Energy saving burner and method of use thereof

By using an energy-saving burner to heat the combustion aid with the waste heat of the flame, the problem of incomplete fuel combustion caused by excessive oxygen consumption is solved, thus achieving complete fuel combustion and energy-saving effects.

CN115654500BActive Publication Date: 2026-01-02贺岁平
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Patent Information

Application Number
CN202211334986.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-28
Publication Date
2026-01-02
Estimated Expiration
2042-10-28

AI Technical Summary

Technical Problem

Existing burners consume oxygen too quickly during rapid combustion, resulting in incomplete fuel combustion and fuel waste.

Method used

It adopts an energy-saving burner design, which uses the waste heat of the burner to heat the combustion aid. The combustion aid is added quantitatively and automatically opened and closed through the quantitative feeding mechanism and the discharging mechanism, generating oxygen for the fuel to burn completely.

Benefits of technology

It achieves complete combustion of fuel, avoids fuel waste, and improves energy utilization.

✦ Generated by Eureka AI based on patent content.

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    Figure CN115654500B_ABST
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Abstract

The application belongs to the technical field of burners, and particularly relates to an energy-saving burner which comprises a burner main body, a fixing frame, an obliquely arranged pipe, a heating reaction pipe, a feeding box, a quantitative feeding mechanism and a discharging mechanism, the outer wall of one side of the burner main body is connected with the fixing frame which is fixedly arranged; the obliquely arranged pipe is fixedly arranged on the fixing frame; the heating reaction pipe is fixedly arranged on the obliquely arranged pipe; the feeding box is fixedly arranged on the obliquely arranged pipe, and the feeding box is internally provided with a combustion-supporting agent; the quantitative feeding mechanism is slidingly arranged on the inner wall of the obliquely arranged pipe, and can realize quantitative feeding of potassium permanganate; and the discharging mechanism is slidingly arranged in the heating reaction pipe. The combustion-supporting agent in the heating reaction pipe can be heated and reacted by the waste heat of the burner when the burner sprays fire, so that oxygen can be generated and delivered into the burner through the oxygen delivery pipeline, thereby effectively solving the technical problems in the prior art, realizing sufficient combustion of fuel, and achieving the effect of energy saving.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of burners, more particularly, to an energy-saving burner and a method for using the same. BACKGROUND

[0002] Industrial burners, commonly known as burners, have many types, specifications and forms, including fuel, gas (coal gas), and coal (pulverized coal / water coal slurry). The application field is very wide, and burners are needed in industrial applications where fuel combustion is required to heat materials or reactions. According to the inlet path, it can also be divided into two types: annular space inlet (positive lift) and central pipe inlet (reverse lift).

[0003] The prior art document with the publication number CN103836629A provides an energy-saving burner. The device preheats the air sent into the furnace body by using the temperature inside the furnace body. The preheated air is mixed with the gas, which can make the gas burn more fully, thereby effectively saving energy and protecting the environment.

[0004] The prior art solution described above can achieve the beneficial effects related to the prior art structure, but still has the following defects: when the burner is in use, the fuel is burned in the presence of oxygen in the air. However, when the fuel is burned quickly, the oxygen in the vicinity will be quickly consumed. When oxygen cannot be quickly provided, the device cannot provide additional oxygen, which will cause the fuel to burn insufficiently, resulting in waste of fuel. In view of this, we propose an energy-saving burner. SUMMARY

[0005] 1. Technical problem to be solved

[0006] The purpose of the present application is to provide an energy-saving burner that solves the technical problems raised in the background art and achieves sufficient combustion of fuel, thereby achieving the technical effect of energy saving.

[0007] 2. Technical solution

[0008] The energy-saving burner provided by the embodiments of the present application comprises a burner main body, a fixing frame, an inclined pipe, a heating reaction pipe, a feeding box, a quantitative feeding mechanism and a discharging mechanism.

