System for capturing carbon dioxide within gas loaded with carbon dioxide

EP4750552A1Pending Publication Date: 2026-06-03GAZTRANSPORT & TECHNIGAZ SA

Patent Information

Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
GAZTRANSPORT & TECHNIGAZ SA
Filing Date
2024-07-22
Publication Date
2026-06-03

AI Technical Summary

Technical Problem

Existing carbon dioxide capture systems face issues with residual cooling fluids circulating within the system, which can harm the environment and disrupt the capture process, especially when transitioning between capture and fusion modes in carbon dioxide gas streams.

Method used

A carbon dioxide capture system comprising at least two heat exchangers, each with a first and second pass, configured to operate in alternating modes for capture and fusion of carbon dioxide, utilizing a drain device to evacuate residual cooling fluids before switching modes, ensuring efficient operation and environmental safety.

Benefits of technology

The system effectively captures and recovers carbon dioxide by preventing harmful residual fluids from circulating within the system, maintaining operational integrity and environmental safety during mode transitions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a carbon dioxide capture system (1), comprising a first heat exchanger (4a) and a second heat exchanger (4b), each of the heat exchangers (4) comprising a chamber (14), a first pass (12a) and a second pass (12b), the first heat exchanger (4a) and the second heat exchanger (4b) being configured to be operated according to a first operating mode and according to a second operating mode, the capture system (1) comprising control means (5) configured to effect an alternation between the first operating mode and the second operating mode, characterized in that the capture system (1) comprises a draining device (21) hydraulically connected to the first pass and / or to the second pass.
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Description

[0001] DESCRIPTION

[0002] Title of the invention: System for capturing carbon dioxide from gas loaded with carbon dioxide

[0003] The present invention relates to the field of treatment of gases loaded with carbon dioxide and more particularly concerns a system for capturing carbon dioxide within said gases loaded with carbon dioxide.

[0004] When a gas emission source, such as flue gas, is in operation, which emission source may be a vehicle such as a floating structure, carbon dioxide-laden gases are generated. These carbon dioxide-laden gases are generally released into the atmosphere. However, carbon dioxide is known to cause environmental damage when released into the atmosphere.

[0005] To avoid this, a carbon dioxide capture system can be implemented to capture carbon dioxide by desublimation within the gases emitted by the emission source. Such a capture system can include heat exchangers specifically allowing the capture of an element by desublimation. Subsequently, the captured carbon dioxide can be merged to recover the carbon dioxide in a liquid state and store it for subsequent third-party uses.

[0006] The desublimation of carbon dioxide can be achieved by cooling the carbon dioxide-laden gas stream. Such cooling can be achieved by circulating at least one cooling fluid within passes of the heat exchanger while the carbon dioxide-laden gas stream passes through the chamber. The fusion of carbon dioxide can be achieved by circulating the carbon dioxide-laden gas stream within said passes in order to heat the chamber.

[0007] Such a configuration can generate a circulation of a cooling fluid then of the gas flow loaded with carbon dioxide, itself intended to be cooled within the chamber, within a single pass. A fraction of cooling fluid remaining in one of the passes can then be entrained by the gas flow loaded with carbon dioxide. This fraction of cooling fluid can then interfere with the proper functioning of the capture system or can be released into the atmosphere while its composition can be harmful to the environment.

[0008] The present invention avoids the various problems raised by providing a system for capturing carbon dioxide within carbon dioxide-laden gas, comprising at least a first heat exchanger and a second heat exchanger, each of the heat exchangers comprising at least one chamber, a first pass and a second pass which both extend into the chamber,the first heat exchanger and the second heat exchanger being configured to be operated according to a first operating mode where the chamber is configured to be crossed by a flow of gas loaded with carbon dioxide and to capture by desublimation the carbon dioxide present in said flow of gas loaded with carbon dioxide in order to generate a flow of decarbonized gas and according to a second operating mode where the first pass and / or the second pass are crossed by a flow of gas loaded with carbon dioxide to merge the carbon dioxide captured in the chamber, the capture system comprising control means configured to operate an alternation between the first operating mode and the second operating mode, characterized in that the capture system comprises at least one draining device hydraulically connected to the first pass and / or to the second pass of at least one of the heat exchangers,the draining device being configured to discharge a fluid from the first pass and / or the second pass, the control means being configured to actuate the draining device during a transition from the first operating mode to the second operating mode.,

[0009] Once the carbon dioxide has been captured within the carbon dioxide-laden gas flow, the fluid used to cool the carbon dioxide-laden gas flow circulating in the passes is evacuated before implementing the second operating mode and therefore before circulating the carbon dioxide-laden gas flow in one or other of the passes of the heat exchanger. The prior evacuation of the fluid previously circulating in said pass(es) thus avoids circulating a fraction of said fluid in portions of the capture system where it is not desirable to circulate this fluid. The latter may, for example, due to its composition and / or its state change points, impair the proper performance of the carbon dioxide capture, or include chemical elements that are harmful to the environment in the event of release into the atmosphere.

[0010] The first heat exchanger and the second heat exchanger are specifically designed to ensure the desublimation of a component element, for example a fluid. When one or other of the heat exchangers is operated according to the first operating mode, the cooling parameters linked to this heat exchanger allow the desublimation of carbon dioxide. The desublimated carbon dioxide, i.e. in the solid state, is then deposited on the walls of the heat exchanger operated according to the first operating mode.In order to ensure desublimation when the gas flow loaded with carbon dioxide passes through the chamber of one and / or the other of the heat exchangers, the first pass and / or the second pass of one and / or the other of the heat exchangers is crossed by one or more fluids at a sufficiently low temperature in order to cool the gas flow loaded with carbon dioxide so as to change the carbon dioxide which composes it directly from the vapor state to the solid state. It is these fluids which are subsequently evacuated from the passes by the draining device. Following the capture of the carbon dioxide, the gas flow which has passed through the chamber leaves it decarbonized.

[0011] In the context of the invention, the chamber is to be understood as a heat transfer zone between a cold flow and a hot flow. This chamber may be materialized by walls physically delimiting the zone, as shown in the figures and detailed below. However, the chamber may also not include walls. In this case, the chamber is a heat transfer zone during the implementation of the first operating mode between, on the one hand, the flow of gas loaded with carbon dioxide and, on the other hand, the flow of decarbonized gas and / or a flow of any other refrigerant. The exchanger comprising such a chamber is called a multi-flow exchanger. Similarly, the scope of the invention does not depart from the case of a pass in which a refrigerant circulates around which there is an annular space having fins, the gas loaded with carbon dioxide being intended to circulate in this annular space.The person skilled in the art therefore understands that the entire pass and the annular space constitute the exchanger and the chamber is then the heat exchange zone around the perimeter of the pass.

[0012] During the second mode of operation of either heat exchanger, the solid, or desublimated, carbon dioxide that has previously been deposited on the walls of said heat exchanger is melted, i.e. it passes from the solid state to the liquid state. To melt the carbon dioxide, a gas flow laden with carbon dioxide passes through the first pass and / or the second pass in order to heat the chamber of the heat exchanger where the solid carbon dioxide is to be melted.

[0013] According to a particular embodiment, the capture system is configured such that the flow of gas loaded with carbon dioxide passing through the chamber during the first mode of operation is the same flow of gas as the flow of gas loaded with carbon dioxide passing through the first pass and / or the second pass during the second mode of operation. In other words, the capture system is configured such that the flow of gas loaded with carbon dioxide initially circulates within the first pass and / or the second pass of at least one of the heat exchangers operated according to the second mode of operation in order to merge the carbon dioxide captured in the chamber, then this same flow of gas loaded with carbon dioxide continues its circulation until it passes through the chamber of at least one of the heat exchangers operated according to the first mode of operation.

[0014] As described, the first heat exchanger and the second heat exchanger can be operated in two different operating modes, namely a first mode allowing the capture of carbon dioxide by desublimation and a second mode allowing the fusion of the captured carbon dioxide and the recovery thereof. The control means allow the management of each of these two operating modes by applying one or the other of these to the heat exchangers but also by switching from one of the operating modes to the other.

[0015] The draining device is actuated by the control means in order to coordinate the draining so that it is implemented once the circulation of the fluid to be evacuated has stopped. Once the draining is complete, the second operating mode can be implemented.

[0016] According to a characteristic of the invention, the draining device comprises a drain line hydraulically connected to the first pass and / or to the second pass of at least one of the heat exchangers and a drain valve, the control means being configured to actuate the drain valve. Advantageously, the capture system comprises as many draining devices as there are heat exchangers, each draining device being associated with one of the heat exchangers.

[0017] The drain line is connected to one or both of the passes so that the drained fluid can flow from said pass into the drain line for evacuation. The drain valve is arranged on the drain line and can alternate between an open position and a closed position to allow or prohibit fluid flow within the drain line.

