Combination of a rotatable pre-drying unit with co2 extraction
Patent Information
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- EVERLLENCE SE
- Filing Date
- 2024-07-25
- Publication Date
- 2026-06-03
AI Technical Summary
Current carbon dioxide extraction technologies face inefficiencies due to material degradation at high temperatures and the need for complex and energy-intensive preliminary drying processes, particularly in varying climatic conditions and regions, which limits their application and operational costs.
A rotatable preliminary drying unit with a sorption wheel or sorption heat exchanger using axially rotating sorption agents, such as silicail and zeolith, that radially contacts the gaseous medium to efficiently adsorb and desorb water, reducing energy requirements and extending material lifespan.
This solution enhances the efficiency and cost-effectiveness of carbon dioxide extraction by minimizing energy consumption and extending the operational lifespan of sorption agents, allowing for effective carbon dioxide capture across different climatic conditions without the need for complex drying processes.
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Figure EP2024071135_30012025_PF_FP_ABST
Abstract
Description
[0001] Description
[0002] “Combination of a rotatable pre-drying unit with CO2 recovery”
[0003] The invention relates to a device for obtaining carbon dioxide from a gaseous medium, a method for obtaining carbon dioxide from a gaseous medium, and the use of the device and the method for obtaining carbon dioxide.
[0004] Carbon dioxide emissions into the atmosphere are currently considered a major driver of climate change. Carbon capture and storage (CCS) technologies are efficient and effective methods for reducing carbon dioxide emissions into the atmosphere.
[0005] Known methods for capturing carbon dioxide include absorption, adsorption, membrane-based systems, electrochemical separation and cryogenic separation.
[0006] One technical application for capturing carbon dioxide is the Direct Air Capture (DAC) process. This involves extracting carbon dioxide from the ambient air using a separator. This allows pure carbon dioxide to be obtained, which can then be used in further processes.
[0007] WO2016 / 005226A1, WO2015 / 185434A1, and WO2014 / 170184A1 describe exemplary processes for recovering carbon dioxide using a chemisorbent following a temperature-vacuum cycling process. Amine-based chemisorbents are often prone to aging and degradation when the material comes into contact with oxygen at temperatures above approximately 60°C. This can occur during the desorption phase at temperatures around 100°C if countermeasures are not taken, such as creating an inert atmosphere in the system using steam or other gases. These protective measures are complex and expensive. During desorption, steam is introduced to displace the residual oxygen, thus preventing damage to the material through degradation.Before the system returns to the adsorption phase (i.e., the absorption of CO2) after the desorption phase, by bringing the sorbent material into contact with air, it is cooled to approximately 50 °C. This represents an additional process step, which can reduce the system's time and energy efficiency.
[0008] Physisorbents generally have a greater affinity for water than for CO2. For this reason, such systems incorporate a pre-drying device to dry the air. This pre-drying process is structurally and energy-intensive.
[0009] WO2022 / 109746A1 describes a process for the recovery of carbon dioxide using physisorbents in polar (cold, dry) regions, since these materials preferentially absorb water from the ambient air.
[0010] When using physisorbents, there is an approach to limit the application of such a system to polar regions of the Earth, because the air there contains less water due to the low temperatures compared to temperate, subtropical, or tropical climate zones. However, technical pre-drying cannot be completely dispensed with, because it cannot be guaranteed that a consistent level of humidity will be maintained throughout the year.
[0011] The dew point temperature is, for example, -40 or -60 °C. Furthermore, the cost of installing and operating a system in polar regions is enormous compared to developed regions of the world.
[0012] Knox et al., Investigation of Desiccants and CO2 Sorbents for Exploration Systems 2016-2017, ICES-2017-188, disclose the use of physisorbents to separate CO2 from the cabin air of spacecraft and space stations. This approach uses a so-called four-bed molecular sieve approach, which involves interconnecting modules for pre-drying the cabin air and for CO2 separation.
[0013] EP1142623A2 discloses a temperature-vacuum cycling process for isolating carbon dioxide from a moist hot gas mixture.
[0014] US2010251887A1 describes a process for isolating carbon dioxide from a gas mixture comprising a temperature swing adsorption step.
[0015] WO2014 / 012966A1 discloses a device for an adsorption-desorption alternating reaction.
[0016] The object of the present invention is to provide a device for obtaining carbon dioxide from a gaseous medium, as well as a method for obtaining carbon dioxide from a gaseous medium, which at least partially overcomes the above-mentioned disadvantages.
[0017] This object is achieved by the device according to the invention according to claim 1, the method according to claim 8 and the use according to claim 10.
[0018] Further advantageous embodiments of the invention emerge from the subclaims and the following description of preferred embodiments of the present invention.
[0019] A device according to the invention for obtaining carbon dioxide from a gaseous medium comprises:
[0020] - a first air flow channel for the gaseous medium,
[0021] - a second air flow channel for exhaust air from the device,
[0022] - at least one rotatable pre-drying unit comprising at least one sorbent for the physisorption of water, wherein the at least one rotatable pre-drying unit can be driven in an axially rotating manner and the first air flow channel radially controls the at least one rotatable pre-drying unit.
[0023] The gaseous medium can be the atmosphere, ambient air, exhaust gases, e.g., from industrial plants, gas mixtures, point sources, etc. The gaseous medium includes, among other things, carbon dioxide (CO2). In a preferred embodiment, the gaseous medium is ambient air, also referred to herein as air.
[0024] The device according to the invention has a first air flow channel for the gaseous medium. The gaseous medium supplied in the first air flow channel can be process air.
[0025] The device according to the invention also has a second air flow channel for the device's exhaust air. The exhaust air is preferably a moist gaseous medium from which carbon dioxide has been removed.
[0026] Furthermore, a device according to the invention comprises at least one rotatable pre-drying unit comprising at least one sorbent for the physical absorption of water, wherein the at least one rotatable pre-drying unit can be driven axially and the first air flow channel radially controls the at least one rotatable pre-drying unit. Rotatable in the sense of the present invention means that the pre-drying unit is installed such that it can rotate about its own axis and preferably rotates about its own axis during operation.
[0027] The rotating pre-drying unit is preferably a sorption wheel or a sorption heat exchanger. A sorption wheel is a wheel-shaped component coated on the outside with a sorption agent. The sorption wheel or sorption heat exchanger can rotate and be exposed to a gaseous medium, from which a specific substance can be sorbed by means of the sorption agent on the rotating pre-drying unit.
[0028] A device according to the invention can comprise a rotatable pre-drying unit. Alternatively, a device according to the invention can comprise at least two rotatable pre-drying units. If at least two rotatable pre-drying units are present, they can be arranged in parallel and / or in series.
[0029] The at least one rotatable pre-drying unit can be driven axially, i.e., it rotates around its own axis. The first air flow channel controls the at least one rotatable pre-drying unit radially. The flow direction of the gaseous medium is thus radial.
[0030] The sorbent for the physisorption of water is preferably arranged on the circumferential surface of the rotatable pre-drying unit so that the first air flow channel directly controls the sorbent and the gaseous medium flowing through the first air flow channel comes into direct contact with the sorbent.
[0031] As the rotating pre-drying unit rotates, part of the rotating pre-drying unit comes into contact with the gaseous medium, and the sorbent on that part of the rotating pre-drying unit can at least partially absorb the moisture, i.e., the water in the gaseous medium. As the unit rotates, the rotating pre-drying unit continues to move, and the moisture-covered portion of the sorbent can move to an area, the regeneration side, where the sorbent can be dried. The sorbent can be dried by supplying regeneration air. As the unit continues to rotate, the dried sorbent can be reused to dry the gaseous medium. Pre-dried gaseous medium can thus exit the rotating pre-drying unit.
[0032] The flow direction of the process and regeneration air is particularly radial.
[0033] The part of the rotatable pre-drying unit that comes into contact with the gaseous medium may be up to 50% of the circumferential area of the rotatable pre-drying unit, preferably up to 30% of the circumferential area of the rotatable pre-drying unit, more preferably up to 25% of the circumferential area of the rotatable pre-drying unit.
[0034] This flow direction arrangement is advantageous because the outer radial area of the circumferential surface on the drying side has a higher water partial pressure, allowing the adsorption of moisture, i.e., the water in the gaseous medium, to function effectively at lower flow velocities. As the radius decreases, the water partial pressure decreases due to the progressive water adsorption. At the same time, the flow velocity increases, supporting the adsorption kinetics and thus achieving a good drying effect even at lower water partial pressures.
[0035] A device according to the invention can have at least one preconditioning unit. A preconditioning unit is a component by means of which the gaseous medium can be supplied in a suitable form to the further component(s), such as the at least one rotatable pre-drying unit. A preconditioning unit can, for example, cool or heat the gaseous medium to a defined temperature. A preconditioning unit can compress or expand the gaseous medium using pressure in addition to, or alternatively to, adjusting the temperature.
