IP Library Granted Patent US 9,546,788
Granted Patent B2
US 9,546,788 · App. 13/491,250 · Granted Jan 17, 2017

Combined high energy igniter and flame detector

Inventor: Andrew H. Strong (Norwich, NY)
Assignee: Chentronics, LLC
F23N5/123F23Q3/008F23D2207/00F23D2208/10F23N2027/22F23N2027/36F23N2029/02
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Quick Facts
Patent No.
US 9,546,788
App. No.
13/491,250
Granted
Jan 17, 2017
Kind
B2
Abstract

An apparatus and method are provided for improved gas pilot burners, which are capable of simultaneous flame ignition and flame detection. More particularly, the invention provides for an apparatus and method capable of simultaneous high-energy ignition and flame ionization detection in a high-energy igniter that utilizes a spark rod located in a fuel channel.

Claims (44)

1. A process for simultaneous ignition and flame detection in a high energy igniter of the type that has a fuel channel having a grounded wall and a spark rod located therein and said spark rod being a type that has a center electrode and an electrode tube wherein said center electrode and outer electrode tube form a spark tip, said process comprising:

(a) providing an electrical potential to said electrode tube such that when a flame is present adjacent to said spark tip, a current will flow from said electrode tube to said grounded wall;

(b) providing a first potential to said center electrode;

(c) providing a second potential to said electrode tube wherein said first potential and second potential cause said spark tip to spark;

(d) introducing a fuel and air mixture into said channel such that said spark can ignite said fuel and air mixture; and

(e) detecting whether said current flows from said electrode tube to said wall during steps (c) and (d).

2. The process of claim 1 further comprising:

(f) shutting down said first potential when said current is detected; and

(g) shutting down said flow of said fuel and air mixture if said current is not detected in a predetermined time.

3. The process of claim 2 further comprising repeating steps (b) through (g) after a predetermined timeout period.

4. The process of claim 1 wherein said electrical potential provided in step (a) is an alternating electrical current and said detecting step (e) further comprises determining whether said current is a rectified current or an alternating current.

5. The process of claim 4 further comprising shutting down said first potential and said flow of said fuel and air mixture if said current is determined to be flowing in two alternating directions.

6. The process of claim 1 further comprising:

detecting whether said current flows from said outer electrode tube to said wall prior to step (b) of providing said first potential to said center electrode; and

thereafter, aborting said steps (b) through (f) if said current flow is detected.

7. A process for simultaneous ignition and flame detection in a high energy igniter of the type that has a fuel channel having a grounded wall and a spark rod located therein and said spark rod being a type that has a center electrode and an electrode tube wherein said center electrode and outer electrode tube form a spark tip, said process comprising:

(a) providing an alternating electrical potential to said electrode tube such that when a flame is present adjacent to said spark tip, a current will flow from said electrode tube to said grounded wall;

(b) detecting whether said current is flowing from said electrode tube to said grounded wall prior to step (d);

(c) aborting steps (b) through (j) if said current is detected;

(d) providing a first potential to said center electrode;

(e) providing a second potential to said electrode tube wherein said first potential and second potential cause said spark tip to spark;

(f) introducing a fuel and air mixture into said channel such that said spark can ignite said fuel and air mixture;

(g) detecting whether said current flows between said electrode tube and whether said current is a rectified current or an alternating current during steps (e) and (f);

(h) shutting down said first potential when a rectified current is detected;

(i) shutting down said first potential and said flow of said fuel and air mixture when an alternating current is detected;

shutting down said flow of said fuel and air mixture if said current is not detected in a predetermined time; and

(k) repeating steps (d) through (j) after a predetermined timeout period.

8. A process for simultaneous high energy ignition and flame detection in a high energy igniter, said process comprising:

(a) providing a first electrical potential to a first electrode having a spark end, wherein said first electrode is positioned and electrically insulated from a second electrode having a spark end such that a spark gap is formed by said spark end of said first electrode and said spark end of said second electrode; wherein said second electrode is at a lower electrical potential than said first electrode so that a spark arcs across the spark gap and, when fuel is adjacent said spark gap, said spark ignites said fuel and produces a flame; wherein the electrical potential of the second electrode and the first electrical potential of the first electrode cause the spark across the spark gap;

(b) providing an alternating electrical potential between the second electrode and a third electrode wherein said second electrode and third electrode form a flame detection circuit such that when flame is present between said second electrode and said third electrode, a current will flow between said second electrode and said third electrode; and

(c) detecting whether a current flows between said second electrode and said third electrode such that, when said fuel is being ignited by said spark, there is simultaneous detection of said flame during the period of time that said fuel is ignited.

9. The process of claim 8 , wherein said simultaneous detection of said flame and igniting of fuel is by a single integrated circuit.

10. The process of claim 8 , wherein there is detection of said flame after flame ignition for as long as said flame is present.

11. The process of claim 8 , wherein there is a semiconductor at said spark gap to form a conductive pathway between said spark end of said first electrode and said spark end of said second electrode.

12. The process of claim 8 , wherein, when said flame is present, a rectified current flows between said second electrode and said third electrode.

13. The process of claim 12 , further comprising shutting down said first potential when said rectified current is detected.

14. The process of claim 13 , further comprising introducing a flow of said fuel adjacent said spark gap and shutting down said flow of said fuel if said rectified current is not detected in a predetermined time after said introduction of said flow.

15. The process of claim 12 , further comprising, determining whether an alternating current flows between said second electrode and said third electrode, said rectified current flows between said second electrode and said third electrode, or no current flow between said second electrode and said third electrode.

16. The process of claim 15 , further comprising, determining that the current is not verification of the presence of said flame, when an alternating current is determined to flow between said second electrode and said third electrode.

17. The process of claim 15 , further comprising:

detecting whether an alternating current flows between said second electrode and said third electrode prior to fuel being introduce adjacent to said spark gap; and

aborting said step (a) if said alternating current is detected.

18. The process of claim 8 , wherein said first electrode and said second electrode form a spark rod with said first electrode being a center electrode of said spark rod and said second electrode being an electrode tube surrounding said center electrode such that a spark tip is formed having said spark gap.

19. The process of claim 18 , wherein said third electrode is a fuel channel having a grounded wall and said spark rod is located therein, and wherein a fuel and air mixture is introduced into said channel such that said spark can ignite said fuel and air mixture.

Assignments (3)
MERGER Recorded Mar 6, 2024
From: CHENTRONICS CORPORATION
To: CHENTRONICS, LLC
Reel/Frame 066659/0339 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2013
From: JOHN ZINK COMPANY, LLC
To: CHENTRONICS CORPORATION
Reel/Frame 030722/0949 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2012
From: STRONG, ANDREW H.
To: JOHN ZINK COMPANY, LLC
Reel/Frame 028338/0010 →
Continuity (1)
Related Publication 20130330675A1 · Dec 12, 2013