connected to the opposing sides of the two sixth connecting plates 3013; a guide plate 3015 is rotatably connected to the lower part of each of the two sixth connecting plates 3013; the two guide plates 3015 are rotatably connected to the connecting frame 301.

[0045] First, the staff placed the glass factory melting furnace semi-coke tail gas treatment equipment in the required position. Then, they controlled the operation and debugged the glass factory melting furnace semi-coke tail gas treatment equipment. Then, they connected the glass factory melting furnace semi-coke tail gas treatment equipment to the combustion chamber of the glass melting furnace. Then, when the combustion chamber is heated and melted, a large amount of waste gas will be emitted. Then, the rotary distribution valve in the glass melting furnace is controlled to allow the organic waste gas to enter the heat storage chamber 1. Then, the organic waste gas passes through the checker brick 102 and down through the cleaning component 3 into the external oxidation chamber. The heating decomposes and purifies the organic waste gas and recovers the heat released during the decomposition of the waste gas. After a long period of repeated operation, the grid holes on the checker brick 102 become blocked.Then, the first motor 202 is controlled to drive the second mounting frame 203 to rotate, so that the opening of the second mounting frame 203 connects with the internal space of the outer wall 101. Next, the telescopic frame 205 is controlled to push the mounting cylinder 206 to move and extend the first telescopic rod 208. At the same time, the two electric push rods 207 are controlled to extend and retract accordingly, so that the first telescopic plate 209 rotates around the first telescopic rod 208 as the rotation center, and drives the first telescopic rod 208 to rotate. The first telescopic rod 208 drives the telescopic frame 205 to rotate around the rotating shaft on the bearing seat 204 as the rotation center. That is, the telescopic frame 205 drives the mounting cylinder 206 to move directly above the corresponding blocked grid brick 102. The mounting cylinder 206 drives the connected parts to move, that is, it drives the first connecting cylinder 2014 and the second telescopic plate 206 to move. The rod 2015, second motor 2016, first hydraulic push rod 2017, second connecting plate 2018, second connecting cylinder 2019, connecting pipe 2020, nozzle 2021, first scraper 2022, third connecting plate 2023, fourth connecting plate 2024, and drill bit 2025 move. The first connecting cylinder 2014 drives the rubber tube 2012 to move. During this process, the electric winding wheel 2013 is controlled to rotate to release the wound rubber tube 2012. Then, the first hydraulic push rod 2017 is controlled to push the second connecting plate 2018 downward. The second connecting plate 2018 drives the first connecting cylinder 2014 downward and stretches the second telescopic rod 2015. The first connecting cylinder 2014 drives the components connected to it to move downward, that is, drives... The second connecting cylinder 2019, connecting pipe 2020, nozzle 2021, first scraper 2022, third connecting plate 2023, fourth connecting plate 2024, and drill bit 2025 move downwards into the grid holes on the grid brick 102. Simultaneously, the second motor 2016 drives the second telescopic rod 2015 to rotate, which in turn drives the second connecting cylinder 2019 to rotate. The second connecting cylinder 2019 rotates within the groove on the first connecting cylinder 2014, causing its connected components to rotate, including the connecting pipe 2020, nozzle 2021, first scraper 2022, third connecting plate 2023, fourth connecting plate 2024, and drill bit 2025. The drill bit 2025 then rotates to break up any blockages. Next, the first scraper 2022 rotates to scrape away the blockage on the inner wall of the grid holes on the qualified sub-brick 102. During this process, the electric valve built into the gas cylinder 2011 is opened, allowing the gas in the gas cylinder 2011 to flow through the rubber tube 2012, the first connecting cylinder 2014, the second connecting cylinder 2019, and the connecting pipe 2020, and then be sprayed out through the nozzle 2021. At the same time, the igniter built into the nozzle 2021 is controlled to ignite the gas and spray out a flame. The sprayed flame continuously heats the blockage on the inner surface of the grid holes, and at the same time, the ignited flame heats the first scraper 2022. Then, driven by the second motor 2016, the first scraper 2022 rotates, and the first scraper 2022 contacts the blockage on the inner surface of the grid holes, melting the blockage and scraping it away.

[0046] As described above, to clear blockages in the grid holes, based on the property that blockages melt when heated and solidify when cooled, the blockages in the grid holes are scraped off, and the inner surface of the grid holes is cleaned.

