Steel slag carbon sequestration reaction device
By combining the synergistic effect of the heating element, gas supply cylinder, and steam generator within the reactor with the mechanical oscillation design of the baffle and water storage pan, efficient contact between steel slag and CO2 and water vapor is achieved, solving the problem of low carbon fixation efficiency of steel slag and realizing efficient, automated, and safe carbon fixation.
Patent Information
- Application Number
- CN202511292541.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-10
- Publication Date
- 2025-11-07
AI Technical Summary
In existing technologies, the carbon fixation reaction between steel slag and carbon dioxide is inefficient and lacks effective control over temperature, humidity and gas flow rate, resulting in incomplete reaction.
By employing the synergistic effect of the heating element, gas supply cylinder, and steam generator within the reactor, combined with the mechanical oscillation design of the baffle and water storage pan, precise control of temperature, humidity, and gas flow rate is achieved. Furthermore, a closed-loop water circulation system consisting of a water storage tank and a sealed cylinder ensures stable water level and enhances the contact area between steel slag and CO2 and water vapor.
It achieves high efficiency, automation, and safety in the carbon fixation reaction of steel slag, improves the efficiency of carbonation reaction, and utilizes industrial solid waste steel slag to fix CO2, achieving the effect of treating waste with waste and low carbon and environmental protection.
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Figure CN120900573A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of reaction devices, in particular to a steel slag carbon fixation reaction device. BACKGROUND
[0002] With the rapid development of industrialization and the transformation of global energy structure, the emission of carbon dioxide is increasing, leading to global climate change and environmental problems becoming increasingly serious. Therefore, it is particularly important to carry out research on the capture, fixation and utilization of carbon dioxide.
[0003] Steel slag is a waste material produced in the steelmaking process of a steel plant, and its chemical composition is mainly alkali metal, which can have a carbonation reaction with carbon dioxide and has a certain ability to absorb CO2. Through experimental research, the efficiency of the reaction of steel slag with CO2 under the condition of water participation is greatly improved, so water participation is required in the process of steel slag carbon fixation. The steel slag carbon fixation reaction device provided in the present application is a device for reacting steel slag with carbon dioxide and water under controllable temperature and pressure conditions. SUMMARY
[0004] The present application provides a steel slag carbon fixation reaction device, which can realize rapid carbon fixation reaction of steel slag, improve the efficiency of steel slag carbon fixation, and realize waste treatment with waste.
[0005] In order to achieve the above-mentioned purpose, the present application adopts the following technical scheme:
[0006] A steel slag carbon fixation reaction device, comprising a reactor, a heating portion is arranged inside the reactor, a partition plate for placing carbon slag is arranged inside the reactor, a water storage tray is arranged at the bottom of the partition plate, and a pressure relief valve is arranged at the top of the reactor; a gas supply bottle for inputting carbon dioxide gas into the reactor is further included, a first gas inlet and a gas outlet are arranged on the reactor, and the output end of the gas supply bottle is connected with the first gas inlet; a steam generator for inputting steam into the reactor is further included, a second gas inlet is arranged on the reactor, and the output end of the steam generator is connected with the second gas inlet.
[0007] As a preferred embodiment of the present application, a controller is arranged on the reactor, which is used for controlling the opening or closing of the heating portion, the steam generator and the gas supply portion, and setting the working time of the heating portion, the steam generator and the gas supply portion.
[0008] As a preferred embodiment of the present application, a box body is connected with the reactor and penetrates each other inside, a box door is arranged on the box body, and the carbon slag is placed on the partition plate through the box door.
[0009] As one preferred embodiment of the present application, the inside of the box is connected with a first mounting seat and a second mounting seat, the first mounting seat is rotatably connected with a first rotating shaft, the second mounting seat is rotatably connected with a second rotating shaft, the bottom of the partition plate is connected with a first pin seat, the first pin seat is fixedly connected with the first rotating shaft, the outside of the reactor is connected with a driving unit, the output end of the driving unit is connected with the first rotating shaft, the driving unit is used for driving the first rotating shaft to rotate reciprocatingly, and the partition plate is connected with the first rotating shaft through a first limiting piece.
