An activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment
By designing activated carbon purification equipment and heating system in adsorption hydrogen storage tanks, the problem of poor thermal conductivity of hydrogen storage tanks is solved, and the desorption effect and exhaust gas quality of hydrogen are improved.
Patent Information
- Application Number
- CN202310449203.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-04-24
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2043-04-24
AI Technical Summary
The thermal conductivity of existing adsorption hydrogen storage tanks is poor, resulting in some gases being unable to desorption during the hydrogen deflation process, which reduces the storage capacity and exhaust gas quality.
An activated carbon adsorption hydrogen storage tank and activated carbon exhaust equipment were designed, and the activated carbon purification equipment was pumped into the activated carbon purification equipment through the pump body. Combined with a motor-driven bellows and heating equipment, the heat exchange box was used to improve the thermal conductivity of hydrogen, and the exhaust gas quality was improved through sufficient contact with hydrogen.
It improves the thermal conductivity inside the hydrogen storage tank, enhances the desorption effect of hydrogen, improves the exhaust quality during the degassing process, and prevents hot gas from silting inside the hydrogen storage tank.
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Figure CN116428499B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of hydrogen energy processing, and in particular to an activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment. Background Art
[0002] Since the 1980s, the study of carbon-based materials for hydrogen storage has been one of the storage methods. So far, the research on carbon-based adsorbent hydrogen storage has reached the following consensus: 1) After special design and surface treatment measures, the mass hydrogen storage density of high specific surface area activated carbon at low temperature can reach the hydrogen application economic standard (6.5%, 62kg / m3) established by the US Department of Energy (DOE); 2) Hydrogen is mainly physically adsorbed on carbon nanomaterials, and the specific surface area and micropore volume of the material are the key factors affecting the hydrogen storage performance. From the research on new carbon nanomaterials, their mass hydrogen storage density at room temperature is mostly less than 1%, and the mass hydrogen storage of high specific surface area activated carbon at room temperature is no more than 2% [41. These values are far lower than the DOE indicators. The development of carbon-based adsorbents with higher adsorption capacity is also an urgent problem that needs to be solved.
[0003] During the adsorption and desorption process of hydrogen, due to the poor thermal conductivity of the adsorption bed, the adsorption heat will make the charging and degassing process a non-isothermal process, so that the actual charging volume during the charging process is smaller than that during the isothermal charging process. During the degassing process, some gas will not be able to be desorbed, thereby reducing the storage capacity and even destroying the adsorbent structure. It is therefore extremely necessary to analyze the impact of adsorption heat on the performance of the adsorption bed in the storage tank and optimize the adsorption bed structure.
[0004] Combined with the above conclusions, the existing adsorption hydrogen storage tanks have the following problems:
[0005] 1. The internal thermal conductivity of the adsorption hydrogen storage tank is poor, resulting in the inability to desorb some gases;
[0006] 2. During the degassing process, the adsorption hydrogen storage tank has imperfect contact with the activated carbon, which reduces the exhaust quality and therefore needs to be improved. Summary of the invention
[0007] The purpose of the present invention is to provide an activated carbon adsorption hydrogen storage tank and an activated carbon degassing device, which have good degassing effect.
[0008] The above technical objectives of the present invention are achieved through the following technical solutions: an activated carbon adsorption hydrogen storage tank and an activated carbon degassing device, comprising a hydrogen storage tank, a purification box is fixedly connected to the interior of the hydrogen storage tank, a pump body is fixedly installed on the top of the purification box, a pipe one is fixedly connected to the interior of the pump body, a mounting assembly is fixedly connected to the interior of the purification box, an activated carbon purification device is movably installed inside the mounting assembly, activated carbon is arranged inside the activated carbon purification device, the pipe one extends to the interior of the activated carbon purification device, one end of the activated carbon purification device is fixedly connected to a pipe two, a motor is fixedly installed on the top of the hydrogen storage tank, a bellows is arranged on the outside of the motor, a fan blade is rotatably connected to the interior of the bellows, the fan blade is fixedly connected to the output end of the motor, a heating box is fixedly connected to one side of the bellows, a heating device is arranged inside the heating box, one end of the heating device is fixedly connected to a pipe three, a heat exchange box is arranged outside the pipe two, the pipe three extends to the interior of the heat exchange box, an exhaust hopper is fixedly connected to the bottom of the heat exchange box, and an exhaust pipe is fixedly connected to the bottom of the exhaust hopper.
