Claims
- 1. A method of orienting shaped charges, comprising:
weighting one or more gun string components eccentrically to orient the shaped charges in the desired direction.
- 2. The method of claim 1, wherein the one or more gun string components are selected from shaped charges, loading tubes, and gun carriers.
- 3. The method of claim 1, wherein the one or more gun string components are weighted eccentrically by adding additional material to alter the center of gravity.
- 4. The method of claim 1, wherein the one or more gun string components are weighted eccentrically by removal of material to alter the center of gravity.
- 5. The method of claim 1, wherein the one or more gun string components are weighted eccentrically by placing the one or more gun string components within the gun string at a location where the center of gravity of the one or more gun string components is removed from the axis of rotation of the gun string.
- 6. The method of claim 1, wherein the one or more gun string components is a swiveling loading tube.
- 7. The method of claim 1, wherein the one or more gun string components is an articulated loading tube having a plurality of segments engaged with each other such that the individual segments are adapted to bend without becoming disengaged.
- 8. The method of claim 1, further comprising:
determining the non-uniformity of the bending moment in the one or more gun string components; and compensating for the non-uniformity of the bending moment.
- 9. The method of claim 8, wherein the non-uniformity of bending moment is determined by bending the one or more gun string components at the angle of the wellbore deviation and measuring the amount of torque required to rotate the one or more gun string components to the desired orientation while at the angle of deviation.
- 10. An oriented perforating gun affixed to a gun string, comprising:
one or more gun string components, comprising:
one or more shaped charges having a charge case; a gun carrier; and a loading tube; wherein at least one of the one or more gun string components are eccentrically weighted to orient the shaped charges in a desired direction.
- 11. The oriented perforating gun of claim 10, wherein the geometry of the charge case of the one or more shaped charges is modified to shift its center of gravity.
- 12. The oriented perforating gun of claim 10, wherein weights are affixed to the charge case of the one or more shaped charges.
- 13. The oriented perforating gun of claim 10, wherein the one or more shaped charges are affixed within the loading tube at a location where the center of gravity of the one or more shaped charges is removed from the axis of rotation of the perforating gun.
- 14. The oriented perforating gun of claim 10, wherein additional material is added to the gun carrier.
- 15. The oriented perforating gun of claim 10, wherein material is removed from the gun carrier.
- 16. The oriented perforating gun of claim 15, wherein the removal of material forms scallops on the gun carrier surface.
- 17. The oriented perforating gun of claim 10, wherein additional material is affixed to the loading tube.
- 18. The oriented perforating gun of claim 10, wherein material is removed from the loading tube.
- 19. The oriented perforating gun of claim 10, wherein the loading tube is an eccentrically weighted swiveling loading tube.
- 20. The oriented perforating gun of claim 19, wherein the swiveling loading tube has a pendulum weight affixed.
- 21. The oriented perforating gun of claim 19, wherein the swiveling loading tube has an orienting weight within that surrounds at least a portion of the one or more shaped charges.
- 22. The oriented perforating gun of claim 19, wherein the gun carrier is oriented with respect to the swiveling loading tube by one or more weights.
- 23. The oriented perforating gun of claim 22, wherein the one or more weights are external to the gun carrier.
- 24. The oriented perforating gun of claim 23, wherein the one or more weights are provided with rounded ends adapted for guiding the perforating gun through well deviations.
- 25. The oriented perforating gun of claim 10, wherein the loading tube is an articulated loading tube having a plurality of segments engaged with each other such that the individual segments are adapted to bend without becoming disengaged.
- 26. The oriented perforating gun of claim 10, wherein the gun carrier further comprises an articulated weight spacer affixed to the gun string, the articulated weight spacer having a plurality of segments engaged with each other such that the individual segments are adapted to bend without becoming disengaged.
- 27. The oriented perforating gun of claim 10, comprising a plurality of perforating guns.
- 28. The oriented perforating gun of claim 27, wherein the plurality of perforating guns are affixed to one another by a positive alignment carrier.
- 29. The oriented perforating gun of claim 28, wherein the positive alignment carrier removes alignment error resulting from machining tolerances and clearances that exist in the plurality of perforating guns.