[0018] According to a feature of the invention, the fluid discharged by the draining device is liquefied natural gas or another refrigerant. The latter can be used as a cooling fluid if it is at a sufficiently low temperature and if it is possible to connect the capture system to a stock of liquefied natural gas. However, liquefied natural gas contains methane, which is harmful to the environment. Liquefied natural gas is therefore a relevant example of a fluid that must be drained so that it does not circulate in the capture system when the heat exchanger switches to the second operating mode.

[0019] According to a feature of the invention, the draining device is hydraulically connected to a device for treating liquefied natural gas or another refrigerant fluid. In the case where the fluid being drained is liquefied natural gas, as mentioned above, it can then be treated so as to be used for a third-party operation. For example, the drained liquefied natural gas can be vaporized to be supplied to a gas-consuming appliance.

[0020] According to a characteristic of the invention, the control means comprise at least one management member configured to regulate a circulation of a first cooling fluid which circulates within one or other of the passes of one or other of the heat exchangers.

[0021] According to another characteristic of the invention, the management member comprises at least a first valve arranged upstream of one or other of the passes of one or other of the heat exchangers and / or at least a second valve arranged downstream of one or other of the passes of one or other of the heat exchangers.

[0022] The management body authorizes or prohibits the circulation of the first cooling fluid within one of the passes via the first valve and the second valve arranged on either side of said pass. The first valve and the second valve can be opened or closed in order to authorize or prohibit the circulation of the first cooling fluid within the pass regulated by the management body.

[0023] The first cooling fluid may be liquefied natural gas as described above, or another fluid that must be evacuated from one or other of the passes before implementing the second mode of operation. In this configuration, the draining device, more particularly the drain line, must be hydraulically connected at least to the pass where the first cooling fluid circulates.

[0024] According to a characteristic of the invention, the control means comprise at least one management device configured to regulate a circulation of a second cooling fluid which circulates within one or other of the passes of one or other of the heat exchangers.

[0025] According to another characteristic of the invention, the management device comprises at least one third valve arranged upstream of one or other of the passes of one or other of the heat exchangers and / or at least one fourth valve arranged downstream of one or other of the passes of one or other of the heat exchangers.

[0026] The management device authorizes or prohibits the circulation of the first cooling fluid within one of the passes via the third valve and the fourth valve arranged on either side of said pass. The third valve and the fourth valve can be opened or closed in order to authorize or prohibit the circulation of the second cooling fluid within the pass regulated by the management device.

[0027] The control means may comprise a management member and a management device each regulating the circulation of a cooling fluid within the passes of the same heat exchanger. Thus the management member regulates the circulation of the first cooling fluid within one of the passes and the management device regulates the circulation of the second cooling fluid within the other pass.

[0028] The first cooling fluid and the second cooling fluid may be the same fluid or different fluids. One and / or the other may need to be drained. Depending on the nature of the first cooling fluid and the second cooling fluid, the draining device may be hydraulically connected to the first pass and / or the second pass of the heat exchanger.

[0029] According to a characteristic of the invention, the control means comprise at least one control member configured to regulate the circulation of the flow of gas loaded with carbon dioxide within one and / or the other of the passes of one or the other of the heat exchangers.

[0030] According to another characteristic of the invention, the control member comprises at least a fifth valve arranged upstream of one or other of the passes of one or other of the heat exchangers and / or at least a sixth valve arranged downstream of one or other of the passes of one or other of the heat exchangers.

[0031] The control member authorizes or prohibits the circulation of the flow of gas loaded with carbon dioxide within at least one of the passes of the heat exchanger via the fifth valve and the sixth valve arranged on either side of at least said pass. The fifth valve and the sixth valve can be opened or closed in order to authorize or prohibit the circulation of the flow of gas loaded with carbon dioxide within at least one of the passes regulated by the control member.

[0032] Advantageously, the control member comprises four valves, two of which are upstream of each of the two passes of one or other of the heat exchangers and two of which are downstream of each of the two passes of one or other of the heat exchangers, so that the flow of gas loaded with carbon dioxide circulates in the two passes to improve the homogeneity of the fusion of the captured carbon dioxide.

[0033] All of the above-mentioned valves can be independent valves from each other or can optionally be combined, for example to form a three-way valve.

[0034] According to a characteristic of the invention, the control means comprise at least one control device configured to regulate the circulation of the flow of gas loaded with carbon dioxide which circulates through one or other of the heat exchangers around one or other of its passes.

[0035] According to another characteristic of the invention, the control device comprises at least one seventh valve arranged upstream of the chamber of one or other of the heat exchangers and / or at least one eighth valve arranged downstream of the chamber of one or other of the heat exchangers.

[0036] In other words, the control device regulates the circulation of the flow of gas laden with carbon dioxide which passes through the chamber and within which the carbon dioxide is captured. The seventh valve and the eighth valve are arranged on either side of the chamber of one or the other of the heat exchangers, and can switch between an open position and a closed position in order to allow or not the circulation of the flow of gas laden with carbon dioxide through the chamber.

[0037] According to a feature of the invention, the capture system is associated with a source of emission of the carbon dioxide-laden gas stream, said carbon dioxide-laden gas stream originating from said emission source. The emission source may be an internal combustion engine, for example an engine used for propulsion of a vehicle and / or for generating an electric current, or for any other function. The combustion engine operates using a fuel, and the resulting internal combustion generates the carbon dioxide-laden gas stream. The emission source may also, but is not limited to, a chimney, a boiler or any factory.

[0038] According to a feature of the invention, the capture system comprises a third heat exchanger configured to be operated according to the first operating mode and according to the second operating mode, the control means being configured to operate an alternation between the first operating mode and the second operating mode on the third heat exchanger, at least one draining device being hydraulically connected to the first pass and / or to the second pass of the third heat exchanger, the draining device being configured to discharge a fluid from the first pass and / or the second pass, the control means being configured to actuate the draining device during a transition from the first operating mode to the second operating mode. This is an alternative to what has been described previously, where the capture system comprises three heat exchangers instead of two.The third heat exchanger is structurally and functionally identical to the first heat exchanger and the second heat exchanger. The capture system may therefore include a drain device associated with the third heat exchanger for draining the first pass and / or the second pass of the third heat exchanger.

[0039] According to a feature of the invention, the capture system is configured to keep the drain valve closed when the first heat exchanger and / or the second heat exchanger are operated according to the first operating mode and / or according to the second operating mode. Closing the drain valve makes it possible to prevent the escape of a fluid within the drain device, whether it is the first cooling fluid and / or the second cooling fluid during the capture of carbon dioxide, or the flow of gas loaded with carbon dioxide during the melting of carbon dioxide.

[0040] According to a feature of the invention, the capture system is configured to open the drain valve after the end of the operation of the first operating mode and before the start of the operation of the second operating mode. Such a configuration makes it possible to drain the first pass and / or the second pass in order to eliminate any trace of the first cooling fluid and / or the second cooling fluid therein before implementing the second operating mode.

[0041] The invention also covers a method for capturing carbon dioxide within a flow of gas loaded with carbon dioxide implemented by a system for capturing carbon dioxide within gas loaded with carbon dioxide according to any one of the characteristics described above, during which: the first operating mode of at least one of the heat exchangers is operated in order to desublimate the carbon dioxide present within the flow of gas loaded with carbon dioxide and passing through the chamber of said heat exchanger, the operation of the first operating mode of said heat exchanger is interrupted, a draining operation is initiated by actuating the draining device to evacuate any fluid present in the first pass and / or in the second pass of said heat exchanger, when the fluid is entirely evacuated,the second mode of operation of said heat exchanger is operated in order to merge the desublimated carbon dioxide in the chamber.

[0042] After the implementation of the first mode of operation, cooling fluid having circulated in the first pass and / or in the second pass of the heat exchanger to participate in the capture of carbon dioxide by desublimation may remain within one and / or the other of said passes.

[0043] The capture method therefore makes it possible to avoid pollution of the flow of gas loaded with carbon dioxide during the implementation of the second operating mode, when said flow of gas loaded with carbon dioxide circulates within one and / or the other of the passes. This prevents the release into the atmosphere of traces of cooling fluid which may contain particles of gases harmful to the environment, for example methane. Once the emptying operation has been carried out, the passes of the heat exchanger are empty and the flow of gas loaded with carbon dioxide can circulate in one and / or the other of the passes without risk of pollution of the latter.

[0044] According to a feature of the method, the drain valve is closed during the operation of the first operating mode and the second operating mode. This closure makes it possible to prevent the escape of the cooling fluids circulating in the first pass and / or in the second pass during the first operating mode or of the flow of gas loaded with carbon dioxide during the second operating mode.

