HEAT AND MASS TRANSFER DEVICE AND SYSTEMS INCLUDING THE SAME
A heat and mass exchanger system is described. The heat and mass exchange system can include a plurality of exchange components extending across a heat and mass exchanger (HMX) duct, where a flow through the HMX duct is cross-flow relative to said exchange components. The exchange components can include a plurality of first elongated, hollow conduits and a plurality of second elongated, hollow conduit, where either the first elongated, hollow conduits or the second elongated, hollow conduits have water vapor permeable exterior walls, and a carrier air stream and a liquid desiccant stream flow in contact with opposite sides of the water vapor permeable exterior walls.
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This application claims priority to U.S. Provisional Patent Application No. 61/940,455, filed Feb. 16, 2014; U.S. Provisional Patent Application No. 61/949,893, filed Mar. 7, 2014; U.S. Provisional Patent Application No. 61/991,198, filed May 9, 2014; U.S. Provisional Patent Application No. 62/058,476, filed Oct. 1, 2014; and U.S. Provisional Patent Application No. 62/058,479, filed Oct. 1, 2014, the entireties of which are incorporated herein by reference.
FIELD OF THE INVENTIONThe present invention relates generally to the field of combined mass and heat transfer devices and systems, such as liquid desiccant air conditioning systems, that include the same.
BACKGROUNDAir conditioning refers to the heating, cooling, cleaning, humidification and dehumidification of air. The most prevalent air conditioning systems employ vapor compression cycles, in which heat is pumped from one environment to another via a refrigerant that operates under two different pressure regimes so that the temperature can be increased when heat needs to be rejected to the environment or decreased when heat is to be absorbed by the refrigerant. The pressure difference in these systems is maintained by means of a mechanical compressor. This compressor is powered using electricity. The vast majority of air conditioning systems in commercial use employ the vapor compression cycle.
The principal limitation to the vapor compression cycle is that it is for all intents and purposes a sensible heat rejection device with minor capabilities to address the latent heat needs of a building. This is because the vapor compression cycle is only able to change the temperature of the air. Given this, the prevalent manner in which vapor compression air conditioning systems address the latent heat of a building is by reducing the temperature of the air to a point below its dew point and by removing water through condensation. In most cases, the air must be reheated in order to arrive at the desired building supply air temperature. This process is energy intensive.
Methods for dehumidification of the air conditioning incoming air have been invented and proposed. Among these is the use of a liquid desiccant loop coupled with an evaporative cooling system to generate cooling and dehumidification without requiring cooling the air to the dew point. These systems are designed using a plate heat and mass transfer arrangement in which liquid desiccant flows within selectively water permeable membranes that are attached to fiat plates. The liquid desiccant flow absorbs moisture from air being dehumidified and then transfers it to a separate air stream that absorbs this moisture from the liquid desiccant. The air being dehumidified drops in temperature, cooling the air being dehumidified. Multiple plates stacked together form the heat and mass transfer device.
The plate arrangement has advantages in that it allows for a single device that does both air cooling and dehumidification using liquid desiccant streams. An example of this is described in US Patent Application, US 20100319370A1, titled “indirect evaporative cooler using membrane-contained liquid desiccant for dehumidification.”
SUMMARYA heat and mass exchanger system is described. The heat and mass exchange system can include a plurality of exchange components extending across a heat and mass exchanger (HMX) duct, where a flow through the HMX duct is cross-flow relative to said exchange components. The exchange components can include a plurality of first elongated, hollow conduits and a plurality of second elongated, hollow conduit, where either the first elongated, hollow conduits or the second elongated, hollow conduits have water vapor permeable exterior walls, and a carrier air stream and a liquid desiccant stream flow in contact with opposite sides of the water vapor permeable exterior walls.
These and other features, objects and advantages of the present invention will become more apparent to one skilled in the art from the following description and claims when read in light of the accompanying drawings.
As shown in
As used herein, “conduit” and “duct” have their standard meanings and includes hollow solids, including pipes, tubes, rectangular solids, and other structures that a fluid can flow through.
As used herein, “contact” has its standard meaning and includes where materials within different ducts are in thermal or fluid communication through a common wall or membrane. For example, two ducts would be in contact where they contain fluids on opposite sides of a micro-porous membrane or where they contain fluids on opposite sides of a thermally-conductive, impermeable wall (e.g., a metal wall).
As used herein, “fluid communication” includes connected as part of the fluid flow of the system. When used generally, fluid communication relates to either a direct fluid connection where two points are directly connected by ducts, pipes, or tubes, and indirect fluid communication where two points are separated by one, or more unit operation, including, but not limited to, a heat exchanger, a fuel cell, a dehumidifier, a radiator, a holding tank, etc. As used herein, “in fluid communication” refers to in fluid communication in the direction of flow of fluid through the system. Thus, unless there is a loop the outlet of a tube cannot be in fluid communication with the inlet of the same tube.
As shown in
In some embodiments, the water vapor permeable wall 20 comprises a material selected from the group consisting of a microporous plastic, structural porous duct covered with a microporous plastic, a structural porous duct covered with a water permeable polymer electrolyte membrane, or a combination thereof.
As used herein, the phrases water vapor permeable and micro-porous are used interchangeably. Where a tube wall, membrane, or material is water vapor permeable or micro-porous, the structure can be made of a material that is hydrophobic, and impermeable to liquids but permeable to water vapor. Such water vapor permeable materials are also referred to as mass transfer tubes or materials. Examples of solid or monolithic, water vapor permeable materials include sulfonated tetrafluoroethylene based fluoropolymer-copolymer (e.g., Nafion™, sold by DuPont), water conducting fluoropolymers, and non-fluorinated proton conducting polymers (e.g., NanoClear™, sold by Dais Analytic), and high density polyethelene (HDPE).
In some embodiments, the water vapor permeable materials are formed from fibers of hydrophobic materials. Examples include spunbond meltblown polymer materials. Such water vapor permeable materials are generally formed from hydrophobic materials. As used herein “hydrophobic” refers to materials with a contact angle of greater than 90° (e.g., at least 100°, at least 115°, at least 120°, or al least 135°).
In some embodiments, the HMX system 10 is adapted to transport a liquid desiccant stream 24 though and against an outer wall of a body selected from the HMX duct 14, the first elongated, hollow conduits 16, and the second elongated, hollow conduits 18, while also transporting a carrier air stream 22 through and against an outer wall of a different body selected from the HMX duct 14, the first elongated, hollow conduits 16, and the second elongated, hollow conduits 18. In some embodiments, the streams 22, 24 are independently transported against an inside of an outer wall of the HMX duct 14, the first elongated, hollow conduits 16, and the second elongated, hollow conduits 18
As shown in
In some embodiments, as shown in
As shown in
In some embodiments, the pluralities of first and second elongated, hollow conduits 16, 18 extend laterally across the HMX duct 14, and the HMX system 10 also includes a plurality of third elongated, hollow conduits 32 extending across the HMX duct 14. In some embodiments, such as when the structures shown in
As will be apparent, the combinations of conduits 16, 18, 32 and the fluids that flow within and external to each can be varied. Examples include those shown in the figures, including
In some embodiments, as shown in
In some embodiments, as shown in
As used herein, “coolant stream” relates to a fluid stream containing a heat transfer fluid, such as those generally used to cool an engine, ambient air or air recirculated from an air conditioned space, water, or a combination of air and water for psychrometric cooling. In some instances, such as when the liquid desiccant is being regenerated, the coolant stream 36 will be introduced into the HMX system 10 from an engine in the heated state and the coolant stream 36 will be used to heat the liquid desiccant stream. In other embodiments, the coolant stream will be used to cool the liquid desiccant stream in order to facilitate dehumidification of carrier air that will be transported to an air conditioned space.
In some embodiments, as shown in
In some embodiments, as shown in
In some embodiments, each of the first elongated, hollow conduits 16 is longer than each of the second elongated, hollow conduits 18. As shown in
In some embodiments, as shown in exploded view
Depending on the design of the first and second end caps 38, 40, the length of the first and second elongated, hollow conduits 16, 18 can be varied while still achieving a quality seal with the manifolds 50, 52, 54, 56. Thus, in some embodiments, the first and second elongated, hollow conduits 16, 18 can be the same length, while the first and second elongated, hollow conduits 16, 18 can be different lengths in other embodiments. In some embodiments, the first elongated, hollow conduits 16 can be longer than the second elongated, hollow conduits 18, while the first elongated, hollow conduits 16 can be shorter than the second elongated, hollow conduits 18 in other embodiments.
