CA2880353C - Membrane support assembly for an energy exchanger - Google Patents
Membrane support assembly for an energy exchanger Download PDFInfo
- Publication number
- CA2880353C CA2880353C CA2880353A CA2880353A CA2880353C CA 2880353 C CA2880353 C CA 2880353C CA 2880353 A CA2880353 A CA 2880353A CA 2880353 A CA2880353 A CA 2880353A CA 2880353 C CA2880353 C CA 2880353C
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- fluid
- turbulence
- air
- membranes
- energy
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Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F9/00—Casings; Header boxes; Auxiliary supports for elements; Auxiliary members within casings
- F28F9/007—Auxiliary supports for elements
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F3/00—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems
- F24F3/12—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling
- F24F3/14—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling by humidification; by dehumidification
- F24F3/1411—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling by humidification; by dehumidification by absorbing or adsorbing water, e.g. using an hygroscopic desiccant
- F24F3/1417—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling by humidification; by dehumidification by absorbing or adsorbing water, e.g. using an hygroscopic desiccant with liquid hygroscopic desiccants
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F3/00—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems
- F24F3/12—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling
- F24F3/14—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling by humidification; by dehumidification
- F24F3/147—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling by humidification; by dehumidification with both heat and humidity transfer between supplied and exhausted air
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D15/00—Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D21/00—Heat-exchange apparatus not covered by any of the groups F28D1/00 - F28D20/00
- F28D21/0015—Heat and mass exchangers, e.g. with permeable walls
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28F—DETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
- F28F13/00—Arrangements for modifying heat-transfer, e.g. increasing, decreasing
- F28F13/06—Arrangements for modifying heat-transfer, e.g. increasing, decreasing by affecting the pattern of flow of the heat-exchange media
- F28F13/12—Arrangements for modifying heat-transfer, e.g. increasing, decreasing by affecting the pattern of flow of the heat-exchange media by creating turbulence, e.g. by stirring, by increasing the force of circulation
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24F—AIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
- F24F3/00—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems
- F24F3/12—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling
- F24F3/14—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling by humidification; by dehumidification
- F24F2003/1435—Air-conditioning systems in which conditioned primary air is supplied from one or more central stations to distributing units in the rooms or spaces where it may receive secondary treatment; Apparatus specially designed for such systems characterised by the treatment of the air otherwise than by heating and cooling by humidification; by dehumidification comprising semi-permeable membrane
Landscapes
- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Thermal Sciences (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Drying Of Gases (AREA)
- Separation Using Semi-Permeable Membranes (AREA)
- Heat-Exchange Devices With Radiators And Conduit Assemblies (AREA)
Abstract
Description
[0001]
BACKGROUND OF THE DISCLOSURE
The pre-conditioned air is conditioned by the HVAC system to provide a desired temperature and humidity of supply air discharged into the enclosed structure. The exhaust air flow path discharges air back to the environment outside the structure. Without energy recovery, conditioning the supply air typically requires a significant amount of auxiliary energy, particularly in environments having extreme outside air conditions that are much different than the required supply air temperature and humidity. Accordingly, energy exchange or recovery systems are used to recover energy from the exhaust air flow path.
Energy recovered from air in the exhaust flow path is utilized to reduce the energy required to condition the supply air.
Conventional energy exchange systems may utilize energy recovery devices (for example, energy wheels and permeable plate exchangers) or heat exchange devices (for example, heat wheels, plate exchangers, heat-pipe exchangers and run-around heat exchangers) positioned in both the supply air flow path and the return air flow path. Liquid-to-air membrane energy exchangers (LAMEEs) may be fluidly coupled so that a desiccant liquid flows between the LAMEEs in a run-around loop, similar to run-around heat exchangers that typically use aqueous glycol as a coupling fluid.
includes a series of alternating liquid desiccant and air channels separated by the membrane. Typically, the pressure of the liquid within a liquid channel between membranes is higher than that of the air pressure outside of the membranes. As such, the flexible membranes tend to outwardly bow or bulge into the air channel(s).
