IP Library Granted Patent US 7,256,401
Granted Patent B2
US 7,256,401 · App. 10/898,695 · Granted Aug 14, 2007

System and method for fire detection

Assignee: Ambient Control Systems, Inc.
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Quick Facts
Patent No.
US 7,256,401
App. No.
10/898,695
Granted
Aug 14, 2007
Kind
B2
Abstract

A system and method for detecting radiation indicative of fire, such as forest fire. In one embodiment, a threshold energy level is determined based on ambient sensor conditions. A sensor unit may be setup to scan a predetermined area for electromagnetic radiation. Any detected electromagnetic radiation may then be band pass filtered to a wavelength range centered about a predetermined frequency associated with the presence of fire. The resulting energy level signal may then be further filter to pass only those signals which exhibit a “flicker” frequency. If the resulting filtered signal exceeds the threshold signal, a fire notification signal may then be generated.

Claims (92)

1. A method comprising:

receiving electromagnetic radiation from an energy source;

filtering said electromagnetic radiation to a wavelength range centered about a predetermined frequency associated with the presence of fire;

generating an energy level signal based on said received electromagnetic radiation;

filtering said energy level signal to a flicker frequency range indicative of fire;

comparing a magnitude of said energy level signal to a dynamically computed threshold value based on ambient infrared energy levels, wherein the threshold value is determined using the formula,

threshold value= EV Mean +(γ· EV SD ),

where,

EV Mean =the mean of the plurality of energy samples,

EV SD =the standard deviation of the plurality of energy samples, and,

γ=Q −1 .(Desired False Alarm Rate), where Q −1 is the inverse probability function; and

generating a fire notification signal if said energy level signal is greater than said threshold value.

2. The method of claim 1 , further comprising

(a) rotating a mirror of an infrared sensor in a circular path;

(b) pausing said mirror on each of a plurality of bearings along said circular path, wherein each of said plurality of bearings spans a predetermined number of degrees;

(c) taking a plurality of energy samples for each of said plurality of bearings using said infrared sensor during said pausing;

(d) computing an energy value for each of said plurality of bearings based on said plurality of energy samples;

(e) comparing said energy values for each of said plurality of bearings to said threshold value; and

(f) repeating (a) and (e) until said energy value for one of said plurality of bearings exceeds the threshold value a predetermined number of times.

3. The method of claim 2 , when said energy value for one of said plurality of bearings has exceeded the threshold value the predetermined number of times, the method further comprising:

taking additional energy samples for said one of said plurality of bearings that exceeded the threshold value the predetermined number of times;

normalizing said additional energy samples;

comparing said normalized additional energy samples to the said threshold value; and

generating said fire notification signal when said normalized additional energy samples exceeds said threshold value.

4. The method of claim 1 , wherein said filtering said energy level signal comprises filtering said energy level signal to a flicker frequency range indicative of fire, said frequency range to be between 1 and 10 Hertz.

5. The method of claim 1 , wherein said receiving electromagnetic radiation comprises receiving radiation emission from heated carbon dioxide.

6. The method of claim 1 , wherein said generating the fire notification signal comprises generating the fire notification signal where said fire notification signal include fire location information.

7. The method of claim 2 , wherein said threshold value is dynamically adjusted based on said plurality of energy samples.

8. A system comprising:

a sensor for receiving electromagnetic radiation from an energy source;

a first filter coupled to the sensor for filtering said electromagnetic radiation to a wavelength range centered about a predetermined frequency associated with the presence of fire;

a second filter for filtering an energy level signal to a flicker frequency range indicative of fire; and

a processor coupled to the sensor to compare a magnitude of said energy level signal to a dynamically computed threshold value based on ambient infrared energy levels, and if said energy level signal is greater than said threshold value, said processor is to generate a fire notification signal, wherein said threshold value is determined using the formula,

threshold value= EV Mean '(γ· EV SD ),

where,

EV Mean =the mean of the plurality of energy samples,

EV SD =the standard deviation of the plurality of energy

samples, and,

γ=Q −1 . (Desired False Alarm Rate), where Q −1 is the inverse probability function.

9. The system of claim 8 , further comprising processing circuitry coupled to the sensor, said processing circuitry to,

(a) rotate a mirror of the sensor in a circular path;

(b) pause said mirror on each of a plurality of bearings along said circular path, wherein each of said plurality of bearings spans a predetermined number of degrees;

(c) take a plurality of energy samples for each of said plurality of bearings using said sensor during said pausing;

(d) compute an energy value for each of said plurality of bearings based on said plurality of energy samples;

(e) compare said energy values for each of said plurality of bearings to said threshold value; and

(f) repeat (a) and (e) until said energy value for one of said plurality of bearings exceeds the threshold value a predetermined number of times.