In some embodiments, as shown in
In some embodiments, as shown in
As best shown in
As shown in
In some embodiments, as shown in
In some embodiments, the HMX system 10 includes a plurality of flow disrupters 58 extending from at least one wall 60 of the HMX duct 14. In some embodiments, the flow disrupters 58 extend across the HMX duct 14. In some embodiments, at least one flow disrupter 58 can extend laterally across the HMX duct 14. In some embodiments, at least one flow disrupter 58 can extend transversely across the HMX duct 14.
In some embodiments, an exterior 62, of at least one of the tube-in-tube exchange components 26 can include a flow disrupter 58. For example,
In some embodiments, as shown in
In some embodiments, as shown in
In some embodiments, the flow disruptors 58 can extend from an exterior of the first conduit 16 tube-in-tube component 26. In such embodiments, as shown in
In some embodiments, the flow disruptors 58 extend less than 80% across, or less than 70% across, or less than 60% across, or less than 50% across, or less than 40% across the longitudinal direction. In some such embodiments, the fins 58a, 58b extend at least 10% across, or at least 20% across, or at least 30% across, or at least 40% across, or at least 50% across the longitudinal direction.
As is apparent from the discussions herein, the HMX devices 10 described herein can he useful in desiccant regeneration systems. Additional details of liquid desiccant regeneration systems can be found in U.S. patent application Ser. No. ______, entitled “Liquid Desiccant Regeneration System, Systems Including the Same, and Methods of Operating the Same,” by Daniel A. Betts and John Kaufman, filed Feb. 17, 2015, the entirety of which is incorporated herein by reference.
The following provides a variety of embodiments of heat and mass transfer devices and systems as described herein. Although discussed in different groups, it should be understood that the consistent with the spirit of the disclosure, various unit operations from one embodiment can be exchanged with, added to, or taken from another embodiment.
First DiscussionAs shown in
The mass transfer tubes in this section, and throughout the specification, may be produced using various materials and methods that achieve the desired water vapor transport from the humid air to the liquid desiccant and provide chemical compatibility with the liquid desiccant,
As used herein, “breakthrough pressure” relates to the minimum pressure at which liquid water will cross a hydrophobic microporous membrane that is only water-vapor permeable at lower pressures. For example, the breakthrough pressure of a hydrophobic sintered material with a porosity of 0.1 microns may be approximately 60 psi.
When operated at a breakthrough pressure, water will pass through to the surface of the hydrophobic, microporous material to produce a thin sheet of water around the surface. An alternate technique for producing a thin sheet of water on the surface of the ducts is utilizing a hydrophilic, microporous material under lower pressures. Mister spray-heads can be used to introduce water droplets for evaporative cooling anywhere herein where a hydrophobic, microporous material at a breakthrough pressure or a hydrophilic, microporous material is used.
To promote water vapor transport, in some embodiments, a thickness of the microporous membrane (2021) includes, but is not limited to the range of 10 microns to 50 microns and its open area should exceed 50%. In some embodiments, the open area is greater than 70%. For the purpose of mechanically supporting this thin, microporous membrane, and to prohibit the collapse of the membrane tube in the case that the liquid desiccant is at a lower pressure than the surrounding ambient air, a structural, internal support tube (2020) can be provided. This design approach, with the microporous membrane (2021) covering the outside surface of the structural support tube (2020), permits the liquid desiccant to be nearest to the passing air to be dehumidified, and promotes water vapor transport across the membrane (2021). Both the structural tube (2020) and membrane (2021) may be produced from a suitable material such as PVDF, PP, PES, PPS, PVC, PTFE, and other suitable materials. Examples of mass transfer tubes include micro- and ultra-filtration tubes include those produced by Berghof from PES and PVDF membranes applied to single and dual layer supports.
Another example includes
In a second embodiment of the mass transfer tube (2002), a structural, porous tube (2020) is again used as a substrate, onto which a solid electrolyte membrane (2021) is applied. The porous substrate (2020) can include a sintered material such as PTFE, PVDF, PP or other suitable material, with porosity including, but not limited to the range of 10 microns to 500 microns. The electrolyte membrane (2021), which selectively transports water and not gases, is applied onto the outer surface of the substrate tube (2020) through spraying, dipping or other deposition methods. In some embodiments, the thickness range of the electrolyte membrane (2021) is in a range that includes, but is not limited to 10 microns to 100 microns. A wall thickness range of the structural porous substrate tube (2020) includes, but is not limited to 0.005″ to 0.050″. In some embodiments, the porous substrate tube (2020) is formed of hydrophilic materials, in order to promote transfer of water through the sintered material and to the surface of the microporous membrane.
In a third embodiment of the mass transfer tube (2002), a structural porous or perforated tube (2020) is used as a mechanical support, onto which a microporous membrane (2021) or an aforementioned solid electrolyte membrane (2021) is attached. A porous tube (2020) may be produced from sintered PVDF, PP or other suitable material with porosity in the range that includes, but is not limited to 10 microns to 500 microns. A perforated tube (2020,4020) with porosity in the range that includes, but is not limited to 0.05″ to 0.5″ may be produced by injection or compression molding PP, PVDF, or other suitable material. The structural tube (2020/4020) may have circular cross section, or it may use a foil-shape or other combination of circular and angular sections that result in improved air flow directed perpendicular to its axis (
One application for the dehumidifying heat exchanger is the aforementioned removal of latent heat from an air stream. A second application for the invention is the removal of sensible heat from an air stream—the second stage in producing dry, cool air for building air conditioning and refrigeration.
In one variation, chilled water or refrigerant from a vapor compression cycle is introduced into the heat transfer tubes (2001) of the dehumidifying heat and mass transfer device. The chilled water or refrigerant serves as the coolant (2003), which exchanges heat with the liquid desiccant (2004) as in earlier embodiments. Depending on coolant (2003) temperature and flow rate, the liquid desiccant (2004) may be maintained at or reduced from its inlet temperature, further promoting dehumidification of the process air (2005) and potentially achieving the desired building process air temperature without the use of a second indirect cooling device.
in some embodiments, a heat and mass transfer device 2100 is described. The heat and mass transfer device can include a heat transfer duct system 2102, a mass transfer duct system 2104, and an air transport duct 2106. As best shown in
In some embodiments, the heat transfer duct system 2102 includes a plurality of heat transfer ducts 2110 in fluid communication with a heat transfer fluid header chamber 2112 on one end and a heat transfer fluid exhaust chamber 2114 at an opposite end of the heat transfer ducts 2110. In some embodiments, the heat transfer ducts 2110 can be heat transfer tubes 2001 having a cylindrical cross-section. In some embodiments, the individual heat transfer ducts 2110 can be parallel to one another. In some embodiments, the flow through the air transport duct 2106 can be perpendicular to the flow through the heat transfer ducts 2110. Although referred to as “heat transfer fluid,” it should be understood that in a closed cycle the heat transfer fluid will be relatively cold in some portions of the system (such as prior to cooling ambient air in an air conditioner), and warm in other portions of the system (after cooling the ambient air in an air conditioner). As used herein, “warm” is used to refer to temperatures at or above room temperature, for example, at least 25° C., or at least 30° C., while “cool” is used to refer to temperatures below room temperature, for example, below 20° C., or below 15° C.
In some embodiments, the mass transfer duct system 2104 includes a plurality of mass transfer ducts 2116 in fluid communication with a desiccant header chamber 2118 on one end and a desiccant exhaust chamber 2120 at an opposite end of the mass transfer ducts 2116. In some embodiments, the mass transfer ducts 2116 can be mass transfer tubes 2002 having a round cross-section. In some embodiments, the individual mass transfer ducts 2116 can be parallel to one another. In some embodiments, the flow through the air transport duct 2106 can be perpendicular to the flow through the mass transfer ducts 2116.
