Carbon dioxide absorption device of high-pressure oxyhydrogen cabin
By designing the air treatment mechanism, deposition mechanism and ash retardation mechanism, the precipitation problem of the carbon dioxide absorption device in the high-pressure hydrogen and oxygen chamber is solved, and effective cleaning and self-cleaning are achieved to maintain the absorption effect.
Patent Information
- Application Number
- CN202510582162.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-07
- Publication Date
- 2025-07-08
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In high-pressure hydrogen and oxygen chambers, precipitation is easily precipitated during the absorption of carbon dioxide, resulting in weakening of absorption capacity, and it is difficult for the prior art to effectively clean and maintain the absorption effect.
A carbon dioxide absorption device including an air treatment mechanism, a deposition removal mechanism and a dust-retardant mechanism is designed to clean the crystals in the treatment barrel through the telescopic tube; the centrifugal force of the servo motor and the sponge block is used to achieve self-cleaning, blocking dust to prevent chemical reactions.
Effectively clean the precipitated crystals, maintain absorption capacity, prevent the absorption capacity of carbon dioxide, realize the self-cleaning function, and avoid chemical reactions to reduce absorption efficiency.
Smart Images

Figure CN120268210A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of carbon dioxide absorption, and specifically relates to a carbon dioxide absorption device for a high-pressure hydrogen-oxygen chamber. Background Art
[0002] Carbon dioxide (English name: Carbon dioxide) is a common compound in the air. Its molecular formula is CO2, which is composed of two oxygen atoms and one carbon atom connected by covalent bonds. There is a trace amount of carbon dioxide in the air, accounting for about 0.03% of the total volume of the air. Carbon dioxide can dissolve in water to form carbonic acid, which is a weak acid. Since the air contains carbon dioxide, the pH value of rainwater is generally greater than or equal to 5.6 under normal circumstances (CO2 itself is not toxic, but when the CO2 in the air exceeds the normal content, it will have an adverse effect on the human body and make people unable to breathe). When a person is in a high-pressure hydrogen-oxygen chamber, it can maintain physical health and fight against diseases. Therefore, it is necessary to absorb carbon dioxide in the space entering the hydrogen-oxygen chamber. During the process of absorbing carbon dioxide, precipitation may occur, thereby weakening the subsequent absorption effect. Summary of the Invention
[0003] Aiming at the deficiencies of the prior art, the technical solution adopted by the present invention to solve its technical problems is: A carbon dioxide absorption device for a high-pressure hydrogen-oxygen chamber of the present invention includes: A bottom plate, which is used to support the carbon dioxide absorption device of the high-pressure hydrogen-oxygen chamber; A hydrogen-oxygen chamber, which is used for human cardiopulmonary treatment, and the bottom of the hydrogen-oxygen chamber is fixedly connected to the top of the bottom plate; A switch door, which is used for personnel to enter the hydrogen-oxygen chamber, and the outer surface of the switch door is rotatably connected to the inner wall of the hydrogen-oxygen chamber; A first air pipe, which is used to transmit air, and one end of the first air pipe close to the hydrogen-oxygen chamber is fixedly connected to the outer surface of the hydrogen-oxygen chamber; It further includes: An air treatment mechanism, which is used to absorb carbon dioxide in the air, and the outer surface of the air treatment mechanism is fixedly connected to the end of the first air pipe far from the hydrogen-oxygen chamber.
[0004] The air treatment mechanism includes an air box. On the top of the inner wall of the air box, support columns I are symmetrically arranged. The top of the support column I is fixedly connected to the top of the inner wall of the air box. The bottom of the support column I is fixedly connected to a magnet plate. At the bottom end of the inner wall of the air box, absorption mechanisms are symmetrically arranged. One end of the absorption mechanism close to the air box is fixedly connected to the outer surface of the air box. An air pipe II is fixedly connected to the outer surface of the absorption mechanism. On the outer surface of the air box, air suction devices are symmetrically arranged. A dust resistance mechanism is fixedly connected to the outer surface of the air suction device. A collection plate is fixedly connected to the bottom of the outer surface of the absorption mechanism.
[0005] Preferably, the outer surface of the air box is fixedly connected to one end of the air pipe I far from the hydrogen-oxygen chamber. One end of the air pipe II far from the absorption mechanism is fixedly connected to the inner wall of the air box.
