Carbon sequestration and solidification storage bin
By using a modularly designed carbon sequestration solidification storage bin with stable supports and movable components, the high cost caused by the complex structure of existing carbon sequestration bins is solved, achieving both flexible movement and static stability.
Patent Information
- Application Number
- CN202520443169.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-13
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-03-13
AI Technical Summary
Existing carbon sequestration and solidification storage silos have complex structures and require electric power, resulting in high manufacturing and maintenance costs.
A modular carbon sequestration and solidification storage chamber was designed, employing a stable support and movable components. It utilizes casters and a swivel shaft for flexible movement and supports blocks and adjusting rods for static stability, simplifying the structure to reduce costs.
This enables flexible movement and stable stationary operation of the device, reducing production and maintenance costs while ensuring the stability and safety of the device.
Smart Images

Figure CN223935496U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of carbon sequestration technology, specifically a carbon sequestration solidification storage bin. Background Technology
[0002] Carbon sequestration (CFS) storage facilities are technological devices used to capture and store carbon dioxide. Carbon sequestration refers to technologies that capture carbon and store it safely, replacing the direct emission of CO2 into the atmosphere. Specifically, the carbon sequestration process involves three steps: capturing carbon dioxide generated from power generation or industrial activities (such as steel or cement manufacturing), transporting it, and then storing it deep underground.
[0003] Carbon sequestration and solidification storage chambers are designed and function to achieve this process. They effectively capture carbon dioxide generated during production and store it safely, thereby reducing greenhouse gas emissions and combating global warming. This technology is of great significance for reducing carbon emissions and protecting the environment.
[0004] For example, utility model application No. 202322139424.3 discloses a carbon sequestration and solidification storage chamber. This solidification storage chamber uses a rotating bidirectional lead screw to drive two first sliders to move in opposite directions. The two first sliders move closer to each other and compress two cross-connecting rods, causing the connecting rods to drive two second sliders to move closer to each other. At the same time, it pushes a limiting plate to move downwards and contact the ground. The friction ball on the limiting plate increases the friction between the limiting plate and the ground, thereby restricting the movement of the storage chamber body by the casters to prevent the storage chamber body from colliding with other objects and causing safety hazards. However, solidification storage chambers similar to those in the above-mentioned document require electric drive for some parts of their structure and have a relatively complex structure, resulting in higher manufacturing costs and increased maintenance costs.
[0005] Therefore, in view of this, we have studied and improved the existing structure and its shortcomings, and proposed a carbon sequestration solidification storage chamber. Utility Model Content
[0006] The purpose of this invention is to provide a carbon sequestration and solidification storage chamber to solve the problems mentioned in the background art.
[0007] To achieve the above objectives, this utility model provides the following technical solution: a carbon sequestration and solidification storage chamber, comprising a storage chamber component and a stabilizing support. A placement frame assembly is installed at the bottom of the storage chamber component. The stabilizing support is symmetrically installed at the lower ends of the front and rear sides of the placement frame assembly. Moving components are symmetrically installed at the lower ends of both sides of the placement frame assembly. Combined frames are symmetrically installed horizontally at the upper ends of both sides of the placement frame assembly. The stabilizing support includes a stabilizing base, a connecting frame, an adjusting rod, and a support block. A connecting frame is installed on one side of the stabilizing base. An adjusting rod is vertically threaded through the middle of the stabilizing base. A support block is movably installed at the bottom of the adjusting rod.
[0008] Furthermore, the storage chamber component includes a storage chamber body, a pressure detector, a delivery valve pipe, and connecting arc plates. The pressure detector is installed on the top of the storage chamber body, and the delivery valve pipes are symmetrically installed on the top of the storage chamber body. In addition, two sets of connecting arc plates are symmetrically arranged on the bottom surface of the storage chamber body.
[0009] Furthermore, the placement frame assembly includes a support truss, a receiving seat, a stabilizing frame, a connecting seat, and a linking seat. The front and rear ends of the support truss are vertically equipped with receiving seats, and the two sets of receiving seats are horizontally connected by a stabilizing frame. The lower ends of the left and right sides of the receiving seats are provided with linking seats, and the front and rear sides of the support truss are symmetrically provided with linking seats.
[0010] Furthermore, the surface structure of the receiving seat near the storage compartment component matches the surface of the storage compartment body with the connecting arc plate, and the stabilizing frame is symmetrically arranged on the left and right ends of one side of the receiving seat. The connecting seat and the connecting frame are arranged in a detachable structure.
