Carbon dioxide mineralization sealing reaction device
By designing a carbon dioxide mineralization and storage reactor that incorporates liquefaction, filtration, drying, and refrigeration processes, the problems of limited carbon dioxide storage capacity and the influence of mixtures were solved, achieving stable mineralization and efficient storage of carbon dioxide.
Patent Information
- Application Number
- CN202510297772.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-13
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2045-03-13
AI Technical Summary
Existing carbon dioxide mineralization and storage devices cannot stably process carbon dioxide, resulting in limited storage capacity. Furthermore, carbon dioxide mixes with oil and water during the mineralization process, affecting the storage effect.
A carbon dioxide mineralization and storage reactor was designed, comprising a liquefaction mechanism, a filtration and drying mechanism, and a storage mechanism. Through gas collection, liquefaction, filtration, drying, and refrigeration, the purity and stability of carbon dioxide are ensured, leakage and humidity effects are avoided, and stable storage is ultimately achieved.
It achieves efficient liquefaction storage and drying of carbon dioxide, ensuring the stability of the carbon dioxide mineralization process and the sealing effect, avoiding the influence of limited storage capacity and mixtures, and improving the reliability of sealing.
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Figure CN119860642B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of carbon dioxide mineralization, and particularly relates to a carbon dioxide mineralization and storage reaction device. BACKGROUND
[0002] Since carbon dioxide is a greenhouse gas, direct emission into the atmosphere will have an impact on the environment, so currently carbon dioxide mineralization technology is adopted for encapsulation. Specifically, carbon dioxide is injected into the underground through drilling in a suitable area, so that it reacts in the underground environment and is converted into stable inorganic carbonate, that is, it is mineralized in the underground environment, so that the carbon dioxide is mineralized and stored.
[0003] The Chinese patent application with the application number CN202111336276.3 discloses a method for storing compressed carbon dioxide energy on deep aquifer carbon dioxide geological storage; the disclosed method comprises the following steps: engineering site selection, drilling construction, ground energy storage system arrangement, carbon dioxide transportation and injection and extraction, and system operation period monitoring and feedback. The carbon dioxide generated in industrial activities is purified and collected, transported to the selected site by pipeline or tank truck, and continuously compressed and injected into the water (brine) layer by using the surplus power generated by solar energy and wind energy, so that the carbon dioxide is geologically stored and the power is stored, and part of the carbon dioxide is extracted from the brine layer during the power peak period to generate power, and the carbon dioxide after power generation is re-injected into the water (brine) layer for storage. The present application not only realizes large-scale storage of carbon dioxide, but also solves the problems of renewable energy generation fluctuation and uncontrollability, which is conducive to promoting energy saving and emission reduction and efficient use of renewable energy.
[0004] The Chinese patent with the publication number CN115790074B discloses a carbon dioxide ocean storage device based on a micro-channel heat exchanger, which comprises a shell, an upper cover, a bottom plate and a carbon dioxide storage container. The top of the shell is sealingly connected to the bottom of the upper cover, the upper cover is fixedly provided with a carbon dioxide inlet, the bottom of the shell is hingedly connected to the side of the bottom plate, the bottom of the shell is sealingly connected to the bottom plate, the shell is provided with a refrigerant inlet and a refrigerant outlet, the inner cavity of the shell is in communication with the outside through the refrigerant inlet and the refrigerant outlet, the shell is provided with the carbon dioxide storage container, the top of the carbon dioxide storage container is sealingly connected to the upper cover, the bottom of the carbon dioxide storage container is sealingly connected to the bottom plate, and the diameter of the outer wall of the carbon dioxide storage container is smaller than the diameter of the inner wall of the shell. The design not only prevents carbon dioxide from dissolving during the settling process by the dry ice shell, effectively prolonging the carbon dioxide storage period, but also allows the prepared carbon capture product to be easily removed from the carbon dioxide storage container.