[0009] The fixing frame is fixedly connected to one side of the outer wall of the burner main body;

[0010] The inclined pipe is fixedly connected to the fixing frame;

[0011] The heating reaction pipe is fixedly connected to the inclined pipe;

[0012] The feeding box is fixedly connected to the inclined pipe;

[0013] The quantitative feeding mechanism is slidingly fitted to the inner wall of the inclined pipe, and can realize quantitative feeding of the combustion improver in the feeding box.

[0014] The discharging mechanism is slidingly fitted to the inside of the heating reaction pipe.

[0015] As an optional solution of the technical scheme of the present application, the inclined pipe is arranged in an inclined structure, and the upper end of the inclined pipe is connected to the inside of the burner body through an oxygen conveying pipeline.

[0016] As an optional solution of the technical scheme of the present application, a spiral heat conducting strip is fixedly arranged on the inner wall of the heating reaction pipe, and one end of the spiral heat conducting strip extends to the outside through the inner wall of the heating reaction pipe and is fixedly arranged at the end of the burner body.

[0017] By using the above technical scheme, the spiral heat conducting strip uses the waste heat generated by the burner to heat the combustion improver.

[0018] As an optional solution of the technical scheme of the present application, the quantitative feeding mechanism comprises a moving seat and a sliding block, the outer wall of the moving seat is slidingly fitted to the inner wall of the inclined pipe, and the sliding block is fixedly arranged on the moving seat; the upper end of the moving seat is slidingly fitted to the inner wall of the inclined pipe through the sliding block, and one end of the moving seat penetrates the quantitative groove.

[0019] By using the above technical scheme, the quantitative feeding of the combustion improver through the quantitative groove can avoid waste.

[0020] As an optional solution of the technical scheme of the present application, a blocking plate is rotationally connected to the inner wall of the quantitative groove, a rubber pad is fixedly arranged on the outer wall of the blocking plate, and an opening and closing wheel is fixedly arranged on one end of the blocking plate through a pin shaft extending to the outer wall of the quantitative groove.

[0021] The inner wall of the inclined pipe is fixedly arranged with an opening and closing rack, and the opening and closing rack is in meshing transmission with the opening and closing wheel.

[0022] By using the above technical scheme, the opening and closing rack can automatically open and close the blocking plate when the moving seat moves.

[0023] As an optional solution of the technical scheme of the present application, the discharging mechanism comprises a sealing frame and an inclined scraper, the outer wall of the sealing frame is slidingly fitted to the inner wall of the inclined pipe, one end of the sealing frame in the inclined pipe is fixedly arranged with the inclined scraper, and the bottom surface of the inclined scraper is slidingly fitted to the inner wall of the inclined pipe.

[0024] By using the above technical scheme, the inclined scraper can clean the combustion improver residue after reaction.

[0025] As an optional scheme of the technical scheme of the present application file, the top surface of the inclined pipe is connected and fixedly provided with a motor, and the output end of the motor extends to the inside through the top surface of the inclined pipe and is connected and fixedly provided with a transmission wheel.

[0026] The upper end of the sealing frame is connected and fixedly provided with a rack A, which extends to the inside through the inner wall of the heating reaction tube and is meshingly and drivingly provided with the transmission wheel.

[0027] As an optional scheme of the technical scheme of the present application file, one end of the sliding block is connected and fixedly provided with a rack B, which is meshingly and drivingly provided with the transmission wheel, and the top surface of the sliding block is connected and fixedly provided with a transmission rack.

[0028] Through the above technical scheme, the transmission wheel can realize the synchronous reverse movement of the rack A and the rack B.

[0029] As an optional scheme of the technical scheme of the present application file, the inner wall of the feeding box is rotationally connected with an agitating pushing rod, which realizes the pushing out of potassium permanganate. The feeding box is made of heat insulation material.

[0030] As an optional scheme of the technical scheme of the present application file, the outer wall of the lower end of the feeding box is rotationally connected with a rotating shaft, one end of the rotating shaft close to the transmission rack is connected and fixedly provided with a driving wheel, the driving wheel is meshingly and drivingly provided with the transmission rack, one end of the rotating shaft located in the inner wall of the lower end of the feeding box is connected and fixedly provided with a driving wheel, and the lower end of the agitating pushing rod is connected and fixedly provided with a driven wheel, which is meshingly and drivingly provided with the driving wheel.

