IP Library Granted Patent US 12,467,905
Granted Patent B2
US 12,467,905 · App. 18/717,055 · Granted Nov 11, 2025

In-line inspection and crack detection

Inventors: Petrus Wilem Van Andel (Zevenaar, NL); Robert Victor De Lorenzo (Seattle, WA); Paul Manzak (Stafford, TX)
Assignee: QUEST INTEGRITY USA, LLC
G01N29/043G01N29/07G01N29/225G01N29/265G01M3/005G01N2291/011G01N2291/0289G01N2291/0422G01N2291/106G01N2291/2636
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Quick Facts
Patent No.
US 12,467,905
App. No.
18/717,055
Granted
Nov 11, 2025
Kind
B2
Abstract

A technique facilitates in-service inspection of a variety of assets while in the field. The system and technique may be used for the in-service inspection of various tubular elements, such as deep-water oil and gas risers and flow lines. This approach enables a rapid and reliable inspection for cracks or other defects in assets after those assets have become operational in the field.

Claims (29)

1 . A method of in-service inspection for defects of tubular elements, comprising:

providing an inspection tool with a plurality of ultrasonic transducer elements arranged circumferentially;

positioning the inspection tool on a pig;

flowing the pig and the inspection tool along an interior of the tubular element; operating the plurality of ultrasonic transducer elements to provide a focused ultrasonic beam; and

using reflections of the focused ultrasonic beam to determine the presence of one or more cracks in the tubular element,

wherein providing comprises providing a conical transducer ring with the plurality of ultrasonic transducer elements arranged circumferentially about the conical transducer ring, and

wherein providing comprises providing a plurality of the conical transducer rings so as to form the inspection tool as a tandem transducer ring inspection tool.

2 . The method as recited in claim 1 , wherein using comprises using a corner reflection technique.

3 . The method as recited in claim 1 , wherein using comprises using a time-of-flight diffraction technique.

4 . The method as recited in claim 1 , wherein the tubular element comprises deep-water risers, flowlines, or pipelines.

5 . The method as recited in claim 1 , wherein the tubular element has an internal diameter ranging from approximately 4 to 16 inches.

6 . A method of in-service inspection for defects of tubular elements, comprising:

providing an inspection tool with a plurality of ultrasonic transducer elements arranged circumferentially;

positioning the inspection tool on a pig;

flowing the pig and the inspection tool along an interior of the tubular element; operating the plurality of ultrasonic transducer elements to provide a focused ultrasonic beam; and

using reflections of the focused ultrasonic beam to determine the presence of one or more cracks in the tubular element,

wherein providing comprises providing a conical transducer ring with the plurality of ultrasonic transducer elements arranged circumferentially about the conical transducer ring, and

wherein providing comprises providing a plurality of the conical transducer rings such that a pair of the conical transducer rings face each other so as to form the inspection tool as a tip diffraction inspection tool.

7 . An in-line inspection system for inspecting in-service tubular elements, comprising:

a conical transducer ring adapted for engagement with a pipeline pig;

a plurality of ultrasonic transducer elements arranged circumferentially around the conical transducer ring; and

a plurality of conical transducer rings so as to form a tandem transducer ring inspection system.

8 . The in-line inspection system of claim 7 , wherein the ultrasonic transducer elements employ corner reflection inspection methodologies.

9 . The in-line inspection system of claim 7 , wherein the ultrasonic transducer elements employer time-of-flight diffraction methodologies.

10 . An in-line inspection system for inspecting in-service tubular elements, comprising:

a conical transducer ring adapted for engagement with a pipeline pig;

a plurality of ultrasonic transducer elements arranged circumferentially around the conical transducer ring; and

a plurality of conical transducer rings such that a pair of the conical transducer rings face each other so as to form the inspection system as a tip diffraction inspection system.

11 . The in-line inspection system of claim 7 , wherein the conical transducer ring is sized to fit within a tubular element having an internal diameter between 4 and 16 inches.

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE RECEIVING PARTY'S ADDRESS PREVIOUSLY RECORDED ON REEL 68241 FRAME 595. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT . Recorded Jul 14, 2025
From: VAN ANDEL, PETRUS WILEM; DE LORENZO, ROBERT VICTOR; MANZAK, PAUL
To: QUEST INTEGRITY USA, LLC
Reel/Frame 072070/0459 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 9, 2024
From: VAN ANDEL, PETRUS WILEM; DE LORENZO, ROBERT VICTOR; MANZAK, PAUL
To: QUEST INTEGRITY USA, LLC
Reel/Frame 068241/0595 →
Continuity (2)
Provisional Application 63290219 · Dec 16, 2021
Related Publication 20240418678A1 · Dec 19, 2024
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