[0009] By adopting the above technical solution, when releasing the hydrogen inside the hydrogen storage tank, the staff starts the pump body so that the pump body draws the gas inside the hydrogen storage tank into the inside of the activated carbon purification device through pipeline one, and the activated carbon purification device is fixed inside the purification box through the installation component, and the two installation components are symmetrically arranged on the left and right, so that the activated carbon purification device is parallel inside the purification box, and then the staff starts the motor so that the motor drives the fan blades to generate wind, and the wind circulates inside the wind box, and the wind is introduced into the interior of the heating device, so as to heat the gas inside the heating device, and the pipeline three connected to the heating device is connected to the active carbon purification device. Pipeline 2 connected to the activated carbon purification equipment is covered by a heat exchange box, so that the hot gas enters the interior of the heat exchange box for circulation, thereby heating the hydrogen inside pipeline 2, so that when the device releases hydrogen, the thermal conductivity inside the hydrogen storage tank is increased, and the gas desorption effect is increased. Hydrogen enters the interior of the activated carbon purification equipment through pipeline 1, so that the hydrogen storage tank is in full contact with the activated carbon inside the activated carbon purification equipment during the deflation process, thereby improving the exhaust quality. After the hot gas completes the circulation inside the heat exchange box, it is discharged to the outside of the hydrogen storage tank through the exhaust hopper and the exhaust pipe, preventing the hot gas from accumulating inside the hydrogen storage tank.
[0010] The present invention is further configured as follows: the outsides of the pipes 1, 2 and 3 are overlapped with U-shaped rings, the bottoms of the U-shaped rings are fixedly connected with mounting plates, and the internal threads of the mounting plates are connected with mounting rods.
[0011] By adopting the above technical solution, Pipeline 1, Pipeline 2 and Pipeline 3 are all extended to the interior of the hydrogen storage tank, and Pipeline 1, Pipeline 2 and Pipeline 3 are fixed to the inner wall of the hydrogen storage tank in a hanging form through a U-shaped ring, and the mounting plate is in contact with the inner wall of the hydrogen storage tank, and is extended to the mounting plate and the inner wall of the hydrogen storage tank through the mounting rod, thereby being able to fix Pipeline 1, Pipeline 2 and Pipeline 3.
[0012] The present invention is further configured as follows: a spring is fixedly connected to the inner wall of the U-shaped ring, and a clamping plate is fixedly connected to one end of the spring.
[0013] By adopting the above technical solution, during the suspension process, Pipeline 1, Pipeline 2 and Pipeline 3 are in contact with Pipeline 1, Pipeline 2 and Pipeline 3 through the clamping plate, and the spring is compressed, thereby being able to buffer the pressure caused by Pipeline 1, Pipeline 2 and Pipeline 3.
[0014] The present invention is further configured as follows: the number of the clamping plates is five, and the five clamping plates are distributed in an arc-shaped array, and the inner walls of the five clamping plates are all fixedly connected with a cotton layer.
[0015] By adopting the above technical solution, the cotton layer protects Pipeline 1, Pipeline 2 and Pipeline 3 to prevent Pipeline 1, Pipeline 2 and Pipeline 3 from deformation.
[0016] The present invention is further configured as follows: a base is provided at the bottom of the hydrogen storage tank, and the number of the bases is two.
[0017] By adopting the above technical solution, the bases are respectively arranged on both sides of the outside of the hydrogen storage tank, so as to support the left and right sides of the hydrogen storage tank. The hydrogen storage tank is cylindrical, and the support of the base can make the hydrogen storage tank stable.
[0018] The present invention is further configured as follows: a groove is provided at the bottom of each of the two bases, a roller plate is fixedly connected inside the groove, a bearing is fixedly installed inside the roller plate, and a roller is rotatably connected inside the bearing.
