Carbon removal device of oxyhydrogen energy-saving equipment

By designing dust cleaning components, the dust-proof net dust of the hydrogen and oxygen carbon remover is automatically cleaned, which solves the problem of difficulty in cleaning the dust on the dust-proof net surface and achieves efficient heat dissipation and dust-proof effects of the equipment.

CN223136284UActive Publication Date: 2025-07-22JIANGSU LINGHYDROGEN ENERGY SAVING TECH CO LTD
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Patent Information

Application Number
CN202422626341.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-30
Publication Date
2025-07-22
Estimated Expiration
2034-10-30

AI Technical Summary

Technical Problem

The dust on the dust-proof mesh surface of the existing hydrogen and oxygen carbon removal machine is difficult to clean quickly and efficiently, affecting the equipment's heat dissipation and dustproof effect.

Method used

Design the dust removal components, including sliders, springs, wire ropes and motor-driven coil wheels, cover or scrape dust from the surface of the dustproof net by automated dust removal boards to achieve automatic cleaning of the dustproof net.

Benefits of technology

It improves the cleaning efficiency of dust on the dust-proof mesh surface, simplifies the cleaning process, and maintains the equipment's heat dissipation and dust-proof effect.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a decarbonizing device of oxyhydrogen energy-saving equipment, which relates to the field of oxyhydrogen energy-saving equipment and comprises a box body, a partition plate is arranged in the box body, a plurality of vent holes are arranged on the partition plate, three electrolytic baths are arranged at the top of the partition plate, exhaust pipes are connected to the tops of the electrolytic baths, and gas guide pipes are arranged at the top ends of the exhaust pipes. And ash removal assemblies are arranged on the two sides of the box body. According to the dust removal device, the dust removal assembly is arranged, when the device needs to be cooled, the motor can be started, the motor works to drive the winding wheel to rotate, the winding wheel can wind the steel wire rope, the steel wire rope can pull the sliding block to enable the sliding block to move upwards, the sliding block can extrude the spring when sliding, and the spring is compressed under stress; and meanwhile, when the sliding block moves, the dust removal plate can be driven to move, so that the dust removal plate does not shield the air inlet hole any more, external air can enter the box body, and heat dissipation is facilitated.
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Description

Technical Field

[0001] The utility model relates to the field of hydrogen-oxygen energy-saving equipment, in particular to a carbon removal device for hydrogen-oxygen energy-saving equipment. Background Technique

[0002] The hydrogen-oxygen carbon removal machine is a new type of gas generation equipment modified on the basis of a hydrogen-oxygen generator for the purpose of removing carbon from automobiles; the hydrogen-oxygen generator is an electrochemical equipment that uses water as fuel to electrolyze water to produce hydrogen and oxygen, and it is mainly used in the glass industry, electronics industry, metal cutting, flame processing, catalytic combustion, and engine fuel saving, etc.

[0003] According to the Chinese patent with the publication number CN214063165U, a portable hydrogen-oxygen carbon removal machine is disclosed. Through the setting of an inverter, a partition board, etc., the structure of this portable hydrogen-oxygen carbon removal machine is relatively simple, the carbon removal effect is obvious, the operation is relatively convenient, and at the same time, the carbon removal cost is low, and there is no pollution to the automobile and the surrounding environment.

[0004] Aiming at the above-mentioned disclosed patent content, by setting a fan, air inlets, and heat dissipation holes for heat dissipation, but when the fan works, it will also draw external dust into the box body. Although the dustproof net can filter the dust in the air, after a long time of filtering, a large amount of dust will adhere to the surface of the dustproof net. In order to prevent the air intake effect, the dust on the dustproof net needs to be cleaned every once in a while, and the cleaning is relatively troublesome, thereby reducing the cleaning efficiency of the dust on the surface of the dustproof net. Content of the Utility Model

[0005] Based on this, the purpose of the present utility model is to provide a carbon removal device for hydrogen-oxygen energy-saving equipment to solve the technical problem of being difficult to quickly clean the dust adhering to the surface of the dustproof net.

