Integrated desiccant-based cooling and dehumidification
Through the system integrating heat and mass exchangers and electrolyte decomposition stacks, the liquid adsorbents alternately work with high and low salt ion concentrations, the existing air dehumidification system has solved the problems of high energy consumption and environmental pollution, and achieved efficient and environmentally friendly dehumidification and cooling effects.
Patent Information
- Application Number
- JP2021573181
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-09
- Filing Date
- 2020-06-10
- Publication Date
- 2025-05-14
- Estimated Expiration
- 2040-06-10
AI Technical Summary
Existing air dehumidification systems consume high energy, use of chemical refrigerants may cause environmental harm, and are complex in maintenance, increasing costs and energy consumption.
Using an integrated system, the system includes a heat and mass exchanger and at least one electrolyte decomposition stack, the salt ion concentration is adjusted through the electrolyte decomposition stack using a liquid adsorbent with a high salt ion concentration and a liquid adsorbent with a low salt ion concentration alternately in a continuous single runner.
It realizes efficient air dehumidification and cooling, reduces energy consumption and maintenance costs, avoids the use of chemical refrigerants, and the system is environmentally friendly and reliable.
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Abstract
Description
[Technical field]
[0001] [CROSS REFERENCE TO RELATED APPLICATIONS] This application claims priority to U.S. Provisional Patent Application No. 62 / 859,432, filed June 10, 2019, and U.S. Provisional Patent Application No. 62 / 986,908, filed March 9, 2020, each of which is incorporated by reference in its entirety.
[0002] [Origin of contract] The U.S. Government has rights in this invention pursuant to Contract No. DE-AC36-08GO28308 between the U.S. Department of Energy and the Alliance for Sustainable Energy, LLC, as the manager and operator of the National Renewable Energy Laboratory. [Background technology]
[0003] Air dehumidification is used worldwide to achieve a comfortable and healthy indoor environment that is adequately humidified. Conventional dehumidification systems are useful for conditioning supply air, but they are expensive to operate because they use a large amount of energy (e.g., electricity). With increasing energy demands, the cost of air dehumidification is expected to increase, and there is an increasing demand for more efficient air dehumidification methods and technologies. Furthermore, there is an increasing demand for dehumidification technologies that do not use many traditional chemicals and substances, such as refrigerants, that can be damaging to the environment if released or leaked. Maintenance is also a concern with many air dehumidification technologies, resulting in the market's failure to accept any new technology that is perceived to increase maintenance requirements, especially for residential use.
[0004] Modern vapor compression systems achieve humidity control by first subcooling the air to remove moisture and then reheating the air to the desired temperature. This process is inefficient. Natural gas powered open absorption systems offer an alternative with good humidity control. However, these are either inefficient (single effect regeneration) or complex and expensive, and still require significant research (dual effect regeneration). Summary of the Invention [Problem to be solved by the invention]
[0005] The embodiments provided by the present disclosure can eliminate the weaknesses of desiccant technology by providing an all-electric option and eliminating water consumption by reusing water from the air. [Means for solving the problem]
[0006] In a first aspect, the present disclosure provides a dehumidification system including a heat and mass exchanger, at least one electrodialysis stack, a high salt ion concentration liquid desiccant, and a low salt ion concentration liquid desiccant, wherein the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant are in a single continuous flow connecting the heat and mass exchanger and the at least one electrodialysis stack.
[0007] In some embodiments, a high salt ion concentration liquid desiccant absorbs water from the process air stream in the heat and mass exchanger and expels salt ions to a low salt ion concentration liquid desiccant in at least one electrodialysis stack.
[0008] In some embodiments, the low salt ion concentration liquid desiccant releases (desorbs) water to a removal air stream in a heat and mass exchanger and accepts ions from a high salt ion concentration liquid desiccant in at least one electrodialysis stack.
[0009] In some embodiments, the high salt ionic concentration liquid desiccant and the low salt ionic concentration liquid desiccant comprise the same salt solution.
[0010] In some embodiments, the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant comprise a salt solution selected from sodium chloride, potassium chloride, potassium iodide, lithium chloride, copper (II) chloride, silver chloride, calcium chloride, chlorine fluoride, bromomethane, iodoform, hydrogen chloride, lithium bromide, hydrogen bromide, potassium acetate, 1-ethyl-3-methylimidazolium acetate, and combinations thereof.
[0011] In some embodiments, the salt solution is selected from lithium chloride and calcium chloride.
[0012] In some embodiments, the salt solution is lithium chloride.
[0013] In some embodiments, the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant upon entering the heat and mass exchanger is 20 weight percent (wt%).
[0014] In some embodiments, the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant upon entering at least one electrolysis stack is 10% by weight.
[0015] In some embodiments, upon entering the heat and mass exchanger, the high salt ion concentration liquid desiccant has a salt ion concentration of 35% by weight.
[0016] In some embodiments, the low salt ion concentration liquid desiccant has a salt ion concentration of 15% by weight upon entering the heat and mass exchanger.
[0017] In some embodiments, in at least one electrodialysis stack, a high salt ion concentration liquid desiccant is converted to a low salt ion concentration liquid desiccant and a low salt ion concentration liquid desiccant is converted to a high salt ion concentration liquid desiccant.
[0018] In some embodiments, the system comprises 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20 electrodialysis stacks arranged in series between the cathode and the anode.
[0019] In a second aspect, the disclosure provides a method for dehumidifying a process air stream, comprising the steps of: absorbing water from a process air stream into a high salt ion concentration liquid desiccant in a heat and mass exchanger to dehumidify the process air stream; releasing water from a low salt ion concentration liquid desiccant in the heat and mass exchanger to a removal air stream; transferring the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant to at least one electrodialysis stack; and expelling salt ions from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant in the at least one electrodialysis stack to convert the high salt ion concentration liquid desiccant into the low salt ion concentration liquid desiccant. and accepting ions from the high salt ion concentration liquid desiccant to a low salt ion concentration liquid desiccant in at least one electrodialysis stack to convert the low salt ion concentration liquid desiccant to a high salt ion concentration liquid desiccant, wherein the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant flow in a single continuous stream connecting the heat and mass exchanger and the at least one electrodialysis stack, and the converted high salt ion concentration liquid desiccant and the converted low salt ion concentration liquid desiccant are transferred to the mass and heat exchanger.
[0020] In some embodiments, the method further includes removing heat from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant in a heat and mass exchanger to cool the dehumidified process air stream.
[0021] In some embodiments, the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant comprise the same salt solution selected from sodium chloride, potassium chloride, potassium iodide, lithium chloride, copper (II) chloride, silver chloride, calcium chloride, chlorine fluoride, bromomethane, iodoform, hydrogen chloride, lithium bromide, hydrogen bromide, potassium acetate, 1-ethyl-3-methylimidazolium acetate, and combinations thereof.
[0022] In some embodiments, the salt solution is selected from lithium chloride and calcium chloride.
[0023] In some embodiments, the salt solution is lithium chloride.
[0024] In some embodiments, when the high salt ion concentration liquid desiccant absorbs water from the process air stream and the low salt ion concentration liquid desiccant releases water, the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant is 20 weight percent (wt%).
[0025] In some embodiments, when at least one electrodialysis stack begins to expel salt ions from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant, and when at least one electrodialysis stack begins to accept ions from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant, the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant is 10% by weight.
[0026] In some embodiments, the high salt ion concentration liquid desiccant has a salt ion concentration of 35% by weight when absorbing water from the process air stream.
[0027] In some embodiments, the low salt ion concentration liquid desiccant has a salt ion concentration of 15% by weight when releasing water into the removal air stream.
[0028] Exemplary embodiments are illustrated in the referenced figures in the drawings. It is intended that the embodiments and figures disclosed herein be regarded as illustrative rather than restrictive. [Brief description of the drawings]
[0029] [Figure 1] FIG. 1 illustrates in schematic form a cooling and dehumidification system provided by an embodiment of the present disclosure. The embodiment shown includes an integrated system consisting of a single heat and mass exchanger 100 and three electrolysis stacks 102, 104 and 106. [Diagram 2] FIG. 2 illustrates in schematic form another cooling and dehumidification system provided by an embodiment of the present disclosure. The embodiment shown includes an integrated system consisting of a single heat and mass exchanger 200 and a single electrolytic stack 202, which includes multiple channels within the single stack where ion exchange can take place. [Diagram 3] FIG. 1 illustrates in schematic form yet another cooling and dehumidification system provided by an embodiment of the present disclosure. The illustrated embodiment represents a general configuration of an integrated continuous system including both a heat and mass exchanger and an electrolysis stack. [Figure 4] FIG. 1 illustrates, in schematic form, a portion of a dehumidification system with water absorption occurring in a heat and mass exchanger and ion separation / desiccant concentration occurring in an electrodialysis stack. [Diagram 5] FIG. 1 illustrates, in schematic form, a portion of a dehumidification system with cooling occurring in a heat and mass exchanger and ion separation / desiccant dilution occurring in an electrodialysis stack. [Figure 6] FIG. 1 illustrates, in schematic form, a generalized heat and mass exchanger demonstrating simultaneous fluid flow from a low salt concentration desiccant to a high salt concentration desiccant. [Figure 7] FIG. 1 illustrates, in schematic form, a generalized electrodialysis stack. [Figure 8]7 is a graph showing the concentration of the desiccant stream for a range of ambient air humidities using the absorbent shown in the heat and mass exchanger of Figure 6. The figure shows high dehumidification efficiency even when the concentration difference between the two liquid desiccant streams is small. [Figure 9] FIG. 1 illustrates the heat transfer flows between the various fluids in the model described in Example 2. LD=liquid desiccant, ω=absolute humidity, q=heat transfer (detectable or potential), Jv=mass flux into the desiccant. [Figure 10] 1 is a graph showing the estimated electrical input power to concentrate the desiccant stream to 35% versus the minimum concentration of the lean stream. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0030] The following embodiments and aspects thereof are described and illustrated in conjunction with systems, means and methods that are intended to be exemplary and illustrative, not limiting in scope. In various embodiments, one or more of the above problems are reduced or eliminated, while other embodiments are directed to other improvements.
[0031] The phrases "inlet supply air," "inlet supply air stream," "process air," and "process air stream" are used interchangeably herein and all refer to the air stream that is cooled and dehumidified by the systems and methods provided by this disclosure.
[0032] The present disclosure provides a system and method for dehumidification and conditioning of air. It involves the use of a liquid desiccant flowing through the system in a closed loop with a single integrated system comprising one or more heat and mass exchangers and one or more electrodialysis stacks. The heat and mass exchanger transfers heat and moisture from the process air (to be dehumidified) to a liquid desiccant stream with a high salt ion concentration (i.e., a high-concentration liquid desiccant stream). The transferred heat is then transferred from the high-concentration desiccant stream to a liquid desiccant stream with a low salt ion concentration (i.e., a low-concentration liquid desiccant stream). Thereafter, heat and moisture are transferred from the low-salt ion concentration desiccant stream to an exhaust air stream, which is removed from the system. In doing so, the heat and mass exchanger removes process air from a space, e.g., a room in a building (home, office or other), moves the process air through the heat and mass exchanger where dehumidification and cooling occurs, and then reintroduces the process air into the space from which it was removed. The end result is the reintroduction of dehumidified and cooled air into the space from which it was originally removed. Removal of water from the process air dilutes the ion concentration of this stream by adding water to the rich liquid desiccant stream. Similarly, removal of water from the lean desiccant stream to the exhaust air concentrates the ions in the lean stream. To reconstitute the volume of such desiccant streams, after dehumidifying and cooling the process air, the rich and lean liquid desiccant streams are transferred from the heat and mass exchanger to one or more electrodialysis stacks where the rich liquid desiccant stream is converted to a lean liquid desiccant stream and similarly the lean liquid desiccant stream is converted to a rich liquid desiccant stream before being returned to the heat and mass exchanger for further air dehumidification.
