Conveyance deployment systems and methods to deploy conveyances
The disclosed embodiments include well operation evaluation systems and methods to analyze a broomstick chart of a well operation. The method includes receiving data indicative of a well operation involving deploying a conveyance to a predetermined location. The method also includes determining one or more conditions that impact deployment of the conveyance to the predetermined location. The method further includes determining a likelihood of occurrence of the one or more conditions. The method further includes determining one or more operations which, when performed by one or more tools used during the well operation, overcome the one or more conditions.
1. A computer-implemented method to deploy a conveyance during a well operation, the method comprising:
receiving data indicative of a well operation involving deploying a conveyance to a predetermined location;
determining one or more conditions that impact deployment of the conveyance to the predetermined location;
determining a likelihood of occurrence of the one or more conditions;
determining one or more operations which, when performed by one or more tools used during the well operation, overcome the one or more conditions;
determining a thrust force of a thruster, which when generating the thrust force, overcomes the one or more conditions;
actuating the thruster to generate the thrust force to overcome the one or more conditions, wherein generation of the thrust force by the thruster is an operation of the one or more operations; and
determining a number of rotations to rotate the conveyance, which when rotated the number of rotations in a first direction and rotated the number of rotations in a second and opposite direction, overcomes the one or more conditions; and
requesting a top drive that is coupled to the conveyance to rotate the conveyance the number of rotations in the first direction then rotate the conveyance the number of rotations in the second direction, wherein rotation of the conveyance the number of rotations in the first direction and then in the second direction is an operation of the one or more operations.
2. The computer-implemented method of claim 1 , further comprising providing the one or more operations to an electronic device of an operator to approve the one or more operations.
3. The computer-implemented method of claim 1 , further comprising providing the one or more operations to an electronic device operable to dynamically approve the one or more operations.
4. The computer-implemented method of claim 1 , further comprising dynamically performing the one or more operations after determining the one or more operations.
5. The computer-implemented method of claim 4 , wherein dynamically performing the one or more operations comprises dynamically performing the one or more operations in response to determining that the likelihood of occurrence is greater than a threshold.
6. The computer-implemented method of claim 1 , wherein determining the one or more operations comprises determining the one or more conditions based on the one or more conditions and the likelihood of occurrence of the one or more conditions.
7. The computer-implemented method of claim 1 , wherein the one or more conditions comprises one or more properties of the conveyance.
8. The computer-implemented method of claim 1 , wherein the one or more conditions comprise one or more downhole properties of a wellbore in which the conveyance is deployed.
9. The computer-implemented method of claim 1 , further comprising:
determining an oscillating frequency of an oscillation tool, which when oscillating at the oscillating frequency, overcomes the one or more conditions; and
requesting the oscillation tool to operate at the oscillating frequency to overcome the one or more conditions, wherein operation of the oscillation tool at the oscillation frequency is an operation of the one or more operations.
10. The computer-implemented method of claim 9 , further comprising:
determining a second oscillating frequency of a second oscillation tool, which when oscillating at the second oscillation frequency while the oscillation tool operates at the oscillating frequency, overcomes the one or more conditions; and
requesting the second oscillation tool to operate at the second oscillating frequency to overcome the one or more conditions, wherein operation of the second oscillation tool at the second oscillation frequency is an operation of the one or more operations.
11. The computer-implemented method of claim 1 , wherein the one or more operations comprise rotating the conveyance, generating a thrust force in an axial direction, and generating oscillations in lateral directions, wherein the axial direction and the lateral directions are relative to a movement direction of a drill bit coupled to the conveyance.
12. A conveyance deployment system, the system comprising:
a storage system; and
one or more processors to couple to the storage system and operable to:
receive data indicative of a well operation involving deploying a conveyance to a predetermined location;
determine one or more conditions that impact deployment of the conveyance to the predetermined location;
determine a likelihood of occurrence of the one or more conditions;
determine, based on the one or more conditions and the likelihood of occurrence of the one or more conditions, one or more operations which, when performed by one or more tools used during the well operation, overcome the one or more conditions;
determine a thrust force of a thruster, which when generating the thrust force, overcomes the one or more conditions;
actuate the thruster to generate the thrust force to overcome the one or more conditions, wherein generation of the thrust force by the thruster is an operation of the one or more operations;
determine a number of rotations to rotate the conveyance, which when rotated the number of rotations in a first direction and rotated the number of rotations in a second and opposite direction, overcomes the one or more conditions; and
request a top drive that is coupled to the conveyance to rotate the conveyance the number of rotations in the first direction then rotate the conveyance the number of rotations in the second direction, wherein rotation of the conveyance the number of rotations in the first direction and then in the second direction is an operation of the one or more operations.