[0006] Preferably, the absorption mechanism includes a treatment barrel. A telescopic pipe is fixedly connected to the inner wall of the treatment barrel. A telescopic rod is slidably connected to the inner wall of the telescopic pipe. A baffle is fixedly connected to the top of the telescopic pipe. A sediment removal mechanism is fixedly connected to the top of the telescopic rod.
[0007] The telescopic pipe drives the telescopic rod to move upward, so that the sediment removal mechanism cleans out the precipitated crystals, avoiding the weakening of the absorption capacity.
[0008] Preferably, the bottom of the treatment barrel is fixedly connected to the inner wall of the air box. The outer surface of the telescopic rod is slidably connected to the inner wall of the baffle.
[0009] Preferably, the sediment removal mechanism includes a support column II. The bottom of the support column II is fixedly connected to the top of the telescopic rod. A filter plate is fixedly connected to the top of the support column II. An inclined column is fixedly connected to the center of the top of the filter plate. The shape of the inclined column is narrow at the bottom and wide at the top. Sector plates are evenly arranged on the outer surface of the inclined column. One end of the sector plate close to the inclined column is slidably connected to the outer surface of the inclined column. A scraping plate is fixedly connected to the end of the sector plate far from the inclined column. A sliding block is slidably connected to the inner wall of the top of the sector plate. A shoveling plate is fixedly connected to the outer surface of the sliding block. A magnet block is fixedly connected to one end of the top of the sector plate close to the inclined column.
[0010] The telescopic pipe drives the telescopic rod to move upward, thereby driving the sediment removal mechanism to move upward, and making the scraping plate scrape the crystals adsorbed on the inner wall of the treatment barrel. When the anti-sediment mechanism moves to the top of the treatment barrel, the magnetic plate will attract the magnetic block, thereby driving the sector plate to slide upward along the inclined column, so that the sector plate is inclined, so that the crystal blocks scraped off by the previous scraping plate fall onto the collection plate. At the same time, the gravity drives the sliding block to slide downward, thereby driving the shoveling plate to shovel the crystals adhered to the sector plate and making them fall onto the collection plate.
[0011] Preferably, the dust-blocking mechanism includes the third air pipe. A first support rod is fixedly connected to the top of the third air pipe. A circular plate is fixedly connected to the top of the first support rod. A cleaning mechanism is fixedly connected to the inner wall of the circular plate. A first support plate is fixedly connected to the top of the circular plate. A cable is slidably connected to the inner wall of the first support plate. A protruding block is fixedly connected to the outer surface of the circular plate. Extrusion columns are evenly arranged on the top of the protruding block. A dust-blocking plate is fixedly connected to one end of the cable close to the third air pipe.
[0012] The air suction device sucks air. When the air passes through the third air pipe, the dust-blocking plate will block dust such as feathers in the air, preventing impurities in the air from reacting with the sodium carbonate solution, thereby reducing the ability to absorb carbon dioxide. After a period of time, by pulling the cable, the dust-blocking plate is driven to pass through the first support plate, and the extrusion columns extrude the dust in the air holes of the dust-blocking plate.
[0013] Preferably, the cleaning mechanism includes a servo motor. A rotating shaft is fixedly connected to the top of the servo motor. A rotating disk is fixedly connected to the top of the rotating shaft. A first telescopic spring is fixedly connected to the inner wall of the rotating disk. A sponge block is fixedly connected to one end of the first telescopic spring away from the rotating disk. A scraping mechanism is fixedly connected to the outer surface of the rotating disk.
[0014] During the process of pulling the dust-blocking plate, the dust-blocking plate is stopped at the same horizontal plane as the cleaning mechanism. The servo motor drives the rotating shaft and the rotating disk to rotate. The centrifugal force causes the first telescopic spring to stretch, thereby driving the sponge block to move outward and cleaning the outer surface of the dust-blocking plate.
[0015] Preferably, the scraping mechanism includes a second support rod. A circular ring is fixedly connected to one end of the second support rod away from the rotating disk. Scraping rings are evenly arranged on the outer surface of the circular ring. The inner wall of the scraping ring is fixedly connected to the outer surface of the circular ring. A second telescopic spring is fixed to the outer surface of the scraping ring. A second support plate is fixedly connected to one end of the second telescopic spring away from the scraping ring. An impact rod is fixedly connected to the outer surface of the second support plate. A third support column is fixedly connected to one side of the second support plate close to the second telescopic spring. A blocking block is fixedly connected to one end of the third support column away from the second support plate.
