IP Library Granted Patent US 11,073,296
Granted Patent B2
US 11,073,296 · App. 16/234,023 · Granted Jul 27, 2021

High efficiency dehumidification system (HEDS)

Inventor: Scot Matthew Duncan (Laguna Hills, CA)
F24F3/153F24F8/10F24F13/1413F24F13/15F24F8/22
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Quick Facts
Patent No.
US 11,073,296
App. No.
16/234,023
Granted
Jul 27, 2021
Kind
B2
Abstract

This document describes a high efficiency dehumidification system (HEDS) and method of operating the same. The HEDS systems and physical implementations can include a variety of equipment, such as fans, fluid-conveying coils, tubing and pipes, heat transfer coils, vents, louvers, dampers, valves, fluid chillers, fluid heaters, and/or the like. Any of the implementations described herein can also include controls and logic, responsive to one or more sensors or other input devices, for controlling the equipment for each implementation described herein. The HEDS system utilizes heat transfer between the fluid within the fluid-conveying coils and air passing over the coils to convert humid air into dehumidified air.

Claims (40)

1. A high efficiency dehumidification system providing reheated dehumidified air to a climate controlled facility, the system comprising: an air filter bank that receives air from a first inlet source; a supply fan that causes the air to flow from the first inlet source over a cooling coil;

the cooling coil comprising cold water, the cooling coil configured to transfer heat from the air from the first inlet source into the cold water in the cooling coil;

a cooling recovery coil coupled with the cooling coil, the cooling recovery coil containing heated water recirculated from the cooling coil, the cooling recovery coil further configured to transfer heat from the recirculated heated water in the cooling recovery coil into the air to generate dehumidified reheated air in a cooling recovery coil plenum;

a first outlet configured to be coupled with ductwork to allow the dehumidified reheated air to pass to the climate controlled facility;

a heat pump that causes relative humidity control down to zero percent cooling loads while enhancing a capacity of an earth-coupled field, connected to the climate controlled facility;

the heat pump system that stores heat energy in the earth-coupled field when the system is in a cooling mode, for later use when the system is in a heating mode and stores cool energy in the earth-coupled field when the system is in the heating mode, for later use when the system is in the cooling mode, connected to the climate controlled facility;

a heat exchange system that augments a heating capacity of the earth-coupled field connected to the climate controlled facility;

the heat exchange system that augments a cooling capacity of the earth-coupled field connected to the climate controlled facility; and

the heat pump with piping and controls arranged to allow the heat pump to remain operational without cycling on and off down to zero percent cooling loads while controlling the relative humidity within the climate controlled facility at a desired set point.

2. The system of claim 1 , wherein the first inlet source is from an outside environment.

3. The system of claim 1 , further comprising a second inlet source, the first inlet source configured to draw the air from an outside environment, the second inlet source configured to draw air from a portion of the climate controlled facility.

4. The system of claim 1 , further comprising: a preheat coil for receiving a preheating liquid from one or more heat recovery units to preheat the air from the first inlet source that passes over the preheat coil before passing the air over the cooling coil.

5. The system of claim 1 , further comprising: a reheat coil to further heat the dehumidified reheated air received from the cooling recovery coil.

6. The system of claim 1 , further comprising: an Ultra Violet Germicidal Irradiation (UVGI) system and a Photocatalytic Oxidation (PCO) system, the Ultra Violet Germicidal Irradiation (UVGI) system positioned before the Photocatalytic Oxidation (PCO) system and both configured to disable and reduce growth of biological material on the cooling coil.

7. The system of claim 1 , further comprising: an Ultra Violet Germicidal Irradiation (UVGI) system and a Photocatalytic Oxidation (PCO) system, the Ultra Violet Germicidal Irradiation (UVGI) system positioned after the Photocatalytic Oxidation (PCO) system and both configured to disable and reduce growth of biological material on the cooling coil.

8. The system of claim 1 , wherein the cooling recovery coil plenum includes a first damper system connecting ductwork of the climate controlled facility to the cooling recovery coil plenum.

9. The system of claim 1 , wherein the high efficiency dehumidification system is further connected to a cooling plant via piping.

10. The system of claim 1 , further comprising a control system for modulating air flow through the high efficiency dehumidification system.

11. A method for providing dehumidified reheated air to a climate controlled facility using a high efficiency dehumidification system, the method comprising:

receiving warm humid air, by an air filter bank, from a first inlet source;

utilizing at least one fan to pass the received humid inlet air over a cooling coil, wherein heat is transferred from the humid inlet air into cold water circulating through the cooling coil;

the cooling coil configured to transfer heat from the warm humid air from the first inlet source into the cold water in the cooling coil;

generating warm water in the cooling coil and cold humid air from the warm humid air;

circulating the warm water from the cooling coil into a cooling recovery coil;

passing the cool humid air over the cooling recovery coil to generate dehumidified reheated air in a cooling recovery coil plenum;

transferring the dehumidified reheated air via ductwork to the climate controlled facility;

using a heat pump that stores heat energy in an earth-coupled field when the system is in a cooling mode, for later use when the system is in a heating mode and stores cool energy in the earth-coupled field when the system is in the heating mode, for later use when the system is in the cooling mode connected to the climate controlled facility;

a heat exchange system that augments a heating capacity of the earth-coupled field connected to the climate controlled facility;

the heat exchange system that augments a cooling capacity of the earth-coupled field connected to the climate controlled facility; and

the heat pump with piping and controls arranged to allow the heat pump to remain operational without cycling on and off down to zero percent cooling loads while controlling the relative humidity within the climate controlled facility at a desired set point.

12. The method of claim 11 , wherein the first inlet source is from an outside environment.

13. The method of claim 11 , further comprising receiving air from a second inlet source, the second inlet source configured to draw air from within a portion of the climate controlled facility.

14. The method of claim 11 further comprising:

preheating air from the first inlet source by passing the air from the first inlet source over a preheat coil containing a preheating liquid, prior to passing the air over the cooling coil, wherein the preheat coil reduces the relative humidity of the warm humid air from the first inlet source.

15. The method of claim 11 , further comprising: heating the dehumidified reheated air from the cooling recovery coil via a reheat coil.

16. The method of claim 11 further comprising: an Ultra Violet Germicidal Irradiation (UVGI) system and a Photocatalytic Oxidation (PCO) system, the Ultra Violet Germicidal Irradiation (UVGI) system positioned before the Photocatalytic Oxidation (PCO) system and both configured to disable and reduce growth of biological material on the cooling coil.

17. The method of claim 11 , further comprising: an Ultra Violet Germicidal Irradiation (UVGI) system and a Photocatalytic Oxidation (PCO) system, the Ultra Violet Germicidal Irradiation (UVGI) system positioned after the Photocatalytic Oxidation (PCO) system and both configured to disable and reduce growth of biological material on the cooling coil.

18. The method of claim 11 , wherein the cooling recovery coil plenum includes a first damper system connecting ductwork of the climate controlled facility to the cooling recovery coil plenum.

19. The method of claim 11 , wherein the high efficiency dehumidification system is further connected to a cooling plant via piping.

20. The method of claim 11 , further comprising modulating air flow through the high efficiency dehumidification system via a control system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 30, 2023
From: DUNCAN, SCOT M.
To: HEDS HOLDINGS LLC
Reel/Frame 065389/0840 →
Continuity (3)
Provisional Application 62641211 · Mar 9, 2018
Provisional Application 62641200 · Mar 9, 2018
Related Publication 20190277516A1 · Sep 12, 2019
Cited By (1)
US 12,571,547