In some embodiments, such as those shown in
As shown in
In some embodiments, the walls of the heat transfer ducts 2110 comprise a material selected from the group consisting of polyvinylidene difluoride (PVDF), polypropylene (PP), polyvinyl chloride (PVC), polyphenylene sulfide (PPS), polyethersulfone (PES), polytetrafluoroethylene (PTFE), and combinations thereof.
In some embodiments, the walls of the heat transfer ducts 2110 do not contain metal. This can be advantageous in embodiments where the heat transfer duct 2110 is within the mass transfer duct 2116, because such embodiments can expose the exterior of the heat transfer duct 2110 to a liquid desiccant flowing within the mass transfer duct 2116. In some embodiments, the wall of the heat transfer duct can be formed of a metal coated with a non-corrosive coating, e.g., polyvinylidene difluoride (PVDF), polypropylene (PP), polyvinyl chloride (PVC), polyphenylene sulfide (PPS), polyethersulfone (PES), polytetrafluoroethylene (PTFE), and combinations thereof.
As shown in
As best shown in
As shown in
Although not shown, it will be easily understood that, in embodiments where the flow within the mass transfer ducts 2116 is in the same direction as the flow within the heat transfer ducts 2110, at least a portion of the desiccant header chamber 2118 is between the heat transfer header plate 2124 and the mass transfer header plate 2132. In such embodiments, at least a portion of the desiccant exhaust chamber 2120 is between the heat transfer exhaust plate 2128 and the mass transfer exhaust plate 2136.
In some embodiments, no mass exchange occurs between the heat transfer duct system 2102 and the mass transfer duct system 2104. In some embodiments, the ducts 2110, 2116 can be attached to the respective header plate 2124, 2132 and/or exhaust plate 2128, 2136 in a manner that prevents leaks from one side of the plate 2124, 2128, 2132, 2136 to the other. Examples of techniques that can be used to produce such seals include, but are not limited to, (a) compression forces transferred through an elastomer o-ring, (h) welding, (c) screwed on fastening, (d) chemical bonding, and (e) combinations thereof. As is evident from
In some embodiments, each mass transfer duct 2116 is longer than each heat transfer duct 2110. Such embodiments are identical to those shown in
In some embodiments, the mass transfer duct system 2104 comprises walls 2019 formed from a water vapor permeable material. In some embodiments, the wall(s) 2019 can include a porous support material 2020/4020 (e.g., a scaffolding, such as that shown in
In some embodiments, the contents of the heat transfer duct system 2102 are in thermal communication with contents of the air transport duct 2106 via a wall 2103. The wall 2103 can include a material selected from the group consisting of polyvinylidene difluoride (PVDF), polypropylene (PP), polytetrafluoroethylene (PTFE), polyvinyl chloride (PVC), polyphenylene sulfide (PPS), polyethersulfone (PES), metal, and combinations thereof in some embodiments, the wall can be formed of a metal coated by polyvinylidene difluoride (PVDF), polypropylene (PP), polytetrafluoroethylene (PTFE), or combinations thereof. In other embodiments, the wall can be formed of polyvinylidene difluoride (PVDF), polypropylene (PP), polytetrafluoroethylene (PTFE), polyvinyl chloride (PVC), polyphenylene sulfide (PPS), polyethersulfone (PES), or combinations thereof. Examples of metal that can be useful include, but are not limited to, titanium, stainless steel, and other corrosion resistant metals or alloys.
In some embodiments, a heat transfer fluid stream 2003 is fed into an inlet 2102IN of the heat transfer duct system 2102. In some embodiments, the heat transfer fluid stream comprises a heat transfer fluid selected from a group that includes, but is not limited to, air, ethylene glycol, water, ammonia, fluorocarbons, chlorofluorocarbons, sulfur dioxide, halons, hydrocarbons, and mixtures thereof. As used herein, “halons” has its standard meaning and includes haloalkanes.
In some embodiments, a liquid desiccant stream 2004 is fed into an inlet 2104IN of mass transfer duct system 2104. In some embodiments, a desiccant (e.g., salt) concentration of the liquid desiccant stream 2004 is lower at an outlet 2104OUT of the mass transfer duct system 2104 than at the inlet 2104IN of the mass transfer duct system 2104.
In some system embodiments, such as those shown in
In some embodiments, air 2009 flowing through the second air transport duct 2106B is humidified by a liquid stream 2008 flowing in the second mass transfer duct 2102B.
In some air conditioning system embodiments:
-
- a first heat transfer fluid stream is fed into the first heat transfer duct system 2102A, 2112A;
- a high concentration liquid desiccant stream is fed into the first mass transfer duct system 2104A, 2118A;
- air being conditioned is fed into the first air transport duct 2106A;
- dehumidified air exiting the first air transport duct 2106A is fed into the second heat transfer duct system 2102B, 2112B;
- water is fed into the second mass transfer duct system 2104B, 2118B; and
- secondary air 2009 is fed into the second air transport duct 2106B.
In such embodiments, the second mass transfer duct system 2104B can include a wall (e.g., walls of the mass transfer ducts 2116B) comprising a mass transfer membrane that is selectively permeable to water vapor. In such embodiments, the secondary air 2009 is humidified by water passing through the mass transfer membrane of the mass transfer ducts 2116B to produce humidified process air 2010. In such embodiments, the mass transfer ducts 2116B can be formed of a water-vapor permeable membrane and operated at a pressure above the breakthrough pressure of water-vapor permeable membrane, or the mass transfer ducts 2116B can be formed of a water permeable, microporous material. In either case, a thin film of water can be produced on the exterior of the mass transfer ducts 2116B in order to facilitate humidification of the secondary air 2009.
In some embodiments, the first heat transfer fluid stream 2003 comprises air and the second heat transfer fluid stream comprises air 2009 that undergoes evaporative cooling with water 2008 that sheets over the surface of the mass transfer ducts 2116B. In some embodiments, the mass transfer ducts 2116B can have water permeable, microporous walls. In other embodiments, the mass transfer ducts 2116B can have walls formed from water vapor permeable walls and the water pressure can be at or above the breakthrough pressure. In some embodiments, an exhaust stream from the second heat transfer duct system 2102B, 2114B comprises dehumidified, cooled air 2007 that is supplied to a space being air conditioned. Examples of such embodiments are shown in
In some embodiments, a low concentration liquid desiccant stream exiting the first mass transfer duct system 2104A,OUT, 2120A is regenerated to produce a high concentration liquid desiccant stream fed into an inlet of the first mass transfer duct system 2104A,IN, 2118A.
In some embodiments, the air conditioning system 2200 includes a fuel cell 2138. In some embodiments, the heat (e.g., from the coolant used in the fuel cell) produced by the fuel cell 2138 is used to regenerate the liquid desiccant stream by driving water out of the liquid desiccant stream and produce a high concentration liquid desiccant stream. Examples of such embodiments are shown in
In some embodiments, such as those shown in
The low-concentration liquid desiccant from the heat exchanger desiccant outlet 2158 enters the mass transfer unit 2150 through the mass transfer desiccant inlet 2160 then flows through the mass transfer desiccant ducts 2161 before exiting the mass transfer desiccant outlet 2162. The fuel cell exhaust 2163 is fed into the mass transfer heating inlet 2164, passes through a mass transfer heating ducts 2165 and exits the mass transfer heating outlet 2166. Water in the liquid desiccant stream which was previously heated in the heat exchanger 2145 is driven out of the mass transfer desiccant ducts 2161 in the form of water vapor. In some embodiments, the mass transfer desiccant ducts 2161 have water vapor permeable, microporous walls to drive water out of the low-concentration liquid desiccant and produce a high concentration liquid desiccant stream exiting the mass transfer desiccant outlet 2162.
The high-concentration liquid desiccant stream exiting the mass transfer desiccant outlet 2162 can then be fed into a radiator 2168 for cooling. The high concentration liquid desiccant stream can then be fed into the desiccant header chamber 2118A of the first heat and mass transfer device 2100A.
