HEAT EXCHANGE SYSTEMS AND METHODS
Systems and methods for a heat exchange system used to heat or cool a space are presented. The system includes an airflow source for providing an airflow and at least one conduit that defines an airflow path for receiving the airflow from the airflow source. The air conduit comprises an upwind portion and a downwind portion such that the airflow passes through the air conduit from the upwind portion to the downwind portion. The system further includes a heat exchange medium flow source for providing a heat exchange medium flow and at least one heat exchange medium conduit that defines a heat exchange medium flow path for receiving the heat exchange medium from the heat exchange medium flow source. The heat exchange medium conduit is positioned inside a corresponding air conduit to define a heat exchanger in which heat may be transferred between the airflow within the air conduit and the heat exchange medium flow within the heat exchange medium conduit.
This application claims priority to U.S. Provisional Application No. 62/559,059 filed on Sep. 15, 2017, the entire contents of which are hereby incorporated herein by reference.
TECHNICAL FIELDThe embodiments disclosed herein relate to a heat exchanger assembly, and in particular to a heat exchanger system and method used to cool or heat air and/or a space, such as the interior of an airplane.
INTRODUCTIONHeat exchange systems for cooling or heating air and/or spaces are well-known. Nonetheless, there remains a need for more flexible and efficient heat exchange systems and methods.
SUMMARYIn accordance with an aspect of an embodiment of the present invention, there is provided a heat exchange system comprising an airflow source for providing an airflow, at least one air conduit, a heat exchange medium flow source for providing a heat exchange medium flow, and at least one heat exchange medium conduit. For each air conduit of the at least one air conduit, that air conduit defines an airflow path for receiving the airflow from the airflow source, the air conduit having an upwind portion and a downwind portion such that the airflow passes through the air conduit from the upwind portion to the downwind portion. Each heat exchange medium conduit of the at least one heat exchange medium conduit i) defines a heat exchange medium flow path for receiving the heat exchange medium flow from the heat exchange medium flow source; ii) further comprises a heat exchanger for transferring heat between the airflow within a corresponding air conduit of the at least one air conduit and the heat exchange medium flow within that heat exchange medium conduit; and iii) is inside the corresponding air conduit of the at least one air conduit.
In some embodiments, the heat exchange medium is either slurry ice for cooling the airflow or a heated fluid for heating the airflow.
In some embodiments, for each heat exchange medium conduit of the at least one heat exchange medium conduit, i) the heat exchange medium flow source supplies the heat exchange medium flow to an upstream end of that heat exchange medium conduit; ii) the heat exchange medium flow is through the heat exchange medium conduit from the upstream end to a downstream end; iii) the heat exchange medium flow is dischargeable from the downstream end of that heat exchange medium conduit; and iv) both the upstream end and the downstream end are located in the upwind portion of the corresponding air conduit.
In some embodiments, i) the at least one air conduit comprises a plurality of air conduits; and ii) the at least one heat exchange medium conduit comprises a plurality of heat exchange medium conduits.
In some embodiments, the downwind portion of each air conduit of the at least one air conduit is movable relative to the upwind portion of that air conduit.
In some embodiments, each air conduit of the at least one air conduit comprises an at least one heat exchange medium conduit holder, and the at least one heat exchange medium conduit holder holds a heat exchange medium conduit of the at least one heat exchange medium conduit away from an inner surface of the air conduit to define an airflow gap for a portion of the airflow between the inner surface of the air conduit and the heat exchange medium conduit of the at least one heat exchange medium conduit.
In some embodiments, each heat exchange medium conduit of the at least one heat exchange medium conduit comprises i) an upstream heat exchange medium artery for providing the heat exchange medium flow from the upwind portion of the corresponding air conduit to the downwind portion of the corresponding air conduit; and ii) a downstream heat exchange medium vein for receiving the heat exchange medium flow from the upstream heat exchange medium artery, and for providing the heat exchange medium flow from the downwind portion of the corresponding air conduit back to the upwind portion of the corresponding air conduit. The at least one heat exchange medium conduit holder of each air conduit of the at least one air conduit holds the upstream heat exchange medium artery and the downstream heat exchange medium vein apart to define a heat exchange medium conduit gap, and each heat exchange medium conduit of the at least one heat exchange medium conduit receives the heat exchange medium flow from the heat exchange medium flow source.
