Hydrogen production device based on wind and light electricity storage

By setting up a corrosion-resistant inner liner and shock-absorbing mechanism in the wind and light power storage and hydrogen production device, the corrosion problem caused by the adhesion of water and alkali and impurities is solved, the stable operation and shock-absorbing effect of the device are achieved, and the service life is extended.

CN223118563UActive Publication Date: 2025-07-18WUXI UNIV
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421746060.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-23
Publication Date
2025-07-18
Estimated Expiration
2034-07-23

AI Technical Summary

Technical Problem

When the traditional wind and light power storage and hydrogen production device is used, the internal water alkali and impurities adhere to corrosion, and the device is unstable in vibration and cannot operate continuously.

Method used

The first and second corrosion-resistant inner vessels are arranged in the outer shell of the device, and the inner vessels are doped with corrosion-resistant materials, combined with the shock absorbing mechanism to buffer vibration power, avoid the adhesion of water, alkali and impurities, and ensure the stable operation of the device.

Benefits of technology

Effectively prevent internal wall corrosion, ensure stable operation of the device, reduce vibration impact, and extend the device life.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223118563U_ABST
    Figure CN223118563U_ABST
Patent Text Reader

Abstract

The utility model discloses a hydrogen production device based on wind and light electricity storage, which comprises a device shell, a device cover is arranged outside the device shell, a first mounting ring is arranged on the left side of the outer wall of the device shell, a second mounting ring is arranged on the right side of the outer wall of the device shell, and the outside of the first mounting ring is connected with a first corrosion-resistant inner container. The outer portion of the first installation ring is connected with a first corrosion-resistant inner container, the outer portion of the second installation ring is connected with a second corrosion-resistant inner container, and the first corrosion-resistant inner container and the second corrosion-resistant inner container are located in an inner groove of the device shell. Corrosion-resistant materials are doped in the first corrosion-resistant inner container and the second corrosion-resistant inner container, and after the first corrosion-resistant inner container and the second corrosion-resistant inner container are installed in the device shell, generated sodium hydroxide and impurities are directly attached to the inner wall of the first corrosion-resistant inner container and the inner wall of the second corrosion-resistant inner container. And the later continuous operation of the device shell is ensured.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model relates to the technical field of wind-solar-storage power generation, in particular to a hydrogen production device based on wind-solar-storage power generation. Background Technique

[0002] Wind-solar-storage power generation refers to a new energy solution that combines wind energy, solar power generation, and energy storage systems. This solution aims to balance the intermittency and unpredictability of renewable energy. In this system, the electricity generated by wind and solar power generation devices can be stored when there is an excess of energy for use during peak demand or adverse weather conditions. The advantages of wind-solar-storage power generation include enhancing the stability of the power grid, providing frequency regulation services, stabilizing electricity prices, and optimizing the use of wind energy and solar energy. Such an integrated energy solution meets the goals of sustainable development, helps reduce dependence on fossil fuels, and mitigates the impact on the environment. Hydrogen production is the process of producing hydrogen. Hydrogen energy is a secondary energy source. In the long run, hydrogen production from water is the most promising method as the raw material is inexhaustible, and after hydrogen combustion releases energy, water is generated again without causing environmental pollution. Common hydrogen production methods include: hydrogen production from various fossil fuels, electrolytic water hydrogen production, biomass hydrogen production, hydrogen production from other hydrogen-containing substances, and recovery of hydrogen by-products from various chemical processes. Hydrogen production from various fossil fuels is the most main hydrogen production method, but its reserves are limited, and the hydrogen production process will cause environmental pollution.