In other embodiments, such as those shown in
In some embodiments, the regeneration system 2140 includes a third heat/mass transfer device 2100C as described herein. In such embodiments, an outlet 2120A of the first mass transfer duct system 2104A is in fluid communication with an inlet 2118C of the third mass transfer duct system 2104C, and an outlet 2120C of the third mass transfer duct system 2104C is in fluid communication with an inlet 2118A of the first mass transfer duct system 2104A. In some embodiments, the warm exhaust from the fuel cell 2138 is fed into an inlet of the third air transport duct 2106C, and warm heat transfer fluid (e.g., hot water) from the fuel cell 2138 is fed into an inlet 2112C of the third heat transfer duct system 2102C. Examples of such embodiments are shown in
As shown in
A first specific heat and mass transfer device can include a heat transfer duct system; a mass transfer duct system; and an air transport duct, wherein portions of said heat transfer duct system and said mass transfer duct system extend through said air transport duct, wherein the mass transfer duct system comprises a water vapor permeable wall.
A second HMX device includes the first HMX device wherein said heat transfer duct system comprises a plurality of heat transfer ducts in fluid communication with a heat transfer fluid header chamber on one end and a heat transfer fluid exhaust chamber at an opposite end of the heat transfer ducts.
A third HMX device includes any of the foregoing HMX devices, wherein the mass transfer duct system comprises a plurality of mass transfer ducts in fluid communications with a desiccant header chamber on one end and a desiccant exhaust chamber at an opposite end of the mass transfer ducts.
A fourth HMX device includes the third HMX device, wherein said heat transfer duct system comprises a plurality of heat transfer ducts in fluid communication with a heat transfer fluid header chamber on one end and a heat transfer fluid exhaust chamber at an opposite end of the heat transfer ducts.
A fifth HMX device includes the fourth HMX device, wherein said plurality of mass transfer ducts are spaced apart from and interspersed with and said plurality of heat transfer ducts.
A sixth HMX device includes the fourth HMX device, wherein each heat transfer duct is positioned within a mass transfer duct, and wherein said mass transfer ducts are spaced apart from one another.
A seventh HMX device includes the sixth HMX device, wherein one, heat transfer duct is positioned coaxially within each mass transfer duct.
A eighth HMX device includes the sixth HMX device, wherein walls of said heat transfer ducts comprise a material selected from the group consisting of polyvinylidene dithioride (PVDF), polypropylene (PP), polyvinyl chloride (PVC), polyphenylene sulfide (PPS), polyethersulfone (PES), polytetrafluoroethylene (PTFE), and combinations thereof.
A ninth HMX device includes the fourth HMX device wherein each heat transfer duct is longer than each mass transfer duct.
A tenth HMX device includes the ninth HMX device, wherein a first end of each heat transfer duct is mounted to an opening in a heat transfer header plate, and an opposite end of each heat transfer duct is mounted to an opening in a heat transfer exhaust plate; wherein a first end of each mass transfer duct is mounted to an opening in a mass transfer header plate, and an opposite end of each mass transfer duct is mounted to an opening in a mass transfer exhaust plate; wherein at least a portion of said desiccant header chamber is between said heat transfer header plate and said mass transfer header plate; and wherein at least a portion of said desiccant exhaust chamber is between said heat transfer exhaust plate and said mass transfer exhaust plate.
A eleventh HMX device includes the fourth HMX device, wherein each mass transfer duct is longer than each heat transfer duct.
A twelfth HMX device includes any of the foregoing HMX devices, wherein no mass exchange occurs between said heat transfer duct system and said mass transfer duct system.
A thirteenth HMX device includes any of the foregoing HMX devices, wherein said mass transfer duct system comprises a wall formed from a material selected from the group consisting of a microporous plastic, structural porous duct covered with a microporous plastic, a structural porous duct covered with a water permeable polymer electrolyte membrane, or a combination thereof.
A fourteenth HMX device includes any of the foregoing HMX devices, wherein contents of the heat transfer duct system are in thermal communication with contents of the air transport duct via a wall, wherein said wall comprises a material selected from the group consisting of polyvinylidene difluoride (PVDF), polypropylene (PP), polyvinyl chloride (PVC), polyphenylene sulfide (PPS), polytetrafluoroethylene (PTFE), metal, and combinations thereof.
A fifteenth HMX device includes any of the foregoing HMX devices, wherein an inlet of said heat transfer duct is in fluid communication with a heat transfer fluid stream.
A sixteenth HMX device includes the fifteenth HMX device, wherein the heat transfer fluid stream comprises a heat transfer fluid selected from the group consisting of air, ethylene glycol, propylene glycol, glycerol, water, ammonia, fluorocarbons, chlorofluorocarbons, sulfur dioxide, halons, hydrocarbons, and mixtures thereof.
A seventeenth HMX device includes any of the foregoing HMX devices, wherein a liquid desiccant stream is fed into an inlet of said mass transfer duct system.
An eighteenth HMX device includes the seventeenth HMX device, wherein a desiccant concentration of the liquid desiccant stream is lower at an exit of the mass transfer duct system than at the inlet of the mass transfer duct system.
A first air conditioning system includes first and second HMX devices according to any of the foregoing HMX devices, wherein an exhaust of the first air transport duct is in fluid communication with an inlet to the second heat transfer duct system.
A second air conditioning system that includes the first air conditioning system, wherein air flowing through the second air transport duct undergoes evaporative cooling by a liquid stream containing water flowing in the mass transfer duct.
A third air conditioning system that includes any of the foregoing air conditioning systems, wherein:
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- a first heat transfer fluid stream is fed into the first heat transfer duct system;
- a high concentration liquid desiccant stream is fed into the first mass transfer duct system;
- air being conditioned is fed into the first air transport duct;
- dehumidified air exiting the first air transport duct is fed into the second heat transfer duct system;
- a stream containing water is fed into the second mass transfer duct system; and
- secondary air is fed into the second air transport duct,
wherein the second mass transfer duct system comprises a wall comprising a mass transfer membrane that allows liquid water to pass, and wherein said secondary air undergoes evaporative cooling by water passing through the mass transfer membrane.
A fourth air conditioning system that includes the third air conditioning system, wherein the first heat transfer fluid stream comprises air.
A fifth air conditioning system that includes any of the foregoing air conditioning systems, wherein an exhaust stream from the second heat transfer duct system comprises dehumidified, cooled air that is supplied to a space being air conditioned.
A sixth air conditioning system that includes any of the foregoing air conditioning systems, wherein a low concentration liquid desiccant stream exiting said first mass transfer duct system is regenerated to produce a high concentration liquid desiccant stream fed into an inlet of the first mass transfer duct system.
A seventh air conditioning system that includes any of the foregoing air conditioning systems, further comprising a fuel cell, wherein warm heat transfer fluid from the fuel cell is used to regenerate the liquid desiccant stream by driving water out of the liquid desiccant stream.
An eighth air conditioning system that includes the sixth air conditioning system, further comprising a regeneration system, comprising: a moisture removal duct; and a desiccant regeneration duct extends through said moisture removal duct, wherein water vapor from the liquid desiccant stream in said desiccant regeneration duct selectively passes through a desiccant regeneration duct membrane into the moisture removal duct.
A ninth air conditioning system that includes the sixth air conditioning system, wherein warm heat transfer fluid from the fuel cell heats the liquid desiccant stream thereby driving water from the liquid desiccant stream into the fuel cell exhaust stream passing through the moisture removal duct.
A tenth air conditioning system that includes the ninth air conditioning system, wherein the regeneration system comprises a third HMX device according to any of the foregoing specific HMX devices, wherein an outlet of the first mass transfer duct system is in fluid communication with an inlet of the third mass transfer duct system, and an outlet of the third mass transfer duct system is in fluid communication with an inlet of the first mass transfer duct system.
An eleventh air conditioning system that includes the tenth air conditioning system, wherein the warm exhaust from the fuel cell is fed into an inlet of the third air transport duct, and warm heat transfer fluid from the fuel cell is fed into an inlet of the third heat transfer duct system.