- 30. A method of orienting a perforating gun in a deviated wellbore:
providing an articulated weight spacer within the perforating gun, comprising:
a plurality of eccentrically weighted segments engaged such that the individual segments are adapted to bend without becoming disengaged from the surrounding segments.
- 31. A method of actively orienting gun string components, comprising:
determining the wellbore trajectory that will be experienced by the gun string components; bending gun string raw material in a curvature resembling the wellbore trajectory the component will experience; measuring the amount of torque required to rotate the gun string component to the desired angle of orientation while bent at the wellbore trajectory; selecting the gun string raw material that requires minimal torque to rotate to the desired angle of orientation; and providing gun string components manufactured with the selected gun string material.
- 32. The method of claim 31, wherein the torque is measured with a bent torque response assembly.
- 33. A method of locating one or more downhole components and mapping their position in a single run, comprising:
providing detectable material in the one or more downhole components; running one or more focused detectors in conjunction with a gyro; detecting the one or more downhole components with the one or more focused detectors; and mapping the position with respect to a fixed position in the casing of the detected one or more downhole components, the mapping provided by the gyro.
- 34. The method of claim 33, wherein the one or more downhole components are control lines.
- 35. The method of claim 33, wherein the one or more downhole components are selected from downhole sensors, downhole equipment, and downhole tools.
- 36. The method of claim 33, wherein the detectable material is radioactive tracer elements provided by doping the one or more downhole components and the one or more focused detectors are a gamma ray imaging tool.
- 37. The method of claim 33, wherein the detectable material is one or more radioactive pip tags provided in the one or more downhole components and the one or more focused detectors are a gamma ray imaging tool.
- 38. The method of claim 33, wherein the detectable material is radioactive fluid provided by injecting the fluid into the one or more downhole components and the one or more focused detectors are a gamma ray imaging tool.
- 39. The method of claim 33, wherein the detectable material is cooling fluid provided by pumping the fluid through the one or more downhole components and the one or more focused detectors are thermal detection tools.
- 40. The method of claim 33, wherein the detectable material is an induced EMF signal having signal variations based on the location of the one or more downhole components and the one or more focused detectors are electrical detectors.
- 41. The method of claim 33, wherein the detectable material is a smart card type transducer provided in the one or more downhole components.
- 42. The method of claim 33, wherein the detectable material is an electronic tag provided in the one or more downhole components.
- 43. The method of claim 33, wherein the detectable material is a magnetic tag provided in the one or more downhole components and the one or more focused detectors are magnetometers.
- 44. The method of claim 33, wherein the one or more focused detectors are ultrasonic imaging tools that detect variations in acoustic impedance around the one or more downhole components.
- 45. A positive alignment carrier for positively engaging a plurality of downhole components in a fixed orientation, comprising:
an adapter having having tapered keys; and a locking ring having keyways for positively engaging the tapered keys of the adapter and having tabs for positively engaging downhole components.
- 46. The positive alignment carrier of claim 45, wherein the positive engagement between the tapered keys and keyways removes manufacturing tolerances.
- 47. The positive alignment carrier of claim 45, wherein the positive engagement between the tabs and the downhole components removes manufacturing tolerances.
- 48. The positive alignment carrier of claim 47, further comprising means for securing the locking ring in positive engagement with the adapter.
- 49. The positive alignment carrier of claim 45, wherein the plurality of downhole components are perforating guns.
- 50. The positive alignment carrier of claim 45, wherein the plurality of downhole components are selected from downhole tools and downhole equipment.
- 51. The positive alignment carrier of claim 45, wherein the downhole components are selected from perforating guns, downhole tools, and downhole equipment.
- 52. A method of confirming the correct orientation of shaped charge firing, comprising:
providing a confirmation device initiated by the shaped charge detonating cord; maintaining the orientation of the confirmation device with respect to the orientation of the shaped charges; and detonating the shaped charge detonating cord to fire the shaped charges and initiate the confirmation device.
- 53. An apparatus for measuring the orientation of shaped charges upon detonation, comprising:
a confirmation device maintained in fixed relation with the orientation of the shaped charges; and a detonating cord that both fires the shaped charges and initiates the confirmation device.