[0006] To achieve the above object, the present utility model provides the following technical solution: A carbon removal device for hydrogen-oxygen energy-saving equipment, including a box body, a partition board is installed inside the box body, a plurality of ventilation holes are opened on the partition board, three electrolytic cells are arranged on the top of the partition board, an exhaust pipe is connected to the top of the electrolytic cell, and a guide pipe is installed at the top end of the exhaust pipe. Dust cleaning components are arranged on both sides of the box body, and the dust cleaning components include chutes opened at the lower parts of both sides of the box body, a motor installed at the middle position of the bottom of the partition board, and wire wheels installed at both sides of the bottom of the partition board and both sides of the inside of the box body. A spring is installed above the inside of the chute, and a slider is connected to the bottom end of the spring. A dust cleaning board is installed on one side of the slider. The output end of the motor is connected to a wire winding wheel, and two steel wire ropes are wound around the outer wall of the wire winding wheel.

[0007] By adopting the above technical solution, when the slider slides inside the chute, it will squeeze the spring, causing the spring to be compressed under force, which facilitates the subsequent reset movement of the slider, and the slider will drive the ash cleaning plate to move when it moves.

[0008] Further, one end of the steel wire rope penetrates into the chute and is connected to the top of the slider, and the steel wire rope contacts the wire pulley.

[0009] By adopting the above technical solution, when the steel wire rope is wound up, it will pull the steel wire rope, and the steel wire rope will pull the slider to move upward, and the slider will drive the ash cleaning plate to move.

[0010] Further, an installation plate is also installed inside the box body, and a moisture separation tank is installed on the top of the installation plate. A first air outlet pipe is installed on the top of the moisture separation tank, a backfire preventer is installed on the first air outlet pipe, a second air outlet pipe is installed at the top end of the first air outlet pipe, and an electromagnetic valve is installed on the second air outlet pipe.

[0011] By adopting the above technical solution, so that the gas can enter the first air outlet pipe, then enter the second air outlet pipe and be discharged through the second air outlet pipe.

[0012] Further, water inlet pipes penetrating to the outside of the box body are installed on the two electrolytic cells, and a sealing cover is threadedly connected to the top end of the water inlet pipe.

[0013] By adopting the above technical solution, when water needs to be added to the electrolytic cell, the staff can rotate the sealing cover to screw the sealing cover out of the water inlet pipe, and then water can be added into the water inlet pipe.

[0014] Further, a communicating pipe is connected between the three electrolytic cells, and heat dissipation fins are installed on both sides of the electrolytic cell.

[0015] By adopting the above technical solution, the heat dissipation fins can dissipate heat from the electrolytic cell, and hydrogen and oxygen can enter the communicating pipe.

[0016] Further, an inverter is installed below the inside of the box body, and a plurality of ventilation holes are also opened on the top of the partition plate.

[0017] By adopting the above technical solution, the ventilation holes are provided so that the hot air below the partition plate can flow upward and be discharged through the heat dissipation holes.

[0018] Further, heat dissipation holes are opened on both sides of the box body, and a fan is installed on one side inside the box body.

[0019] By adopting the above technical solution, the heat dissipation holes are provided so that heat can be dissipated, thereby dissipating heat from the electrolytic cell and the inverter.

[0020] Further, intake holes are formed in the lower sides of both sides of the box body. The intake holes correspond to the fans, and a first dust-proof net is installed inside the intake holes.

[0021] By adopting the above technical solution, external air can enter the inside of the box body through the intake holes, thereby accelerating the air circulation speed inside the box body.

[0022] Further, a second dust-proof net is installed in the heat dissipation holes, and an air delivery pipe is installed between the air guide pipe and the water vapor separation tank.

[0023] By adopting the above technical solution, the setting of the second dust-proof net can play a dust-proof role and prevent external dust from entering the inside of the box body through the heat dissipation holes.

