IP Library Granted Patent US 11,041,647
Granted Patent B2
US 11,041,647 · App. 16/723,440 · Granted Jun 22, 2021

Systems and methods for refrigerant leak management

Inventor: Jamie Weinert (Escanaba, MI)
Assignee: Johnson Controls Technology Company
F24F11/36F24F1/0041F24F11/79F25B41/00F25B49/025F24F2110/65F25B2500/222
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Quick Facts
Patent No.
US 11,041,647
App. No.
16/723,440
Granted
Jun 22, 2021
Kind
B2
Abstract

A refrigerant leak management system includes a return inlet assembly and a purge exhaust outlet assembly. The system also includes a sensor configured to detect refrigerant proximate an air handling enclosure of a HVAC unit. The system further includes a controller configured to control the system to drive air from a conditioned interior space of a building into an external environment via the purge exhaust outlet assembly when the sensor detects the refrigerant proximate the air handling enclosure by: actuating the return inlet assembly to close the return inlet assembly, actuating the purge exhaust outlet assembly to open the purge exhaust outlet assembly, and activating a reversible supply fan of the HVAC unit in a reverse direction.

Claims (50)

1. A refrigerant leak management system for a heating, ventilation, and/or air conditioning (HVAC) system, wherein the refrigerant leak management system comprises:

a controller communicatively coupled to a sensor and a supply fan that is disposed within an air handling enclosure of the HVAC system, wherein the controller is configured to:

receive, from the sensor, a sensor signal indicative of a refrigerant leak; and

in response to receiving the sensor signal, activate the supply fan to direct a flow of refrigerant-containing air from an interior space of a building and into the air handling enclosure via a supply outlet of the air handling enclosure.

2. The refrigerant leak management system of claim 1 , wherein the sensor signal indicative of the refrigerant leak comprises a concentration sensor signal indicative of air having a refrigerant concentration that is greater than a predefined concentration threshold, and wherein, in response to receiving the concentration sensor signal, the controller is configured to switch operation of the refrigerant leak management system from an active detection mode, which enables ON-cycle operation of the HVAC system, to a leak response mode that disables the ON-cycle operation.

3. The refrigerant leak management system of claim 2 , wherein the controller is configured to switch operation of the refrigerant leak management system from the leak response mode to the active detection mode in response to:

receiving user input from an input device;

receiving, from the sensor or an additional sensor, an additional sensor signal indicative of the air having the refrigerant concentration that is less than the predefined concentration threshold; or

both.

4. The refrigerant leak management system of claim 1 , wherein the controller is communicatively coupled to a return inlet assembly that is coupled to a return inlet of the air handling enclosure, and wherein, in response to receiving the sensor signal, the controller is configured to instruct the return inlet assembly to seal the return inlet to block the flow of the refrigerant-containing air from traveling through the return inlet.

5. The refrigerant leak management system of claim 4 , wherein the controller is configured to instruct the return inlet assembly to seal the return inlet during OFF-cycle operation of the HVAC system.

6. The refrigerant leak management system of claim 4 , wherein the return inlet assembly comprises a locking mechanism configured to selectively retain a barometric damper in a closed position that seals the return inlet, and wherein the controller is configured to instruct the return inlet assembly to seal the return inlet by instructing the locking mechanism to retain the barometric damper in the closed position.

7. The refrigerant leak management system of claim 4 , wherein the return inlet assembly comprises a motorized damper that is movable between an open position that opens the return inlet and a closed position that seals the return inlet, and wherein the controller is configured to instruct the return inlet assembly to seal the return inlet by instructing the motorized damper to move to or remain in the closed position.

8. The refrigerant leak management system of claim 1 , wherein the controller is communicatively coupled to a purge outlet assembly that is coupled to a purge outlet of the air handling enclosure, and wherein, in response to receiving the sensor signal, the controller is configured to instruct the purge outlet assembly to open the purge outlet to direct the flow of the refrigerant-containing air out of the purge outlet.

9. The refrigerant leak management system of claim 8 , wherein the purge outlet assembly comprises:

a motorized damper coupled to the purge outlet; or

a locking mechanism configured to selectively retain a barometric damper coupled to the purge outlet.

10. The refrigerant leak management system of claim 1 , wherein the supply fan is configured to be activated in a reverse direction to direct the flow of the refrigerant-containing air from the interior space of the building and into the air handling enclosure via the supply outlet, and further comprising a passive purge outlet assembly configured to seal a purge outlet of the air handling enclosure in response to the supply fan being activated in a forward direction or deactivated, and wherein activating the supply fan in the reverse direction causes the passive purge outlet assembly to open by directing the flow of the refrigerant-containing air against the passive purge outlet assembly.

11. The refrigerant leak management system of claim 1 , wherein the controller is configured to activate the supply fan to discharge a flow of conditioned air from the air handling enclosure and into the interior space of the building via the supply outlet in response to receiving a request for conditioning from a thermostat when the sensor signal is not received.

12. The refrigerant leak management system of claim 2 , wherein the controller is configured to:

receive, from the sensor, an additional sensor signal indicative of the air having the refrigerant concentration that is greater than the predefined concentration threshold after a threshold amount of time; and

increase a fan speed of the supply fan in response to the additional sensor signal.