[0045] According to a characteristic of the method, the drain valve is opened during a transition period subsequent to the operation of the first operating mode, said transition period being of a duration of 300 seconds for example. Furthermore, the duration of depressurization of the tubes from the normal operating pressure to the end of depressurization pressure results from the flow calibration which will have been chosen for the drain device; moreover, to minimize the inventory of cooling fluid contained in the tubes at the end of depressurization, the pressure reached at the end of depressurization must be as low as possible, close to atmospheric pressure.

[0046] According to a feature of the process, the transition period is prior to the operation of the second operating mode. This configuration is essential to avoid accidental mixing between the fluids. According to a feature of the process, the first valve, the second valve, the third valve, the fourth valve, the fifth valve, the sixth valve, the seventh valve and the eighth valve are closed during the draining operation. This configuration allows the fluid to be discharged within the drain line and not to another portion of the capture system.

[0047] According to a feature of the method, at least one of the heat exchangers is operated according to the first operating mode when the other of the heat exchangers is operated according to the second operating mode. The capture method is implemented so that the carbon dioxide can be captured by desublimation continuously, so that the gas is never released into the atmosphere while being loaded with carbon dioxide.

[0048] According to a feature of the method, the first operating mode followed by the second operating mode is a carbon dioxide capture / fusion cycle, said capture / fusion cycle being repeated by iterations. The capture / fusion cycle ensures that the heat exchangers alternate between the first operating mode and the second operating mode.

[0049] According to a characteristic of the method, when it is implemented by a capture system comprising three heat exchangers, two heat exchangers are operated according to the first operating mode while the last heat exchanger is operated according to the second operating mode. In other words, in a capture system with three heat exchangers, the capture method is configured so that two heat exchangers are systematically operated according to the first operating mode, the remaining heat exchanger being operated according to the second operating mode. Such a configuration makes it possible to optimize the quantity of carbon dioxide captured.It is however important to take into account the duration of the transition period during which the fluid is evacuated from the first pass and / or the second pass of one or other of the heat exchangers, in order not to create involuntary shifts between the capture / fusion cycles of the heat exchangers and to constantly have two heat exchangers operated according to the first mode of operation when implementing the capture process.

[0050] According to a feature of the method, a first cooling fluid and a second cooling fluid circulate respectively in the first pass and in the second pass of the heat exchanger when it is operated according to the first operating mode. The cooling fluids make it possible to cool the flow of gas laden with carbon dioxide passing through the chamber in order to capture the carbon dioxide by desublimation. Said cooling fluids must therefore circulate within the first pass and / or the second pass at a temperature sufficiently low to ensure the desublimation of the carbon dioxide when the flow of gas laden with carbon dioxide passes through the chamber.

[0051] According to a feature of the method, the first valve, the second valve, the third valve, the fourth valve, the seventh valve and the eighth valve are open while the fifth valve and the sixth valve are closed when the heat exchanger in question is operated according to the first operating mode. The first valve, the second valve, the third valve, the fourth valve must be open in order to allow the circulation of the cooling fluids in the first pass and in the second pass of the heat exchanger in question. The seventh valve and the eighth valve are also open in order to allow the flow of gas laden with carbon dioxide through the chamber.

[0052] According to a feature of the method, the first valve, the second valve, the third valve, the fourth valve, the seventh valve and the eighth valve are closed while the fifth valve and the sixth valve are open when the heat exchanger in question is operated according to the second operating mode. When the heat exchanger is operated according to the second operating mode, the first valve, the second valve, the third valve, the fourth valve, the seventh valve and the eighth valve are closed in order to prevent the circulation of the cooling fluids through the passes as well as the passage of the gas flow loaded with carbon dioxide through the chamber. The fifth valve and the sixth valve are open so that the decarbonized gas flow circulates in the first pass and / or in the second pass of the heat exchanger in question, with the aim of merging the carbon dioxide previously captured in the chamber.

[0053] According to a feature of the method, the first cooling fluid and / or the second cooling fluid may be the decarbonized gas stream. Indeed, after passing through the chamber and the carbon dioxide has been captured, the decarbonized gas stream is at a very low temperature due to having been cooled in order to ensure the capture of the carbon dioxide. The decarbonized gas stream may thus subsequently be used as a cooling fluid by circulating to the inlet of at least one of the two passes of one of the heat exchangers operated according to the first operating mode. The decarbonized gas stream is for example at a temperature of -120°C before passing through the first pass and / or the second pass.

[0054] According to a feature of the method, the first cooling fluid and / or the second cooling fluid may be a stream of liquefied natural gas or another refrigerant. In the case where the capture system is arranged within a facility producing combustion gases from the combustion of liquefied natural gas, said gas may be used as a means of desublimating carbon dioxide. The facility may comprise a tank for transporting and / or storing liquefied natural gas and a means for pumping the liquefied natural gas therein and circulating it to the first pass and / or the second pass of at least one of the heat exchangers in order to participate in the capture of carbon dioxide by desublimation. The liquefied natural gas is for example at a temperature of -161°C before passing through the first pass and / or the second pass.

[0055] In the case where the capture system is arranged within an installation not interacting with liquefied natural gas, said installation may be equipped with a refrigerant circuit within which another refrigerant circulates. The refrigerant is thus treated so as to circulate within the first pass and / or the second pass of the heat exchanger at a sufficiently low temperature, for example -125°C, to participate in the desublimation of carbon dioxide. According to a characteristic of the process, the fused carbon dioxide from the heat exchanger operated according to the second operating mode is stored. Once the fused carbon dioxide, it then circulates in the liquid state within the recovery branch mentioned above until it is stored within a storage device.

[0056] Other characteristics and advantages of the invention will become apparent from the following description on the one hand, and from several examples of embodiment given for informational and non-limiting purposes with reference to the attached schematic drawings on the other hand, in which:

[0057] [fig 1] represents a first embodiment of a system for capturing carbon dioxide within gas loaded with carbon dioxide according to the invention,

[0058] [fig 2] illustrates an example of circulation of the different fluids within the first embodiment of the capture system,

[0059] [fig 3] represents a second embodiment of a capture system according to the invention and an illustration of a circulation of the different fluids within this second embodiment,

[0060] [fig 4] represents a heat exchanger included within one or other of the embodiments of the capture system and at the level of which a first operating mode is operated,

[0061] [fig 5] represents the heat exchanger included within one or other of the embodiments of the capture system and at the level of which an operation of emptying one of the passes of said heat exchanger is carried out,

[0062] [fig 6] represents the heat exchanger included within one or other of the embodiments of the capture system and at the level of which a second mode of operation is operated.

[0063] This document uses the words upstream and downstream to define the relative arrangement of the components. These words are assessed according to the direction of circulation of the fluid which passes through said components or which circulates within the circuit concerned. Figure 1 illustrates a first embodiment of a system 1 for capturing carbon dioxide within gas loaded with carbon dioxide according to the invention. Such a capture system 1 can for example be integrated within a vehicle, a chimney, a factory, or any other entity comprising an emission source 6 of gas loaded with carbon dioxide. The emission source 6 can for example be a combustion engine such as an engine providing propulsion for a vehicle or the engine of an electric generator of said vehicle.

[0064] When the emission source 6 is in operation, the emission source 6 naturally emits gases laden with carbon dioxide, for example combustion gases. The capture system 1 thus makes it possible to capture the carbon dioxide present within a flow of gas laden with carbon dioxide 2 instead of releasing said flow directly into the atmosphere.

[0065] In order to treat the carbon dioxide-laden gas stream, it flows from the emission source 6 to the capture system 1 according to the invention via a pipe. Before reaching the capture system 1, the carbon dioxide-laden gas stream is compressed by a compression device, not shown in FIG. 1, in order to reach a pressure of approximately 4.5 bar absolute or 3.5 barg. The carbon dioxide-laden gas stream 2 can also flow through a drying device, also not shown, which ensures the elimination of traces of water that may remain within the carbon dioxide-laden gas stream.

[0066] The capture system 1 is illustrated in Figure 1 without materializing the circulation of the different flows. This figure therefore illustrates the components of the system without any circulation of fluid.

[0067] In order to ensure the capture of the carbon dioxide contained in the flow of gas loaded with carbon dioxide 2, the capture system 1 comprises at least two heat exchangers 4, more particularly a first heat exchanger 4a and a second heat exchanger 4b.

[0068] Each heat exchanger 4 comprises a chamber 14 defined by an internal volume of each of the heat exchangers 4, as well as two passes 12 which extend into the chamber 14. More specifically, each heat exchanger 4 comprises a first pass 12a and a second pass 12b within which a fluid can circulate. The first pass 12a and the second pass 12b both pass through the chamber 14.