In some embodiments, the heat exchange system further comprises an air conduit reel including an air manifold in fluid communication with the airflow source, and a heat exchange medium manifold in fluid communication with the heat exchange medium flow source. The at least one air conduit comprises a plurality of air conduits. The plurality of air conduits are aligned to provide substantially parallel airflow paths and to define a first wrapping plane and a second wrapping plane; the substantially parallel airflow paths being disposed side-by-side between the first wrapping plane and the second wrapping plane; and the plurality of air conduits being wrappable around the air conduit reel without blocking the substantially parallel airflow paths. For each air conduit in the plurality of air conduits, the upwind portion is attached to the air conduit reel; and is in fluid communication with the air manifold to receive the airflow from the airflow source via the air conduit reel. The at least one heat exchange medium conduit comprises a plurality of heat exchange medium conduits. For each heat exchange medium conduit in the plurality of heat exchange medium conduits, an upstream portion of that heat exchange conduit receives the heat exchange medium flow from the heat exchange medium flow source via the air conduit reel; and the upstream portion is in fluid communication with the heat exchange medium manifold of the air conduit reel.
In some embodiments, a substantially planar air conduit guide extending through the first wrapping plane attaches to the plurality of air conduits. The substantially planar air conduit guide is bendable about a bending axis parallel to the first wrapping plane and the second wrapping plane, and orthogonal to the substantially parallel airflow paths while resisting bending about other axes not parallel to the bending axis.
In some embodiments, the planar air conduit guide comprises a plurality of supply electric power cables, a plurality of fluid conduits, and a plurality of compressed air hoses in parallel with the plurality of the air conduits.
In some embodiments, the heat exchange system further comprises an air mixing box and a hose. For each air conduit of the plurality of air conduits, the downwind portion is attached to the air mixing box and the air mixing box is in fluid communication with the plurality of air conduits to receive the airflow from the airflow source. If the heat exchange medium is slurry ice, the air mixing box can comprise an air manifold in fluid communication with the airflow source; and a filter for removing moisture from the airflow. The hose is in fluid communication with the air manifold of the air mixing box to receive a dried airflow from the air manifold of the mixing box downwind of the filter; and has a first end attached to the air mixing box and a second end movable relative to the first end and the second end; is positionable relative to an aircraft to provide the dried airflow from the air mixing box to the aircraft.
In some embodiments, the heat exchange system further comprises an air mixing box and a hose. For each air conduit of the plurality of air conduits, the downwind portion is attached to the air mixing box and the air mixing box is in fluid communication with the plurality of air conduits to receive the airflow from the airflow source. If the heat exchange medium is heated fluid, the air mixing box can comprise an air manifold in fluid communication with the airflow source; and a humidifier for adding moisture to the airflow. The hose is in fluid communication with the air manifold of the air mixing box to receive a humidified airflow from the air manifold of the mixing box downwind of the filter; and has a first end attached to the air mixing box and a second end movable relative to the first end; the second end is positionable relative to an aircraft to provide the humidified airflow from the air mixing box to the aircraft.
In some embodiments, for each heat exchange medium conduit of the at least one heat exchange medium conduit, the corresponding air conduit comprises an external membrane defining the airflow path, and the external membrane of the corresponding air conduit has a thermal resistance exceeding a thermal resistance of the heat exchanger, such that heat transfer between the airflow inside the corresponding air conduit and the heat exchange medium flow exceeds heat transfer across the external membrane of the corresponding air conduit.
In some embodiments, the heat exchange system may further comprising an air conduit guide for supporting the at least one air conduit and for straightening the airflow path defined by the at least one air conduit.
In some embodiments, the air conduit guide comprises a plurality of supply electric power cables, a plurality of fluid conduits, and a plurality of compressed air hoses in parallel with the plurality of the air conduits.
In some embodiments, the at least one air conduit comprises only a single air conduit.
In some embodiments, at least a portion of the at least one air conduit is telescopic defining an extended length of the at least one air conduit and a retracted length of the at least one air conduit. The heat exchange medium conduit is extendable to at least the extended length of the at least one air conduit and retractable to at least the retracted length of the at least one air conduit, the retracted length being shorter than the extended length. The heat exchange system is attached to an aircraft passenger bridge.
In accordance with an aspect of an embodiment of the present invention, there is provided a method for providing cooling to a space. The method involves: providing an airflow along an airflow path; providing a slurry ice flow along a slurry ice flow path, the slurry ice flow path being adjacent to the airflow path, separated by a thermally conductive barrier, the slurry ice flow being provided at a temperature below a temperature of the airflow such that heat is transferred from the airflow to the slurry ice flow via the thermally conductive barrier; and positioning the airflow path to eject a cooled airflow into the space to be cooled.
