EP0332048A2

Multiple coil eddy current probe and method of flaw detection.

Abstract

An improved eddy current probe system (1) and method for simultaneously detecting different types of flaws (4, 5, 6) at different depths within a metallic wall (2). The system (1) comprises a current generator (14) for generating alternating currents of substantially different frequencies, a probe head (8) including first (36), second (34) and third (32) concentrically arranged coils (32, 34, 36) in separate communication with the current generator (14), shielding material (23, 25, 27) disposed between the coils (32, 34, 36) and the pulsating magnetic field (9, 45, 46, 47) of the coils (32, 34, 36) adjacent to it, and a detector circuit (17) which may include an inductive bridge for providing an electrical output representative of the impedance changes in the respective coils (32, 34, 36). In operation, each of the coils (32, 34, 36) conducts current having substantially different frequencies.

EP0332048A2, drawing sheet 1
Sheet 1 of 8

Term

Term ended

Projected expiry passed 2 March 2009, 17.6 years ago.

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15 claims: 15 independent, 0 dependent

  1. 1
    An improved eddy current probe system (1) for simultaneously detecting different types of flaws (4, 5, 6) at different depths within a metallic wall (2), comprising a current generator (14) for generating alternating cur­rents at a plurality of different frequencies and an impedance measuring circuit (17) connected to said current generator (14) for providing an electrical output represen­tative of impedance changes in the respective coils (32, 34, 36), characterized by:a. a probe head (8) including a plurality of different coils (32, 34, 36) having different diameters arranged substantially concentrically, each of which is separately connected to said current generator (14) for receiving one of said currents of different frequencies;andb. a shield wall (23, 25, 27) disposed between the edges of adjacent coils (32, 34, 36) for preventing cross talk between the fluctuating magnetic fields (9, 45, 46, 47) generated by each coi1 (32, 34, 36) and the coils (32, 34, 36) adjacent to each such field (9, 45, 46, 47).
  2. 2
    An improved eddy current probe system (1) as defined in claim 1, wherein said current generator (14) is capable of adjusting the frequency of the alternating current received by a particular coil (32, 34, 36) whereby the composite shape of the magnetic field (9, 45, 46, 47) generated by the concentric coils (32, 34, 36) may be selectively changed.
  3. 3
    An improved eddy current probe system (1) as defined in claim 1, wherein said shield wall (23, 25, 27) is a plurality of ring-shaped walls (29, 30) of netic-conetic material disposed between the edges of different coils (32, 34, 36).
  4. 4
    An improved eddy current probe system (1) as defined in claim 1, further including a ferrite core (39) disposed within the smallest-diametered coil (36) for concentrating the magnetic flux generated thereby.
  5. 5
    An improved eddy current probe system (1) as defined in claim 1, further including a switching circuit 15 connected to said current generator (14) for connecting one or more of said plurality of coils (32, 34, 36) in series with one another, so that said serially connected coils (32, 34, 36) may conduct the same alternating current and thereby act as a single coil probe of increased diameter.
  6. 6
    An improved eddy current probe system (1) as defined in claim 1, wherein said current generator (14) applies a progressively higher frequency alternating current to coils (32, 34, 36) of smaller diameter.
  7. 7
    An improved eddy current probe system (1) as defined in claim 1, wherein said current generator (14) conducts a current of between about 300 and 700 kHz to a first coil (36), 150 to 350 kHz to a second coil (34) that circumscribes the first (36), and 30 to 70 kHz to a third coil (32) that circumscribes the second (34).
  8. 8
    An improved eddy current probe (1) as defined in claim 2, further including a computer (12) connected to said impedance measuring circuit (17) and said current generating (14) for receiving and storing the value of the impedance of each coil (32, 34, 36) as the probe head (8) is moved across a portion of said metallic wall (2), and for transmitting control signals to a frequency adjuster and timing circuit (16) connected to the current generator (14) which cause the current generator (14) to adjust the frequency of the alternating currents received by the coils (32, 34, 36) so that impedance changes in the coils (32, 34, 36) and hence the flaw-detecting resolution of each is maximized.
  9. 9
    An improved eddy current probe system (1) as defined in claim 1, wherein each coil (32, 34, 36) in­cludes a front face confrontable against said metallic wall (2) for transmitting a pulsating magnetic field (9, 45, 46, 47) therefrom that is covered by a self-lubricating plastic material.
  10. 10
    An improved eddy current probe system (1) as defined in claim 7, wherein said current generator (14) conducts a current of about 500 kHz to a first coil (36), 250 kHz to a second coil (34) that surrounds the first, and 50 kHz to a third coil (32) that surrounds the second (34).
  11. 11
    A method for simultaneously detecting different types of flaws (4, 5, 6) in a metallic wall (2) by an improved eddy current probe system (1) that includes a current generator (14) for generating alternating cur­rents of different frequencies, and a probe head (8) having a plurality of different coils (32, 34, 36) having differ­ent diameters arranged concentrically with respect to each other, each of which is separately connected to said current generator (14), comprising the steps of:a. conducting alternating currents of different frequencies through said coils (32, 34, 36) while moving said probe head (8) across a portion of said metallic wall (2), wherein the frequency of the current conducted through one coil (36) is high enough to detect flaws (4, 5) on the surface of the wall (2) confronting the probe head (8), and the frequency of the current conducted through another coil (32) is low enough to detect flaws (4, 6) in said wall beyond said confronting wall surface;b. monitoring the impedance of the coils (32, 34, 36) as the probe head (8) is moved, andc. adjusting the frequencies of the alternating currents conducted through the coils (32, 34, 36) to maximize the impedance change in the coils (32, 34, 36).
  12. 12
    A method for simultaneously detecting different types of flaws (4, 5, 6) in a metallic wall (2) by an improved eddy current probe system (1) as defined in claim 11, wherein the highest frequency current is conduct­ed through the smallest-diametered coil (36), and the lowest frequency current is conducted through the largest-diametered coil (32).
  13. 13
    A method for simultaneously detecting different types of flaws (4, 5, 6) in a metallic wall (2) by an improved eddy current probe system (1) as defined in claim 11, wherein the metallic wall (2) is the internal wall (2) of a metallic conduit (3), and wherein the concen­tric coils (32, 34, 36) of said probe head (8) are engaged against and helically moved within said internal wall (2) of said conduit (3) while said current frequencies are adjusted.
  14. 14
    A method for simultaneously detecting different types of flaws (4, 5, 6) in a metallic wall (2) by an improved eddy current probe system (1) as defined in claim 11, further including the steps of storing the values of the coil impedances for each coil (32, 34, 36) as said probe head (8) is moved over a selected portion of said wall (2), incrementally changing the frequencies of the alternating currents conducted to the coils (32, 34, 36), and storing the values of the coil impedances for each coil (32, 34, 36) as said probe head (8) is moved over said selected portion a second time.
  15. 15
    A method for simultaneously detecting different types of flaws (4, 5, 6) in a metallic wall (2) by an improved eddy current probe system (1) as defined in claim 14, further including the step of comparing the impedance values associated with the first and second probe head movements, and further incrementally changing the values of the alternating currents conducted to the coils (32, 34, 36) in a manner that the impedance change in the coil (32, 34, 36) is maximized.
Independent claims15