[0069] A heat exchange can thus be implemented between the passes 12 and the chamber 14.

[0070] The heat exchangers 4 have the particularity of being operated according to two operating modes. A first operating mode ensures capture of the carbon dioxide present within the gas flow loaded with carbon dioxide by desublimation. The gas flow loaded with carbon dioxide 2 passes through the chamber 14 of one or other of the heat exchangers 4 and the carbon dioxide composing the gas flow loaded with carbon dioxide 2 is desublimated and is deposited in the solid state on the walls of the heat exchanger 4 in question.

[0071] In order to desublimate the carbon dioxide contained in the carbon dioxide-laden gas stream 2, the first pass 12a and / or the second pass 12b are traversed by cooling fluids. The latter ensure the cooling of the carbon dioxide-laden gas stream 2 passing through the chamber 14, so as to provide the temperature condition suitable for capturing the carbon dioxide by desublimation. This makes it possible to generate a decarbonized gas stream 3 at the outlet of the chamber 14 of the heat exchanger 4.

[0072] The heat exchangers 4 can also be operated according to a second operating mode ensuring fusion of the carbon dioxide previously captured within the chamber 14 of the heat exchanger 4 in question. Preferably, the second operating mode is operated on a heat exchanger 4 previously operated according to the first operating mode.

[0073] In order to melt the captured carbon dioxide by fusing it, the first pass 12a and / or the second pass 12b of the heat exchanger 4 are traversed by the flow of gas loaded with carbon dioxide 2. The latter being at a relatively high temperature, for example around -25°C to -33°C, the chamber 14 receives the heat given to it by the charge gas while cooling and the captured carbon dioxide passes into the liquid state. The capture system 1 therefore comprises a recovery branch 31 connected to the chamber 14 of each of the heat exchangers 4 and ensuring the circulation of the carbon dioxide in the liquid state to a storage member 53. Thus, in addition to avoiding the release of carbon dioxide into the atmosphere, the capture system 1 according to the invention makes it possible to store the carbon dioxide in the liquid state, which can subsequently be used or marketed for multiple third-party activities.The recovery branch 31 comprises a recovery valve 19 which can be opened to allow the circulation of carbon dioxide in the liquid state in the recovery branch 31.

[0074] It is understood from the above that the first pass 12a and / or the second pass 12b may be traversed by a cooling fluid initially, then by the flow of gas loaded with carbon dioxide 2 in a second step. Thus, several different fluids may circulate within the same pass 12. At the end of the first operating mode, a fraction of cooling fluid may remain within said passes 12. Subsequently, during the implementation of the second operating mode, this fraction of cooling fluid may be entrained in circulation by the flow of gas loaded with carbon dioxide 2 when the latter circulates within one and / or the other of the passes 12. Such circulation is not desired because the presence of the fraction of cooling fluid within the flow of gas loaded with carbon dioxide 2 may impair the proper functioning of the capture system 1.In addition, the coolant fraction may end up being released into the atmosphere and harming the environment, particularly due to its chemical composition, for example by being composed of methane.

[0075] To overcome this, the capture system 1 comprises at least one draining device 21. As illustrated in FIG. 1, the capture system 1 comprises two draining devices 21, each of which is associated with one of the heat exchangers 4. The draining device 21 is hydraulically connected to at least one of the passes 12 of the heat exchanger 4, here the second pass 12b, in order to ensure draining thereof. Thus, at the end of the implementation of the first operating mode, the draining device 21 ensures evacuation of the potential fraction of stagnant cooling fluid within the second pass 12b before the passage of the flow of gas loaded with carbon dioxide 2 during the implementation of the second operating mode. This avoids circulation of the cooling fluid within other portions of the capture system 1.

[0076] The draining device 21 comprises a drain line 23 hydraulically connected to the second pass 12b of the heat exchanger 4 and a drain valve 25 arranged on the drain line 23. If draining is necessary, the drain valve 25 is opened and the fraction of coolant remaining in the second pass 12b is discharged via the drain line 23. The circulation can for example be carried out using a pressure differential. Once draining has been carried out, a purging operation can also be carried out using a neutral gas, for example nitrogen, in order to eliminate any residual trace of the coolant within the second pass 12b.

[0077] In order to operate the heat exchangers 4 according to one or other of the operating modes, but also to switch said heat exchangers 4 from one operating mode to the other, the capture system 1 comprises control means 5 allowing the management of the circulation of the different fluids circulating in the passes 12 and / or passing through the chamber 14 of each of the heat exchangers 4. The control means 5 are capable of actuating the drain valve 25 of the drain device 21.

[0078] The control means 5 comprise in particular at least one management member 42, at least one management device 40, at least one control member 38 and at least one control device 44. Advantageously, each of these control means 5 is present in as many copies as there are heat exchangers 4, so that each of the latter can be operated according to one or other of the operating modes mentioned previously.

[0079] The management member 42 makes it possible to control the circulation of a first cooling fluid within one or other of the passes 12 of the heat exchangers 4. For example, in FIG. 1, there is a management member 42 for each heat exchanger 4, and each of the management members 42 controls the circulation of the first cooling fluid within the first pass 12a. Each management member 42 comprises a first valve 42a and a second valve 42b arranged on either side of the first pass 12a of each heat exchanger 4, that is to say upstream and downstream of the first pass 12a.

[0080] The management device 40 makes it possible to control the circulation of a second cooling fluid, which may be identical to or different from the first cooling fluid, within one or other of the passes 12 of the heat exchangers 4. For example, in FIG. 1, there is a management device 40 for each heat exchanger 4, and each of the management devices 40 controls the circulation of the second cooling fluid within the second pass 12b. Each management device 40 comprises a third valve 40a and a fourth valve 40b arranged on either side of the second pass 12b of each heat exchanger 4, that is to say upstream and downstream of the second pass 12b.In view of the configuration of the capture system 1, it is understood that it is the second cooling fluid which must be evacuated via the draining device 21, but the draining can also be applied with respect to the first cooling fluid if this is necessary.

[0081] The first valve 42a, the second valve 42b, the third valve 40a and the fourth valve 40b are open in order to allow the circulation of the cooling fluids when the heat exchanger 4 in question is operated according to the first operating mode, the passage of the cooling fluids within the passes 12 ensuring the capture of the carbon dioxide by desublimation.

[0082] The control member 38 makes it possible to control the circulation of the flow of gas loaded with carbon dioxide 2 within one and / or the other of the passes 12 of the heat exchangers 4. For example, in FIG. 1, there is a control member 38 for each heat exchanger 4, and each of the control members 38 controls the circulation of the flow of gas loaded with carbon dioxide 2 within the first pass 12a and / or the second pass 12b. Each control member 38 comprises at least a fifth valve 38a and a sixth valve 38b arranged on either side of one or the other of the passes 12 of each heat exchanger 4, that is to say upstream and downstream of one or the other of the passes 12.Advantageously, and as illustrated in FIG. 1, each control member 38 comprises two fifth valves 38a and two sixth valves 38b, at a rate of one fifth valve 38a and one sixth valve 38b upstream and downstream of each of the passes 12 of the heat exchanger 4 considered.

[0083] It is thus understood that the fifth valves 38a and the sixth valves 38b are open in order to allow the circulation of the flow of gas loaded with carbon dioxide 2 within the passes 12 when the heat exchanger 4 considered is operated according to the second operating mode, the passage of the flow of gas loaded with carbon dioxide 2 within the passes 12 ensuring the melting of the carbon dioxide captured in the chamber 14 of the heat exchanger 4 considered.

[0084] In Figures 1 to 6, all of the above-mentioned valves are independent valves, but it is possible to combine some of them, for example to form three-way valves.

[0085] The control device 44 makes it possible to control the circulation of the flow of gas loaded with carbon dioxide 2 through the chamber 14 of the heat exchangers 4. More precisely, it is the flow of gas loaded with carbon dioxide 2 which passes through the chamber 14 around the passes 12 and which is cooled in order to capture the carbon dioxide by desublimation. For example, in FIG. 1, there is a control device 44 for each heat exchanger 4. Each control device 44 comprises at least a seventh valve 44a and an eighth valve 44b arranged on either side of the chamber 14 of each heat exchanger 4, that is to say upstream and downstream of the chamber 14 of each heat exchanger 4.

[0086] It is thus understood that the seventh valve 44a and the eighth valve 44b are open in order to allow the circulation of the flow of gas loaded with carbon dioxide 2 through the chamber 14 when the heat exchanger 4 considered is operated according to the first operating mode, the passage of the flow of gas loaded with carbon dioxide 2 through the chamber 14 making it possible to capture the carbon dioxide which it contains. It should be noted that the management member 42, the management device 40, the control member 38 and the control device 44 are not material objects but only names making it possible to designate all of the aforementioned valves. Furthermore, the recovery valve 19 mentioned above can also be controlled by the control means 5.

