IP Library › Patent Application 19075151
Patent Application
App. No. 19/075,151

PIPELINE LEAK DETECTION APPARATUS, AND METHODS THEREOF

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Quick Facts
Patent No.
US None
App. No.
19/075,151
Abstract

An apparatus for the continuous monitoring of a pipeline or a pipeline network carrying flowing media that can not only detect the presence of a leak but also locate the source of the leak through the use of rarefraction wave detection and methods of using the same is disclosed within. The apparatus and method are specifically configured to locate the leak source within less than 36 inches using a calibration means and a noise cancellation means.

Claims (33)

1 - 41 . (canceled)

42 . A pipeline leak detection apparatus for detection and location of a leak in a pipeline, the apparatus comprising:

a computer processor operatively coupled to memory having instructions and to at least first and second pressure sensing devices for detecting fluid pressure in the pipeline, wherein the processor upon execution of instructions is configured to:

instruct, upon detection of a first trigger event, the first pressure sensing device to measure pressure as a first data point, and store the first data point in a first data set;

analyze the first data point to identify a first pressure event;

store, if the first pressure event is temporally located in a center portion of the first data set, the first data set in memory storage;

determine whether the first data set is the only stored data set in the memory storage or if there is a second data set received from the second pressure sensing device; and

analyze, if determined a second data set was stored, the first data set and the second data set to determine a location of the first pressure event along the pipeline.

43 . The apparatus of claim 42 , wherein the processor is further configured to use a temperature measurement from a temperature sensing device to determine the location of the first pressure event.

44 . The apparatus of claim 43 , wherein the processor is further configured to: use a third data point and a third data set from a third pressure sensing device, when the location of the first pressure event is within the distance uncertainty of the first pressure sensing device, to determine the location of the first pressure event, wherein the third pressure sensing device is adjacent to the second pressure sensing device but not adjacent to the first pressure sensing device.

45 . The apparatus of claim 44 , wherein the processor is further configured to use a temperature measurement from a temperature sensing device to determine the location of the first pressure event.

46 . The apparatus of claim 42 , wherein the processor is further configured to wait for a second trigger event, when the first pressure event is not present, and upon the second trigger event, instruct the first pressure sensing device to measure fluid pressure and to transmit a second data point to the processor.

47 . The apparatus of claim 42 , wherein one or more of the first and second pressure sensing devices includes a fitting configured to dispose the pressure sensing device on the pipeline.

48 . The apparatus of claim 42 , wherein one or more of the first and second pressure sensing devices includes one or more of: a ball valve, bleed-off valve, a quarter turn valve, and a bore valve.

49 . The apparatus of claim 42 , wherein at least one of the first and second pressure sensing devices includes a differential pressure transducer.

50 . The apparatus of claim 42 , wherein at least one of the first and second pressure sensing devices includes an absolute pressure transducer.

51 . The apparatus of claim 42 , wherein at least one of the first and second pressure sensing devices includes a gauge referenced pressure transducer.

52 . A computer-implemented method for detection and location of a fluid leak in a pipeline, comprising the steps:

providing a computer processor operatively coupled to memory having instructions, and to at least first and second pressure sensing devices for detecting fluid pressure in the pipeline;

instructing, by a processor, and upon detection of a first trigger event, the first pressure sensing device to measure pressure as a first data point, and store the first data point in a first data set;

analyzing, by the processor, the first data point to identify a first pressure event;

storing, by the processor, if the first pressure event is temporally located in a center portion of the first data set, the first data set in memory storage;

determining, by the processor, whether the first data set is the only stored data set in the memory storage or if there is second data set received from the second pressure sensing device; and

analyzing, by the processor, if it was determined a second data set was stored, the first data set and the second data set to determine a location of the first pressure event along the pipeline.

53 . The computer-implemented method as recited in claim 52 , further including the step using a temperature measurement from a temperature sensing device to determine the location of the first pressure event.

54 . The computer-implemented method as recited in claim 53 , further including the step using a third data point and a third data set from a third pressure sensing device, when the location of the first pressure event is within the distance uncertainty of the first pressure sensing device, to determine the location of the first pressure event, wherein the third pressure sensing device is adjacent to the second pressure sensing device but not adjacent to the first pressure sensing device.

55 . The computer-implemented method as recited in claim 54 , further including the step using a temperature measurement from a temperature sensing device to determine the location of the first pressure event.

56 . The computer-implemented method as recited in claim 55 , further including the step waiting for a second trigger event, when the first pressure event is not present, and upon the second trigger event, instruct the first pressure sensing device to measure fluid pressure and to transmit a second data point to the processor.

57 . The computer-implemented method as recited in claim 52 , wherein one or more of the first and second pressure sensing devices includes a fitting configured to dispose the pressure sensing device on the pipeline.

58 . The computer-implemented method as recited in claim 52 , wherein one or more of the first and second pressure sensing devices includes one or more of: a ball valve, bleed-off valve, a quarter turn valve, and a bore valve.

59 . The computer-implemented method as recited in claim 52 , wherein at least one of the first and second pressure sensing devices includes a differential pressure transducer.

60 . The computer-implemented method as recited in claim 52 , wherein at least one of the first and second pressure sensing devices includes an absolute pressure transducer.

61 . The computer-implemented method as recited in claim 52 , wherein at least one of the first and second pressure sensing devices includes a gauge referenced pressure transducer.