[0019] By adopting the above technical solution, the roller plate extends to the inside of the base through the groove, and the roller extends to the outside of the roller plate, so that the roller can contact the ground. The roller is rotatably connected to the inside of the roller plate through the bearing, pushing the base, so that the roller and the ground generate friction, thereby driving the hydrogen storage tank to move.
[0020] The present invention is further configured as follows: the number of the rollers is several, and the several rollers are divided into two groups, and the intervals between the rollers in each group are equal.
[0021] By adopting the above technical solution, the two rollers are respectively arranged inside the two roller plates, the hydrogen storage tank has a large volume, and when the hydrogen storage tank is in a stationary state, the rollers will not be displaced.
[0022] The present invention is further configured as follows: a lifting ear is fixedly connected to the outer side of the base, a chain is hung inside the lifting ear, and a hook is fixedly connected to one end of the chain.
[0023] By adopting the above technical solution, the hook is tied to the towing equipment, and the towing equipment is used to pull the hook and the chain, thereby driving the base and the hydrogen storage tank to move, which is extremely flexible.
[0024] The present invention is further configured as follows: a protective cover is fixedly connected to one end of the hydrogen storage tank, a flange is fixedly installed inside the protective cover, and a pipe four is movably installed inside the flange.
[0025] By adopting the above technical solution, one end of pipeline two is fixed inside the flange, so that the hydrogen inside pipeline two is discharged to the outside of the hydrogen storage tank through pipeline four.
[0026] The present invention is further configured as follows: a gap is provided between the flange and the pipe 4, and a sealing layer is filled inside the gap.
[0027] By adopting the above technical solution, the flange and the pipeline 4 are sealed by the sealing layer, thereby preventing hydrogen leakage.
[0028] The beneficial effects of the present invention are:
[0029] 1. The present invention, through the coordination arrangement among the hydrogen storage tank, the purification box, the pump body, the pipeline 1, the installation assembly, the activated carbon purification equipment, the pipeline 2, the motor, the bellows, the fan blades, the heating equipment, the pipeline 3, the heat exchange box, the exhaust hopper and the exhaust pipe, when the hydrogen inside the hydrogen storage tank is released, the staff starts the pump body so that the pump body draws the gas inside the hydrogen storage tank into the inside of the activated carbon purification equipment through the pipeline 1, and the activated carbon purification equipment is fixed inside the purification box through the installation assembly, and the two installation assemblies are arranged symmetrically, so that the activated carbon purification equipment is parallel inside the purification box, and then the staff starts the motor so that the motor drives the fan blades to generate wind, and the wind circulates inside the bellows and introduces the wind into the inside of the heating equipment, In this way, the gas inside the heating device can be heated, and the pipe three connected to the heating device and the pipe two connected to the activated carbon purification device are covered by the heat exchange box, so that the hot gas enters the interior of the heat exchange box for circulation, thereby achieving the effect of heating the hydrogen inside the pipe two, and thus when the device releases hydrogen, the thermal conductivity inside the hydrogen storage tank is increased, and the gas desorption effect is increased. The hydrogen enters the interior of the activated carbon purification device through the pipe one, so that the hydrogen storage tank is in full contact with the activated carbon inside the activated carbon purification device during the release process, thereby improving the exhaust quality. After the hot gas completes the circulation inside the heat exchange box, it is discharged to the outside of the hydrogen storage tank through the exhaust hopper and the exhaust pipe, so as to prevent the hot gas from accumulating inside the hydrogen storage tank.
[0030] 2. In the present invention, through the coordination of the U-shaped ring, the mounting plate, the mounting rod, the spring and the clamping plate, the pipeline one, the pipeline two and the pipeline three all extend to the interior of the hydrogen storage tank, and the pipeline one, the pipeline two and the pipeline three are fixed to the inner wall of the hydrogen storage tank in a suspended form through the U-shaped ring, the mounting plate contacts the inner wall of the hydrogen storage tank, and the mounting rod extends to the mounting plate and the inner wall of the hydrogen storage tank, thereby fixing the pipeline one, the pipeline two and the pipeline three, and during the hanging process, the pipeline one, the pipeline two and the pipeline three contact the pipeline one, the pipeline two and the pipeline three through the clamping plate, and the spring is compressed, thereby buffering the pressure caused by the pipeline one, the pipeline two and the pipeline three.