[0036] By using a preconditioning unit, a device according to the invention can also be used for different climatic conditions (e.g. higher W contents in the ambient air at higher temperature and / or air humidity).
[0037] In one embodiment, a device according to the invention comprises at least one drying unit and at least one CO2 unit.
[0038] In the drying unit, the pre-dried gaseous medium can be dried to a specific moisture content. The drying unit preferably has at least one suitable material by means of which the moisture content can be adjusted. The material can be distributed homogeneously in the drying unit. Alternatively, the material can also be distributed in layers within the drying unit. In particular, with a layered structure of the drying unit, the drying unit can have a drying gradient. A first layer can therefore lead to an initial drying down to a specific moisture content. In the further layer of the drying unit, further drying down to a specific moisture content can take place. A drying unit can have any number of layers. Ideally, the layers are coordinated with one another.
[0039] The drying unit preferably adsorbs 99.0% (corresponds to dew point -40 °C after drying unit), more preferably 99.7% (dew point -50 °C), even more preferably 99.9% (dew point -60 °C) of the amount of H2O present in the gaseous medium.
[0040] The drying unit can comprise at least four modules, wherein at least one module of the drying unit is a desorption module, at least two modules of the drying unit are heat transfer modules, and at least one module of the drying unit is an adsorption module. Each module of the drying unit can be constructed separately with the appropriate material for drying. Preferably, all modules of the drying unit are constructed identically with the appropriate material(s).
[0041] The number of modules in the drying unit can be a multiple of the stated number of individual modules.
[0042] A desorption module is a structural unit that can desorb and, preferably, also adsorb a substance. The substance can be H2O. After desorbing the substance, the desorption module can be used, for example, as an adsorption module and / or as a heat transfer module.
[0043] An adsorption module is a structural unit that can adsorb and, preferably, also desorb a substance. The substance can be H2O. After adsorbing the substance, the adsorption module can be used, for example, as a desorption module and / or as a heat transfer module.
[0044] A heat transfer module is a structural unit that can absorb or dissipate heat. Depending on the phase of the process the heat transfer module is in, the module can absorb or dissipate heat. In the heat transfer phase before the desorption phase, the module can absorb heat (from another module that is in the heat transfer phase and is releasing heat). For example, a heat transfer module can be a former adsorption module. The adsorption of a substance in an adsorption module can simultaneously lead to an accumulation of heat, i.e. an increase in temperature in the adsorption module. The heat is preferably dissipated in order to ideally be used in another module, for example by desorbing an adsorbed substance using the supplied heat. Heat transfer can occur, for example, through flowing air.
[0045] The drying unit may comprise at least four modules. In alternative embodiments, the drying unit may also comprise more than four modules. The number of modules is preferably determined by ensuring a constant mass flow through the device.
[0046] The number of heat transfer modules of the drying unit can be equal to the sum of the desorption modules of the drying unit and the adsorption modules of the drying unit. For example, the number of modules can be expressed as follows:
[0047] Number of drying modules = x desorption modules + y adsorption modules + z heat transfer modules, where z=2, or an integer multiple of 2.
[0048] There can be two drying modules in the heat shift, with one module sending heat and one module receiving heat.
[0049] The drying unit can be designed independently of the CO2 unit.
[0050] A device according to the invention can further comprise at least one CO2 unit. A CO2 unit can adsorb a certain amount of carbon dioxide. The CO2 unit preferably comprises at least one material that can adsorb carbon dioxide.
[0051] The CO2 unit preferably adsorbs 80%, more preferably 90%, even more preferably 99%, of the amount of carbon dioxide present in the gaseous medium. The CO2 unit can comprise at least one adsorption module and at least one desorption module. The CO2 unit can also have a module that can alternately serve as an adsorption module and a desorption module. Depending on the process stage, the CO2 unit can preferably adsorb CO2 or desorb CO2 and be designed accordingly.
[0052] The CC>2 unit may further comprise at least one heat displacement module.
[0053] Preferably, depending on the process stage, the module of the CO2 unit can adsorb CO2 or desorb CO2 and shift heat and thus be designed accordingly.
[0054] The device contains a specific number of modules in the drying unit and modules in the CO2 unit, which can be operated independently of each other in the main operating phases of "adsorption" and "desorption." This allows the drying unit and the CO2 unit to be operated individually in an optimized manner. This system is referred to as a "decoupled system." The air mass flow through the device is preferably constant, so that exactly as many modules in the drying unit are operated in the adsorption phase as are required for CO2 adsorption in the modules of the CO2 unit to create the required dew point temperature condition at the inlet of the CO2 unit.
[0055] In one embodiment, the second air flow channel radially controls the rotatable pre-drying unit. In such an embodiment, the first air flow channel and the second air flow channel run parallel. The exhaust air supplied to the rotatable pre-drying unit through the second air flow channel can thus absorb moisture, i.e., water, and dry the sorbent.
[0056] The rotatable pre-drying unit may comprise some type of sorbent for physisorption of water.
[0057] In one embodiment, the rotatable pre-drying unit can comprise at least two types of sorbents for the physisorption of water. The at least one sorbent for the physisorption of water can be selected from the group consisting of zeolite, graphite, aluminosilicate, MOF (metal organic framework), or silica gel.
[0058] Preferably, the at least one sorbent is a silica gel. Alternatively, the at least one sorbent is zeolite.
[0059] If at least two sorbents are present, they can be a combination of silica gel and zeolite. The combination of sorbents can be arranged in layers. Preferably, one sorbent can provide coarse drying of the gaseous medium, and the second sorbent can provide fine drying of the gaseous medium.
[0060] A specific coating pattern can also be applied to the arrangement of the radial air duct. A sorbent for coarse drying (e.g., silica gel) is advantageous in the outer radial area, while a sorbent for fine drying (e.g., zeolite) is advantageous in the inner radial area.
[0061] A combination of at least two sorbents, i.e., at least two coatings of the rotatable pre-drying unit, is advantageous because it can dry the gaseous medium to an even lower dew point compared to a rotatable pre-drying unit with only one type of sorbent coating. The distribution between the first and second coatings is preferably in a ratio of 70% / 30% to 90% / 10%, more preferably in the range of 75% / 25% to 80% / 20%.
[0062] A device according to the invention may further comprise at least one intercooler.
[0063] Preferably, an intercooler is arranged downstream of the drying unit. An intercooler can also be arranged upstream of the CO2 unit. In one possible variant, an intercooler is arranged between the drying unit and the CO2 unit.
[0064] An intercooler preferably cools the incoming (gaseous) medium to a defined temperature. The temperature is preferably <15°C, more preferably <10°C, and even more preferably <6°C. The incoming (gaseous) medium is particularly preferably cooled to a temperature of 5°C. Additional and / or larger air conditioning units downstream of the drying unit could achieve even lower temperatures (e.g., to -20 to -40°C).
[0065] A device according to the invention can have at least one heat exchanger unit. The heat exchanger unit can be used, in particular, for heat recovery. By using a heat exchanger unit, the energy required by external energy sources can be reduced, thus increasing the energy efficiency of the device.
[0066] The heat recovered by the heat exchanger unit can be used, for example, for the desorption of H2O from the drying unit and / or carbon dioxide from the CO2 unit.
[0067] The energy requirement of the device according to the invention can be further reduced by using at least one heat pump. The heat pump can generate the energy for desorption in the drying unit and / or the CO2 unit. The cold exhaust air from the heat pump can be used for cooling, for example, in the rotating pre-drying unit and / or the intercooler.
[0068] A device according to the invention can further comprise at least one blower device. The blower can serve to guide the gaseous medium through the device. The blower can be arranged on the inlet side and / or the outlet side of the device. If the blower is arranged on the inlet side, the gaseous medium is forced into the device (for example, into the rotating drying unit). If the blower is arranged on the outlet side of the device, the suction created by the blower draws the gaseous medium through the device.
[0069] There may be multiple blower devices or just one blower device.
[0070] To keep the design as simple as possible, you can try to do without multiple fans and adjust the air flow distribution using variable throttles, as long as the additional pressure loss is acceptable.
[0071] The at least one drying unit and / or the at least one CO2 unit can also comprise at least one physisorbent or at least one sorbent. A physisorbent is a compound that can bind a substance (e.g., a gas such as carbon dioxide) to itself through physical forces. Ideally, a physisorbent desorbs the adsorbed substance under controlled conditions. This can be achieved, for example, by applying heat, pressure, the addition of other substances with the release of the first adsorbed substance, etc.
[0072] The physisorbents used are preferably robust, age-resistant, and commercially available on a large scale. Compared to chemisorbents, there are generally no signs of aging or degradation within the temperature range used.
[0073] The physisorbent can be a homogeneous substance or a mixture. Preferably, the at least one physisorbent is a solid. The at least one physisorbent can be selected from the group consisting of silica gel, zeolite, aluminosilicate, and MOF (metal organic framework).