[0087] Whatever the embodiment of the invention or its variants, a regulating member 90 is provided whose role is to control the temperature which prevails within at least one of the two chambers 14a, 14b, and advantageously within a single chamber or all the chambers operated according to the first operating mode. By controlling the temperature within the chamber 14, it is possible to act on the desublimation which takes place in this chamber 14. To do this, the regulating member 90 comprises at least one channel 93 allowing a portion of the flow of decarbonized gas 3 to bypass the pass(es) 12 of the heat exchanger(s) 4, depending on the embodiment envisaged. In doing so, the flow rate within the pass(es) 12 can be reduced and therefore the supply of cold within the chamber 14 can be adjusted.

[0088] The circulation of the decarbonized gas flow in this channel 93 is placed under the control of a measuring member 91 of the temperature within at least one of the two chambers 14, 14a, 14b. This measuring member 91 is for example a temperature sensor installed inside the chamber 14. This measuring member 91 acts on a regulating valve 92 placed on the channel 93 and which adjusts the flow rate of the decarbonized gas flow 3 which circulates in the channel 93.

[0089] The capture system 1 further comprises a first heat exchanger 16 and a second heat exchanger 10, each of them configured to carry out a heat exchange between the flow of gas loaded with carbon dioxide 2 and the flow of decarbonized gas 3, after the latter leaves the chamber 14 of at least one heat exchanger 4 operated according to the first operating mode.

[0090] The decarbonized gas flow 3 being at a very low temperature due to its passage through the chamber 14 of one of the heat exchangers 4 operated according to the first operating mode, the first heat exchanger 16 and the second heat exchanger 10 make it possible to exploit this temperature of the decarbonized gas flow 3 in order to pre-cool the gas flow loaded with carbon dioxide 2 before it passes through the chamber 14 of a heat exchanger 4 operated according to the first operating mode. Thus, the first heat exchanger 16 comprises a first pass 16a within which the flow of gas loaded with carbon dioxide 2 circulates and a second pass 16b within which the flow of decarbonized gas 3 circulates, and the second heat exchanger 10 comprises a first pass 10a within which the flow of gas loaded with carbon dioxide 2 circulates and a second pass 10b within which the flow of decarbonized gas 3 circulates.As will be detailed later, the second heat exchanger 10 is positioned upstream of the first heat exchanger 16 relative to the direction of circulation of the flow of gas loaded with carbon dioxide 2.

[0091] Figure 2 illustrates the same capture system 1 as that illustrated in Figure 1. However, Figure 2 illustrates an example of the circulation of the different fluids within the capture system 1 when the latter is in operation.

[0092] In Figures 2 to 6, the thick solid lines are those within which the flow of gas loaded with carbon dioxide 2 circulates, the thin solid lines are those within which the flow of decarbonized gas 3 circulates, the dashed lines are those within which a flow of liquefied natural gas circulates, the long dotted lines correspond to a flow of carbon dioxide in the liquid state, and the short dotted lines correspond to lines where there is no circulation of any fluid in the operating mode considered.

[0093] In Figure 2, the second heat exchanger 4b is operated by the control means 5 according to the first operating mode. In other words, it is within the chamber 14b of the second heat exchanger 4b that the carbon dioxide contained in the gas flow loaded with carbon dioxide 2 is being captured. The first heat exchanger 4a is operated by the control means 5 according to the second operating mode. In other words, carbon dioxide has been previously captured within the chamber 14a of the first heat exchanger 4a, and said carbon dioxide is being melted.

[0094] When the gas flow loaded with carbon dioxide 2 is emitted by the emission source 6, it circulates to the capture system 1 after being previously compressed and dried as mentioned above. At the inlet of the capture system 1, the gas flow loaded with carbon dioxide 2 is at a temperature, for example, between +5°C and +15°C.

[0095] The flow of gas loaded with carbon dioxide 2 then circulates within the capture system 1, more precisely within a first supply circuit 8. The first supply circuit 8 is divided into a first path 8a and a second path 8b and makes it possible to hydraulically connect the arrival of the flow of gas loaded with carbon dioxide 2 to the heat exchangers 4.

[0096] The flow of gas loaded with carbon dioxide 2 circulates within the first path 8a to the second heat exchanger 10 within which it is pre-cooled by the flow of decarbonized gas 3 to a temperature between -25°C and -33°C.

[0097] The flow of gas loaded with carbon dioxide 2 continues its circulation within the first path 8a to the first heat exchanger 4a. The control means 5, more particularly the control member 38 associated with the first heat exchanger 4a, is configured to keep open the fifth valves 38a and the sixth valves 38b arranged on either side of the passes 12 of the first heat exchanger 4a. This configuration allows the flow of gas loaded with carbon dioxide 2 to circulate within the first pass 12a and the second pass 12b of the first heat exchanger 4a. The flow of gas loaded with carbon dioxide 2 being at a temperature of approximately -25°C at

[0098] -33°C, a heat exchange is carried out, cooling the flow of gas loaded with carbon dioxide 2 to a temperature between -42°C and -49°C and heating the chamber 14a of the first heat exchanger 4a, thus causing the fusion of the carbon dioxide present within said chamber 14a of the first heat exchanger 4a. The recovery valve 19 is open, and the carbon dioxide in the liquid state thus formed can circulate within the recovery branch 31 to the storage member 53.

[0099] At the outlet of the passes 12 of the first heat exchanger 4a, the flow of gas loaded with carbon dioxide 2 continues its circulation to the first heat exchanger 16 within which it is again cooled by the flow of decarbonized gas 3. The flow of gas loaded with carbon dioxide 2 is cooled to a limit threshold of temperature for the change of state of the carbon dioxide, for example to a temperature of approximately - 99°C.

[0100] The flow of gas loaded with carbon dioxide 2 then circulates to the second heat exchanger 4b. The control means 5, more particularly the control device 44 associated with the second heat exchanger 4b, is configured to keep open the seventh valve 44a and the eighth valve 44b arranged on either side of the chamber 14b of the second heat exchanger 4b so that the flow of gas loaded with carbon dioxide 2 can pass through it.

[0101] When the gas flow loaded with carbon dioxide 2 passes through the chamber 14b of the second heat exchanger 4b, a heat exchange takes place because the passes 12 of the second heat exchanger 4b are traversed by the first cooling fluid and the second cooling fluid. The gas flow loaded with carbon dioxide 2 is then cooled to a temperature such that the carbon dioxide contained in the gas flow loaded with carbon dioxide 2 is desublimated, that is to say it passes from the vapor state to the solid state. The carbon dioxide is then deposited in the form of frost on the walls of the chamber 14b of the second heat exchanger 4b or around the passes 12 thereof. The details concerning the characteristics and the nature of the cooling fluids will be mentioned subsequently.

[0102] Crossing the chamber 14b of the second heat exchanger 4b results in the generation of the decarbonized gas flow 3 from the carbon dioxide-laden gas flow 2. The decarbonized gas flow 3 is then at a temperature of approximately -120°C. The capture system 1 comprises a second supply circuit 20 ensuring the circulation of the decarbonized gas flow 3 within the capture system 1. The second supply circuit 20 comprises in particular a line 22 which ensures the circulation of the decarbonized gas flow 3 from the chambers 14 of the heat exchangers 4 to the passes 12 of the heat exchangers 4.

[0103] Indeed, the flow of decarbonized gas 3 being at approximately -120°C, it can be used as a cooling fluid for at least one of the heat exchangers 4 operated according to the first operating mode. In Figure 2, line 22 allows the circulation of the flow of decarbonized gas 3 to the first pass 12a of the second heat exchanger 4b.

[0104] The control means 5, more particularly the management member 42 associated with the second heat exchanger 4b, is configured to keep open the first valve 42a and the second valve 42b arranged on either side of the first pass 12a of the second heat exchanger 4b so that the decarbonized gas flow 3 can circulate therein to be used as a first cooling fluid within the second heat exchanger 4b and thus participate in the desublimation of the carbon dioxide contained in the carbon dioxide-laden gas flow 2. At the outlet of the first pass 12a of the second heat exchanger 4b, the decarbonized gas flow 3 is at a temperature of approximately -102°C. In order to keep the chamber 14b airtight, the recovery valve 19 of the second heat exchanger 4b is closed.

[0105] The second supply circuit 20 also comprises a collector 24 for recovering the decarbonized gas flow 3 after it has been evacuated from one or other of the passes 12 of at least one of the heat exchangers 4 operated according to the first operating mode, here the first pass 12a of the second heat exchanger 4b. The collector 24 in particular makes it possible to circulate the decarbonized gas flow 3 to the first heat exchanger 16 in order to cool the carbon dioxide-laden gas flow 2.