[0031] 3. The present invention, through the coordination arrangement between the base, roller plate, bearing, roller, lifting ear, chain and hook, the base is respectively arranged on both sides of the outside of the hydrogen storage tank, so as to support the left and right sides of the hydrogen storage tank. The hydrogen storage tank is cylindrical, and the hydrogen storage tank can be made stable by the support of the base. The roller plate extends to the inside of the base through the groove, and the roller extends to the outside of the roller plate, so that the roller can contact the ground. The roller is rotatably connected to the inside of the roller plate through the bearing, pushing the base, so that the roller and the ground generate friction, and then drive the hydrogen storage tank to move. The hook is tied to the towing device, and the towing device pulls the hook and the chain, so as to drive the base and the hydrogen storage tank to move. It is extremely flexible. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0033] Figure 1 It is a schematic diagram of the explosion structure of the present invention;
[0034] Figure 2 This is a schematic diagram of the internal structure of the hydrogen storage tank of the present invention;
[0035] Figure 3 For the present invention Figure 2 The enlarged structural diagram at A in the middle;
[0036] Figure 4 This is a schematic diagram of the internal structure of the U-shaped ring of the present invention;
[0037] Figure 5 This is a schematic diagram of the bottom structure of the base of the present invention;
[0038] Figure 6 It is a schematic diagram of the hook structure of the present invention.
[0039] In the figure, 1. hydrogen storage tank; 2. purification box; 3. pump body; 4. pipeline one; 5. installation assembly; 6. activated carbon purification equipment; 7. pipeline two; 8. motor; 9. bellows; 10. fan blades; 11. heating equipment; 12. pipeline three; 13. heat exchange box; 14. exhaust hopper; 15. exhaust pipe; 16. U-shaped ring; 17. mounting plate; 18. mounting rod; 19. spring; 20. clamping plate; 21. base; 22. roller plate; 23. bearing; 24. roller; 25. lifting ear; 26. chain; 27. hook; 28. protective cover; 29. flange; 30. pipeline four; 31. heating box. DETAILED DESCRIPTION
[0040] The technical solution of the present invention will be clearly and completely described below in conjunction with specific embodiments. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0041] Reference Figure 1-6An activated carbon adsorption hydrogen storage tank and an activated carbon degassing device, comprising a hydrogen storage tank 1, a purification box 2 is fixedly connected inside the hydrogen storage tank 1, a pump body 3 is fixedly installed on the top of the purification box 2, a pipe 4 is fixedly connected inside the pump body 3, a mounting assembly 5 is fixedly connected inside the purification box 2, an activated carbon purification device 6 is movably installed inside the mounting assembly 5, activated carbon is arranged inside the activated carbon purification device 6, the pipe 4 extends to the inside of the activated carbon purification device 6, one end of the activated carbon purification device 6 is fixedly connected to the pipe 2 7, a motor 8 is fixedly installed on the top of the hydrogen storage tank 1, and a bellows is arranged on the outside of the motor 8 9, the inside of the wind box 9 is rotatably connected with a fan blade 10, and the fan blade 10 is fixedly connected to the output end of the motor 8. A heating box 31 is fixedly connected to one side of the wind box 9, and a heating device 11 is arranged inside the heating box 31. One end of the heating device 11 is fixedly connected to a pipe 3 12. A heat exchange box 13 is arranged outside the pipe 2 7, and the pipe 3 12 extends to the inside of the heat exchange box 13. An exhaust hopper 14 is fixedly connected to the bottom of the heat exchange box 13, and an exhaust pipe 15 is fixedly connected to the bottom of the exhaust hopper 14. When the hydrogen inside the hydrogen storage tank 1 is released, the staff starts the pump body 3 so that the pump body 3 discharges the hydrogen stored in the hydrogen storage tank 1 through the pipe 1 4. The gas inside the tank 1 is drawn into the inside of the activated carbon purification device 6, and the activated carbon purification device 6 is fixed inside the purification box 2 through the installation component 5. The two installation components 5 are arranged symmetrically, so that the activated carbon purification device 6 is parallel inside the purification box 2. Then the staff starts the motor 