Moreover, a support structure is generally provided between membranes to limit the amount of membrane bulge. However, the relatively wide air channels and support structures typically diminish the performance of the LAMEE. In short, resistance to heat and moisture transfer in the air channel is relatively high due to the large air channel width, and the support structure may block a significant amount of membrane transfer area. Accordingly, a large amount of membrane area is needed to meet performance objectives, which adds costs and results in a larger LAMEE. Moreover, the support structure within an air channel may produce an excessive pressure drop, which also adversely affects operating performance and efficiency of the LAMEE.
qs = h(T, ¨ Tõ,) where qs is the heat flux at the membrane per unit area, h is the local heat transfer coefficient, Ts is the local membrane temperature, and T. is the local bulk mean temperature of the air. For a given temperature difference, (Ts ¨ T.), the rate at which heat is transferred to the membrane depends on the transfer coefficient h, which is related to the air channel width and air flow properties. The transfer of mass (for example, moisture) is governed by an analogous relationship. That is, the mass flux depends on a mass transfer coefficient h., and the difference in concentration (for example, humidity) between the bulk air flow and the air at the surface. The coefficients h and hm are related to one another through the heat and mass transfer analogy for a given channel geometry and flow condition. The transfer coefficient is described by a dimensionless parameter referred to as the Nusselt number:
Nu = hDh/k where Ph is the hydraulic diameter of the air channel, which is equal to twice the air channel width for parallel plates, and k is the thermal conductivity of the air. A typical LAMEE creates laminar flow (that is, smooth, steady air flow with no turbulence) in the air channels
Additionally, it has been found that laminar air flow through the air channels produces relatively low heat and moisture transfer rates between the air channel and the membrane.
SUMMARY OF THE DISCLOSURE
a plurality of planar struts, a width of at least one of the planar struts generally equal to the width of the fluid channel, the planar struts configured to span between the first and second membranes and support the fluid channel; and a plurality of turbulence promoters connected to and integrally molded and formed with the plurality of planar struts as a single piece, wherein each of the plurality of turbulence promoters has a central longitudinal axis that is generally perpendicular to a central longitudinal axis of each planar strut, wherein a width of at least one of the turbulence promoters is less than the width of the fluid channel, wherein the plurality of turbulence promoters is configured to promote fluid turbulence within the fluid channel, and wherein the fluid turbulence within the fluid channel enhances transfer of heat and moisture between the fluid channel and the first and second membranes.
Alternatively, the turbulence promoter(s) may include an elliptical-shaped post.
and a plurality of turbulence promoters connected to and integrally molded and formed with the plurality of planar struts as a single piece, wherein each of the plurality of turbulence promoters has a central longitudinal axis that is generally perpendicular to a central longitudinal axis of each planar strut, wherein a width of at least one of the turbulence promoters is less than the width of the second fluid channel, wherein the plurality of turbulence promoters is configured to promote fluid turbulence within the second fluid channel, and wherein the fluid turbulence within the second channel enhances transfer of heat and moisture between the second channel and the first and second membranes.
BRIEF DESCRIPTION OF THE DRAWINGS
5a
DETAILED DESCRIPTION OF THE DRAWINGS
The production of turbulence in the air flow increases the transfer potential because eddies, vortices, and other such turbulence vigorously mix the air within an air channel toward a membrane of the LAMEE. A wide variety of solid shapes placed in the air channel can produce eddies and generate mixing in the air flow. An efficient and high performance transfer enhancement device produces a significant enhancement in transfer rates without creating an excessive pressure drop in the air flow. Excessive pressure drop may be detrimental to operating performance and efficiency because a greater amount of fan power may be needed to move air through the air channel. .
