IP Library Granted Patent US 11,668,534
Granted Patent B2
US 11,668,534 · App. 16/714,044 · Granted Jun 6, 2023

Fan array fault response control system

Inventors: Glen Landreth (Duarte, CA); Michael Leibel (Silver Spring, MD); Ryan Most (Spring Grove, PA)
Assignee: Baltimore Aircoil Company, Inc.
F28F27/003F04D27/004F04D27/008F25B39/028F28D5/00F25B2339/0242F25B2600/112F25B2700/173F28F2250/08
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Quick Facts
Patent No.
US 11,668,534
App. No.
16/714,044
Granted
Jun 6, 2023
Kind
B2
Abstract

In one aspect, a fan array fault response control system is provided for a cooling tower. The fan array fault response control system includes a fan interface configured to be in communication with a plurality of fans of the cooling tower and a processor operably coupled to the fan interface. The processor is configured to detect at least one non-operational fan of the plurality of fans. The processor configured to effect, in response to detecting the at least one non-operational fan, a reduced fan speed of at least one operational fan of the plurality of fans.

Claims (162)

1. A fan array fault response control system for a cooling tower, the fan array fault response control system comprising:

a fan interface configured to be in communication with a plurality of fans;

a fan fault alarm that activates in response to at least one non-operational fan;

a processor operably coupled to the fan interface and configured to

effect, in response to activation of the fan fault alarm, a reduced fan speed of at least one operational fan of the plurality of fans; and

wherein the processor is configured to effect the reduced fan speed of the at least one operational fan until deactivation of the fan fault alarm.

2. The fan array fault response control system of claim 1 wherein the processor is configured to effect the reduced fan speed of the at least one operational fan of the plurality of fans based at least in part on the proximity of the at least one operational fan to the at least one non-operational fan.

3. The fan array fault response control system of claim 2 wherein the at least one operational fan includes a plurality of operational fans; and

wherein the processor is configured to effect different reduced fan speeds for the operational fans based at least in part upon the proximity of each operational fan to the at least one non-operational fan.

4. The fan array fault response control system of claim 1 wherein the at least one operational fan includes a plurality of operational fans; and

wherein the processor is configured to effect a reduced fan speed of the plurality of operational fans.

5. The fan array fault response control system of claim 4 wherein the processor is configured to effect the same reduced fan speed for the operational fans.

6. The fan array fault response control system of claim 4 wherein the processor is configured to effect different reduced fan speeds for the operational fans.

7. The fan array fault response control system of claim 1 wherein the processor is configured to effect the reduced fan speed of the at least one operational fan by at least one of:

setting a maximum fan speed;

setting a minimum fan speed; and

limiting the at least one operational fan to a portion of a requested speed for the at least one of the operational fan.

8. The fan array fault response control system of claim 1 further comprising a communication interface configured to communicate with a central system controller, the processor operably coupled to the communication interface;

wherein the communication interface is configured to receive a communication from the central system controller indicative of a requested fan speed for the at least one operational fan; and

wherein the processor is configured to effect the reduced fan speed of the at least one operational fan that is less than the requested fan speed.

9. The fan array fault response control system of claim 1 wherein the fan interface is configured to receive a fault indication from the at least one non-operational fan.

10. The fan array fault response control system of claim 1 in combination with a forced draft cooling tower including the fans.

11. The fan array fault response control system of claim 10 wherein the reduced fan speed of the at least one operational fan is below a speed at which evaporative fluid would discharge from the at least one non-operational fan.

12. The fan array fault response control system of claim 1 wherein to effect the reduced fan speed of the at least one operational fan includes to determine the reduced fan speed for the at least one operational fan.

13. The fan array fault response control system of claim 1 further comprising a communication interface operably coupled to the processor;

wherein the processor is configured to cause the communication interface to communicate a notification of the activation of the fan fault alarm to a remote device.

14. The fan array fault response control system of claim 1 further comprising a communication interface operably coupled to the processor, the communication interface configured to receive a command from a remote device via a network; and

wherein the processor is configured to deactivate the fan fault alarm in response to the communication interface receiving the command.

15. The fan array fault response control system of claim 1 in combination with a local notification apparatus operably coupled to the processor; and

wherein the processor is configured to operate the local notification apparatus upon activation of the fan fault alarm.