[0074] The drying unit preferably has a layered structure of physisorbents. In one embodiment, the drying unit has at least one layer of silica gel and at least one layer of zeolite. The at least one layer of silica gel is preferably arranged in the inlet area of the drying unit so that the silica gel can perform an initial drying process. The medium thus dried is then passed through the at least one zeolite layer so that further drying of the medium can take place.
[0075] Alternatively, the drying unit comprises at least one layer of silica gel and at least two layers of zeolite. A layer of zeolite, a so-called protective layer, can be arranged in the inlet area of the drying unit. The protective layer can serve to remove impurities from the gaseous medium, thus protecting the subsequent layers. At least one layer of silica gel can be arranged on the protective layer so that the silica gel can carry out an initial drying process. The thus partially dried medium is then passed through the at least one zeolite layer, so that further drying of the partially dried medium can take place.
[0076] The ratio of the first layer (e.g. silica gel) and the second layer (e.g. zeolite) may be in the range between 1.5 and 3.5, preferably in the range between 2.0 and 3.0, more preferably in the range between 2.3 and 2.5.
[0077] Ideally, the sorbent(s) of the rotatable pre-drying unit are matched to the physisorbent(s) of the drying unit. A device according to the invention can be operated at a CO2 partial pressure in the range of approximately 380 to 480 ppm, preferably in the range of 400 to 450 ppm, and particularly preferably 420 ppm. This results in a different ratio of CO2 and W partial pressure. For use under atmospheric conditions, an optimal design of the bed heights of the adsorption units can be advantageous.
[0078] Preferably, the drying is carried out such that the medium leaving the drying unit has a moisture content of 0.0196% to 0.007% (dew point -40 °C), preferably of 0.007% to 0.0022% (dew point -50 °C), more preferably of 0.0022% to 0.0006% (dew point -60 °C).
[0079] The CC>2 unit can also have a layered or homogeneous structure of physisorbent(s). Preferably, the CO2 unit has a homogeneous structure of physisorbent(s). The physisorbent can be zeolite. The physisorbents can also be a mixture of at least two different zeolites.
[0080] The CC>2 unit preferably comprises at least two modules. The modules can each have an identical or different structure. In a preferred embodiment, each module comprises zeolite as a physisorbent; in particular, all modules are identically constructed.
[0081] The bed heights or layer thicknesses in the drying unit and the CO2 unit can also have a specific ratio. The ratio can be in the range from 1.2 to 2.5, preferably in the range from 1.5 to 2.0, and more preferably in the range from 1.7 to 1.9. The ratio of the bed heights or layer thicknesses in the drying unit and the CO2 unit is particularly preferably 1.8.
[0082] Furthermore, the present invention relates to a process for the production of carbon dioxide, comprising the steps:
[0083] - Providing a gaseous medium in a first air flow channel,
[0084] - Pre-drying of the gaseous medium in a rotating pre-drying unit,
[0085] - drying the pre-dried gaseous medium in at least one drying unit,
[0086] - Adsorbing CO2 from the dried gaseous medium in a CO2 unit and simultaneously recovering CO2 by desorbing CO2 in a CO2 unit, wherein the rotating pre-drying unit rotates axially and the first air flow channel controls the rotating pre-drying unit radially.
[0087] Preferably, a method according to the invention is carried out in a device according to the invention. The features of the device should also be applicable to the method.
[0088] To carry out a method according to the invention, one device can be used. Alternatively, at least two devices can be used. The devices can be arranged in parallel.
[0089] As already mentioned above, the gaseous medium can be the atmosphere, ambient air, exhaust gases, e.g., from industrial plants, gas mixtures, point sources, etc. The gaseous medium includes, among other things, carbon dioxide. Preferably, the gaseous medium is ambient air, which is also referred to herein as air.
[0090] One step of the method according to the invention is the pre-drying of the gaseous medium, which is provided in a first air flow channel, in a rotating pre-drying unit. The gaseous medium flows radially against the axially rotating pre-drying unit.
[0091] The pre-drying is preferably carried out to a moisture content of the gaseous medium of 0.5 mass%, more preferably 0.25 mass%, even more preferably 0.1 mass%.
[0092] The rotating pre-drying unit can be a sorption wheel or a sorption heat exchanger. A sorption wheel is a wheel-shaped component coated on the outside with a sorption agent. The sorption wheel or sorption heat exchanger can rotate and be subjected to a medium flow from which a specific substance can be sorbed using the sorption agent.
[0093] In one embodiment, the rotating pre-drying unit comprises at least one sorbent for adsorbing water. The sorbent may be any of the sorbents mentioned herein. It may be one sorbent or a combination of at least two sorbents. In one embodiment, the at least one sorbent is a combination of two sorbents. The two sorbents may be a first layer of silica gel and a second layer of zeolite.
[0094] A method according to the invention further comprises the step of drying the pre-dried gaseous medium in a drying unit. The drying unit can comprise several modules, as described herein for the device.
[0095] The modules of the drying unit can be in different operating states, whereby H2O is adsorbed in at least one module of the drying unit, H2O is desorbed in at least one module of the drying unit, and heat is dissipated in at least two modules of the drying unit.
[0096] The number of modules in the drying unit in the individual operating states can be a multiple of the stated number of individual modules.
[0097] The drying unit can also have more than four modules. The modules can be in the operating modes of H2O adsorption, H2O desorption, and heat transfer. The ratio of the individual operating modes can be distributed among the individual modules as follows:
[0098] Number of drying modules = x desorption modules + y adsorption modules + z heat transfer modules, where z=2, or an integer multiple of 2.
[0099] Drying can be carried out using at least one suitable material by means of which the moisture content can be adjusted. The material can be present as a homogeneous material. Alternatively, the material can also be present in layers. In particular, when present in layers, a drying gradient can be present. A first layer can therefore lead to an initial drying down to a certain moisture content. In the further layer, further drying down to a certain moisture content can take place. Any number of layers can be present. Ideally, the layers are coordinated with one another. The layer(s) can be at least one physisorbent as described herein. During drying, preferably 99.0%, more preferably 99.7%, even more preferably 99.9% of the amount of H2O present in the gaseous medium can be adsorbed.
[0100] Preferably, the gaseous medium is conditioned before drying. Conditioning is used, in particular, to supply the gaseous medium to the process at an appropriate temperature and / or pressure.
[0101] In one embodiment, a method according to the invention comprises cooling the gaseous medium prior to adsorbing the CO2. Cooling of the gaseous medium can be achieved by an intercooler. Alternatively, other components for controlling the temperature of the gaseous medium are also conceivable. For example, this can be an air-water heat exchanger, an air-air heat exchanger, and / or an air-air-air heat exchanger.
[0102] The incoming gaseous medium is preferably cooled to a defined temperature. The temperature is preferably <15°C, more preferably <10°C, and even more preferably <6°C. The incoming gaseous medium is preferably cooled to a temperature of 5°C.
[0103] A method according to the invention may comprise the step of heat recovery as described above.
[0104] The energy requirement of a process according to the invention can be reduced by using at least one heat pump as described above.
[0105] In one embodiment, a method according to the invention comprises the step of transporting the gaseous medium by means of a blower. The blower can correspond to the blower of a device according to the invention.
[0106] The blower can serve to guide the gaseous medium through the device. The blower can be arranged on the inlet side and / or the outlet side of the device. If the blower is arranged on the inlet side, the gaseous medium is forced into the device (for example, into the preconditioning unit). If the blower is arranged on the outlet side of the device, the suction created by the blower draws the gaseous medium through the device. In a method according to the invention, the adsorbed CO2 is preferably desorbed by heating and under vacuum. The unit in which the CO2 is adsorbed is heated to a defined temperature. The heating releases the CO2 from the unit and can preferably be discharged with high purity.
[0107] In a process according to the invention, H2O is preferably adsorbed simultaneously in at least one module in the drying unit, while H2O is desorbed in at least one other module of the drying unit. If CO2 is desorbed in at least one module of a CC>2 unit, CO2 is preferably adsorbed simultaneously in at least one other module of the CO2 unit.
[0108] The CO2 can preferably be discharged from the device or method at a purity of >80%, more preferably at a purity of >90%, and even more preferably at a purity of >95%. In some embodiments, the CO2 is discharged at a purity of >99%.
[0109] The adsorbed CO2 can be desorbed by heating to a temperature of >50°C, in particular >80°C, preferably >100°C, more preferably >120°C, and even more preferably >140°C. Preferably, in a process according to the invention, no steam is required for the desorption of the CO2. Preferably, the desorption of the CO2 takes place under vacuum at a pressure of 10 mbar absolute.
[0110] A method according to the invention may further comprise the step of cooling the gaseous medium prior to adsorbing the CO2. The cooling may be carried out by means of an intercooler as described herein.
