Claims
- 1. A method of drilling and completing multilateral wells in an underbalanced condition from a principal wellbore, comprising:
- a) providing an overall system, which comprises:
- i. a first drilling/completion subsystem, further comprising a drill string assembly having at least a drill bit and guidance system at an end of the drill string assembly;
- ii. a containment subsystem for maintaining an underbalanced state within the wellbore, the containment system further comprising pressure control means such as a BOP stack, rotating BOP, or snubbing unit;
- iii. a separation subsystem for separating hydrocarbons that have been co-mingled with drilling fluids as a hydrocarbon/drilling fluid mixture is returned to a surface of the wellbore, so that the hydrocarbons may be collected and separated from other fluids in the system;
- b) lowering a carrier string into the wellbore, the carrier string having a deflection member on its lower end;
- c) orienting the deflection member in a pre-selected direction;
- d) lowering a segmented drill string assembly having a drill bit on its end into the carrier string and drilling a first multilateral well off of the deflection member in the preselected direction;
- e) simultaneously circulating fluid down the bore of the segmented drill string assembly and an annulus between the carrier string and a wall of the borehole, of sufficient weight to provide an underbalanced state without the fluid entering the formation;
- f) retrieving the drill string assembly and reorienting the deflection member to drill at least a second multilateral well, while maintaining the first multilateral well as a live well; and
- g) returning to the surface any hydrocarbons received from any of the multilateral wells through an annulus between the carrier string and the segmented drill string assembly co-mingled with the circulated fluid.
- 2. The system and method in claim 1, wherein the containment subsystem maintains the first multilateral well as a live well so that other multilateral wells may be drilled and completed while the well is producing.
- 3. The system and method in claim 1, wherein the separation subsystem separates and stores the hydrocarbons apart from the other fluids carried to the surface.
- 4. The system and method in claim 1, further comprising at least a dual string drilling system having a segmented drill string assembly within a carrier string so that fluids are introduced into the wellbore in a first annulus of the drill string and in an annulus between the carrier string and a wall of the well bore, and the hydrocarbons and fluid mixture is returned to the surface for separation through an annulus between the drill string assembly and the carrier string.
- 5. The system and method in claim 1, wherein the principal wellbore may be a vertical wellbore, a horizontal wellbore or a laterally oriented wellbore.
- 6. The system and method in claim 1, wherein the principal wellbore may be a cased or an open wellbore.
- 7. The system and method in claim 1, wherein the fluids pumped down the drill string annulus and the annulus between the carrier string and the wellbore may comprise nitrogen gas, air, or a combination of nitrogen and water, for use in the drilling or completion operation.
- 8. The system and method in claim 1, wherein the drill string assembly comprises jointed drill pipe rotated by a power swivel, top drive, or rotary table, and a drill bit rotated by a mud motor or a combination of the top drive, power swivel or rotary table and the mud motor.
- 9. The system and method in claim 1, wherein the fluid flowing down a drill string annulus and an annulus between the carrier string and the wall of the wellbore, returns to the rig floor through the annulus between the drill pipe and the carrier string, and comprises a mixture of drilling fluids and hydrocarbons.
- 10. The system and method in claim 1, wherein the underbalanced state is established in the drilling subsystem by circulating fluid down the annulus between the carrier string and the wall of the wellbore, of sufficient weight to keep the well under control, and comingling with produced fluid and hydrocarbons, and returned up an annulus between the drill string and a carrier string, so that the drill string assembly may be pulled from a carrier string while maintaining the well as a live producing well in the carrier string annulus, allowing other multilateral wells to be drilled.
- 11. The system and method in claim 10, wherein the co-mingled fluid returning to a rig floor through the carrier string annulus is routed to a separation means to separate the drilling fluid mixture from the liquid hydrocarbons.
- 12. The system and method in claim 1, wherein the drilling subsystem may further comprise coil tubing, and a drill bit at the end of the coiled tubing bottom hole assembly, a deflection member at the end of a carrier string, and a means for rotating the drill bit during drilling operations.
- 13. The system and method in claim 1, wherein the separation subsystem further comprises a choke manifold, a separator for separating the fluids into drilling fluids and hydrocarbons, and a series of tanks for storing the separated hydrocarbons during completion of the well.