[0016] During the movement of the sponge block, it will come into contact with the scraping ring, so that the scraping ring scrapes off the dust on the surface of the sponge block. At the same time, the sponge block will squeeze the blocking block and the third support column, and the second telescopic spring will be stretched. After the sponge block returns to its original position, the sponge will not squeeze the blocking block, and the second telescopic spring will return to its original shape, so that the impact rod impacts the scraping ring, causing the dust adhering to the scraping ring to fall off, thus realizing self-cleaning.
[0017] Preferably, the bottom of the third trachea is fixedly connected to the outer surface of the air suction device, the outer surface of the servo motor is fixedly connected to the inner wall of the circular plate, and one end of the second support rod close to the rotating disk is fixedly connected to the outer surface of the rotating disk.
[0018] The beneficial effects of the present invention are as follows: (1) By setting up an absorption mechanism in the present invention, first, sodium hydroxide solution is placed in the treatment barrel. After the air is inhaled into the treatment barrel, a chemical acid-base neutralization reaction occurs between carbon dioxide in the air and sodium hydroxide, generating sodium carbonate and water, thereby absorbing carbon dioxide in the air. If the treatment barrel is not cleaned for a long time, sodium carbonate will become saturated and crystallize out. The precipitated crystals will adhere to and fall on the sector plate. The telescopic tube drives the telescopic rod to move upward, so that the sediment removal mechanism cleans out the precipitated crystals, avoiding the weakening of the absorption capacity.
[0019] (2) By setting up a sediment removal mechanism in the present invention, the telescopic tube drives the telescopic rod to move upward, thereby driving the sediment removal mechanism to move upward, and the scraping plate scrapes the crystals adsorbed on the inner wall of the treatment barrel. When the sediment prevention mechanism moves to the top of the treatment barrel, the magnetic plate will attract the magnetic block, thereby driving the sector plate to slide upward along the inclined column, so that the sector plate tilts, so that the crystal blocks scraped off by the previous scraping plate fall onto the collection plate. At the same time, the gravity drives the sliding block to slide downward, thereby driving the shoveling plate to shovel the crystals adhered to the sector plate and make them fall onto the collection plate.
[0020] (3) By setting up a dust blocking mechanism in the present invention, the air suction device sucks air. When the air passes through the third trachea, the dust blocking plate will block dust and feathers in the air, avoiding other chemical reactions between impurities in the air and the sodium carbonate solution, thereby reducing the ability to absorb carbon dioxide. After a period of time, by pulling the cable, the dust blocking plate is driven to pass through the first support plate, and the extrusion column extrudes the dust in the air holes of the dust blocking plate.
[0021] (4) By setting up a cleaning mechanism in the present invention, during the process of pulling the dust blocking plate, the dust blocking plate is stopped at the same horizontal plane as the cleaning mechanism. The servo motor drives the rotating shaft and the rotating disk to rotate, and the centrifugal force causes the first telescopic spring to stretch, thereby driving the sponge block to move outward and cleaning the outer surface of the dust blocking plate. During the movement of the sponge block, it will come into contact with the scraping ring, so that the scraping ring scrapes off the dust on the surface of the sponge block. At the same time, the sponge block will squeeze the blocking block and the third support column, and the second telescopic spring is stretched. After the sponge block resets, the sponge will not squeeze the blocking block, and the second telescopic spring returns to its original shape, so that the impact rod impacts the scraping ring, so that the dust adhered to the scraping ring falls off, thus realizing self-cleaning. Description of the Drawings