16. The fan array fault response control system of claim 1 wherein the fan fault alarm activates in response to a signal from:

the at least one non-operational fan;

a pressure differential switch;

a current sensor;

a sail switch; or

a combination thereof.

17. The fan array fault response control system of claim 1 wherein the processor is configured to effect the reduced fan speed of the at least one operational fan by:

providing electrical power to the at least one operational fan; and/or

communicating a message to a processor of the at least one operational fan.

18. A heat rejection apparatus comprising:

a heat exchanger;

a plenum upstream of the heat exchanger;

a liquid distribution system configured to direct evaporative liquid toward the heat exchanger;

a plurality of fans upstream of the heat exchanger and configured to generate airflow from the plenum to the heat exchanger, the fans configured to direct airflow into the plenum upstream of the heat exchanger and create a positive air pressure in the plenum upstream of the heat exchanger;

a sump arranged to receive evaporative liquid from the heat exchanger;

a pump operable to pump liquid from the sump to the liquid distribution system; and

a controller operably coupled to the fans and configured to:

detect at least one non-operational fan of the plurality of fans; and

effect a reduced fan speed of at least one operational fan of the plurality of fans upon detecting the at least one non-operational fan to reduce air pressure in the plenum acting on the at least one non-operational fan.

19. The heat rejection apparatus of claim 18 wherein the controller is configured to effect the reduced fan speed of the at least one operational fan of the plurality of fans based at least in part on the proximity of the at least one operational fan to the at least one non-operational fan.

20. The heat rejection apparatus of claim 19 wherein the at least one operational fan includes a plurality of operational fans; and

wherein the controller is configured to effect different reduced fan speeds for the operational fans based at least in part upon the proximity of each operational fan to the at least one non-operational fan.

21. The heat rejection apparatus of claim 18 wherein the heat exchanger includes an inlet header that receives a process fluid, an outlet header, and a plurality of coil circuits connecting the inlet and outlet header; and

wherein each coil circuit includes a plurality of runs and bends connecting the runs.

22. The heat rejection apparatus of claim 12 wherein the reduced fan speed of the at least one operational fan is below a speed at which evaporative liquid would discharge from the at least one non-operational fan.

23. The heat exchange apparatus of claim 18 wherein there are no fans downstream of the plurality of fans.

24. A heat rejection apparatus comprising:

a heat exchanger;

a liquid distribution system configured to direct evaporative liquid toward the heat exchanger;

a plurality of fans configured to generate airflow relative to the heat exchanger;

a sump arranged to receive evaporative liquid from the heat exchanger;

a pump operable to pump liquid from the sump to the liquid distribution system; and

a controller operably coupled to the fans and configured to:

detect at least one non-operational fan of the plurality of fans;

effect a reduced fan speed of at least one operational fan of the plurality of fans upon detecting the at least one non-operational fan;

wherein the controller is operably coupled to the pump and is configured to determine whether the pump is operating; and

wherein the controller is configured to effect the reduced fan speed of the at least one operational fan of the plurality of fans upon detecting the at least one non-operational fan and determining the pump is operating.

25. A heat rejection apparatus comprising:

a heat exchanger;

a liquid distribution system configured to direct evaporative liquid toward the heat exchanger;

a plurality of fans configured to generate airflow relative to the heat exchanger;

a sump arranged to receive evaporative liquid from the heat exchanger;

a pump operable to pump liquid from the sump to the liquid distribution system; and

a controller operably coupled to the fans and configured to:

detect at least one non-operational fan of the plurality of fans;

effect a reduced fan speed of at least one operational fan of the plurality of fans upon detecting the at least one non-operational fan;

wherein the controller is operably coupled to the pump and determines whether the pump is pumping liquid to the liquid distribution system; and

wherein the controller is configured to:

effect a first reduced fan speed of the at least one operational fan upon detecting the at least one non-operational fan and determining the pump is pumping liquid to the liquid distribution system; and

effect a second fan speed of the at least one operational fan upon detecting the at least one non-operational fan and determining the pump is not pumping liquid to the liquid distribution system.