[0024] Further, the diameter of the dust cleaning plate is larger than the diameter of the intake hole, and one side of the dust cleaning plate is attached to one side of the first dust-proof net.

[0025] By adopting the above technical solution, the dust cleaning plate can block the intake hole to prevent external dust from entering the inside of the box body.

[0026] In summary, the present utility model mainly has the following beneficial effects:

[0027] By providing a dust cleaning component in the present utility model, when the device needs to be cooled, the motor can be started. The motor drives the wire winding wheel to rotate when working. The wire winding wheel can wind up the steel wire rope, and the steel wire rope can pull the slider, causing the slider to move upward. When the slider slides, it will compress the spring, causing the spring to be compressed under force. At the same time, when the slider moves, it will drive the dust cleaning plate to move, so that the dust cleaning plate no longer blocks the intake hole, thereby enabling external air to enter the box body for convenient heat dissipation. When the dust attached to the surface of the first dust-proof net needs to be cleaned, the motor can be started to drive the wire winding wheel to reverse and release the steel wire rope. At this time, the spring stretches and then pushes the slider to move back to its original position, driving the dust cleaning plate to move downward. When the dust cleaning plate moves downward and resets, it can scrape off the dust attached to the surface of the first dust-proof net, thereby improving the cleaning efficiency of the dust on the surface of the first dust-proof net. There is no need for manual cleaning by staff, and the cleaning process is simple and convenient. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 is the overall three-dimensional structure diagram of the present utility model;

[0029] Figure 2 is the overall front sectional structure diagram of the present utility model;

[0030] Figure 3 is the structure diagram of the wire winding wheel of the present utility model;

[0031] Figure 4 is the three-dimensional structure diagram of the electrolytic cell of the present utility model.

[0032] In the figure: 1. Box body; 2. Inverter; 3. Fan; 4. Air inlet hole; 5. Heat dissipation hole; 6. Water inlet pipe; 7. Sealing cover; 8. Mounting plate; 9. Water-vapor separation tank; 10. Flame arrester; 11. First air outlet pipe; 12. Solenoid valve; 13. Second air outlet pipe; 14. Air guide pipe; 15. Electrolytic cell; 16. Partition board; 17. Ventilation hole; 18. Heat dissipation fins; 19. Connecting pipe; 20. Exhaust pipe; 21. Gas transmission pipe; 22. First dust-proof net; 23. Ash cleaning assembly; 2301. Motor; 2302. Wire reel; 2303. Steel wire rope; 2304. Guide pulley; 2305. Slide groove; 2306. Spring; 2307. Slide block; 2308. Ash cleaning plate; 24. Second dust-proof net; 25. Control panel. Specific implementation mode

[0033] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. The embodiments described below by referring to the drawings are exemplary and are only used to explain the present invention and cannot be understood as a limitation to the present invention.

[0034] The embodiments of the present invention will be described below according to the overall structure of the present invention.

[0035] Embodiment 1:

[0036] A decarbonization device for a hydrogen-oxygen energy-saving device, as Figures 1 - 4 shown, includes a box body 1. A partition board 16 is installed inside the box body 1. A plurality of ventilation holes 17 are opened on the partition board 16. Three electrolytic cells 15 are arranged on the top of the partition board 16. An exhaust pipe 20 is connected to the top of the electrolytic cell 15. And the top end of the exhaust pipe 20 is provided with an air guide pipe 14. Ash cleaning assemblies 23 are arranged on both sides of the box body 1. A mounting plate 8 is also installed inside the box body 1. And a water-vapor separation tank 9 is installed on the top of the mounting plate 8. A first air outlet pipe 11 is installed on the top of the water-vapor separation tank 9. A flame arrester 10 is installed on the first air outlet pipe 11. The top end of the first air outlet pipe 11 is provided with a second air outlet pipe 13. And a solenoid valve 12 is installed on the second air outlet pipe 13 so that gas can enter the inside of the first air outlet pipe 11, then enter the second air outlet pipe 13 and be discharged through the second air outlet pipe 13. An observation window is arranged on the outer surface of the box body 1 of the box body 1 to observe the water volume in the electrolytic cell 15. A box door is installed on the outer surface of the box body 1 to facilitate the maintenance of the inverter 2.