[0003] Most of the existing hydrogen production devices based on wind-solar-storage power generation have the following problems when in use:

[0004] When the traditional hydrogen production device based on wind-solar-storage power generation is actually in use, the water scale and impurities generated inside will adhere to the inner wall of the device. As time goes by, the inner wall of the device will corrode, resulting in the inability to continue hydrogen production operation in the later stage; when the traditional hydrogen production device based on wind-solar-storage power generation is actually operating, the device will vibrate, and as the vibration is transmitted to the device itself, there will be an unstable shaking phenomenon, and the damping effect cannot be achieved during operation. Content of the Utility Model

[0005] (I) Technical Problems to be Solved

[0006] In view of the deficiencies of the prior art, the utility model provides a hydrogen production device based on wind-solar-storage power generation. By respectively providing a first corrosion-resistant inner tank and a second corrosion-resistant inner tank inside the device shell, the inside of the first corrosion-resistant inner tank and the second corrosion-resistant inner tank is doped with corrosion-resistant materials. After the first corrosion-resistant inner tank and the second corrosion-resistant inner tank are installed inside the device shell, the generated water scale and impurities will directly adhere to the inner walls of the first corrosion-resistant inner tank and the second corrosion-resistant inner tank, so as to ensure the continuous operation of the device shell in the later stage.

[0007] (II) Technical Solutions

[0008] To achieve the above object, the present utility model is realized through the following technical solutions: A hydrogen production device based on wind-solar-storage power includes a device housing, and a device cover is provided outside the device housing. A first mounting ring is provided on the left side of the outer wall of the device housing, and a second mounting ring is provided on the right side of the outer wall of the device housing. The outside of the first mounting ring is connected to a first corrosion-resistant inner liner, and the outside of the second mounting ring is connected to a second corrosion-resistant inner liner. The first corrosion-resistant inner liner and the second corrosion-resistant inner liner are located inside the device housing. An inner groove is formed inside the first corrosion-resistant inner liner, and a fixing ring is connected to the outside of the second corrosion-resistant inner liner. The fixing ring is connected to the inside of the inner groove by insertion.

[0009] Preferably, the bottom of the device housing is connected to a support base by welding. A shock-absorbing mechanism is provided at the bottom of the support base. A vertical support rod is connected inside the shock-absorbing mechanism, and a spring is wound around the outside of the vertical support rod.

[0010] Preferably, clamping blocks are fixedly connected to the outside of the device housing. The clamping blocks are evenly distributed, and the clamping blocks respectively clamp the outside of the first mounting ring and the second mounting ring.

[0011] Preferably, sealing rings are connected to the outside of the first mounting ring and the second mounting ring. The sealing rings are connected to the outside of the device cover by inlaying.

[0012] Preferably, a fixing slot is formed inside the device cover. Fixing blocks are connected to the inner walls of the first mounting ring and the second mounting ring. The fixing blocks are connected to the inside of the fixing slot by insertion.

[0013] Preferably, a support frame is connected inside the shock-absorbing mechanism. The support frame is located at the bottom of the support base, and a limiting block is connected to the top of the vertical support rod.

[0014] (III) Beneficial effects

[0015] The present utility model provides a hydrogen production device based on wind-solar-storage power. It has the following beneficial effects:

[0016] (1). For this hydrogen production device based on wind-solar-storage power, by respectively providing a first corrosion-resistant inner liner and a second corrosion-resistant inner liner inside the device housing, and doping corrosion-resistant materials inside the first corrosion-resistant inner liner and the second corrosion-resistant inner liner. When the first corrosion-resistant inner liner and the second corrosion-resistant inner liner are installed inside the device housing, the generated water scale and impurities will directly adhere to the inner walls of the first corrosion-resistant inner liner and the second corrosion-resistant inner liner, avoiding the water scale and impurities generated inside from adhering to the inner wall of the device. As time goes by, the inner wall of the device will not show a corrosion phenomenon, so as to ensure the continuous operation of the device housing in the later stage;

[0017] (2) This hydrogen production device based on wind-solar-storage power has a shock absorption mechanism at the bottom of the support base. Inside the shock absorption mechanism, there is a vertical support rod, and a spring is wound around the outside of the vertical support rod. The support base is located at the bottom of the shock absorption mechanism. When the device shell generates vibration force during operation, the spring inside the shock absorption mechanism can buffer the vibration force, thereby achieving the effect of shock absorption on the device shell. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present invention, and therefore should not be regarded as limiting the scope. For those of ordinary skill in the art, without creative efforts, other related drawings can also be obtained based on these drawings.

