Double-layer reaction equipment suitable for hydrogen production agent

By introducing a quantitative discharge structure and stirring components into the hydrogen production reaction equipment, the problem of improper catalyst delivery was solved, achieving precise catalyst delivery and improved reaction rate, thus extending the service life of the equipment.

CN223811024UActive Publication Date: 2026-01-20XUZHOU GUANHUA NEW ENERGY TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520129624.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-20
Publication Date
2026-01-20
Estimated Expiration
2035-01-20

AI Technical Summary

Technical Problem

Existing hydrogen production reactors lack quantitative delivery of catalysts, leading to improper catalyst addition, which affects reaction efficiency and equipment lifespan.

Method used

The system employs a quantitative discharge structure and stirring components to ensure precise quantitative delivery and mixing of the catalyst. The catalyst feed rate is controlled by a servo motor, and the stirring components accelerate the reaction rate.

Benefits of technology

This enables stable and precise delivery of the catalyst, improves the controllability and efficiency of the hydrogen production reaction, extends equipment life, and reduces maintenance costs.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223811024U_ABST
    Figure CN223811024U_ABST
Patent Text Reader

Abstract

The utility model provides double-layer reaction equipment suitable for a hydrogen production agent, which relates to the technical field of hydrogen production equipment, and comprises an outer shell and a quantitative discharge structure, an inner shell is arranged on the inner side of the outer shell, a reaction cavity is arranged in the inner shell, the bottom of the outer shell is fixedly connected with supporting legs, and the supporting legs are arranged in the reaction cavity. A quantitative discharging structure is arranged on one side of the top of the outer shell and one side of the inner shell, a catalyst feeding pipe is arranged on the top of one side of the outer shell and one side of the inner shell, a connecting guide hopper is fixedly connected to the top of the catalyst feeding pipe, a rotating ring groove is formed in the inner side wall of the connecting guide hopper, and a rotating disc is arranged on the inner side wall of the connecting guide hopper; through the arrangement of the quantitative discharge structure, an equal amount of catalyst can be stably and accurately conveyed to the double-layer reaction equipment, it is ensured that the amount of the catalyst each time is kept consistent, the controllability of the hydrogen production reaction process is greatly enhanced, meanwhile, excessive or small amount of the catalyst is completely eradicated, and the production efficiency is improved. The overall economic benefit is improved.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model belongs to hydrogen production equipment technical field, more specifically, especially relate to a double -deck reaction equipment suitable for hydrogen production agent. BACKGROUND

[0002] Hydrogen energy is a kind of energy density, green environmental protection energy, has very extensive application in vehicle-mounted power system, portable computer power supply, emergency power supply, single soldier combat power supply and other equipment.But due to the flammable and explosive characteristics of hydrogen, its transportation has certain difficulty, and further hinder its large-scale application, and the hydrogen production equipment still has some improvements.

[0003] Based on the above, however, the hydrogen production reaction equipment lacks quantitative delivery of catalyst, and further adds too much or too little during hydrogen production, which not only easily causes hydrogen energy to fail to meet production demand, but also easily causes waste of catalyst. UTILITY MODEL CONTENT

[0004] To solve the above technical problems, the disclosed embodiment relates to a double-layer reaction equipment suitable for hydrogen production agent, to solve the problem of lack of quantitative delivery of catalyst in hydrogen production reaction equipment, by setting the quantitative discharge structure, it can stably and accurately deliver equal amount of catalyst to the double-layer reaction equipment, ensure that the amount of catalyst remains consistent every time the hydrogen production reaction starts, keep the reaction rate at a stable and predictable level, greatly enhance the controllability of the hydrogen production reaction process, reduce the reaction abnormality caused by catalyst input fluctuation, and eliminate excessive or small amount of catalyst delivery, improve overall economic benefit;By setting the stirring assembly, the hydrogen production reaction rate is greatly accelerated, the hydrogen production amount per unit time is greatly increased, the hydrogen production cycle is effectively shortened, the overall production efficiency is improved, the corrosion and wear of the inner wall and internal components of the double-layer reaction equipment caused by local overheating and excessive reaction are reduced, the overall service life of the equipment is prolonged, and the maintenance cost is reduced.