[0033] Thus, the system provided by the present disclosure includes integrated functionality between one or more heat and mass exchangers and one or more electrodialysis stacks. The disclosed system serves to dehumidify and / or cool a process air flow to maintain environmental comfort in an enclosed space. Unlike other such systems known in the art, such as liquid desiccant air conditioning units, in the embodiments provided by the present disclosure, no heating step is required. Such steps can be expensive and require significant energy input depending on the temperature and humidity of the process air flow. It is considered that the novel system and method disclosed herein is expected to result in significant cost and energy savings for both manufacturers and consumers.
[0034] Dehumidification of the process air is achieved by the use of one or more material and heat exchangers (or transfer assemblies) as indirect evaporative coolers and / or heat exchangers. The material and heat exchangers are each formed in an alternating stack, each including, in some embodiments, a first (upper) layer or sheet of membrane material, a separation wall, and a second (or lower) layer or sheet of membrane material. The upper and lower membranes are permeable to water molecules in the vapor state, while the separation wall is impermeable to water but allows heat transfer (i.e., the separation wall is a thin layer and / or is made of a material that conducts heat). In each material and heat exchanger, the high concentration liquid desiccant flows between the first membrane layer and the separation wall, and the low concentration liquid desiccant flows between the separation wall and the second membrane layer. In some embodiments, when one or more material and heat exchangers are used in tandem, the flow order of the air streams is reversed, so that they flow in opposite directions to each other. When more than two material and heat exchangers are used in tandem, this reversal of flow order is repeated to form alternating supply and exhaust air flow channels or chambers. The process air (or the air to be dehumidified and cooled) is directed through a first channel along a first side of the first water permeable membrane, while a portion of the pre-cooled exhaust air (e.g., a fraction of the process air already dehumidified and cooled by a previous flow through one or more material and heat exchangers) is directed through a second channel along a second side of the second water permeable membrane, typically in a countercurrent arrangement to the incoming process air flow. Thus, a high concentration liquid desiccant flow is present on the other side of the first water permeable membrane from the process air, while a low concentration liquid desiccant flow (i.e., a fraction of the previously processed air directed to be exhausted) is present on the other side of the second water permeable membrane from the exhaust air flow. As mentioned above, the exhaust or removal air flow can be counter to or in the same direction as the process air flow, depending on the materials and the desired arrangement of the heat exchangers, as follows. First chamber: →Treated air intake→ First water permeable membrane →High ion concentration liquid desiccant→ Water impermeable, heat permeable plate Second chamber: →Low ion concentration fluid desiccant→ Second water permeable membrane ←Exhaust air←(or) →Exhaust air→ Such an arrangement can be seen, for example, in Figure 2. In various embodiments, the supply air inlet airflow, supply outlet airflow, exhaust airflow, and both liquid desiccant flows are plumbed, such as via one or more manifold assemblies, to a heat and mass exchanger, which may be provided in an enclosure as a single unit, such as, for example, an indirect evaporative cooler.
[0035] In some embodiments, dehumidification and evaporative cooling of the process air is accomplished by separating the process air and the concentrated liquid desiccant by a water-permeable membrane. The membrane is formed of one or more substances or materials that are permeable to water molecules in the vapor state. The penetration of water molecules through the membrane can be / is the driving force behind the dehumidification and evaporative cooling of the process air stream. As described above, multiple air streams can be arranged to flow through a single heat and mass exchanger chamber, such that the secondary (exhaust) air stream, which in some embodiments is the exhaust airflow of pre-cooled air, is humidified and absorbs enthalpy from the process air stream. The process air stream is cooled and simultaneously dehumidified by flowing concentrated liquid desiccant along the opposite side of the water-permeable membrane, allowing water to migrate across the membrane.
[0036] The same type of membrane is also used to separate the low concentration liquid desiccant flow from the exhaust airflow channel or chamber, thus separating the low concentration liquid desiccant from the exhaust airflow. Although wicking materials / surfaces or other devices can be used to contain or control the water flow (e.g., direct contact wicking surfaces can be used in combination with the use of membrane-based liquid desiccant containment), control of the membrane liquid facilitates the fabrication of stack or manifold structures useful in the configuration of heat and mass exchangers disclosed herein that provide cooling and dehumidification of process airflow. In such configurations, airflows can be arranged in counterflow, counterflow with pre-cooled exhaust air, crossflow, parallel flow and impingement flow to provide the desired simultaneous exchange of heat and mass in a single evaporative cooling unit that includes more than one heat and mass exchanger.
[0037] The embodiments disclosed herein generally use one continuous stream of liquid desiccant, which may be described as a stream containing high and low salt concentration portions. The high salt concentration stream portion contains about 20% to about 45% salt by weight. The low salt concentration stream portion contains about 3% to about 30% salt by weight. The concentration is controlled by the amount of water absorbed into the high concentration liquid desiccant stream, which in some embodiments matches the water released from the low concentration stream.
[0038] The salt ion concentration of the dense liquid desiccant may be varied to affect the target humidity of the process air stream. The lower the desired level of humidity of the process air stream, the greater the salt ion concentration of the dense liquid desiccant may be increased. Increasing the salt ion concentration of the dense liquid desiccant allows for more water to be removed from the process air stream.
[0039] The salt ion concentration of the low concentration liquid desiccant can also be varied to affect the target humidity and / or temperature of the process air stream. The low concentration liquid desiccant releases water into the exhaust or removal air stream, which in some embodiments reflects back into the ambient environment. Lower ambient humidity allows for a higher concentration in the low concentration desiccant, meaning that it is still possible to release enough water to maintain the integrity of the disclosed system. At ambient humidity, the concentration of the low concentration liquid desiccant can be reduced to maintain the water release rate.
[0040] As one skilled in the art will recognize, the salt ion concentrations of both the low and high concentration liquid desiccants may also vary based on the salt solution used. Some salt solutions work more efficiently to dehumidify the process air stream than others, and those that are less efficient may require a higher salt ion concentration to achieve the target outlet humidity.
[0041] Some embodiments also include a second heat and mass exchanger, the first heat and mass exchanger receiving inlet process air from an air stream, for example from ambient air or return air from a building, and the second heat and mass exchanger receiving a stream of dehumidified process air as exhaust or removal air. The dehumidified process air that serves as exhaust or removal air for the second heat and mass exchanger is generated by and flows from the first heat and mass exchanger.
[0042] A separating wall, also referred to herein as a plate, separates the first and second chambers and is formed from a material (such as plastic) that is impermeable to the high and low concentration liquid desiccant but that conducts or allows heat removed from the process air supply to migrate towards the low concentration liquid desiccant.
[0043] In various embodiments, the low concentration liquid desiccant and the high concentration liquid desiccant comprise a halide salt solution. As described herein, the flows of the desiccant streams overlap or move through the disclosed system in a continuous quasi-figure-eight pattern, with the low concentration desiccant stream being processed to become the high concentration desiccant stream, and vice versa. To that end, both desiccant streams are made from the same solution, often a halide salt solution, with the difference between the two being the concentration of ions in the particular desiccant flow stream. Desiccant solutions include sodium chloride (NaCl), potassium chloride (KCl), potassium iodide (KI), lithium chloride (LiCl), copper(II) chloride (CuCl 2 ), silver chloride (AgCl), calcium chloride (CaCl 2 ), chlorine fluoride (ClF), bromomethane (CH 3 Br), iodoform (CHI 3 ), hydrogen chloride (HCl), lithium bromide (LiBr), hydrogen bromide (HBr), and combinations thereof. In some embodiments, the halide salt solution is LiCl and CaCl 2 In some embodiments, the halide salt solution is LiCl. The desiccant can also be potassium acetate or 1-ethyl-3-methylimidazolium acetate (CAS number 143314-17-4).
[0044] The disclosed system is an integrated system that includes both i) one or more heat and mass exchangers and ii) one or more electrolysis stacks. As briefly described above and in detail below, water is removed from the process air stream. This provides two advantages to the disclosed system. First, the process air is returned to the enclosed space after it has been dehumidified, which helps provide humidity and temperature control in the enclosed space. Second, the water removed from the process air stream is transferred directly to the high concentration desiccant stream. In contrast, water is removed from the low concentration desiccant stream to the exhaust or removal air stream, which is then removed from the system. The flows of the desiccant streams overlap or operate in a quasi-figure-eight pattern, with the low concentration desiccant stream being electrolytically treated to become the high concentration desiccant stream, and vice versa. By introducing water into the disclosed system via the high concentration desiccant stream, the disclosed system recycles water from the air for use in cooling and dehumidifying more process air. By doing so, the system is able to use less water from city resources, mitigating the environmental impact.
[0045] The inventors have surprisingly determined that an integrated system comprising both i) a heat and mass exchange system and ii) an electrolysis stack can be operated to cool and dehumidify air with great efficiency using two streams of salt solution as liquid desiccants. In the heat and mass exchange system, the concentration difference between the high and low concentration liquid desiccant can be as high as 20% by weight, and in some embodiments, the high concentration liquid desiccant entering the heat and mass exchanger has a salt ion concentration of about 35% by weight and the low concentration liquid desiccant entering the heat and mass exchanger has a salt ion concentration of about 15% by weight. A pure water desiccant stream is not used.
[0046] No electrodialysis has been explored between high concentration (about 35 wt%) and low concentration (about 15 wt%) fluid desiccants. The present disclosure provides a system that utilizes fluid desiccant streams with these concentrations. That is, the present disclosure provides a system that includes i) a heat and mass exchange system whereby high concentration and low concentration fluid desiccants are used to dehumidify and / or cool air, and ii) an electrodialysis system that transfers ions from the high concentration spent liquid desiccant leaving the exchanger to the low concentration spent liquid desiccant, efficiently converting one fluid flow to the other. This is achieved using a multi-stage electrochemical deionization system that reduces the membrane concentration gradient by distributing such gradient over several ion transport stages. The use of two streams of the same halide salt solution with various ion concentrations as liquid desiccants has not been disclosed in the literature in an integrated system such as that disclosed herein.
[0047] In addition to the exemplary aspects and embodiments described above, further aspects and embodiments will become apparent by reference to the drawings and by study of the following descriptions.
[0048] In a first embodiment, the present disclosure provides a system for dehumidifying process air removed from a space illustrated in Figure 1 and then resupplying the space. The system is a single integrated system comprising a heat and mass exchanger 100 directly coupled to a plurality of electrodialysis stacks (102, 104, 106). The heat and mass exchanger 100 includes a first flow channel 1100 through which a flow of inlet supply air 180 flows, a second flow channel 196 adjacent to the first flow channel 1100 for receiving and outputting a high concentration liquid desiccant 150, a third flow channel 1104 adjacent to the second flow channel 196 for receiving and outputting a low concentration liquid desiccant 158, and a fourth flow channel 1102 adjacent to the third flow channel 1104 through which a flow of exhaust air 199 flows. The first and second flow channels are defined in part by a first vapor permeable membrane 198 separating the first and second flow channels, and moisture (water vapor) 176 migrates across the first vapor permeable membrane 198 from the flow of inlet supply air 180 to the high concentration liquid desiccant 150. The third and fourth flow channels are defined in part by a second vapor permeable membrane 186 separating the third and fourth flow channels. Moisture 178 migrates across the second vapor permeable membrane 186 from the low concentration liquid desiccant 158 to the flow of exhaust air 199. The second and third flow channels are defined in part by a separation wall 182 separating the second flow channel 196 and the third flow channel 1104. The separation wall 182 allows the heat 184 to be transferred from the second flow channel 196 to the third flow channel 1104.
[0049] In this embodiment, the high concentration liquid desiccant 150 enters the second flow channel 196 with a salt ion concentration of about 35% by weight, and the low concentration liquid desiccant 158 enters the third channel 1104 with a salt ion concentration of about 15% by weight (the difference in salt ion concentration is about 20% by weight). In the disclosed system, this is the point where the salt ion concentration between the two desiccant is at its maximum point. As the two desiccant move through the heat and mass exchanger, the high concentration liquid desiccant 150, which has gained water from the inlet supply air 180, has its salt concentration reduced from 35% to 30% by weight. When it moves from the heat and mass exchanger to the third electrolytic stack 106, it is at a concentration of 30% by weight. Furthermore, as the low concentration liquid desiccant 158 moves to the first electrolytic stack 102, it loses water to the exhaust air 199, which increases its salt concentration from 15% to 20% by weight.