[0106] Alternatively, the decarbonized gas flow 3 can also at least partly bypass the passes 12 of the heat exchangers 4 by circulating in the channel 93 directly to the first heat exchanger 16, and this depending on the configuration of the measuring member 90 mentioned previously. Tl

[0107] At the outlet of the first heat exchanger 16, the decarbonized gas flow 3 is at a temperature between -52°C and -55°C. It then circulates to the second heat exchanger 10 to ensure the pre-cooling of the carbon dioxide-laden gas flow 2. At the outlet of the second heat exchanger 10, the decarbonized gas flow 3 is at a temperature between -19°C and -25°C °C. Such a succession of heat exchanges makes it possible to exploit to the maximum the cooling capacities of the decarbonized gas flow 3. The latter then circulates outside the capture system 1 and can, for example, if possible, contribute to the cooling of the carbon dioxide-laden gas flow 2 during its compression and drying prior to its arrival in the capture system 1.

[0108] The capture system 1 further comprises a third supply circuit 28, within which a flow of liquefied natural gas 30 or another refrigerant fluid can circulate. The capture system 1, as mentioned previously, can in fact be integrated within a vehicle, for example a floating structure. Such a floating structure can comprise a tank 34 for transporting and / or storing liquefied natural gas. The latter can also be used as fuel to supply the emission source 6. In FIGS. 2 and 3, it is therefore a flow of liquefied natural gas 30 which circulates in the third supply circuit 28. It is however possible that the third supply circuit 28 is a cooling circuit within which a refrigerant fluid circulates, ensuring a function identical to the flow of liquefied natural gas 30.

[0109] The tank 34 comprises a pump 32 ensuring the circulation of the flow of liquefied natural gas 30. This then circulates within the third supply circuit 28 to the heat exchangers 4. It is thus understood that the flow of liquefied natural gas can be used as a cooling fluid to participate in the capture of the carbon dioxide present in the flow of gas loaded with carbon dioxide 2.

[0110] In Figure 2, the flow of liquefied natural gas 30 circulates to the second pass 12b of the second heat exchanger 4b, the latter being operated according to the first operating mode. The control means 5, more particularly the management device 40 associated with the second heat exchanger 4b is configured to keep open the third valve 40a and the fourth valve 44b arranged on either side of the second pass 12b of the second heat exchanger 4b so that the flow of liquefied natural gas 30 can circulate therein to be used as a second cooling fluid within the second heat exchanger 4b and thus participate in the desublimation of the carbon dioxide contained in the flow of gas loaded with carbon dioxide 2. At the inlet of the second pass 12b of the second heat exchanger 4b, the flow of liquefied natural gas 30 is at a temperature of approximately -161°C.In the case where it is another refrigerant fluid which circulates in the third supply circuit 28, said refrigerant fluid can for example be at a temperature of -125°C. At the outlet of the second pass 12b of the second heat exchanger 4b, the flow of liquefied natural gas 30 is at a temperature of approximately -101°C.

[0111] The drain line 23 being hydraulically connected to the second pass 12b, it is understood that it is the liquefied natural gas which needs to be evacuated from the second pass 12b using the drain device 21. Indeed, the liquefied natural gas contains methane which is harmful to the environment in the event of release into the atmosphere. This is why the capture system 1 allows the fraction of liquefied natural gas stagnating in the second pass 12b at the end of the implementation of the first operating mode to avoid being carried away by the flow of gas loaded with carbon dioxide 2 once the heat exchanger has switched to the second operating mode.

[0112] In order to treat the liquefied natural gas discharged by the draining device 21, the drain line extends to a liquefied natural gas treatment device 27. The latter receives the liquefied natural gas from the second pass 12b and can treat it for third-party use. For example, the liquefied natural gas treatment device 27 can compress and vaporize the liquefied natural gas before sending it to a gas-consuming appliance such as the emission source 6 if the latter can be supplied with natural gas. Advantageously, when implementing the first mode of operation, the decarbonized gas flow 3 circulates within the first pass 12a and the liquefied natural gas flow 30 circulates within the second pass 12b of the heat exchanger 4 operated according to the first mode of operation.This arrangement allows the flow of gas loaded with carbon dioxide 2, as it passes through the chamber 14, to be cooled initially by the flow of decarbonized gas 3, then by the flow of liquefied natural gas 30 which is colder than the flow of decarbonized gas 3. The cooling of the flow of gas loaded with carbon dioxide 2 is thus progressive and contributes to distributing the carbon dioxide snow over the cold surfaces successively crossed by the flow of gas loaded with carbon dioxide 2.

[0113] At the outlet of the second pass 12b of the second heat exchanger 4b, the flow of liquefied natural gas 30 can subsequently be used for a subsequent heat exchange. Indeed, as mentioned, the first supply circuit 8 is divided into the first path 8a and the second path 8b. The circulation of the flow of gas loaded with carbon dioxide 2 within the path 8a has been described previously.

[0114] The flow of gas loaded with carbon dioxide 2 circulating in the second path 8b also circulates to the heat exchangers 4, but must be pre-cooled before passing through the chamber 14 of at least one of the heat exchangers 4 operated according to the first operating mode, just like the flow of gas loaded with carbon dioxide 2 circulating in the first path 8a.

[0115] To do this, the capture system 1 comprises a third heat exchanger 18 configured to carry out a heat exchange between the flow of gas loaded with carbon dioxide 2 circulating in the second path 8b and the flow of liquefied natural gas 30 circulating in the third supply circuit 28 after having circulated in one and / or the other of the passes 12 of at least one of the heat exchangers 4 operated according to the first operating mode. The division of the first supply circuit 8 into two paths 8a, 8b allows a distribution of the pre-cooling of the flow of gas loaded with carbon dioxide 2 to several heat exchangers. In addition, the low temperature of the flow of liquefied natural gas 30 can be exploited. Thus, the third heat exchanger 18 comprises a first pass 18a within which the flow of gas loaded with carbon dioxide 2 circulates and a second pass 18b within which the flow of liquefied natural gas 30 circulates.The latter being at a temperature of approximately -101°C, it can then cool the flow of gas loaded with carbon dioxide 2 to the temperature limit threshold for the change of state of carbon dioxide, for example to a temperature of approximately -99°C.

[0116] Downstream of the third heat exchanger 18, the second path 8b joins the first path 8a downstream of the first heat exchanger 16 and upstream of the heat exchangers 4. The flows of gas loaded with carbon dioxide 2 circulating in each of the paths 8a, 8b thus join while having an identical or substantially identical temperature relative to each other.

[0117] At the outlet of the third heat exchanger 18, the flow of liquefied natural gas 30 or any other refrigerant fluid is in the vapor state at a temperature of approximately +3°C and can circulate to a receiving member 35 which can heat said flow and circulate it to a gas-consuming device, for example the emission source 6 which generates the flow of gas loaded with carbon dioxide 2 that the capture system 1 according to the invention seeks to treat.

[0118] In particular, in order to regulate the temperature of the gas flows at the first heat exchanger 16, the capture system 1 is also provided with a regulation system 46 and a regulation device 61.

[0119] The regulation system 46 comprises a detection device 48, a bypass branch 26 and a ninth valve 50. The detection device 48 makes it possible to measure the temperature of the gas flow loaded with carbon dioxide 2 at the outlet of the first heat exchanger 16. The bypass branch 26 is integrated within the second supply circuit 20 and is arranged in parallel with the first heat exchanger 16. The ninth valve 50 is arranged on the bypass branch 26.

[0120] The function of the regulation system 46 is to prevent premature desublimation of the carbon dioxide within the first heat exchanger 16 which is not configured to ensure the storage of carbon dioxide in the solid state. The temperature of the gas flow loaded with carbon dioxide 2 is thus controlled at the outlet of said first heat exchanger 16. If the detection device 48 measures a temperature lower than a defined temperature threshold, this means that the decarbonized gas flow 3 is cooling the gas flow loaded with carbon dioxide 2 too much within the first heat exchanger 16.

[0121] In order to limit such cooling, the ninth valve 50 can be opened so that at least a fraction of the decarbonized gas flow 3 circulates within the bypass branch 26 instead of passing through the first heat exchanger 16. This thus limits the flow rate of the decarbonized gas flow 3 passing through the first heat exchanger 16 and avoids cooling the carbon dioxide-laden gas flow 2 too intensively.

