Multi-mode heat exchange system for sensible and/or latent thermal management
10088241 ยท 2018-10-02
Assignee
Inventors
Cpc classification
F28F27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D1/0452
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F13/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F3/153
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0068
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F3/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention relates to a multi-mode thermal management assembly with a selectable coolant flow path, and in particular to an assembly that selectably removes latent and/or sensible heat. Coolant (working fluid) is routed through openings in the bottom of the thermal management assembly. The assembly can have two heat exchangers (coolers), each having side-by-side vertical paths whereby coolant both enters and exits from the heat exchangers at their respective bottoms. Plumbing is provided that can be selected to route coolant for one of the user selected cooling modes. Valves allow the user to select at least between a combination mode (latent cooling with sensible reheat) and a sensible only cooling mode. In the combination mode, the latent heat exchanger cools and dehumidifies, and the sensible heat exchanger partially reheats the air while requiring no additional work to be done on the system by external power consuming devices.
Claims
1. A thermal management assembly that is a single assembly and comprising: at least one module, said at least one module having an inlet, an outlet, a first side panel, a second side panel, a first heat exchanger and a second heat exchanger; and plumbing, wherein: an air flow path extends from said inlet to said outlet, said air flow path being between said first side panel and said second side panel; said first heat exchanger is between said first side panel and said second side panel, said first heat exchanger circulating a working fluid there through, said working fluid being a single phase working fluid, said first heat exchanger having a first heat exchanger first side, a first heat exchanger second side, a first heat exchanger first header with a first heat exchanger first header partition separating said first heat exchanger first header into a first heat exchanger first header first side and a first heat exchanger first header second side, and a first heat exchanger second header, wherein: said first heat exchanger first side is upstream of said first heat exchanger second side relative to said air flow path, and said working fluid passes through said first heat exchanger in a first heat exchanger counter flow path relative to said air flow path, wherein said working fluid in said first heat exchanger counter flow path: enters said first heat exchanger in said first heat exchanger first header second side; passes completely through a first heat exchanger first path that is adjacent to said first heat exchanger second side; passes through said first heat exchanger second header; passes completely through a first heat exchanger second path that is adjacent to said first heat exchanger first side; and passes through said first heat exchanger first header first side to exit said first heat exchanger; and said second heat exchanger is between said first side panel and said second side panel, said second heat exchanger being in a series arrangement with said first heat exchanger and downstream of said first heat exchanger relative to said air flow path, said second heat exchanger circulating said working fluid there through, said second heat exchanger having a second heat exchanger first side, a second heat exchanger second side, a second heat exchanger first header with a second heat exchanger first header partition separating said second heat exchanger first header into a second heat exchanger first header first side and a second heat exchanger first header second side, and a second heat exchanger second header, wherein: said second heat exchanger first side is upstream of said second heat exchanger second side relative to said air flow path, said working fluid passes through said second heat exchanger in a second heat exchanger counter flow path relative to said air flow path, wherein said working fluid in said second heat exchanger counter flow path: enters said second heat exchanger in said second heat exchanger first header second side; passes completely through a second heat exchanger first path that is adjacent to said second heat exchanger second side; passes through said second heat exchanger second header; passes completely through a second heat exchanger second path that is adjacent to said second heat exchanger first side; and passes through said second heat exchanger first header first side to exit said second heat exchanger; and said plumbing routing said working fluid in a first condition first to said first heat exchanger and then to said second heat exchanger, or in a second condition first to said second heat exchanger and then to said first heat exchanger, wherein said first heat exchanger counter flow path and said second heat exchanger counter flow path is maintained in both of said first condition and said second condition.
2. The thermal management assembly of claim 1 wherein said first heat exchanger is vertically aligned.
3. The thermal management assembly of claim 1 wherein: said first heat exchanger has a heat exchanger top and a heat exchanger bottom; and said working fluid enters said first heat exchanger first path at said heat exchanger bottom.
4. The thermal management assembly of claim 3 wherein said working fluid exits said first heat exchanger second path at said heat exchanger bottom.
5. The thermal management assembly of claim 1 wherein said working fluid is water and an inlet working fluid temperature is above 32 Degrees Fahrenheit.
6. The thermal management assembly of claim 1 wherein said at least one module further has at least one air mover to force air through said first heat exchanger and said second heat exchanger.
7. The thermal management assembly of claim 1 further comprising a coalescing screen between said first heat exchanger and said second heat exchanger.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(13) While the invention will be described in connection with one or more preferred embodiments, it will be understood that it is not intended to limit the invention to those embodiments. On the contrary, it is intended to cover all alternatives, modifications and equivalents as may be included within the spirit and scope of the invention as defined by the appended claims.
