IP Library Granted Patent US 11,460,203
Granted Patent B2
US 11,460,203 · App. 16/141,109 · Granted Oct 4, 2022

Exhaust demand control system and methods

Inventor: Eric Desrochers (Merrimack, NH)
Assignee: Measured Air Performance, LLC
F24F11/0001F24F7/06F24F11/30F24F11/32F24F11/49G01N1/2258F24F11/61F24F2110/50F24F2110/65F24F2120/10G01N1/26G01N2001/2264
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Quick Facts
Patent No.
US 11,460,203
App. No.
16/141,109
Granted
Oct 4, 2022
Kind
B2
Abstract

Methods and apparatus for an exhaust demand control system for measuring one or more contaminants at one or more exhaust locations within one or a plurality of exhaust ducts or plenums served by an exhaust fan system. Example systems and methods can include sensing the one or more contaminants within the one or more exhaust duct locations using a multipoint air sampling system having one or more sensors and comparing contaminant concentration measurements from the one or more of said exhaust duct or plenum locations against an action level to create a fan setback signal.

Claims (32)

1. An exhaust demand control system for measuring one or more contaminants at one or more locations within one or a plurality of exhaust ducts or plenums served by an exhaust fan system having one or more exhaust fans, comprising systems configured to:

sense the one or more contaminants within the one or more locations using a multipoint air sampling system having one or more sensors;

compare contaminant concentration measurements from the one or more locations against an action level to create a fan setback signal which controls the setback state of the exhaust fan system;

prevent fan system instability by controlling the operation of the one or more exhaust fans according to a sequence delay provided by control logic of the control system where the sequence delay is enabled when the contaminant concentration measurements from the one or more locations exceeds the action level, wherein the sequence delay in part determines a minimum time that the fan setback signal is disabled;

ensure sensor accuracy and reliability by discontinuing the air sampling process performed by the multipoint air sampling system for a period of time designated by the sequence delay to isolate the one or more sensors from contaminants when contaminant levels above the defined action level are detected; and

incorporate one or more setback override functions to limit when the exhaust fan system is set back.

2. The exhaust demand control system of claim 1 , wherein the exhaust fan system includes one or more high plume fans.

3. The exhaust demand control system of claim 1 , wherein the one or more exhaust duct locations is one or more exhaust risers.

4. The exhaust demand control system of claim 1 , wherein the multipoint air sampling system is contained within a single enclosure.

5. The exhaust demand control system of claim 1 , wherein the multipoint air sampling system comprises a networked air sampling system.

6. The exhaust demand control system of claim 1 , wherein the one or more sensors comprises a photoionization sensor.

7. The exhaust demand control system of claim 1 , wherein the sequence delay is adaptive.

8. The exhaust demand control system of claim 1 , wherein the one or more setback override functions comprises an occupancy signal.

9. The exhaust demand control system of claim 1 , wherein the fan setback signal comprises a relay contact.

10. The exhaust demand control system of claim 1 , wherein the exhaust demand control function incorporates clean exhaust minimum ACH logic.

11. A method of performing exhaust demand control using a system for measuring one or more contaminants at one or more locations within one or a plurality of exhaust ducts or plenums served by an exhaust fan system having one or more exhaust fans, comprising:

sensing the one or more contaminants within the one or more locations using a multipoint air sampling system having one or more sensors;

comparing contaminant concentration measurements from the one or more locations against an action level to create a fan setback signal which setback signal controls the setback state of the exhaust fan system;

preventing fan system instability by controlling fan operation according to a sequence delay provided by control logic of the control system where the sequence delay is enabled under the condition where the contaminant concentration measurements from the one or more locations exceeds the action level, wherein

the sequence delay in part determines the minimum time that the fan setback signal may be disabled;

using one or more measures to ensure sensor accuracy and reliability, wherein

the one or more measures includes discontinuing the sampling process for a period of time designated by the sequence delay to isolate the one or more sensors from contaminants when contaminant levels above a defined action level are detected; and

incorporating one or more setback override functions to limit when the exhaust fan system may be set back.

12. The method of claim 11 , wherein the exhaust fan system includes one or more high plume fans.

13. The method of claim 11 , wherein the one or more locations is one or more exhaust risers.

14. The method of claim 11 , wherein the multipoint air sampling system is contained within a single enclosure.

15. The method of claim 11 , wherein the multipoint air sampling system comprises a networked air sampling system.

16. The method of claim 11 , wherein the one or more sensors comprises a photoionization detector sensor.

17. The method of claim 11 , wherein the sequence delay is adaptive.

18. The method of claim 11 , wherein the one or more setback override functions comprises an occupancy signal.

19. The method of claim 11 , wherein the fan setback signal comprises a relay contact.

20. The method of claim 11 , wherein the exhaust demand control function incorporates clean exhaust minimum ACH logic.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 27, 2018
From: DESROCHERS, ERIC
To: MEASURED AIR PERFORMANCE, LLC
Reel/Frame 046988/0849 →
Continuity (2)
Provisional Application 62581877 · Nov 6, 2017
Related Publication 20190137126A1 · May 9, 2019
Cited By (1)
US 12,298,023