IP Library › Granted Patent US 10,573,145
Granted Patent B2
US 10,573,145 · App. 15/973,001 · Granted Feb 25, 2020

System and method for detecting and suppressing fire using wind information

Inventors: Manjuprakash Rama Rao (Bangalore, IN); Surajit Borah (Bangalore, IN); Sreenath K. Ramanna (Bangalore, IN); P. U. Kamruddin (Bangalore, IN); Andrew Rynkiewicz (Bracknell, GB); Clive Weston (Frimley, GB)
Assignee: Tyco Fire Products
G08B17/125A62C37/36B05B12/082B05B12/12G01J5/0018G01P5/00G01P13/0006G08B29/185
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Quick Facts
Patent No.
US 10,573,145
App. No.
15/973,001
Granted
Feb 25, 2020
Kind
B2
Abstract

A fire detection and suppression system correcting fire detection based on wind. Wind may affect both the apparent position of the fire detected by the fire detectors and also the suppressant jet being delivered by a monitor. Typically wind results in shifting of estimated fire location away from the real fire in the direction of wind. Similarly the suppressant jet will also be diverted in the same direction. The system comprises fire detectors for acquiring two-dimensional fire location information for a fire. A wind sensor acquires wind information, often in region of the fire. A system controller then compensates the three-dimensional fire location information based on the wind information. Additionally, the position of fog/jet monitors is preferably compensated based on the wind information. The jet pressure setting is also ideally determined based on the wind.

Claims (33)

1. A fire detection system for correcting fire detection based on wind, the system comprising:

fire detectors for acquiring two-dimensional fire location information for a fire;

a wind sensor for acquiring wind information; and

a system controller for determining three-dimensional fire location information based on the two-dimensional fire location information from the fire detectors and compensating the three-dimensional fire location information based on the wind information, wherein the system controller averages the two-dimensional fire location information over time to filter out wind induced noise in the two-dimensional fire location information from the fire detectors.

2. A fire detection system as claimed in claim 1 , wherein each fire detector comprises a two-dimensional infrared sensor array that generates the two-dimensional fire location information.

3. A fire detection system as claimed in claim 1 , wherein the system controller calculates a cross wind velocity for a coordinate system of the fire detectors.

4. The fire detection system of claim 1 , wherein the system controller determines the compensation by accessing a wind compensation lookup table.

5. A fire detection method for correcting fire detection based on wind, the method comprising:

acquiring two-dimensional fire location information for a fire with fire detectors;

acquiring wind information for the fire;

determining three-dimensional fire location information based on the two-dimensional fire location information from the fire detectors; and

compensating the three-dimensional fire location information based on the wind information; and

averaging the two-dimensional fire location information over time to filter out wind induced noise in the two-dimensional fire location information from the fire detectors.

6. A fire detection method as claimed in claim 5 , further comprising determining a cross wind velocity for a coordinate system of the fire detectors.

7. The fire detection method as claimed in claim 5 , further comprising determining the compensation by accessing a wind compensation lookup table.

8. A system for correcting fire suppression based on wind, the system comprising:

fire detectors for acquiring two-dimensional fire location information for a fire;

a wind sensor for acquiring wind information;

monitors for deploying fire suppressant; and

a system controller for determining three-dimensional fire location information based on the two-dimensional fire location information from the fire detectors, for controlling the monitors based on a distance between the monitors and the fire and the wind information by determining a cross wind component and an axial wind component from the wind information for the monitors and within a coordinate system of each of the monitors, wherein the cross wind component and the axial wind component are calculated individually for each of the monitors and with respect to the coordinate system of each of the monitors, the system controller controlling a horizontal and vertical orientation of the monitors based on the cross wind component.

9. A system for correcting fire suppression based on wind, the system comprising:

fire detectors for acquiring two-dimensional fire location information for a fire;

a wind sensor for acquiring wind information;

monitors for deploying fire suppressant; and

a system controller for determining three-dimensional fire location information based on the two-dimensional fire location information from the fire detectors, for controlling the monitors based on a distance between the monitors and the fire and the wind information by determining a cross wind component and an axial wind component from the wind information for each of the monitors, wherein the cross wind component and the axial wind component are calculated individually for each of the monitors and with respect to the coordinate system of each of the monitors, wherein the system controller controls a jet pressure of the monitors based on the axial wind component.

10. A method for correcting fire suppression based on wind, the method comprising:

averaging the two-dimensional fire location information over time to filter out wind induced noise in the two-dimensional fire location information from fire detectors;

determining three-dimensional fire location information of a fire based on the two-dimensional fire location information from the fire detectors;

acquiring wind information;

controlling deployment of tire suppressant based on a distance between a monitor and the fire and the wind information.

11. A method as claimed in claim 10 , further comprising determining a cross wind component and an axial wind component from the wind information.

12. A system as claimed in claim 11 , further comprising controlling a horizontal and vertical orientation of the monitor based on the cross wind component.

13. A system as claimed in claim 11 , further comprising controlling a jet pressure of the monitor based on the axial wind component.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 27, 2018
From: TYCO FIRE & SECURITY GMBH
To: TYCO FIRE PRODUCTS
Reel/Frame 047158/0625 →
Continuity (3)
Continuation 15105311
Provisional Application 61916917 · Dec 17, 2013
Related Publication 20180301010A1 · Oct 18, 2018
Cited By (1)
US 12,352,861