[0010] As one preferred embodiment of the present application, the second mounting seat is located below the first mounting seat, the second mounting seat is rotatably connected with a second rotating shaft, the second rotating shaft is fixedly connected with a second pin seat, the second pin seat is fixedly connected to the bottom of the water storage tray, and a second limiting piece is arranged between the water storage tray and the second rotating shaft, and the limiting piece is used for limiting the movement of the water storage tray within a range of 15 degrees.
[0011] As one preferred embodiment of the present application, the inside wall of the box is provided with a water storage tank, the outside of the box is provided with a water inlet for water injection to the water storage tank, the inside of the box is provided with a first sealing cylinder, the first sealing cylinder is connected with a first push rod, the lower end of the first push rod is inserted into the first sealing cylinder and connected with a first piston, the upper end of the first push rod is connected with a first pressing plate, the first push rod is sleeved with a first spring, and the two ends of the first spring are respectively abutted against the first pressing plate and the first sealing cylinder, the water inlet end of the first sealing cylinder is connected with a first water inlet pipe, the other end of the first water inlet pipe is communicated with the water storage tank, the water outlet end of the first sealing cylinder is connected with a first water outlet pipe, the other end of the first water outlet pipe is connected with the water storage tray, and the water storage tray is used for water replenishment, the side of the water storage tray is provided with a water return box, the top inside of the water return box is provided with a plurality of through holes connected with the water storage tray, when the water level of the water storage tray reaches the position of the plurality of through holes, water flows into the water return box through the through holes, the inside of the box is provided with a second sealing cylinder, the second sealing cylinder is slidably connected with a second piston, the second piston is connected with a second push rod, the upper end of the second push rod is connected with a second pressing plate, the second push rod is sleeved with a second spring, and the two ends of the second spring are respectively abutted against the second pressing plate and the second sealing cylinder, one end of the first pin seat close to the first sealing cylinder and the second sealing cylinder is connected with a pressing wheel, when the first rotating shaft rotates, the pressing wheel abuts against the first pressing plate and the second pressing plate, the water inlet end of the second sealing cylinder is connected with a second water inlet pipe, the other end of the second water inlet pipe is communicated with the water return box, the water outlet end of the second sealing cylinder is connected with a second water outlet pipe, and the other end of the second water outlet pipe is connected with the water storage tank.
[0012] As a preferred embodiment of the present application, the first pressing plate and the second pressing plate are located above the water storage tray, and the water storage tray is rotated around the second rotating shaft when the first pressing plate and the second pressing plate move downward.
[0013] As a preferred embodiment of the present application, the first limiting piece and the second limiting piece each comprise a first baffle fixedly installed on the first rotating shaft and the second rotating shaft, a U-shaped rod installed at the bottom of the partition plate and the water storage tray, two second baffles symmetrically installed on the U-shaped rod and equidistantly distributed on both sides of the first baffle, and the first baffle being in sliding connection with the U-shaped rod, and two third springs each sleeved on the U-shaped rod and abutting against the first baffle and the second baffle at two ends.
[0014] As a preferred embodiment of the present application, the partition plate is provided with a hollow part, and the edge of the partition plate extends upward to form a rim.
[0015] As a preferred embodiment of the present application, the reactor is provided with a top cover.