[0050] 1 also includes three electrodialysis stacks 102, 104, 106. The first electrodialysis stack 102 includes a first electrodialysis flow channel 190 defined in part by a first cation permeable membrane 171 into which a second flow of intermediate low concentration liquid desiccant 156 having a salt concentration of 20% by weight flows and from which a first flow of low concentration liquid desiccant 158 having a salt concentration of 15% by weight flows, the desiccant 156 losing 5% of its salt ions by weight during electrolysis in the first stack 102. The first electrodialysis stack 102 also includes a second electrodialysis flow channel 191, partially defined by a first cation permeable membrane 171, into which flows the low concentration liquid desiccant 158 having just exited the heat and mass exchanger, having an ion concentration of 20% by weight, and from which flows a first flow of intermediate high concentration liquid desiccant 162 having a salt concentration of 25% by weight, the desiccant 158 gaining 5% by weight of salt ions during electrolysis in the first stack 102. Cations 170 flow from the low concentration liquid desiccant 158 across the first cation permeable membrane 171 into the second flow of intermediate low concentration liquid desiccant 156. The addition of cations 170 increases or makes the cation content of the low concentration liquid desiccant 158 more concentrated, thereby producing the first flow of intermediate high concentration liquid desiccant 162. The removal of cations 170 reduces or makes the second stream of intermediate dilute liquid desiccant 156 less concentrated in cations, thereby regenerating dilute liquid desiccant 158 .
[0051] The second electrodialysis stack 104 includes a third electrodialysis flow channel 192 defined in part by the second cation permeable membrane 173, into which flows a first flow of intermediate low concentration liquid desiccant 154 having a salt ion concentration of 25% by weight and into which flows a second flow of intermediate low concentration liquid desiccant 156 having a salt ion concentration of 20% by weight, the desiccant 154 losing 5% by weight of its salt ions during electrolysis in the second stack 104. The second electrodialysis stack 104 also includes a fourth electrodialysis flow channel 193 defined in part by the second cation permeable membrane 173, into which flows a first flow of intermediate high concentration liquid desiccant 162 having a salt ion concentration of about 25% by weight and into which flows a second flow of intermediate high concentration liquid desiccant 164 having a salt ion concentration of 30% by weight, the desiccant 162 gaining 5% by weight of its salt ions during electrolysis in the second stack 104. Cations 172 flow from the first stream of intermediate low concentration liquid desiccant 154 across the second cation permeable membrane 173 into the first stream of intermediate high concentration liquid desiccant 162. The removal of cations 172 reduces or dilutes the cation concentration of the first stream of intermediate low concentration liquid desiccant 154, thereby producing a second stream of intermediate low concentration liquid desiccant 156. The addition of cations 172 increases the cation concentration of the first stream of intermediate high concentration liquid desiccant 162, thereby producing a second stream of intermediate high concentration liquid desiccant 164.
[0052] The third electrodialysis stack 106 includes a fifth electrodialysis flow channel 194 defined in part by the third cation permeable membrane 175, into which flows the high concentration liquid desiccant 152 having a salt ion concentration of 30% by weight and into which flows a first flow of the intermediate low concentration liquid desiccant 154 having a salt ion concentration of 25% by weight, the desiccant 152 losing 5% by weight of its salt ions during electrolysis in the third stack 106. The third electrodialysis stack 106 also includes a sixth electrodialysis flow channel 195 defined in part by the third cation permeable membrane 175, into which flows a second flow of the intermediate high concentration liquid desiccant 164 having a salt ion concentration of 30% by weight and into which flows the high concentration liquid desiccant 150 having a salt ion concentration of 35% by weight, the desiccant 164 gaining 5% by weight of salt ions during electrolysis in the third stack 106. Cations 174 flow from the high concentration liquid desiccant 150 across the third cation permeable membrane 175 into the second stream of intermediate high concentration liquid desiccant 164. Removal of cations 174 reduces or dilutes the cation concentration of the high concentration liquid desiccant 150 to produce a first stream of intermediate low concentration liquid desiccant 154. Addition of cations 174 increases or enhances the cation concentration of the second stream of intermediate high concentration liquid desiccant 164 to regenerate the high concentration liquid desiccant 150.
[0053] In each of the three electrodialysis stacks 102, 104, and 106, cations migrate across the cation-permeable membranes 171, 173, 175 according to the electric field applied to each of the three electrodialysis stacks 102, 104, 106. Briefly, positively charged cations migrate away from the cathode (not shown) or the positively charged components of the electrochemical cell migrate toward the negatively charged components or anode (not shown). In the embodiment illustrated in FIG. 1, the cathode is located to the left of each of the three electrodialysis stacks 102, 104, 106, which causes the cations 170, 172, 174 to migrate away from the cathode across the cation-permeable membranes 171, 173, 175. An anode is located to the right of each of the three electrodialysis stacks 102, 104, 106, which causes the cations 170, 172, 174 to migrate toward the anode. The cation permeable membranes 171, 173, 175 are only permeable to cations, so the anions present in the salt solution do not migrate. The net effect is that the desiccant streams 162, 164, and 150 become increasingly concentrated with ions as they flow through the three electrodialysis stacks 102, 104, 106. Similarly, as the cations 174, 172, and 170 are removed from the desiccant streams 154, 156, and 158, their ion concentrations decrease and become increasingly dilute. The illustrated embodiment may be a single electrochemical cell with a single cathode on one side (left in FIG. 1) and a single anode on the other side (right in FIG. 1). Alternatively, in the illustrated embodiment, each of the three electrodialysis stacks 102, 104, 106 can be its own electrochemical cell, with its own cathode and anode. In such an alternative embodiment, the arrangement of the cathodes and anodes is the same as in FIG. 1, with the cathode on the left and the anode on the right, as described above, allowing the illustrated movement of cations 170, 172, 174.
[0054] In this embodiment, the low concentration liquid desiccant 158 and the high concentration liquid desiccant 150 are each the same halide salt solution. As shown in FIG. 1, the flows of the desiccant streams 150 and 158 overlap or move through the disclosed system illustrated in FIG. 1 in a continuous quasi-figure-8 pattern, with the low concentration desiccant stream 158 being processed to become the high concentration desiccant stream 150, and vice versa. To that end, both desiccant streams are made from the same solution, often a halide salt solution, with the difference between the two being the concentration of ions in the particular desiccant flow stream, i.e., when both desiccant streams enter the heat and mass exchanger, the high concentration liquid desiccant 150 has a salt ion concentration of 35% by weight and the low concentration liquid desiccant 158 has a salt ion concentration of 15% by weight. The halide salts include sodium chloride (NaCl), potassium chloride (KCl), potassium iodide (KI), lithium chloride (LiCl), copper(II) chloride (CuCl), and other salts. 2 ), silver chloride (AgCl), calcium chloride (CaCl 2 ), chlorine fluoride (ClF), bromomethane (CH 3 Br), iodoform (CHI 3 ), hydrogen chloride (HCl), lithium bromide (LiBr), hydrogen bromide (HBr), and combinations thereof. In some embodiments, the halide salt solution is selected from LiCl and CaCl 2 In some embodiments, the halide salt solution is LiCl. The desiccant can also be potassium acetate or 1-ethyl-3-methylimidazolium acetate (CAS number 143314-17-4).
[0055] In this embodiment, water 176 removed from the inlet supply air 180 travels directly into the high concentration desiccant stream 150. In contrast, water 178 is removed from the low concentration desiccant stream 158 into the exhaust or removal air stream 199, which is then removed from the integrated system. As shown in FIG. 1, the flows of the desiccant streams 150 and 158 overlap or operate in a quasi-figure-eight pattern, with the low concentration desiccant stream 158 being electrolytically processed into the high concentration desiccant stream 150, and vice versa. By introducing water 176 into the system of this embodiment via the high concentration desiccant stream 150, the disclosed system recycles water from the inlet supply air 180 for use in cooling and dehumidifying more of the inlet supply air 180 in subsequent operating cycles. By doing so, the system of this embodiment is able to utilize less water from city resources, mitigating environmental impacts.
[0056] The embodiment illustrated in FIG. 1 includes three electrodialysis stacks. Those skilled in the art will recognize that the number of electrodialysis stacks may vary and that a sufficient number of electrodialysis stacks may be used to generate low concentration liquid desiccant 158 and high concentration liquid desiccant 150 with the desired cation concentrations. More than one heat and mass exchanger may also be used. Similarly, while only two liquid desiccant streams are shown, those skilled in the art will recognize that a pair of channels may be repeated multiple times with additional solution flows. Modifications to the system to accommodate fewer or more than three electrodialysis stacks, multiple solution flows in repeating a pair of channels, and more than one heat and mass exchanger will be known to those skilled in the art.
[0057] In a second embodiment, the present disclosure provides a system, and associated method of use, for dehumidifying air supplied to a space, as illustrated in Figure 2. Figure 2 illustrates a single integrated system comprising a heat and mass exchanger 200 and a single multi-layer electrodialysis stack 202. The heat and mass exchanger 200 includes a first flow channel 290 through which a stream of inlet supply air 270 flows, a second flow channel 292 adjacent to the first flow channel 290 through which a stream of high concentration liquid desiccant 210 flows, a third flow channel 294 adjacent to the second flow channel 292 through which a stream of low concentration liquid desiccant 224 flows, and a fourth flow channel 296 adjacent to the third flow channel 294 through which a stream of exhaust air 282 flows. The first and second flow channels 290 and 292 are defined in part by a first vapor permeable membrane 274 separating the first and second flow channels 290 and 292, and moisture 272 (water vapor) flows from the flow of inlet supply air 270 to the high concentration liquid desiccant 210, which increases in volume due to the addition of water from the inlet supply air 270. Similarly, the third and fourth flow channels 294 and 296 are defined in part by a second vapor permeable membrane 278 separating the third and fourth flow channels 294 and 296. Moisture 280 (water vapor) flows from the low concentration liquid desiccant 224 to the exhaust air 282. As water is removed from the low concentration liquid desiccant 224 to the exhaust air 282, the volume of the low concentration liquid desiccant 224 decreases. The second and third flow channels are defined in part by a separation wall 276 that separates the second and third flow channels 292 and 294, and is made from a material that is impermeable to the flow of water or water vapor but that allows heat 278 to be transferred from the second flow channel 292 to the third flow channel 294. As the inlet supply air 270 flows through the first flow channel 290, its temperature is reduced due to the transfer of heat 278.
[0058] As shown in FIG. 2, the low concentration liquid desiccant 224 and the high concentration liquid desiccant 210 then move from the heat and mass exchanger 200 to an integrated multi-layer electrodialysis stack 202. The electrodialysis stack 202 illustrated in FIG. 2 includes seven flow channels. A first flow channel that receives a flow of the first electrolyte solution 242 is defined in part by an anode plate 250 and in part by a first cation exchange membrane 252. A second flow channel adjacent to the first flow channel is defined in part by a first cation exchange membrane 252 and in part by a first anion exchange membrane 254. This second flow channel receives the first portion 230 of the low concentration liquid desiccant 224 and produces the first portion 236 of the high concentration liquid desiccant 210. A third flow channel adjacent to the second flow channel is defined in part by a first anion exchange membrane 254 and in part by a second cation exchange membrane 256. The third flow channel receives the first portion 216 of the high concentration liquid desiccant 210 and produces a first portion 220 of the low concentration liquid desiccant 224. A fourth flow channel adjacent to the third flow channel is defined in part by a second cation exchange membrane 256 and in part by a second anion exchange membrane 258. The fourth flow channel receives the second portion 232 of the low concentration liquid desiccant 224 and produces a second portion 238 of the high concentration liquid desiccant 210. A fifth flow channel adjacent to the fourth flow channel is defined in part by a second anion exchange membrane 258 and in part by a third cation exchange membrane 260. The fifth flow channel receives the second portion 218 of the high concentration liquid desiccant 210 and produces a second portion 222 of the low concentration liquid desiccant 224. A sixth flow channel adjacent to the fifth flow channel is defined in part by a third cation exchange membrane 260 and in part by a third anion exchange membrane 262. The sixth flow channel receives the third portion 234 of the low concentration liquid desiccant 224 and outputs the third portion 240 of the high concentration liquid desiccant 210.The seventh flow channel, which receives the flow of the second electrolyte solution 244, is defined in part by a third anion exchange membrane 262 and in part by a cathode plate 264. Some embodiments include an additional electrodialysis stack, similar to the electrodialysis stack described above.