[0011] Furthermore, the movable component includes a support pile, a slewing shaft, a connecting frame, and casters. A slewing shaft is installed on one side of the support pile, and a connecting frame is connected to the side of the slewing shaft away from the support pile. Casters are also installed at the bottom of the support pile.
[0012] Furthermore, the rotary shaft and the connecting frame are integrally formed, while the connecting frame and the connecting seat are detachable.
[0013] Furthermore, the combined frame includes a horizontal support, a docking plate, and a fixed corner plate. One end of the horizontal support is connected to the docking plate, and the end of the horizontal support away from the docking plate is connected to the fixed corner plate.
[0014] Furthermore, the left and right sides of the receiving seat are provided with groove structures that match the surface structure of one side of the fixed angle plate, and the horizontal support, the docking plate and the fixed angle plate are connected to each other by welding.
[0015] This utility model provides a carbon sequestration and solidification storage chamber, which has the following beneficial effects:
[0016] 1. This utility model features symmetrically installed stable supports on the front and rear sides of the placement frame assembly, and symmetrically installed front and rear supports on the left and right sides of the placement frame assembly. The stable supports are structurally detachable via connecting frames and connecting seats, while the movable components are also structurally detachable via connecting frames and connecting seats. This modular design facilitates maintenance and replacement. The casters provide flexible movement and transportation. When stationary, the bottom support block can be vertically adjusted by rotating the adjusting rod along the vertical axis, bringing it to the ground and supporting the entire device. The rotating shaft allows the movable component to be flipped and adjusted off the ground to prevent slippage. This ensures the stability of the device when stationary and prevents slippage. Furthermore, the relatively simple structure of the stable supports and movable components effectively controls production costs and reduces maintenance costs.
[0017] 2. This utility model, by symmetrically and horizontally installing combination frames on the left and right sides of the placement rack assembly, utilizes the combination frames to splice the connecting plates at one end of two horizontally arranged stable brackets, and with the use of bolts, achieves structural combination and fixation. This allows multiple placement rack assemblies containing storage compartment components to be connected in series, further ensuring that the device can form a combined structure. The use of stable brackets ensures stability in a static state. In addition, because the bottom of the front and rear ends of the storage compartment body is provided with connecting arc plates, and because the surface structure of the support seat near the storage compartment component matches the surface of the storage compartment body with the connecting arc plates, the entire storage compartment component is embedded and closely connected to the support seat. The use of bolts forms a connection and fixation between the storage compartment component and the placement rack assembly, thereby ensuring the stability of the overall structure. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the main body of a carbon sequestration and solidification storage chamber according to the present invention;
[0019] Figure 2 This is a schematic diagram of the storage chamber component structure of a carbon sequestration and solidification storage chamber according to the present invention;
[0020] Figure 3 This is a three-dimensional structural diagram of a placement rack assembly for a carbon sequestration and solidification storage bin according to the present invention;
[0021] Figure 4 This is a three-dimensional structural diagram of a stable support for a carbon sequestration and solidification storage chamber according to the present invention.
[0022] Figure 5 This is a three-dimensional structural diagram of the movable component of a carbon sequestration and solidification storage bin according to the present invention.
[0023] Figure 6 This is a three-dimensional structural diagram of a combined frame for a carbon sequestration and solidification storage bin according to the present invention.
[0024] In the diagram: 1. Storage compartment components; 101. Storage compartment main body; 102. Air pressure detector; 103. Delivery valve pipe; 104. Connecting arc plate; 2. Placement frame assembly; 201. Support truss; 202. Support seat; 203. Stabilizing frame; 204. Connecting seat; 205. Connecting seat; 3. Stabilizing bracket; 301. Stabilizing seat; 302. Connecting frame; 303. Adjusting rod; 304. Support block; 4. Moving components; 401. Support pile; 402. Rotating shaft; 403. Connecting frame; 404. Casters; 5. Combination frame; 501. Horizontal bracket; 502. Connecting plate; 503. Fixed corner plate. Detailed Implementation
[0025] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.