In some embodiments, the space to be cooled is an interior of a vehicle or an aircraft.
In some embodiments, the described method involves: providing a thermally insulated slurry ice reservoir; filling the thermally insulated slurry ice reservoir with slurry ice; and after filling the thermally insulated slurry ice reservoir with the slurry ice, moving the thermally insulated slurry ice reservoir containing the slurry ice closer to the space to be cooled, such that the airflow path is positionable to eject the cooled airflow into the space to be cooled; wherein providing the slurry ice flow along the slurry ice flow path comprises providing the slurry ice flow to the thermally insulated slurry ice reservoir.
In some embodiments, the described method involves: the slurry ice flow path comprising a slurry ice artery and a slurry ice vein. The slurry ice artery is surrounded by the airflow path; traverses the airflow path in an outgoing direction; and iii) contains the slurry ice flow to cool the airflow within the airflow path. The slurry ice vein is surrounded by the airflow path; traverses the airflow path in an incoming direction, opposite to the outgoing direction; and contains the slurry ice flow to cool the airflow within the airflow path.
In accordance with an aspect of an embodiment of the present invention, there is provided a heat exchange system comprising an airflow source for providing an airflow, at least one air conduit, a heat exchange medium flow source for providing a heat exchange medium flow, and at least one heat exchange medium conduit. For each air conduit of the at least one air conduit, that air conduit defines an airflow path for receiving the airflow from the airflow source, the air conduit having an upwind portion and a downwind portion such that the airflow passes through the air conduit from the upwind portion to the downwind portion. Each heat exchange medium conduit of the at least one heat exchange medium conduit i) defines a heat exchange medium flow path for receiving the heat exchange medium flow from the heat exchange medium flow source; ii) further comprises a heat exchanger for transferring heat between the airflow within a corresponding air conduit of the at least one air conduit and the heat exchange medium flow within that heat exchange medium conduit; and iii) contains the corresponding air conduit of the at least one air conduit is inside.
Other aspects and features will become apparent, to those ordinarily skilled in the art, upon review of the following description of some exemplary embodiments.
The drawings included herewith are for illustrating various examples of articles, methods, and apparatuses of the present specification. In the drawings:
Various apparatuses or processes will be described below to provide an example of each claimed embodiment. No embodiment described below limits any claimed embodiment and any claimed embodiment may cover processes or apparatuses that differ from those described below. The claimed embodiments are not limited to apparatuses or processes having all of the features of any one apparatus or process described below or to features common to multiple or all of the apparatuses described below.
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In some embodiments, the heat exchange medium may be slurry ice for cooling the airflow. Alternatively, in other embodiments, the heat exchange medium may be a heated fluid for heating the airflow. Any fluid which promotes heat transfer may be used as a heat exchange medium. In accordance with an embodiment, the supply of the heat exchange medium flow source is a slurry ice supply line (not shown) extending from a slurry ice generator, located, for example, within an airport hangar, to the heat exchange system 102, 202, and 302 (shown in
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When describing additional features of the claimed invention below, reference is made to the embodiment of heat exchange assembly 100 and its components. It should be understood that the description below is not limited to heat exchange assembly 100 and, where applicable, can be applied to heat exchange assembly 200 and heat exchange assembly 300.
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In accordance with an embodiment, the planar air conduit guide 106 may rest on the surface 158 when not in the fully wrapped position (shown in
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In an alternative embodiment, at least a portion of the heat exchange assembly 100, 200, or 300 may be attached to the base of an aircraft passenger bridge extending from an airport terminal. For example, heat exchange system 102 may run along the base of the aircraft passenger bridge and air mixing box 104 may be attached to the base of the aircraft passenger bridge at an end opposite to the airport terminal. When an aircraft arrives at the airport terminal, the passenger bridge attaches to the aircraft, and preconditioned air hose 110 can be connected between the aircraft and the air mixing box 104 to deliver the airflow to the aircraft.
In an alternative embodiment, the passenger bridge may be extendable and compressible. The heat exchange system 102 may correspondingly extend and compress. In one example, the heat exchange system 102 may bend back upon itself forming a tortuous path. In a second example, the heat exchange system 102 may telescope within itself. In a third example, the at least one heat exchange medium conduit 114 may telescope while the at least one air conduit 112 may compress. In a forth example, the heat exchange system 102 may correspondingly ravel and unravel on the air conduit reel 108 as the passenger bridge extends and compresses. In a fifth example, the at least one air conduit 112 may be telescopic (different lengthwise portions of the air conduit fitting or nesting within one another, analogous to a telescope) and the heat exchange medium conduit 114 may fold back on itself. In a sixth example, the at least one air conduit 112 may be telescopic and the heat exchange medium conduit 114 may stretch and relax accordingly. The above example do not intend to limit the ways by which the at least one air conduit 112 and the heat exchange medium conduit 114 may extend to a first length and retract to a second length. There may be other methods of extending and compressing the at least one air conduit 112 or the heat exchange medium conduit 114.