[0005] However, the above-mentioned sealing device has the following disadvantages: the carbon dioxide mineralization sealing cannot stably treat the carbon dioxide, and the carbon dioxide storage capacity is limited during the mineralization treatment, and the carbon dioxide is mixed with oil and water during the storage mineralization, which affects the effect of the carbon dioxide mineralization sealing.
[0006] Therefore, it is necessary to provide a carbon dioxide mineralization sealing reaction device to solve the above problems. SUMMARY
[0007] In view of the deficiencies of the prior art, the present application provides a carbon dioxide mineralization sealing reaction device to solve the problems raised in the background art.
[0008] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a carbon dioxide mineralization sealing reaction device, comprising a first fixed frame, one side of the first fixed frame being fixedly connected with a second fixed frame, the other side of the first fixed frame being fixedly connected with a third fixed frame, the top of the first fixed frame being provided with a liquefaction mechanism, one side of the top of the first fixed frame being fixedly connected with a control mechanism, the top of the second fixed frame being provided with a filtering and drying mechanism, and the top of the third fixed frame being provided with a sealing mechanism.
[0009] The liquefaction mechanism comprises a storage tank fixedly connected with the top of the first fixed frame, a first conveying pipe through-connected with the top of the storage tank, a conveying pump fixedly connected with one end of the first conveying pipe, a gas collector fixedly connected with the gas inlet of the conveying pump, a second conveying pipe fixedly connected with the middle of the storage tank, a first electromagnetic valve through-connected with the bottom end of the storage tank, a gas compressor through-connected with one side of the first electromagnetic valve, a mounting frame fixedly connected with one side of the gas compressor, a plurality of low-temperature storage cylinders fixedly connected with one side of the mounting frame from top to bottom, and a pressure detection table fixedly installed at one end of the low-temperature storage cylinder.
[0010] Preferably, the filtering and drying mechanism comprises a first connecting pipe fixedly connected with the top of the second fixed frame, a first valve fixedly connected with the top of the first connecting pipe, and a first filtering assembly fixedly connected with one end of the first connecting pipe.
[0011] Preferably, the first filtering assembly comprises a first filtering shell, a first particle filtering layer arranged in the first filtering shell, a second particle filtering layer fixedly connected with one side of the first particle filtering layer, a second valve installed on one side of the first filtering shell, a second filtering shell arranged on one side of the second valve, an ion adsorption layer arranged in the second filtering shell, a third valve fixedly connected with one side of the second filtering shell, a drying cylinder installed on one side of the third valve, a high-temperature heating rod installed in the drying cylinder, a conveying gas pipe fixedly connected with one side of the drying cylinder, and a first humidity detector fixedly connected with one end of the conveying gas pipe.
[0012] Preferably, the sealing mechanism comprises a refrigerator fixedly connected to the top of the third fixed frame, one side of the refrigerator is throughly connected with a conveying connecting pipeline, one end of the conveying connecting pipeline is fixedly connected with a pressure injector, one side of the pressure injector is throughly connected with the sealing tank.
[0013] Preferably, the control mechanism comprises a fixed circuit board fixedly connected to the outer side of the first fixed frame, the top of the fixed circuit board is fixedly connected with a signal receiver, one side of the signal receiver is provided with a signal transmitter, one side of the signal transmitter is provided with a data processing chip, one side of the data processing chip is provided with a data storage, one side of the data storage is provided with a data analyzer, and the side of the data analyzer is provided with a motor driver.
[0014] Preferably, one side of the inside of the low-temperature storage cylinder is provided with a temperature sensor, and the other side of the inside of the low-temperature storage cylinder is fixedly connected with a second humidity sensor.
[0015] Preferably, the temperature sensor is a model "ZP-127(A)", the second humidity sensor is a model "OHR-WS10G", and the PLC controller is a model "YHM-40T4-D".
[0016] Preferably, the inner walls of the storage tank and the low-temperature storage cylinder are coated with a leak-proof coating.
[0017] Preferably, one side of the low-temperature storage cylinder is fixedly connected with a PLC controller, and the surface of the PLC controller is provided with a protective layer.