[0031] Through the above technical scheme, the agitating pushing rod can agitate the combustion improver in the feeding box to avoid caking, and can also realize the discharging of potassium permanganate.

[0032] The present application provides a method for using an energy-saving burner, comprising the following steps:

[0033] S1: when using the burner for combustion, after a period of use, the residual heat generated by the burner body is conducted to the heating reaction tube through the spiral heat-conducting strip to heat the heating reaction tube;

[0034] S2: when the temperature reaches the set value, the motor is started to drive the transmission wheel to rotate, the transmission wheel drives the moving seat to move through the rack B, so that the quantitative groove on the moving seat is communicated with the outlet of the feeding box;

[0035] S3: the transmission rack on the sliding block drives the driving wheel to rotate, the driving wheel drives the driving wheel to rotate through the rotating shaft, the driving wheel drives the agitating pushing rod to rotate and agitate, and then the combustion improver is pushed into the quantitative groove;

[0036] S4: the motor drives the transmission wheel to reverse, the transmission wheel drives the moving seat to move to the heating reaction tube direction;

[0037] S5: when the opening and closing wheel meshes with the opening and closing rack, the connected material blocking plate is opened, then the combustion-supporting agent falls into the heating reaction tube to perform heating reaction, the oxygen generated by the combustion-supporting agent reaction is transported to the burner main body through the oxygen transporting pipe, so that the fuel is fully combusted;

[0038] S6: when the combustion-supporting agent reaction is finished, the driving transmission wheel rotates to perform the above-mentioned combustion-supporting agent adding action; when the transmission wheel drives the quantitative feeding mechanism to move, the rack A connected sealing frame moves, at this time the heating reaction tube is opened, the combustion-supporting agent residue after reaction is pushed out by the inclined scraper, and cleaning is realized.

[0039] 3. Beneficial effects

[0040] The one or more technical solutions provided in the embodiments of the application have at least the following technical effects or advantages:

[0041] 1. The application uses the waste heat generated when the burner sprays fire to heat the combustion-supporting agent in the heating reaction tube, thereby generating oxygen which is transported to the burner through the oxygen transporting pipe, so that the technical problems in the prior art are effectively solved, and the fuel is fully combusted, thereby achieving the energy-saving effect.

[0042] 2. The quantitative combustion-supporting agent is transported into the heating reaction tube through the quantitative feeding mechanism arranged on the inclined pipe, the oxygen production is continuously realized, and the material blocking plate is automatically opened and closed under the action of the opening and closing rack, thereby replacing manual opening and closing and being convenient to use.

[0043] 3. The discharging mechanism is arranged in the heating reaction tube, the discharging mechanism is driven by the motor to discharge the combustion-supporting agent residue in the heating reaction tube when the quantitative feeding mechanism is fed, the new combustion-supporting agent is conveniently reacted, manual cleaning of the residue is not needed, and the practicability is high. BRIEF DESCRIPTION OF DRAWINGS

[0044] Figure 1 The overall structure schematic diagram of the energy-saving burner is disclosed for a preferred embodiment of the application;

[0045] Figure 2 The overall structure partial cross-sectional view schematic diagram of the energy-saving burner is disclosed for a preferred embodiment of the application;

[0046] Figure 3 The heating reaction tube structure cross-sectional view schematic diagram of the energy-saving burner is disclosed for a preferred embodiment of the application;

[0047] Figure 4The partial sectional view of the quantitative feeding mechanism structure of the energy-saving burner is disclosed in a preferred embodiment of the present application.

[0048] Figure 5 The schematic diagram of the discharging mechanism structure of the energy-saving burner is disclosed in a preferred embodiment of the present application.

[0049] Figure 6 The sectional view of the inclined pipe structure of the energy-saving burner is disclosed in a preferred embodiment of the present application.

[0050] Figure 7 The sectional view of the feeding box structure of the energy-saving burner is disclosed in a preferred embodiment of the present application.