[0005] The utility model relates to a double -deck reaction equipment suitable for hydrogen production agent, by the following specific technical means is achieved:

[0006] The first aspect of the present disclosure provides a double-layer reaction equipment suitable for hydrogen production agent, specifically including shell body and quantitative discharge structure;

[0007] The inner side of the outer shell body is provided with an inner shell body, the inside of the inner shell body is provided with a reaction cavity, the bottom of the outer shell body is fixedly connected with supporting legs, one side of the top of the outer shell body and the inner shell body is provided with a quantitative discharge structure, the quantitative discharge structure comprises a catalyst feeding pipe, a rotating disc, a fixed carrier disc, a material guide pipe and a material containing barrel, one side of the top of the outer shell body and the inner shell body is provided with the catalyst feeding pipe, the top of the catalyst feeding pipe is fixedly connected with a connecting chute, a rotating ring groove is formed in the inner side wall of the connecting chute, the inner side wall of the connecting chute is provided with the rotating disc, the outer side of the rotating disc is fixedly connected with a connecting outer shaft, the connecting outer shaft is rotatably installed in the rotating ring groove, a discharging hole is formed in the rotating disc, the top of the rotating disc is fixedly connected with a clamping rotating shaft, the top of the rotating disc is provided with the fixed carrier disc, a clamping shaft groove is formed in the inside of the fixed carrier disc, the clamping rotating shaft is rotatably installed in the clamping shaft groove, a connecting hole is formed in the fixed carrier disc, the connecting hole is fixedly connected with the material guide pipe, the top of the material guide pipe is provided with the material containing barrel, an inner cavity is formed in the inside of the material containing barrel, a material falling hole is formed in the bottom of the inner cavity, a tapered cylinder is fixedly connected in the material containing barrel, a servo motor is fixedly installed in the tapered cylinder, a driving shaft rod is fixedly connected with the driving end of the servo motor, and the driving shaft rod is fixedly connected with the clamping rotating shaft.

[0008] In at least some embodiments, the other side of the top of the outer shell body and the inner shell body is provided with a hydrogen production agent feeding pipe, the top of the hydrogen production agent feeding pipe is provided with a plug, and the top of the outer shell body is provided with a sealing cover.

[0009] In at least some embodiments, the bottom of the catalyst feeding pipe is provided with an exhaust pipe, and the exhaust pipe is provided with an electromagnetic valve.

[0010] In at least some embodiments, the sealing cover is provided with a stirring assembly, the stirring assembly comprises a connecting carrier block, a driving motor and a driven rotating rod, the top of the sealing cover is fixedly connected with the connecting carrier block, one side of the connecting carrier block is fixedly connected with an assembly carrier block, the assembly carrier block is fixedly installed with the driving motor, the driving end of the driving motor is fixedly connected with a driving shaft column, and the outer side of the driving shaft column is fixedly connected with a driving belt wheel.

[0011] In at least some embodiments, the middle of the sealing cover is rotatably installed with the driven rotating rod, the outer side of the driven rotating rod is fixedly connected with a driven belt wheel, and the driven belt wheel is rotatably connected with the driving belt wheel through a transmission belt.

[0012] In at least some embodiments, the outer side of the driven rotating rod is fixedly connected with a connecting outer ring, and the connecting outer ring is fixedly connected with a stirring rod.

[0013] The double-layer reaction equipment suitable for hydrogen production agents has the following beneficial effects:

[0014] 1、Through the setting of quantitative discharge structure, it can stably and accurately deliver equal amount of catalyst to double-layer reaction equipment, ensures that the amount of catalyst is consistent each time, greatly enhances the controllability of hydrogen production reaction process, and eliminates excessive or small amount of catalyst delivery, improves overall economic benefit.

[0015] 2、Through the setting of stirring assembly, greatly accelerates the hydrogen production reaction rate, greatly increases the hydrogen production amount per unit time, effectively shortens the hydrogen production period, improves the overall production efficiency, reduces the corrosion and wear of the inner wall and internal components of double-layer reaction equipment caused by local overheating and excessive reaction, prolongs the overall service life of the equipment, and reduces the maintenance cost. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 It is a structure schematic diagram of the utility model.

