Nova Patents
EP0711986A2

Underground conduit defect localization

Abstract

A method of locating a defect (at Lo) in a buried conduit (5) senses (by 21,22,23) vibrations generated at the defect, processes signals detected by the sensors (21,22,23) to generate a cross-correlation function, smoothes this function to obtain a peak, calculates a center velocity of acoustic energy propagation, and uses the center velocity of acoustic energy propagation to calculate the location (Lo) of the defect.

EP0711986A2, drawing sheet 1
Sheet 1 of 9

Term

Term ended

Projected expiry passed 1 November 2015, 10.9 years ago.

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  3. Published
  4. Projected expiry
  5. Today

21 claims: 5 independent, 16 dependent

  1. 1
    A method of locating a leak in a conduit, comprising the steps of:computing a cross-correlation function from leak noise data obtained from a first pair of sensors located along the conduit at a spaced interval for obtaining a raw plot of a first time differential;computing a cross-correlation function from leak noise data obtained from a second pair of sensors located along the conduit at a spaced interval for obtaining a raw plot of a second time differential;smoothing each raw plot of time differential for obtaining a peak time differential in each plot;determining the velocity of propagation for leak noise in the conduit using the first peak time differential and the known spacing between the first pair of sensors;and determining the location of the leak using the velocity of propagation, the second peak time differential, and the known spacing between the second pair of sensors.
  2. 6
    A method of locating a leak in a buried conduit, comprising the steps of:sensing leak noise propagating in the conduit at three spaced apart locations along its length for generating an electrical signal at each location;recording each signal in digital form;computing a cross-correlation function from leak noise data obtained from a first pair of sensors located along the conduit for obtaining a raw plot of a first time differential;computing a cross-correlation function from leak noise data obtained from a second pair of sensors located along the conduit for obtaining a raw plot of a second time differential;smoothing each raw plot of time differential for obtaining a peak time differential in each plot;determining the velocity of propagation for leak noise in the conduit using the first peak time differential and the known spacing between the first pair of sensors;determining an uncorrected location of the leak using the velocity of propagation, the second peak time differential, and the known spacing between the second pair of sensors;and adjusting the uncorrected location calculation by considering the rate and direction of flow of a medium within the conduit for determining the final leak location.
  3. 13
    An acoustic method of locating a leak in a buried steam conduit, comprising the steps of:welding a sensor to the conduit at a first, second, and third location, respectively, where each location is separated by a known distance from the others;sensing steam leak noise propagating in the conduit for generating an electrical signal at each location;providing synchronization to a recording operation for signal processing;recording each signal in digital form for preserving it;filtering each signal to pass a frequency band from 4000 to 8500 Hz for discriminating against turbulent flow noise in the steam, noise transmitted by the conduit;filtering each signal to exclude single frequency tones;computing a cross-correlation function from leak noise data obtained from a first pair of sensors located along the conduit for obtaining a raw plot of a first time differential;computing a cross-correlation function from leak noise data obtained from a second pair of sensors located along the conduit for obtaining a raw plot of a second time differential;smoothing each raw plot of time differential for obtaining a peak time differential in each plot;determining the velocity of propagation for leak noise in the conduit using the first peak time differential and the known spacing between the first pair of sensors;determining an uncorrected location of the leak using the velocity of propagation, the second peak time differential, and the known spacing between the second pair of sensors;and adjusting the uncorrected location calculation by considering the rate and direction of flow of a medium within the conduit for determining the final leak location.
  4. 14
    A method of determining the flow rate and direction of a medium within a conduit comprising the steps of:imposing a first vibration upon the conduit at a position on a first side of a pair of sensors which are separated by a distance and mounted to the conduit;detecting a first transmitted vibration propagating along the conduit in response to said imposed vibration at both sensors;repeating the steps above wherein a second vibration is imposed at a second position on a second side of the sensors;determining the center velocity of each transmitted vibration by computing an envelope correlation function;and calculating the direction of fluid flow and its velocity.
  5. 21
    An acoustic method of determining the flow rate and direction of steam flowing in a conduit, comprising the steps of:welding a sensor to the conduit at a first and second location along the conduit, where each location is separated by a known distance from the other;imposing a first vibration upon the conduit at a position on a first side of the sensors;detecting a first transmitted vibration propagating along the conduit in response to said imposed vibration at both sensors;imposing a second vibration upon the conduit at a second position on a second side of the sensors;detecting a second transmitted vibration propagating along the conduit in response to said imposed vibration at both sensors;recording each signal in digital form for preserving it;filtering each signal to pass a frequency band from 4000 to 8500 Hz for discriminating against turbulent flow noise in the steam, noise transmitted by the conduit;filtering each signal to exclude single frequency tones;computing a cross-correlation function from data obtained from the sensors from the first imposed vibration propagating along the conduit for obtaining a raw plot of a first time differential;computing a cross-correlation function from data obtained from the sensors from the second imposed vibration propagating located along the conduit for obtaining a raw plot of a second time differential;smoothing each raw plot of time differential for obtaining a peak,time differential in each plot;determining the center velocity of propagation of imposed vibration in the conduit using the first peak time differential and the known spacing between the sensors;determining the center velocity of propagation of imposed vibration in the conduit using the second peak time differential and the known spacing between the sensors;and calculating the flow rate and direction of the medium in the conduit.