[0047] After the blockage in the grid holes is cleared, some of the blockage will adhere to the lower surface of the grid brick 102. Then, the two second hydraulic push rods 304 on the same side are controlled to retract, driving the corresponding two fifth connecting plates 305 to move closer to the second gear 3011 on the same side. The fifth connecting plate 305 drives the connected components to move, that is, it drives the connecting roller 306, the second scraper 307 and the first gear 308 to move. During this process, the first gear 308 meshes with the rack 309, causing the first gear 308 to rotate. The first gear 308 drives the connecting roller 306 to rotate, and the connecting roller 306 drives the second scraper 307 to rotate, while scraping away the blockage remaining on the bottom surface of the grid brick 102. Since the second scraper 307 has a T-shaped structure, it prevents the blockage from not falling down in time when it is scraped. Some of the blockage accumulates on the second scraper 307 when it is rotated to the lateral position, until the first gear 308 and the corresponding second gear 3011 mesh with each other. Then, the third motor 3010 is controlled to drive the second gear 3011 to move the second gear 302 to the lateral position. The second gear 3011 rotates, driving the first gear 308 to rotate. The first gear 308 drives the connecting roller 306 to rotate, which in turn drives the second scraper 307 to rotate. During this process, the heat from the recovered organic waste gas is introduced into the inlet pipe 302 through an external pipe. The introduced hot gas enters the connecting frame 301 through the inlet pipe 302, heating and melting the blockages on the second scraper 307 and the guide plate 3015. Simultaneously, the second scraper 307 rotates and contacts the limiting rod 3014, thus disengaging it. The moving limit rod 3014 forces the limit rod 3014 to compress the corresponding second telescopic plate 3012, and at the same time drives the sixth connecting plate 3013 to rotate around the rotating shaft on the second telescopic plate 3012. The other end of the sixth connecting plate 3013 drives the guide plate 3015 to move upward, causing the guide plate 3015 to swing up and down continuously. The melted blockage on the upper layer of the guide plate 3015 flows into the inner side of the connecting frame 301, and then the lower layer of blockage is further heated and melted, and then collected by the external collection device.

[0048] Although this disclosure has been described with respect to only a limited number of embodiments, those skilled in the art who benefit from this disclosure will understand that various other embodiments can be devised without departing from the scope of the invention. Therefore, the scope of the invention should be limited only by the appended claims.

Claims

1. A device for treating the tail gas from a glass melting furnace, comprising a regenerator (1); characterized in that, It also includes a dredging component (2); the upper part of the heat storage chamber (1) is connected to the dredging component (2); the dredging component (2) includes a first mounting frame (201) and a dredging component; the dredging component includes a nozzle (2021) and a first scraper (2022); a plurality of nozzles (2021) for heating and rotating the blockage in the grid holes are connected to the dredging component (2); a plurality of first scrapers (2022) for cleaning and rotating the blockage in the grid holes are connected to the outer surface of the plurality of nozzles (2021); the lower part of the dredging component (2) is connected to a cleaning component (3); eight second scrapers (307) for cleaning the unblocked blockage are connected to the cleaning component (3); the cleaning component (3) includes a connecting frame (301), an air inlet pipe (307), and a cleaning component (307). 02), third mounting frame (303), second hydraulic push rod (304), fifth connecting plate (305), connecting roller (306), first gear (308), rack (309), third motor (3010), second gear (3011), second telescopic plate (3012), sixth connecting plate (3013), limit rod (3014) and guide plate (3015); the lower part of the outer wall (101) of the heat storage chamber (1) is fixedly connected to the connecting frame (301); the upper part of the connecting frame (301) is fixedly connected to eight air inlet pipes (302), the eight air inlet pipes (302) are arranged symmetrically on the left and right in groups of four; two front and rear symmetrical third mounting frames (303) are connected to the connecting frame (301); the two third mounting frames (303) Each of the two hydraulic push rods (304) is fixedly connected to two symmetrical second hydraulic push rods (304); the telescopic ends of the two second hydraulic push rods (304) on the same side are each fixedly connected to a fifth connecting plate (305); the two fifth connecting plates (305) on the left are rotatably connected to a connecting roller (306); the two fifth connecting plates (305) on the right are rotatably connected to another connecting roller (306); the two connecting rollers (306) are respectively fixedly connected to four second scrapers (307); the two connecting rollers (306) are each fixedly connected to two symmetrical first gears (308); the connecting frame (301) is fixedly connected to two symmetrical racks (309); each rack (309) is respectively connected to two first gears (308). A gear (308) meshes; two third motors (3010) are fixedly connected to each of the two third mounting frames (303); a second gear (3011) is fixedly connected to the output shaft of each of the four third motors (3010); two second telescopic plates (3012) are fixedly connected inside the connecting frame (301); a sixth connecting plate (3013) is rotatably connected to the telescopic ends of the two second telescopic plates (3012) through a rotating shaft; a limiting rod (3014) is rotatably connected to the opposing sides of the two sixth connecting plates (3013); a guide plate (3015) is rotatably connected to the lower part of the two sixth connecting plates (3013); the two guide plates (3015) are rotatably connected to the connecting frame (301).