Second DiscussionDescribed herein are methods and designs for a system where the heat exhausted from an engine is used to heat a liquid desiccant and/or an air stream, the latter referred as carrier air in this document. The carrier air is heated so that the partial pressure of the water vapor contained in the carrier air is lower than the concentration of water in a liquid desiccant stream that will be regenerated. The interaction between the liquid desiccant and the carrier air is accomplished through a membrane that is permeable to water vapor but not to the transfer of liquids, such as the liquid desiccant or liquid water. Given the difference in water concentration between the carrier air and the liquid desiccant, water flows from the liquid desiccant to the carrier air in the form of water vapor.
The process of liquid desiccant regeneration is continuously heated by a hot coolant stream proceeding from the engine that carries part or all of the heat produced by the engine. The hot coolant can in the form of a gas or a liquid. In some embodiments, the coolant can be a phase changing fluid in order to enhance heat transfer.
Desiccant regeneration occurs within a heat and mass transfer system (HMX) that enables heat transfer between the liquid desiccant, the coolant, and the carrier gas. It also enables exchange of water vapor between the liquid desiccant and the carrier air. The HMX is composed of a plurality of tubes over which carrier gas flows in a counterflow or cross flow manner. A certain group of the tubes flow liquid desiccant and another group of tubes flow coolant.
The outer wall of any of the tubes containing liquid desiccant described herein can be made of a material that is hydrophobic, impermeable to liquids, and permeable to water vapor. Such materials can be sulfonated tetrafluoroethylene based fluoropolymer-copolymer (Nafion™, sold by DuPont), water conducting fluoropolymers, and non-fluorinated proton conducting polymers such as NanoClear™, available from Dais Analytic, high density polyethelene, spunbond olefins, among others described herein. The tubes in which coolant flow continuously warm the air, maintaining its relative humidity low. The distribution of these tubes can be such that a greater concentration of tubes carrying coolant occurs in the HMX area closer to the inlet of the carrier air.
An alternative HMX design is one where there is a tube assembly composed of a tube or a plurality of tubes within a larger diameter tube. In this case coolant flows within the smaller diameter tubes in the tube assembly and liquid desiccant flows within the larger diameter tube, but not within the smaller diameter tubes. The wall of the inner, smaller diameter tubes is made of a material that allows for heat transfer between the coolant and the liquid desiccant, but does not allow for mixing of the liquid desiccant with the coolant. These tube are made of materials that are chemically compatible with the liquid desiccant. The outer wall of the tube assembly is composed of a material that is permeable to water vapor but not permeable to liquids. The HMX would be composed of a plurality of these tube assemblies. Carrier air flows around these tube assemblies in crossflow. The liquid desiccant and the coolant flow counter-flow with respect to each other.
There may be cases where the coolant flow is much higher than the carrier air flow, or in which due to design or pressure drop considerations, it is convenient for the coolant to flow on the outside of the HMX tubes or tube assemblies. In these cases, the HMX would be composed of a chamber with a plurality of tube assemblies. These tube assemblies would be composed of an outer tube in which one or more smaller diameter tubes are located within. These smaller diameter tubes flow carrier gas within them. The outer, larger diameter tube flows liquid desiccant. The walls of the smaller diameter tubes are made of a material that is permeable to water vapor but not permeable to the flow of liquids. The wall of the outer, larger diameter tube is made of a material that is chemically compatible with the liquid desiccant but that is impermeable to gas or liquid. In this way, the liquid desiccant and the coolant only have heat transfer interaction but no mixing occurs. This design is principally relevant for cases where the coolant is a gas.
An alternative case may occur, where the coolant may be too hot to flow next to the liquid desiccant. In this case the HMX tube assemblies are, as previously described, made of a larger diameter tube within which is at least a single smaller diameter tube. The carrier air flows within the larger diameter tube but not within the smaller diameter tubes. The liquid desiccant flows within the smaller diameter tubes. The wall of the smaller diameter tube is made of a material permeable to water vapor and not permeable to liquids. The wall of the outer diameter tube is made of a material that prevents mixing between the hot coolant and the carrier air, but allows for heat transfer between the carrier air and the hot coolant. By heating the carrier air directly, and indirectly heating the liquid desiccant, the liquid desiccant stream can be protected from elevated coolant temperatures that could lead to chemical deterioration of the liquid desiccant.
In order to maintain separation between the flows within the tubes, the HMX assembly uses headers. The HMX tubes have two distinct lengths. The different lengths enable introduction of liquid desiccant into tubes of a certain length and either coolant or carrier air (depending on design as discussed in the paragraphs above) into tubes of a different length. The header of the HMX has two chambers, one adjacent the other. The header chamber closest to the interior portion of the HMX has fluid connection with the interior portion of the shorter length tubes, but does not have fluid connection with the interior portion of longer length tubes. The header chamber farthest from the interior of the HMX is in fluid connection with the interior portion of the longer length tubes. The two header chambers are not in fluid connection with each other.
In an alternative HMX design, where the tube-in-tube assemblies are not employed, the header chambers are next to each other but not in fluid connection with each other.
Heat and mass transfer enhancements can be made to the HMX. In the case that the carrier air flows across the outside of the HMX tubes or tube assemblies, mass transfer between the air and the liquid desiccant can be enhanced by placing walls in the HMX so that the carrier air has to flow in a tortuous path. In this way the space velocity of the carrier air in the HMX can be varied enhancing mass transfer.
An alternative method of enhancing mass and heat transfer in the HMX would be through the addition of vertical features that block a portion of the carrier air flow through the HMX. In this way, vortices and turbulence can be accomplished. These features can be rods over which the carrier air must pass. The rods may have roughness or features to enhance the creation of vortices or turbulences. These features can also be used to create helical bulk flow of the carrier air through the HMX by acting as fins that direct flow.
The engine exhaust gas contains products of the oxidation of a fuel, which includes water. In the case the engine exhaust has a higher temperature than the carrier air entering the system, gas to gas heat exchanger is used to transfer heat from the engine exhaust to the carrier air. The carrier air then enters into the HMX. The gas to gas heat exchanger can be made of plates with triangular or corrugated sheets that form structural elements as well as flow channels. The corrugated sheets form channels that are perpendicular to the channels in the adjacent plates. The direction of the corrugations also block air flow into certain plates. This ensures the engine exhaust gas does not mix with the carrier air in the gas to gas heat exchanger. Other methods for gas to gas heat exchange known in the art can also be used.
The carrier air leaving the HMX is mixed with the engine exhaust gas leaving the gas to gas heat exchanger. A mixer can be used to reduce the pressure drop associated with the integration of the two flows. Leaving the mixer the combined gas is cooled in order to condense the air in the air stream. The condenser can use ambient air as the cooling fluid. Water condensed is collected in a water reservoir. The cool gas leaving the condenser is exhausted.
Instances may exist where carrier air and engine exhaust gas mixing is not practical due to flow rate disparity, pressure drop considerations, or chemical compatibility. In these cases, the carrier gas is independently condensed through an independent condenser. The carrier gas leaving the HMX also passes through an independent condenser. The water condensed from both the carrier air stream and from the engine exhaust gas is collected in a water reservoir.
The liquid desiccant, at a high concentration point, leaving the HMX is stored in a reservoir.
Compared to the state of the art, this invention offers many advantages. The invention not only regenerates the liquid desiccant but it also collects water produced from the engine and the water removed from the liquid desiccant during the regeneration process. Water recovery and accumulation is highly valuable. If the engine exhaust stream and the carrier air stream is devoid of toxic substances, the water collected could be used for human, agricultural, or livestock processes. Water can also be used to support air conditioning operation. Water can also be used to support engine processes, such as fuel processing or cooling.
The invention also prevents the mixture of liquid desiccant with other streams. Liquid desiccants are typically corrosive. Maintaining the liquid desiccant separate from other flows reduces the potential for corrosion of valves, tanks, ducting, etc.
The present invention will now be described more particularly, by way of example, with reference to the accompanying drawings, in which:
As shown in
A first liquid desiccant regeneration system can include a heat and mass exchanger, comprising: a plurality of exchange components extending across a heat and mass exchanger duct, wherein a flow through said heat and mass exchanger duct is cross-flow relative to said exchange components, wherein said exchange components comprise a plurality of first elongated, hollow conduits and a plurality of second elongated, hollow conduit; and an engine producing an exhaust stream and a coolant stream, wherein said exhaust stream is in thermal communication with a carrier air stream subsequently fed into the heat and mass exchanger, wherein said heat and mass exchanger receives a liquid desiccant stream, the coolant stream, and a carrier air stream, wherein one of said first and second elongated, hollow conduits comprises a water vapor permeable tube wall, and wherein the liquid desiccant stream and the carrier air stream are in contact with said water vapor permeable tube wall.