[0016] Compared with the prior art, the present application provides a steel slag carbon fixation reaction device, which has the following beneficial effects:
[0017] Through the synergistic effect of the heating part in the reactor, the gas supply bottle and the steam generator, the temperature, humidity and gas flow rate are accurately controlled, and the mechanical swing design of the partition plate and the water storage tray effectively increases the contact area of the steel slag with CO2 and water vapor, and improves the carbonation reaction efficiency; the closed water circulation system composed of the water storage tank, the first sealing cylinder and the second sealing cylinder realizes automatic water replenishment and water return of the water storage tray through mechanical linkage, and the water level is stable without external power, so that water vapor is continuously generated; the sealing structure of the box body and the box door facilitates the loading and unloading of the steel slag and ensures the stability of the reaction environment, the pressure relief valve monitors the pressure in real time to ensure the safety of the device, the gauze laid on the partition plate prevents the steel slag from falling and does not affect the gas flow, and the whole realizes the efficiency, automation and safety of the steel slag carbon fixation reaction, uses the industrial solid waste steel slag to fix CO2, and achieves the technical effects of waste treatment and low-carbon environmental protection. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1 A structure diagram of a steel slag carbon fixation reaction device according to the present application Figure 1 ;
[0019] Figure 2 A structure diagram of a steel slag carbon fixation reaction device according to the present application Figure 2 ;
[0020] Figure 3 A structure diagram of a reactor of a steel slag carbon fixation reaction device according to the present application
[0021] Figure 4 The internal structure diagram of the reactor of the steel slag carbon fixation reaction device;
[0022] Figure 5 The steel slag carbon fixation reaction device; Figure 4 The structure diagram of part A of the steel slag carbon fixation reaction device;
[0023] Figure 6 The steel slag carbon fixation reaction device; Figure 4 The structure diagram of part B of the steel slag carbon fixation reaction device;
[0024] Figure 7 The combined structure diagram of the water storage tray and the partition plate of the steel slag carbon fixation reaction device;
[0025] Figure 8 The structure diagram of the partition plate of the steel slag carbon fixation reaction device;
[0026] Figure 9 The steel slag carbon fixation reaction device; Figure 8 The structure diagram of part C of the steel slag carbon fixation reaction device;
[0027] Figure 10 The structure diagram of the water storage tray of the steel slag carbon fixation reaction device;
[0028] In the figure: 100, reactor; 101, box body; 102, box door; 103, steam generator; 104, gas supply bottle; 105, first air inlet; 106, air outlet; 107, second air inlet; 108, pressure relief valve; 109, water injection port; 110, top cover; 200, driving unit; 201, first mounting seat; 202, second mounting seat; 203, first rotating shaft; 204, first pin seat; 2041, pressing wheel; 205, partition plate; 206, hollow part; 207, along the edge; 300, water storage tank; 301, first sealing cylinder; 302, first water inlet pipe; 303, first water outlet pipe; 304, first push rod; 305, first spring; 306, first pressing plate; 307, water storage tray; 3071, second rotating shaft; 3072, second pin seat; 308, backwater box; 309, second sealing cylinder; 310, second water outlet pipe; 311, second water inlet pipe; 312, second push rod; 313, second spring; 314, second pressing plate; 400, heating part; 500, first baffle; 501, U-shaped rod; 502, second baffle; 503, third spring. DETAILED DESCRIPTION
[0029] Clearly, the described embodiments are merely a part of the embodiments of the present application, but not all the embodiments.
[0030] In the description of the present application, it should be understood that the terms "upper", "lower", "front", "back", "left", "right", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are merely for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation of the present application.
[0031] Referring to Figures 1-10 A steel slag carbon sequestration reaction device, comprising a reactor 100, a heating portion 400 is arranged inside the reactor 100, a partition plate 205 for placing carbon slag is arranged inside the reactor 100, a water storage tray 307 is arranged at the bottom of the partition plate 205, and a pressure relief valve 108 is arranged at the top of the reactor 100; further comprising a gas supply bottle 104 for inputting carbon dioxide gas into the reactor 100, a first gas inlet 105 and a gas outlet 106 are arranged on the reactor 100, and the output end of the gas supply bottle 104 is connected with the first gas inlet 105; a steam generator 103 for inputting steam into the reactor 100, a second gas inlet 107 is arranged on the reactor 100, and the output end of the steam generator 103 is connected with the second gas inlet 107.