[0111] A method and a device according to the invention can be used in a direct air capture process.
[0112] Furthermore, the present invention relates to the use of a device according to the invention or a method according to the invention for obtaining carbon dioxide from a gaseous medium.
[0113] The recovered carbon dioxide can be used as a starting material for other compounds. For example, the carbon dioxide can be used as a starting material for the production of plastics, e-fuels, etc. Furthermore, an air drying device of a DAC system is disclosed. Furthermore, a DAC system and a method for operating a DAC system are described.
[0114] DAC systems are used to extract carbon dioxide from ambient air. DAC stands for Direct Air Capture. To extract carbon dioxide from the ambient air, in DAC systems known from practice, the ambient air flows through a carbon dioxide extraction device, which extracts carbon dioxide from the ambient air. The extracted carbon dioxide can be used for various purposes.
[0115] The carbon dioxide extraction device of a DAC system, which is used to extract carbon dioxide from the ambient air, can be based on different mechanisms. For example, carbon dioxide extraction devices in DAC systems are known to be based on the principles of physical adsorption, chemical adsorption, electrochemical separation, membrane separation processes, or even cryogenic separation technology. Especially when the carbon dioxide extraction device of a DAC system is based on the principle of physical adsorption or cryogenic separation technology, i.e., uses a physisorbent (also called a molecular sieve) as the adsorbent, it is important that the ambient air is dried beforehand.Therefore, DAC plants whose carbon dioxide recovery device is based on the principle of physical adsorption have an air drying device to dry the ambient air before it is fed to the carbon dioxide recovery device and thus before the carbon dioxide is recovered.
[0116] Various methods are known in practice for drying ambient air. For example, water or water vapor can be condensed from the ambient air by cooling it below the dew point temperature. Other air drying processes can utilize the principle of physisorption, i.e., to at least partially remove water from the air through physical adsorption.
[0117] In DAC systems known from practice, drying the ambient air is very energy-intensive. This is even the case when an air drying device is used to dry the ambient air, which uses the principle of physisorption to at least partially remove water from the ambient air. For example, in DAC systems known from practice, a great deal of energy is required to regenerate an adsorbent used for the physisorption of water, i.e., to enable desorption of the adsorbent.
[0118] From the article “Investigation of Desiccants and CO2 Sorbents for Exploration Systems 2016-2017, James C. Knox et al., 47 thInternational Conference on Environmental Systems, July 16-20, 2017, Charleston, South Carolina, USA (ICES-2017-188)" is a system for the at least partial removal of carbon dioxide from air for use in space travel. In this system, too, air from which carbon dioxide is to be at least partially removed is first dried and then passed through a carbon dioxide extraction device. Both the drying of the air and the separation of the carbon dioxide from the air are based on the principle of physisorption. The drying of the air is based on the use of a solid sorption bed in the so-called temperature swing process. This is very energy-intensive.
[0119] There is a need to reduce the energy required for drying the air in a DAC system in order to operate a DAC system, especially its air drying device, more efficiently.
[0120] Based on this, a novel air drying device of a DAC system, a DAC system with such an air drying device and a method for operating such a DAC system are described.
[0121] This object is achieved by an air drying device of a DAC system according to claim 1, by a DAC system according to claim 6 and by a method for operating a DAC system according to claim 10.
[0122] In a first embodiment, an air drying device of a DAC system is described herein, wherein the DAC system is configured to extract carbon dioxide from ambient air, comprising a first air flow channel for ambient air to be dried, from which carbon dioxide is to be extracted in a carbon dioxide extraction device of the DAC system, a second air flow channel for exhaust air from the carbon dioxide extraction device of the DAC system, and a rotating storage body carrying an adsorbent for the physisorption of water, wherein the rotating storage body is rotatably driven such that, as a result of its rotation, segments thereof are temporarily positioned in the first air flow channel and temporarily in the second air flow channel, in order to then, when positioned in the first air flow channel, absorb water from the ambient air to be dried by the adsorbent of the rotating storage body.and then, when positioned in the second air flow channel, to release water from the adsorbent of the rotating storage body to the exhaust air of the carbon dioxide recovery device of the DAC plant.
[0123] The air drying device of a DAC plant described herein has a first air flow channel for ambient air to be dried, from which carbon dioxide is to be extracted in a carbon dioxide extraction device of the DAC plant.
[0124] The air drying device of a DAC plant described herein further comprises a second air flow channel for exhaust air from the carbon dioxide recovery device of the DAC plant.
[0125] The air drying device of a DAC system described herein further comprises a rotating storage body which carries an adsorbent for the physisorption of water, wherein the rotating storage body can be driven in rotation such that, as a result of its rotation, segments thereof are temporarily positioned in the first air flow channel and temporarily in the second air flow channel in order to then, when positioned in the first air flow channel, absorb water from the ambient air to be dried by the adsorbent of the rotating storage body, and then, when positioned in the second air flow channel, release water from the adsorbent of the rotating storage body to the exhaust air of the carbon dioxide recovery device of the DAC system.
[0126] The air drying device of a DAC system described herein allows for particularly efficient drying of the ambient air, from which carbon dioxide is subsequently to be extracted. During air drying, little energy is required, particularly for the regeneration of the adsorbent used, which absorbs water from the ambient air to be dried via physisorption. The energy required during air drying, particularly for the regeneration or desorption of the adsorbent used, essentially corresponds to the kinetic energy required for the rotation of the rotating storage body. The ambient air, from which carbon dioxide is subsequently to be extracted, can be effectively dried with low energy expenditure.
[0127] A further embodiment of the air drying device as described herein is characterized in that the first air flow channel and the second air flow channel run parallel and are traversed by the respective air in opposite directions, a rotation axis of the storage body runs parallel to the longitudinal axes of the air flow channels running in the direction of flow through the two air flow channels.
[0128] A further embodiment of the air drying device, as described herein, is characterized by a third air flow channel, also for the exhaust air from the carbon dioxide recovery device of the DAC system, wherein the exhaust air from the carbon dioxide recovery device can be transferred from the third air flow channel into the second air flow channel, a heating device for heating the exhaust air from the carbon dioxide recovery device of the DAC system downstream of the third air flow channel and upstream of the second air flow channel, wherein the rotating storage body can be driven in rotation such that, as a result of its rotation, segments thereof are temporarily positioned in the first air flow channel, temporarily in the second air flow channel, and temporarily in the third air flow channel, in order to then, when positioned in the first air flow channel, absorb water from the ambient air to be dried by the adsorbent,When positioned in the second air flow channel, the adsorbent is released into the heated exhaust air of the carbon dioxide recovery device of the DAC system, and when positioned in the third air flow channel, the adsorbent is cooled via the exhaust air of the carbon dioxide recovery device of the DAC system.
[0129] Preferably, the air drying device of a DAC system described herein also has a third air flow channel for the exhaust air from the carbon dioxide recovery device of the DAC system, wherein the exhaust air from the carbon dioxide recovery device can be transferred from the third air flow channel to the second air flow channel. The air drying device described herein then further has a heating device for heating the exhaust air from the carbon dioxide recovery device of the DAC system downstream of the third air flow channel and upstream of the second air flow channel.The rotating storage body can be driven in such a way that, as a result of its rotation, segments thereof are temporarily positioned in the first air flow channel, temporarily in the second air flow channel and temporarily in the third air flow channel in order to then, when they are positioned in the first air flow channel, absorb water from the ambient air to be dried through the adsorbent, in order to then, when they are positioned in the second air flow channel, release water from the adsorbent to the heated exhaust air of the carbon dioxide extraction device of the DAC system, and in order to then, when they are positioned in the third air flow channel, cool them via the exhaust air of the carbon dioxide extraction device of the DAC system.This not only makes it possible to effectively dry the ambient air, but also to provide the carbon dioxide extraction device with dried air at a temperature level that allows effective extraction of carbon dioxide.
[0130] Preferably, the first air flow channel and the second air flow channel run parallel and are traversed by the respective air in opposite directions, with a rotation axis of the storage body running parallel to the longitudinal axes of the air flow channels, which extend in the flow direction of the two air flow channels. This allows for particularly efficient drying of the ambient air. The optionally present third air flow channel preferably runs parallel to the first and second air flow channels, and preferably has air flow through it in the same direction as the second air flow channel.
[0131] In a further embodiment of the air drying device described herein, the air drying device is characterized in that the storage body can be driven in rotation such that, as a result of its rotation, the segments thereof pass from the first air flow channel into the second air flow channel, from the second air flow channel into the third air flow channel and from the third air flow channel back into the first air flow channel.
[0132] The adsorbent for the physisorption of water is preferably a zeolite, silica gel, or graphite. This also allows for particularly efficient drying of the ambient air. This also allows for particularly efficient drying of the ambient air.