[0051] The figure label is explained: 1, burner main body; 2, fixed frame; 3, inclined pipe; 4, heating reaction pipe; 5, feeding box; 6, quantitative feeding mechanism; 7, discharging mechanism; 401, spiral heat conduction strip; 601, moving seat; 602, sliding block; 603, quantitative groove; 604, material blocking plate; 605, opening and closing wheel; 606, rack B; 607, transmission rack; 301, opening and closing rack; 302, motor; 303, transmission wheel; 701, sealing frame; 702, inclined scraper; 703, rack A; 501, stirring and pushing rod; 502, rotating shaft; 503, driving wheel; 504, driving wheel; 505, driven wheel. DETAILED DESCRIPTION

[0052] The present application is further explained in detail in combination with the drawings of the present application.

[0053] Reference Figures 1-7 An energy-saving burner comprises a burner main body 1, a fixed frame 2, an inclined pipe 3, a heating reaction pipe 4, a feeding box 5, a quantitative feeding mechanism 6 and a discharging mechanism 7.

[0054] The fixed frame 2 is fixedly arranged on one side of the outer wall of the burner main body 1.

[0055] The inclined pipe 3 is fixedly arranged on the fixed frame 2.

[0056] The heating reaction pipe 4 is fixedly arranged on the inclined pipe 3.

[0057] The feeding box 5 is fixedly arranged above the inclined pipe 3, and the feeding box 5 is filled with a combustion-supporting agent, which is preferably potassium permanganate.

[0058] The quantitative feeding mechanism 6 is slidingly arranged on the inner wall of the inclined pipe 3, and can realize the quantitative feeding of the combustion-supporting agent.

[0059] The discharging mechanism 7 is slidingly arranged in the heating reaction pipe 4.

[0060] The burner uses the waste heat to heat the combustion agent for reaction, thereby generating oxygen to provide the burner to make the fuel fully burn, avoiding waste caused by insufficient combustion.

[0061] With reference to Figure 3 The inner wall of the heating reaction tube 4 is fixedly connected with a spiral heat conduction strip 401, one end of the spiral heat conduction strip 401 extends through the inner wall of the heating reaction tube 4 to the outside and is fixedly connected with the end of the burner body 1.

[0062] The spiral heat conduction strip 401 uses the waste heat generated by the burner to heat the potassium permanganate, thereby improving the utilization rate of the device.

[0063] With reference to Figure 4 And Figure 6 The quantitative feeding mechanism 6 comprises a moving seat 601 and a sliding block 602, the outer wall of the moving seat 601 is slidingly matched with the inner wall of the inclined pipe 3, and the sliding block 602 is fixedly arranged on the moving seat 601; the upper end of the moving seat 601 is slidingly matched with the inner wall of the inclined pipe 3 through the sliding block 602, and one end of the moving seat 601 penetrates the quantitative groove 603.

[0064] The quantitative groove 603 realizes the quantitative feeding of the combustion agent, thereby avoiding waste.

[0065] Further, the inner wall of the quantitative groove 603 is rotationally connected with a blocking plate 604, the outer wall of the blocking plate 604 is fixedly connected with a rubber pad, and one end of the blocking plate 604 extends to the outer wall through the inner wall of the quantitative groove 603 and is fixedly connected with an opening and closing wheel 605 through a pin shaft.

[0066] The inner wall of the inclined pipe 3 is fixedly connected with an opening and closing rack 301, and the opening and closing rack 301 is in meshing transmission with the opening and closing wheel 605.

[0067] The opening and closing rack 301 realizes the automatic opening and closing of the blocking plate 604 when the moving seat 601 moves.

[0068] With reference to Figure 5 The discharging mechanism 7 comprises a sealing frame 701 and an inclined scraper 702, the outer wall of the sealing frame 701 is slidingly matched with the inner wall of the inclined pipe 3, one end of the sealing frame 701 located in the inclined pipe 3 is fixedly connected with the inclined scraper 702, and the bottom surface of the inclined scraper 702 is slidingly matched with the inner wall of the inclined pipe 3.