26. A heat rejection apparatus comprising

a heat exchanger;

a liquid distribution system configured to direct evaporative liquid toward the heat exchanger;

a plurality of fans configured to generate airflow relative to the heat exchanger;

a sump arranged to receive evaporative liquid from the heat exchanger;

a pump operable to pump liquid from the sump to the liquid distribution system; and

a controller operably coupled to the fans and configured to:

detect at least one non-operational fan of the plurality of fans;

effect a reduced fan speed of at least one operational fan of the plurality of fans upon detecting the at least one non-operational fan;

a keep configured to mechanically engage a portion of the at least one non-operational fan and inhibit rotation of fan blades of the fan; and

the controller is configured to actuate the keep upon determining the at least one fan is non-operational.

27. A method of controlling a heat rejection apparatus comprising a heat exchanger, a liquid distribution system configured to direct liquid toward the heat exchanger, and a plurality of fans configured to generate airflow relative to the heat exchanger, the method comprising:

operating the fans to direct air into a plenum of the heat rejection apparatus upstream of the heat exchanger and provide an air pressure in the plenum higher than ambient air pressure;

detecting at least one of the fans is non-operational; and

causing, upon detecting the at least one non-operational fan, at least one operational fan of the plurality of fans to rotate at a reduced fan speed and provide a reduced air pressure in the plenum.

28. The method of claim 27 further comprising selecting the at least one operational fan of the plurality of fans based at least in part on the proximity of the at least one operational fan to the at least one non-operational fan.

29. The method of claim 27 wherein the at least one operational fan includes a plurality of operational fans; and

wherein causing the at least one operational fan of the plurality of fans to rotate at the reduced fan speed includes causing different operational fans to rotate at different speeds based at least in part on the proximity of each operational fan to the at least one non-operational fan.

30. The method of claim 27 further comprising checking whether an override command has been received; and

wherein the causing the at least one operational fan of the plurality of fans to rotate at the reduced fan speed includes causing the at least one operational fan to rotate at the reduced fan speed upon the override command not having been received.

31. The method of claim 27 further comprising receiving a requested fan speed for the at least one operational fan from a central system controller; and

wherein the causing the at least one operational fan of the plurality of fans to rotate at the reduced fan speed includes causing the at least one operational fan to rotate at less than the requested fan speed from the central system controller.

32. The method of claim 27 wherein the reduced air pressure is higher than ambient air pressure.

33. A fan array fault response control system of claim 1 for a cooling tower, the fan array fault response control system comprising:

a fan interface configured to be in communication with a plurality of fans;

a processor operably coupled to the fan interface and configured to detect at least one non-operational fan of the plurality of fans;

the processor configured to effect, in response to detecting the at least one non-operational fan, a reduced fan speed of at least one operational fan of the plurality of fans;

wherein the processor is configured to activate a fan fault alarm in response to the detection of the at least one non-operational fan; and

wherein the processor is configured to effect the reduced fan speed of the at least one operational fan until deactivation of the fan fault alarm.

34. A fan array fault response control system for a cooling tower, the fan array fault response control system comprising:

a fan interface configured to be in communication with a plurality of fans;

a processor operably coupled to the fan interface and configured to detect at least one non-operational fan of the plurality of fans;

the processor configured to effect, in response to detecting the at least one non-operational fan, a reduced fan speed of at least one operational fan of the plurality of fans;

an override having an off condition and an on condition;

a communication interface to receive an override communication;

wherein the processor is configured to change the override from the off condition to the on condition upon the communication interface receiving the override communication;

wherein the processor is configured to effect the reduced fan speed of the at least one operational fan in response to detecting the at least one non-operational fan with the override in the off condition; and

wherein the processor is configured to not effect the reduced fan speed of the at least one operational fan in response to detecting the at least one non-operational fan with the override in the on condition.

35. A heat rejection apparatus comprising:

a heat exchanger;

a liquid distribution system configured to direct evaporative liquid toward the heat exchanger;

a plurality of fans configured to generate airflow relative to the heat exchanger;

a sump arranged to receive evaporative liquid from the heat exchanger;

a pump operable to pump liquid from the sump to the liquid distribution system; and

a controller operably coupled to the fans and configured to:

detect at least one non-operational fan of the plurality of fans; and

effect a reduced fan speed of at least one operational fan of the plurality of fans upon detecting the at least one non-operational fan;

wherein the controller is configured to activate a fan fault alarm in response to detecting the at least one non-operational fan; and

wherein the controller is configured to effect the reduced fan speed of the at least one operational fan until deactivation of the fan fault alarm.