[0059] As shown in FIG. 2, the high concentration liquid desiccant 210, after exiting the heat and mass exchanger 200, is transferred to the electrodialysis stack 202 where it splits into two portions 216 and 218, which enter the third and fifth channels, respectively. Additionally, the low concentration liquid desiccant 224, after exiting the heat and mass exchanger 200, is transferred to the electrodialysis stack 220 where it splits into three portions 230, 232 and 234, which enter the second, fourth and sixth channels, respectively. Electrodialysis then occurs in the illustrated channels, with cations migrating away from the cathode plate 264 toward the anode plate 250 and anions migrating away from the anode plate 250 toward the cathode plate 264. As the liquid desiccant moves through the channels, the ions move across the ion permeable membranes 252, 254, 256, 258, 260 and 262 in the direction shown. The result of electrodialysis is an increase in the concentration of ions in the liquid desiccant moving through the second, fourth and sixth channels. Fractions 236, 238 and 240 are then pooled to form the high concentration liquid desiccant 224 which is recycled to the heat and mass exchanger 200. Concomitantly, the concentration of ions in the liquid desiccant moving through the third and fifth channels is decreased. Fractions 220 and 222 are then pooled to form the low concentration liquid desiccant 224 which is recycled to the heat and mass exchanger 200.
[0060] In this embodiment, the low-concentration liquid desiccant 224, after exiting the heat and mass exchanger 200, is transferred to the electrodialysis stack 202 where it undergoes electrodialysis. The result of such electrodialysis is that the low-concentration liquid desiccant 224 is then converted to and transferred to the high-concentration liquid desiccant 210, which is returned to the heat and mass exchanger 200. Similarly, the high-concentration liquid desiccant 210, after exiting the heat and mass exchanger 200, is transferred to the electrodialysis stack 202 where it undergoes electrodialysis. The result of such electrodialysis is that the high-concentration liquid desiccant 210 is then converted to and transferred to the low-concentration liquid desiccant 224, which is returned to the heat and mass exchanger 200. The integration of the heat and mass exchanger 200 and the electrodialysis stack 202 allows the two liquid desiccant streams to be exchanged while the inlet supply air 270 is being treated. This allows for repeated reuse of both desiccant streams, as volume and ionic content are transferred back and forth between the liquid desiccant streams, using less electricity. The end result is an integrated system that is more energy efficient than indirect evaporative cooling and dehumidification systems currently on the market.
[0061] Further, in this embodiment, the low concentration liquid desiccant 224 and the high concentration liquid desiccant 210 are each the same halide salt solution. As shown in FIG. 2, the flows of the desiccant streams 210 and 224 overlap or move through the disclosed system illustrated in FIG. 2 in a continuous quasi-figure-8 pattern, with the low concentration desiccant stream 224 being processed to become the high concentration desiccant stream 210, and vice versa. To that end, both desiccant streams are made from the same solution, often a halide salt solution, with the difference between the two being the concentration of ions in the particular desiccant flow stream, i.e., when both desiccant streams enter the heat and mass exchanger, the high concentration liquid desiccant 210 has a salt ion concentration of 35% by weight and the low concentration liquid desiccant 224 has a salt ion concentration of 15% by weight. The halide salts include sodium chloride (NaCl), potassium chloride (KCl), potassium iodide (KI), lithium chloride (LiCl), copper(II) chloride (CuCl), and potassium iodide (KI). 2 ), silver chloride (AgCl), calcium chloride (CaCl2 ), chlorine fluoride (ClF), bromomethane (CH 3 Br), iodoform (CHI 3 ), hydrogen chloride (HCl), lithium bromide (LiBr), hydrogen bromide (HBr), and combinations thereof. In some embodiments, the halide salt solution is selected from LiCl and CaCl 2 In some embodiments, the halide salt solution is LiCl. The desiccant can also be potassium acetate or 1-ethyl-3-methylimidazolium acetate (CAS number 143314-17-4).
[0062] In this embodiment, water 272 removed from the inlet supply air 270 travels directly into the high concentration desiccant stream 210. In contrast, water 280 is removed from the low concentration desiccant stream 224 into the exhaust or removal air stream 282, which is then removed from the integrated system. As shown in FIG. 2, the flows of the desiccant streams 210 and 224 overlap or operate in a quasi-figure-8 pattern, with the low concentration desiccant stream 224 being electrolytically processed into the high concentration desiccant stream 210, and vice versa. By introducing water 272 into the system of this embodiment via the high concentration desiccant stream 210, the disclosed system recycles water from the inlet supply air 270 for use in cooling and dehumidifying more of the inlet supply air 270 in subsequent operating cycles. By doing so, the system of this embodiment is able to utilize less water from city resources, mitigating environmental impacts.
[0063] In a third embodiment, referring to FIG. 2, the present disclosure provides a method for manufacturing a semiconductor device comprising: moving, in the heat and mass exchanger 200, the humidified inlet supply air 270 through a first flow channel 290 and the concentrated fluid desiccant 210 through a second flow channel 292 along an opposite side of the first vapor permeable membrane 274; moving the low concentration fluid desiccant 224 through a third flow channel 294 and the exhaust air stream 282 through a fourth flow channel 296 along an opposite side of the second vapor permeable membrane 278, wherein a vapor impermeable separation wall 276 separates the second flow channel 292 and the third flow channel 294 in the heat and mass exchanger 200; Producing inlet supply air 270 from the heat and mass exchanger 200; transferring the concentrated fluid desiccant 210 and the diluted fluid desiccant 224 from the heat and mass exchanger 200 to the electrodialysis stack 202; recycling the high concentration fluid desiccant 210 and the low concentration fluid desiccant 224 for further use in the second flow channel 292 and the third flow channel 294, respectively; 1. A method for cooling and dehumidifying inlet supply air 270, comprising: Water vapor 272 migrates from the humidified inlet supply air 270 across the first membrane 274 to the dense fluid desiccant 210 to dehumidify the inlet supply air 270; Heat 278 is transferred from the dense fluid desiccant 210 across the separation wall 276 to the lean fluid desiccant 224 to cool the inlet supply air 270; Water vapor 280 migrates from the dilute fluid desiccant 224 across the second water permeable membrane 278 into the exhaust air stream 282; In the electrolysis stack 202, the concentrated fluid desiccant 210 is processed to become a diluted fluid desiccant 224, and the diluted fluid desiccant 224 is processed to become a concentrated fluid desiccant 210, before being reused. A method is provided.
[0064] In this embodiment, the treatment of the concentrated fluid desiccant 210 in the electrolytic stack 202 includes: splitting the concentrated fluid desiccant 210 stream into two streams of concentrated fluid desiccant 216 and 218; by electrolysis transferring cations away from the two streams of concentrated fluid desiccant 216 and 218 across two cation permeable membranes 256 and 260, and transferring anions away from the two streams of concentrated fluid desiccant 216 and 218 across two anion permeable membranes 254 and 258 to produce two streams of concentrated fluid desiccant 220 and 224; combining the two streams of dilute fluid desiccant 220 and 224 to produce a dilute fluid desiccant 224 stream; Includes.
[0065] In this embodiment, the treatment of the dilute fluid desiccant 224 in the electrolytic stack 202 includes: splitting the dilute fluid desiccant 224 stream into three streams of dilute fluid desiccant 230, 232 and 234; transferring cations by electrolysis across three cation permeable membranes 252, 256 and 260 to three streams of dilute fluid desiccant 230, 232 and 234, and transferring anions by electrolysis across three anion permeable membranes 254, 258 and 262 to three streams of dilute fluid desiccant 230, 232 and 234 to produce three streams of concentrated fluid desiccant 236, 238 and 240; combining the three streams of concentrated fluid desiccant 236, 238 and 240 to produce a concentrated fluid desiccant 210 stream; Includes.
[0066] In this embodiment, two streams of concentrated fluid desiccant 216 and 218 are intercalated between three streams of dilute fluid desiccant 230, 232 and 234 along opposing sides of a series of alternating cation and anion permeable membranes in electrodialysis stack 202 prior to reuse. In some embodiments, the order of the alternating cation and anion permeable membranes is cation permeable membrane 252, anion permeable membrane 254, cation permeable membrane 256, anion permeable membrane 258, cation permeable membrane 260 and anion permeable membrane 262.
[0067] As shown in FIG. 2, the cations and anions are transferred from the two streams of concentrated fluid desiccant 216 and 218 across the ion permeable membrane to the three streams of dilute fluid desiccant 230, 232 and 234 by the electrolysis. The concentration of the ions in the two streams of concentrated fluid desiccant 216 and 218 becomes decreased, and the concentration of the ions in the three streams of dilute fluid desiccant 230, 232 and 234 increases. The result of the electrodialysis is that the concentrated liquid desiccant 210 is electrolytically converted to the dilute liquid desiccant 224 after exiting the second flow channel 292 and transferred back to the third flow channel 294. The integration of the heat and mass exchanger 200 with the electrodialysis stack 202 allows the two liquid desiccant streams to be exchanged while the inlet supply air 270 is being treated. This allows for repeated reuse of both desiccant streams as volume and ionic content is transferred back and forth between the liquid desiccant streams while using less electricity. The end result is an integrated system that is more energy efficient than indirect evaporative cooling and dehumidification systems currently on the market.
[0068] Further, in this embodiment, the low concentration liquid desiccant 224 and the high concentration liquid desiccant 210 are each the same halide salt solution. As shown in FIG. 2, the flows of the desiccant streams 210 and 224 overlap or move through the disclosed system illustrated in FIG. 2 in a continuous quasi-figure-8 pattern, with the low concentration desiccant stream 224 being processed to become the high concentration desiccant stream 210, and vice versa. To that end, both desiccant streams are made from the same solution, often a halide salt solution, with the difference between the two being the concentration of ions in the particular desiccant flow stream, i.e., when both desiccant streams enter the heat and mass exchanger, the high concentration liquid desiccant 210 has a salt ion concentration of 35% by weight and the low concentration liquid desiccant 224 has a salt ion concentration of 15% by weight. The halide salts include sodium chloride (NaCl), potassium chloride (KCl), potassium iodide (KI), lithium chloride (LiCl), copper(II) chloride (CuCl), and potassium iodide (KI).2 ), silver chloride (AgCl), calcium chloride (CaCl 2 ), chlorine fluoride (ClF), bromomethane (CH 3 Br), iodoform (CHI 3 ), hydrogen chloride (HCl), lithium bromide (LiBr), hydrogen bromide (HBr), and combinations thereof. In some embodiments, the halide salt solution is selected from LiCl and CaCl 2 In some embodiments, the halide salt solution is LiCl. The desiccant can also be potassium acetate or 1-ethyl-3-methylimidazolium acetate (CAS number 143314-17-4).
[0069] In this embodiment, water 272 removed from the inlet supply air 270 travels directly into the high concentration desiccant stream 210. In contrast, water 280 is removed from the low concentration desiccant stream 224 into the exhaust or removal air stream 282, which is then removed from the integrated system. As shown in FIG. 2, the flows of the desiccant streams 210 and 224 overlap or operate in a quasi-figure-8 pattern, with the low concentration desiccant stream 224 being electrolytically processed into the high concentration desiccant stream 210, and vice versa. By introducing water 272 into the system of this embodiment via the high concentration desiccant stream 210, the disclosed system recycles water from the inlet supply air 270 for use in cooling and dehumidifying more of the inlet supply air 270 in subsequent operating cycles. By doing so, the system of this embodiment is able to utilize less water from city resources, mitigating environmental impacts.