[0026] like Figures 1 to 6As shown, a carbon sequestration and solidification storage chamber includes a storage chamber component 1 and a stabilizing support 3. A placement rack assembly 2 is installed at the bottom of the storage chamber component 1. The stabilizing support 3 is symmetrically installed on the lower ends of the placement rack assembly 2 on both the front and rear sides. Moving components 4 are symmetrically installed on the lower ends of both sides of the placement rack assembly 2. Combined frames 5 are symmetrically installed horizontally on the upper ends of both sides of the placement rack assembly 2. The stabilizing support 3 includes a stabilizing base 301, a connecting frame 302, an adjusting rod 303, and a support block 304. The connecting frame 302 is installed on one side of the stabilizing base 301, and the adjusting rod 303 is vertically threaded through the middle of the stabilizing base 301. The support block 304 is movably installed at the bottom of the adjusting rod 303. The moving components 4 include a support pile 401, a rotating shaft 402, a connecting frame 403, and a caster wheel 404. A slewing shaft 402 is installed on one side of the support pile 401, and a connecting frame 403 is connected to the side of the slewing shaft 402 away from the support pile 401. A caster wheel 404 is installed at the bottom of the support pile 401. The slewing shaft 402 and the connecting frame 403 are integrated into one structure, and the connecting frame 403 and the connecting seat 204 are detachable. The caster wheel 404 provides flexible movement and transportation assistance for the entire device. When the device needs to be stationary, the adjusting rod 303 can be rotated vertically to adjust the support block 304 connected to its bottom vertically up and down, so that the support block 304 rests against the ground, thereby supporting the entire device on the ground. At the same time, the slewing shaft 402 can be rotated to flip and adjust the entire moving component 4, so that it is lifted off the ground and prevents slippage.
[0027] like Figures 1 to 6As shown, the storage chamber component 1 includes a storage chamber body 101, a pressure detector 102, a delivery valve pipe 103, and connecting arc plates 104. The pressure detector 102 is installed on the top of the storage chamber body 101, and the delivery valve pipes 103 are symmetrically installed on the top of the storage chamber body 101. Two sets of connecting arc plates 104 are symmetrically arranged on each side of the bottom surface of the storage chamber body 101. The placement frame assembly 2 includes a support truss 201, a support seat 202, a stabilizing frame 203, connecting seats 204, and a connecting seat 205. Support seats 202 are vertically installed at both the front and rear ends of the support truss 201, and the stabilizing frame 203 is horizontally connected between the two sets of support seats 202. Connecting seats 204 are provided at the lower ends of both sides of the support seat 202. Connecting seats 205 are symmetrically arranged on both the front and rear sides of the support truss 201. The surface structure of the support seat 202 near the storage chamber component 1 is connected to the storage chamber body 101 by a connecting arc plate. The surfaces of 104 are matched on one side, and the stabilizing frame 203 is symmetrically arranged on the left and right ends of one side of the receiving seat 202. The connecting seat 205 and the connecting frame 302 are set with a detachable structure. The combined frame 5 includes a horizontal support 501, a docking plate 502 and a fixed angle plate 503. One end of the horizontal support 501 is connected to the docking plate 502, and the end of the horizontal support 501 away from the docking plate 502 is connected to the fixed angle plate 503. The left and right sides of the receiving seat 202 are provided with groove structures that match the surface structure of one side of the fixed angle plate 503. The horizontal support 501, the docking plate 502 and the fixed angle plate 503 are connected to each other by welding. The docking plates 502 at one end of the two sets of horizontal supports 501 are spliced together and bolts are used to achieve structural combination and fixation. This allows multiple sets of placement frame groups 2 containing storage compartment components 1 to be connected in series and combined with each other, further ensuring that the device can form a combined structure.
[0028] In summary, as Figures 1 to 6 As shown, when using this carbon sequestration and solidification storage chamber, the main body 101 of the storage chamber is first connected to the supporting truss 201 at the front and rear ends by connecting arc plates 104 at the front and rear ends. If necessary, bolts can be used to connect and fix the connecting arc plates 104 and the supporting truss 202, thereby realizing the structural combination of storage chamber component 1 and placement frame group 2. The conveying valve pipe 103 at the top of the storage chamber main body 101 can be used to capture and store the carbon dioxide generated during the production process by connecting the pipeline. The air pressure detector 102 is used to monitor the internal air pressure status.