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In an alternative embodiment, where the heat exchange medium is a heated fluid (such as hot water), the air manifold may include a humidifier (not shown) for adding moisture to the airflow. The other components of the air mixing box 104 can operate in the manner described in which slurry ice is the heat exchange medium. However, instead of providing the dried airflow through the preconditioned air hose 110, a humidified airflow can be provided. The air manifold 170 may include a switch (not shown) for switching between the humidifier and the filter 172 as to enable the filter 172 to be used for both heating and cooling using different types of heat exchange mediums.
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Although in the Figures it appears that air conduit 112 and heat exchange medium conduit 114 are similar in length, in alternative embodiments, the length of air conduit 112 may be substantially longer than heat exchange medium conduit 114. For example, heat exchange medium conduit 114 may be inserted into air conduit 112 part way down the length of air conduit 112. In a second example, where the heat exchange system is used to cool an aircraft, the air conduit 112 may extend from an air flow source that is located further from the heat exchange medium source. In this example, the heat exchange medium conduit 114 and the air conduit 112 could be joined at an intermediate location in the air conduit 112, for example proximate to an aircraft. This would allow for the air flow to be cooled only shortly prior to entering the fuselage of the aircraft. This could, for example, be particularly advantageous in embodiments in which the air conduit is provided with a passenger bridge, and is extendable or contractible as the passenger bridge is extended toward or contracted away from an aircraft. In at least some of these embodiments, the air conduit provided with the passenger bridge could be telescopically extendable or contractible, such that the air conduit could be contracted by fitting or nesting different lengthwise portions of the air conduit within one another, and could be extended by reversing this operation. In these embodiments, or indeed in any embodiments in which the passenger bridge is extendable or retractable, it may be advantageous to provide the heat exchange medium conduit only in portions of the passenger bridge and air conduit that are not telescopically or otherwise extendable or contractible, as the heat exchange medium conduit may not be extendable or contractible.
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While the above description provides examples of one or more apparatus, methods, or systems, it will be appreciated that other apparatus, methods, or systems may be within the scope of the claims as interpreted by one of skill in the art.
Claims
1. A heat exchange system comprising:
- an airflow source for providing an airflow;
- at least one air conduit, wherein for each air conduit of the at least one air conduit, that air conduit defines an airflow path for receiving the airflow from the airflow source and for discharging the airflow into a discharge space, the air conduit having an upwind portion and a downwind portion such that the airflow passes through the air conduit from the upwind portion to the downwind portion;
- a heat exchange medium flow source for providing a heat exchange medium flow;
- at least one heat exchange medium conduit, wherein each heat exchange medium conduit of the at least one heat exchange medium conduit, defines a heat exchange medium flow path for receiving the heat exchange medium flow from the heat exchange medium flow source, further comprises a heat exchanger for transferring heat between the airflow within a corresponding air conduit of the at least one air conduit and the heat exchange medium flow within that heat exchange medium conduit, and is inside the corresponding air conduit of the at least one air conduit.
2. The heat exchange system as defined in claim 1, wherein the heat exchange medium is either slurry ice for cooling the airflow or a heated fluid for heating the airflow.
3. The heat exchange system as defined in claim 1, wherein for each heat exchange medium conduit of the at least one heat exchange medium conduit,
- the heat exchange medium flow source supplies the heat exchange medium flow to an upstream end of that heat exchange medium conduit;
- the heat exchange medium flow is through the heat exchange medium conduit from the upstream end to a downstream end;
- the heat exchange medium flow is dischargeable from the downstream end of that heat exchange medium conduit; and
- both the upstream end and the downstream end are located in the upwind portion of the corresponding air conduit.
4. The heat exchange system as defined in claim 1, wherein
- the at least one air conduit comprises a plurality of air conduits; and
- the at least one heat exchange medium conduit comprises a plurality of heat exchange medium conduits.
5. The heat exchange system as defined in claim 1, wherein the downwind portion of each air conduit of the at least one air conduit is movable relative to the upwind portion of that air conduit.