[0133] Furthermore, a DAC system for recovering carbon dioxide from ambient air is described herein, comprising a system for drying the ambient air from which carbon dioxide is to be recovered, a cooling device for cooling the dried ambient air, and a carbon dioxide recovery device for recovering the carbon dioxide from the dried and cooled ambient air, characterized in that the system for drying the ambient air comprises at least one air drying device as described herein.
[0134] The DAC system described herein for extracting carbon dioxide from ambient air comprises a system for drying the ambient air from which carbon dioxide is to be extracted, a cooling device for cooling the dried ambient air, and a carbon dioxide extraction device for extracting the carbon dioxide from the dried and cooled ambient air. The system for drying the ambient air comprises at least one air drying device described herein. The DAC system described herein can be operated effectively with low energy requirements for air drying.
[0135] In a further embodiment of the DAC system as described herein, the DAC system is characterized in that the system for drying the ambient air comprises a plurality of air drying devices connected in parallel, as described herein, wherein parallel-connected air drying devices each have an equal number of air flow channels.
[0136] In a further embodiment of the DAC system as described herein, the DAC system is characterized in that the system for drying the ambient air comprises a plurality of air drying devices connected in series, as described herein, wherein air drying devices connected in series each have an equal number and a different number of air flow channels.
[0137] In a further embodiment of the DAC plant as described herein, the DAC plant is characterized in that the carbon dioxide recovery device comprises an adsorbent for physisorption of the carbon dioxide, or is operated according to the principles of cryogenic gas separation.
[0138] Furthermore, a method for operating a DAC system is disclosed herein. In the method for operating a DAC system, ambient air and exhaust air from the carbon dioxide recovery device of the DAC system are conveyed through the at least one air drying device to dry the ambient air, while the storage body rotates.
[0139] Embodiments of the invention will now be described by way of example and with reference to the accompanying drawings, in which:
[0140] Fig. 1 schematically shows an embodiment of a rotatable pre-drying unit, Fig. 2 schematically shows an embodiment of a coating of a rotatable pre-drying unit,
[0141] Fig. 3 schematically shows an embodiment of a device for producing carbon dioxide, Fig. 4 schematically shows another embodiment of a device for producing carbon dioxide,
[0142] Fig. 5 shows schematically an embodiment of a process for the production of carbon dioxide.
[0143] Fig. 6 is a highly schematic representation of a first air drying device of a DAC system described herein,
[0144] Fig. 7 shows a possible embodiment of the air drying device of Fig. 6,
[0145] Fig. 8 is a schematic representation of a first DAC system described herein with air drying devices according to Figs. 6 and 7 described herein,
[0146] Fig. 9 is a schematic representation of a second DAC system described herein with air drying devices according to Figs. 6 and 7,
[0147] Fig. 10 is a highly schematic representation of a second air drying device of a DAC system described herein, and
[0148] Fig. 11 is a schematic representation of a third DAC system described herein with air drying devices according to Figs. 6 and 7 described herein and with air drying devices according to Fig. 10 described herein.
[0149] Figure 1 schematically shows an embodiment of a rotatable pre-drying unit 110. 101 represents the air inlet of process air on the drying side. The dry regeneration air 105 exits on the regeneration side of the rotatable pre-drying unit 110. The rotatable pre-drying unit 110 can rotate about the axis 103. The rotation axis of the rotatable pre-drying unit thus runs axially. The flow direction of the process and regeneration air 101 and 105 is radial. In the outer radial region on the drying side, there is a higher water partial pressure, and thus the adsorption of water functions well at lower flow velocities. As the radius decreases, the water partial pressure decreases due to the progressive water adsorption.At the same time, the flow velocity is increased, supporting the kinetics of adsorption and thus achieving a good drying effect even at lower water partial pressures. 104 represents the dried process air. 105 represents dry regeneration air. The rotatable pre-drying unit 110 can have at least one coating of at least one water sorbent on the outer surface exposed to the flow. 102 represents the moist exhaust air.
[0150] Alternatively, a specific coating pattern of sorbents can be used with this radial airflow arrangement. In the outer radial region, a sorbent for coarse drying is advantageous (e.g., silica gel), while in the inner radial region, a sorbent for fine drying is advantageous (e.g., zeolite).
[0151] The rotatable pre-drying unit, as shown in Figure 1, can be a sorption wheel or a sorption heat exchanger.
[0152] Figure 2 schematically shows an embodiment of a coating on the outer circumferential side of a rotatable pre-drying unit 210. The process air inlet is shown as 201. The air is guided through the rotatable pre-drying unit 210 and exits as dry process air 204. Dry regeneration air 205 enters the rotatable pre-drying unit 210 and exits as moist exhaust air 202. The rotatable pre-drying unit 210 rotates around the axis shown. 208 represents the coating with a first sorbent, which is particularly suitable for coarse pre-drying of the gaseous medium (e.g. air) at higher partial pressures (e.g. silica gel). 209 represents the coating with a second sorbent, which is particularly suitable for fine drying of the gaseous medium (e.g. air) at lower partial pressures (e.g. zeolite), "v" stands for the volume flow.This means that of the 100% of the volume flow used, 80% to a maximum of 100% is used for the regeneration of the pre-drying unit. The remaining portion is required for the desorption steps of the drying and CC>2 unit.
[0153] Such a coating pattern can be advantageous because it can dry the dry process air to an even lower dew point compared to a rotating
[0154] Pre-drying unit (e.g., a sorption heat exchanger) with only one type of coating. The distribution between the first and second coatings is preferably in a ratio of 70 / 30 to 90 / 10%.
[0155] The rotatable pre-drying unit, as shown in Figure 2, can be a sorption wheel or a sorption heat exchanger.
[0156] Figure 3 schematically shows an embodiment of a device for obtaining carbon dioxide 300. Pre-drying takes place by means of a rotatable pre-drying unit 310 (e.g., a sorption heat exchanger). Gaseous medium (e.g., air) 301 enters the rotatable pre-drying unit 310 radially and, in a pre-dried state, enters the drying unit 311 for fine drying. The drying unit 311 comprises eight modules. Four modules of the drying unit 311 are in adsorption mode (Ads), while four further modules are in desorption mode (Des). A portion of the finely dried gaseous medium enters an intercooler 312. The gaseous medium exiting the intercooler 312 is fed to the CO2 unit 313. The CO2 unit 313 comprises six modules, four of which are in adsorption mode (Ads) and two modules in desorption mode (Des).A portion of the medium exiting the CO2 unit 313 is recirculated to the rotatable pre-drying unit 310 by means of a fan 314. The recirculated medium can be used to dry the rotatable pre-drying unit 310, in particular the sorbent of the rotatable pre-drying unit 310. The exiting medium exits the rotatable pre-drying unit 310 as moist exhaust air 302. Another portion of the gaseous medium exiting the drying unit 311 is fed into heat exchanger units for heat recovery 315. The heat is released and can be used to desorb the CO2 from the modules of the CO2 unit 313. A portion of the gaseous medium can exit the CO2 unit 313 and enter the heat exchanger units for heat recovery 315. The heat can be used to desorb water from the corresponding modules of the drying unit 311.
[0157] Figure 4 schematically shows another embodiment of a device for recovering carbon dioxide 400. The recovery of carbon dioxide can be a direct air capture process (DAC process). The device based on physisorbents essentially comprises a rotatable pre-drying unit 410 consisting of one (or more parallel-arranged) sorption heat exchangers, a drying unit 411 for fine drying of the gaseous medium, such as air, an intercooler 412, a CO2 adsorption unit 413, several heat exchanger units 416 and 417 for heat recovery, and a suction-type fan 414a, b, c. The dry regeneration air 405 can be used for pre-drying the rotating pre-drying unit 410.
[0158] The system includes a specific number of drying modules in the drying unit 411 and CO2 modules in the CO2 unit 413, which operate independently of each other in the main operating phases "adsorption" (Ads) and "desorption" (Des). This allows the drying unit 411 and the CO2 unit 413 to be operated individually in an optimized manner. This system is referred to as a "decoupled system." The air mass flow through the system is constant, so that exactly as many drying modules are operated in the adsorption phase as are required for CO2 adsorption in the CO2 modules to create the required dew point temperature condition at the inlet of the CO2 unit 413.
[0159] The proposed system consists of 8 drying modules and 6 CO2 modules. Four modules each of the drying unit 411 and CO2 unit 413 are always in the adsorption phase (air drying and CO2 absorption). The number of modules is determined by the required process times of the drying and CO2 units (drying unit adsorption to desorption time 1:1; CO2 unit adsorption to desorption time 1:0.5). The total process time of a drying module is, for example, 4 hours (2 hours adsorption, 2 hours desorption), while the total process time of a CO2 module is, for example, 4.5 hours (3 hours adsorption, 1.5 hours desorption).
[0160] However, a different number of drying and CO2 modules can also be arranged in the system, as long as the total mass flow of the adsorption path through the system is constant and the desorption of the drying and CO2 modules is completed before the adsorption phases of the drying and CO2 modules have to be terminated.