[0069] The inclined scraper 702 can clean the combustion agent after reaction.

[0070] With reference to Figure 5 And Figure 6 The inclined pipe 3 is in an inclined structure, and the upper end of the inclined pipe 3 is connected with the inside of the burner body 1 through an oxygen conveying pipeline.

[0071] The motor 302 is fixedly connected to the top surface of the inclined pipe 3, and the output end of the motor 302 extends through the top surface of the inclined pipe 3 to the inside and is fixedly connected with the transmission wheel 303.

[0072] The rack A 703 is fixedly connected to the upper end of the sealing frame 701, extends through the inner wall of the heating reaction pipe 4 to the inside, and is meshingly and drivingly arranged with the transmission wheel 303.

[0073] Further, one end of the sliding block 602 is fixedly connected with the rack B 606, the rack B 606 is meshingly and drivingly arranged with the transmission wheel 303, and the top surface of the sliding block 602 is fixedly connected with the transmission rack 607.

[0074] The transmission wheel 303 can realize the synchronous reverse movement of the rack A 703 and the rack B 606.

[0075] Referring to Figure 7 The stirring and pushing rod 501 is rotatably connected to the inner wall of the feeding box 5, and the feeding box 5 is made of heat insulation material.

[0076] The rotating shaft 502 is rotatably connected to the outer wall of the lower end of the feeding box 5, one end of the rotating shaft 502 close to the transmission rack 607 is fixedly connected with the driving wheel 503, the driving wheel 503 is meshingly and drivingly arranged with the transmission rack 607, one end of the rotating shaft 502 located in the inner wall of the lower end of the feeding box 5 is fixedly connected with the driving wheel 504, and the lower end of the stirring and pushing rod 501 is fixedly connected with the driven wheel 505, the driven wheel 505 is meshingly and drivingly arranged with the driving wheel 504.

[0077] The stirring and pushing rod 501 can stir the potassium permanganate in the feeding box 5 to avoid caking, and can also realize the discharging of the potassium permanganate.

[0078] The working principle of the energy-saving burner is as follows: when the burner is needed for combustion, after being used for a period of time, the waste heat generated by the burner body 1 is conducted to the heating reaction pipe 4 through the spiral heat conduction strip 401, when the temperature reaches a set value, the motor 302 can be started to drive the connected transmission wheel 303 to rotate, the transmission wheel 303 drives the moving seat 601 to move through the rack B 606, so that the quantitative groove 603 on the moving seat 601 is communicated with the outlet of the feeding box 5;

[0079] At this time, the transmission rack 607 on the sliding block 602 drives the driving wheel 503 to rotate, the driving wheel 503 drives the connected driving wheel 504 to rotate through the rotating shaft 502, and the driving wheel 504 can drive the stirring and pushing rod 501 to rotate and stir through the driven wheel 505, and then the combustion-supporting agent is pushed into the quantitative groove 603.

[0080] Then when the transmission wheel 303 reverses, the moving seat 601 is driven to move to the heating reaction tube 4, and when the opening and closing wheel 605 is engaged with the opening and closing rack 301, the connected material blocking plate 604 is opened, then the combustion-supporting agent falls into the heating reaction tube 4 to carry out the heating reaction, and the oxygen generated by the combustion-supporting agent reaction is transported to the burner main body 1 through the oxygen transporting pipe, so that the fuel is fully combusted.

[0081] Then when the combustion-supporting agent reaction is finished, the combustion-supporting agent needs to be added again, at this time, the driving transmission wheel 303 is driven to rotate to add the combustion-supporting agent, and when the transmission wheel 303 drives the quantitative feeding mechanism 6 to move, the rack A 703 connected sealing frame 701 is driven to move, at this time, the heating reaction tube 4 is opened, and the high potassium permanganate after the reaction is pushed out by the inclined scraper 702, so that the cleaning is realized.