[0032] With such a scheme, the heating portion 400 in the reactor 100 warms up the reaction environment, the gas supply bottle 104 passes in CO2 through the first gas inlet 105, the steam generator 103 inputs steam through the second gas inlet 107, the water in the water storage tray 307 is vaporized by heat and reacts with CO2 to cause carbonation reaction with the steel slag on the partition plate 205, and the pressure relief valve 108 automatically discharges when the internal pressure exceeds the limit, so that the temperature, humidity and gas flow rate can be controlled and adjusted through the synergistic effect of the heating portion 400, the gas supply bottle 104 and the steam generator 103, and the reaction efficiency of the steel slag and CO2 is improved by combining the vaporization of the water storage tray 307.
[0033] In one embodiment, a controller is arranged on the reactor 100, which is used to control the opening or closing of the heating portion 400, the steam generator 103 and the gas supply portion, and set the working time of the heating portion 400, the steam generator 103 and the gas supply portion.
[0034] With such a scheme, the controller integrates the control modules of the heating part 400, the steam generator 103 and the gas supply part, and can preset the heating temperature, the steam generation time, the CO2 input rate and other parameters, and automatically start and stop each part according to the set program. Since the controller is a relatively common technology in the art and is not the improvement point of the present application, it will not be described in more detail.
[0035] Optionally, the reactor 100 is connected with an internally interconnected box 101, the box 101 is provided with a box door 102, the carbon residue is placed on the partition plate 205 through the box door 102, the box 101 is communicated with the reactor 100, and after the box door 102 is opened, the steel slag can be placed on the partition plate 205 through the box door 102, and the box door 102 is closed to form a sealed reaction space.
[0036] In one embodiment, the inside of the box 101 is connected with a first mounting seat 201 and a second mounting seat 202, the first mounting seat 201 is rotatably connected with a first rotating shaft 203, the second mounting seat 202 is rotatably connected with a second rotating shaft 3071, the bottom of the partition plate 205 is connected with a first pin seat 204, the first pin seat 204 is fixedly connected with the first rotating shaft 203, the outside of the reactor 100 is connected with a driving unit 200, the output end of the driving unit 200 is connected with the first rotating shaft 203, the driving unit 200 is used for driving the first rotating shaft 203 to rotate reciprocatingly, and the first limiting piece is connected between the partition plate 205 and the first rotating shaft 203.
[0037] With such a scheme, the driving unit 200 drives the first rotating shaft 203 to rotate reciprocatingly, drives the partition plate 205 to swing synchronously through the first pin seat 204, the first limiting piece limits the swing angle of the partition plate 205, the steel slag is uniformly shaken on the partition plate 205, the reciprocating swing of the partition plate 205 can increase the contact area of the steel slag with CO2 and water vapor, avoids material accumulation, and improves the gas-solid reaction rate.
[0038] In one embodiment, the second mounting seat 202 is located below the first mounting seat 201, the second mounting seat 202 is rotatably connected with a second rotating shaft 3071, the second rotating shaft 3071 is fixedly connected with a second pin seat 3072, the second pin seat 3072 is fixedly connected to the bottom of the water storage disc 307, the second limiting piece is arranged between the water storage disc 307 and the second rotating shaft 3071, and the limiting piece is used for limiting the movement of the water storage disc 307 within a range of 15 degrees.
[0039] With such a scheme, the water storage tray 307 is fixed with the second pivot shaft 3071 through the second pin seat 3072, and the second limiting piece limits its swing within a 15-degree range. When the partition plate 205 moves, the water storage tray 307 swings synchronously, increasing the surface area of the water body in the tray to be heated uniformly for vaporization. The limited swing of the water storage tray 307 can accelerate the evaporation of water vapor, so that the water vapor contacts the steel slag more uniformly through the partition plate 205.