[0037] Refer to Figure 1 、 Figure 2 and Figure 4, water inlet pipes 6 penetrating to the outside of the box body 1 are also installed on the two electrolytic cells 15. A cover 7 is threadedly connected to the top end of the water inlet pipe 6. When water needs to be added to the electrolytic cell 15, the staff can rotate the cover 7 to screw the cover 7 out of the water inlet pipe 6, and then water can be added to the inside of the water inlet pipe 6. A communicating pipe 19 is connected between the three electrolytic cells 15, and hydrogen and oxygen can enter the inside of the communicating pipe 19. An inverter 2 is installed below the inside of the box body 1. A plurality of ventilation holes 17 are also opened at the top of the partition plate 16. The ventilation holes 17 are provided so that the hot air below the partition plate 16 can flow upward and be discharged through the heat dissipation holes 5.

[0038] Refer to Figure 1 、 Figure 2 and Figure 4 , heat dissipation holes 5 are opened on both sides of the box body 1. The heat dissipation holes 5 are provided so that heat can be dissipated, thereby dissipating heat from the electrolytic cell 15 and the inverter 2. A fan 3 is installed on one side inside the box body 1. When the fan 3 works, it will accelerate the air circulation speed around it and improve the heat dissipation effect. Air inlet holes 4 are also opened below both sides of the box body 1. The air inlet holes 4 correspond to the fan 3. A first dust-proof net 22 is installed inside the air inlet holes 4. External air can enter the inside of the box body 1 through the air inlet holes 4, thereby accelerating the air circulation speed inside the box body 1. An air delivery pipe 21 is installed between the air guide pipe 14 and the water vapor separation tank 9. The electrolytic cell 15 is electrically connected to the inverter 2.

[0039] Specifically, the dust cleaning assembly 23 includes sliding grooves 2305 opened at the lower sides of both sides of the box body 1, a motor 2301 installed at the middle position of the bottom of the partition plate 16, and wire wheels 2304 installed at both sides of the bottom of the partition plate 16 and both sides inside the box body 1. A spring 2306 is installed above the inside of the sliding groove 2305, and the bottom end of the spring 2306 is connected to a slider 2307. A dust cleaning plate 2308 is installed on one side of the slider 2307. When the slider 2307 slides inside the sliding groove 2305, it will squeeze the spring 2306, causing the spring 2306 to be compressed under force, facilitating the subsequent reset movement of the slider 2307. And when the slider 2307 moves, it will drive the dust cleaning plate 2308 to move. The output end of the motor 2301 is connected to a wire winding wheel 2302, and two steel wire ropes 2303 are wound around the outer wall of the wire winding wheel 2302.

[0040] Specifically, one end of the steel wire rope 2303 penetrates into the inside of the chute 2305 and is connected to the top of the slider 2307. A sealing ring is provided between the steel wire rope 2303 and the box body 1. The steel wire rope 2303 contacts the wire pulley 2304. When the steel wire rope 2303 is wound up, it will pull the steel wire rope 2303, and the steel wire rope 2303 will then pull the slider 2307 to move upward. The slider 2307 drives the ash cleaning plate 2308 to move. The diameter of the ash cleaning plate 2308 is larger than the diameter of the air inlet hole 4. One side of the ash cleaning plate 2308 is attached to one side of the first dust-proof net 22, so that the ash cleaning plate 2308 can block the air inlet hole 4 to prevent external dust from entering the inside of the box body 1. A control panel 25 is also installed above the outer surface of the box body 1. The control panel 25 is electrically connected to the inverter 2, the fan 3, the motor 2301, and the solenoid valve 12 respectively, so as to start or stop the inverter 2, the fan 3, the motor 2301, and the solenoid valve 12 through the control panel 25.