[0018] Preferably, the gas collector, the conveying pump, the first electromagnetic valve, the gas compressor, the pressure detection table, the signal receiver, the signal transmitter, the data processing chip, the data storage, the data analyzer, the motor driver, the high-temperature heating rod, the first humidity detector, the temperature sensor and the second humidity sensor are electrically connected with the external power supply through the PLC controller.
[0019] Compared with the prior art, the beneficial effects of the present application are:
[0020] The present application provides a carbon dioxide mineralization sealing reaction device:
[0021] 1. In the process of carbon dioxide mineralization, the carbon dioxide needs to be hydraulically pretreated and stored. In order to ensure that the amount of carbon dioxide storage is sufficient, the carbon dioxide in the air is collected by the gas collector. When the carbon dioxide accumulates to a certain amount, the carbon dioxide is transported to the inside of the storage tank through the first conveying pipe and the second conveying pipe by the conveying pump. In the process of carbon dioxide compression storage, the carbon dioxide is gas liquefied by the gas compressor arranged at the bottom end of the storage tank, so that the liquefied carbon dioxide is conveniently stored in the inside of the low-temperature storage cylinder. The carbon dioxide in the low-temperature storage cylinder is detected by the pressure detection table arranged, so as to avoid leakage.
[0022] 2. In the process of carbon dioxide drying treatment, in order to form calcium carbonate in subsequent mineralization, avoid that the humidity is too large to be stored and used, the liquefied carbon dioxide in the low-temperature storage cylinder is conveyed by the first connecting pipe. The liquefied carbon dioxide is filtered by the first filter assembly to remove impurities in the carbon dioxide. The particles in the carbon dioxide are filtered by the first particle filter layer and the second particle filter layer. After the filtration is completed, the filtered carbon dioxide is conveyed by the second valve, and then the heated carbon dioxide is dried by the high-temperature heating rod in the drying cylinder. The humidity of the heated and dried carbon dioxide is detected by the first humidity detector to avoid that the residual humidity in the carbon dioxide affects the subsequent carbon dioxide mineralization storage treatment. BRIEF DESCRIPTION OF DRAWINGS
[0023] Figure 1 The structure of the present application is shown in the structure of the present application.
[0024] Figure 2 The structure of the present application is shown in the structure of the present application.
[0025] Figure 3 The structure of the present application is shown in the structure of the present application.
[0026] Figure 4 The structure of the present application is shown in the structure of the present application.
[0027] Figure 5 The structure of the present application is shown in the structure of the present application.
[0028] Figure 6 The structure of the present application is shown in the structure of the present application.
[0029] Figure 7 The structure of the present application is shown in the structure of the present application.
[0030] Figure 8 The structure of the present application is shown in the structure of the present application.
[0031] Figure 9 Structure diagram of the delivery pump of the present application;
[0032] Figure 10 Structure diagram of the second humidity sensor of the present application.
[0033] In the figure: 1, first fixed frame; 101, second fixed frame; 102, third fixed frame; 2, liquefaction mechanism; 201, storage tank; 202, first delivery pipe; 203, delivery pump; 204, gas collector; 205, second delivery pipe; 206, first electromagnetic valve; 207, gas compressor; 208, mounting frame; 209, low-temperature storage cylinder; 2010, pressure detection meter;
[0034] 3, control mechanism; 301, fixed circuit board; 302, signal receiver; 303, signal transmitter; 304, data processing chip; 305, data storage; 306, data analyzer; 307, motor driver;
[0035] 4, filtering and drying mechanism; 401, first connecting pipe; 402, first valve; 403, first filtering assembly; 4031, first filtering shell; 404, first granular filtering layer; 405, second granular filtering layer; 406, second valve; 407, second filtering shell; 407, third valve; 408, ion adsorption layer; 409, high-temperature heating rod; 4010, delivery air pipe; 4011, first humidity detector;
[0036] 5, sealing mechanism; 501, refrigerating device; 502, delivery connecting pipe; 503, pressure injector; 504, sealing tank; 6, PLC controller; 7, temperature sensor; 701, second humidity sensor. DETAILED DESCRIPTION
[0037] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all the other embodiments obtained by those of ordinary skill in the art without any creative work fall within the protection scope of the present application.