[0122] The detection device 48 can be configured to directly control the ninth valve 50. The latter can be opened so as to vary a passage section of the bypass branch 26. In this way, it is possible to control the flow rate of decarbonized gas circulating in the bypass branch 26 and therefore to indirectly control the flow rate of decarbonized gas passing through the first heat exchanger 16. In the case where the flow of decarbonized gas 3 is divided into a fraction circulating in the bypass branch 26 and into a fraction passing through the first heat exchanger 16, the two fractions join downstream of the latter and the flow of decarbonized gas 3 continues its circulation to the second heat exchanger 10.

[0123] The regulation device 61 comprises a bypass line 62 of the first pass 12a and / or of the second pass 12b of one or other of the heat exchangers 4, a control valve 63 configured to control the circulation of the flow of gas loaded with carbon dioxide 2 within the bypass line 62, and a member 64 for detecting the temperature of the flow of gas loaded with carbon dioxide 2 upstream of the first heat exchanger 16. The bypass line 62 is integrated within the first path 8a of the first supply circuit 8 and is arranged in parallel with the passes 12 of the heat exchangers 4. The control valve 63 is disposed on the bypass line 62. The regulation device 61 has the function of controlling the melting rate of the carbon dioxide within the chamber 14 of at least one of the heat exchangers 4 operated according to the second operating mode.The temperature of the gas flow loaded with carbon dioxide 2 is thus controlled by the detection member 64 upstream of the first heat exchanger 16 and therefore downstream of the passes 12 of at least one of the heat exchangers 4, here the first pass 12a and the second pass 12b of the first heat exchanger 4a. If the detection member 64 measures a temperature lower than a defined temperature threshold, this means that the gas flow loaded with carbon dioxide 2 carries out too great an exchange of heat within at least one of the heat exchangers 4 operated according to the second operating mode and therefore that the fusion of the carbon dioxide is potentially carried out too quickly.

[0124] In order to limit the melting rate of the carbon dioxide, the control valve 63 can be opened so that at least a fraction of the carbon dioxide-laden gas flow 2 circulates within the bypass line 62 instead of passing through the first pass 12a and the second pass 12b of the first heat exchanger 4a. This thus limits the flow rate of the carbon dioxide-laden gas flow 2 circulating in the first pass 12a and in the second pass 12b of the first heat exchanger 4a and avoids on the one hand melting too quickly the carbon dioxide contained in the chamber 14a of the first heat exchanger 4a, on the other hand cooling the carbon dioxide-laden gas flow 2 too much before the heat exchange occurring in the first heat exchanger 16.

[0125] The detection member 64 can be configured to directly control the control valve 63. The latter can be opened so as to vary a passage section of the bypass line 62. In this way, it is possible to control the flow rate of gas loaded with carbon dioxide circulating in the bypass line 62 and therefore to indirectly control the flow rate of gas loaded with carbon dioxide circulating in the first pass 12a and in the second pass 12b of the first heat exchanger 4a. In the case where the flow of gas loaded with carbon dioxide 2 is divided into a fraction circulating in the bypass line 62 and into a fraction circulating in the first pass 12a and in the second pass 12b of the first heat exchanger 4a, the two fractions join downstream of the latter and upstream of the measurement of the temperature of the flow of gas loaded with carbon dioxide 2 by the detection member 64.Although the temperature of the fraction of the gas flow loaded with carbon dioxide 2 circulating in the first pass 12a and in the second pass 12b of the first heat exchanger 4a has been lowered during the heat exchange carried out within the latter, this drop in temperature is compensated by the temperature of the fraction of the gas flow loaded with carbon dioxide 2 circulating in the bypass line 62 and which has therefore not undergone heat exchange when the two fractions join and mix.

[0126] As mentioned previously, the control means 5 are capable of switching the heat exchangers 4 from one operating mode to the other so as to implement a capture of the carbon dioxide, then a fusion of the latter to recover it in the liquid state in order to implement a method of capturing carbon dioxide within gas loaded with carbon dioxide. In a manner successive to that illustrated in FIG. 2, the first heat exchanger 4a can switch from the second operating mode to the first operating mode. Simultaneously, the second heat exchanger 4b switches from the first operating mode to the second operating mode.

[0127] As will be detailed later, the emptying of the second pass 12b of one or other of the heat exchangers 4 is done during a transition period after the implementation of the first operating mode and before the second operating mode.

[0128] Figure 3 illustrates a second embodiment of the capture system 1 according to the invention. The second embodiment differs from the first embodiment, illustrated in Figures 1 and 2, in that the capture system 1 comprises three heat exchangers 4 responsible for capturing or merging the carbon dioxide. The capture system 1 thus comprises a third heat exchanger 4c structurally and functionally identical to the first heat exchanger 4a and to the second heat exchanger 4b. Thus, the third heat exchanger 4c can be operated according to the two operating modes mentioned above and the control means 5 can switch the third heat exchanger 4c from one operating mode to the other.

[0129] In order to have the same functional characteristics as the first heat exchanger 4a and the second heat exchanger 4b, the third heat exchanger 4c is connected to all of the different supply circuits in an identical manner to the first heat exchanger 4a and the second heat exchanger 4b. The capture system 1 further comprises control means 5 associated with the third heat exchanger 4c. The control means 5 thus comprise a management member 42, a management device 40, a control member 38 and a control device 44, each associated with the third heat exchanger 4c and each being provided with its respective valves as described previously. The capture system 1 further comprises a draining device 21 associated with the third heat exchanger 4c.

[0130] The circulation of the different fluids depending on the operating mode operated on the third heat exchanger 4c therefore takes place in an identical manner to that described previously. Thus, reference will be made to the description of figures 1 and 2 which forms the support and / or the detailed description of the identical or identically functioning elements present in these figures.

[0131] Within the second embodiment of the capture system 1, the carbon dioxide capture method is operated in such a way that there are constantly two heat exchangers 4 which are operated according to the first operating mode, that is to say two heat exchangers 4 which ensure the capture of carbon dioxide within their respective chamber 14. Having two heat exchangers 4 operated according to the first operating mode makes it possible to treat a higher flow rate of the gas flow loaded with carbon dioxide 2 and thus to increase the treatment capacity of the capture system 1.

[0132] When, according to this embodiment, two heat exchangers 4 are operated according to the first operating mode, the capture system 1 may comprise a flow sensor 94 upstream of the chamber 14 of each of the heat exchangers 4, for example in the vicinity of the seventh valve 44a of the control device 44 of each heat exchanger 4. Each flow sensor 94 makes it possible to measure the flow rate of gas loaded with carbon dioxide 2 passing through the chamber 14 of the heat exchangers 4 operated according to the first operating mode.

[0133] In addition, each eighth valve 44b of the control device 44 of each heat exchanger 4 can be a valve capable of varying a passage section of the decarbonized gas flow 3. Thus, the distribution of the flow rate of the gas flow loaded with carbon dioxide 2 is controlled between the two heat exchangers 4 operated according to the first operating mode.

[0134] Figures 4 to 6 illustrate one of the heat exchangers 4 which may be the first heat exchanger, the second heat exchanger or the third heat exchanger described previously. More specifically, Figures 4 to 6 illustrate a chronological order of the different configurations associated with said heat exchanger 4 in order to detail how the emptying of the second pass 12b takes place.

[0135] In Figure 4, the heat exchanger 4 is operated according to the first operating mode, as is the case for the second heat exchanger 4b illustrated in Figures 2 and 3 or for the third heat exchanger 4c illustrated in Figure 3.

[0136] The heat exchanger 4 illustrated in Figure 4 is capturing carbon dioxide present within the carbon dioxide-laden gas stream 2. The first valve 42a and the second valve 42b are therefore open to allow the flow of the decarbonized gas stream 3 within the first pass 12a. The third valve 40a and the fourth valve 40b are also open to allow the flow of the liquefied natural gas stream 30 within the second pass 12b. The seventh valve 44a and the eighth valve 44b are open to allow the carbon dioxide-laden gas stream 2 to pass through the chamber 14 and exit the chamber 14 in the form of the decarbonized gas stream 3, the carbon dioxide having been captured in the chamber 14 by desublimation.

[0137] With the first operating mode in operation, there is no liquid carbon dioxide circulating within the recovery branch 31. The recovery valve 19 is therefore closed. The drain valve 25 is closed to prevent the flow of liquefied natural gas 30 from escaping via the drain line 23.

[0138] From a given time, the implementation of the first operating mode is stopped. The circulation of the decarbonized gas flow 3 and the liquefied natural gas flow 30 within the passes 12 are therefore also stopped. A fraction of liquefied natural gas may therefore remain within the second pass 12b. In order to evacuate this fraction of liquefied natural gas following the implementation of the first operating mode, a draining operation is initiated before implementing the second operating mode.

[0139] The configuration of the heat exchanger 4 during the draining operation is illustrated in FIG. 5. At the end of the operation of the first operating mode, the first valve 42a, the second valve 42b, the third valve 40a, the fourth valve 40b, the seventh valve 44a and the eighth valve 44b are closed.