The fan 106 directs the pre-conditioned air flow through path 104 to a supply air liquid-to-air membrane energy exchanger (LAMEE) 108. The supply air LAMEE 108 conditions the pre-conditioned air flow in path 104 to generate a change in air temperature and humidity (for example, to partly or fully pre-condition the air) for a supply air flow condition to be discharged into the enclosed space 101. During a winter mode operation, the supply air LAMEE 108 may condition the pre-conditioned air flow path 104 by adding heat and moisture to the pre-conditioned air in flow path 104. In a summer mode operation, the supply air LAM EE 108 may condition the pre-conditioned air flow path 104 by removing heat and moisture from the pre-conditioned air in flow path 104. The pre-conditioned air 110 may be channeled to an HVAC system 112 of the enclosed structure 101. The HVAC system 112 may further condition the pre-conditioned air 110 to generate the desired temperature and humidity for the supply air 114 that is supplied to the enclosed structure 101.
in the system.
mass flow rate portion 118 of the return air 116 may be returned to the HVAC system 112.
Another mass flow rate portion 119 of the return air 116 may be channeled to a return air or regeneration LAMEE 120. The portions 118 and 119 may be separated with a damper 121 or the like. For example, 80% of the return air 116 may be channeled to the HVAC
system 112 and 20% of the return air 116 may be channeled to the return air LAMEE
120. The return air LAMEE 120 exchanges energy between the portion 119 of the return air 116 and the preconditioned air 110 in the supply air LAMEE 108. During a winter mode operation, the return air LAMEE 120 collects heat and moisture from the portion 119 of the return air 116. During a summer mode operation, the return air discharges heat and moisture into the portion 119 of the return air 116. The return air LAMEE 120 generates exhaust air 122. The exhaust air 122 is discharged from the structure 101 through an outlet 124. A fan 126 may be provided to move the exhaust air 122 from the return air LAMEE 120. The system 100 may include multiple fans 126 or one or more fan arrays located either up-stream or down-stream (as in Figure 1) of the return air LAMEE 120.
A stepped-up bottom 318 may be positioned at the air outlet end 308. The stepped-up bottom 318 may be stepped a distance 320 from the bottom 316. In certain embodiments, the stepped-up bottom 318 or stepped-down top 312 sections may have different sizes of steps or no step at all. Alternatively, a stepped-up top may be positioned at the air inlet end or a stepped-down bottom may be positioned at the air outlet end.
Alternatively, the liquid desiccant inlet reservoir 338 may have any height that meets a desired performance of the LAMEE 300. The desiccant inlet reservoir 338 extends a length 339 of the LAMEE body 304. The length 339 that is configured to meet a desired performance of the LAMEE 300. In an embodiment, the desiccant inlet reservoir 338 may extend no more than one fourth of the length 327 of the LAMEE body 304. Alternatively, the desiccant inlet reservoir 338 may extend along one fifth, for example, of the length 327 of the LAMEE body 304.
The desiccant outlet reservoir 346 has a height 348 that may be equal to the distance 314 between the top 310 and the stepped-down top 312. The desiccant outlet reservoir 346 extends along the top 312 of the LAMEE housing 302 for a length 350. In an embodiment, the length 350 may be no more than one fourth the length 327 of the flow panel exchange area length 302. In another embodiment, the length 350 may be one fifth, for example, the length 327 of the panel exchange area length 302.
In an alternative embodiment, the desiccant outlet reservoir 346 may be positioned along the bottom 318 of the LAMEE housing 302 and the desiccant inlet reservoir 338 may be positioned along the top 310 of the housing 302.
Alternatively, the LAMEE 300 may include liquid desiccant outlet reservoirs 346 and liquid desiccant inlet reservoirs 338 on the top and bottom of each of each end of a LAMEE 300. A
liquid flow controller may direct the liquid flow to either the top or bottom.
Liquid panel assemblies that may be used in the LAMEE 300 are described and shown in U.S.
Patent No. 9,816,760, entitled "Liquid Panel Assembly.
300, the membrane support assembly 400 may be used with respect to any type of LAMEE or energy exchange system that uses membranes. The LAMEE 300 shown and described with respect to Figure 3 is merely exemplary. Embodiments, such as the membrane support assembly 400 and other membrane support assemblies described in the present application are in no way limited to use with the LAMEE 300.
of each support strut 402. The widths wt of the turbulence promoters 404 are less than the widths ws of the support struts 402. The turbulence promoters 404 may be located about a central vertical plane X of the air channel 336. Further, the width wt of the turbulence promoters 404 may extend a short distance on either side of the central plane x.