[0022] Figure 1 is a schematic structural diagram of the present invention; Figure 2 is a structural sectional view of the present invention; Figure 3 is a schematic structural view of the air treatment mechanism of the present invention; Figure 4 is a schematic structural view of the absorption mechanism of the present invention; Figure 5 is a schematic structural view of the sediment removal mechanism of the present invention; Figure 6 is a schematic structural view of the dust blocking mechanism of the present invention; Figure 7 is a partial structural schematic view of the dust blocking mechanism of the present invention; Figure 8 is a schematic structural view of the cleaning mechanism of the present invention; Figure 9 is a schematic structural view of the scraping mechanism of the present invention; Figure 10 is a partial structural schematic view of the scraping mechanism of the present invention; In the figure: 1, bottom plate; 2, hydrogen-oxygen chamber; 3, switch door; 4, first air pipe; 5, air treatment mechanism; 51, air box; 52, first support column; 53, magnet plate; 54, absorption mechanism; 55, second air pipe; 56, suction device; 57, dust blocking mechanism; 58, collection plate; 541, treatment barrel; 542, telescopic pipe; 543, baffle; 544, telescopic rod; 545, sediment removal mechanism; 5451, second support column; 5452, filter plate; 5453, sector plate; 5454, scraping plate; 5455, sliding block; 546, shoveling plate; 547, magnet block; 5458, inclined column; 571, third air pipe; 572, first support rod; 573, circular plate; 574, cleaning mechanism; 575, first support plate; 576, protruding block; 577, extrusion column; 578, cable; 579, dust blocking plate; 5741, servo motor; 5742, rotating shaft; 5743, rotating disc; 5744, first telescopic spring; 5745, sponge block; 5746, scraping mechanism; 57461, second support rod; 57462, ring; 57463, scraping ring; 57464, second telescopic spring; 57465, second support plate; 57466, impact rod; 57467, third support column; 57468, resisting block. Detailed implementation manners
[0023] The present invention will be further described in detail below in conjunction with the accompanying drawings and specific embodiments. The embodiments of the present invention are given for purposes of illustration and description, and are not exhaustive or limit the present invention to the disclosed form. Many modifications and variations will be obvious to those of ordinary skill in the art. The embodiments are selected and described in order to better illustrate the principles of the present invention and its practical applications, and to enable those of ordinary skill in the art to understand the present invention and thus design various embodiments with various modifications suitable for specific purposes.
[0024] Embodiment 1, using Figures 1-10 A carbon dioxide absorption device for a high-pressure hydrogen-oxygen chamber according to an embodiment of the present invention will be described as follows.
[0025] As Figures 1-10 shown, a carbon dioxide absorption device for a high-pressure hydrogen-oxygen chamber of the present invention includes: A bottom plate 1, which is used to support the carbon dioxide absorption device of the high-pressure hydrogen-oxygen chamber; A hydrogen-oxygen chamber 2, which is used for human cardiopulmonary treatment, and the bottom of the hydrogen-oxygen chamber 2 is fixedly connected to the top of the bottom plate 1; A switch door 3, which is used for personnel to enter the hydrogen-oxygen chamber 2, and the outer surface of the switch door 3 is rotatably connected to the inner wall of the hydrogen-oxygen chamber 2; An air pipe 1 4, which is used to transmit air, and one end of the air pipe 1 4 close to the hydrogen-oxygen chamber 2 is fixedly connected to the outer surface of the hydrogen-oxygen chamber 2; It further includes: An air treatment mechanism 5, which is used to absorb carbon dioxide in the air, and the outer surface of the air treatment mechanism 5 is fixedly connected to the end of the air pipe 1 4 far from the hydrogen-oxygen chamber 2.
[0026] When the carbon dioxide absorption device of the high-pressure hydrogen-oxygen chamber is working, first enter the hydrogen-oxygen chamber 2 by opening the switch door 3, then close the switch door 3 to seal the hydrogen-oxygen chamber 2, and then the air treatment mechanism 5 works to adsorb carbon dioxide in the air. The treated air enters the hydrogen-oxygen chamber through the air pipe 1, thereby maintaining human health.
[0027] The air treatment mechanism 5 includes an air box 51. On the top of the inner wall of the air box 51, support columns 1 52 are symmetrically arranged. The top of the support column 1 52 is fixedly connected to the top of the inner wall of the air box 51. The bottom of the support column 1 52 is fixedly connected to a magnet plate 53. On the bottom end of the inner wall of the air box 51, absorption mechanisms 54 are symmetrically arranged. One end of the absorption mechanism 54 close to the air box 51 is fixedly connected to the outer surface of the air box 51. The outer surface of the absorption mechanism 54 is fixedly connected to an air pipe 2 55. On the outer surface of the air box 51, air suction devices 56 are symmetrically arranged. The outer surface of the air suction device 56 is fixedly connected to a dust resistance mechanism 57. The bottom of the outer surface of the absorption mechanism 54 is fixedly connected to a collection plate 58.