[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0020] Figure 2 It is a schematic diagram of the structure of the device shell of the present invention;

[0021] Figure 3 It is a schematic diagram of the structure of the first mounting ring of the present invention;

[0022] Figure 4 It is a schematic diagram of the structure of the first corrosion-resistant inner tank of the present invention;

[0023] Figure 5 It is a schematic diagram of the structure of the second corrosion-resistant inner tank of the present invention;

[0024] Figure 6 It is a schematic diagram of the internal structure of the device cover of the present invention;

[0025] Figure 7 It is a schematic diagram of the internal structure of the shock absorption mechanism of the present invention;

[0026] Explanation of the marks in the figure: 1. Device shell; 2. First mounting ring; 3. Second mounting ring; 4. Device cover; 5. Support base; 6. Shock absorption mechanism; 7. Clamp block; 8. First corrosion-resistant inner tank; 9. Sealing ring; 10. Fixed plug; 11. Inner groove; 12. Second corrosion-resistant inner tank; 13. Fixed ring; 14. Fixed slot; 15. Vertical support rod; 16. Spring; 17. Limiting block; 18. Support frame. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0027] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0028] Please refer to Figure 1-7 , an embodiment of the present invention provides a technical solution: a hydrogen production device based on wind-solar-storage power, including a device housing 1, a device cover 4 is provided outside the device housing 1, a first mounting ring 2 is provided on the left side of the outer wall of the device housing 1, and a second mounting ring 3 is provided on the right side of the outer wall of the device housing 1. The outside of the first mounting ring 2 is connected to a first corrosion-resistant inner tank 8, and the outside of the second mounting ring 3 is connected to a second corrosion-resistant inner tank 12. The first corrosion-resistant inner tank 8 and the second corrosion-resistant inner tank 12 are located inside the device housing 1. An inner groove 11 is opened inside the first corrosion-resistant inner tank 8. The outside of the second corrosion-resistant inner tank 12 is connected to a fixing ring 13, and the fixing ring 13 is connected inside the inner groove 11 by insertion;

[0029] After the first corrosion-resistant inner tank 8 and the second corrosion-resistant inner tank 12 are installed inside the device housing 1, the generated water scale and impurities will directly adhere to the inner walls of the first corrosion-resistant inner tank 8 and the second corrosion-resistant inner tank 12, avoiding the generated water scale and impurities inside the device from adhering to the inner wall of the device. As time goes by, the inner wall of the device will be corroded, so as to ensure the continuous operation of the device housing 1 in the later stage.

[0030] The bottom of the device housing 1 is connected to a support base 5 by welding. A shock-absorbing mechanism 6 is provided at the bottom of the support base 5. A vertical support rod 15 is connected inside the shock-absorbing mechanism 6, and a spring 16 is wound around the outside of the vertical support rod 15. The support base 5 is located at the bottom of the shock-absorbing mechanism 6. When the device housing 1 generates a shock force during operation, the spring 16 inside the shock-absorbing mechanism 6 can buffer the shock force, thereby achieving a shock-absorbing effect on the device housing 1.

[0031] The outside of the device housing 1 is fixedly connected with clamping blocks 7. The clamping blocks 7 are evenly distributed. The clamping blocks 7 respectively clamp the outside of the first mounting ring 2 and the second mounting ring 3. After the first mounting ring 2 and the second mounting ring 3 are installed outside the device housing 1, the clamping blocks 7 will clamp and fix the outside of the first mounting ring 2 and the second mounting ring 3, thereby achieving a fixing effect.