6. The heat exchange system as defined in claim 1, wherein
- each air conduit of the at least one air conduit comprises at least one heat exchange medium conduit holder, and
- the at least one heat exchange medium conduit holder holds a heat exchange medium conduit of the at least one heat exchange medium conduit away from an inner surface of the air conduit to define an airflow gap for a portion of the airflow between the inner surface of the air conduit and the heat exchange medium conduit of the at least one heat exchange medium conduit.
7. The heat exchange system as defined in claim 6, wherein
- each heat exchange medium conduit of the at least one heat exchange medium conduit comprises, an upstream heat exchange medium artery for providing the heat exchange medium flow from the upwind portion of the corresponding air conduit to the downwind portion of the corresponding air conduit; and a downstream heat exchange medium vein for receiving the heat exchange medium flow from the upstream heat exchange medium artery, and for providing the heat exchange medium flow from the downwind portion of the corresponding air conduit back to the upwind portion of the corresponding air conduit;
- the at least one heat exchange medium conduit holder of each air conduit of the at least one air conduit holds the upstream heat exchange medium artery and the downstream heat exchange medium vein apart to define a heat exchange medium conduit gap; and
- each heat exchange medium conduit of the at least one heat exchange medium conduit receives the heat exchange medium flow from the heat exchange medium flow source.
8. The heat exchange system as defined in claim 5, further comprising an air conduit reel, wherein
- the at least one air conduit comprises a plurality of air conduits;
- the plurality of air conduits are aligned to provide substantially parallel airflow paths to define a first wrapping plane and a second wrapping plane, the substantially parallel airflow paths being disposed side-by-side between the first wrapping plane and the second wrapping plane, the plurality of air conduits being wrappable around the air conduit reel without blocking the substantially parallel airflow paths;
- the air conduit reel comprises an air manifold in fluid communication with the airflow source, and a heat exchange medium manifold in fluid communication with the heat exchange medium flow source;
- for each air conduit in the plurality of air conduits, the upwind portion is attached to the air conduit reel and is in fluid communication with the air manifold to receive the airflow from the airflow source via the air conduit reel;
- the at least one heat exchange medium conduit comprises a plurality of heat exchange medium conduits; and,
- each heat exchange medium conduit in the plurality of heat exchange medium conduits comprises an upstream portion for receiving the heat exchange medium flow from the heat exchange medium flow source via the air conduit reel, the upstream portion being in fluid communication with the heat exchange medium manifold of the air conduit reel.
9. The heat exchange system as defined in claim 8 further comprising a substantially planar air conduit guide extending through the first wrapping plane and attached to the plurality of air conduits, the substantially planar air conduit guide being bendable about a bending axis parallel to the first wrapping plane and the second wrapping plane, and orthogonal to the substantially parallel airflow paths while resisting bending about other axes
10. The heat exchange system as defined in claim 9, wherein the planar air conduit guide comprises a plurality of supply electric power cables, a plurality of fluid conduits, and a plurality of compressed air hoses in parallel with the plurality of the air conduits.
11. The heat exchange system as defined in claim 1, further comprising an air mixing box and a hose, wherein
- the air mixing box comprises an air manifold in fluid communication with the airflow source;
- the air manifold including a filter for removing moisture from the airflow;
- for each air conduit of the at least one air conduit, the downwind portion is attached to the air mixing box and the air mixing box is in fluid communication with the at least one air conduit to receive the airflow from the airflow source;
- the hose is in fluid communication with the air manifold of the air mixing box to receive a dried airflow from the air manifold of the mixing box downwind of the filter;
- the hose has a first end attached to the air mixing box and a second end movable relative to the first end;
- the second end is positionable relative to an aircraft to provide the dried airflow from the air mixing box to the discharge space inside the aircraft.
12. The heat exchange system as defined in claim 4, further comprising an air mixing box, wherein
- the air mixing box comprises an air manifold in fluid communication with the airflow source;
- the air manifold including a humidifier for adding moisture to the airflow;
- for each air conduit of the at least one air conduit, the downwind portion is attached to the air mixing box and the air mixing box is in fluid communication with the plurality of air conduits to receive the airflow from the airflow source;
- the hose is in fluid communication with the air manifold of the air mixing box to receive a humidified airflow from the air manifold of the mixing box downwind of the filter;
- the hose has a first end attached to the air mixing box and a second end movable relative to the first end;
- the second end is positionable relative to the discharge space to provide the humidified airflow from the mixing box to the discharge space.