[0038] The terms "first", "second", etc. in the specification and claims of the present application are used to distinguish similar objects, and are not used to describe a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances, so that the embodiments of the present application can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first", "second", etc. are generally a class, not limited to the number of objects, for example, the first object can be one or more. In addition, "and / or" in the specification and claims indicates at least one of the connected objects, and the character " / ", generally indicates that the front and rear associated objects are in a "or" relationship.
[0039] In the description of the present application, it should be understood that the terms "center", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "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 only for the purpose of facilitating the description of 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 on the present application.
[0040] In the description of the present application, it should be noted that unless otherwise explicitly specified and limited, the terms "mounting", "connecting", "setting" should be understood broadly, for example, it can be fixedly connected, set, or detachably connected, set, or integrally connected, set. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0041] As Figures 1-10 shown, the present application provides a carbon dioxide mineralization storage reaction device, which comprises a first fixed frame 1, one side of the first fixed frame 1 is fixedly connected with a second fixed frame 101, the other side of the first fixed frame 1 is fixedly connected with a third fixed frame 102, the top of the first fixed frame 1 is provided with a liquefaction mechanism 2, one side of the top of the first fixed frame 1 is fixedly connected with a control mechanism 3, the top of the second fixed frame 101 is provided with a filtering and drying mechanism 4, and the top of the third fixed frame 102 is provided with a storage mechanism 5.
[0042] The liquefaction mechanism 2 comprises a storage tank 201 fixedly connected with the top of the first fixed frame 1, the top of the storage tank 201 is throughly connected with a first conveying pipe 202, one end of the first conveying pipe 202 is fixedly connected with a conveying pump 203, the gas inlet of the conveying pump 203 is fixedly connected with a gas collector 204, the middle part of the storage tank 201 is fixedly connected with a second conveying pipe 205, the bottom end of the storage tank 201 is throughly connected with a first electromagnetic valve 206, one side of the first electromagnetic valve 206 is throughly connected with a gas compressor 207, one side of the gas compressor 207 is fixedly connected with a mounting frame 208, a plurality of low-temperature storage cylinders 209 are fixedly connected to the mounting frame 208 from top to bottom, and one end of the low-temperature storage cylinder 209 is fixedly installed with a pressure detection table 2010.
[0043] In specific use, when the carbon dioxide is mineralized, the carbon dioxide needs to be hydraulically pretreated and stored. In order to ensure that the amount of stored carbon dioxide is sufficient, the carbon dioxide in the air is collected by the gas collector 204, when the carbon dioxide accumulates to a certain amount, the carbon dioxide is conveyed to the inside of the storage tank 201 through the first conveying pipe 202 and the second conveying pipe 205 by the conveying pump 203, when the carbon dioxide is compressed and stored, the carbon dioxide is gasified by the gas compressor 207 arranged at the bottom end of the storage tank 201, so that the liquefied carbon dioxide is conveniently stored in the plurality of low-temperature storage cylinders 209, and the carbon dioxide in the low-temperature storage cylinder 209 is detected by the pressure detection table 2010 arranged, so as to avoid leakage.
[0044] The filtering and drying mechanism 4 comprises a first connecting pipe 401 fixedly connected with the top of the second fixed frame 101, the top of the first connecting pipe 401 is fixedly connected with a first valve 402, and one end of the first connecting pipe 401 is fixedly connected with a first filtering assembly 403.
[0045] The first filtering assembly 403 comprises a first filtering shell 4031, a first particle filtering layer 404 is arranged in the first filtering shell 4031, one side of the first particle filtering layer 404 is fixedly connected with a second particle filtering layer 405, a second valve 406 is mounted on one side of the first filtering shell 4031, a second filtering shell 407 is arranged on one side of the second valve 406, an ion adsorption layer 408 is arranged in the second filtering shell 407, a third valve 4071 is fixedly connected with one side of the second filtering shell 407, a drying cylinder is mounted on one side of the third valve 4071, a high-temperature heating rod 409 is mounted in the drying cylinder, a conveying gas pipe 4010 is fixedly connected with one side of the drying cylinder, and one end of the conveying gas pipe 4010 is fixedly connected with a first humidity detector 4011.
