Claims
- 1. A method of accurately determining the depth of a changed mass section of a jointed tubular structure in a subterranean well, such as a well bore casing or production tubing, without the necessity of transmitting electrical signals upwardly to the surface through an electrically conductive wire line member, said method comprising the steps of:
- vertically moving a detection structure, on an elongated positioning member, through the tubular structure and through the changed mass section therein whose depth is to be determined;
- causing the moving detection structure to automatically generate an electrical signal as it moves through the changed mass section;
- using the generated electrical signal to cause a portion of the moving detection structure to momentarily and detectably change the tension in said elongated positioning member;
- detecting the momentary tension change in said elongated positioning member; and
- utilizing the detected momentary positioning member tension change to determine the depth of the changed mass section of the jointed tubular structure.
- 2. The method of claim 1 wherein:
- said vertically moving step is performed by moving said detection structure upwardly through the changed mass section, and
- said using step is performed by causing said portion of said detection structure to momentarily increase the tension in said elongated positioning member.
- 3. The method of claim 1 wherein:
- said vertically moving step is performed by moving said detection structure upwardly through the changed mass section, and
- said using step is performed by causing said portion of said detection structure to momentarily decrease the tension in said elongated positioning member.
- 4. The method of claim 1 wherein:
- said vertically moving step is performed by moving said detection structure downwardly through the changed mass section, and
- said using step is performed by causing said portion of said detection structure to momentarily increase the tension in said elongated positioning member.
- 5. The method of claim 1 wherein:
- said vertically moving step is performed by moving said detection structure downwardly through the changed mass section, and
- said using step is performed by causing said portion of said detection structure to momentarily decrease the tension in said elongated positioning member.
- 6. The method of claim 1 wherein:
- said vertically moving step is performed using a slick line as the elongated positioning member.
- 7. The method of claim 1 wherein:
- said portion of said detection structure is slidably and frictionally engageable within the inner side surface of the jointed tubular structure, and
- said using step is performed by momentarily altering the sliding friction force between said detection structure portion and the inner side surface of the jointed tubular structure.
- 8. The method of claim 1 wherein:
- said portion of said detection structure and the jointed tubular structure are magnetically attractable to one another, and
- said using step performed by momentarily altering the magnetic attraction force between said detection structure portion and the jointed tubular structure.
- 9. The method of claim 1 wherein the changed mass section is a casing collar joint, and said method is used to detect the depth of the casing collar joint.
- 10. The method of claim 1 wherein:
- said causing step includes the step of electromagnetically sensing the changed mass section of the jointed tubular structure.
- 11. A method of accurately determining the depths of a longitudinally spaced plurality of changed mass sections in a downhole tubular structure, such as a well bore casing or production tubing, in a subterranean well, said method comprising the steps of:
- providing a mass change detection structure;
- securing said mass change detection structure to an end of an elongated positioning member;
- lowering said mass change detection structure into the tubular structure on said elongated positioning member;
- moving the lowered mass change detection structure vertically through the spaced plurality of changed mass sections;
- causing the vertically moving mass change detection structure to generate an electrical signal as it interiorly traverses each of the spaced plurality of changed mass sections;
- momentarily causing a portion of said mass change detection structure, in response to the generation of each electrical, to cooperate with the tubular structure in a manner momentarily and detectably changing the tension in said elongated positioning member;
- detecting the momentary tension changes in said elongated positioning member;
- utilizing the detected tension changes to determine the depth of each of the spaced plurality of changed mass sections;
- using the determined depths of the changed mass sections to determine the spacing between each vertically adjacent pair of the plurality of changed mass sections; and
- matching the set of determined section-to-section spacings to a corresponding set of section-to-section spacings on a previously recorded changed mass section log and tally to determine precisely which changed mass sections have been logged using said mass change detection structure.
- 12. The method of claim 11 wherein:
- said securing step is performed by securing said mass change detection structure to an end of a slick line.
- 13. A method of positioning a tool within a downhole tubular structure, such as a well bore casing or production tubing, in a subterranean well, at a precise, predetermined distance from a previously installed structure therein, the tubular structure having a longitudinally spaced series of changed mass sections and an associated changed mass section and tally log indicating the depth of the previously installed structure in the tubular structure, said method comprising the steps of:
- lowering a mass change detection structure into the tubular structure on an elongated positioning member;
- using said elongated positioning member to vertically move the lowered mass change detection structure through the changed mass sections in a predetermined longitudinal portion of the tubular structure;
- causing the moving mass change detection structure to automatically generate an electrical signal each time it passes through one of the changed mass sections in said predetermined longitudinal portion of the tubular structure;
- causing the moving mass change detection structure to cooperate with the tubular structure, in response to each of the generated electrical signals, in a manner detectably changing the tension in said elongated positioning member;
- detecting the tension changes in said elongated positioning member;
- utilizing the detected tension changes to measure the distance between each longitudinally successive pair of the changed mass sections in said predetermined longitudinal portion of the tubular structure by recording the downhole length of said elongated positioning member corresponding to each detected tension change therein;
- correlating the measured section-to-section distances to dimensional data in the changed mass section and tally log in a manner establishing a positioning member run-in length precisely corresponding to the desired tool depth in the tubular structure; and
- supporting the tool within the tubular structure on an elongated positioning member having a downhole length identical to the positioning member run-in length established in said correlating step.