[0070] In a fourth embodiment, the present disclosure provides yet another system for cooling and dehumidifying air, as provided in FIG. 3. In this embodiment, a process air stream 300 is moved through a heat and mass exchanger along a first side of a vapor permeable membrane 304. A high-concentration liquid desiccant 320 is also moved through the heat and mass exchanger along a second side of the vapor permeable membrane 304. The process air stream 300 and the high-concentration liquid desiccant 320 are separated by the first vapor permeable membrane 304. Water vapor 302 flows from the process air stream 300 across the first vapor permeable membrane 304 to the high-concentration liquid desiccant 320. This causes the high-concentration liquid desiccant 320 to be diluted by the water vapor 302 from the first process air stream 300, where it is then transferred from the heat and mass exchanger to the electrolysis stack. The result is that the process air stream is dehumidified.
[0071] The removal air stream 314 is received and flows through the heat and mass exchanger along a first side of the second water vapor permeable membrane 310. The low concentration liquid desiccant 332 also flows through the heat and mass exchanger along a second side of the second water vapor permeable membrane 310. The coolant air stream 314 and the low concentration liquid desiccant 332 are separated by the second vapor permeable membrane 310. The water vapor 312 flows across the second vapor permeable membrane 310 from the low concentration liquid desiccant 332 into the removal air stream 314. The low concentration liquid desiccant 332 thus becomes more concentrated due to the evaporation of the water vapor 312 from the low concentration liquid desiccant 332 into the removal air stream, where it is then transferred to the electrodialysis stack.
[0072] In the heat and mass exchanger, the rich liquid desiccant 320 and the lean liquid desiccant 332 are separated by a water vapor impermeable barrier 306. Heat 308 from the rich liquid desiccant 320 is transferred across the barrier 306 to the lean liquid desiccant 332. The result is cooling of the inlet air 300.
[0073] In the electrolysis stack, the concentrated liquid desiccant 320 from the heat and mass exchanger is split into two concentrated streams 324 and 326 that are passed through separate channels of the electrodialysis stacks 344 and 352. During electrodialysis, the electrodialysis stacks remove ions from the concentrated streams 324 and 326 to produce streams 328 and 330 that contain low concentrations of ions. The dilute streams 328 and 330 are then combined to produce the dilute liquid desiccant 332, which is recycled back to the heat and mass exchanger.
[0074] Additionally, in the electrolysis stack, the dilute liquid desiccant 332 from the heat and mass exchanger is forced into a single central channel 348 of the electrodialysis stack located between channels 344 and 352. During electrolysis, the electrodialysis stack transfers ions into the central channel 348 to produce concentrated liquid desiccant 320, which is recycled back to the heat and mass exchanger.
[0075] Ions move from channels 344 and 352 to channel 348 by crossing ion-permeable membranes 342, 346, 350, and 354. In electrolysis, ions move according to an electric current applied to the stack, with cations moving away from the cathode toward the anode and anions moving away from the anode toward the cathode. In the illustrated embodiment, structure 340 can be either a cathode or an anode, depending on the desired configuration of the electrodialysis stack. Similarly, structure 356 can be either a cathode or an anode. As one skilled in the art will recognize, when structure 340 is a cathode, structure 356 is an anode. Similarly, when structure 340 is an anode, structure 356 is a cathode. Additional electrodialysis flow channels and membranes can be located between the anode and cathode, and multiple electrodialysis stacks can be arranged in series. For example, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20 or more electrodialysis stacks can be arranged in series.
[0076] In this embodiment, the low-concentration liquid desiccant 332, after exiting the heat and mass exchanger, is transferred to the electrodialysis stack where it undergoes electrodialysis. The result of such electrodialysis is that the low-concentration liquid desiccant 332 is then converted and transferred to the high-concentration liquid desiccant 320 and returned to the heat and mass exchanger. Similarly, the high-concentration liquid desiccant 320, after exiting the heat and mass exchanger, is transferred to the electrodialysis stack where it undergoes electrodialysis. The result of such electrodialysis is that the high-concentration liquid desiccant 320 is then converted and transferred to the low-concentration liquid desiccant 332 and returned to the heat and mass exchanger. The integration of the heat and mass exchanger with the electrodialysis stack allows the two liquid desiccant streams to be exchanged while the inlet supply air 300 is being treated. This allows for repeated reuse of both desiccant streams as volume and ionic content are transferred back and forth between the liquid desiccant streams while using less electricity. The end result is an integrated system that is more energy efficient than indirect evaporative cooling and dehumidification systems currently on the market.
[0077] Further, in this embodiment, the low concentration liquid desiccant 332 and the high concentration liquid desiccant 320 are each the same halide salt solution. As shown in FIG. 3, the flows of the desiccant streams 320 and 332 overlap or move through the disclosed system illustrated in FIG. 3 in a continuous quasi-figure-8 pattern, with the low concentration desiccant stream 332 being processed to become the high concentration desiccant stream 320 and vice versa. To that end, both desiccant streams are made from the same solution, often a halide salt solution, with the difference between the two being the concentration of ions in the particular desiccant flow stream, i.e., when both desiccant streams enter the heat and mass exchanger, the high concentration liquid desiccant 320 has a salt ion concentration of 35% by weight and the low concentration liquid desiccant 332 has a salt ion concentration of 15% by weight. The halide salts include sodium chloride (NaCl), potassium chloride (KCl), potassium iodide (KI), lithium chloride (LiCl), copper(II) chloride (CuCl), and other salts. 2 ), silver chloride (AgCl), calcium chloride (CaCl 2), chlorine fluoride (ClF), bromomethane (CH 3 Br), iodoform (CHI 3 ), hydrogen chloride (HCl), hydrogen bromide (HBr), lithium bromide (LiBr), and combinations thereof. In some embodiments, the halide salt solution is selected from LiCl and CaCl 2 In some embodiments, the halide salt solution is LiCl. The desiccant can also be potassium acetate or 1-ethyl-3-methylimidazolium acetate (CAS number 143314-17-4).
[0078] In this embodiment, water 302 removed from the inlet supply air 300 travels directly into the high concentration desiccant stream 320. In contrast, water 312 is removed from the low concentration desiccant stream 332 into the exhaust or removal air stream 314, and the water is then removed from the integrated system. As shown in FIG. 3, the flows of the desiccant streams 320 and 332 overlap or operate in a quasi-figure-8 pattern, with the low concentration desiccant stream 332 being electrolytically processed into the high concentration desiccant stream 320, and vice versa. By introducing water 302 into the system of this embodiment via the high concentration desiccant stream 320, the disclosed system recycles water from the inlet supply air 300 for use in cooling and dehumidifying more of the inlet supply air 300 in subsequent operating cycles. By doing so, the system of this embodiment is able to utilize less water from city resources, mitigating environmental impacts.
[0079] 4 and 5 illustrate a fifth embodiment of a dehumidification system provided by the present disclosure, illustrating yet another example of water absorption (performed in a heat and mass exchanger) and ion separation (performed in an electrodialysis stack). In this embodiment, the process illustrated in FIG. 4 may be performed separately from the process illustrated in FIG. 5. Such processes may be split between separate structures in a closed integrated system. The illustrated embodiments of FIG. 4 and FIG. 5 are not performed in loops consecutive to one another, although they may be adjusted for such operation. Rather, the illustrated embodiments of FIG. 4 and FIG. 5 are performed in two complementary, but separate, loops.
[0080] In the portion of this embodiment presented in FIG. 4, the process of water absorption involves moisture 402, in the form of water vapor, transferring from process air 400 across a vapor permeable membrane 404 to liquid desiccant 420, and heat 408 from the liquid desiccant 420 transferring across a water vapor impermeable barrier 406 to the coolant side (e.g., such as that illustrated in FIG. 5).
[0081] Process air 400 flows along one side of a vapor permeable membrane 404 that separates the air from the desiccant stream 420 that flows on the other side of the membrane 404. In some embodiments, the desiccant stream 420 contains a high concentration of salt ions, resulting in a high concentration desiccant stream 420. Moisture (water vapor) 402 flows across the membrane 404 from the process air 400 to the high concentration desiccant stream 420. On the other side of the flow channel containing the high concentration liquid desiccant 420 is a barrier 406 that is impermeable to water vapor but allows the free transfer of energy in the form of heat. In the illustrated embodiment, heat 408 flows from the high concentration desiccant stream 420 across the barrier 406 to the coolant side. Once the water 402 has been transferred from the process air 400 to the high concentration liquid desiccant 420, the desiccant 420 is transferred from the heat and mass exchanger to the electrodialysis stack.
[0082] In this embodiment, water 402 is removed and transferred from the inlet supply air 400 into the concentrated desiccant stream 420. Thus, the disclosed system is capable of directly reusing water from the inlet supply air 400 for use in cooling and dehumidifying more of the inlet supply air 400 in subsequent operating cycles. By doing so, the system of this embodiment is able to utilize less water from city resources, mitigating environmental impacts.
[0083] In the electrodialysis stack, concentrated desiccant stream 420 is split into concentrated streams 424 and 426 that flow into channels 444 and 452. A flow of fluid desiccant containing a low concentration of salt ions 434 is conveyed and transferred from another location (not shown) to enter a central channel 448 located between channels 444 and 452. During electrolysis, the electrodialysis stack transfers ions into central channel 448 to produce concentrated liquid desiccant 420, which is recycled back to the heat and mass exchanger.
[0084] Ions move from channels 444 and 452 to channel 448 by crossing ion-permeable membranes 442, 446, 450, and 454 in the direction shown by the curved arrows. In electrolysis, ions move in response to an electric current applied to the stack, with cations moving away from the cathode toward the anode and anions moving away from the anode toward the cathode. In the illustrated embodiment, structure 440 can be either a cathode or an anode, depending on the desired configuration of the electrodialysis stack. Similarly, structure 456 can be either a cathode or an anode. As one skilled in the art will recognize, when structure 440 is a cathode, structure 456 is an anode. Similarly, when structure 440 is an anode, structure 456 is a cathode. Additional electrodialysis flow channels and membranes can be located between the anode and cathode, and multiple electrodialysis stacks can be arranged in series. For example, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20 or more electrodialysis stacks can be arranged in series.
[0085] In this embodiment, the fluid desiccant containing a low concentration of salt ions 434 becomes highly concentrated in salt ions as a result of electrodialysis and becomes a concentrated liquid desiccant 420 that is transferred back to the heat and mass exchanger for further processing recycle.
[0086] The concentrated streams 424 and 426 lose salt ions during electrolysis and become dilute streams 428 and 430 which are combined into dilute fluid desiccant 432 which is transferred to another part of the system for use as a dilute liquid desiccant in another part of the integrated system.
[0087] Further, in this embodiment, the fluid desiccant containing low concentration of salt ions 434 and the high concentration liquid desiccant 420 are each the same halide salt solution. The system illustrated in FIG. 4 represents a portion of a closed system whereby the fluid desiccant containing low concentration of salt ions 434 is processed into the high concentration desiccant stream 420. To ensure consistent operability, the salt solution must be the same solution, often a halide salt solution, with the difference between the two being the concentration of ions in the particular desiccant flow stream, i.e., when both desiccant enter the heat and mass exchanger, the high concentration liquid desiccant 420 has a salt ion concentration of 35% by weight and the low concentration liquid desiccant 432 has a salt ion concentration of 15% by weight. The halide salts can be sodium chloride (NaCl), potassium chloride (KCl), potassium iodide (KI), lithium chloride (LiCl), copper(II) chloride (CuCl), and potassium iodide (KI). 2 ), silver chloride (AgCl), calcium chloride (CaCl 2 ), chlorine fluoride (ClF), bromomethane (CH 3 Br), iodoform (CHI 3 ), hydrogen chloride (HCl), lithium bromide (LiBr), hydrogen bromide (HBr), and combinations thereof. In some embodiments, the halide salt solution is selected from LiCl and CaCl 2 In some embodiments, the halide salt solution is LiCl. The desiccant can also be potassium acetate or 1-ethyl-3-methylimidazolium acetate (CAS number 143314-17-4).