However, more or less support struts 402 and turbulence promoters 404 may be used. For example, the membrane support assembly 400 may include two support struts 402 and one turbulence promoter 404. Also, for example, the membrane support assembly 400 may include four support struts 402 and four turbulence promoters 404.
flows over and/or across the turbulence promoters 404. Air flow A encounters a leading, rounded (such as a semi-elliptical shape) end 412 of each turbulence promoter 404 and passes around an intermediate portion 414, and creates turbulence, such as eddies and/or vortices, as it passes around a straight-edge blunted end 416 (as shown in Figure 7, in particular). The support struts 402 provide structural support for the air channel, as shown in Figure 4, for example. The support struts 402 prevent neighboring membranes from outwardly bulging or bowing. The support struts 402 maintain the width of the air channel, and also provide support to the flexible membranes.
The turbulence promoter 600 may be used in place of any of the turbulence promoters described above. The turbulence promoter 600 may be efficiently formed through extrusion and punching operations.
The turbulence promoter 600 may be used in place of any of the turbulence promoters described above. The elliptical turbulence promoter 700 is configured for low drag and low pressure drop with respect to the airflow.
Additionally, alternatively, the planar fin 804 may not be parallel with the longitudinal axis 806.
Instead, the planar fin 804 may be angled with respect to the longitudinal axis 806. For example, the planar fin 804 may be perpendicular to the longitudinal axis 806.
In such an embodiment, the planar fin 804 may or may not span between neighboring membranes within a LAMEE.
Moreover, three of the four turbulence promoters 904 may be offset to one side of the longitudinal axis 906. When the turbulence promoters 904 are offset from the longitudinal axis 906, such that they are closer to a membrane, heat and moisture transfer between the air stream and the membranes may be increased (as compared to when the turbulence promoters are aligned along the longitudinal axis).
The turbulence promoters 904 may be replaced with any of the turbulence promoters shown in Figures 8-10.
The openings 1306 promote additional heat and moisture transfer enhancement.
Further, any of the turbulence promoters shown in Figures 8-11 may be used in place of the turbulence promoters 1304.
Because the support beams 1402 are separated from one another, air gaps 1408 exist between parallel support beams 1402. Air is able to pass into the air gaps 1408, thereby providing increased heat and moisture transfer between the air stream and the membranes.
Alternatively, the connection joints 1403 may be integrally formed with either parallel support beams 1402, and/or parallel support beams 1404. Also, alternatively, the entire membrane support assembly 1400 may be molded and formed as an integral unit.
Optionally, the membrane support assembly 1500 may be formed of plastic.
Alternatively, the support struts 1502 may be metal or plastic, while the turbulence promoters 1504 may be formed of the other of metal or plastic.
The energy exchanger 2100 may include a housing 2102 having a base 2102 connected to upstanding supports 2104, which, in turn, connect to an upper wall 2106. Fluid inlets 2108 and 2110 and fluid outlets 2112 and 2114 are defined between the upstanding supports 2104. As shown in Figure 21, the housing 2102 is formed as a cube, but may be formed as various other shapes.
While the dimensions and types of materials described herein are intended to define the parameters of the various embodiments of the disclosure, the embodiments are by no means limiting and are exemplary embodiments. Many other embodiments will be apparent to those of skill in the art upon reviewing the above description. The scope of the various embodiments of the disclosure should, therefore, be determined with reference to the appended claims, along with the full scope of equivalents to which such claims are entitled. In the appended claims, the terms "including" and "in which" are used as the plain-English equivalents of the respective terms "comprising" and "wherein."
Moreover, in the following claims, the terms "first," "second," and "third,"
etc. are used merely as labels, and are not intended to impose numerical requirements on their objects.