(14) Looking now at
(15) The thermal management assembly 10 can be made of one or more thermal management modules 20 (or simply modules). It is also understood that while relative dimensions are illustrated, that other dimensions (including surface areas and foot prints) may be altered without departing from the broad aspects of the present invention. In this regard, the thermal management assembly 10 is both modular and scalable.
(16) Each module 20 has an opposed inlet and exit 21 and 22. A first side 25 with a side panel 26 is provided. A second side 30 with a side panel 31 is also provided. The cooling module 20 has both a top 35 and a bottom 36. One or more air movers 38, preferably fans, are provided. The fans can be mounted to, fixed relative or located adjacent end 22. In the preferred embodiment, there is a bank of four vertically stacked fans adjacent end 22. Yet, more or fewer fans could be used without departing from the broad aspects of the present invention. It is seen that the module 20 is illustrated having a general box shape that has a relatively small foot print and that is relatively tall in relation to its depth and width dimension. While this is a preferred embodiment, the dimensions may nevertheless be changed without departing from the broad aspects of the present invention. The air movers 38 preferably cause air to move in an air flow path 39.
(17) It is appreciated that while the special orientations such as top and bottom are described herein, that the invention can be arranged or oriented differently without departing from the broad aspects of the present invention. Specifically, it is understood that the unit can be arranged horizontally allowing for free convection wherein the air flow path is generally vertical, or arranged in any orientation for a forced convective arrangement.
(18) The thermal management module 20 preferably has two heat exchangers 50 and 70, respectively. Heat exchangers 50 and 70 are preferably arranged in a series arrangement relative the air flow path 39, and each is described below.
(19) Heat exchanger 50 has faces 51 and 52, top 53 and bottom 54. Two internal flow paths 55 and 56 are provided. The paths preferably are vertically oriented, with path 55 spanning between the bottom 54 and top 53 along the second face 52 (back or trailing face relative air flow path 39), and path 56 spanning between the top 53 and bottom 54 along the first face 51 (front or leading face). An opening 57 is provided and allows for a working fluid to enter path 55. The top of paths 55 and 56 are preferably fluidly connected. Another opening 58 is also provided and allows for the working fluid to exit path 56.
(20) Heat exchanger 70 has faces 71 and 72, top 73 and bottom 74. Two internal flow paths 75 and 76 are provided. The paths preferably are vertically oriented, with path 75 spanning between the bottom 74 and top 73 along the second face 72 (back or trailing face relative air flow path 39), and path 76 spanning between the top 73 and bottom 74 along the first face 71 (front or leading face). An opening 77 is provided and allows for a working fluid to enter path 75. The top of paths 75 and 76 are preferably fluidly connected. Another opening 78 is also provided and allows for the working fluid to exit path 76.
(21) Plumbing 90 is further provided, and has a supply line 91, a return line 92, a cross heat exchanger line 93 and one or more valves 94. The valves 94 allow the operator to vary the routing of the working fluid through the thermal management module 20. While valves are described as a preferred embodiment, it is appreciated that other flow control devices may be used without departing from the broad aspects of the present invention.
(22) An example of a counter-flow configuration is illustrated in
(23) Looking now to
(24) An alternative embodiment including a coalescing screen 100 with a catch basin 101 is shown in
(25) Looking now to
(26) It is appreciated that another mode, namely a latent cooling only mode, could be incorporated into the present invention without departing from the broad aspects of the present invention. In a latent cooling only mode, the working fluid could either be routed to a single heat exchanger or routed to both heat exchangers in parallel (instead of series).
(27) One working fluid is preferably water. Water is preferably used since has a wide operation range without a phase change, is non-toxic and is commonly available. It is preferred that the water can have an incoming temperature of 32 degrees or above.
(28) Aluminum heat exchangers are used in one embodiment of the present invention. When aluminum is used, a preferred working fluid is inhibited water.
(29) While water is described herein to be a preferred working fluid, it is appreciated that the present invention is not so limited. In this regard, other working fluids may be utilized without departing from the broad aspects of the present invention.
(30) Thus it is apparent that there has been provided, in accordance with the invention, a multi-mode thermal management assembly with selectable coolant flow path that fully satisfies the objects, aims and advantages as set forth above. While the invention has been described in conjunction with specific embodiments thereof, it is evident that many alternatives, modifications, and variations will be apparent to those skilled in the art in light of the foregoing description. Accordingly, it is intended to embrace all such alternatives, modifications, and variations as they fall within the spirit and broad scope of the appended claims.