[0017] Figure 2 It is a shell cross-section internal structure schematic diagram of the utility model.

[0018] Figure 3 It is a quantitative discharge structure split structure schematic diagram of the utility model.

[0019] Figure 4 It is a catalyst feeding pipe and rotating disc structure schematic diagram in the quantitative discharge structure of the utility model.

[0020] Figure 5 It is a part assembly structure schematic diagram of the quantitative discharge structure of the utility model.

[0021] Figure 6 It is a stirring assembly structure schematic diagram of the utility model.

[0022] In the drawing, the corresponding relationship between the component name and the drawing number is:

[0023] 1, outer shell;

[0024] 101, inner shell; 1011, reaction cavity;

[0025] 102, support leg;

[0026] 103, sealing cover;

[0027] 104, hydrogen production agent feeding pipe; 1041, plug;

[0028] 105, exhaust pipe; 1051, electromagnetic valve;

[0029] 2, quantitative discharge structure;

[0030] 201, catalyst feeding pipe; 2011, connecting chute; 2012, rotating ring groove;

[0031] 202, rotating disc; 2021, connecting outer shaft; 2022, discharging hole; 2023, clamping rotating shaft;

[0032] 203, fixed carrier disc; 2031, clamping shaft slot; 2032, connecting hole;

[0033] 204, material guide pipe;

[0034] 205, material containing barrel; 2051, inner cavity; 2052, material falling hole;

[0035] 206, conical cylinder; 2061, servo motor; 2062, driving shaft rod;

[0036] 3, stirring assembly;

[0037] 301, connecting carrier block; 3011, assembling carrier block;

[0038] 302, driving motor; 3021, driving shaft column; 3022, driving pulley;

[0039] 303, driven rotating lever; 3031, driven pulley;

[0040] 304, transmission belt;

[0041] 305, connecting outer ring; 3051, stirring rod. DETAILED DESCRIPTION

[0042] The embodiments of the present application will be further described in detail below with reference to the drawings and examples. The following examples are used to illustrate the present application, but cannot be used to limit the scope of the present application.

[0043] Example 1: as shown in the accompanying drawings Figure 1 to the accompanying drawings Figure 6 :

[0044] The present application provides a double-layer reaction equipment suitable for hydrogen production agent, comprising an outer shell 1 and a quantitative discharge structure 2.

[0045] The inner side of the outer shell 1 is provided with an inner shell 101, the inside of the inner shell 101 is provided with a reaction cavity 1011, the bottom of the outer shell 1 is fixedly connected with a supporting leg 102, the top side of the outer shell 1 and the inner shell 101 is provided with a quantitative discharge structure 2, the quantitative discharge structure 2 comprises a catalyst feeding pipe 201, a rotating disc 202, a fixed carrier disc 203, a guide pipe 204 and a material containing barrel 205, the top side of the outer shell 1 and the inner shell 101 is provided with the catalyst feeding pipe 201, the top of the catalyst feeding pipe 201 is fixedly connected with a connecting guide chute 2011, the inner side wall of the connecting guide chute 2011 is provided with a rotating ring groove 2012, the inner side wall of the connecting guide chute 2011 is provided with the rotating disc 202, the outer side of the rotating disc 202 is fixedly connected with a connecting outer shaft 2021, the connecting outer shaft 2021 is rotatably installed in the rotating ring groove 2012, and the rotating disc 202 is provided with a discharging hole 2022, the top of the rotating disc 202 is fixedly connected with a clamping rotating shaft 2023, the top of the rotating disc 202 is provided with the fixed carrier disc 203, the inside of the fixed carrier disc 203 is provided with a clamping rotating shaft groove 2031, the clamping rotating shaft 2023 is rotatably installed in the clamping rotating shaft groove 2031, the fixed carrier disc 203 is provided with a connecting hole 2032, the connecting hole 2032 is fixedly connected with the guide pipe 204, the top of the guide pipe 204 is provided with the material containing barrel 205, the inside of the material containing barrel 205 is provided with an inner cavity 2051, the bottom of the inner cavity 2051 is provided with a discharging hole 2052, and the material containing barrel 205 is fixedly connected with a tapered cylinder 206, the tapered cylinder 206 is fixedly installed with a servo motor 2061, the driving end of the servo motor 2061 is fixedly connected with a driving shaft rod 2062, the driving shaft rod 2062 is fixedly connected with the clamping rotating shaft 2023, by setting the rotating angle and the intermittent rotating time of the servo motor 2061 in advance, the servo motor 2061 drives the driving shaft rod 2062 to rotate, the driving shaft rod 2062 drives the clamping rotating shaft 2023 to rotate, the clamping rotating shaft 2023 drives the rotating disc 202 to rotate, so that the discharging hole 2022 on the rotating disc 202 is aligned with the guide pipe 204, and then the material is discharged, so that the catalyst enters the connecting guide chute 2011 through the discharging hole 2022, enters the catalyst feeding pipe 201 through the connecting guide chute 2011, and then enters the reaction cavity 1011, when the servo motor 2061 reaches the set time, the servo motor 2061 rotates, so that the discharging hole 2022 on the rotating disc 202 is dislocated with the guide pipe 204, and then the material cannot be discharged.