Claims (15)
OR PRIVILEGE IS CLAIMED ARE DEFINED AS FOLLOWS:
first and second membranes;
a fluid channel having a width defined between the first and second membranes, the fluid channel configured to allow a first fluid to flow therethrough, the first fluid contacting the first and second membranes to exchange energy between the first fluid a second fluid on an opposing side of each of the first and second membranes, and the first and second membranes separating the first fluid from the second fluid;
a membrane support assembly positioned within the fluid channel, the membrane support assembly comprising:
a plurality of planar struts, a width of at least one of the planar struts generally equal to the width of the fluid channel, the planar struts configured to span between the first and second membranes and support the fluid channel; and a plurality of turbulence promoters connected to and integrally molded and formed with the plurality of planar struts as a single piece, wherein each of the plurality of turbulence promoters has a central longitudinal axis that is generally perpendicular to a central longitudinal axis of each planar strut, wherein a width of at least one of the turbulence promoters is less than the width of the fluid channel, wherein the plurality of turbulence promoters is configured to promote fluid turbulence within the fluid channel, and wherein the fluid turbulence within the fluid channel enhances transfer of heat and moisture between the fluid channel and the first and second membranes.
first and second membranes defining first and second liquid channels;
an air channel having a width defined between the first and second membranes, wherein the air channel is configured to allow air to pass therethrough, and wherein the air contacts the membranes to exchange energy between the air and liquid within the first and second liquid channels; and a membrane support assembly positioned within the air channel between the first and second membranes, the membrane support assembly comprising:
a plurality of planar struts spanning the width of the air channel; and a plurality of turbulence promoters connected to the plurality of planar struts, wherein each of the plurality of turbulence promoters has a central longitudinal axis that is generally perpendicular to a central longitudinal axis of each planar strut, wherein a width of at least one of the turbulence promoters is less than the width of the fluid channel, wherein the plurality of turbulence promoters is configured to promote airflow turbulence within the air channel, and wherein the airflow turbulence within the air channel enhances transfer of heat and moisture between the air channel and the first and second membranes.
first and second membranes defining first and second fluid channels;
a second fluid channel having a width defined between the first and second membranes, wherein the second fluid channel is configured to allow the second fluid to pass therethrough, and wherein the second fluid contacts the membranes to exchange energy between the second fluid and the first fluid within the first and second fluid channels; and a membrane support assembly positioned within the second fluid channel between the first and second membranes, the membrane support assembly comprising:
a plurality of planar struts configured to span between the first and second membranes, wherein the plurality of planar struts is configured to support the second fluid channel, and a width of at least one of the planar struts is generally equal to the width of the second fluid channel; and a plurality of turbulence promoters connected to and integrally molded and formed with the plurality of planar struts as a single piece, wherein each of the plurality of turbulence promoters has a central longitudinal axis that is generally perpendicular to a central longitudinal axis of each planar strut, wherein a width of at least one of the turbulence promoters is less than the width of the second fluid channel, wherein the plurality of turbulence promoters is configured to promote fluid turbulence within the second fluid channel, and wherein the fluid turbulence within the second channel enhances transfer of heat and moisture between the second channel and the first and second membranes.