13. The heat exchange system as defined in claim 1, wherein
- for each heat exchange medium conduit of the at least one heat exchange medium conduit, the corresponding air conduit comprises an external membrane defining the airflow path, and
- the external membrane of the corresponding air conduit has a thermal resistance exceeding a thermal resistance of the heat exchanger, such that heat transfer between the airflow inside the corresponding air conduit and the heat exchange medium flow exceeds heat transfer across the external membrane of the corresponding air conduit.
14. The heat exchange system as defined in claim 1 further comprising an air conduit guide for supporting the at least one air conduit and for straightening the airflow path defined by the at least one air conduit.
15. The heat exchange system as defined in claim 14, wherein the air conduit guide comprises a plurality of supply electric power cables, a plurality of fluid conduits, and a plurality of compressed air hoses in parallel with the plurality of the air conduits.
16. The heat exchange system as defined in claim 1, wherein the at least one air conduit comprises only a single air conduit.
17. The heat exchange system as defined in claim 1, wherein
- at least a portion of the at least one air conduit is telescopic defining an extended length of the at least one air conduit and a retracted length of the at least one air conduit;
- the heat exchange medium conduit is extendable to at least the extended length of the at least one air conduit and retractable to at least the retracted length of the at least one air conduit, the retracted length being shorter than the extended length; and
- the heat exchange system is attached to an aircraft passenger bridge.
18. A method for providing cooling to a space, the method comprising:
- providing an airflow along an airflow path;
- providing a slurry ice flow along a slurry ice flow path, the slurry ice flow path being adjacent to the airflow path, separated by a thermally conductive barrier, the slurry ice flow being provided at a temperature below a temperature of the airflow such that heat is transferred from the airflow to the slurry ice flow via the thermally conductive barrier; and
- positioning the airflow path to eject a cooled airflow into the space to be cooled.
19. The method as defined in claim 18, wherein the space is an interior of a building, a vehicle or an aircraft.
20. The method as defined in claim 18, further comprising:
- providing a thermally insulated slurry ice reservoir;
- filling the thermally insulated slurry ice reservoir with slurry ice; and
- after filling the thermally insulated slurry ice reservoir with the slurry ice, moving the thermally insulated slurry ice reservoir containing the slurry ice closer to the space to be cooled, such that the airflow path is positionable to eject the cooled airflow into the space to be cooled; wherein providing the slurry ice flow along the slurry ice flow path comprises providing the slurry ice flow to the thermally insulated slurry ice reservoir.
21. The method as defined in claim 18, wherein
- the slurry ice flow path comprises a slurry ice artery and a slurry ice vein;
- the slurry ice artery is surrounded by the airflow path, traverses the airflow path in an outgoing direction, and contains the slurry ice flow to cool the airflow within the airflow path; and
- the slurry ice vein is surrounded by the airflow path, traverses the airflow path in an incoming direction, opposite to the outgoing direction, and contains the slurry ice flow to cool the airflow within the airflow path.
22. The method as defined in claim 18, wherein the slurry ice flow path surrounds the airflow path.
23. A heat exchange system comprising:
- an airflow source for providing an airflow;
- at least one air conduit, wherein for each air conduit of the at least one air conduit, that air conduit defines an airflow path for receiving the airflow from the airflow source and for discharging the airflow into a discharge space, the air conduit having an upwind portion and a downwind portion such that the airflow passes through the air conduit from the upwind portion to the downwind portion;
- a heat exchange medium flow source for providing a heat exchange medium flow;
- at least one heat exchange medium conduit, wherein each heat exchange medium conduit of the at least one heat exchange medium conduit, defines a heat exchange medium flow path for receiving the heat exchange medium flow from the heat exchange medium flow source, and further comprises a heat exchanger for transferring heat between the airflow within a corresponding air conduit of the at least one air conduit and the heat exchange medium flow within that heat exchange medium conduit; wherein for each heat exchange medium conduit of the at least one heat exchange medium conduit, the corresponding air conduit of the at least one air conduit is inside the heat exchange medium conduit.
24. The heat exchange system as defined in claim 23 wherein the heat exchange medium flow source comprises:
- a slurry ice generator for generating slurry ice; and,
- a slurry ice conduit in fluid communication with the slurry ice generator for receiving the heat exchange medium flow from the slurry ice generator, the heat exchange medium flow being a slurry ice flow.
Type: Application
Filed: Sep 14, 2018
Publication Date: Mar 21, 2019
Inventor: Mordechai Einhorn (Toronto)
Application Number: 16/131,755