IP Library Granted Patent US 11,630,021
Granted Patent B2
US 11,630,021 · App. 16/453,318 · Granted Apr 18, 2023

Enclosure for leak detector

Inventors: Leo W. Fleury, Jr. (Smithfield, RI); Ganapathi Deva Varma Dintakurti (Brampton, CA); James O. Williams (Marlborough, MA); Shabbir Yusuf (Mississauga, CA)
Assignee: Mueller International, LLC
G01M3/00E03B7/003E03B7/071E03B9/06G01M3/24G01M3/243H01Q1/225H01Q1/2291H01Q1/38H01Q1/42B26F1/14E03B9/02G01F17/00Y02A20/15Y10T83/04
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Quick Facts
Patent No.
US 11,630,021
App. No.
16/453,318
Granted
Apr 18, 2023
Kind
B2
Abstract

A nozzle cap assembly includes a nozzle cap defining a bore, the bore defining internal threading configured to mount the nozzle cap on a nozzle of a fire hydrant; an enclosure attached to the nozzle cap; a vibration sensor positioned within the enclosure; a circuit board positioned within the enclosure, the circuit board connected in electrical communication with the vibration sensor, the circuit board configured to process an electrical current transmitted by the vibration sensor; and an antenna connected in electrical communication with the circuit board, the antenna configured to transmit a signal received from the circuit board.

Claims (41)

1. A nozzle cap assembly comprising:

a nozzle cap defining a bore, the bore defining internal threading configured to mount the nozzle cap on a nozzle of a fire hydrant;

an enclosure and a mating enclosure, the enclosure defining a first end and a second end, the first end attached to the nozzle cap, the second end of the enclosure coupled to the mating enclosure;

a vibration sensor positioned within the enclosure;

a circuit board positioned within the enclosure, the circuit board connected in electrical communication with the vibration sensor, the circuit board configured to process an electrical current transmitted by the vibration sensor; and

an antenna connected in electrical communication with the circuit board, the antenna configured to transmit a signal received from the circuit board.

2. The nozzle cap assembly of claim 1 , wherein the mating enclosure is attached to the enclosure by plastic welding.

3. The nozzle cap assembly of claim 1 , wherein the mating enclosure receives a fastener, and wherein the fastener extends at least partially through the enclosure to secure the mating enclosure to the enclosure.

4. The nozzle cap assembly of claim 1 , wherein the nozzle cap comprises cast iron.

5. The nozzle cap assembly of claim 1 , wherein at least a portion of the enclosure comprises plastic.

6. The nozzle cap assembly of claim 1 , wherein the mating enclosure is at least partially inserted into the second end of the enclosure.

7. A fire hydrant assembly comprising:

a fire hydrant, the fire hydrant comprising a nozzle, the nozzle defining male threading;

a nozzle cap mounted on the nozzle, the nozzle cap defining female threading, the female threading engaging with the male threading;

an enclosure and a mating enclosure, the enclosure defining a first end and a second end, the first end attached to the nozzle cap, the second end of the enclosure coupled to the mating enclosure;

a vibration sensor positioned within the enclosure, the vibration sensor configured to detect vibrations travelling from the fire hydrant and through the nozzle cap and enclosure to the vibration sensor; and

a circuit board positioned within the enclosure, the circuit board connected to the vibration sensor in electrical communication, the circuit board configured to process an electrical current transmitted by the vibration sensor.

8. The fire hydrant assembly of claim 7 , wherein the nozzle cap comprises cast iron, and wherein the enclosure comprises plastic.

9. The fire hydrant assembly of claim 7 , wherein the mating enclosure is attached to the enclosure by plastic welding.

10. The fire hydrant assembly of claim 7 , wherein a fastener extends through the mating enclosure and at least partially through the enclosure.

11. The fire hydrant assembly of claim 7 , wherein a mating gasket forms a seal between the enclosure and the mating enclosure.

12. The fire hydrant assembly of claim 7 , further comprising an antenna connected to the circuit board in electrical communication, the antenna configured to transmit a signal received from the circuit board, the nozzle cap positioned between the antenna and the fire hydrant.

13. The fire hydrant assembly of claim 7 , wherein the mating enclosure is at least partially inserted into the second end of the enclosure.

14. A method of monitoring for a leak in a fluid system, the method comprising:

mounting a nozzle cap assembly on a nozzle of a fire hydrant connected in fluid communication with the fluid system, the nozzle cap assembly comprising:

a nozzle cap mounted on the nozzle, the nozzle defining male threading, the nozzle cap defining female threading, the female threading engaging with the male threading;

an enclosure and a mating enclosure, the enclosure defining a first end and a second end, the first end attached to the nozzle cap, the second end of the enclosure coupled to the mating enclosure;

a vibration sensor positioned within the enclosure; and

a circuit board connected to the vibration sensor in electrical communication;

detecting a vibration from the fluid system with the vibration sensor;

transmitting an electrical current from the vibration sensor to the circuit board; and

processing the electrical current with the circuit board to determine if the leak is present in the fluid system.

15. The method of claim 14 , further comprising transmitting a signal from the circuit board with an antenna, the antenna connected in electrical communication with the circuit board.

16. The method of claim 15 , wherein mounting the nozzle cap assembly on the nozzle comprises positioning the nozzle cap between the antenna and the fire hydrant.

17. The method of claim 14 , wherein detecting the vibration from the fluid system with the vibration sensor comprises, in sequence:

conducting the vibration from the fluid system to the fire hydrant;

then conducting the vibration from the fire hydrant to the nozzle cap;

then conducting the vibration from the nozzle cap to the enclosure; and

then conducting the vibration from the enclosure to the vibration sensor.

18. The method of claim 14 , wherein the mating enclosure is plastic welded to the enclosure.

19. The method of claim 14 , wherein the mating enclosure is at least partially inserted into the second end of the enclosure.

Continuity (4)
Continuation 15401457 · Jan 9, 2017
Continuation 13492795 · Jun 8, 2012
Provisional Application 61523274 · Aug 12, 2011
Related Publication 20190316983A1 · Oct 17, 2019
Cited By (8)
US 12,212,053 US 12,489,202 US 12,529,616 US 12,539,437 US 12,578,245 US 12,618,742 US 12,638,355 US 12,709,879