36. A heat rejection apparatus comprising:

a heat exchanger;

a liquid distribution system configured to direct evaporative liquid toward the heat exchanger;

a plurality of fans configured to generate airflow relative to the heat exchanger;

a sump arranged to receive evaporative liquid from the heat exchanger;

a pump operable to pump liquid from the sump to the liquid distribution system; and

a controller operably coupled to the fans and configured to:

detect at least one non-operational fan of the plurality of fans; and

effect a reduced fan speed of at least one operational fan of the plurality of fans upon detecting the at least one non-operational fan;

wherein the controller includes an override having an off condition and an on condition, the controller configured to change the override from the off condition to the on condition upon the controller receiving an override communication;

wherein the controller is configured to effect the reduced fan speed of the at least one operational fan upon detecting the at least one non-operational fan with the override in the off condition; and

wherein the controller is configured to not effect the reduced fan speed of the at least one operational fan upon detecting the at least one non-operational fan with the override in the on condition.

37. A heat rejection apparatus comprising:

a heat exchanger;

a liquid distribution system configured to direct evaporative liquid toward the heat exchanger;

a plurality of fans configured to generate airflow relative to the heat exchanger;

a sump arranged to receive evaporative liquid from the heat exchanger;

a pump operable to pump liquid from the sump to the liquid distribution system; and

a controller operably coupled to the fans and configured to:

detect at least one non-operational fan of the plurality of fans; and

effect a reduced fan speed of at least one operational fan of the plurality of fans upon detecting the at least one non-operational fan;

wherein the controller has a dry mode wherein the controller inhibits operation of the pump and a wet mode wherein the controller permits operation of the pump;

wherein the controller is configured to effect the reduced fan speed of the at least one operational fan upon detecting the at least one non-operational fan with the controller in the wet mode; and

wherein the controller is configured to not effect the reduced fan speed of the at least operational fan upon detecting the at least one non-operational fan with the controller in the dry mode.

38. A method of controlling a heat rejection apparatus comprising a heat exchanger, a liquid distribution system configured to direct liquid toward the heat exchanger, and a plurality of fans configured to generate airflow relative to the heat exchanger, the method comprising:

detecting at least one of the fans is non-operational;

causing, upon detecting the at least one non-operational fan, at least one operational fan of the plurality of fans to rotate at a reduced fan speed;

activating a fan fault alarm in response to detecting the at least one non-operational fan; and

causing the at least one operational fan to rotate at the reduced fan speed during operation of the fan until deactivation of the fan fault alarm.

39. A method of controlling a heat rejection apparatus comprising a heat exchanger, a liquid distribution system configured to direct liquid toward the heat exchanger, and a plurality of fans configured to generate airflow relative to the heat exchanger, the method comprising:

detecting at least one of the fans is non-operational;

causing, upon detecting the at least one non-operational fan, at least one operational fan of the plurality of fans to rotate at a reduced fan speed; and

wherein causing the at least one operational fan to rotate at the reduced fan speed comprises causing the at least one operational fan to rotate at the reduced fan speed upon detecting the at least one non-operational fan and an override of a fan array fault response control system of the heat rejection apparatus is in an off condition thereof.

Assignments (2)
SECURITY AGREEMENT Recorded Feb 10, 2025
From: AMSTED RAIL COMPANY, INC.; BALTIMORE AIRCOIL COMPANY, INC.; CONSOLIDATED METCO, INC.; MEANS INDUSTRIES, INC.; TRANSFORM AUTOMOTIVE, LLC
To: WELLS FARGO BANK, NATIONAL ASSOCIATION, AS ADMINISTRATIVE AGENT
Reel/Frame 070171/0231 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 15, 2020
From: LANDRETH, GLEN; LEIBEL, MICHAEL; MOST, RYAN
To: BALTIMORE AIRCOIL COMPANY, INC.
Reel/Frame 051522/0650 →