- 14. The method of claim 13 wherein:
- said supporting step is performed using the same elongated positioning member used in said lowering step.
- 15. The method of claim 14 wherein:
- said tool is lowered into the tubular structure with said mass change detection structure on said elongated positioning member.
- 16. A detection structure, movable through a downhole tubular structure, such as a well bore casing or production tubing in a subterranean well, on an end of an elongated positioning member extending into the tubular structure, for detecting the location of a changed mass portion of the tubular structure such as a joint therein, said detection structure comprising:
- first means for sensing the changed mass portion as said detection structure moves therethrough, and responsively generating an electrical output signal; and
- second means, responsive to the generation of said electrical output signal, for utilizing a portion of the detection structure to momentarily create in the elongated positioning member a detectable tension change indicative of the downhole position of the sensed changed mass portion of the tubular structure.
- 17. The detection structure of claim 16 wherein:
- said first means are operative to electromagnetically sense the changed tubular structure mass portion.
- 18. The detection structure of claim 17 wherein:
- said first means include an electromagnetic coil structure.
- 19. The detection structure of claim 16 wherein said second means include:
- a drag structure having a motion inhibiting portion movable between a retracted position in which said motion inhibiting portion is spaced apart from the inner side surface of the tubular structure, and an extended position in which said motion inhibiting portion is in sliding frictional contact with the inner side surface of the tubular structure, and
- means, responsive to the generation of said electrical output signal, for momentarily moving said motion inhibiting portion from one of said retracted and extended positions to the other of said retracted and extended positions.
- 20. The detection structure of claim 19 wherein:
- said drag structure has a hollow housing extending along an axis and having a lower portion with a circumferentially spaced plurality of slots therein,
- said motion inhibiting portion includes a plurality of elongated drag arm members having upper end portions extending inwardly through said slots and being pivotally secured within said hollow housing, and lower end portions having frictional drag pads secured thereto, said drag arm members being inwardly pivotable to said retracted position in which said drag pads are spaced inwardly apart from the inner side surface of the tubular structure, and being outwardly pivotable to said extended position in which said drag pads are in sliding frictional engagement with the inner side surface of the tubular structure, and
- said means for momentarily moving said motion inhibiting portion include spring means for resiliently biasing said drag arm members toward said extended position, and solenoid means operable in response to said electrical output signal to releasably hold said drag arm members in said retracted position.
- 21. The detection structure of claim 16 wherein said second means include a drag structure having:
- a hollow housing extending along an axis and having a circumferentially spaced plurality of slots therein
- a plurality of elongated drag arm members with upper end portions extending inwardly through said slots and being pivotally secured within said hollow housing, and lower end portions having electromagnetic drag pad members thereon, said drag arm members being pivotable relative to said hollow housing between said retracted position in which said electromagnetic drag pad members are spaced inwardly apart from the inner side surface of the tubular structure, and said extended position in which said drag pad members are in sliding frictional contact with the inner side surface of the tubular structure,
- spring means for resiliently and pivotally biasing said drag arm members toward said extended position thereof, and
- electrical means, responsive to said electrical output signal, for selectively magnetizing and de-magnetizing said electromagnetic drag pad members.
- 22. The detection structure of claim 16 wherein said second means comprise a drag structure having motion inhibiting portion including:
- a hollow housing extending along an axis and having a circumferentially spaced plurality of radial slots therein,
- a plurality of electromagnetic drag pad members carried in said housing for radial movement through said slots between retracted and extended positions,
- spring means for resiliently biasing said electromagnetic drag pad members to said extended positions thereof, and
- electrical means for selectively magnetizing and demagnetizing said plurality of electromagnetic drag pad members.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part of U.S. application Ser. No. 08/146,678 filed on Nov. 1, 1993, now U.S. Pat. No. 5,361,838, and entitled "SLICK LINE CASING AND TUBING JOINT LOCATOR APPARATUS AND ASSOCIATED METHODS".
US Referenced Citations (15)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
146678 |
Nov 1993 |
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