[0028] First, air is absorbed by the air suction device 56. The air passes through the dust blocking mechanism 57 to block dust and impurities, and then enters the absorption mechanism 54 through the third trachea 571; The outer surface of the air tank 51 is fixedly connected to one end of the first trachea 4 away from the hydrogen-oxygen chamber 2, and one end of the second trachea 55 away from the absorption mechanism 54 is fixedly connected to the inner wall of the air tank 51.
[0029] The absorption mechanism 54 includes a processing barrel 541. An expansion tube 542 is fixedly connected to the inner wall of the processing barrel 541. A telescopic rod 544 is slidably connected to the inner wall of the expansion tube 542. A baffle 543 is fixedly connected to the top of the expansion tube 542. A sediment removal mechanism 545 is fixedly connected to the top of the telescopic rod 544.
[0030] After that, a sodium hydroxide solution is placed in the processing barrel 541. After the air is inhaled into the processing barrel 541, a chemical acid-base neutralization reaction occurs between carbon dioxide in the air and sodium hydroxide, producing sodium carbonate and water, thereby absorbing carbon dioxide in the air.
[0031] The expansion tube 542 drives the telescopic rod 544 to move upward, so that the sediment removal mechanism 545 cleans out the precipitated crystals to avoid weakening of the absorption capacity.
[0032] The bottom of the processing barrel 541 is fixedly connected to the inner wall of the air tank 51. The outer surface of the telescopic rod 544 is slidably connected to the inner wall of the baffle 543.
[0033] The sediment removal mechanism 545 includes a second support column 5451. The bottom of the second support column 5451 is fixedly connected to the top of the telescopic rod 544. A filter plate 5452 is fixedly connected to the top of the second support column 5451. A slanting column 5458 is fixedly connected to the center of the top of the filter plate 5452. The shape of the slanting column 5458 is narrow at the bottom and wide at the top. Sector plates 5453 are uniformly arranged on the outer surface of the slanting column 5458. One end of the sector plate 5453 close to the slanting column 5458 is slidably connected to the outer surface of the slanting column 5458. A scraping plate 5454 is fixedly connected to the end of the sector plate 5453 away from the slanting column 5458. A sliding block 5455 is slidably connected to the inner wall of the top of the sector plate 5453. A shoveling plate 546 is fixedly connected to the outer surface of the sliding block 5455. A magnet block 547 is fixedly connected to one end of the top of the sector plate 5453 close to the slanting column 5458.
[0034] The telescopic tube 542 drives the telescopic rod 544 to move upward, thereby driving the sediment removal mechanism 545 to move upward, and causing the scraping plate 5454 to scrape the crystals adsorbed on the inner wall of the treatment barrel 541. When the anti-sediment mechanism moves to the top of the treatment barrel 541, the magnetic plate attracts the magnetic block, thereby driving the sector plate 5453 to slide upward along the inclined column 5458, causing the sector plate 5453 to tilt, so that the crystal blocks scraped off by the previous scraping plate 5454 fall onto the collection plate. At the same time, the gravity drives the sliding block 5455 to slide downward, thereby driving the shoveling plate 546 to shovel the crystals adhering to the sector plate 5453 and making them fall onto the collection plate.
[0035] The specific working process is as follows: During operation, the absorption mechanism 54 works. First, sodium hydroxide solution is placed in the treatment barrel 541. After air is inhaled into the treatment barrel 541, a chemical acid-base neutralization reaction occurs between carbon dioxide in the air and sodium hydroxide, producing sodium carbonate and water, thereby absorbing carbon dioxide in the air. If the treatment barrel 541 is not cleaned for a long time, sodium carbonate will become saturated and crystallize out. The precipitated crystals will adhere and fall on the sector plate 5453. The telescopic tube 542 drives the telescopic rod 544 to move upward to clean the precipitated crystals by the sediment removal mechanism 545, avoiding the weakening of the absorption capacity. The telescopic tube 542 drives the telescopic rod 544 to move upward, thereby driving the sediment removal mechanism 545 to move upward, and causing the scraping plate 5454 to scrape the crystals adsorbed on the inner wall of the treatment barrel 541. When the anti-sediment mechanism moves to the top of the treatment barrel 541, the magnetic plate attracts the magnetic block, thereby driving the sector plate 5453 to slide upward along the inclined column 5458, causing the sector plate 5453 to tilt, so that the crystal blocks scraped off by the previous scraping plate 5454 fall onto the collection plate. At the same time, the gravity drives the sliding block 5455 to slide downward, thereby driving the shoveling plate 546 to shovel the crystals adhering to the sector plate 5453 and making them fall onto the collection plate.
