IP Library Granted Patent US 8,959,983
Granted Patent B2
US 8,959,983 · App. 13/589,271 · Granted Feb 24, 2015

Method for acoustically localizing leaks in piping systems

Inventor: Harald Schuberth (Breitengössbach, DE)
Assignee: Seba Dynatronic Mess-und Ortungstechnik GmbH
G06F17/10F17D5/06G01M3/243G01M3/002
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Quick Facts
Patent No.
US 8,959,983
App. No.
13/589,271
Granted
Feb 24, 2015
Kind
B2
Abstract

Method for acoustically locating leaks in underground or aboveground piping systems, in which at least two noise data loggers receiving the leak noise and being arranged in mutual distance from one another are brought in physical contact with the piping system to be examined and measure simultaneously the noise level (dB) and the frequency of a leak, whereas both measured values of frequency and noise level are combined in a single value (ESA), whereas the ESA value is calculated from the decimal logarithm of the frequency of the leak noise multiplied with the logarithmic level value of the leak noise multiplied with a constant factor.

Claims (53)

1. Method for acoustically locating leaks in underground or aboveground piping systems, in which at least two noise data loggers receiving the leak noise and being arranged in mutual distance from one another are brought in physical contact with the piping system to be examined and measure simultaneously the noise level (dB) and the frequency (Hz) of a leak, characterized in that both measured values of frequency and noise level are combined in a single value (ESA), whereas the ESA value is calculated from the decimal logarithm of the frequency of the leak noise multiplied with the level value of the leak noise multiplied with a constant factor.

2. Method according to claim 1 , characterized in that the ESA value is calculated according to the following formula, wherein the constant factor has the value ⅔:

ESA:=Log 10 (fre)*lev*⅔.

3. Method according to claim 1 , characterized in that the noise level of the leak is determined by means of an acceleration sensor at the location of the noise data logger, the respectively determined amplitude signal is subsequently digitally converted and read into the controller of the noise data logger and calculated according to the formula:

lev

=

20

×

log

10

n

=

1

1024

a

n

2

1024

.

4. Method according to claim 1 , characterized in that the frequency of the noise level is obtained from a Fast Fourier Transformation (FFT), the input parameter of which corresponds to a block of sample values of the noise value and at the output of which the value thus determined is transformed into a frequency range, that for each node the absolute sum is formed from the imaginary and real portion and that the frequency of the node with the highest sum is considered to be the frequency fre of the signal.

5. Method according to claim 1 , characterized in that the ESA value recorded for each noise data logger depending on its absolute value is assigned a color or brightness gradation on a graphical user interface and that the graphical user interface displays the geographic location of the noise data loggers along the piping system.

6. Method according to claim 1 , characterized in that the ESA value makes the probability of a leak visible and shows the leak position in relation to other loggers.

7. Method according to claim 1 , characterized in that a permanent pipeline control of the piping system designed as drinking water pipelines is performed.

8. Method according to claim 2 , characterized in that the noise level of the leak is determined by means of an acceleration sensor at the location of the noise data logger, the respectively determined amplitude signal is subsequently digitally converted and read into the controller of the noise data logger and calculated according to the formula:

lev

=

20

×

log

10

n

=

1

1024

a

n

2

1024

.

9. Method according to claim 2 , characterized in that the frequency of the noise level is obtained from a Fast Fourier Transformation (FFT), the input parameter of which corresponds to a block of sample values of the noise value and at the output of which the value thus determined is transformed into a frequency range, that for each node the absolute sum is formed from the imaginary and real portion and that the frequency of the node with the highest sum is considered to be the frequency fre of the signal.

10. Method according to claim 3 , characterized in that the frequency of the noise level is obtained from a Fast Fourier Transformation (FFT), the input parameter of which corresponds to a block of sample values of the noise value and at the output of which the value thus determined is transformed into a frequency range, that for each node the absolute sum is formed from the imaginary and real portion and that the frequency of the node with the highest sum is considered to be the frequency fre of the signal.

11. Method according to claim 2 , characterized in that the ESA value recorded for each noise data logger depending on its absolute value is assigned a color or brightness gradation on a graphical user interface and that the graphical user interface displays the geographic location of the noise data loggers along the piping system.

12. Method according to claim 3 , characterized in that the ESA value recorded for each noise data logger depending on its absolute value is assigned a color or brightness gradation on a graphical user interface and that the graphical user interface displays the geographic location of the noise data loggers along the piping system.

13. Method according to claim 4 , characterized in that the ESA value recorded for each noise data logger depending on its absolute value is assigned a color or brightness gradation on a graphical user interface and that the graphical user interface displays the geographic location of the noise data loggers along the piping system.

14. Method according to claim 1 , characterized in that the ESA value makes the probability of a leak visible and shows the leak position in relation to other loggers.

15. Method according to claim 2 , characterized in that a permanent pipeline control of the piping system designed as drinking water pipelines is performed.

16. Method according to claim 3 , characterized in that a permanent pipeline control of the piping system designed as drinking water pipelines is performed.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 18, 2012
From: SCHUBERTH, HARALD
To: SEBA DYNATRONIC MESS-UND ORTUNGSTECHNIK GMBH
Reel/Frame 029149/0437 →
Priority Claims (2)
DE 10 2011 112 304 · Sep 5, 2011 · national
DE 10 2012 003 822 · Feb 25, 2012 · national
Continuity (1)
Related Publication 20130213482A1 · Aug 22, 2013