[0046] Specific use, in the drying process of carbon dioxide, in order to subsequent mineralization can form calcium carbonate, avoid humidity too big can not be used for storage, by setting the first connecting pipe 401 to the low temperature reserve cylinder 209 inside the liquefied carbon dioxide is transported, the liquefied carbon dioxide in the first filter assembly 403 is filtered, avoid the carbon dioxide containing impurities are removed, by setting the first particle filter layer 404 and the second particle filter layer 405 of the carbon dioxide inside the particle filter treatment, after the completion of the filter through the setting of the second valve 406 after the carbon dioxide is transported, then through the drying cylinder through the drying cylinder inside the high temperature heating rod 409 of carbon dioxide humidity evaporation removal, heating after drying carbon dioxide in the first humidity detector 4011 humidity detection, avoid the internal residual humidity of carbon dioxide affect the subsequent carbon dioxide mineralization storage treatment.
[0047] The storage mechanism 5 comprises a refrigerator 501 fixedly connected with the top of the third fixed frame 102, one side of the refrigerator 501 is connected with a conveying connecting pipe 502, one end of the conveying connecting pipe 502 is fixedly connected with a pressure injector 503, one side of the pressure injector 503 is connected with a storage tank 504.
[0048] Specific use, through the setting of the refrigerator 501, the carbon dioxide flowing through the storage is refrigerated, so that the carbon dioxide is cooled and stored after refrigeration, is transported to the pressure injector 503 through the setting of the conveying connecting pipe 502, and is injected into the storage tank 504 through the pressure adjustment of the pressure injector 503, so that the carbon dioxide in the storage tank 504 can be stored.
[0049] The control mechanism 3 comprises a fixed circuit board 301 fixedly connected with the outside of the first fixed frame 1, a signal receiver 302 fixedly connected with the top of the fixed circuit board 301, a signal transmitter 303 arranged on one side of the signal receiver 302, a data processing chip 304 arranged on one side of the signal transmitter 303, a data storage 305 arranged on one side of the data processing chip 304, a data analyzer 306 arranged on one side of the data storage 305, and a motor driver 307 arranged on the side of the data analyzer 306.
[0050] Specific use, in the carbon dioxide mineralization storage, in order to avoid the personnel to carbon dioxide mineralization process good monitoring, by signal transmission or receiving, through the cooperation between signal receiver 302 and signal transmitter 303 on the control mechanism 3, facilitate to data analyzer 306 to temperature sensor 7 and the second humidity sensor 701 to the mineralization storage equipment monitoring to better obtain the effect of mineralization treatment, through data analyzer 306 analysis will obtain the data transmission to the user's mobile terminal, and then through the signal transmitter 303 will transmit the instruction, through the PLC controller to motor driver 307 control processing, so that the mineralization equipment mechanism can be controlled and adjusted operation, so as to obtain the storage of carbon dioxide.
[0051] The inside of the low temperature reserve cylinder 209 is provided with a temperature sensor 7, and the other side of the low temperature reserve cylinder 209 is fixedly connected with a second humidity sensor 701.
[0052] Specific use, through the setting of temperature sensor 7 to the temperature inside the low temperature reserve cylinder 209, through the setting of the second humidity sensor 701 to the humidity inside the low temperature reserve cylinder 209, so as to better mineralization treatment of carbon dioxide.
[0053] The low temperature reserve cylinder 209 is fixedly connected with a PLC controller 6, and the surface of the PLC controller 6 is provided with a protective layer.
[0054] Specific use, through the PLC controller 6 can control the electric appliance on the incubator of oncolytic virus culture.
[0055] The temperature sensor 7 is model "ZP-127(A)", the second humidity sensor 701 is model "OHR-WS10G", and the PLC controller 6 is model "YHM-40T4-D".
[0056] Specific use, through the specified model can effectively control the carbon dioxide mineralization.