[0140] Then, the drain valve 25 is opened. The fraction of liquefied natural gas or any other refrigerant fluid stagnating in the second pass 12b then circulates within the drain line 23 to the liquefied natural gas treatment device 27 in order to be evacuated from the heat exchanger. The circulation of the fraction of liquefied natural gas within the drain line 23 can for example be done by means of a pressure differential as mentioned previously.

[0141] The draining operation continues until the liquefied natural gas is completely evacuated. Additionally, a purging operation may be carried out using a neutral gas such as nitrogen. Once the liquefied natural gas or any other refrigerant is evacuated from the second pass 12b, the draining operation is complete. The drain valve 25 is then closed and the second mode of operation may be implemented in order to merge the carbon dioxide captured in the chamber 14. The configuration relating to the second mode of operation is illustrated in FIG. 6 as is the case for the first heat exchanger 4a illustrated in FIGS. 2 and 3.

[0142] To implement the second mode of operation, the fifth valves 38a and sixth valves 38b are opened to allow the flow of gas loaded with carbon dioxide 2 to circulate within the first pass 12a and the second pass 12b of the heat exchanger 4. The temperature within the chamber 14 then increases, and the carbon dioxide is fused and passes into the liquid state. The carbon dioxide in the liquid state then circulates within the recovery branch 31.

[0143] The fraction of liquefied natural gas having been previously evacuated from the second pass 12b, the flow of gas loaded with carbon dioxide 2 then circulates within the second pass 12b without carrying said fraction of liquefied natural gas.

[0144] Of course, the invention is not limited to the examples which have just been described and numerous adjustments can be made to these examples without departing from the scope of the invention.

[0145] The invention, as just described, achieves the aim it set itself, and makes it possible to propose a capture system comprising at least two heat exchangers capable of being operated according to a first operating mode where the carbon dioxide is captured and according to a second operating mode where the captured carbon dioxide is merged, and further comprising a draining device capable of eliminating any stagnant fluid within passes of said heat exchangers. Variants not described here could be implemented without departing from the context of the invention, provided that, in accordance with the invention, they comprise a capture system in accordance with the invention.

Claims

CLAIMS 1- System for capturing (1) carbon dioxide within gas loaded with carbon dioxide, comprising at least a first heat exchanger (4a) and a second heat exchanger (4b), each of the heat exchangers (4) comprising at least one chamber (14), a first pass (12a) and a second pass (12b) which both extend into the chamber (14),the first heat exchanger (4a) and the second heat exchanger (4b) being configured to be operated according to a first operating mode where the chamber (14) is configured to be crossed by a flow of gas loaded with carbon dioxide (2) and to capture by desublimation the carbon dioxide present in said flow of gas loaded with carbon dioxide (2) in order to generate a flow of decarbonized gas (3) and according to a second operating mode where the first pass (12a) and / or the second pass (12b) are crossed by a flow of gas loaded with carbon dioxide (2) to merge the carbon dioxide captured in the chamber (14), the capture system (1) comprising control means (5) configured to operate an alternation between the first operating mode and the second operating mode,characterized in that the capture system (1) comprises at least one draining device (21) hydraulically connected to the first pass (12a) and / or to the second pass (12b) of at least one of the heat exchangers (4), the draining device (21) being configured to discharge a fluid from the first pass (12a) and / or from the second pass (12b), the control means (5) being configured to actuate the draining device (21) during a transition from the first operating mode to the second operating mode., 2- Capture system (1) according to claim 1, wherein the draining device (21) comprises a drain line (23) hydraulically connected to the first pass (12a) and / or to the second pass (12b) of at least one of the heat exchangers (4) and a drain valve (25), the control means (5) being configured to actuate the drain valve (25). 3- Capture system (1) according to claim 1 or 2, in which the fluid discharged by the draining device (21) is liquefied natural gas or another refrigerant. 4- Capture system (1) according to the preceding claim, in which the draining device (21) is hydraulically connected to a device for treating liquefied natural gas (27) or another refrigerant fluid. 5- Capture system (1) according to any one of the preceding claims, in which the control means (5) comprise at least one management member (42) configured to regulate a circulation of a first cooling fluid which circulates within one or other of the passes (12) of one or other of the heat exchangers (4). 6- Capture system (1) according to the preceding claim, in which the management member (42) comprises at least one first valve (42a) arranged upstream of one or other of the passes (12) of one or other of the heat exchangers (4) and / or at least one second valve (42b) arranged downstream of one or other of the passes (12) of one or other of the heat exchangers (4). 7- Capture system (1) according to any one of the preceding claims, in which the control means (5) comprise at least one management device (40) configured to regulate a circulation of a second cooling fluid which circulates within one or other of the passes (12) of one or other of the heat exchangers (4). 8- Capture system (1) according to the preceding claim, in which the management device (40) comprises at least one third valve (40a) arranged upstream of one or other of the passes (12) of one or other of the heat exchangers (4) and / or at least one fourth valve (40b) arranged downstream of one or other of the passes (12) of one or other of the heat exchangers (4). 9- Capture system (1) according to any one of the preceding claims, in which the control means (5) comprise at least one control member (38) configured to regulate the circulation of the flow of gas loaded with carbon dioxide (2) within one and / or the other of the passes (12) of one or the other of the heat exchangers (4). 10- Capture system (1) according to the preceding claim, in which the control member (38) comprises at least one fifth valve (38a) arranged upstream of one or other of the passes (12) of one or other of the heat exchangers (4) and / or at least one sixth valve (38b) arranged downstream of one or other of the passes (12) of one or other of the heat exchangers (4). 11- Capture system (1) according to any one of the preceding claims, in which the control means (5) comprise at least one control device (44) configured to regulate the circulation of the flow of gas loaded with carbon dioxide (2) which circulates through one or other of the heat exchangers (4) around one or other of its passes (12). 12- Capture system (1) according to the preceding claim, characterized in that the control device (44) comprises at least one seventh valve (44a) arranged upstream of the chamber (14) of one or other of the heat exchangers (4) and / or at least one eighth valve (44b) arranged downstream of the chamber (14) of one or other of the heat exchangers (4). 13- Capture system (1) according to any one of the preceding claims, comprising a third heat exchanger (4c) configured to be operated according to the first operating mode and according to the second operating mode, the control means (5) being configured to operate an alternation between the first operating mode and the second operating mode on the third heat exchanger (4c), at least one draining device (21) being hydraulically connected to the first pass (12a) and / or to the second pass (12b) of the third heat exchanger (4c), the draining device (21) being configured to discharge a fluid from the first pass (12a) and / or from the second pass (12b), the control means (5) being configured to actuate the draining device (21) during a transition from the first operating mode to the second operating mode. 14- Capture system (1) according to any one of claims 2 to 13, in combination with claim 2, configured to maintain the drain valve (25) closed when the first heat exchanger (4a) and / or the second heat exchanger (4b) are operated according to the first operating mode and / or according to the second operating mode. 15- Capture system (1) according to any one of claims 2 to 14, in combination with claim 2, configured to open the drain valve (25) after the end of the operation of the first operating mode and before the start of the operation of the second operating mode. 16- Method for capturing carbon dioxide within a flow of gas loaded with carbon dioxide (2) implemented by a system (1) for capturing carbon dioxide within gas loaded with carbon dioxide according to any one of the preceding claims, during which: the first operating mode of at least one of the heat exchangers (4) is operated in order to desublimate the carbon dioxide present within the flow of gas loaded with carbon dioxide (2) and passing through the chamber (14) of said heat exchanger (4);interrupting the operation of the first operating mode of said heat exchanger (4), initiating a draining operation by actuating the draining device (21) to evacuate any fluid present in the first pass (12a) and / or in the second pass (12b) of said heat exchanger (4), when the fluid is completely evacuated, operating the second operating mode of said heat exchanger (4) in order to merge the desublimated carbon dioxide in the chamber (14).; 17- Capture method according to the preceding claim, implemented on a capture system (1) according to any one of claims 2 to 15 in combination with claim 2, during which the drain valve (25) is closed during the operation of the first operating mode and the second operating mode. 18- Capture method according to the preceding claim, during which the drain valve (25) is open during a transition period subsequent to the operation of the first operating mode, said transition period being of a duration of 300 seconds. 19- Capture method according to the preceding claim, during which the transition period is prior to the operation of the second operating mode. 20- A capture method according to any one of claims 16 to 19, in combination with claims 6, 8, 10 and 12, wherein the first valve (42a), the second valve (42b), the third valve (40a), the fourth valve (40b), the fifth valve (38a), the sixth valve (38b), the seventh valve (44a) and the eighth valve (44b) are closed during the emptying operation.