[0082] The application provides a kind of energy-saving burner's use method, comprising the following steps:

[0083] S1: when using the burner to carry out combustion, after using for a period of time, the waste heat generated by the burner main body 1 is conducted to the heating reaction tube 4 through the spiral heat conduction strip 401 to heat the heating reaction tube 4;

[0084] S2: when the temperature reaches the set value, the motor 302 is started to drive the transmission wheel 303 to rotate, and the transmission wheel 303 drives the moving seat 601 to move through the rack B 606, so that the quantitative groove 603 on the moving seat 601 is communicated with the outlet of the feeding tank 5;

[0085] S3: the transmission rack 607 on the sliding block 602 drives the driving wheel 503 to rotate, the driving wheel 503 drives the driving wheel 504 to rotate through the rotating shaft 502, the driving wheel 504 drives the stirring and pushing rod 501 to rotate and stir, and then the combustion-supporting agent is pushed into the quantitative groove 603;

[0086] S4: the transmission wheel 303 is driven to reverse through the motor 302, and the moving seat 601 is driven to move to the heating reaction tube 4;

[0087] S5: when the opening and closing wheel 605 is engaged with the opening and closing rack 301, the connected material blocking plate 604 is opened, then the combustion-supporting agent falls into the heating reaction tube 4 to carry out the heating reaction, and the oxygen generated by the combustion-supporting agent reaction is transported to the burner main body 1 through the oxygen transporting pipe, so that the fuel is fully combusted;

[0088] S6: when the combustion-supporting agent reaction is finished, the driving transmission wheel 303 is driven to rotate to add the combustion-supporting agent, and when the transmission wheel 303 drives the quantitative feeding mechanism 6 to move, the rack A 703 connected sealing frame 701 is driven to move, at this time, the heating reaction tube 4 is opened, and the combustion-supporting agent residue after the reaction is pushed out by the inclined scraper 702, so that the cleaning is realized.

[0089] The present application uses the waste heat of the burner when spraying fire to heat the combustion-supporting agent in the heating reaction tube, thereby producing oxygen which is delivered to the burner through the oxygen delivery pipeline, achieving sufficient combustion of the fuel, thereby achieving the effect of energy saving. The present application can push out the high potassium permanganate in the heating reaction tube by setting the discharging mechanism in the heating reaction tube, and can drive the discharging mechanism while the quantitative feeding mechanism is driven by the motor to feed, thereby facilitating the reaction of new high potassium permanganate, without the need for manual cleaning, and the practicability is high.

[0090] The above shows and describes the basic principles, main features and advantages of the present application. Those skilled in the art should understand that the present application is not limited by the above examples, and the above examples and descriptions in the specification are only preferred examples of the present application and are not intended to limit the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the claimed present application. The scope of protection of the present application is defined by the appended claims and their equivalents.

Claims

1. An energy-saving burner, comprising: The burner body (1), the fixing frame (2), the inclined tube (3), the heating reaction tube (4), the feeding box (5), the quantitative feeding mechanism (6) and the discharging mechanism (7) are characterized in that: the fixing frame (2) is fixedly connected to one side of the outer wall of the burner body (1); The inclined tube (3) is fixedly installed on the fixed frame (2); The heating reaction tube (4) is fixedly connected to the inclined tube (3); The feeding box (5) is fixedly connected to the inclined tube (3); the feeding box (5) contains a combustion aid; The quantitative feeding mechanism (6) is slidably fitted on the inner wall of the inclined tube (3) to achieve the quantitative feeding of potassium permanganate; The discharge mechanism (7) is slidably fitted inside the heating reaction tube (4); The inclined tube (3) is set in an inclined structure, and the upper end of the inclined tube (3) is connected to the inside of the burner body (1) through an oxygen supply pipe; A spiral heat-conducting strip (401) is fixedly installed on the inner wall of the heating reaction tube (4). One end of the spiral heat-conducting strip (401) passes through the inner wall of the heating reaction tube (4) and is fixedly connected to the burner body (1). The quantitative feeding mechanism (6) includes a movable seat (601) and a slider (602). The movable seat (601) is slidably coupled with the inclined tube (3). The slider (602) is fixedly mounted on the movable seat (601). A quantitative groove (603) is provided through one end of the movable seat (601). The discharge mechanism (7) includes a sealing frame (701) and an inclined scraper (702). The sealing frame (701) is slidably fitted with the inclined tube (3). The end of the sealing frame (701) located inside the inclined tube (3) is connected and fixedly fitted with the inclined scraper (702). The bottom surface of the inclined scraper (702) is slidably fitted with the inner wall of the inclined tube (3). The inner wall of the feeding box (5) is rotatably connected to an agitator pusher rod (501); a rotating shaft (502) is rotatably arranged inside the feeding box (5), and a drive wheel (503) is fixedly connected to one end of the rotating shaft (502) near the transmission rack (607). The drive wheel (503) meshes with the transmission rack (607) for transmission. A drive wheel (504) is fixedly arranged at one end of the rotating shaft (502), and a driven wheel (505) is fixedly connected to the lower end of the agitator pusher rod (501). The driven wheel (505) meshes with the drive wheel (504) for transmission.