[0036] Example 2, using Figures 1-10 A carbon dioxide absorption device for a high-pressure hydrogen oxygen chamber according to an embodiment of the present invention will be described as follows.
[0037] As Figures 1-10As shown, a carbon dioxide absorption device for a high-pressure hydrogen-oxygen chamber of the present invention, on the basis of Embodiment 1, the dust-blocking mechanism 57 includes an air pipe three 571. The top of the air pipe three 571 is fixedly connected to a support rod one 572. The top of the support rod one 572 is fixedly connected to a circular plate 573. The inner wall of the circular plate 573 is fixedly connected to a cleaning mechanism 574. The top of the circular plate 573 is fixedly connected to a support plate one 575. A cable 578 is slidably connected to the inner wall of the support plate one 575. The outer surface of the circular plate 573 is fixedly connected to a protruding block 576. The top of the protruding block 576 is evenly provided with extrusion columns 577. One end of the cable 578 close to the air pipe three 571 is fixedly connected to a dust-blocking plate 579.
[0038] The air suction device 56 absorbs air. When the air passes through the air pipe three 571, the dust-blocking plate 579 will block dust such as feathers in the air, preventing impurities in the air from reacting with the sodium carbonate solution, thereby reducing the ability to absorb carbon dioxide. After a period of time, by pulling the cable 578, the dust-blocking plate 579 is driven to pass through the support plate one 575, and the extrusion columns 577 will extrude the dust in the air holes of the dust-blocking plate 579.
[0039] The cleaning mechanism 574 includes a servo motor 5741. The top of the servo motor 5741 is fixedly connected to a rotating shaft 5742. The top of the rotating shaft 5742 is fixedly connected to a rotating disk 5743. The inner wall of the rotating disk 5743 is fixedly connected to a telescopic spring one 5744. One end of the telescopic spring one 5744 away from the rotating disk 5743 is fixedly connected to a sponge block 5745. The outer surface of the rotating disk 5743 is fixedly connected to a scraping mechanism 5746.
[0040] When the cleaning mechanism 574 works, during the process of pulling the dust-blocking plate 579, the dust-blocking plate 579 is stopped at the same horizontal plane as the cleaning mechanism 574. The servo motor 5741 drives the rotating shaft 5742 and the rotating disk 5743 to rotate. The centrifugal force causes the telescopic spring one 5744 to stretch, thereby driving the sponge block 5745 to move outwards and cleaning the outer surface of the dust-blocking plate 579.
[0041] The rubbing mechanism 5746 includes a second support rod 57461. One end of the second support rod 57461 away from the rotating disk 5743 is fixedly connected with a ring 57462. The outer surface of the ring 57462 is evenly provided with rubbing rings 57463. The inner wall of the rubbing ring 57463 is fixedly connected with the outer surface of the ring 57462. A second telescopic spring 57464 is fixed on the outer surface of the rubbing ring 57463. One end of the second telescopic spring 57464 away from the rubbing ring 57463 is fixedly connected with a second support plate 57465. An impact rod 57466 is fixedly connected to the outer surface of the second support plate 57465. A third support column 57467 is fixedly connected to one side of the second support plate 57465 close to the second telescopic spring 57464. One end of the third support column 57467 away from the second support plate 57465 is fixedly connected with a resisting block 57468.
[0042] During the movement of the sponge block 5745, it will come into contact with the rubbing ring 57463, so that the rubbing ring 57463 scrapes off the dust on the surface of the sponge block 5745. At the same time, the sponge block 5745 will squeeze the resisting block 57468 and the third support column 57467, and stretch the second telescopic spring 57464. After the sponge block 5745 resets, the sponge will not squeeze the resisting block 57468, and the second telescopic spring 57464 will recover its deformation, so that the impact rod 57466 impacts the rubbing ring 57463, so that the dust adhering to the rubbing ring 57463 falls off, thus realizing self-cleaning.
[0043] The bottom of the third air pipe 571 is fixedly connected to the outer surface of the suction device 56. The outer surface of the servo motor 5741 is fixedly connected to the inner wall of the circular plate 573. One end of the second support rod 57461 close to the rotating disk 5743 is fixedly connected to the outer surface of the rotating disk 5743.