[0057] The inner wall of the storage tank 201 and the low temperature reserve cylinder 209 is coated with a leak-proof coating.
[0058] Specific use, through the leak-proof coating to avoid gas leakage.
[0059] The gas collector 204, the delivery pump 203, the first electromagnetic valve 206, the gas compressor 207, the pressure detection table 2010, the signal receiver 302, the signal transmitter 303, the data processing chip 304, the data storage 305, the data analyzer 306, the motor driver 307, the high-temperature heating rod 409, the first humidity detector 4011, the temperature sensor 7, and the second humidity sensor 701 are electrically connected with the external power supply through the PLC controller 6.
[0060] Working principle: when the carbon dioxide is mineralized, the carbon dioxide needs to be hydraulically pretreated and stored. In order to ensure that the amount of carbon dioxide storage is sufficient, the carbon dioxide in the air is filtered and collected by the gas collector 204. When the amount of carbon dioxide collected reaches a certain amount, the carbon dioxide is delivered to the inside of the storage tank 201 by the delivery pump 203, and is preliminarily compressed and stored. Then, the carbon dioxide is gasified by the gas compressor 207 at the bottom end of the storage tank 201, and the liquefied carbon dioxide is stored in the inside of the low-temperature storage cylinder 209.
[0061] Secondly, when the carbon dioxide is dried, the internal mixed moisture of the carbon dioxide is avoided. In order to facilitate subsequent mineralization, the liquefied carbon dioxide in the low-temperature storage cylinder 209 is delivered to the first filter assembly 403 for filtering treatment by the first connecting pipe 401. The impurities contained in the carbon dioxide are removed, and then the impurities in the carbon dioxide are filtered by the first particle filter layer 404 and the second particle filter layer 405. After the filtering is completed, the humidity of the carbon dioxide is evaporated by the high-temperature heating rod 409 in the drying cylinder, and the humidity is detected by the first humidity detector 4011. The residual humidity in the carbon dioxide does not affect the subsequent carbon dioxide mineralization and storage treatment.
[0062] Finally, the carbon dioxide flowing through the storage is refrigerated by the refrigerator 501, the activity of the carbon dioxide is reduced, and the carbon dioxide is stable after being refrigerated. The carbon dioxide is delivered to the inside of the pressure injector 503 through the delivery connecting pipe 502, and the carbon dioxide in the storage tank 504 can be stored under the pressure adjustment of the pressure injector 503.
[0063] It should be noted that, in the present document, the terms "comprises", "comprising", or any other variations thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can also include other elements not expressly listed or inherent to such process, method, article, or apparatus. An element proceeded by "comprises a", "comprising", or "includes a", does not, without more constraints, preclude the existence of additional identical elements in the process, method, article, or apparatus that comprises the element. Furthermore, it should be noted that the scope of the methods and apparatus of the present embodiments are not limited by the order of the steps or the order of the components, as described in the examples, but can include performing the steps in different order, or performing the steps concurrently, or in reverse order, or omitting one or more steps, or adding one or more steps, or adding, omitting, or combining various features of the examples described. Also, features described in relation to one example can be combined in other examples.
[0064] The embodiments of the present application described above are merely exemplary and are not intended to limit the present application to the above-described embodiments, but the above-described embodiments are merely illustrative, and the present application is not limited to the above-described embodiments. The above-described embodiments can be modified in various ways by those skilled in the art without departing from the scope of the present application, and all such modifications are intended to fall within the scope of the present application.