[0088] 5, the process of water cooling involves the transfer of heat 500 across a water vapor impermeable barrier 502 to a liquid desiccant 520. Water vapor 506 from the liquid desiccant 520 transfers across a vapor permeable membrane 504 to a flow of removal or coolant air 508. The heat 500 may come from a water absorption process, such as that illustrated in FIG.
[0089] In some embodiments, the desiccant stream 520 contains a low concentration of salt ions, resulting in a low concentration desiccant stream 520. The low concentration fluid desiccant 520 flows along the other side of a vapor permeable membrane 504 that separates the desiccant stream 520 from the removal or coolant air 508 that flows on one side of the membrane 504. Moisture (water vapor) 506 flows across the membrane 504 from the low concentration fluid desiccant 520 to the removal or coolant air 508. On the other side of the flow channel containing the low concentration liquid desiccant 520 is a barrier 502 that is impermeable to water vapor but allows the free transfer of energy in the form of heat. In the illustrated embodiment, heat 500 flows from the water absorbing side across the barrier 502 into the low concentration desiccant stream 520. Once the water 402 has been transferred from the low concentration liquid desiccant 520, the desiccant 520 is transferred from the heat and mass exchanger to the electrodialysis stack.
[0090] In the electrodialysis stack, a first flow of fluid desiccant containing a high concentration of salt ions 526 is brought from another location (not shown) and split into high concentration streams 528 and 530 that flow into channels 544 and 552. Lean fluid desiccant 520 coming from the heat and mass exchanger is transferred to a central channel 548 located between channels 544 and 552. During electrolysis, the electrodialysis stack transfers ions to the central channel 548 to produce a second flow of fluid desiccant containing a high concentration of salt ions 524, which is transferred to another part of the closed integrated system.
[0091] During electrolysis, concentrated streams 528 and 530 lose salt ions and become dilute streams 532 and 534. The streams combine to form dilute fluid desiccant 520, which is then recycled back to the heat and mass exchanger for further rounds of processing.
[0092] Ions move from channels 544 and 552 to channel 548 by crossing ion-permeable membranes 542, 546, 550, and 554 in the direction shown by the curved arrows. In electrolysis, ions move in response to an electric current applied to the stack, with cations moving away from the cathode toward the anode and anions moving away from the anode toward the cathode. In the illustrated embodiment, structure 540 can be either a cathode or an anode, depending on the desired configuration of the electrodialysis stack. Similarly, structure 556 can be either a cathode or an anode. As one skilled in the art will recognize, when structure 540 is a cathode, structure 556 is an anode. Similarly, when structure 540 is an anode, structure 556 is a cathode. Additional electrodialysis flow channels and membranes can be located between the anode and cathode, and multiple electrodialysis stacks can be arranged in series. For example, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20 or more electrodialysis stacks can be arranged in series.
[0093] Further, in this embodiment, the fluid desiccant containing the high concentration of salt ions 526 and the low concentration liquid desiccant 520 each contain the same halide salt solution. To ensure consistent operability, the salt solution must be the same solution, often a halide salt solution, with the difference between the two being the concentration of ions in the particular desiccant flow stream, i.e., when both desiccant enter the heat and mass exchanger, the high concentration liquid desiccant 524 has a salt ion concentration of 35% by weight and the low concentration liquid desiccant 520 has a salt ion concentration of 15% by weight. The halide salts can be sodium chloride (NaCl), potassium chloride (KCl), potassium iodide (KI), lithium chloride (LiCl), copper(II) chloride (CuCl), and potassium iodide (KI). 2 ), silver chloride (AgCl), calcium chloride (CaCl 2 ), chlorine fluoride (ClF), bromomethane (CH 3 Br), iodoform (CHI 3), hydrogen chloride (HCl), lithium bromide (LiBr), hydrogen bromide (HBr), and combinations thereof. In some embodiments, the halide salt solution is selected from LiCl and CaCl 2 In some embodiments, the halide salt solution is LiCl. The desiccant can also be potassium acetate or 1-ethyl-3-methylimidazolium acetate (CAS number 143314-17-4).
[0094] [Experimental Example] [Experimental Example 1] FIG. 6 illustrates a heat and mass exchanger consistent with an embodiment provided by the present disclosure. On the left side of the "plate," FIG. 6 shows how water vapor can diffuse through the membrane and be absorbed into the concentrated salt solution desiccant stream. On the right side of the "plate," water evaporates from the diluted salt solution desiccant stream and passes through the membrane into the individual air streams. The salt solution with the lower concentration (on the right side of the "plate") has a higher vapor pressure, thus evaporating water into the coolant air stream, while water vapor is removed from the process air stream and absorbed into the high concentration salt solution. Absorption and evaporation occur simultaneously, inducing a strong driving force for heat transfer from the high concentration solution to the low concentration solution. As presented herein, a heat and mass exchanger such as that illustrated in FIG. 6 can work as part of an integrated system, which also includes one or more electrolysis stacks for electrochemical regeneration using ion transfer to concentrate the desiccant, and the mass and heat exchanger provides absorbents for the four fluids and does not accept water from the diluted desiccant stream. The four fluids are a process air stream, a high salt solution fluid desiccant, a low salt solution fluid desiccant, and a removal or coolant air stream.
[0095] [Experimental Example 2] Electrodialysis or other ion-separation techniques are promising regeneration methods, where salt ions and water molecules are separated without energy-intensive liquid / vapor phase changes. The process transfers ions from an already dilute desiccant stream and transports them across an ion exchange membrane to further concentrate the strong desiccant stream. Either stream can be stored for subsequent use. Electrodialysis is common to desalination and wastewater treatment, but not for high concentration desiccant, which is useful for the systems and methods provided by the present disclosure. Existing research focuses exclusively on the energy to transport water from one concentration to another, rather than how to integrate electrodialysis into the liquid-desiccant cycle.
[0096] Electrochemical regeneration, known to have been performed prior to the filing of this application, is shown in FIG. 7, where positive and negative ions migrate across cation and anion membranes to produce concentrated and diluted liquid streams. However, removal of the diluted stream from the prior art electrochemical regeneration process requires a very low concentration of desiccant, so that the desiccant can be dumped down the drain (almost pure water) just as the concentrate is for a standard vapor compression air conditioner. However, the performance of electrodialysis and other electrochemical processes suffers when operating across large concentration gradients, especially when the diluted stream is very dilute. This is necessary to regenerate the desiccant, resulting in 35% (by weight) liquid desiccant.
[0097] In contrast, the approach disclosed herein produces a low concentration desiccant stream (about 15% by weight) rather than pure water. Water is removed by directing the low concentration solution to the cooling side of a four-fluid dehumidifier (shown in FIG. 6), where the solution is evaporated to evaporate and cool the concentrated desiccant stream and remove the absorbed heat from the desiccant. High (about 35% by weight) and medium (about 15% by weight) concentration fluid desiccants have not been explored for electrodialysis to date. The present disclosure provides a system that utilizes fluid desiccant streams with these concentrations. As explained above, this can be accomplished using a multi-stage electrochemical deionization system that reduces the membrane concentration gradient by distributing such gradient over several ion transport stages.
[0098] A model of the absorbent was made to show how the concentration difference can be reduced for this process. The modeling results are shown in FIG. 8. Depending on the ambient humidity, the concentration difference can be very small, dramatically improving the efficiency. The diluted stream, even at high ambient air humidity, is still far from pure water (which would need to be discharged down the drain), allowing for a more efficient electrochemical process with significantly fewer stages.
[0099] To predict the required concentration of the desiccant streams, a model of four fluids, two air streams and two desiccant streams, shown in Figure 2, was constructed. The two air channels are approximately 3 mm wide and the desiccant channel is approximately 0.5 mm wide. A 20 micron porous membrane is used between the desiccant and air. The model assumes a cross-flow geometry with the following flow directions: High concentration desiccant - vertical downwards Low concentration desiccant - vertical downwards Process Air Flow – Horizontal Coolant air flow – vertical downwards
[0100] The model is a finite difference model that calculates the heat and mass transfer between the four fluids at each node in the device. There are 15 nodes in the horizontal direction and 8 nodes in the vertical direction. Heat and mass transfer coefficients are calculated for each fluid based on correlations from the literature, including the case of water vapor diffusion across the membrane. The membrane may be included in both liquid desiccant streams, in neither, or in some combination.
[0101] The heat and mass transfer flows between the different streams are shown in Figure 9 along with the temperature, humidity and concentration profiles. The vapor pressure of the desiccant on the process side is low to set up a humidity driving potential from the air to the desiccant. Absorption of water vapor into the desiccant releases enthalpy of vaporization and heats the desiccant. The heat in such desiccant is then transferred to the process air stream, across the plate and into the low concentration liquid desiccant. Water vapor evaporates from this second desiccant stream, thereby absorbing heat. This causes the coolant air stream, also across the plate, to cool the high concentration desiccant. The concentration polarization in the desiccant film is also calculated using an estimate of the mass transfer coefficient for the diffusion of water molecules inside the desiccant film.
[0102] The model uses an iterative solver in the Engineering Equation Solver program to calculate the outlet temperature and outlet concentration or humidity. The model has the following independent variables: Liquid desiccant flow rate (4L / min) Desiccant inlet temperature (30℃) Return air temperature (27°C) Return air inlet absolute humidity (11.1g / kg) Process and coolant side air flow velocity (3400m 3 / time) Inlet coolant air temperature (35℃) Inlet coolant air absolute humidity (range 10g / kg~20g / kg) · Note: Process inlet temperature and humidity are calculated assuming 30% ventilation air (30% outdoor air (which corresponds to the coolant air) and 70% return air).
[0103] The outlet absolute humidity is specified in the model (8g / kg) and then run for different inlet absolute humidity. The model solves for the required strong and weak side concentrations to produce the required outlet absolute humidity so that the water evaporation rate in the coolant air stream matches the water vapor absorption rate on the process side. This ensures a mass balance for water entering and leaving the system.
[0104] The modeling results are shown in Figure 8, which shows how the concentration is higher than necessary to dump the dilute stream to drain (mass fraction < 0.0002). The higher the mass fraction of the dilute stream, the less energy the electrodialysis regenerator uses.
[0105] [Experimental Example 3] Figure 1 shows how the three electrodialysis stacks are integrated with heat and mass exchangers so that the desiccant flows in a continuous stream. As shown at the top of Figure 1, the high concentration liquid desiccant 150 is in its most concentrated state when it enters the second flow channel 196, where the mass concentration of salt per mass of solution is about 35% salt by weight. The process continues as follows: On the process / left side of the plate 182, the concentrated fluid desiccant 150 absorbs water from the process air 180 and upon exiting the second flow channel 196 the concentration is reduced from 35% salt concentration by weight to 30% salt concentration by weight. In the electrodialysis stack 106, as the concentrated fluid desiccant 150 travels through the fifth electrodialysis flow channel 194, it releases ions 174 and crosses the membrane 175, and the salt concentration is further reduced from 30% salt by weight (when the concentrated fluid desiccant 150 enters the channel 194) to 25% salt by weight when it exits the channel 194 and exits as a first stream of intermediate low concentration liquid desiccant 154; and In contrast, the second intermediate concentrated liquid desiccant stream 164 traveling in the sixth electrodialysis flow channel 195 increases in salt concentration from 30% when it enters channel 195 to 35% when it exits flow channel 195 as concentrated liquid fluid desiccant stream 150 which is now recycled. In the electrodialysis stack 104, as the medium / low concentration fluid desiccant 154 travels through the third electrodialysis flow chamber 192, it releases ions 172 and crosses the membrane 173, further reducing the salt concentration from 25% salt by weight (when the medium / low concentration fluid desiccant 154 enters the channel 192) to 20% salt by weight when it exits the channel 192 and exits as a second stream of medium low concentration liquid desiccant 156; and In contrast, the first intermediate-rich liquid desiccant stream 162 traveling in the fourth electrodialysis flow channel 193 increases in salt concentration from 25% when it enters channel 193 to 30% when it exits flow channel 193 as the second intermediate-rich liquid desiccant 164. In the electrodialysis stack 102, as the second stream of intermediate dilute liquid desiccant 156 travels through the flow chamber 190, it releases ions 170 and crosses the membrane 171, where the salt concentration is further reduced from 20% salt by weight (as the second stream enters the channel 190) to 15% salt by weight as it exits the channel 190, where it exits as a recycled dilute fluid desiccant stream 158; and In contrast, the low concentration fluid desiccant stream 158 exiting the third flow channel 1104 of the heat and mass exchanger 100, where it travels through the second electrodialysis flow channel 191, increases in salt concentration from 20% when it exits flow channel 191 to 25% when it exits flow channel 191 as the first intermediate high concentration liquid desiccant stream 162. The recycled low concentration fluid desiccant 158 travels back to the heat and mass exchanger 100 where it enters the third flow channel 1104. Water evaporates from the desiccant 158 and enters the coolant or exhaust air stream 199, which is then discharged outside, concentrating the salt concentration of the fluid desiccant 158 to 15% to 20% by weight. This step also removes water from the system that was absorbed by the high concentration desiccant 150 in the flow channel 196 of the heat and mass exchanger.
