IP Library Granted Patent US 9,035,781
Granted Patent B2
US 9,035,781 · App. 13/561,514 · Granted May 19, 2015

Apparatus and method for automatically detecting and alerting of gas-out conditions for a gas appliance during operation

Inventor: David A. Struyk (Deephaven, MN)
Assignee: WATERSTRIKE INCORPORATED
G01P13/002H01H35/405
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Quick Facts
Patent No.
US 9,035,781
App. No.
13/561,514
Granted
May 19, 2015
Kind
B2
Abstract

A gas appliance monitoring apparatus for automatically detecting and alerting to a “gas-out” condition of a gas appliance during operation, and/or for alerting to the presence of prolonged “gas-on” conditions of an appliance. The apparatus utilizes a highly sensitive low loss and low flow gas flow indicator with multiple flow sensors to monitor the gas flow characteristics of the appliance during use. A gas flow analyzer and alarm timing mechanism analyzes the gas flow characteristics and sounds an alarm at the appliance or wirelessly at a remote location upon detection of either of the above conditions. A biasing attraction magnet is incorporated in the fluid flow indicator to offset either the force of gravity or a return spring in low flow/low pressure applications. The piston is sealed for use in high pressure/low flow applications, and provided with a vent hole for residual gas bleed-off upon a stoppage of gas flow.

Claims (34)

1. An apparatus for detecting gas-out conditions of a gas-operated appliance during operation, comprising:

(a) a piston carried within a piston cylinder and movable in response to the flow of gas through said piston cylinder between a first position and a second position, said first position and said second position being spaced from one another and defining an intermediate zone therebetween where said piston substantially restricts the flow of gas through said piston cylinder;

(b) a first sensor operatively disposed for activation upon movement of said piston to said first position and deactivation upon movement of said piston away from said first position;

(c) a second sensor operatively disposed for activation upon movement of said piston to said second position and deactivation upon movement of said piston away from said second position;

(d) a gas flow analyzer operatively connected to said first sensor and said second sensor, said gas flow analyzer being configured to detect the difference between the gas-operated appliance running out of gas during operation and the gas to the gas-operated appliance being intentionally turned off by monitoring the time from deactivation of said first sensor to activation of said second sensor.

2. The detection apparatus of claim 1 , wherein said first sensor is disposed adjacent an outlet port to said piston cylinder.

3. The detection apparatus of claim 2 , wherein said second sensor is disposed adjacent an inlet port to said piston cylinder.

4. The detection apparatus of claim 1 , wherein said first position of said piston within said piston cylinder represents a location where gas flow through said piston cylinder is substantially unrestricted and a said second position of said piston within said piston cylinder represents a location where no sustained gas flow through said piston cylinder is present.

5. The detection apparatus of claim 4 , wherein said gas flow analyzer includes a predetermined timing threshold, such that a positive gas-out condition of the gas-operated appliance during operation is detected if the time from deactivation of said first sensor to activation of said second sensor exceeds said timing threshold.

6. The detection apparatus of claim 1 , wherein said gas flow analyzer is configured to monitor the time for said piston to travel from said first position to said second position within said cylinder.

7. The detection apparatus of claim 1 , including an alarm mechanism operatively connected to said gas flow analyzer for alerting to gas-out conditions of the gas appliance during operation thereof.

8. The detection apparatus of claim 1 , including an alarm mechanism operatively connected to said gas flow analyzer for alerting to the presence of sustained gas flow through said piston cylinder after a predetermined period of time.

9. The detection apparatus of claim 1 , wherein said first sensor and said second sensor are electronic switches which are activated by a magnet carried within said piston.

10. An apparatus for detecting gas-out conditions of a gas-operated appliance during operation, comprising:

(a) a piston carried within a piston cylinder and movable in response to the flow of gas through said piston cylinder between a first position where gas flow through said piston cylinder is substantially unrestricted and a second position where no sustained gas flow through said piston cylinder is present;

(b) a first sensor operatively disposed adjacent said first position within said piston cylinder for activation upon movement of said piston to said first position and deactivation upon movement of said piston away from said first position;

(c) a second sensor operatively disposed adjacent said second position within said piston cylinder for activation upon movement of said piston to said second position and deactivation upon movement of said piston away from said second position;

(d) a gas flow analyzer operatively connected to said first sensor and said second sensor for detecting the difference between the gas-operated appliance running out of gas during operation and the gas to the gas-operated appliance being intentionally turned off based on the timing for said piston to move from said first position to said second position within said piston cylinder.

11. The detection apparatus of claim 10 , wherein said first and said second sensors are each comprised of a switch which is activated or deactivated based upon a change of position of said piston within said cylinder caused by a change in the flow of gas through said cylinder.

12. The detection apparatus of claim 10 , wherein said first and said second sensors are each comprised of a magnetic reed switch which is activated by a magnet carried within said piston.

13. The detection apparatus of claim 10 , wherein said gas flow analyzer is configured to monitor the time from deactivation of said first sensor to activation of said second sensor as gas flow through said cylinder is depleted.

14. The detection apparatus of claim 13 , wherein said gas flow analyzer is configured to detect a positive gas-out condition of the gas-operated appliance during operation when the time from deactivation of said first sensor to activation of said second sensor exceeds a predetermined timing threshold.

15. The detection apparatus of claim 13 , including an alarm mechanism operatively connected to said gas flow analyzer for alerting to gas-out conditions of the gas appliance during operation thereof.

16. A method for detecting gas-out conditions of a gas-operated appliance during operation, comprising the steps of:

(a) providing a piston carried within a piston cylinder which is movable in response to the flow of gas through said piston cylinder between a first position where the flow of gas is substantially unrestricted and a second position where no sustained gas flow through said piston cylinder is present;

(b) determining the time it takes for said piston to travel from said first position within said piston cylinder to said second position within said piston cylinder as the rate of gas flow through said piston cylinder diminishes;

(c) comparing the time it takes for said piston to travel from said first position within said piston cylinder to said second position with a predetermined timing threshold value;

(d) providing an alarm that the gas-operated appliance has run out of gas as opposed to being intentionally turned off if the travel time of said piston from said first position to said second position within said piston cylinder exceeds said predetermined timing threshold.

17. The method set forth in claim 16 , wherein said step of determining the time it takes for said piston to travel from said first position within said piston cylinder to said second position within said cylinder includes sensing the position of said piston within said cylinder with a separate magnetic switch located adjacent each of said first and said second positions within said piston cylinder.

18. The method set forth in claim 17 , wherein said step of sensing the position of said piston within said piston cylinder involves triggering said magnetic switch located adjacent each of said first and said second positions within said piston cylinder with a magnet carried by said piston.

19. The method set forth in claim 16 , including the steps of:

(e) detecting when said piston moves from said second position to said first position within said piston cylinder;

(f) monitoring the time said piston remains at said first position without appliance activity and comparing such time with an established desired operating time;

(g) providing an alarm alerting to the presence of sustained gas flow after said established desired operating time.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 19, 2022
From: IRONWOOD ELECTRONICS, INC.
To: STRUYK, DAVID
Reel/Frame 061270/0585 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 20, 2016
From: WATERSTRIKE INCORPORATED
To: IRONWOOD ELECTRONICS, INC.
Reel/Frame 039801/0706 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2012
From: STRUYK, DAVID A.
To: WATERSTRIKE INCORPORATED
Reel/Frame 029150/0089 →
Continuity (4)
Continuation In Part 12255267 · Oct 21, 2008
Continuation In Part 12254293 · Oct 20, 2008
Provisional Application 61009725 · Dec 29, 2007
Related Publication 20120293335A1 · Nov 22, 2012