[0029] When the entire device needs to be moved, simply ensure that the casters 404 at the bottom of the support pile 401 are in contact with the ground. When the device needs to be kept stationary, simply rotate the adjusting rod 303 in the middle of the stabilizer 301 in the vertical direction and push the support block 304 connected to its bottom to contact the ground, thereby grounding the entire device. Then, use the rotating shaft 402 between the connecting frame 403 and the support pile 401 to rotate and adjust, thereby flipping the casters 404 off the ground, thus maximizing the stability of the device when placed on the ground.
[0030] When multiple combinations of the storage rack group 2 containing the storage compartment component 1 are required, it is only necessary to connect two adjacent sets of storage rack groups 2 by connecting the connecting plate 502 at one end of one set of horizontal support 501 with the connecting plate 502 at one end of another set of horizontal support 501, and then use bolts to connect and fix them. The structural combination of the storage rack group 2 can be quickly completed using the combination frame 5.
[0031] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.
Claims
1. A carbon sequestration and solidification storage chamber, comprising a storage chamber component (1) and a stabilizing support (3), characterized in that: The storage compartment component (1) is equipped with a placement frame assembly (2) at its bottom. The stabilizing bracket (3) is symmetrically installed on the lower ends of the placement frame assembly (2) on both the front and rear sides. The lower ends of the placement frame assembly (2) on both the left and right sides are symmetrically installed with moving components (4). The upper ends of the placement frame assembly (2) on both the left and right sides are symmetrically installed with combined frames (5). The stabilizing bracket (3) includes a stabilizing seat (301), a connecting frame (302), an adjusting rod (303), and a support block (304). The connecting frame (302) is installed on one side of the stabilizing seat (301). The adjusting rod (303) is vertically threaded through the middle of the stabilizing seat (301). The support block (304) is movably installed at the bottom of the adjusting rod (303).
2. The carbon sequestration and solidification storage chamber according to claim 1, characterized in that, The storage chamber component (1) includes a storage chamber body (101), a pressure detector (102), a delivery valve pipe (103), and a connecting arc plate (104). The pressure detector (102) is installed on the top of the storage chamber body (101), and the delivery valve pipe (103) is symmetrically installed on the top of the storage chamber body (101). Furthermore, two sets of connecting arc plates (104) are symmetrically arranged on the bottom surface of the storage chamber body (101).
3. A carbon sequestration and solidification storage chamber according to claim 2, characterized in that, The placement frame assembly (2) includes a support truss (201), a support seat (202), a stabilizer (203), a connecting seat (204), and a connecting seat (205). The support truss (201) has a support seat (202) installed vertically at both ends, and the two sets of support seats (202) are horizontally connected by a stabilizer (203). The support seat (202) has a connecting seat (204) at the lower ends of both the left and right sides, and the support truss (201) has a connecting seat (205) symmetrically arranged on both the front and rear sides.
4. A carbon sequestration and solidification storage bin according to claim 3, characterized in that, The surface structure of the receiving seat (202) near the storage chamber component (1) matches the surface of the storage chamber body (101) with the connecting arc plate (104) provided. The stabilizing frame (203) is symmetrically arranged on the left and right ends of one side of the receiving seat (202). The connecting seat (205) and the connecting frame (302) are arranged in a detachable structure.
5. A carbon sequestration and solidification storage chamber according to claim 3, characterized in that, The movable component (4) includes a support pile (401), a slewing shaft (402), a connecting frame (403), and casters (404). The slewing shaft (402) is installed on one side of the support pile (401), and the connecting frame (403) is connected to the side of the slewing shaft (402) away from the support pile (401). Casters (404) are installed at the bottom of the support pile (401).
6. A carbon sequestration and solidification storage chamber according to claim 5, characterized in that, The rotary shaft (402) and the connecting frame (403) are integrated into one structure, and the connecting frame (403) and the connecting seat (204) are detachable.
7. A carbon sequestration and solidification storage chamber according to claim 3, characterized in that, The combined frame (5) includes a horizontal support (501), a docking plate (502) and a fixed corner plate (503). One end of the horizontal support (501) is connected to the docking plate (502), and the other end of the horizontal support (501) away from the docking plate (502) is connected to the fixed corner plate (503).
8. A carbon sequestration and solidification storage chamber according to claim 7, characterized in that, The left and right sides of the receiving seat (202) are provided with groove structures that match the surface structure of one side of the fixed angle plate (503), and the horizontal support (501), the docking plate (502) and the fixed angle plate (503) are connected to each other by welding.
Citation Information
Patent Citations
Carbon sequestration and solidification storage bin
CN220616987U