[0046] In the embodiment one, wherein Figure 2 and Figure 6As shown, the other side of the top of the outer shell 1 and the inner shell 101 is provided with a hydrogen production agent feeding pipe 104, the top of the hydrogen production agent feeding pipe 104 is provided with a plug 1041, and the top of the outer shell 1 is provided with a sealing cover 103, the bottom of the catalyst feeding pipe 201 is provided with an exhaust pipe 105, the exhaust pipe 105 is provided with an electromagnetic valve 1051, the sealing cover 103 is provided with a stirring assembly 3, the stirring assembly 3 includes a connecting carrier block 301, a driving motor 302 and a driven rotary rod 303, the top of the sealing cover 103 is fixedly connected with the connecting carrier block 301, one side of the connecting carrier block 301 is fixedly connected with an assembly carrier block 3011, the assembly carrier block 3011 is fixedly installed with the driving motor 302, the driving end of the driving motor 302 is fixedly connected with a driving shaft column 3021, the outer side of the driving shaft column 3021 is fixedly connected with a driving belt pulley 3022, the middle of the sealing cover 103 is rotatably installed with the driven rotary rod 303, the outer side of the driven rotary rod 303 is fixedly connected with a driven belt pulley 3031, the driven belt pulley 3031 is rotatably connected with the driving belt pulley 3022 through a transmission belt 304, the outer side of the driven rotary rod 303 is fixedly connected with a connecting outer ring 305, the connecting outer ring 305 is fixedly connected with a stirring rod 3051, the driving motor 302 is started to drive the driving shaft column 3021 to rotate, the driving shaft column 3021 drives the driving belt pulley 3022 to rotate, the driving belt pulley 3022 drives the driven belt pulley 3031 to rotate through the transmission belt 304, the driven belt pulley 3031 drives the driven rotary rod 303 to rotate, and the driven rotary rod 303 drives the stirring rod 3051 to stir and mix the hydrogen production agent and the catalyst through the connecting outer ring 305.

[0047] The specific use and effect of the embodiment are as follows:

[0048] The utility model discloses a hydrogen production catalyst feeding device, which comprises a reaction cavity 1011, a connecting guide hopper 2011, a catalyst feeding pipe 201, a guide pipe 204, a rotating disc 202, a clamping rotation shaft 2023, a servo motor 2061, a drive shaft rod 2062, a drive motor 302, a drive shaft column 3021, a drive belt wheel 3022, a transmission belt 304, a driven belt wheel 3031, a driven rotating rod 303 and a stirring rod 3051, wherein the connecting guide hopper 2011 is arranged on the reaction cavity 1011, the catalyst feeding pipe 201 is arranged on the connecting guide hopper 2011, the guide pipe 204 is arranged on the catalyst feeding pipe 201, the rotating disc 202 is arranged on the catalyst feeding pipe 201, the clamping rotation shaft 2023 is arranged on the rotating disc 202, the servo motor 2061 is arranged on the reaction cavity 1011, the drive shaft rod 2062 is arranged on the servo motor 2061, the drive motor 302 is arranged on the reaction cavity 1011, the drive shaft column 3021 is arranged on the drive motor 302, the drive belt wheel 3022 is arranged on the drive shaft column 3021, the transmission belt 304 is arranged on the drive belt wheel 3022, the driven belt wheel 3031 is arranged on the transmission belt 304, the driven rotating rod 303 is arranged on the driven belt wheel 3031, and the stirring rod 3051 is arranged on the driven rotating rod 303.