[0106] The low concentration fluid desiccant 158 enters the electrodialysis stack 102 from the mass and heat exchanger 100 and is gradually concentrated as it progresses through the three electrodialysis stacks 102 , 104 and 106 until it becomes the high concentration liquid desiccant 150 .
[0107] The process can be modified to reduce the concentration of low concentration desiccant 158 to below 15% by adding an additional electrodialysis stack.
[0108] Desiccant storage tanks can also be added to stream 150 (highest concentration) and stream 158 (lowest concentration). This allows the system to use electricity at times separate from cooling demands and store two desiccant concentrates for later use. It also allows the average moisture content of the desiccant to be changed, thus allowing the volume of the system to be increased and decreased as the concentration changes.
[0109] The configuration in Figure 1 reduces the concentration change across each electrodialysis stack. In the illustrated embodiment, a 5% concentration change is shown for the two streams, both of which enter at the same concentration. The maximum delta concentration across each electrodialysis stack is then only 5%, while the total change in concentration is 20% (35% to 15%). This change can also be reduced by increasing the number of electrodialysis stacks with the same total concentration change (e.g., 6 ED stacks with over 20% would have a delta concentration of only 2.5% per ED stack).
[0110] Without integrating the low concentration liquid desiccant stream 158 in channel 1104 into a heat and mass exchanger that removes water from the desiccant stream 158 without the addition of energy, electrodialysis-based systems using liquid desiccant would need to dump the desiccant down the drain. This requires very low concentrations so that salt ions do not contaminate the waste-water stream and are not reduced by removing the ions from the system. The threshold for drinking water is about 0.2 parts per thousand, which again corresponds to about 1-2 kg of salt dumped into the wastewater stream per year, or about 6% of the total salt ions lost in the system per year. Thus, the disclosed embodiments significantly advance the state of the art.
[0111] [Experimental Example 4] To understand the energy impact of the disclosed integrated system, it is useful to estimate the energy required to regenerate the desiccant from 30% mass fraction to 35% mass fraction after water has been absorbed from the air stream. This was done using the calculations described below and the results are shown in Figure 10.
[0112] The total power output in kW for a desiccant flow of 1 L / min is shown in Figure 10. Operation of the disclosed system uses between 0.5-1.5 kW, depending on the minimum concentration, while 4 kW is required to reduce the desiccant concentration to 0.2 parts per thousand as required by the prior art system. Thus, the disclosed system uses 12-38% of the energy as the electrodialysis stack alone.
[0113] In addition to saving power, the disclosed system improves the performance of the electrodialysis process for concentrating the desiccant by: Elimination of disposal of LiCl (or other desiccant) ions into municipal wastewater streams; Eliminates the loss of this desiccant from the system, which must be replaced; reducing the capital costs of electrodialysis stacks by reducing the number of electrodialysis stacks required; Essentially, in the present process, evaporation provides cooling to the dehumidified air stream, thereby minimizing the cooling required to maintain a desired outlet temperature from the disclosed system.
[0114] Energy consumption calculation: The total energy consumption of the electrodialysis components of the manifold shown above is calculated by determining the power required for each unit and then summing these values. For each electrodialysis stack,
[0115]
number
[0116]
number
[0117] Assuming that most of the voltage drop is due to resistive losses (i.e., ignoring all junction potentials), the required voltage input is
[0118]
number
[0119] The conductivity of each layer varies as a function of the concentration of the salt stream, the lower the concentration the lower the conductivity. These results use dilute solution theory, which ignores ion-ion interactions, which can be taken into account when calculating ohmic losses. Concentrated solution theory predicts a slight benefit of lowering the salt concentration, since ion-ion "friction" is reduced. However, this effect should be small compared to concentration effects.
[0120] Ionic conductivity is a function of the local salt concentration and the diffusion coefficient of the chemical species.
[0121]
number
[0122] If the inventors assume that the rinse solution is locally electrically neutral, the total ionic conductivity is
[0123]
number
[0124] Substituting the conductivity into the voltage equation allows us to calculate the various potential drops required by each electrodialysis stack (A, B and C in Table 1 below). Assuming N=20 for each stack, a separation distance of 1 mm, a constant flow rate Q=1 L / min and area A=25 cm 2 Using, the potential required by each unit is,
[0125] [Table 1] It is.
[0126] Thus, the total power required would be 0.461 kW for the example shown in the data in Table 1 (ω max =0.35, ω min =0.15). Units containing more dilute streams require the application of higher voltages due to their lower conductivity. Using different numbers of modules, the outputs for different minimum concentrations can be calculated, which gives the curves in Figure 9. EXAMPLES
[0127] [Specified Examples] The examples set forth below refer to embodiments of the systems and methods provided by the present disclosure. [Example 1] a heat and mass exchanger; at least one electrodialysis stack; A high salt ion concentration liquid desiccant; Low salt ion concentration liquid desiccant and A dehumidification system comprising: a high salt ion concentration liquid desiccant and a low salt ion concentration liquid desiccant are present in a single continuous flow connecting the heat and mass exchanger and the at least one electrodialysis stack; a high salt ion concentration liquid desiccant absorbs water from the process air stream in the heat and mass exchanger and expels salt ions to a low salt ion concentration liquid desiccant in the at least one electrodialysis stack; a low salt ion concentration liquid desiccant releasing water to a rejection air stream in a heat and mass exchanger and accepting ions from a high salt ion concentration liquid desiccant in at least one electrodialysis stack; Dehumidification system.
[0128] [Example 2] The dehumidification system of Example 1, wherein the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant comprise the same salt solution.
[0129] [Example 3] The dehumidification system of example 1 or example 2, wherein the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant comprise a salt solution selected from sodium chloride, potassium chloride, potassium iodide, lithium chloride, copper (II) chloride, silver chloride, calcium chloride, chlorine fluoride, bromomethane, iodoform, hydrogen chloride, lithium bromide, hydrogen bromide, potassium acetate, 1-ethyl-3-methylimidazolium acetate, and combinations thereof.
[0130] [Example 4] The dehumidification system of example 2 or example 3, wherein the salt solution is selected from lithium chloride and calcium chloride.
[0131] [Example 5] The dehumidification system of any one of Examples 2 to 4, wherein the salt solution is lithium chloride.
[0132] [Example 6] The dehumidification system of any one of Examples 1 to 5, wherein the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant upon entering the heat and mass exchanger is 20 weight percent (wt%).
[0133] [Example 7] The dehumidification system of any one of Examples 1 to 6, wherein the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant upon entering the at least one electrolysis stack is 10% by weight.
[0134] [Example 8] The dehumidification system of any one of Examples 1 to 7, wherein the high salt ion concentration liquid desiccant has a salt ion concentration of 35% by weight upon entering the heat and mass exchanger.
[0135] [Example 9] The dehumidification system of any one of Examples 1 to 8, wherein the low salt ion concentration liquid desiccant has a salt ion concentration of 15% by weight upon entering the heat and mass exchanger.
[0136] [Example 10] The dehumidification system of any one of Examples 1 to 9, wherein in at least one electrodialysis stack, a high salt ion concentration liquid desiccant is converted to a low salt ion concentration liquid desiccant and a low salt ion concentration liquid desiccant is converted to a high salt ion concentration liquid desiccant.
[0137] [Example 11] 11. The dehumidification system of any one of Examples 1 to 10, comprising 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19 or 20 electrodialysis stacks arranged in series between the cathode and the anode.
[0138] [Example 12] dehumidifying the process air stream by absorbing water from the process air stream into a high salt ion concentration liquid desiccant in a heat and mass exchanger; releasing water from the low salt ion concentration liquid desiccant into a removal air stream in a heat and mass exchanger; transferring the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant to at least one electrodialysis stack; displacing salt ions from the high salt ion concentration liquid desiccant to a low salt ion concentration liquid desiccant in at least one electrodialysis stack to convert the high salt ion concentration liquid desiccant to a low salt ion concentration liquid desiccant; receiving ions from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant in at least one electrodialysis stack to convert the low salt ion concentration liquid desiccant to a high salt ion concentration liquid desiccant; A method for dehumidifying air, comprising: the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant flow in a single continuous flow connecting the heat and mass exchanger and the at least one electrodialysis stack; The converted high salt ion concentration liquid desiccant and the converted low salt ion concentration liquid desiccant are transferred to a mass and heat exchanger; method.
[0139] [Example 13] 13. The method of example 12, further comprising removing heat from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant in a heat and mass exchanger to cool the dehumidified process air stream.
[0140] [Example 14] The method of example 12 or example 13, wherein the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant comprise the same salt solution selected from sodium chloride, potassium chloride, potassium iodide, lithium chloride, copper(II) chloride, silver chloride, calcium chloride, chlorine fluoride, bromomethane, iodoform, hydrogen chloride, lithium bromide, hydrogen bromide, potassium acetate, 1-ethyl-3-methylimidazolium acetate, and combinations thereof.
[0141] [Example 15] The method of example 14, wherein the salt solution is selected from lithium chloride and calcium chloride.
[0142] [Example 16] The method of Example 14 or Example 15, wherein the salt solution is lithium chloride.
[0143] [Example 17] The method of any one of Examples 12 to 16, wherein when the high salt ion concentration liquid desiccant absorbs water from the process air stream and the low salt ion concentration liquid desiccant releases water, the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant is 20 weight percent (wt%).
[0144] [Example 18] initiating the displacement of salt ions from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant in at least one electrodialysis stack; and when starting to accept ions from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant in at least one electrodialysis stack, The difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant is 10% by weight. The method of any one of Examples 12 to 16.
[0145] [Example 19] The method of any one of Examples 12 to 18, wherein the high salt ion concentration liquid desiccant has a salt ion concentration of 35% by weight when absorbing water from the process air stream.