Claims
1. A carbon dioxide mineralization and storage reaction apparatus, comprising a first fixed frame (1), characterized in that, A second fixed frame (101) is fixedly connected to one side of the first fixed frame (1), and a third fixed frame (102) is fixedly connected to the other side of the first fixed frame (1). A liquefaction mechanism (2) is provided on the top of the first fixed frame (1), and a control mechanism (3) is fixedly connected to one side of the top of the first fixed frame (1). A filtration and drying mechanism (4) is provided on the top of the second fixed frame (101), and a sealing mechanism (5) is provided on the top of the third fixed frame (102). The sealing mechanism (5) includes a cooler (501) fixedly connected to the top of the third fixed frame (102), a conveying connection pipe (502) being connected through one side of the cooler (501), a pressure injector (503) being fixedly connected to one end of the conveying connection pipe (502), and a side of the pressure injector (503) being connected through the sealing tank (504). The liquefaction mechanism (2) includes a storage tank (201) fixedly connected to the top of the first fixed frame (1). A first delivery pipe (202) is connected through the top of the storage tank (201). A delivery pump (203) is fixedly connected to one end of the first delivery pipe (202). A gas collector (204) is fixedly connected to the air inlet of the delivery pump (203). A second delivery pipe (205) is fixedly connected to the middle of the storage tank (201). A first solenoid valve (206) is connected through the bottom of the storage tank (201). A gas compressor (207) is connected through one side of the first solenoid valve (206). A mounting frame (208) is fixedly connected to one side of the gas compressor (207). Several low-temperature storage cylinders (209) are fixedly connected from top to bottom on one side of the mounting frame (208). A pressure gauge (2010) is fixedly installed at one end of each low-temperature storage cylinder (209). The filtration and drying mechanism (4) includes a first connecting pipe (401) fixedly connected to the top of the second fixed frame (101), a first valve (402) fixedly connected to the top of the first connecting pipe (401), and a first filter assembly (403) fixedly connected to one end of the first connecting pipe (401). The first filter assembly (403) includes a first filter shell (4031), inside which a first particle filter layer (404) is disposed, and a second particle filter layer (405) is fixedly connected to one side of the first particle filter layer (404). A second valve (406) is installed on one side of the first filter shell (4031), and a second filter shell (407) is disposed on one side of the second valve (406). An ion adsorption layer (408) is disposed inside the second filter shell (407), and a third valve (4071) is fixedly connected to one side of the second filter shell (407). A drying cylinder is installed on one side of the third valve (4071), and a high-temperature heating rod (409) is installed inside the drying cylinder. A gas delivery pipe (4010) is fixedly connected to one side of the drying cylinder, and a first humidity detector (4011) is fixedly connected to one end of the gas delivery pipe (4010).
2. The carbon dioxide mineralization and storage reaction apparatus according to claim 1, characterized in that: The control mechanism (3) includes a fixed circuit board (301) fixedly connected to the outer side of the first fixed frame (1). A signal receiver (302) is fixedly connected to the top of the fixed circuit board (301). A signal transmitter (303) is provided on one side of the signal receiver (302). A data processing chip (304) is provided on one side of the signal transmitter (303). A data storage device (305) is provided on one side of the data processing chip (304). A data analyzer (306) is provided on one side of the data storage device (305). A motor driver (307) is provided on the side of the data analyzer (306).
3. The carbon dioxide mineralization and storage reaction apparatus according to claim 2, characterized in that: A temperature sensor (7) is provided on one side of the interior of the low-temperature storage cylinder (209), and a second humidity sensor (701) is fixedly connected to the other side of the interior of the low-temperature storage cylinder (209).
4. The carbon dioxide mineralization and storage reaction apparatus according to claim 3, characterized in that: A PLC controller (6) is fixedly connected to one side of the cryogenic storage cylinder (209), and a protective layer is provided on the surface of the PLC controller (6).
5. The carbon dioxide mineralization and storage reaction apparatus according to claim 1, characterized in that: The inner walls of the storage tank (201) and the cryogenic storage cylinder (209) are coated with a leak-proof coating.
6. The carbon dioxide mineralization and storage reaction apparatus according to claim 4, characterized in that: The gas collector (204), delivery pump (203), first solenoid valve (206), gas compressor (207), pressure gauge (2010), signal receiver (302), signal transmitter (303), data processing chip (304), data storage (305), data analyzer (306), motor driver (307), high-temperature heating rod (409), first humidity detector (4011), temperature sensor (7) and second humidity sensor (701) are all electrically connected to an external power supply through a PLC controller (6).
Citation Information
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