2. The glass factory melting furnace semi-coke tail gas treatment equipment according to claim 1, characterized in that, The nozzle (2021) has an arc-shaped end and a built-in igniter.

3. The glass factory melting furnace semi-coke tail gas treatment equipment according to claim 1, characterized in that, The second scraper (307) is T-shaped.

4. The glass factory melting furnace semi-coke tail gas treatment equipment according to claim 3, characterized in that, The heat storage chamber (1) includes an outer wall (101) and checkerboard bricks (102); the interior of the outer wall (101) is connected with several checkerboard bricks (102).

5. The glass factory melting furnace semi-coke tail gas treatment equipment according to claim 4, characterized in that, The exterior wall (101) is entirely composed of refractory bricks.

6. The glass factory melting furnace semi-coke tail gas treatment equipment according to claim 5, characterized in that, The outer surface of the exterior wall (101) is fixedly connected with four first mounting frames (201); the four first mounting frames (201) are arranged symmetrically in pairs; each first mounting frame (201) is fixedly connected with two left-right symmetrical unblocking components.

7. A glass factory melting furnace semi-coke tail gas treatment device according to claim 6, characterized in that, Each unblocking component also includes a first motor (202), a second mounting frame (203), a bearing seat (204), a telescopic frame (205), a mounting cylinder (206), an electric push rod (207), a first telescopic rod (208), a first telescopic plate (209), a first connecting plate (2010), a gas cylinder (2011), a rubber hose (2012), an electric winding reel (2013), a first connecting cylinder (2014), a second telescopic rod (2015), a second motor (2016), a first hydraulic push rod (2017), a second connecting plate (2018), a second connecting cylinder (2019), a connecting pipe (2020), a third connecting plate (2023), a fourth connecting plate (2024), and a drill bit. (2025); A first motor (202) is fixedly connected to the upper part of the first mounting frame (201); A second mounting frame (203) is rotatably connected to the first mounting frame (201); The output shaft of the first motor (202) is fixedly connected to the second mounting frame (203); Two symmetrical bearing seats (204) are fixedly connected inside the second mounting frame (203); A telescopic frame (205) is rotatably connected to the opposite sides of the two bearing seats (204) through a rotating shaft; A mounting cylinder (206) is fixedly connected to the other end of the two telescopic frames (205); A first telescopic rod (208) is fixedly connected between the two telescopic frames (205); Two... Electric push rods (207); the telescopic ends of two electric push rods (207) are movably connected to a first telescopic plate (209); the first telescopic plate (209) is fixedly connected to the first telescopic rod (208); a first connecting plate (2010) is connected to the first telescopic plate (209); a rubber tube (2012) is connected to the first connecting plate (2010); a gas cylinder (2011) is connected inside the second mounting frame (203); one end of the gas cylinder (2011) is fixedly connected to the rubber tube (2012); an electric winding wheel (2013) is fixedly connected inside the second mounting frame (203); the rubber tube (2012) is wound around the outer surface of the electric winding wheel (2013); the inside of the mounting cylinder (206) A second motor (2016) is fixedly connected; a second telescopic rod (2015) is fixedly connected to the output shaft of the second motor (2016); a second connecting cylinder (2019) is fixedly connected to the other end of the second telescopic rod (2015); two left-right symmetrical first hydraulic push rods (2017) are fixedly connected to the upper inner part of the mounting cylinder (206); a second connecting plate (2018) is fixedly connected to the telescopic end of each of the two first hydraulic push rods (2017); a first connecting cylinder (2014) is fixedly connected between the two second connecting plates (2018); the first connecting cylinder (2014) is connected to the rubber tube (2012); the first connecting cylinder (2014) and the second connecting cylinder (2019) are rotatably connected. The outer surface of the second connecting cylinder (2019) is connected to four annular array connecting pipes (2020); the outer surface of each connecting pipe (2020) is connected to several nozzles (2021); the lower part of each of the four first scrapers (2022) is fixedly connected to two third connecting plates (2023); a fourth connecting plate (2024) is rotatably connected between the two third connecting plates (2023) on the same side via a rotating shaft; the lower part of the four fourth connecting plates (2024) is movably connected to a drill bit (2025); the drill bit (2025) is fixedly connected to the second connecting cylinder (2019).

8. A glass factory melting furnace semi-coke tail gas treatment device according to claim 7, characterized in that, The outer surface of the second mounting frame (203) is fitted with a fire-resistant ceramic plate.

9. A glass factory melting furnace semi-coke tail gas treatment device according to claim 7, characterized in that, An electrically driven valve is connected to the gas cylinder (2011).

Citation Information

Patent Citations

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