[0044] The specific working process is as follows: During operation, the dust blocking mechanism 57 operates, and the air suction device 56 sucks in air. When the air passes through the air pipe three 571, the dust blocking plate 579 will block dust such as feathers in the air, preventing other chemical reactions from occurring between the impurities in the air and the sodium carbonate solution, which would otherwise reduce the ability to absorb carbon dioxide. After a period of time, by pulling the cable 578, the dust blocking plate 579 is driven to pass through the first support plate 575, and the extrusion column 577 extrudes the dust in the air holes of the dust blocking plate 579. At the same time, the cleaning mechanism 574 operates. During the process of pulling the dust blocking plate 579, the dust blocking plate 579 is stopped at the same horizontal plane as the cleaning mechanism 574. The servo motor 5741 drives the rotation of the rotating shaft 5742 and the rotating disk 5743. The centrifugal force causes the first telescopic spring 5744 to stretch, thereby driving the sponge block 5745 to move outward and cleaning the outer surface of the dust blocking plate 579. During the movement of the sponge block 5745, it will come into contact with the scraping ring 57463, so that the scraping ring 57463 scrapes off the dust on the surface of the sponge block 5745. At the same time, the sponge block 5745 will squeeze the blocking block 57468 and the third support column 57467, causing the second telescopic spring 57464 to stretch. After the sponge block 5745 returns to its original position, the sponge will no longer squeeze the blocking block 57468, and the second telescopic spring 57464 returns to its original shape, causing the impact rod 57466 to impact the scraping ring 57463, so that the dust adhering to the scraping ring 57463 falls off, thus realizing self-cleaning.
[0045] Obviously, the described embodiments are only a part of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art and related fields without creative efforts shall fall within the scope of protection of the present invention. The structures, devices, and operation methods not specifically described and explained in the present invention shall be implemented by conventional means in the art unless otherwise specified and limited.
Claims
1. A carbon dioxide absorption device for a high-pressure hydrogen-oxygen chamber, comprising: A bottom plate (1) for supporting the carbon dioxide absorption device of the high-pressure hydrogen-oxygen chamber; A hydrogen-oxygen chamber (2) for human cardiopulmonary treatment, the bottom of the hydrogen-oxygen chamber (2) being fixedly connected to the top of the bottom plate (1); A switch door (3) for allowing personnel to enter the hydrogen-oxygen chamber (2), the outer surface of the switch door (3) being rotatably connected to the inner wall of the hydrogen-oxygen chamber (2); A first air pipe (4) for transmitting air, one end of the first air pipe (4) close to the hydrogen-oxygen chamber (2) being fixedly connected to the outer surface of the hydrogen-oxygen chamber (2); It is characterized in that it further comprises: An air treatment mechanism (5) for absorbing carbon dioxide in the air, the outer surface of the air treatment mechanism (5) being fixedly connected to the end of the first air pipe (4) away from the hydrogen-oxygen chamber (2); The air treatment mechanism (5) includes an air box (51), on the top of the inner wall of the air box (51), first support columns (52) are symmetrically arranged, the top of the first support columns (52) being fixedly connected to the top of the inner wall of the air box (51), a magnet plate (53) being fixedly connected to the bottom of the first support columns (52), absorption mechanisms (54) being symmetrically arranged at the bottom end of the inner wall of the air box (51), one end of the absorption mechanisms (54) close to the air box (51) being fixedly connected to the outer surface of the air box (51), a second air pipe (55) being fixedly connected to the outer surface of the absorption mechanisms (54), air suction devices (56) being symmetrically arranged on the outer surface of the air box (51), a dust blocking mechanism (57) being fixedly connected to the outer surface of the air suction devices (56), and a collection plate (58) being fixedly connected to the bottom of the outer surface of the absorption mechanisms (54).
2. The carbon dioxide absorption device of a high-pressure hydrogen-oxygen chamber according to claim 1, wherein: The outer surface of the air box (51) is fixedly connected to the end of the first air pipe (4) away from the hydrogen-oxygen chamber (2), and the end of the second air pipe (55) away from the absorption mechanisms (54) is fixedly connected to the inner wall of the air box (51).