8, so that the motor 8 drives the fan blades 10 to generate wind, and the wind circulates inside the wind box 9, and the wind is introduced into the inside of the heating device 11, so that the gas inside the heating device 11 can be heated, and the pipeline 3 12 connected to the heating device 11 and the pipeline 2 7 connected to the activated carbon purification device 6 are connected through the heat exchange box 13. Covering, so that the hot gas enters the interior of the heat exchange box 13 for circulation, achieving the effect of heating the hydrogen inside the pipe 2 7, so that when the device releases hydrogen, the thermal conductivity inside the hydrogen storage tank 1 is increased, and the gas desorption effect is increased. The hydrogen enters the interior of the activated carbon purification equipment 6 through the pipe 1 4, so that the hydrogen storage tank 1 is in full contact with the activated carbon inside the activated carbon purification equipment 6 during the deflation process, thereby improving the exhaust quality. After the hot gas completes the circulation inside the heat exchange box 13, it is discharged to the outside of the hydrogen storage tank 1 through the exhaust hopper 14 and the exhaust pipe 15 to prevent the hot gas from accumulating inside the hydrogen storage tank 1.
[0042] The outside of pipeline 14, pipeline 27 and pipeline 3 12 are overlapped with U-shaped rings 16, the bottom of the U-shaped ring 16 is fixedly connected with a mounting plate 17, the internal thread of the mounting plate 17 is connected with a mounting rod 18, pipeline 14, pipeline 27 and pipeline 3 12 are extended to the inside of the hydrogen storage tank 1, and pipeline 14, pipeline 27 and pipeline 3 12 are fixed to the inner wall of the hydrogen storage tank 1 in a hanging form through the U-shaped ring 16, the mounting plate 17 is in contact with the inner wall of the hydrogen storage tank 1, and the mounting rod 18 extends to the mounting plate 17 and the inner wall of the hydrogen storage tank 1, so that pipeline 14, pipeline 27 and pipeline 3 12 can be fixed, and the inner wall of the U-shaped ring 16 A spring 19 is fixedly connected, and one end of the spring 19 is fixedly connected to a clamping plate 20. During the suspension process, pipe 1 4, pipe 2 7 and pipe 3 12 contact pipe 1 4, pipe 2 7 and pipe 3 12 through the clamping plate 20, and the spring 19 is compressed, thereby being able to buffer the pressure caused by pipe 1 4, pipe 2 7 and pipe 3 12. There are five clamping plates 20, and the five clamping plates 20 are distributed in an arc-shaped array. The inner walls of the five clamping plates 20 are fixedly connected with a cotton layer, which protects pipe 1 4, pipe 2 7 and pipe 3 12 to prevent pipe 1 4, pipe 2 7 and pipe 3 12 from deformation.
[0043] A base 21 is provided at the bottom of the hydrogen storage tank 1. There are two bases 21. The bases 21 are respectively provided on both sides of the outside of the hydrogen storage tank 1, so as to support the left and right sides of the hydrogen storage tank 1. The hydrogen storage tank 1 is cylindrical. The support of the base 21 can make the hydrogen storage tank 1 stable. A groove is provided at the bottom of the two bases 21. A roller plate 22 is fixedly connected to the inside of the groove. A bearing 23 is fixedly installed inside the roller plate 22. A roller 24 is rotatably connected to the inside of the bearing 23. The roller plate 22 extends to the inside of the base 21 through the groove, and the roller 24 extends to the outside of the roller plate 22, so that the roller 24 can contact the ground. The roller 24 is rotatably connected to the inside of the roller plate 22 through the bearing 23. The base 21 is pushed, so that the roller 24 generates friction with the ground, thereby driving the hydrogen storage tank 1 to move. The number of rollers 24 is several, and the several rollers 24 are divided into two groups. The distance between each group of rollers 24 is equal. The two rollers 24 are respectively arranged inside the two roller plates 22. The hydrogen storage tank 1 is large in size. When the hydrogen storage tank 1 is in a stationary state, the roller 24 will not move. The outer side of the base 21 is fixedly connected with a lifting ear 25, and the inside of the lifting ear 25 is fastened with a chain 26. One end of the chain 26 is fixedly connected with a hook 27, and the hook 27 is fastened to the towing equipment. The towing equipment pulls the hook 27 and the chain 26, thereby driving the base 21 and the hydrogen storage tank 1 to move, which is extremely flexible.