[0040] In one embodiment, the inner wall of the box 101 is provided with a water storage tank 300, the outside of the box 101 is provided with a water inlet 109 for water injection into the water storage tank 300, the inside of the box 101 is provided with a first sealing cylinder 301, a first push rod 304 is connected to the first sealing cylinder 301, the lower end of the first push rod 304 is inserted into the first sealing cylinder 301 and connected with a first piston, the upper end of the first push rod 304 is connected with a first pressing plate 306, the first push rod 304 is sleeved with a first spring 305, the two ends of the first spring 305 abut against the first pressing plate 306 and the first sealing cylinder 301 respectively, the water inlet end of the first sealing cylinder 301 is connected with a first water inlet pipe 302, the other end of the first water inlet pipe 302 communicates with the water storage tank 300, the water outlet end of the first sealing cylinder 301 is connected with a first water outlet pipe 303, the other end of the first water outlet pipe 303 is connected with the water storage tray 307 for water replenishment of the water storage tray 307, the side of the water storage tray 307 is provided with a water return box 308, the top inside of the water return box 308 is provided with a plurality of through holes connected with the water storage tray 307, when the water level of the water storage tray 307 reaches the position of the plurality of through holes, water flows into the water return box 308 through the through holes, the box 101 is provided with a second sealing cylinder 309, a second piston is sealingly and slidingly connected in the second sealing cylinder 309, a second push rod 312 is connected to the second piston, the upper end of the second push rod 312 is connected with a second pressing plate 314, the second push rod 312 is sleeved with a second spring 313, the two ends of the second spring 313 abut against the second pressing plate 314 and the second sealing cylinder 309 respectively, one end of the first pin seat 204 close to the first sealing cylinder 301 and the second sealing cylinder 309 is connected with a pressing wheel 2041, when the first pivot shaft 203 rotates, the pressing wheel 2041 abuts against the first pressing plate 306 and the second pressing plate 314, the water inlet end of the second sealing cylinder 309 is connected with a second water inlet pipe 311, the other end of the second water inlet pipe 311 communicates with the water return box 308, the water outlet end of the second sealing cylinder 309 is connected with a second water outlet pipe 310, the other end of the second water outlet pipe 310 is connected with the water storage tank 300.
[0041] With such a scheme, when the first rotating shaft 203 rotates, the pressure roller 2041 presses the first pressing plate 306, pushes the first push rod 304 to compress the first spring 305, so that the first piston in the first sealing cylinder 301 extrudes water into the water storage tray 307. When the first rotating shaft 203 rotates in the opposite direction, the first pressing plate 306 resets under the action of the elastic force, and then the first piston extracts the water source in the water storage tank 300. When the water level of the water storage tray 307 exceeds the through hole, the water flows into the water return box 308. When the pressure roller 2041 presses the second pressing plate 314, the second sealing cylinder 309 extracts the water in the water return box 308 back to the water storage tank 300 through the second water outlet pipe 310, forming a water circulation. The automatic water replenishment and water return of the water storage tray 307 are realized through mechanical linkage, without the need for external power, saving energy, while maintaining stable water level, ensuring continuous water vapor generation, and improving reaction continuity.
[0042] In one embodiment, the first pressing plate 306 and the second pressing plate 314 are located above the water storage tray 307. When the first pressing plate 306 and the second pressing plate 314 move downward, the water storage tray 307 is actuated to rotate around the second rotating shaft 3071.
[0043] With such a scheme, when the first pressing plate 306 and the second pressing plate 314 are pressed downward, the water storage tray 307 is actuated to rotate around the second rotating shaft 3071, thereby further promoting water vapor evaporation.
[0044] In one embodiment, the first limiting piece and the second limiting piece each include a first baffle 500 fixedly installed on the first rotating shaft 203 and the second rotating shaft 3071, a U-shaped rod 501 installed at the bottom of the partition plate 205 and the water storage tray 307, two second baffles 502 symmetrically installed on the U-shaped rod 501 and equidistantly distributed on both sides of the first baffle 500, the first baffle 500 being in sliding connection with the U-shaped rod 501, and two third springs 503 each sleeved on the U-shaped rod 501, the two ends of the third spring 503 being respectively abutted against the first baffle 500 and the second baffle 502.