A second desiccant regeneration system according to the first desiccant regeneration system, wherein said each of said first and second elongated, hollow conduits is spaced apart from the other.
A third desiccant regeneration system according to the second desiccant regeneration system, wherein said first elongated, hollow conduits extend laterally across said heat and mass exchanger duct and said second elongated, hollow conduits extend transverse to said first elongated, hollow conduits.
A fourth desiccant regeneration system according to the second desiccant regeneration system, wherein each of said first elongated, hollow conduits is an outer conduit of a tube-in-tube exchanger component, each of said tube-in-tube exchanger components further comprising an inner conduit, wherein an inner lumen is defined by said inner conduit and an outer flow channel is external to said inner conduit and adjacent a wall of said second elongated, hollow conduit.
A fifth desiccant regeneration system according to any of the foregoing desiccant regeneration systems, wherein said exchange components comprise tube-in-tube exchange components, wherein each tube-in-tube components comprises one first elongated, hollow conduit within one second elongated, hollow conduit, forming an inner lumen within said first elongated, hollow conduit and an outer flow channel external to said first elongated, hollow conduit and adjacent a wall of said second elongated, hollow conduit.
A sixth desiccant regeneration system according to the fifth desiccant regeneration system, wherein said coolant stream flows through said central lumen, said liquid desiccant stream flows through said sheath, and said carrier air stream flows through said heat and mass exchanger duct.
A seventh desiccant regeneration system according to the sixth desiccant regeneration system, wherein the coolant stream and the liquid desiccant stream are configured in a counter flow arrangement.
A eighth desiccant regeneration system according to the fifth desiccant regeneration system, wherein said carrier air stream flows through said central lumen, said liquid desiccant stream flows through said sheath, and said coolant stream flows through said heat and mass exchanger duct,
A ninth desiccant regeneration system according to the eighth desiccant regeneration system, wherein the carrier air stream and the liquid desiccant stream are configured in a counter flow arrangement.
A tenth desiccant regeneration system according to the fifth desiccant regeneration system, wherein said liquid desiccant stream flows through said central lumen, said carrier air stream flows through said sheath, and said coolant stream flows through said heat and mass exchanger duct.
An eleventh desiccant regeneration system according to the tenth desiccant regeneration system, wherein the liquid desiccant stream and the carrier air stream are configured in a counter flow arrangement.
A twelfth desiccant regeneration system according to any of the foregoing desiccant regeneration systems, wherein the carrier air stream exiting the heat and mass exchanger passes through a condenser, wherein a water trap of said condenser is in fluid communication with a reservoir.
A thirteenth desiccant regeneration system according to any of the foregoing desiccant regeneration systems, wherein, after thermally contacting the carrier air stream, the exhaust stream passes through a condenser, wherein a water trap of said condenser is in fluid communication with a reservoir.
A fourteenth desiccant regeneration system according to the thirteenth desiccant regeneration system, wherein, the carrier air stream exiting the heat and mass exchanger is mixed with the exhaust stream to form a combined air stream and the combined air stream passes through a condenser.
A fifteenth desiccant regeneration system according to any of the foregoing desiccant regeneration systems, wherein a low concentration liquid desiccant reservoir is in fluid communication with a high concentration liquid desiccant reservoir via the liquid desiccant stream.
A sixteenth desiccant regeneration system according to any of the foregoing desiccant regeneration systems, wherein, after passing through the heat and mass exchanger, the coolant stream is reintroduced into the engine.
A seventeenth desiccant regeneration system according to any of the foregoing desiccant regeneration systems, further comprising a plurality of flow disrupters extending from at least one wall of said heat and mass exchanger duct.
An eighteenth desiccant regeneration system according to the seventeenth desiccant regeneration system, wherein the flow disrupters extend across said heat and mass exchanger duct.
A nineteenth desiccant regeneration system according to the seventeenth desiccant regeneration system, wherein said flow disrupters have a cross-sectional shape selected from the group consisting of airfoils, triangles, rectangles, and others.
A twentieth desiccant regeneration system according to the seventeenth desiccant regeneration system, wherein said heat and mass exchanger duct comprises first and second longitudinal walls opposite one another, and said flow disrupters comprise at least one first fin extending from the first longitudinal wall partially across said heat and mass exchanger duct and at least one second fin extending from the second longitudinal wall partially across said heat and mass exchanger duct.
A twenty-first desiccant regeneration system according to the twentieth desiccant regeneration system, wherein said flow disruptors cause flow through said heat and mass exchanger duct to travel in an s-shaped path.
A twenty-second desiccant regeneration system according to any of the fifth through twenty-first desiccant regeneration systems, wherein at least one of said tube-in-tube exchange components comprises a flow disrupter.
A twenty-third desiccant regeneration system according to any of the foregoing desiccant regeneration systems, wherein said exhaust stream is contacted with said carrier air stream via a heat exchanger.
A twenty-fourth desiccant regeneration system according to any of the fifth through twenty-third desiccant regeneration systems, wherein each of said tube-in-tube exchanger components further comprises an intermediate elongated, hollow conduit, wherein the outer flow channel is defined between an outer wall of said intermediate elongated, hollow conduit and said second elongated, hollow conduit, and an intermediate flow channel is defined between said first elongated, hollow conduit and said intermediate elongated, hollow conduit.
Third DiscussionThe dehumidifier system described herein uses hygroscopic liquids including, but not limited to salt solutions (e.g., LiCl, NaCl, CaCl2), alcohols (e.g., glycerol, methanol, ethanol), chemical agents (e.g., CaSO4) or combinations thereof, to dehumidify an incoming air stream for air conditioning purposes. The design of the dehumidifier is such that heat energy is continually being removed throughout the dehumidification process by means of, but not necessarily exclusively by, air flow from the atmosphere, air subjected to evaporative cooling, or a liquid coolant such as water. This removal of heat, specifically from the liquid desiccant, is advantageous for promoting continued air dehumidification as the liquid desiccant concentration is reduced due to the absorption of water vapor.
Described herein are methods and designs for dehumidification and cooling of air using a water vapor-permeable tube to separate the liquid desiccant from the air stream and one or more water vapor-impermeable tubes to separate the air stream from the coolant and to separate the liquid desiccant from the coolant. In some of these embodiments, ambient, humid air is dehumidified as it passes perpendicular to the axes of a plurality of parallel water vapor-permeable tubes into which liquid desiccant is introduced. Alternative approaches are provided with respect to the manner in which a coolant (such as ambient air), or another coolant such as water, glycol or other suitable fluid (e.g., gas or liquid) is used to cool the liquid desiccant as it absorbs water.
Compared to the state of the art, the devices described herein more effectively make use of water vapor-permeable materials in order to prohibit carry-over of the liquid desiccant to the dehumidified air. Specifically, the devices and systems use membrane tubes, in conjunction with structural supporting tubes and structural supporting manifold reservoirs, to provide the desired fluid separation as well as a more robust and reliable manner to seal and convey or circulate the liquid desiccant. The described device design enables the use of various methods for securing and sealing the tubes to the manifold reservoirs, including o-rings, plastic welding, chemical bonding, compression fittings and other assembly components and methods known to one versed in the art. Suitable materials for the tubes, manifold reservoirs, water vapor-permeable tubes and other wetted components include, but are not limited to PVDP, PP, HDPE, PVC, PPS, PES, PTFE and other polymers. Solid electrolyte membranes are also appropriate for selectively transporting water in the device. These membranes include sulfonated tetrafluoroethylene based fluoropolymer-copolymer (Nafion™, sold by DuPont), water conducting fluoropolymers, and non-fluorinated proton conducting polymers such as NanoClear™, available from Dais Analytic.