Applications Claiming Priority (7)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201261692793P | 2012-08-24 | 2012-08-24 | |
| US61/692,793 | 2012-08-24 | ||
| US201361774184P | 2013-03-07 | 2013-03-07 | |
| US61/774,184 | 2013-03-07 | ||
| US13/797,062 | 2013-03-12 | ||
| US13/797,062 US20140054004A1 (en) | 2012-08-24 | 2013-03-12 | Membrane support assembly for an energy exchanger |
| PCT/CA2013/000609 WO2014029004A1 (en) | 2012-08-24 | 2013-06-26 | Membrane support assembly for an energy exchanger |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| CA2880353A1 CA2880353A1 (en) | 2014-02-27 |
| CA2880353C true CA2880353C (en) | 2020-09-08 |
Family
ID=50146974
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CA2880353A Active CA2880353C (en) | 2012-08-24 | 2013-06-26 | Membrane support assembly for an energy exchanger |
Country Status (8)
| Country | Link |
|---|---|
| US (1) | US20140054004A1 (en) |
| EP (2) | EP3421921B1 (en) |
| CN (2) | CN110345803A (en) |
| AU (2) | AU2013305428B2 (en) |
| CA (1) | CA2880353C (en) |
| DK (2) | DK3421921T3 (en) |
| IN (1) | IN2015DN00892A (en) |
| WO (1) | WO2014029004A1 (en) |
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| US11035618B2 (en) | 2012-08-24 | 2021-06-15 | Nortek Air Solutions Canada, Inc. | Liquid panel assembly |
| US11300364B2 (en) | 2013-03-14 | 2022-04-12 | Nortek Air Solutions Canada, Ine. | Membrane-integrated energy exchange assembly |
| US11598534B2 (en) | 2013-03-15 | 2023-03-07 | Nortek Air Solutions Canada, Inc. | Control system and method for a liquid desiccant air delivery system |
| US11761645B2 (en) | 2011-09-02 | 2023-09-19 | Nortek Air Solutions Canada, Inc. | Energy exchange system for conditioning air in an enclosed structure |
| US11892193B2 (en) | 2017-04-18 | 2024-02-06 | Nortek Air Solutions Canada, Inc. | Desiccant enhanced evaporative cooling systems and methods |
| US12111072B2 (en) | 2010-06-24 | 2024-10-08 | Nortek Air Solutions Canada, Inc. | Liquid-to-air membrane energy exchanger |
| US12385654B2 (en) | 2017-04-18 | 2025-08-12 | Nortek Air Solutions Canada, Inc. | Systems and methods for managing conditions in enclosed space |
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| ES2752069T3 (en) | 2010-05-25 | 2020-04-02 | 7Ac Tech Inc | Methods and systems using liquid desiccants for air conditioning and other processes |
| CN104096459B (en) * | 2010-09-07 | 2018-05-11 | 戴斯分析公司 | Use the fluid handling system and method for selective transport membranes |
| US8915092B2 (en) | 2011-01-19 | 2014-12-23 | Venmar Ces, Inc. | Heat pump system having a pre-processing module |
| KR102189997B1 (en) | 2012-06-11 | 2020-12-11 | 7에이씨 테크놀로지스, 아이엔씨. | Methods and systems for turbulent, corrosion resistant heat exchangers |
| WO2014089164A1 (en) | 2012-12-04 | 2014-06-12 | 7Ac Technologies, Inc. | Methods and systems for cooling buildings with large heat loads using desiccant chillers |
| EP2962043B1 (en) | 2013-03-01 | 2018-06-27 | 7AC Technologies, Inc. | Desiccant air conditioning system |
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| US9109808B2 (en) | 2013-03-13 | 2015-08-18 | Venmar Ces, Inc. | Variable desiccant control energy exchange system and method |
| KR102099693B1 (en) | 2013-03-14 | 2020-05-15 | 7에이씨 테크놀로지스, 아이엔씨. | Methods and systems for mini-split liquid desiccant air conditioning |
| CN105121966B (en) | 2013-03-14 | 2018-06-01 | 7Ac技术公司 | For the method and system of liquid drier air handling system transformation |
| US11408681B2 (en) | 2013-03-15 | 2022-08-09 | Nortek Air Solations Canada, Iac. | Evaporative cooling system with liquid-to-air membrane energy exchanger |
| US9470426B2 (en) | 2013-06-12 | 2016-10-18 | 7Ac Technologies, Inc. | In-ceiling liquid desiccant air conditioning system |