10. The system of claim 9 , when said energy value for one of said plurality of bearings has exceeded the threshold value the predetermined number of times, the processing circuitry is further to,

take additional energy samples for said one of said plurality of bearings that exceeded the threshold value the predetermined number of times;

normalize said additional energy samples;

compare said normalized additional energy samples to the said threshold value; and

generate said fire notification signal when said normalized additional energy samples exceeds said threshold value.

11. The system of claim 9 , wherein said threshold value is dynamically adjusted based on said plurality of energy samples.

12. The system of claim 8 , wherein said flicker frequency range is between 1 and 10 Hertz.

13. The system of claim 8 , wherein said electromagnetic radiation comprises radiation emission from heated carbon dioxide.

14. The system of claim 8 , wherein said fire notification signal includes fire location information.

15. The system of claim 8 further comprising:

a magnitude computing subsystem configured to compute said magnitude; and

a digital frequency converting subsystem.

16. A computer readable medium having computer readable program code embodied therein, wherein said computer readable program code causes processing circuitry to:

receive electromagnetic radiation from an energy source;

filter said electromagnetic radiation to a wavelength range centered about a predetermined frequency associated with the presence of fire;

generate an energy level signal based on said received electromagnetic radiation;

filter said energy level signal to a flicker frequency range indicative of fire;

compare a magnitude of said energy level signal to a dynamically computed threshold value based on ambient infrared energy levels, wherein said threshold value is determined using the formula,

threshold value= EV Mean +(γ·EV SD ),

where

EV Mean =the mean of the plurality of energy samples,

EV SD =the standard deviation of the plurality of energy samples, and,

γ=Q −1 . (Desired False Alarm Rate), where Q −1 is the inverse probability function; and

generate a fire notification signal when said energy level signal is greater than said threshold value.

17. The computer readable medium of claim 16 , wherein said computer readable program code is further to cause the processing circuitry to:

(a) rotate a mirror of an infrared sensor in a circular path;

(b) pause said mirror on each of a plurality of bearings along said circular path, wherein each of said plurality of bearings spans a predetermined number of degrees;

(c) take a plurality of energy samples for each of said plurality of bearings using said infrared sensor during said pausing;

(d) compute an energy value for each of said plurality of bearings based on said plurality of energy samples;

(e) compare said energy values for each of said plurality of bearings to said threshold value; and

(f) repeat (a) and (e) until said energy value for one of said plurality of bearings exceeds the threshold value a predetermined number of times.

18. The computer readable medium of claim 17 , when said energy value for one of said plurality of bearings has exceeded the threshold value the predetermined number of times, the computer readable program code further to cause the processing circuitry to:

take additional energy samples for said one of said plurality of bearings that exceeded the threshold value the predetermined number of times;

normalize said additional energy samples;

compare said normalized additional energy samples to the said threshold value; and

generate said fire notification signal when said normalized additional energy samples exceeds said threshold value.

19. The computer readable medium of claim 17 , wherein said threshold value is dynamically adjusted based on said plurality of energy samples.

20. The computer readable medium of claim 16 , wherein said frequency range is between 1 and 10 Hertz.

21. The computer readable medium of claim 16 , wherein said electromagnetic radiation comprises radiation emission from heated carbon dioxide.

22. The computer readable medium of claim 16 , wherein said fire notification signal includes fire location information.

23. The computer readable medium of claim 16 , wherein said processing circuitry includes at least one of a microprocessor, a root mean square conditioning circuit and a digital frequency converting circuit.

24. A system comprising:

a sensor for receiving electromagnetic radiation from an energy source;

a first filter coupled to the sensor for filtering said electromagnetic radiation to a wavelength range centered about a predetermined frequency associated with the presence of fire;

a second filter for filtering an energy level signal to a flicker frequency range indicative of fire; and

a processing circuitry coupled to the sensor and including at least one of a microprocessor, a root mean square conditioning circuit and a digital frequency converting circuit, said processing circuitry to compare a magnitude of said energy level signal to a dynamically computed threshold value based on ambient infrared energy levels, and if said energy level signal is greater than said threshold value, said processing circuitry is to generate a fire notification signal.

Assignments (3)
SECURITY INTEREST Recorded Apr 25, 2017
From: MISSION MANAGER INC.
To: KESHIF VENTURES, LLC
Reel/Frame 042142/0194 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 25, 2014
From: AMBIENT CONTROL SYSTEMS, INC
To: MISSION MANAGER, INC.
Reel/Frame 033601/0143 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 23, 2004
From: GARMER, WILLIAM R.; LUCK, JONATHAN M.
To: AMBIENT CONTROL SYSTEMS, INC.
Reel/Frame 015617/0212 →
Continuity (3)
Continuation In Part 1049215500
Provisional Application 6032843600 · Oct 10, 2001
Related Publication 20050001729A1 · Jan 6, 2005