The devices and systems described herein offer advantages in design flexibility and expandability due to the use of repeating tube elements and simplicity of construction. It provides advantages in controllability due to the fact that air and liquid desiccant flow rates may be changed as needed to meet operator preferences of humidity and temperature, or based on varying ambient conditions, without concern for the entrainment of liquid desiccant in the air and corrosion of vulnerable downstream components. The device offers functional versatility in that it may be used to provide indirect cooling of an air stream through the evaporative cooling of a secondary air stream that is exposed to water, rather than liquid desiccant. The design also supports the use of multiple heal and/or mass transfer fluids by simply increasing the number of manifold reservoir connection surfaces and diameters and lengths of the tubes.
The device will now be described more particularly, by way of example, with reference to the accompanying drawings, in which:
-
- a. Supply air 4005 is introduced into a mass transfer tube 4202 concentrically located within the heat transfer tube 4201 of the dehumidification stage 4200. An exhaust air stream 4209 and coolant 4203 are passed across the surface of the heat transfer tube 4201. The heat transfer tube 4201 may incorporate a layer of hydrophilic material 4211 in order to produce a more uniform film of water on the external surface of the heat transfer tube 4201, thereby increasing surface area and providing greater evaporative cooling effect. Liquid desiccant 4204 is contained by the heat transfer tube 4201 and mass transfer tube 4202, as in
FIG. 26 and no changes in the fluid arrangement are made to the cooling stage 4300. - b. Dehumidified supply air 4006 is introduced into the heat transfer tube 4301 of the cooling stage 4300. An exhaust air stream 4309 and coolant 4303 are passed across the surface of the heat transfer tube 4301. The heat transfer tube 4301 may incorporate a layer of hydrophilic material 4311 in order to produce a more uniform film of water on the external surface of the heat transfer tube 4301, thereby increasing surface area and providing greater evaporative cooling effect. No changes in the fluid arrangement are made to the dehumidification stage 4200.
- c. Changes in the fluid arrangement of the dehumidification stage 4200 and of the cooling stage 4300 described in a) and b), above, are both employed.
- a. Supply air 4005 is introduced into a mass transfer tube 4202 concentrically located within the heat transfer tube 4201 of the dehumidification stage 4200. An exhaust air stream 4209 and coolant 4203 are passed across the surface of the heat transfer tube 4201. The heat transfer tube 4201 may incorporate a layer of hydrophilic material 4211 in order to produce a more uniform film of water on the external surface of the heat transfer tube 4201, thereby increasing surface area and providing greater evaporative cooling effect. Liquid desiccant 4204 is contained by the heat transfer tube 4201 and mass transfer tube 4202, as in
The section view in
-
- 1) The heat transfer duct system is defined by the walls of the heat transfer tubes 4201 and the outer surfaces of the inlet and outlet manifold reservoirs 4221 and 4222 that face away from each other and which position and seal against the heat transfer tubes 4201.
- 2) The mass transfer duct system is defined by the walls of the mass transfer tubes 4202, the walls of the heat transfer tubes 4201, and the walls of the inlet and outlet manifold reservoirs 4221 and 4222, leading from the inlet connection 4223 to the outlet connection 4224.
- 3) The air duct is defined by the surfaces of the inlet and outlet manifold reservoirs 4221 and 4222 that face each other and position and seal against the mass transfer tubes 4202.
In one embodiment, shown in
Some embodiments of the cooling stage 4300 may spray or otherwise apply a coolant 4303 such as water to the surface of foil or other shaped heat transfer tubes 4301 that convey dehumidified supply air 4006. Exhaust air 4309 may be passed over the surface of the wetted heat transfer tubes 4301. The heat transfer tube 4301 may incorporate a layer of hydrophilic material 4311 in order to produce a more uniform film of water on the external surface of the heat transfer tube 4301, thereby increasing surface area and providing greater evaporative cooling effect. This method provides the exhaust air 4309 a greater amount of time to contact an increased volume of water, allowing it to reach equilibrium with the water, thereby maximizing the temperature reduction of the water and increasing the degree to which the dehumidified air stream 4006 is cooled. As indicated by the examples shown in
As with the circular cross-section heat transfer tubes 4201 and 4301 and mass transfer tubes 4202 shown in
Another method for increasing heat and mass transfer is to use helical features to increase the time that fluid streams on opposing sides of the tube wall have to reach equilibrium in temperature, or in water content.
The mass transfer tube may be produced using various materials and methods that achieve the desired water vapor transport from the humid air to the liquid desiccant and provide chemical compatibility with the liquid desiccant. In order to contain the liquid desiccant in the mass transfer tube, a hydrophobic woven plastic or hydrophobic non-woven plastic including, but not limited to meltblown and spunbonded olefins, or microporous membranes with porosity including, but not limited to a range of 0.05 microns to 0.5 microns, may be used. The combination of small pores and a hydrophobic material prevents water from migrating through the aforementioned materials under normal operating conditions (e.g., pressures under 20 psi). However, when the pressure inside the tube is increased above a breakthrough pressure liquid water can seep through the pore structure.
As used herein, “breakthrough pressure” relates to the minimum pressure at which liquid water will cross a hydrophobic woven or non-woven material or hydrophobic microporous membrane that is only water-vapor permeable at lower pressures. For example, the breakthrough pressure of a hydrophobic sintered material with a porosity of 0.1 microns may be approximately 60 psi.
When operated at a breakthrough pressure, water will pass through to the surface of the hydrophobic material to produce a thin sheet of water around the surface. An alternate technique for producing a thin sheet of water on the surface of the tubes is utilizing a hydrophilic material at lower pressures. Mister spray-heads can be used to introduce water droplets for evaporative cooling anywhere herein where a hydrophobic material at a breakthrough pressure or a hydrophilic material is used. Humidification media such as Mufflers CELdek® may also be used in conjunction with water drip or mister spray heads to provide evaporative cooling of an exhaust air stream 4209, 4309, 4409, and 4509 which may then be used as the coolant in any of the heat and mass transfer device 4100 embodiments described herein.
To promote water vapor transport, in some embodiments, a thickness of a microporous membrane includes, but is not limited to the range of 10 microns to 50 microns and its open area should exceed 50%. In some embodiments, the open area is greater than 70%. For the purpose of mechanically supporting this thin, microporous membrane, and to prohibit the collapse of the membrane tube in the case that the liquid desiccant is at a lower pressure than the surrounding ambient air, a structural, internal support tube 4020 can be provided. This design approach, with the microporous membrane covering the outside surface of the structural support tube 4020, permits the liquid desiccant to be nearest to the passing air to be dehumidified, and promotes water vapor transport across the membrane. Both the structural tube 4020 and membrane may be produced from a suitable material such as PVDF, PP, HDPE, PES, PPS, PVC, PTFE, and other suitable materials.
In a second construction of a mass transfer tube 4202 and 4402, a structural, porous tube 4020 is again used as a substrate, onto which a solid electrolyte membrane is applied. The porous substrate 4020 can include a sintered material such as PTFE, PVDF, PP or other suitable material, with porosity including, but not limited to the range of 10 microns to 500 microns. The electrolyte membrane, which selectively transports water and not gases, is applied onto the outer surface of the substrate tube 4020 through spraying, dipping or other deposition methods. In some embodiments, the thickness range of the electrolyte membrane is in a range that includes, but is not limited to 10 microns to 100 microns. A wall thickness range of the structural porous substrate tube 4020 includes, but is not limited to 0.005″ to 0.050″. In some embodiments, the porous substrate tube 4020 is formed of hydrophilic materials, in order to promote transfer of water through the sintered material and to the surface of the microporous membrane.