- 54. The apparatus of claim 53, wherein the confirmation device comprises:
a trigger charge rigidly affixed within the confirmation device with respect to the orientation of the shaped charges; and a proof plate eccentrically weighted to maintain the proof plate at an angle relative to the orientation of the shaped charges and adapted for receipt of the trigger charge expulsion.
- 55. The apparatus of claim 53, wherein the confirmation device comprises:
a trigger charge positioned within a rotating support; a counter weight for biasing the rotating support in a direction relative to the orientation of the shaped charges; and an external housing adapted for receipt of the trigger charge expulsion.
- 56. The apparatus of claim 53, wherein the confirmation device comprises:
an external housing; a shaft within the external housing for receipt of the detonating cord therethrough; one or more guides to maintain the shaft centralized within the external housing and to enable the shaft to rotate freely; and a counterweight for biasing the shaft in a direction relative to the orientation of the shaped charge such that upon detonation of the detonating cord, pressure within the shaft rises to lock the shaft inside the one or more guides to maintain the shaft in the biased direction.
- 57. The apparatus of claim 53, wherein the confirmation device comprises:
an external housing; a rotatable and confirming weight eccentrically weighted in a direction relative to the orientation of the shaped charges, the confirming weight housing a hardened spear and having a central opening for receipt of the detonating cord; and a hardened spear housed within the confirming weight and adapted for firing into the external housing upon an increase in pressure within the central opening caused by the detonation of the detonating cord.
- 58. The apparatus of claim 53, wherein the confirmation device comprises:
a bearing housing adapted for receipt of the detonating cord therethrough; and one or more ball bearings rotatable within the housing and biased in a direction relative to the orientation of the shaped charges and adapted for indenting the bearing housing upon an increase in pressure within the housing caused by the detonation of the detonating cord.
- 59. The apparatus of claim 53, wherein the confirmation device comprises:
a bearing support adapted for receipt of the detonating cord therethrough and having at least one radial passageway extending therethrough; an eccentric weight mounted on the bearing support such that the weight is biased in a direction relative to the orientation of the shaped charges; and shrapnel that passes through the at least one radial passageway and impinges the eccentric weight upon detonation of the detonating cord.
- 60. The apparatus of claim 53, wherein the confirmation device comprises:
a bearing support adapted for receipt of the detonating cord therethrough and having at least one radial passageway extending therethrough; an eccentric weight having one or more radial passageways and mounted on the bearing support such that the weight is biased in a direction relative to the orientation of the shaped charges and the one or more radial passageways are aligned with the at least one radial passageway in the bearing support, the eccentric weight locked in orientation with the bearing support upon detonation of the detonating cord.
- 61. A perforating system, comprising:
means for mapping the desired orientation; means for orienting the perforating system; and means for confirming the correct orientation at the time of detonation.
- 62. A method of perforating, comprising:
mapping the wellbore to avoid perforating selected downhole components; orienting the perforating system; and confirming the correct orientation at the time of detonation.
- 63. An oriented perforating gun, comprising one or more eccentrically weighted gun string components.
- 64. The oriented perforating gun of claim 63, wherein the gun string components are selected from shaped charges, loading tubes, and gun carriers.
Parent Case Info
[0001] This application claims the benefit of U.S. Provisional Application No. 60/286,907, filed Apr. 27, 2001, U.S. Provisional Application No. 60/306,938, filed Jul. 20, 2001, U.S. Provisional Application No. 60/307,086, filed Jul. 20, 2001, U.S. Provisional Application No. 60/307,087, filed Jul. 20, 2001, U.S. Provisional Application No. 60/310,970, filed Aug. 8, 2001, U.S. Provisional Application No. 60/314,200, filed Aug. 22, 2001, and U.S. Provisional Application No. 60/351,252 filed Jan. 23, 2002.
Provisional Applications (7)
|
Number |
Date |
Country |
|
60286907 |
Apr 2001 |
US |
|
60306938 |
Jul 2001 |
US |
|
60307086 |
Jul 2001 |
US |
|
60307087 |
Jul 2001 |
US |
|
60310970 |
Aug 2001 |
US |
|
60314200 |
Aug 2001 |
US |
|
60351252 |
Jan 2002 |
US |