[0161] The gaseous medium (e.g. the humid ambient air) 401 is passed through the rotatable pre-drying unit 410 (e.g. the sorption heat exchanger) on the supply air side. The water contained in the gaseous medium (e.g. in the air) is adsorbed on the sorption material (preferably silica gel or zeolite, or a combination of several sorption materials) and leaves the rotatable pre-drying unit 410 at an ambient humidity of 80% relative humidity and 5 °C with a temperature of 6 °C and a dew point of -10 °C. For the adsorption of CO2, e.g. on zeolites, the water content in the gaseous medium, e.g. process air, is too high at a dew point of -10 °C, since a zeolite preferentially adsorbs water instead of CO2. For this reason, the gaseous medium, e.g. B. the process air, is led to a drying unit 411 for fine drying of the gaseous medium, e.g. air, to a dew point of at least -50 °C, preferably -60 °C.
[0162] In the drying unit 411, the water is separated from the sucked-in and pre-dried gaseous medium by adsorption, e.g., on a zeolite (preferably a 13X type zeolite). The total bed height in the drying unit 411 is, for example, 135 mm (as with the CO2 modules in the CO2 unit 413).
[0163] The inflow area of the drying unit 411 is designed in such a way that an average inflow velocity of 0.2 m / s is preferably achieved upstream of the sorption material when, at a constant adsorption volume flow through the system, the average inflow velocity upstream of the sorption material of the CO2 unit 413 is preferably 0.2 m / s. The average inflow velocity can also be in the range from 0.1 to 0.4 m / s. The ratio of the inflow areas between the drying unit 411 and the CO2 unit 413 is 1:1 (0.75 to 1.0 is also possible). The adsorption phase of a drying module is preferably operated until water breakthrough occurs, corresponding to a dew point temperature condition of -50 °C. During adsorption, adsorption heat is released (exothermic process). As a result, the dry gaseous medium, e.g. For example, the dry air enters the drying unit at a temperature approximately 7 K higher than the inlet temperature.At higher or lower moisture contents of the incoming gaseous medium, the process time of the drying unit 411 can be adjusted so that the dew point temperature condition of -50 °C as water breakthrough at the outlet can be maintained.
[0164] In order to achieve the best possible adsorption capacity in the subsequent CO2 unit 413, the dried gaseous medium is passed through an intercooler 412 and cooled back to 5 °C.
[0165] The dry and recooled gaseous medium is then passed through a CO2 unit 413, in which the CO2 is separated from the gaseous medium by adsorption, e.g., on a zeolite (preferably a 13X-type zeolite). The CO2 stage is ideally designed so that it has a bed height of preferably 135 mm. This ensures a certain degree of commonality in the drying unit 411 and the CC>2 unit 413. A bed height of 67 to 270 mm, or 50% to 200%, is also possible for the direct air capture application.
[0166] The CO2>2 adsorption process is carried out up to a CO2 breakthrough of preferably 140 to 160 ppm to ensure the most efficient utilization of the pre-dried gaseous medium (achieved after 3 hours in the proposed system). Operation of the CO2 adsorption is still feasible up to a CO2 breakthrough of 360 ppm (at an ambient air concentration of 420 ppm) to increase the CO2 yield per adsorption phase, although this results in an energy disadvantage, since disproportionately more effort is invested in air drying than CO2 can be separated from the adsorption phase.
[0167] The dry gaseous medium is used after the CO2 unit 413 for the W-desorption (regeneration) of the rotatable pre-drying unit 410 (e.g. the sorption heat exchanger) and the drying stage in the drying unit 411.
[0168] Approximately 80% of the dry gaseous medium from the CO2 unit 413 is used for the regeneration of the rotating pre-drying unit 410, e.g., the sorption heat exchanger. This gaseous medium is directed to the regeneration side of the rotating pre-drying unit 410, e.g., the sorption heat exchanger. Due to the partial pressure difference, the very dry regeneration air absorbs the moisture stored in the rotating pre-drying unit 410 and leaves the device as moist exhaust air 402. The sorption material of the rotating pre-drying unit 410 is regenerated to a low loading state.
[0169] The remaining part of the dry gaseous medium from the CO2 unit 413 is used for the cyclic desorption of the drying stage and CC>2 stage.
[0170] Furthermore, the heat energy applied in the desorption phase of the drying modules in the drying unit 41 1 is recovered in two ways.
[0171] In the first phase of FW desorption, the heat stored in the sorption material is transferred by means of a dry gaseous medium from a drying module that has just completed desorption to a drying module that will next enter desorption. For this purpose, a mass flow of 7.5% of the adsorption mass flow is preferably used (0.5 to 15% is also possible), so that a large portion of the residual heat is transferred within 30 minutes. The flow direction is opposite to that of the adsorption phase.
[0172] For the subsequent desorption phase, a mass flow of preferably 1.25% of the adsorption mass flow (0.1 to 5% is also possible) is used for purging (reducing the partial pressure). The sorption material and the inflowing gaseous medium are heated to preferably 150 °C for purging via the internal heat exchanger (temperatures in the range of 100 to 200 °C are also possible). To reduce the energy required for heating, the gaseous medium entering the drying unit 411 is passed through an air-to-air heat exchanger 417 and preheated with the hot desorption air exiting the drying unit 411. The gaseous medium used for H2O desorption is introduced in the opposite direction to the adsorption flow. The desorption process is completed after one hour under the stated conditions.
[0173] The third part of the H2O desorption process follows, with heat transfer (WVS) from the just-desorbed, still-hot module to the next module at the beginning of desorption, with a transfer mass flow of 7.5% of the adsorption mass flow (0.5 to 15% is also possible). This heat transfer phase lasts another 30 minutes. This cools the sorption material of the just-desorbed module, making it immediately ready for adsorption at the start of the subsequent adsorption process.
[0174] In this mode, a quasi-continuous operation of 4 drying modules in adsorption and 4 drying modules in desorption is possible, each operating for 2 hours in adsorption and 2 hours in desorption.
[0175] The gaseous medium from the drying unit 411 can be discharged as exhaust air 420 via an air-to-air heat exchanger 417 by means of a fan 414a.
[0176] During the desorption of the CO2 modules, the module is evacuated to an absolute pressure of 10 mbar in the first desorption phase. The sorption material is then heated to 150 °C (120 to 200 °C are also possible) using the internal heat exchanger. The CO2 is desorbed and continuously removed by vacuum pump 419. If the purity is sufficient (> 95%, preferably > 99%), the desorbed CO2 is fed into the product path 422. This first desorption phase lasts 30 minutes. Since it cannot be prevented during the adsorption phase that a very small amount of residual moisture can penetrate into the CO2>2 stage (due to a slight water breakthrough after the drying unit 411), CO2 desorption is followed by a W desorption in the CO2>2 stage at negative pressure to remove the residual W load.For this purpose, a dry gaseous medium of 3.4% mass flow of the adsorption mass flow (also 0.1 to 5%) is introduced while raising the desorption temperature to preferably 200 °C (150 to 200 °C is also possible). This dry gaseous medium is continuously extracted by the vacuum pump 419, maintaining a pressure of preferably 100 mbar absolute (also 10 to 800 mbar is possible) ("2-stage desorption"). The dry gaseous medium introduced for desorption is passed through an air-to-air heat exchanger 416 and preheated with the hot desorption air emerging from this desorption phase 425. Thus, part of the desorption energy is recovered. Before the vacuum pump 419, the desorbed and gaseous water is condensed on a condenser 418 (outlet temperature 5 °C), so that the compressor work of the vacuum pump 419 is reduced.Due to compression, the desorption air leaves the vacuum pump 419 at a temperature greater than 150 °C. The hot desorption air is directed to the drying unit 411, where it is used to preheat the purge air for the desorption phase via an air-to-air heat exchanger 417. The second desorption phase preferably lasts 35 minutes.
[0177] To recover the heat stored in the sorption material, a heat shift phase 427 follows, during which a dry gaseous medium is passed through the module at atmospheric pressure with a mass flow rate of 7.5% of the adsorption mass flow (0.5 to 15% is also possible). This cools the sorption material, making it immediately ready for absorption in the subsequent adsorption phase. The hot exhaust air from the heat shift phase 427 is directed to the drying unit 411, where it is further heated by an air-to-air heat exchanger 416a to further heat the air from the heat shift phase between the drying modules. The heat shift phase 427 of the CO2 modules in the CO2 unit 413 lasts 25 minutes.
[0178] This enables quasi-continuous operation of 4 CO2 modules in adsorption and 2 CO2 modules in desorption, each operating for 3 hours in adsorption and 1.5 hours in desorption. The modules of the CO2 unit 413 can be operated with a time offset of 45 minutes or with an offset of 60-30-60-30-60-30 minutes. The drying unit 411 and the CO2 unit 413 can be operated offset from one another as desired. From the CO2 unit 413, a portion of the gaseous medium can be passed via a desorption path 424 through a condenser 418 by means of a vacuum pump 419 and divided into residual air 421 and CO2 product stream 422 with a purity of >99%.