[0044] A protective cover 28 is fixedly connected to one end of the hydrogen storage tank 1, a flange 29 is fixedly installed inside the protective cover 28, a pipe four 30 is movably installed inside the flange 29, one end of the pipe two is fixed inside the flange 29, so that the hydrogen inside the pipe two 7 is discharged to the outside of the hydrogen storage tank 1 through the pipe four 30, a gap is set between the flange 29 and the pipe four 30, the inside of the gap is filled with a sealing layer, and the flange 29 and the pipe four 30 are sealed by the sealing layer to prevent hydrogen leakage.
[0045] In the present invention, when the hydrogen in the hydrogen storage tank 1 is released, the staff starts the pump body 3 so that the pump body 3 draws the gas in the hydrogen storage tank 1 into the activated carbon purification device 6 through the pipe 1 4, and the activated carbon purification device 6 is fixed to the inside of the purification box 2 through the mounting assembly 5. The two mounting assemblies 5 are symmetrically arranged so that the activated carbon purification device 6 is parallel to the inside of the purification box 2. Then the staff starts the motor 8 so that the motor 8 drives the fan blades 10 to generate wind. The wind circulates inside the wind box 9 and introduces the wind into the heating device 11, so that the gas inside the heating device 11 can be heated. The pipe 3 12 connected to the heating device 11 is connected to the activated carbon purification device 11. The pipe 27 connected to the equipment 6 is covered by the heat exchange box 13, so that the hot gas enters the heat exchange box 13 for circulation, so as to achieve the effect of heating the hydrogen inside the pipe 27, so that when the device releases the hydrogen, the thermal conductivity inside the hydrogen storage tank 1 is increased, and the gas desorption effect is increased. The hydrogen enters the activated carbon purification device 6 through the pipe 14, so that the hydrogen storage tank 1 is fully in contact with the activated carbon inside the activated carbon purification device 6 during the release process, thereby improving the exhaust quality. After the hot gas completes the cycle inside the heat exchange box 13, it is discharged to the outside of the hydrogen storage tank 1 through the exhaust hopper 14 and the exhaust pipe 15, so as to prevent the hot gas from accumulating inside the hydrogen storage tank 1. Pipe 14 and pipe 2 7 and pipeline three 12 all extend to the interior of the hydrogen storage tank 1, and pipeline one 4, pipeline two 7 and pipeline three 12 are fixed to the inner wall of the hydrogen storage tank 1 in a suspended form through the U-shaped ring 16, and the mounting plate 17 contacts the inner wall of the hydrogen storage tank 1, and the mounting rod 18 extends to the mounting plate 17 and the inner wall of the hydrogen storage tank 1, thereby fixing pipeline one 4, pipeline two 7 and pipeline three 12. During the suspension process, pipeline one 4, pipeline two 7 and pipeline three 12 contact pipeline one 4, pipeline two 7 and pipeline three 12 through the clamping plate 20, and the spring 19 is compressed, thereby buffering the pressure caused by pipeline one 4, pipeline two 7 and pipeline three 12. The base 21 is respectively arranged on the hydrogen storage tank 1 The two sides of the outside can support the left and right sides of the hydrogen storage tank 1. The hydrogen storage tank 1 is cylindrical, and the support of the base 21 can make the hydrogen storage tank 1 stable. The roller plate 22 extends to the inside of the base 21 through the groove, and the roller 24 extends to the outside of the roller plate 22, so that the roller 24 can contact the ground. The roller 24 is rotatably connected to the inside of the roller plate 22 through the bearing 23, pushing the base 21, so that the roller 24 and the ground generate friction, thereby driving the hydrogen storage tank 1 to move, and the hook 27 is tied to the towing equipment. The hook 27 and the chain 26 are pulled by the towing equipment, thereby driving the base 21 and the hydrogen storage tank 1 to move, which is extremely flexible.