[0032] Sealing rings 9 are connected to the exteriors of both the first mounting ring 2 and the second mounting ring 3. The sealing rings 9 are connected to the exterior of the device cover 4 by means of inlay. After the first mounting ring 2 and the second mounting ring 3 are mounted on the outer side of the device housing 1, the sealing rings 9 will fit on the exteriors of the first mounting ring 2 and the second mounting ring 3, thus achieving a sealing effect.

[0033] Fixing slots 14 are provided inside the device cover 4. Fixing blocks 10 are connected to the inner walls of the first mounting ring 2 and the second mounting ring 3. The fixing blocks 10 are connected to the inside of the fixing slots 14 by insertion. When installing the device cover 4, the fixing blocks 10 will be inserted into the inside of the fixing slots 14, facilitating the installation of the device cover 4.

[0034] A support frame 18 is connected inside the shock-absorbing mechanism 6. The support frame 18 is located at the bottom of the support base 5. A limiting block 17 is connected to the top of the vertical support rod 15. When shock-absorbing, the support frame 18 can expand and contract, and the limiting block 17 will block the top of the support frame 18 to achieve the purpose of limiting.

[0035] The working principle of this hydrogen production device based on wind-solar energy storage and electricity: When using this hydrogen production device based on wind-solar energy storage and electricity, first place the device housing 1 at the position where it is needed, and then insert the fixing ring 13 into the inner groove 11. In this way, the first corrosion-resistant inner tank 8 and the second corrosion-resistant inner tank 12 will be installed and fixed inside the device housing 1. The generated water scale and impurities will directly adhere to the inner walls of the first corrosion-resistant inner tank 8 and the second corrosion-resistant inner tank 12, avoiding the water scale and impurities generated inside from adhering to the inner wall of the device. As time goes by, the inner wall of the device will corrode, so as to ensure the continuous operation of the device housing 1 in the later stage. Then the device housing 1 can operate. The wind energy power generation equipment converts wind energy into electrical energy, and during the process of electrolyzing water using electrical energy, water is decomposed into hydrogen and oxygen. And when vibration force is generated during operation, the spring 16 inside the shock-absorbing mechanism 6 can buffer the vibration force, thus achieving a shock-absorbing effect on the device housing 1.

[0036] The components of the present utility model: 1. Device housing; 2. First mounting ring; 3. Second mounting ring; 4. Device cover; 5. Support base; 6. Shock-absorbing mechanism; 7. Clamping block; 8. First corrosion-resistant inner liner; 9. Sealing ring; 10. Fixed plug; 11. Inner groove; 12. Second corrosion-resistant inner liner; 13. Fixed ring; 14. Fixed slot; 15. Vertical support rod; 16. Spring; 17. Limit block; 18. Support frame are all common standard parts or parts known to those skilled in the art. Their structures and principles can all be learned by those skilled in the art through technical manuals or obtained through conventional experimental methods. The problems solved by the present utility model are that when the traditional hydrogen production device for wind-solar-storage power generation is actually used, the water scale and impurities generated inside will adhere to the inner wall of the device. As time goes by, the inner wall of the device will corrode, resulting in the inability to continue hydrogen production operation in the later stage; when the traditional hydrogen production device for wind-solar-storage power generation is actually operating, the device will vibrate, and as the vibration is transmitted to the device itself, there will be a phenomenon of unstable shaking, and the shock-absorbing effect cannot be achieved during operation. Through the mutual combination of the above components, the present utility model is provided with a first corrosion-resistant inner liner and a second corrosion-resistant inner liner inside the device housing respectively. The inside of the first corrosion-resistant inner liner and the second corrosion-resistant inner liner is doped with corrosion-resistant materials. When the first corrosion-resistant inner liner and the second corrosion-resistant inner liner are installed inside the device housing, the generated water scale and impurities will directly adhere to the inner walls of the first corrosion-resistant inner liner and the second corrosion-resistant inner liner, avoiding the water scale and impurities generated inside from adhering to the inner wall of the device. As time goes by, the inner wall of the device will corrode, so as to ensure the continuous operation of the device housing in the later stage; by providing a shock-absorbing mechanism at the bottom of the support base, a vertical support rod is provided inside the shock-absorbing mechanism, and a spring is wound around the outside of the vertical support rod. The support base is located at the bottom of the shock-absorbing mechanism. When the device housing generates a vibration force during operation, the spring inside the shock-absorbing mechanism can buffer the vibration force, thereby achieving a shock-absorbing effect on the device housing.