[0041] Embodiment 2:

[0042] On the basis of the above Embodiment 1, in order to facilitate the heat dissipation of the electrolytic cell 15, the following structure is provided.

[0043] Refer to Figure 2 and Figure 4 , heat dissipation fins 18 are installed on both sides of the electrolytic cell 15. The heat dissipation fins 18 can dissipate heat from the electrolytic cell 15 to prevent heat from accumulating in the electrolytic cell 15 all the time, thereby improving the heat dissipation effect of the electrolytic cell 15.

[0044] Embodiment 3:

[0045] On the basis of the above Embodiment 1, in order to improve the dust-proof effect of the box body 1 and prevent external dust from entering the inside of the box body 1 through the heat dissipation holes 5, the following structure is provided.

[0046] Refer to Figures 1 - 2 , a second dust-proof net 24 is installed in the heat dissipation holes 5. The setting of the second dust-proof net 24 can play a dust-proof role to prevent external dust from entering the inside of the box body 1 through the heat dissipation holes 5.

[0047] The working principle of the present utility model is as follows: First, when in use, the device is powered on first, and then the top end of the second air outlet pipe 13 is connected to the automotive air filter. When water needs to be added to the electrolytic cell 15, the staff can rotate the cover 7 away from the water inlet pipe 6, and then add water to the electrolytic cell 15 through the water inlet pipe 6. After the addition is completed, the cover 7 is screwed back onto the water inlet pipe 6. Then, the staff starts the inverter 2, and the inverter 2 starts to work, electrolyzing the clear water inside the electrolytic cell 15 into hydrogen and oxygen. The hydrogen and oxygen enter the air delivery pipe 21 through the gas guide pipe 14, and then enter the water vapor separation tank 9. The water vapor separation tank 9 removes the moisture contained in the hydrogen and oxygen. Then, the hydrogen and oxygen enter the interior of the engine through the first air outlet pipe 11 and the second air outlet pipe 13. The hydrogen can remove carbon deposits, and the oxygen helps with the combustion inside the engine;

[0048] When heat dissipation of the device is required, the motor 2301 can be started. The operation of the motor 2301 can drive the wire reel 2302 to rotate, and the wire reel 2302 can wind up the steel wire rope 2303. The steel wire rope 2303 can then pull the slider 2307, causing the slider 2307 to move upward. When the slider 2307 slides, it will squeeze the spring 2306, causing the spring 2306 to be compressed under force. At the same time, when the slider 2307 moves, it will drive the dust cleaning plate 2308 to move, so that the dust cleaning plate 2308 no longer blocks the air inlet hole 4. Then, the fan 3 is started. The operation of the fan 3 can draw external air into the box body 1, and the first dust-proof net 22 can filter the air. After the external air enters, it can accelerate the air circulation speed inside the box body 1, and the heat dissipation fins 18 can dissipate heat from the electrolytic cell 15, and the heat can be discharged through the heat dissipation holes 5;

[0049] When it is necessary to clean the dust attached to the surface of the first dust-proof net 22, the motor 2301 can be started, causing the motor 2301 to drive the wire reel 2302 to reverse, releasing the steel wire rope 2303. At this time, the spring 2306 stretches and then pushes the slider 2307 to move back to its original position, and then drives the dust cleaning plate 2308 to move downward. When the dust cleaning plate 2308 moves downward and resets, it can scrape off the dust attached to the surface of the first dust-proof net 22.

[0050] Although the embodiments of the present utility model have been shown and described, the specific embodiments are only explanations of the present utility model and are not limitations thereof. The specific features, structures, materials, or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. After reading this specification, those skilled in the art can, without departing from the principles and purposes of the present utility model, make modifications, substitutions, and variations that do not contribute creatively to the embodiments as needed. However, as long as they are within the scope of the claims of the present utility model, they are protected by the patent law.

