IP Library Granted Patent US 12,578,117
Granted Patent B2
US 12,578,117 · App. 17/959,139 · Granted Mar 17, 2026

Building HVAC system with sample collection

Inventors: Jonathan D. Douglas (Mequon, WI); Kirk H. Drees (Cedarburg, WI)
Assignee: TYCO FIRE & SECURITY GMBH
F24F13/222F24F7/06F24F11/0001F24F13/02
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Quick Facts
Patent No.
US 12,578,117
App. No.
17/959,139
Granted
Mar 17, 2026
Kind
B2
Abstract

An air handling unit of an HVAC system of a building including ducting through which airflow is controllably pushed by a supply fan of the HVAC system, at least one of a heating or cooling device within the ducting, an air handling unit controller configured to control operation of the at least one of the heating or cooling device within the ducting to generate condensation from air flowing through the air handling unit, and a collector tray placed within and/or integrated with the ducting below the at least one of the heating or cooling device and structured to collect the condensation, via gravity, for use in analysis of the condensation, wherein the at least one of the heating or cooling device, the air handling unit controller, and the collector tray are configured to collect the condensation including infectious disease particles from the air flowing through the air handling unit.

Claims (47)

1 . An air handling unit of an HVAC system of a building comprising:

ducting through which airflow is controllably pushed by a supply fan of the HVAC system;

an air damper coupled to the ducting and configured to at least one of intake return air, intake outside air, or dispel return air;

at least one of a heating or cooling device within the ducting;

an air handling unit controller configured to control operation of the at least one of the heating or cooling device within the ducting to generate condensation from air flowing through the air handling unit; and

a collector tray placed within and/or integrated with the ducting below the at least one of the heating or cooling device and structured to collect the condensation, via gravity, for use in analysis of the condensation;

wherein the at least one of the heating or cooling device, the air handling unit controller, and the collector tray are configured to collect the condensation including infectious disease particles from the air flowing through the air handling unit; and

wherein the air handling unit controller is further configured to selectively control the air damper for a period of time based on collecting the condensation including the infectious disease particles.

2 . The air handling unit of claim 1 , the at least one of the heating or cooling device comprising a cooling coil and a heating coil configured to cool and heat, respectively, the air moved through the ducting by the supply fan, the air handling unit controller configured to selectively control operation of the cooling coil and the heating coil to generate the condensation.

3 . The air handling unit of claim 1 , wherein the condensation is collected when the cooling device is in a cooling mode or when the heating device is in a heating mode.

4 . The air handling unit of claim 1 , further comprising:

a return air damper coupled to the ducting and configured to intake the return air;

an outside air damper coupled to the ducting and configured to intake the outside air; and

an exhaust air damper coupled to the ducting and configured to dispel the return air.

5 . The air handling unit of claim 4 , wherein the air handling unit controller is further configured to selectively control an airflow source of the air flowing through the air handling unit, and wherein the airflow source comprises at least one of the return air or the outside air.

6 . The air handling unit of claim 5 , wherein selectively controlling the airflow source comprises controlling at least one of the return air damper or the outside air damper, and wherein the condensation is collected and used for analysis when the airflow source is the return air and the outside air damper is closed.

7 . The air handling unit of claim 4 , wherein the air handling unit controller is further configured to selectively control the exhaust air damper to dispel the return air for the period of time based on collecting the condensation including the infectious disease particles.

8 . The air handling unit of claim 1 , wherein the air handling unit is a rooftop air handling unit configured to be positioned on a roof of the building.

9 . An air handling unit of an HVAC system comprising:

ducting through which airflow is controllably pushed by a supply fan of the HVAC system;

an air damper coupled to the ducting and configured to at least one of intake return air, intake outside air, or dispel return air;

a humidifier within the ducting and configured to evaporate water into air flowing through the ducting, wherein a portion of the water is not evaporated into the air;

an air handling unit controller configured to activate the humidifier; and

a collector tray placed within and/or integrated with the ducting below the humidifier and structured to collect the portion of the water from the humidifier not evaporated into the air, via gravity, for use in analysis of the water, wherein the collector tray is configured to collect condensation including infectious disease particles from the air flowing through the air handling unit;

wherein the air handling unit controller is further configured to selectively control the air damper for a period of time based on collecting the condensation including the infectious disease particles.

10 . The air handling unit of claim 9 , further comprising the air handling unit controller configured to activate the humidifier when the air handling unit is in a heating mode of operation.

11 . The air handling unit of claim 10 , further comprising:

a return air damper coupled to the ducting and configured to intake the return air;

an outside air damper coupled to the ducting and configured to intake the outside air; and

an exhaust air damper coupled to the ducting and configured to dispel the return air.

12 . The air handling unit of claim 11 , wherein the air handling unit controller is further configured to selectively control an airflow source of the air flowing through the air handling unit, and wherein the airflow source comprises at least one of the return air or the outside air.

13 . The air handling unit of claim 12 , wherein selectively controlling the airflow source comprises controlling at least one of the return air damper or the outside air damper, and wherein the condensation is collected and used for analysis when the airflow source is the return air and the outside air damper is closed.

14 . The air handling unit of claim 11 , wherein the air handling unit controller is further configured to selectively control the exhaust air damper to dispel the return air for the period of time based on collecting the condensation including the infectious disease particles.

15 . The air handling unit of claim 9 , wherein the air handling unit is a rooftop air handling unit configured to be positioned on a roof of a building.

16 . The air handling unit of claim 9 , further comprising:

a reheat coil within the ducting, wherein the reheat coil heats or pressurizes the air in the ducting prior to the humidifier evaporating the water.

17 . A method of collecting condensations, the method comprising:

receiving, by an air handling unit of an HVAC system, air controllably pushed from a supply fan of the HVAC system through ducting;

generating, by the air handling unit using at least one of a heating device, cooling device, or humidifier within the ducting, condensation based on heating or cooling of the air; and

collecting, by the air handling unit via gravity, the condensation for use in analysis of the condensation, wherein the condensation comprises infectious disease particles from the air flowing through the air handling unit;

selectively controlling, by the air handling unit, an air damper for a period of time based on collecting the condensation including the infectious disease particles, wherein the air damper corresponding to at least one of intaking return air, intaking outside air, or dispelling return air.

18 . The method of claim 17 , wherein the at least one of a heating or cooling device comprise a cooling coil and a heating coil configured to cool and heat, respectively, the air moved through the ducting by the supply fan, and wherein the method further comprises:

selectively controlling, by the air handling unit, operation of the cooling coil and the heating coil to generate the condensation.

19 . The method of claim 17 , further comprises:

activating, by the air handling unit, the humidifier when the air handling unit is in a heating mode of operation.

20 . The method of claim 17 , further comprising:

selectively controlling, by the air handling unit, an airflow source of the air flowing through the air handling unit, and wherein the airflow source comprises at least one of the return air or the outside air, and wherein selectively controlling the airflow source comprises controlling at least one of a return air damper or an outside air damper, and wherein the condensation is collected when the airflow source is the return air and the outside air damper is closed.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 9, 2024
From: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
To: TYCO FIRE & SECURITY GMBH
Reel/Frame 067056/0552 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 4, 2022
From: DOUGLAS, JONATHAN D.; DREES, KIRK H.
To: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
Reel/Frame 061309/0197 →
Continuity (3)
Provisional Application 63391639 · Jul 22, 2022
Provisional Application 63252050 · Oct 4, 2021
Related Publication 20230103453A1 · Apr 6, 2023
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