[0045] With such a scheme, the first baffle 500 is fixed on the first rotating shaft 203 and the second rotating shaft 3071, the U-shaped rod 501 is connected with the partition plate 205 or the water storage tray 307, when the partition plate 205 or the water storage tray 307 swings, the first baffle 500 slides on the U-shaped rod 501 and compresses the third spring 503, and the acting force of the third spring 503 and the two second baffles 502 limits the swing angle within 15 degrees.
[0046] In one embodiment, the partition plate 205 is provided with a hollow part 206, and the edge of the partition plate 205 extends upward to form a rim 207. The hollow part 206 of the partition plate 205 allows water vapor to diffuse upward, and the rim 207 blocks the steel slag from falling down, ensuring that the steel slag is evenly spread and fully contacted with the gas.
[0047] Optionally, the top of the reactor 100 is provided with a top cover 110.
[0048] In operation, the box door 102 is first opened, and gauze is laid on the partition plate 205. The steel slag is evenly placed on the gauze, and water is injected into the water storage tank 300 through the water injection port 109. The box door 102 is closed to form a sealed space. Then, the temperature of the heating part 400, the working time of the steam generator 103, and the CO2 input rate of the gas supply bottle 104 are set by the controller. After the start, the heating part 400 is heated, the steam generator 103 inputs steam through the second air inlet 107, the water in the water storage tray 307 is vaporized by heat, the water vapor diffuses upward through the hollow part 206 of the partition plate 205 and penetrates the gauze to contact the steel slag, and the CO2 input from the gas supply bottle 104 diffuses downward from the top. The two have a carbonation reaction with the steel slag on the gauze. At the same time, the driving unit 200 drives the first rotating shaft 203 to rotate reciprocally, so that the partition plate 205 swings and is pressed by the pressure roller 2041 to press the first pressing plate 306 and the second pressing plate 314, and the water storage tray 307 swings and rotates, accelerating the vaporization of water. The first sealing cylinder 301 and the second sealing cylinder 309 cooperate to complete the automatic water replenishment and return of the water storage tray 307, forming a water circulation. The pressure relief valve 108 monitors the pressure in real time during the reaction, and automatically releases pressure when the pressure exceeds the limit. After the set time is reached, all components are turned off, and the box door 102 is opened to take out the steel slag sample on the gauze after the pressure is released to normal pressure, and the carbon sequestration reaction is completed.
[0049] The above description is only a preferred embodiment of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art can make equivalent replacements or changes to the technical solution and the inventive concept of the present application within the technical scope disclosed by the present application, which should be covered by the protection scope of the present application.
Claims
1. A steel slag carbon sequestration reaction device, characterized by: The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including 2. The steel slag carbon sequestration reaction apparatus according to claim 1, characterized by: The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including 3. The steel slag carbon sequestration reaction apparatus according to claim 1, characterized by: The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including 4. The steel slag carbon sequestration reaction apparatus according to claim 3, characterized by: The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon residue, is equipped with the water storage tray (307) at the bottom of partition (205), the reactor (100) top is equipped with pressure -relief valve (108), still including The utility model relates to a carbon residue reaction device, including reactor (100), the reactor (100) inside is equipped with heating part (400), the reactor (100) inside is equipped with the partition (205) for placing carbon 5. The steel slag carbon sequestration reaction apparatus according to claim 4, characterized by: The second mounting seat (202) is located below the first mounting seat (201), a second rotating shaft (3071) is rotatably connected to the second mounting seat (202), a second pin seat (3072) is fixedly connected to the second rotating shaft (3071), the second pin seat (3072) is fixedly connected to the bottom of the water storage disc (307), and a second limiting piece is arranged between the water storage disc (307) and the second rotating shaft (3071), and the second limiting piece is used for limiting the movement of the water storage disc (307) within a range of 15 degrees.