[0037] The above has shown and described the basic principles, main features and advantages of the present utility model. For those skilled in the art, it is obvious that the present utility model is not limited to the details of the above exemplary embodiments, and can be implemented in other specific forms without departing from the spirit or basic features of the present utility model. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present utility model is defined by the appended claims rather than the above description. Therefore, it is intended to embrace all changes falling within the meaning and scope of the equivalent elements of the claims in the present utility model. Any reference signs in the claims should not be regarded as limiting the claimed rights.

[0038] The terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the embodiments of the present utility model, the meaning of "a plurality" is two or more, unless otherwise specifically defined.

[0039] In the embodiments of the present utility model, unless otherwise clearly specified and defined, terms such as "installed", "connected", "coupled", "fixed", etc. shall be construed in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may be a mechanical connection, an electrical connection, or a communication connection; it may be directly connected, or indirectly connected through an intermediate medium, and may be the internal communication of two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments of the present utility model can be understood according to specific circumstances.

[0040] In addition, it should be understood that although this specification is described in terms of embodiments, not every embodiment contains only one independent technical solution. This narrative manner of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A hydrogen production device based on wind, light, energy storage and electricity, comprising a device housing (1), characterized in that: An equipment cover (4) is provided outside the equipment housing (1). A first mounting ring (2) is provided on the left side of the outer wall of the equipment housing (1), and a second mounting ring (3) is provided on the right side of the outer wall of the equipment housing (1). A first corrosion-resistant inner tank (8) is connected to the outside of the first mounting ring (2), and a second corrosion-resistant inner tank (12) is connected to the outside of the second mounting ring (3). The first corrosion-resistant inner tank (8) and the second corrosion-resistant inner tank (12) are located inside the equipment housing (1). An inner groove (11) is formed inside the first corrosion-resistant inner tank (8). A fixing ring (13) is connected to the outside of the second corrosion-resistant inner tank (12), and the fixing ring (13) is connected to the inside of the inner groove (11) by insertion.

2. The hydrogen production device based on wind-solar-storage power according to claim 1, wherein: The bottom of the equipment housing (1) is connected to a support base (5) by welding. A shock-absorbing mechanism (6) is provided at the bottom of the support base (5). A vertical support rod (15) is connected inside the shock-absorbing mechanism (6), and a spring (16) is wound around the outside of the vertical support rod (15).

3. The hydrogen production device based on wind-solar-storage power according to claim 1, wherein: Clamping blocks (7) are fixedly connected to the outside of the equipment housing (1). The clamping blocks (7) are evenly distributed and respectively clamp the outside of the first mounting ring (2) and the second mounting ring (3).

4. A hydrogen production device based on wind-solar-storage power according to claim 1, characterized in that: Sealing rings (9) are connected to the outside of both the first mounting ring (2) and the second mounting ring (3), and the sealing rings (9) are connected to the outside of the equipment cover (4) by inlaying.

5. A hydrogen production device based on wind-solar-storage power according to claim 1, characterized in that: A fixing slot (14) is formed inside the equipment cover (4). Fixing blocks (10) are connected to the inner walls of the first mounting ring (2) and the second mounting ring (3), and the fixing blocks (10) are connected to the inside of the fixing slot (14) by insertion.

6. The hydrogen production device based on wind-solar-storage power according to claim 2, wherein: A support frame (18) is connected inside the shock-absorbing mechanism (6). The support frame (18) is located at the bottom of the support base (5), and a limiting block (17) is connected to the top of the vertical support rod (15).