13. The conveyance deployment system of claim 12 , wherein the one or more tools comprise at least one of a top drive that is coupled to the conveyance, one or more oscillation tools configured to oscillate in lateral directions relative to a movement direction of a drill bit that is coupled to the conveyance, and one or more thrusters configured to thrust the conveyance towards the drill bit and in a direction axial to the movement direction of the drill bit.
14. The system of claim 13 , wherein the one or more processors are operable to:
determine an oscillating frequency of an oscillation tool of the one or more oscillation tools, which when oscillating at the oscillating frequency, overcomes the one or more conditions; and
request the oscillation tool to operate at the oscillating frequency to overcome the one or more conditions, wherein operation of the oscillation tool at the oscillation frequency is an operation of the one or more operations.
15. A non-transitory machine-readable medium comprising instructions stored therein which, when executed by one or more processors, cause the one or more processors to perform operations comprising:
receiving data indicative of a well operation involving deploying a conveyance to a predetermined location;
determining one or more conditions that impact deployment of the conveyance to the predetermined location;
determining a likelihood of occurrence of the one or more conditions;
determining, based on the one or more conditions and the likelihood of occurrence of the one or more conditions, one or more operations which, when performed by one or more tools used during the well operation, overcome the one or more conditions;
determining a thrust force of a thruster, which when generating the thrust force, overcomes the one or more conditions;
actuating the thruster to generate the thrust force to overcome the one or more conditions, wherein generation of the thrust force by the thruster is an operation of the one or more operations;
determining a number of rotations to rotate the conveyance, which when rotated the number of rotations in a first direction and rotated the number of rotations in a second and opposite direction, overcomes the one or more conditions; and
requesting a top drive that is coupled to the conveyance to rotate the conveyance the number of rotations in the first direction then rotate the conveyance the number of rotations in the second direction, wherein rotation of the conveyance the number of rotations in the first direction and then in the second direction is an operation of the one or more operations.
16. The non-transitory machine-readable medium of claim 15 , wherein the instructions when executed by one or more processors, cause the one or more processors to perform operations comprising dynamically performing the one or more operations after determining the one or more conditions.
17. The non-transitory machine-readable medium of claim 15 , wherein the one or more tools comprise at least one of a top drive that is coupled to the conveyance, one or more oscillation tools configured to oscillate in lateral directions relative to a movement direction of a drill bit that is coupled to the conveyance, and one or more thrusters configured to thrust the conveyance towards the drill bit and in a direction axial to the movement direction of the drill bit.
18. The non-transitory machine-readable medium of claim 17 , wherein the one or more processors are operable to:
determine an oscillating frequency of an oscillation tool of the one or more oscillation tools, which when oscillating at the oscillating frequency, overcomes the one or more conditions; and
request the oscillation tool to operate at the oscillating frequency to overcome the one or more conditions, wherein operation of the oscillation tool at the oscillation frequency is an operation of the one or more operations.
19. The non-transitory machine-readable medium of claim 18 , wherein the one or more processors operable to:
determine a second oscillating frequency of a second oscillation tool, which when oscillating at the second oscillation frequency while the oscillation tool operates at the oscillating frequency, overcomes the one or more conditions; and
request the second oscillation tool to operate at the second oscillating frequency to overcome the one or more conditions, wherein operation of the second oscillation tool at the second oscillation frequency is an operation of the one or more operations.
20. The non-transitory machine-readable medium of claim 15 , wherein the one or more operations comprise rotating the conveyance, generating a thrust force in an axial direction, and generating oscillations in lateral directions, wherein the axial direction and the lateral directions are relative to a movement direction of a drill bit coupled to the conveyance.