| CN110594883B (en) | 2014-03-20 | 2022-06-14 | 艾默生环境优化技术有限公司 | Combined heat exchanger and water injection system |
| CN104006514B (en) * | 2014-05-13 | 2017-02-15 | 珠海格力电器股份有限公司 | Polymer membrane module and air conditioning system |
| EP3183051B1 (en) | 2014-08-19 | 2020-04-29 | Nortek Air Solutions Canada, Inc. | Liquid to air membrane energy exchangers |
| WO2016081933A1 (en) | 2014-11-21 | 2016-05-26 | 7Ac Technologies, Inc. | Methods and systems for mini-split liquid desiccant air conditioning |
| US11092349B2 (en) | 2015-05-15 | 2021-08-17 | Nortek Air Solutions Canada, Inc. | Systems and methods for providing cooling to a heat load |
| CN107850335B (en) | 2015-05-15 | 2021-02-19 | 北狄空气应对加拿大公司 | Liquid cooling using liquid-gas membrane energy exchangers |
| EP3314188B1 (en) | 2015-06-26 | 2021-05-12 | Nortek Air Solutions Canada, Inc. | Three-fluid liquid to air membrane energy exchanger |
| AU2017228937A1 (en) | 2016-03-08 | 2018-10-25 | Nortek Air Solutions Canada, Inc. | Systems and methods for providing cooling to a heat load |
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- 2013-06-26 EP EP18153408.2A patent/EP3421921B1/en active Active
- 2013-06-26 CA CA2880353A patent/CA2880353C/en active Active
- 2013-06-26 AU AU2013305428A patent/AU2013305428B2/en active Active
- 2013-06-26 EP EP13830940.6A patent/EP2893284B1/en active Active
- 2013-06-26 IN IN892DEN2015 patent/IN2015DN00892A/en unknown
- 2013-06-26 CN CN201910516006.7A patent/CN110345803A/en active Pending
- 2013-06-26 DK DK13830940.6T patent/DK2893284T3/en active
- 2013-06-26 CN CN201380042926.0A patent/CN104541122A/en active Pending
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2018
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| Publication number | Priority date | Publication date | Assignee | Title |
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| US12111072B2 (en) | 2010-06-24 | 2024-10-08 | Nortek Air Solutions Canada, Inc. | Liquid-to-air membrane energy exchanger |
| US11761645B2 (en) | 2011-09-02 | 2023-09-19 | Nortek Air Solutions Canada, Inc. | Energy exchange system for conditioning air in an enclosed structure |
| US11035618B2 (en) | 2012-08-24 | 2021-06-15 | Nortek Air Solutions Canada, Inc. | Liquid panel assembly |
| US11732972B2 (en) | 2012-08-24 | 2023-08-22 | Nortek Air Solutions Canada, Inc. | Liquid panel assembly |
| US11300364B2 (en) | 2013-03-14 | 2022-04-12 | Nortek Air Solutions Canada, Ine. | Membrane-integrated energy exchange assembly |
| US11598534B2 (en) | 2013-03-15 | 2023-03-07 | Nortek Air Solutions Canada, Inc. | Control system and method for a liquid desiccant air delivery system |
| US11892193B2 (en) | 2017-04-18 | 2024-02-06 | Nortek Air Solutions Canada, Inc. | Desiccant enhanced evaporative cooling systems and methods |
| US12385654B2 (en) | 2017-04-18 | 2025-08-12 | Nortek Air Solutions Canada, Inc. | Systems and methods for managing conditions in enclosed space |
| US12571549B2 (en) | 2017-04-18 | 2026-03-10 | Nortek Air Solutions Canada, Inc. | Desiccant enhanced evaporative cooling systems and methods |
Also Published As
| Publication number | Publication date |
|---|---|
| EP2893284A4 (en) | 2016-08-03 |
| DK3421921T3 (en) | 2020-04-06 |
| WO2014029004A1 (en) | 2014-02-27 |
| US20140054004A1 (en) | 2014-02-27 |
| AU2018226496A1 (en) | 2018-09-27 |
| CN104541122A (en) | 2015-04-22 |
| DK2893284T3 (en) | 2018-05-22 |
| EP2893284B1 (en) | 2018-01-31 |
| IN2015DN00892A (en) | 2015-06-12 |
| AU2013305428B2 (en) | 2018-06-07 |
| CA2880353A1 (en) | 2014-02-27 |
| CN110345803A (en) | 2019-10-18 |
| AU2013305428A1 (en) | 2015-02-19 |
| EP2893284A1 (en) | 2015-07-15 |
| EP3421921B1 (en) | 2020-03-04 |
| EP3421921A1 (en) | 2019-01-02 |
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