3. The carbon dioxide absorption device for a high-pressure hydrogen-oxygen chamber according to claim 1, characterized in that: The absorption mechanism (54) includes a treatment barrel (541), a telescopic pipe (542) being fixedly connected to the inner wall of the treatment barrel (541), a telescopic rod (544) being slidably connected to the inner wall of the telescopic pipe (542), a baffle (543) being fixedly connected to the top of the telescopic pipe (542), and a sediment removal mechanism (545) being fixedly connected to the top of the telescopic rod (544).
4. The carbon dioxide absorption device of a high-pressure hydrogen oxygen chamber according to claim 3, characterized in that: The bottom of the treatment barrel (541) is fixedly connected to the inner wall of the air box (51), and the outer surface of the telescopic rod (544) is slidably connected to the inner wall of the baffle (543).
5. The carbon dioxide absorption device of a high-pressure hydrogen oxygen chamber according to claim 3, characterized in that: The precipitation removal mechanism (545) includes a second support column (5451). The bottom of the second support column (5451) is fixedly connected to the top of the telescopic rod (544). The top of the second support column (5451) is fixedly connected to a filter plate (5452). The center of the top of the filter plate (5452) is fixedly connected to an inclined column (5458). The outer surface of the inclined column (5458) is evenly provided with sector plates (5453). One end of the sector plate (5453) close to the inclined column (5458) is slidably connected to the outer surface of the inclined column (5458). The end of the sector plate (5453) far from the inclined column (5458) is fixedly connected to a scraping plate (5454). A sliding block (5455) is slidably connected to the inner wall of the top of the sector plate (5453). The outer surface of the sliding block (5455) is fixedly connected to a shoveling plate (546). One end of the top of the sector plate (5453) close to the inclined column (5458) is fixedly connected to a magnet block (547).
6. The carbon dioxide absorption device of a high-pressure hydrogen-oxygen chamber according to claim 1, characterized in that: The dust blocking mechanism (57) includes a third air pipe (571). The top of the third air pipe (571) is fixedly connected to a first support rod (572). The top of the first support rod (572) is fixedly connected to a circular plate (573). A cleaning mechanism (574) is fixedly connected to the inner wall of the circular plate (573). The top of the circular plate (573) is fixedly connected to a first support plate (575). A cable (578) is slidably connected to the inner wall of the first support plate (575). A protruding block (576) is fixedly connected to the outer surface of the circular plate (573). Extrusion columns (577) are evenly arranged on the top of the protruding block (576). One end of the cable (578) close to the third air pipe (571) is fixedly connected to a dust blocking plate (579).
7. The carbon dioxide absorption device of a high-pressure hydrogen-oxygen chamber according to claim 6, characterized in that: The cleaning mechanism (574) includes a servo motor (5741). The top of the servo motor (5741) is fixedly connected to a rotating shaft (5742). The top of the rotating shaft (5742) is fixedly connected to a rotating disk (5743). A first telescopic spring (5744) is fixedly connected to the inner wall of the rotating disk (5743). One end of the first telescopic spring (5744) far from the rotating disk (5743) is fixedly connected to a sponge block (5745). A scraping mechanism (5746) is fixedly connected to the outer surface of the rotating disk (5743).
8. The carbon dioxide absorption device of a high-pressure hydrogen-oxygen chamber according to claim 7, characterized in that: The rubbing mechanism (5746) includes a second support rod (57461). One end of the second support rod (57461) far from the rotating disc (5743) is fixedly connected with a circular ring (57462). The outer surface of the circular ring (57462) is evenly provided with rubbing rings (57463). The inner wall of the rubbing ring (57463) is fixedly connected with the outer surface of the circular ring (57462). The outer surface of the rubbing ring (57463) is fixed with a second telescopic spring (57464). One end of the second telescopic spring (57464) far from the rubbing ring (57463) is fixedly connected with a second support plate (57465). The outer surface of the second support plate (57465) is fixedly connected with an impact rod (57466). One side of the second support plate (57465) close to the second telescopic spring (57464) is fixedly connected with a third support column (57467). One end of the third support column (57467) far from the second support plate (57465) is fixedly connected with a blocking block (57468).
9. The carbon dioxide absorption device of a high-pressure hydrogen-oxygen chamber according to claim 8, characterized in that: The bottom of the third air pipe (571) is fixedly connected with the outer surface of the air suction device (56). The outer surface of the servo motor (5741) is fixedly connected with the inner wall of the circular plate (573). One end of the second support rod (57461) close to the rotating disc (5743) is fixedly connected with the outer surface of the rotating disc (5743).