[0179] For the fine drying of the CO2 unit, the H2O stored in the sorbent material can be discharged as moist exhaust air 420 via a desorption path 425 via an air-to-air heat exchanger 416, a condenser 418a, a vacuum pump 419a, and an air-to-air heat exchanger 417.
[0180] A blower 414c is installed downstream of the CO2 unit 413, which draws the gaseous medium through the system. For a good compromise between pressure loss across the adsorption units and CO2 yield, an average flow velocity of 0.2 m / s at the end faces of the CO2 adsorber units is favorable (0.1 to 0.4 m / s is also possible).
[0181] Figure 5 schematically illustrates an embodiment of a method according to the invention for obtaining CO2532. First, a gaseous medium is provided 528 in a first air flow channel. The gaseous medium is then pre-dried 529 in a rotating pre-drying unit, wherein the rotating pre-drying unit rotates axially and a first air flow channel radially controls the rotating pre-drying unit. Furthermore, the pre-dried gaseous medium is dried 530 in at least one drying unit. In a further step 531, the CO2 from the at least pre-dried gaseous medium is adsorbed in a CO2 unit, and simultaneously CO2 is obtained by desorbing CO2 in a CO2 unit.
[0182] Figure 6 schematically shows a first air drying device 10 of a DAC system 20 described herein, wherein the DAC system 20 is configured to extract carbon dioxide from ambient air. DAC systems 20 are described in greater detail below with reference to Figures 8, 9, and 11.
[0183] The air drying device 10 of Figure 6 has a housing 11 that defines and separates a first air flow channel 12 and a second air flow channel 13. Ambient air flows through the first air flow channel 12.
[0184] Ambient air UL1 to be dried enters the first flow channel 12, and dried ambient air UL2 exits the first air flow channel 12. The dried ambient air UL2 can be conveyed toward a carbon dioxide extraction device 23 of the DAC system 20. Exhaust air from the carbon dioxide extraction device 23 of the DAC system 20, from which carbon dioxide CO2 was extracted in the carbon dioxide extraction device 23, flows through the second air flow channel 13. Exhaust air AL1 from the carbon dioxide extraction device 23 of the DAC system 20 enters the second air flow channel 13, and exhaust air AL2 from the DAC system 20 exits the second flow channel 13.
[0185] The air drying device 10 further comprises a rotating storage body 14. The rotating storage body 14 can be driven in rotation. Due to the rotation of the rotating storage body 14, segments thereof are temporarily arranged in the first air flow channel 12 and temporarily in the second air flow channel 13. The periods of time or time spans for which the segments of the rotating storage body 14 are alternately arranged in the first air flow channel 12 or second air flow channel 13 depend on the rotational speed of the rotating storage body 14. The direction of rotation of the storage body 14 is visualized by an arrow 18. The rotating storage body 14 carries an adsorbent for the physisorption of water.When a segment of the rotating storage body 14 is located in the first air flow channel 12, the adsorbent of this segment can absorb water from the ambient air UL1 to be dried, thus drying the ambient air. When the respective segment is subsequently located in the second air flow channel 13, the adsorbent of this segment releases the water previously absorbed in the region of the first air flow channel 12 into the exhaust air AL1 of the carbon dioxide recovery device 23 of the DAC system 20 in order to desorb the water. The exhaust air AL2 comprises the water released into the exhaust air AL1.
[0186] The energy required for air drying in the air drying device 10 described herein essentially corresponds to the energy required to drive the rotating storage body 14. This enables particularly effective drying of ambient air.
[0187] The first air flow channel 12 and the second air flow channel 13 run parallel to one another and are traversed in opposite directions by the respective air, i.e. in the first flow channel 12 by the ambient air UL1, UL2 and in the second air flow channel 13 by the exhaust air AL1, AL2. Figure 7 shows that a rotation axis 15 of the storage body 14 extends parallel to the flow direction of the two air flow channels 12, 13 and thus parallel to their longitudinal axes extending in the flow direction of the two air flow channels 12, 13. In Figures 6, 7, the two air flow channels 12, 13 are separated by an inner wall 11a of the housing 11 of the air drying device 10, with an outer wall 11b of the housing 11 delimiting the two air flow channels 12, 13 on the outside. In Figure 7, the rotation axis 15 of the storage body 14 preferably runs in the plane of the inner wall 11a.
[0188] In the illustrated embodiment of Figures 6 and 7, at any given time, half of the rotating storage body 14 is arranged in the first air flow channel 12, and the other half of the storage body 14 is arranged in the second air flow channel 13. However, due to the rotation of the storage body 14 about its rotation axis 15, the respective segment, which is arranged either in the first air flow channel 12 or in the second air flow channel 13, continuously changes.
[0189] The storage body 14 can be an air-permeable, metallic disc that carries the adsorbent for the physical absorption of water. This adsorbent can be, for example, a zeolite, a silica gel, or graphite.
[0190] The exhaust air AL1 of the carbon dioxide extraction device 23 of the DAC system 20 flowing through the second air flow channel 13 forms a partial pressure sink for absorbing the water absorbed by the storage body 14 in the region of the first air flow channel 12 from the ambient air UL1 to be dried and thus for desorption of the storage body 14 within the second air flow channel 13. If a section of the storage body 14 is located in the first air flow channel 12, ambient air UL1 flows through this section and the adsorbent absorbs water or moisture from the ambient air UL1 to be dried. Due to the continuous rotation orRotation of the storage body 14 moves the section of the storage body 14 previously located in the region of the first air flow channel 12 into the region of the second air flow channel 13, within which the exhaust air AL1 of the carbon dioxide extraction device 23 of the DAC system 20 then flows through the storage body 14. In the region of the second air flow channel 13, desorption of the adsorbent then occurs, namely a transfer of the water absorbed by the adsorbent to the exhaust air AL1 of the carbon dioxide extraction device 23 of the DAC system 20. Due to the very low water vapor partial pressure, the exhaust air AL1 of the carbon dioxide extraction device 23 of the DAC system 20 is able to effectively absorb water or moisture from the adsorbent of the rotating storage body 14 for desorption thereof.Furthermore, within the respective air flow channel 12, 13, a temperature adjustment can take place between the temperature of the storage body 14 and the air flowing through it.
[0191] Figure 8 shows a system diagram of a DAC system 20, which has as main components a system 21 for drying the ambient air from which carbon dioxide is to be absorbed, furthermore a cooling device 22 for cooling the dried ambient air and a carbon dioxide extraction device 23 for extracting the carbon dioxide from the dried and cooled ambient air.
[0192] In the DAC system 20 shown in Figure 8, the system 21 for drying the ambient air comprises two parallel-connected air drying devices 10 as shown in Figures 6 and 7. This allows the volume flow of the ambient air UL1 to be dried to be distributed between the two air drying devices 10. The dried ambient air UL2 leaves the two air drying devices 10 and is cooled in the cooling device 22 upstream of the carbon dioxide extraction device 23.
[0193] According to Figure 8, the exhaust air AL1 of the carbon dioxide extraction device 23 as well as the ambient air UL1 to be dried are passed through the two air drying devices 10.
[0194] In Figure 8, a filter device 24 is arranged upstream of the system 21 for drying the ambient air in order to filter the ambient air before drying in the air drying devices 10 in order to remove, for example, dust or other particles.
[0195] Figure 9 shows a further development of the DAC system 20 of Figure 8. In Figure 9, the dried ambient air UL2 leaving the two parallel air drying devices 10 is collected in a collection device 25, which is then passed through an air drying device 26, which can be based, for example, on the principle of a solid sorbent bed in the temperature swing process. Should the air drying rate provided by the two parallel air drying devices 10 of Figures 8, 9 is insufficient to provide appropriately dried ambient air to the carbon dioxide recovery device 23, fine drying can take place in the area of the air drying device 26 based on the solid sorbent bed. However, this is purely optional, as is the collection device 25.
[0196] Then, if, as shown in Figures 8 and 9, the system 21 for air drying comprises several air drying devices 10 connected in parallel, they are preferably designed identically, at least they have the same number of air flow channels 12, 13.
[0197] Figure 11 shows a further development of the DAC system 20 of Figure 8, in which, in addition to the two parallel-connected air drying devices 10 of Figures 6, 7, two further parallel-connected air drying devices 10' are present, with one air drying device 10' connected in series to each air drying device 10. The series-connected air drying devices 10, 10' differ in Figure 11 with regard to their air flow channels.