6. The steel slag carbon sequestration reaction apparatus according to claim 5, characterized by: The inner wall of the box (101) is provided with a water storage tank (300), the outside of the box (101) is provided with a water inlet (109) for water filling of the water storage tank (300), the inside of the box (101) is provided with a first sealing cylinder (301), the first sealing cylinder (301) is connected with a first push rod (304), the lower end of the first push rod (304) is inserted into the first sealing cylinder (301) and connected with a first piston, the upper end of the first push rod (304) is connected with a first pressing plate (306), the first push rod (304) is sleeved with a first spring (305), the two ends of the first spring (305) are respectively abutted with the first pressing plate (306) and the first sealing cylinder (301), the water inlet end of the first sealing cylinder (301) is connected with a first water inlet pipe (302), the other end of the first water inlet pipe (302) is communicated with the water storage tank (300), the water outlet end of the first sealing cylinder (301) is connected with a first water outlet pipe (303), the other end of the first water outlet pipe (303) is connected with a water storage disc (307) for water supplement of the water storage disc (307), the side of the water storage disc (307) is provided with a water return box (308), the top inner side of the water return box (308) is provided with a plurality of through holes connected with the water storage disc (307), when the water level of the water storage disc (307) reaches the position of the plurality of through holes, water flows into the water return box (308) through the through holes, the inside of the box (101) is provided with a second sealing cylinder (309), the second sealing cylinder (309) is slidably connected with a second piston, the second piston is connected with a second push rod (312), the upper end of the second push rod (312) is connected with a second pressing plate (314), the second push rod (312) is sleeved with a second spring (313), the two ends of the second spring (313) are respectively abutted with the second pressing plate (314) and the second sealing cylinder (309), one end of the first pin seat (204) close to the first sealing cylinder (301) and the second sealing cylinder (309) is connected with a pressing wheel (2041), when the first rotating shaft (203) rotates, the pressing wheel (2041) abuts against the first pressing plate (306) and the second pressing plate (314), the water inlet end of the second sealing cylinder (309) is connected with a second water inlet pipe (311), the other end of the second water inlet pipe (311) is communicated with the water return box (308), the water outlet end of the second sealing cylinder (309) is connected with a second water outlet pipe (310), the other end of the second water outlet pipe (310) is connected with the water storage tank (300).
7. The steel slag carbon sequestration reaction apparatus according to claim 6, characterized by: The first pressing plate (306) and the second pressing plate (314) are located above the water storage disc (307), when the first pressing plate (306) and the second pressing plate (314) move downwards, the water storage disc (307) is rotated around the second rotating shaft (3071).
8. The steel slag carbon sequestration reaction apparatus of claim 5, wherein: The first limiting piece and the second limiting piece both comprise A first baffle (500) is fixedly installed on the first rotating shaft (203) and the second rotating shaft (3071); A U-shaped rod (501) is installed at the bottom of the partition plate (205) and the water storage tray (307); Two second baffles (502) are symmetrically installed on the U-shaped rod (501) and are equidistantly distributed on both sides of the first baffle (500), and the first baffle (500) is in sliding connection with the U-shaped rod (501); Two third springs (503) are sleeved on the U-shaped rod (501), and the two ends of the third spring (503) are respectively in abutment with the first baffle (500) and the second baffle (502).
9. The steel slag carbon sequestration reaction apparatus according to claim 1, characterized by: The partition plate (205) is provided with a hollow portion (206), and the edge of the partition plate (205) extends upward to form a rabbet (207). 10.The steel slag carbon sequestration reaction device according to claim 1, characterized in that: The top of the reactor (100) is provided with a top cover (110).
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Device and method for testing CO2 fixed by hot-state steel slag
CN122259825A