13. A tangible, non-transitory, machine-readable medium, comprising machine-readable instructions that are executable by one or more processors of a controller of a heating, ventilation, and air/or conditioning (HVAC) system, wherein the instructions comprise instructions to:

receive a sensor signal indicative of a refrigerant concentration of air from a sensor of the HVAC system;

determine that the refrigerant concentration is indicative of a refrigerant leak; and

in response to determining that the refrigerant concentration is indicative of the refrigerant leak, activate a supply fan of the HVAC system in a reverse direction to direct a flow of refrigerant-containing air from an interior space of a building into an air handling enclosure of the HVAC system.

14. The tangible, non-transitory, machine-readable medium of claim 13 , wherein the instructions comprise instructions to activate a return inlet assembly to seal a return inlet of the air handling enclosure in response to determining that the refrigerant concentration is indicative of the refrigerant leak.

15. The tangible, non-transitory, machine-readable medium of claim 14 , wherein the return inlet assembly comprises a motorized damper or a locking mechanism configured to selectively retain a barometric damper.

16. The tangible, non-transitory, machine-readable medium of claim 14 , wherein the instructions comprise instructions to activate a purge outlet assembly to open a purge outlet of the air handling enclosure to direct the flow of the refrigerant-containing air out of the purge outlet in response to determining that the refrigerant concentration is indicative of the refrigerant leak.

17. The tangible, non-transitory, machine-readable medium of claim 16 , wherein the instructions comprise instructions to activate the supply fan in the reverse direction, activate the return inlet assembly to seal the return inlet, and activate the purge outlet assembly to open the purge outlet at substantially the same time.

18. The tangible, non-transitory, machine-readable medium of claim 13 , wherein the instructions comprise instructions to determine that the refrigerant concentration is indicative of the refrigerant leak in response to determining that the refrigerant concentration is above a lower detection limit of the sensor.

19. The tangible, non-transitory, machine-readable medium of claim 13 , wherein the instructions comprise instructions to:

receive an additional sensor signal indicative of an additional refrigerant concentration from an additional sensor of the HVAC system; and

determine a position of the refrigerant leak based on the sensor signal and the additional sensor signal.

20. The tangible, non-transitory, machine-readable medium of claim 13 , wherein the instructions comprise instructions to:

receive an additional sensor signal indicative of the refrigerant concentration from the sensor or an additional sensor after a threshold amount of time;

determine that the refrigerant concentration remains indicative of the refrigerant leak; and

increase a fan speed of the supply fan in the reverse direction in response to determining that the refrigerant concentration remains indicative of the refrigerant leak.

21. An air handling system of a heating, ventilation, and/or air conditioning (HVAC) system for a building, wherein the air handling system comprises:

a sensor disposed within an enclosure of the air handling system;

a supply fan disposed within the enclosure; and

a controller communicatively coupled to the sensor and the supply fan, wherein the controller is configured to:

receive a sensor signal indicative of air having a refrigerant concentration that is greater than a predefined concentration threshold from the sensor; and

in response to receiving the sensor signal, activate the supply fan in a reverse direction to draw a flow of refrigerant-containing air from an interior space of the building into the enclosure.

22. The air handling system of claim 21 , wherein, in response to receiving the sensor signal, the controller is configured to initiate a leak response mode that disables activation of a compressor of the HVAC system and disables activation of the supply fan in a forward direction.

23. The air handling system of claim 21 , wherein the sensor is disposed proximate an evaporator coil of the HVAC system and proximate a bottom surface of the enclosure.

24. The air handling system of claim 21 , wherein the sensor is disposed downstream of the supply fan relative to a flow path of the flow of the refrigerant-containing air into the enclosure.

25. The air handling system of claim 21 , comprising a return inlet assembly that is coupled to a return inlet of the enclosure, wherein, in response to receiving the sensor signal, the controller is configured to instruct the return inlet assembly to seal the return inlet to block the flow of the refrigerant-containing air from traveling through the return inlet.

26. The air handling system of claim 21 , comprising a purge outlet assembly that is coupled to a purge outlet of the enclosure, wherein the purge outlet assembly is configured to enable the supply fan to direct the flow of the refrigerant-containing air out of the purge outlet when the supply fan is activated in the reverse direction.

27. The air handling system of claim 26 , wherein the controller is configured to instruct the purge outlet assembly to open the purge outlet in response to receiving the sensor signal.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 30, 2025
From: JOHNSON CONTROLS TECHNOLOGY COMPANY
To: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
Reel/Frame 072298/0096 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 24, 2024
From: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
To: TYCO FIRE & SECURITY GMBH
Reel/Frame 067832/0947 →
NUNC PRO TUNC ASSIGNMENT Recorded Feb 4, 2022
From: JOHNSON CONTROLS TECHNOLOGY COMPANY
To: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
Reel/Frame 058959/0764 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 22, 2021
From: WEINERT, JAMIE
To: JOHNSON CONTROLS TECHNOLOGY COMPANY
Reel/Frame 056009/0465 →
Cited By (4)
US 12,487,008 US 12,504,190 US 12,516,839 US 12,578,124