[0198] Figure 10 shows a schematic of the air drying device 10', which, in addition to the first air flow channel 12 for the ambient air and the second air flow channel 13 for the exhaust air AL1 of the carbon dioxide extraction device 23, has a further, namely third, air flow channel 16 for the exhaust air AL1 of the carbon dioxide extraction device 23. Accordingly, both the third air flow channel 16 and the second air flow channel 13 are flowed through by the exhaust air AL1 of the carbon dioxide extraction device 23.
[0199] In Figure 10, the exhaust air AL1 from the carbon dioxide extraction device 23 initially flows into the third air flow channel 16, subsequently flows out of the same, is guided over a heating device 17 of the air drying device 10', and then flows into the second air flow channel 13 and out of the same as exhaust air AL2. The rotating storage body 14 can then be driven in rotation such that, as a result of its rotation, segments thereof are temporarily arranged in the first air flow channel 12, temporarily in the second air flow channel 13, and temporarily in the third air flow channel 16.
[0200] As a result of the rotation of the storage body 14, the segments thereof in Figure 10 move from the first air flow channel 12 into the region of the second air flow channel 13, from the second air flow channel 13 into the third air flow channel 16 and from the third air flow channel 16 back into the first air flow channel 12. When a respective segment of the rotating storage body 14 is located in the region of the first air flow channel 12, the adsorption agent carried by this segment absorbs water from the ambient air UL2 to be further dried in Figure 11 via physisorption, which then leaves the first air flow channel 12 as dried ambient air UL3.
[0201] Then, when the respective segment of the rotating storage body 14 is located in the region of the second air flow channel 13, the adsorption agent of this segment releases the moisture or water previously absorbed in the region of the first air flow channel 12 from the ambient air UL2 to be dried to the exhaust air AL1 of the carbon dioxide extraction device, which was heated upstream of the second air flow channel 13 in the region of the heating device 17.
[0202] If the respective segment of the rotating storage body 14 is subsequently located in the region of the third air flow channel 16, the not yet heated exhaust air AL1 of the carbon dioxide extraction device 23 cools the corresponding segment of the rotating storage body in order to prevent the respective segment from subsequently re-entering the first air flow channel 12 with an excessively high temperature and then heating the ambient air UL there.
[0203] In Figure 11, coarse drying takes place in the area of the two air drying devices 10 and fine drying of the ambient air UL to be dried takes place in the area of the two air drying devices 10'.
[0204] Figure 11 shows a further collection device 27 which collects the exhaust air AL1 of the carbon dioxide recovery device 23 in order to then subsequently provide it to the air drying devices 10, 10'.
[0205] The respective carbon dioxide recovery device 23 of the DAC systems according to Figures 8, 9, and 11 recovers the carbon dioxide from the dried and cooled ambient air by physisorption, i.e., via an adsorbent designed as a physisorbent. This adsorbent can also be a zeolite. Physisorption in the region of the carbon dioxide recovery device 23 preferably utilizes the principle of a solid sorbent bed in a pressure and temperature oscillation process. An alternative carbon dioxide recovery device can be operated according to the known principle of cryogenic gas separation (utilizing the Joule-Thomson effect and adiabatic cooling of the gas mixture), whereby the carbon dioxide-containing gas mixture is first compressed, but the water vapor it contains is filtered out by means of an adsorbent before the actual expansion.
[0206] The air drying device described herein allows for effective drying of humid ambient air with low energy requirements. Assuming that the ambient air UL1 to be dried has an ambient air temperature of 10°C, an air pressure of 1006 mbar, and a relative humidity of 100%, and assuming that the exhaust air AL1 from the carbon dioxide recovery device 23 of the DAC system 20 has a temperature of approximately 6°C, a relative humidity of approximately 0.1%, and a pressure of 1005 mbar, dried ambient air UL2 with a relative humidity of approximately 40% and a temperature of approximately 7.3°C at a pressure of 1005 mbar can be provided via an air drying device 10 according to Figures 6 and 7. In this case, the relative humidity of the dried ambient air UL2 is reduced by approximately 60% compared to the ambient air Ul1 to be dried.Under warm, humid supply air conditions of the ambient air UL1, the air drying rate can be further improved. The air drying rate can also be further increased by connecting the air drying devices 10, 10' in series.
[0207] In the DAC system 20 described herein, exhaust air AL1 from the carbon dioxide recovery device 23 of the DAC system 20, which serves to recover carbon dioxide from the dried and cooled ambient air, is used to dry the ambient air UL1 in the area of the air drying device 10, 10' described herein, in order to transfer the moisture extracted from the ambient air UL1 to be dried by means of an adsorbent to the exhaust air AL1 of the carbon dioxide recovery device 23 of the DAC system 20.
[0208] Furthermore, a method for operating a DAC system 10 with at least one air drying device 10, 10' described herein is disclosed. To dry the ambient air, on the one hand, ambient air and, on the other hand, exhaust air from the carbon dioxide recovery device 23 of the DAC system 20 are conveyed through the at least one air drying device 10, 10' according to the invention, wherein the storage body 14 of the air drying device 10, 10' rotates. List of reference numerals , 400 device for recovering carbon dioxide , 201 , 301 , 401 air inlet , 202, 302, 402 moist exhaust air , 203 axis , 204 dried process air , 205, 405 dry regeneration air dry regeneration air
[0209] Coating, 210, 310, 410 Rotatable pre-drying unit, 411 Drying unit, 412 Intercooler, 413 CC>2 unit, 414a, b, c Blower
[0210] Heat exchanger units for heat recovery, 416a air-to-air heat exchangers
[0211] Air-air-air heat exchanger, 418a condenser, 419a vacuum pump moist exhaust air
[0212] residual air
[0213] CO2 product stream
[0214] Path Desorption
[0215] Path Desorption 1
[0216] Path Desorption 2
[0217] Path heat shift drying unit
[0218] Path heat transfer CO2 providing a gaseous medium in a first
[0219] Air flow channel pre-drying of the gaseous medium in a rotating
[0220] Drying unit drying the pre-dried gaseous medium in a
[0221] Drying unit 1 adsorbing CO2 from the at least pre-dried gaseous medium and simultaneously recovering CO2 by desorbing CO2 in a CO2 unit 2 Process for recovering CO2
[0222] Air drying device ' Air drying device
[0223] Housing a Wall b Wall first air flow channel second air flow channel
[0224] Storage body
[0225] Rotation axis of the third air flow channel
[0226] Heating device
[0227] Direction of rotation
[0228] DAC system
[0229] Air drying system
[0230] Cooling device
[0231] Carbon dioxide extraction device
[0232] filter device
[0233] Collection device
[0234] Air drying device
[0235] Collection device
Claims
Patent claims 1 . A device for obtaining carbon dioxide (300, 400) from a gaseous medium, comprising: a first air flow channel for the gaseous medium, a second air flow channel for exhaust air from the device, at least one rotatable pre-drying unit (110, 210, 310, 410) comprising at least one sorbent for the physisorption of water, wherein the at least one rotatable pre-drying unit (110, 210, 310, 410) is drivable in an axially rotating manner and the first air flow channel radially controls the at least one rotatable pre-drying unit (110, 210, 310, 410).
2. Device (300, 400) according to claim 1 comprising at least one drying unit (311, 411) and at least one CO2 unit (313, 413).
3. Device (300, 400) according to claim 2, wherein the CO2 unit (313, 413) comprises at least one adsorption module and at least one desorption module.
4. Device (300, 400) according to claim 2 or 3, wherein the drying unit (311, 411) comprises at least four modules, and wherein the modules are at least one desorption module, at least two heat transfer modules and at least one adsorption module.
5. Device (300, 400) according to at least one of claims 1 to 4, wherein the second air flow channel axially controls the rotatable pre-drying unit (110, 210, 310, 410).
6. Device (300, 400) according to at least one of claims 1 to 5, wherein the rotatable pre-drying unit (110, 210, 310, 410) comprises at least two sorbents for the physisorption of water.
7. Device (300, 400) according to at least one of claims 1 to 6, wherein the at least one sorbent for the physisorption of water comprises zeolite, graphite, aluminosilicate, MOF (Metal Organic Framework) or a silica gel.
8. A process for producing carbon dioxide (532), comprising the steps of: - Providing a gaseous medium in a first air flow channel (528), - pre-drying the gaseous medium in a rotating pre-drying unit (529), - drying the pre-dried gaseous medium in at least one drying unit (530), - adsorbing CO2 from the dried gaseous medium in a CO2 unit and simultaneously recovering CO2 by desorbing CO2 in a CO2 unit (531), wherein the rotating pre-drying unit rotates axially and the first air flow channel controls the rotating pre-drying unit radially.
9. The method (532) according to claim 8, wherein the rotating pre-drying unit (110, 210, 310, 410) comprises at least one sorbent for adsorbing water.
10. Use of a device (300, 400) according to at least one of claims 1 to 7, or of a method (532) according to claim 8 or 9 for obtaining carbon dioxide from a gaseous medium.