- 14. The system and method in claim 1, wherein the step of orienting the deflection member may be accomplished by utilizing internal orienting devices, such as gyro, steering tool, or MWD, or by some form of an external self-orienting device located in the primary casing string, that would orient the deflecting device, such as a mule shoe, or a latch coupling device.
- 15. A method of drilling and completing multilateral wells in an underbalanced state, from a principal wellbore, utilizing a dual string configuration, the method comprising the following steps:
- a) providing the principal wellbore;
- b) lowering a carrier string into the wellbore, the carrier string having a deflection member on its lower end;
- c) orienting the deflection member in a pre-selected direction;
- d) lowering a segmented drill string assembly having a drill bit on its end into the carrier string for drilling a first multilateral well off of the deflection member in the pre-selected direction;
- e) simultaneously circulating fluid down the bore of the segmented drill string assembly and an annulus between the carrier string and a wall of the borehole, of sufficient weight to provide an underbalanced state without fluid entering a formation;
- f) retrieving the drill string assembly and reorienting the deflection member to drill at least a second multilateral well, while maintaining the first multilateral well as a live well; and
- g) returning to a surface of the wellbore any hydrocarbons received from the first multilateral well through an annulus between the carrier string and the segmented drill string co-mingled with the circulated fluid, while drilling a second multilateral well by repeating steps b) through e).
- 16. The method in claims 15, after the first multilateral well is drilled, further comprising the step of retrieving the drill string assembly and reorienting the deflection member and carrier string to drill a second multilateral well, while maintaining the first multilateral well as a live well so that other multilateral wells may be drilled and completed while the well is producing.
- 17. A method of drilling and completing multilateral wells in an underbalanced state, from a principal wellbore, utilizing a dual string configuration, the method comprising the following steps:
- a) providing the principal wellbore;
- b) lowering a carrier string into the wellbore, the carrier string having a deflection member on its lower end;
- c) orienting the deflection member in a pre-selected direction;
- d) lowering a coiled tubing assembly having a drill bit on its end into the carrier string for drilling a first multilateral well off of the deflection member in the pre-selected direction;
- e) simultaneously circulating fluid down a bore of the coiled tubing assembly and an annulus between the coiled tubing and the carrier string of sufficient weight to provide an underbalanced state without fluid entering the formation; and
- f) retrieving the coiled tubing assembly and reorienting the deflection member to drill at least a second multilateral well, while maintaining the first multilateral well as a live well; and
- g) returning to a surface of the wellbore any hydrocarbons received from the first multilateral well through an annulus between the carrier string and the wellbore co-mingled with the circulated fluid, while drilling a second multilateral well by repeating steps b) through e).
- 18. A system of drilling or completing multilateral wells from a principal wellbore utilizing underbalanced drilling, comprising:
- a) a first drilling/completion subsystem, further comprising at least a drill bit on an end of segmented drill pipe, the drill bit driven by a power means;
- b) a containment subsystem for maintaining an underbalanced state within the wellbore, the containment system further comprising at least pressure controls such as a rotating BOP stack or snubbing unit;
- c) a separation subsystem for separating hydrocarbons that have been comingled with drilling fluids as the hydrocarbon/drilling fluid mixture is returned to a surface of the wellbore, so that the hydrocarbons may be collected and separated from other fluids in the system;
- d) the overall system further comprising at least a dual string drilling system having a drill string within a carrier string providing further that fluids are introduced into the wellbore through the drill string, and an annulus between the carrier string and the wellbore, and a hydrocarbon and fluid mixture is returned to the surface for separation through an annulus between the carrier string and the drill string.
- 19. The method in claim 18, wherein an upper end of the carrier string extends from the deflection member at least to the wellhead.
CROSS-REFERENCE TO RELATED APPLICATIONS
This is a continuation-in-part application of co-pending U.S. patent application Ser. No. 08/595,594, filed Feb. 1, 1996, incorporated herein by reference.
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US Referenced Citations (2)
Non-Patent Literature Citations (1)
Entry |
Rotating control head applications increasing, Adam T. Bourgoyne, Jr., Oil & Gas Journal, Oct. 9, 1995. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
595594 |
Feb 1996 |
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