[0046] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An activated carbon adsorption hydrogen storage tank and an activated carbon degassing device, comprising a hydrogen storage tank (1), Features: The interior of the hydrogen storage tank (1) is fixedly connected to a purification box (2), a pump body (3) is fixedly installed on the top of the purification box (2), a pipe (4) is fixedly connected to the interior of the pump body (3), a mounting assembly (5) is fixedly connected to the interior of the purification box (2), an activated carbon purification device (6) is movably installed inside the mounting assembly (5), the interior of the activated carbon purification device (6) is provided with activated carbon, the pipe (4) extends to the interior of the activated carbon purification device (6), one end of the activated carbon purification device (6) is fixedly connected to a pipe (7), a motor (8) is fixedly installed on the top of the hydrogen storage tank (1), and the motor (8) is A bellows (9) is arranged on the outside, and a fan blade (10) is rotatably connected inside the bellows (9), and the fan blade (10) is fixedly connected to the output end of the motor (8). A heating box (31) is fixedly connected to one side of the bellows (9), and a heating device (11) is arranged inside the heating box (31), and one end of the heating device (11) is fixedly connected to a pipe three (12). A heat exchange box (13) is arranged outside the pipe two (7), and the pipe three (12) extends to the inside of the heat exchange box (13). An exhaust hopper (14) is fixedly connected to the bottom of the heat exchange box (13), and an exhaust pipe (15) is fixedly connected to the bottom of the exhaust hopper (14).
2. An activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment according to claim 1, Features: The outsides of the pipe 1 (4), the pipe 2 (7) and the pipe 3 (12) are all overlapped with a U-shaped ring (16), the bottom of the U-shaped ring (16) is fixedly connected with a mounting plate (17), and the inside of the mounting plate (17) is threadedly connected with a mounting rod (18).
3. An activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment according to claim 2, Features: A spring (19) is fixedly connected to the inner wall of the U-shaped ring (16), and a clamping plate (20) is fixedly connected to one end of the spring (19).
4. An activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment according to claim 3, Features: The number of the clamping plates (20) is five, and the five clamping plates (20) are distributed in an arc-shaped array, and the inner walls of the five clamping plates (20) are all fixedly connected with a cotton layer.
5. An activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment according to claim 1, Features: A base (21) is provided at the bottom of the hydrogen storage tank (1), and the number of the bases (21) is two.
6. An activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment according to claim 5, Features: The bottoms of the two bases (21) are each provided with a groove, a roller plate (22) is fixedly connected inside the groove, a bearing (23) is fixedly installed inside the roller plate (22), and a roller (24) is rotatably connected inside the bearing (23).
7. An activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment according to claim 6, Features: The number of the rollers (24) is several, and the several rollers (24) are divided into two groups, and the distances between the rollers (24) in each group are equal.
8. An activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment according to claim 5, Features: The outer side of the base (21) is fixedly connected with a lifting ear (25), the interior of the lifting ear (25) is hung with a chain (26), and one end of the chain (26) is fixedly connected with a hook (27).
9. An activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment according to claim 1, Features: A protective cover (28) is fixedly connected to one end of the hydrogen storage tank (1), a flange (29) is fixedly installed inside the protective cover (28), and a pipe four (30) is movably installed inside the flange (29).
10. An activated carbon adsorption hydrogen storage tank and activated carbon degassing equipment according to claim 9, Features: A gap is provided between the flange (29) and the pipe four (30), and a sealing layer is filled inside the gap.
Citation Information
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