2. The energy-saving burner according to claim 1, characterized in that: A baffle plate (604) is rotatably provided on the inner wall of the metering tank (603). A rubber pad is fixedly provided on the baffle plate (604), and an opening and closing wheel (605) is fixedly provided at one end of the baffle plate (604). The inclined tube (3) is fixedly connected to the inner wall with a gear rack (301), which is engaged with the gear wheel (605) for transmission.

3. The energy-saving burner according to claim 2, characterized in that: A motor (302) is fixedly installed on the top surface of the inclined tube (3), and a transmission wheel (303) is fixedly installed coaxially at the output end of the motor (302). The sealing frame (701) is fixedly provided with a rack A (703) at its upper end, and the rack A (703) is meshed with the transmission wheel (303) for transmission.

4. The energy-saving burner according to claim 3, characterized in that: A rack B (606) is fixedly provided at one end of the slider (602), and the rack B (606) is meshed with the transmission wheel (303) for transmission. A transmission rack (607) is fixedly connected to the top surface of the slider (602); the transmission rack (607) is meshed with the transmission wheel (303) for transmission.

5. A method of using an energy-saving burner as described in any one of claims 1-4, characterized in that... Includes the following steps: S1: When combustion is performed using a burner, the residual heat generated by the burner body (1) will be conducted to the heating reaction tube (4) through the spiral heat conduction strip (401) to heat the heating reaction tube (4); S2: When the temperature reaches the set value, start the motor (302) to drive the transmission wheel (303) to rotate. The transmission wheel (303) drives the moving seat (601) to move through the rack B (606), so that the quantitative groove (603) on the moving seat (601) is connected to the outlet of the feeding box (5). S3: The transmission rack (607) on the slider (602) drives the drive wheel (503) to rotate. The drive wheel (503) drives the drive wheel (504) to rotate through the rotating shaft (502). The drive wheel (504) drives the stirring push rod (501) to rotate and stir through the driven wheel (505), and then pushes the combustion aid into the metering tank (603). S4: The motor (302) drives the transmission wheel (303) to reverse, and the transmission wheel (303) drives the moving seat (601) to move towards the heating reaction tube (4); S5: When the opening and closing wheel (605) meshes with the opening and closing rack (301), it drives the connected baffle plate (604) to open, and then the combustion aid will fall into the heating reaction tube (4) for heating reaction. The oxygen generated by the combustion aid reaction will be transported to the burner body (1) through the oxygen supply pipe, so that the fuel is fully burned. S6: After the combustion accelerator reaction is completed, drive the transmission wheel (303) to rotate to add combustion accelerator; when the transmission wheel (303) drives the quantitative feeding mechanism (6) to move, it will drive the sealing frame (701) connected to the rack A (703) to move. At this time, the heating reaction tube (4) is opened, and the combustion accelerator residue after the reaction is completed will be pushed out by the inclined scraper (702) to achieve cleaning.

Citation Information

Patent Citations

  • Energy saving burner

    CN103836629A

  • Pulverized coal burner of boiler

    CN214664387U

  • Quantitative automatic feeding structure for metal particle processing

    CN216189432U