[0146] [Example 20] The method of any one of Examples 12 to 19, wherein the low salt ion concentration liquid desiccant has a salt ion concentration of 15% by weight when releasing water into the removal air stream. [Explanation of symbols]
[0147] 100 Heat and mass exchangers, mass and heat exchangers 102 Electrolysis stacks, electrodialysis stacks 104 Electrolysis stacks, electrodialysis stacks 106 Electrolysis stacks, electrodialysis stacks 150 concentrated liquid desiccant, desiccant flow, concentrated desiccant flow, concentrated fluid desiccant, concentrated liquid fluid desiccant flow, 152 High-concentration liquid desiccant 154 Medium / low concentration liquid desiccant, desiccant flow, medium / low concentration fluid desiccant 156 Medium low concentration liquid desiccant, desiccant flow 158 Dilute liquid desiccant, desiccant flow, dilute desiccant flow, dilute fluid desiccant flow, dilute liquid desiccant flow 162 Intermediate high concentration liquid desiccant, desiccant flow, Intermediate high concentration liquid desiccant flow 164 Intermediate high concentration liquid desiccant, desiccant flow, Intermediate high concentration liquid desiccant flow 170 Cations 171 Cation-permeable membrane 172 Cations 173 Cation-permeable membrane 174 Cations 175 Cation-permeable membrane 176 Humidity (water vapor), water 178 Humidity, Water 180 Inlet supply air, process air 182 Separation wall, plate 184 fever 186 Vapor-permeable membrane 190 Electrodialysis flow channels, flow chambers, channels 191 Electrodialysis Flow Channel 192 Electrodialysis flow channel, electrodialysis flow chamber 193 Electrodialysis Flow Channel 194 Electrodialysis Flow Channel 195 Electrodialysis Flow Channel 196 Flow Channel 198 Vapor-permeable membrane 199 Exhaust air, removal air flow, exhaust air flow 200 Heat and Mass Exchangers 202 Electrolysis stack, electrodialysis stack 210 High concentration liquid desiccant, desiccant flow, high concentration desiccant flow, high concentration fluid desiccant 216 parts, high concentration fluid desiccant 218 parts, high concentration fluid desiccant 220 parts, electrodialysis stack, fraction, low concentration fluid desiccant 222 part, fraction 224 Thin liquid desiccant, desiccant flow, thin desiccant flow, thin fluid desiccant 230 parts, low concentration fluid desiccant 232 parts, low concentration fluid desiccant 234 parts, low concentration fluid desiccant 236 Parts, Fractions, and High-Concentration Fluid Desiccants 238 Parts, Fractions, and Concentrated Fluid Desiccants 240 Parts, Fractions, and Concentrated Fluid Desiccants 242 Electrolyte solution 244 Electrolyte solution 250 Anode Plate 252 Cation exchange membrane, ion permeable membrane, cation permeable membrane 254 Anion exchange membrane, ion permeable membrane, anion permeable membrane 256 Cation exchange membranes, ion permeable membranes, cation permeable membranes 258 Anion exchange membrane, ion permeable membrane, anion permeable membrane 260 Cation exchange membrane, ion permeable membrane, cation permeable membrane 262 Anion exchange membrane, ion permeable membrane, anion permeable membrane 264 Cathode Plate 270 Inlet supply air 272 Humidity (water vapor), water 274 Vapor-permeable membrane 276 Separation wall 278 Vapor-permeable membrane, heat 280 Humidity (water vapor), water 282 Exhaust air, removal air flow, exhaust air flow 290 Flow Channel 292 Flow Channel 294 Flow Channel 296 Flow Channel 300 Process air flow, inlet air, inlet supply air 302 Water vapor, water 304 Vapor permeable membrane 306 Water Vapor Impermeable Barrier 308 fever 310 Water vapor permeable membrane, vapor permeable membrane 312 Water vapor, water 314 Removal air flow, coolant air flow 320 High concentration liquid desiccant, desiccant flow 324 High concentration flow 326 High concentration flow 328 Flow, low concentration flow 330 Flow, low concentration flow 332 Low concentration liquid desiccant, desiccant flow 340 Structure 342 Ion-permeable membrane 344 Electrodialysis stack, channel 346 Ion-permeable membrane 348 Central Channel 352 Electrodialysis stack, channel 354 Ion-permeable membrane 356 Structure 400 Process air, inlet supply air 402 Humidity, moisture (water vapor), water 404 Vapor permeable membrane 406 Water Vapor Impermeable Barrier 408 fever 420 Liquid desiccant, desiccant flow, high concentration desiccant flow, high concentration liquid desiccant 424 High concentration flow 426 High concentration flow 428 Low concentration flow 430 Low concentration flow 432 Low-concentration fluid desiccant 434 Salt Ion 440 Structure 442 Ion-permeable membrane 444 Channel 446 Ion-permeable membrane 448 Central Channel 450 Ion-permeable membrane 452 Channels 454 Ion-permeable membrane 456 Structure 500 heat 502 Water vapor impermeable barrier 504 Vapor permeable membrane 506 Water vapor, humidity (water vapor) 508 Removal or coolant air 520 Liquid desiccant, desiccant flow, low concentration desiccant flow, low concentration fluid desiccant, low concentration liquid desiccant 524 Salt ions, high concentration liquid desiccant 526 Salt Ion 528 High concentration flow 530 High concentration flow 532 Low concentration flow 534 Low concentration flow 540 Structure 542 Ion-permeable membrane 544 Channels 546 Ion-permeable membrane 548 Central Channel 550 Ion-permeable membrane 552 Channels 554 Ion-permeable membrane 556 Structure 1100 Flow Channel 1102 Flow Channel 1104 Flow Channel
Claims
1. 1. A method for dehumidifying air, comprising: (a) dehumidifying a process air stream by absorbing water from the process air stream into a first liquid desiccant comprising a salt solution; (b) releasing water from a second liquid desiccant containing a salt solution into a removal air stream, the second liquid desiccant having a salt ion concentration lower than the salt ion concentration of the first liquid desiccant; (c) following step (a), converting the first liquid desiccant to the second liquid desiccant by diluting the first liquid desiccant with the second liquid desiccant; (d) subsequent to step (b), converting the second liquid desiccant to the first liquid desiccant by concentrating the second liquid desiccant with the first liquid desiccant; repeating steps (a), (b), (c), and (d); Including, The method of claim 1, wherein the first liquid desiccant converted in step (d) is used in step (b) and the second liquid desiccant converted in step (c) is used in step (a).
2. 10. The method of claim 1, further comprising transferring heat from the first liquid desiccant to the second liquid desiccant to cool the dehumidified process air stream.
3. 2. The method of claim 1, wherein the salt solution of the first liquid desiccant and the salt solution of the second liquid desiccant comprise a salt selected from sodium chloride, potassium chloride, potassium iodide, lithium chloride, copper (II) chloride, silver chloride, calcium chloride, chlorine fluoride, bromomethane, iodoform, hydrogen chloride, lithium bromide, hydrogen bromide, potassium acetate, 1-ethyl-3-methylimidazolium acetate, and combinations thereof.
4. 4. The method of claim 3, wherein the salt is selected from lithium chloride and calcium chloride.
5. The method of claim 3 wherein the salt is lithium chloride.
6. 2. The method of claim 1, wherein when the first liquid desiccant absorbs water from the process air stream and the second liquid desiccant releases water, a difference in salt ion concentration between the first liquid desiccant and the second liquid desiccant is less than 20% by weight.
7. 2. The method of claim 1, wherein the difference in salt ion concentration between the first liquid desiccant and the second liquid desiccant is 10% by weight when the second liquid desiccant begins to expel salt ions from the first liquid desiccant and when the second liquid desiccant begins to accept ions from the first liquid desiccant.
8. 10. The method of claim 1, wherein the first liquid desiccant has a salt ion concentration of between 20% and 45% by weight when absorbing water from the process air stream.
9. 2. The method of claim 1, wherein the second liquid desiccant has a salt ion concentration of between 3% and 30% by weight when releasing water into the removal air stream.
10. 1. A dehumidification system comprising: a heat and mass exchanger; at least one electrodialysis stack; A high salt ion concentration liquid desiccant; Low salt ion concentration liquid desiccant and Equipped with the salt ion concentration of the low-salt ion concentration liquid desiccant is lower than the salt ion concentration of the high-salt ion concentration liquid desiccant; the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant are present in a single continuous flow, the single continuous flow connecting the heat and mass exchanger and the at least one electrodialysis stack; the high salt ion concentration liquid desiccant absorbs water from the process air stream in the heat and mass exchanger and expels salt ions to the low salt ion concentration liquid desiccant in the at least one electrodialysis stack; A dehumidification system wherein the low salt ion concentration liquid desiccant releases water to a removal air stream in the heat and mass exchanger and accepts ions from the high salt ion concentration liquid desiccant in the at least one electrodialysis stack.
11. 11. The dehumidification system of claim 10, wherein the high salt ion concentration liquid desiccant salt solution and the low salt ion concentration liquid desiccant salt solution comprise a salt selected from sodium chloride, potassium chloride, potassium iodide, lithium chloride, copper (II) chloride, silver chloride, calcium chloride, chlorine fluoride, bromomethane, iodoform, hydrogen chloride, lithium bromide, hydrogen bromide, potassium acetate, 1-ethyl-3-methylimidazolium acetate, and combinations thereof.
12. 12. The dehumidification system of claim 11, wherein the salt is selected from lithium chloride and calcium chloride.
13. 13. A dehumidification system as described in claim 11 or 12, wherein the salt is lithium chloride.
14. A dehumidification system as described in any one of claims 10 to 13, wherein the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant is 20% by weight when the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant enter the heat and mass exchanger.
15. A dehumidification system as described in any one of claims 10 to 14, wherein the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant is 10 weight % when the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant enter the at least one electrodialysis stack.
16. A dehumidification system as described in any one of claims 10 to 15, wherein the high salt ion concentration liquid desiccant has a salt ion concentration of 35% by weight when the high salt ion concentration liquid desiccant enters the heat and mass exchanger.
17. A dehumidification system as described in any one of claims 10 to 16, wherein the low salt ion concentration liquid desiccant has a salt ion concentration of 15% by weight when the low salt ion concentration liquid desiccant enters the heat and mass exchanger.
18. 18. The dehumidification system of claim 10, wherein in the at least one electrodialysis stack, the high salt ion concentration liquid desiccant is converted to the low salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant is converted to the high salt ion concentration liquid desiccant.
19. 19. A dehumidification system according to any one of claims 10 to 18, comprising 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19 or 20 electrodialysis stacks arranged in series between the cathode and the anode.
20. 1. A method for dehumidifying air, comprising: dehumidifying the process air stream in a heat and mass exchanger by absorbing water from the process air stream into a high salt ion concentration liquid desiccant comprising a salt solution; releasing water from a low-salt ion concentration liquid desiccant containing a salt solution into a removal air stream in the heat and mass exchanger, the low-salt ion concentration liquid desiccant having a lower salt ion concentration than the high-salt ion concentration liquid desiccant; transferring the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant to at least one electrodialysis stack; converting the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant in the at least one electrodialysis stack by expelling salt ions from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant; and converting the low-salt ion concentration liquid desiccant to the high-salt ion concentration liquid desiccant in the at least one electrodialysis stack by accepting ions from the high-salt ion concentration liquid desiccant to the low-salt ion concentration liquid desiccant; the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant flow in a single continuous flow, the single continuous flow connecting the heat and mass exchanger and the at least one electrodialysis stack; The method, wherein the high salt ion concentration liquid desiccant transformed by said receiving and the low salt ion concentration liquid desiccant transformed by said expelling are transferred to the mass and heat exchanger.
21. 21. The method of claim 20, further comprising transferring heat from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant in the heat and mass exchanger to cool the dehumidified process air stream.
22. 22. The method of claim 20 or claim 21, wherein the salt solution of the high salt ion concentration liquid desiccant and the salt solution of the low salt ion concentration liquid desiccant comprise a salt selected from sodium chloride, potassium chloride, potassium iodide, lithium chloride, copper (II) chloride, silver chloride, calcium chloride, chlorine fluoride, bromomethane, iodoform, hydrogen chloride, lithium bromide, hydrogen bromide, potassium acetate, 1-ethyl-3-methylimidazolium acetate, and combinations thereof.
23. 23. The method of claim 22, wherein the salt is selected from lithium chloride and calcium chloride.
24. 24. The method of claim 22 or claim 23, wherein the salt is lithium chloride.
25. 25. The method of claim 20, wherein when the high salt ion concentration liquid desiccant absorbs water from the process air stream and the low salt ion concentration liquid desiccant releases water, the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant is 20% by weight.
26. when initiating the displacement of salt ions from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant in the at least one electrodialysis stack; and When the at least one electrodialysis stack starts to receive ions from the high salt ion concentration liquid desiccant to the low salt ion concentration liquid desiccant, 25. The method of any one of claims 20 to 24, wherein the difference in salt ion concentration between the high salt ion concentration liquid desiccant and the low salt ion concentration liquid desiccant is 10% by weight.
27. 27. The method of any one of claims 20 to 26, wherein the high salt ion concentration liquid desiccant has a salt ion concentration of 35% by weight when absorbing water from the process air stream.
28. 28. The method of any one of claims 20 to 27, wherein the low salt ion concentration liquid desiccant has a salt ion concentration of 15% by weight when releasing water into the removal air stream.
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