Claims

1. A carbon removal device for a hydrogen-oxygen energy-saving device, comprising a box body (1), characterized in that: Inside the box body (1), a partition board (16) is installed. A plurality of ventilation holes (17) are opened in the partition board (16). At the top of the partition board (16), there are three electrolytic cells (15). At the top of the electrolytic cell (15), an exhaust pipe (20) is connected. And at the top end of the exhaust pipe (20), a gas guide pipe (14) is installed. On both sides of the box body (1), dust cleaning components (23) are provided. And the dust cleaning component (23) includes a sliding groove (2305) opened at the lower parts on both sides of the box body (1), a motor (2301) installed at the middle position of the bottom of the partition board (16), and wire wheels (2304) installed at both sides of the bottom of the partition board (16) and both sides inside the box body (1). Above the inside of the sliding groove (2305), a spring (2306) is installed. And at the bottom end of the spring (2306), a slider (2307) is connected. On one side of the slider (2307), a dust cleaning plate (2308) is installed. The output end of the motor (2301) is connected with a wire winding wheel (2302). And on the outer wall of the wire winding wheel (2302), two steel wire ropes (2303) are wound.

2. The decarbonization device of a hydrogen-oxygen energy-saving device according to claim 1, characterized in that: One end of the steel wire rope (2303) penetrates into the inside of the sliding groove (2305) and is connected with the top of the slider (2307). The steel wire rope (2303) contacts the wire wheel (2304).

3. The carbon removal device of a hydrogen-oxygen energy-saving device according to claim 1, characterized in that: Inside the box body (1), a mounting plate (8) is also installed. And on the top of the mounting plate (8), a water vapor separation tank (9) is installed. On the top of the water vapor separation tank (9), a first air outlet pipe (11) is installed. On the first air outlet pipe (11), a flame arrester (10) is installed. At the top end of the first air outlet pipe (11), a second air outlet pipe (13) is installed. And on the second air outlet pipe (13), a solenoid valve (12) is installed.

4. The decarbonization device of a hydrogen-oxygen energy-saving device according to claim 1, characterized in that: On the two electrolytic cells (15), a water inlet pipe (6) penetrating to the outside of the box body (1) is also installed. At the top end of the water inlet pipe (6), a sealing cover (7) is threadedly connected.

5. The decarbonization device of a hydrogen-oxygen energy-saving device according to claim 1, characterized in that: Between the three electrolytic cells (15), a communicating pipe (19) is connected. On both sides of the electrolytic cell (15), heat dissipation fins (18) are installed.

6. The decarbonization device of a hydrogen-oxygen energy-saving device according to claim 1, characterized in that: Below the inside of the box body (1), an inverter (2) is installed. On the top of the partition board (16), a plurality of ventilation holes (17) are also opened.

7. The decarbonization device of a hydrogen-oxygen energy-saving device according to claim 3, characterized in that: On both sides of the box body (1), heat dissipation holes (5) are opened. On one side inside the box body (1), a fan (3) is installed.

8. The decarbonization device of a hydrogen-oxygen energy-saving device according to claim 7, characterized in that: Below both sides of the box body (1), air inlet holes (4) are also opened. The air inlet holes (4) correspond to the fan (3). Inside the air inlet holes (4), a first dust-proof net (22) is installed.

9. The decarbonization device of a hydrogen-oxygen energy-saving device according to claim 7, characterized in that: Inside the heat dissipation holes (5), a second dust-proof net (24) is installed. Between the gas guide pipe (14) and the water vapor separation tank (9), an air delivery pipe (21) is installed.

10. The carbon removal device of a hydrogen-oxygen energy-saving device according to claim 8, characterized in that: The diameter of the dust cleaning plate (2308) is larger than the diameter of the air inlet hole (4). One side of the dust cleaning plate (2308) is attached to one side of the first dust-proof net (22).

Citation Information

Patent Citations

  • Portable oxyhydrogen decarbonizing machine

    CN214063165U