Claims

1. A two-layer reaction device suitable for hydrogen production agents, comprising an outer shell (1) and a metering discharge structure (2); The outer shell (1) has an inner shell (101) on its inner side, and a reaction chamber (1011) is provided inside the inner shell (101). A support leg (102) is fixedly connected to the bottom of the outer shell (1). A quantitative discharge structure (2) is provided on one side of the top of the outer shell (1) and the inner shell (101). The outer shell (1) is characterized by: The quantitative discharge structure (2) includes a catalyst feed pipe (201), a rotating disk (202), a fixed carrier disk (203), a guide pipe (204), and a storage tank (205). The outer shell (1) and the inner shell (101) are provided with a catalyst feed pipe (201) on one side. A connecting guide hopper (2011) is fixedly connected to the top of the catalyst feed pipe (201). A rotating ring groove (2012) is opened on the inner side wall of the connecting guide hopper (2011). A rotating disk (202) is provided on the inner side wall of the connecting guide hopper (2011). A connecting outer shaft (2021) is fixedly connected to the outer side of the rotating disk (202). The connecting outer shaft (2021) is rotatably installed in the rotating ring groove (2012). A discharge hole (2022) is opened on the rotating disk (202). A rotating support shaft (2023) is fixedly connected to the top of the rotating disk (202). 02) has a fixed carrier plate (203) at the top, and a rotating shaft groove (2031) is opened inside the fixed carrier plate (203). The rotating shaft (2023) is rotatably installed in the rotating shaft groove (2031). A connecting hole (2032) is opened on the fixed carrier plate (203). A guide tube (204) is fixedly connected in the connecting hole (2032). A material container (205) is provided at the top of the guide tube (204). An inner cavity (2051) is opened inside the material container (205). A material drop hole (2052) is provided at the bottom of the inner cavity (2051). A cone (206) is fixedly connected in the material container (205). A servo motor (2061) is fixedly installed in the cone (206). A drive shaft (2062) is fixedly connected to the drive end of the servo motor (2061). The drive shaft (2062) is fixedly connected to the rotating shaft (2023).

2. The double-layer reaction apparatus for hydrogen production agents as described in claim 1, characterized in that: The outer shell (1) and the inner shell (101) are provided with a hydrogen generator inlet pipe (104) on the other side of the top. The top of the hydrogen generator inlet pipe (104) is provided with a plug (1041), and the top of the outer shell (1) is provided with a sealing cap (103).

3. The double-layer reaction apparatus for hydrogen production agents as described in claim 1, characterized in that: The catalyst feed pipe (201) is provided with an exhaust pipe (105) at the bottom, and a solenoid valve (1051) is installed on the exhaust pipe (105).

4. A two-layer reaction apparatus suitable for hydrogen production agents as described in claim 2, characterized in that: The sealing cover (103) is provided with a stirring assembly (3). The stirring assembly (3) includes a connecting block (301), a drive motor (302) and a driven rotating rod (303). The top of the sealing cover (103) is fixedly connected to the connecting block (301). One side of the connecting block (301) is fixedly connected to the assembly block (3011). The drive motor (302) is fixedly installed on the assembly block (3011). The drive end of the drive motor (302) is fixedly connected to the drive shaft column (3021). The outer side of the drive shaft column (3021) is fixedly connected to the drive pulley (3022).

5. A two-layer reaction apparatus suitable for hydrogen production agents as described in claim 4, characterized in that: A driven rotating rod (303) is rotatably mounted in the middle of the sealing cover (103). A driven pulley (3031) is fixedly connected to the outside of the driven rotating rod (303). The driven pulley (3031) is rotatably connected to the drive pulley (3022) through the transmission belt (304).

6. A two-layer reaction apparatus suitable for hydrogen production agents as described in claim 5, characterized in that: The outer side of the driven rotating rod (303) is fixedly connected to a connecting outer ring (305), and a stirring rod (3051) is fixedly connected between the connecting outer rings (305).