In a third construction of a mass transfer tube 4202 and 4402, a structural porous or perforated tube 4020 is used as a mechanical support, onto which a hydrophobic woven plastic or a hydrophobic non-woven plastic including, but not limited to meltblown and spunbonded olefins, or a microporous membrane or solid electrolyte membrane is attached. A porous tube 4020 may be produced from sintered PVDF, PP or other suitable material with porosity in the range that includes, but is not limited to 10 microns to 500 microns. A perforated tube 4020 with porosity in the range that includes, but is not limited to 0.05″ to 0.5″ may be produced by injection or compression molding PP, HDPE, PVDF, or other suitable material. The structural tube 4020 may have circular cross section, or it may use a foil-shape or other combination of circular and angular sections that result in improved air flow directed perpendicular to its axis (
As shown in
In some embodiments, each mass transfer tube 4202 is longer than each heat transfer tube 4201, and the mass transfer tubes 4202 are located concentrically within larger diameter heat transfer tubes 4201. Such embodiments are identical to those shown in
In some embodiments, the mass transfer tubes 4202 and 4402 may be partially or entirely formed from a water vapor permeable material. In some embodiments, the mass transfer tubes 4202 and 4402 can include a porous support material (e.g., a scaffolding) and a water vapor permeable material. Examples of mass transfer tube materials are those selected from the group consisting of a woven plastic, non-woven plastic such as a spunbonded olefin, microporous plastic, structural porous tube covered with a microporous plastic, a structural porous tube covered with a water-permeable, microporous polymer electrolyte membrane, or a combination thereof. Examples of solid or monolithic, water permeable materials include sulfonated tetrafluoroethylene based fluoropolymer-copolymer (e.g., Nafion™, sold by DuPont), water conducting fluoropolymers, and non-fluorinated proton conducting polymers (e.g., NanoClear™, sold by Dais Analytic). Such water permeable, microporous membranes are generally formed from hydrophilic materials. As used herein “hydrophilic” refers to materials with a contact angle of greater than 90° (e.g., at least 100°, at least 115°, at least 120°, or at least 135°). As used herein, “covered” includes, but is not limited to, instances where a material is coated onto a substrate and instances where a material (such as a film) is wrapped over or shrink wrapped onto the substrate. An example of a porous support material formed into a foil shape 4020 is shown in
In some embodiments, the heat transfer tubes 4201, 4301, 4401 and 4501, mass transfer tubes 4202 and 4402, coupling devices 4050, 4051 and 4053, manifold reservoirs 4221, 4222 and 4421, and other associated parts of the duct systems can include a material selected from the group consisting of polyvinylidene difluoride (PVDF), polypropylene (PP), high-density polyethylene (HDPE), polytetrafluoroethylene (PTFE), polyvinyl chloride (PVC), polyphenylene sulfide (PPS), polyethersulfone (PES), metal, and combinations thereof. In some embodiments, the wall can be formed of a metal coated by polyvinylidene difluoride (PVDF), polypropylene (PP), high-density polyethylene (HDPE), polytetrafluoroethylene (PTFE), or combinations thereof. In other embodiments, the wall can be formed of polyvinylidene difluoride (PVDF), polypropylene (PP), high-density polyethylene (HDPE), polytetrafluoroethylene (PTFE), polyvinyl chloride (PVC), polyphenylene sulfide (PPS), polyethersulfone (PES), or combinations thereof. Examples of metal that can be useful include, but are not limited to, titanium, stainless steel, and other corrosion resistant metals or alloys.
The foregoing is provided for purposes of illustrating, explaining, and describing embodiments of this invention. Modifications and adaptations to these embodiments will be apparent to those skilled in the art and may be made without departing from the scope or spirit of this invention.
Claims
1. A heat and mass exchanger system, comprising:
- a plurality of exchange components extending across a heat and mass exchanger (HMX) duct, wherein a flow through said HMX duct is cross-flow relative to said exchange components, wherein said exchange components comprise a plurality of first elongated, hollow conduits and a plurality of second elongated, hollow conduit,
- wherein either said first elongated, hollow conduits or said second elongated, hollow conduits have water vapor permeable exterior walls, and
- wherein heat and mass exchanger system is adapted for a carrier air stream and a liquid desiccant stream to flow in contact with opposite sides of said water vapor permeable exterior walls.
2. The system according to claim 1, wherein said system is adapted to transport a liquid desiccant stream through a body selected from said HMX duct, said first elongated, hollow conduits, and said second elongated, hollow conduits; and
- wherein said system is adapted to transport a carrier air stream through a different body selected from said HMX duct, said first elongated, hollow conduits, and said second elongated, hollow conduits.
3. The system according to claim 1, wherein said first elongated, hollow conduits are each spaced apart from the others, and wherein said second elongated, hollow conduits are each spaced apart from the others.
4. The system according to claim 1, wherein said exchange components comprise tube-in-tube exchange components, wherein each tube-in-tube components comprises one first elongated, hollow conduit within one second elongated, hollow conduit, forming an inner flow channel within said first elongated, hollow conduit and an outer flow channel external to said first elongated, hollow conduit and adjacent a wall of said second elongated, hollow conduit.
5. The system according to claim 4, wherein said pluralities of first and second elongated, hollow conduits extend laterally across the HMX duct, and said system further comprising a plurality of third elongated, hollow conduits extending across said HMX duct.
6. The system according to claim 5, wherein said third elongated, hollow conduits extend laterally across the HMX duct.
7. The system according to claim 5, wherein said third elongated, hollow conduits extend transverse to said first and second elongated, hollow conduits.
8. The system according to claim 5, wherein each of said tube-in-tube exchanger components further comprises one of the plurality of third elongated, hollow conduits within said first elongated, hollow conduit, where each of said third elongated, hollow conduits define a central lumen within said third elongated, hollow conduit, wherein the inner flow channel is defined by an exterior of the third elongated, hollow conduit and an interior of the first elongated, hollow conduit.
9. The system according to claim 4, adapted such that a coolant stream flows through said inner channel, a liquid desiccant stream flows through said outer channel, and a carrier air stream flows through said HMX duct.
10. The system according to claim 9, wherein the system is configured to flow the coolant stream and the liquid desiccant stream in a counter-flow arrangement.
11. The system according to claim 4, adapted such that a carrier air stream flows through said inner channel, liquid desiccant stream flows through said outer channel, and a coolant stream flows through said HMX duct.
12. The system according to claim 11, wherein the system is configured to be carrier air stream and the liquid desiccant stream in a counter-flow arrangement.
13. The system according to claim 4, adapted such that a liquid desiccant stream flows through said inner channel, a carrier air stream flows through said outer channel, and said coolant stream flows through said HMX duct.
14. The system according to claim 13, wherein the system is configured to flow the liquid desiccant stream and the carrier air stream in a counter-flow arrangement.
15. The system according to claim 4, wherein each first elongated, hollow conduit is longer than each second elongated, hollow conduit.
16. The system according to claim 4, wherein each tube-in-tube exchanger component comprises a first end cap and a second end cap, wherein the first end cap sealably engages first ends of the first and second elongated, hollow conduit, and the second end cap sealably engages second ends of the first and second elongated, hollow conduit,
- wherein said first end cap comprises at least one first end cap inner opening extending to said inner flow channel and at least one first end cap outer opening extending to said outer flow channel, and
- wherein said second end cap comprises at least one second end cap inner opening extending to said inner flow channel and at least one second end cap outer opening extending to said outer flow channel.
17. The system according to claim 16, further comprising:
- first and second inner manifold plates on opposite sides of said HMX duct; and
- first and second outer manifold plates on opposite sides of said HMX duct, wherein said first and second inner manifold plates are between said first and second outer manifold plates,
- wherein said first inner manifold plate and said first outer manifold plate engage said first end cap of each tube-in-tube exchanger component, and
- wherein said second inner manifold plate and said second outer manifold plate engage said second first end cap of each tube-in-tube exchanger component.
18. The system according to claim 15, further comprising:
- first and second inner manifold plates on opposite sides of said HMX duct; and
- first and second outer manifold plates on opposite sides of said HMX duct, wherein said first and second inner manifold plates are between said first and second outer manifold plates,
- wherein said first and second inner manifold plates engage first and second ends of each of said second elongated, hollow conduits, and
- wherein said first and second outer manifold plates engage first and second ends of each of said first elongated, hollow conduits.
19. The system according to claim 1, further comprising a plurality of disrupters extending from at least one wall of said HMX duct.
20. The system according to claim 19, wherein the flow disrupters extend across said HMX duct.
Type: Application
Filed: Feb 17, 2015
Publication Date: Aug 20, 2015
Applicant: BE POWER TECH LLC (Parkland, FL)
Inventors: Daniel A. BETTS (Parkland, FL), Matthew D. GRAHAM (West Palm Beach, FL)
Application Number: 14/623,797