IP Library › Granted Patent US 12,467,352
Granted Patent B2
US 12,467,352 · App. 17/445,578 · Granted Nov 11, 2025

Calibration of drillstring weight for friction factor estimation

Inventor: Robello Samuel (Cypress, TX)
Assignee: Landmark Graphics Corporation
E21B47/007E21B44/02
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Quick Facts
Patent No.
US 12,467,352
App. No.
17/445,578
Granted
Nov 11, 2025
Kind
B2
Abstract

A method comprises determining a value of at least one oppositional force for a drillstring at multiple depths in the wellbore, determining a value of hook load for the drillstring at the multiple depths based on the value of the at least one opposition force at the multiple depths, and determining a calibrated drillstring weight based on a change in the value of the hook load over the multiple depths of the wellbore. The change in the value of the hook load can be determined based on a change in a measured hook load and/or a change in an estimated hook load. From the calibrated drillstring weight, an adjusted estimated hook load can be determined.

Claims (71)

1 . A method comprising:

determining a value of at least one oppositional force for a drillstring at multiple depths in a wellbore;

determining a measured hook load for the drillstring at the multiple depths in the wellbore;

determining an estimated hook load for the drillstring at the multiple depths in the wellbore;

adjusting the measured hook load and the estimated hook load based on the value of the at least one oppositional force to determine an adjusted measured hook load and an adjusted estimated hook load;

determining an estimated drill string weight for the drillstring based on the adjusted estimated hook load;

determining that a fulcrum point has occurred in the adjusted measured hook load;

determining a first slope of the adjusted measured hook load between the fulcrum point and a previous fulcrum point, and a second slope of the adjusted estimated hook load between the fulcrum point and the previous fulcrum point;

determining a real time calibrated drillstring weight using a relationship between the estimated drillstring weight, the first slope, and the second slope;

determining a real time friction factor using the real time calibrated drillstring weight; and

controlling one or more drilling operations performed on the wellbore using the real time friction factor.

2 . The method of claim 1 ,

wherein determining the estimated hook load for the drillstring comprises determining a value calculated based on a set of manufacturer supplied weights of a set of components that make up the drillstring.

3 . The method of claim 1 , wherein determining the measured hook load comprises measuring the hook load at a hook or another drillstring support at the multiple depths in the wellbore.

4 . The method of claim 1 , wherein determining the real time calibrated drillstring weight comprises determining the real time calibrated drillstring weight as REAL TIME CALIBRATED DRILLSTRING WEIGHT=DRILLST RING WEIGHT *

SLOPE OF ESTIMATED HOOK LOAD/SLOPE OF MEASURED HOOK LOAD.

5 . The method of claim 1 , further comprising: determining a value of an adjusted estimated hook load for the drillstring at the multiple depths in the wellbore based on the real time calibrated drillstring weight.

6 . The method of claim 5 , wherein determining the value of the adjusted estimated hook load comprises determining the value of the adjusted estimated hook load based on the real time calibrated drillstring weight and the value of the at least one oppositional force at the multiple depths in the wellbore.

7 . The method of claim 1 , wherein the at least one oppositional force comprises at least one of buckling stability force, buoyancy force, piston force, hydrodynamic force, or pump off force.

8 . The method of claim 1 , wherein determining the real time calibrated drillstring weight comprises: determining a ratio between an inner drillstring weight and an outer drillstring weight; and determining a calibrated inner drillstring weight and a calibrated outer drillstring weight based on the real time calibrated drillstring weight and the ratio between the inner drillstring weight and the outer drillstring weight.

9 . The method of claim 8 , further comprising:

determining whether the calibrated inner drillstring weight and the calibrated outer drillstring weight satisfy realism criteria;

based on the determination that the calibrated inner drillstring weight and the calibrated outer drillstring weight do not satisfy the realism criteria, adjusting the ratio between the inner drillstring weight and the outer drillstring weight; and

determining a calibrated inner drillstring weight and a calibrated outer drillstring weight based on the real time calibrated drillstring weight and the adjusted ratio between the inner drillstring weight and the outer drillstring weight.

10 . One or more non-transitory machine-readable media comprising program code for drillstring weight calibration, the program code to:

determine a value of at least one oppositional force for a drillstring at multiple depths in a wellbore;

determine a measured hook load for the drillstring at the multiple depths in the wellbore;

determine an estimated hook load for the drillstring at the multiple depths in the wellbore;

adjust the measured hook load and the estimated hook load based on the value of the at least one oppositional force to determine an adjusted measured hook load and adjusted estimated hook load;

determine an estimated drill string weight for the drillstring based on the adjusted estimated hook load;

determine that a fulcrum point has occurred in the adjusted measured hook load;

determine a first slope of the adjusted measured hook load between the fulcrum point and a previous fulcrum point, and a second slope of the adjusted estimated hook load between the fulcrum point and the previous fulcrum point;

determine a real time calibrated drillstring weight using a relationship between the estimated drillstring weight, the first slope, and the second slope;

determine a real time friction factor using the real time calibrated drillstring weight; and

control one or more drilling operations performed on the wellbore using the real time friction factor.

11 . The one or more non-transitory machine-readable media of claim 10 , wherein program code to determine the value of hook load for the drillstring further comprises program code to:

determine the estimated hook load for the drillstring comprises determining a value calculated based on a set of manufacturer supplied weights of a set of components that make up the drillstring.

12 . The one or more non-transitory machine-readable media of claim 10 , wherein program code to determine the value of the measured hook load further comprises program code to receive a measurement value of the hook load at a hook or another drillstring support.

13 . The one or more non-transitory machine-readable media of claim 10 , further comprising program code to:

determine a value of an adjusted estimated hook load for the drillstring at the multiple depths in the wellbore based on the real time calibrated drillstring weight.

14 . The one or more non-transitory machine-readable media of claim 10 , wherein program code to determine the real time calibrated drillstring weight comprises program code to: determine a ratio between an inner drillstring weight and an outer drillstring weight; and determine a calibrated inner drillstring weight and a calibrated outer drillstring weight based on the real time calibrated drillstring weight and the ratio between the inner drillstring weight and the outer drillstring weight.

15 . An apparatus comprising:

a drillstring including a drill bit, the drillstring configured to be coupled to a drilling rig and configured to perform one or more drilling operations within a wellbore;

a computer including a processor and a memory coupled to the processor, the memory comprising a non-transitory machine-readable medium having program code stored thereon and executable by the processor to cause the apparatus to:

determine a value of at least one oppositional force for the drillstring at multiple depths in a wellbore;

determine a measured hook load for the drillstring at the multiple depths in the wellbore;

determine an estimated hook load for the drillstring at the multiple depths in the wellbore;

adjust the measured hook load and the estimated hook load based on the value of the at least one oppositional force to determine an adjusted measured hook load and adjusted estimated hook load;

determine an estimated drill string weight for the drillstring based on the adjusted estimated hook load;

determine that a fulcrum point has occurred in the adjusted measured hook load;

determine a first slope of the adjusted measured hook load between the fulcrum point and a previous fulcrum point, and a second slope of the adjusted estimated hook load between the fulcrum point and the previous fulcrum point;

determine a real time calibrated drillstring weight using a relationship between the estimated drillstring weight, the first slope, and the second slope;

determine a real time friction factor using the real time calibrated drillstring weight; and

control one or more drilling operations performed on the wellbore using the real time friction factor.

16 . The method claim 1 , further comprising:

determining that a drilling fluid is flowing in the wellbore;

calculating a pump off force for the drillstring at a current depth of the drillstring within the wellbore; and

including the calculated pump off force as at least a part of the value of the at least one oppositional force used to determine the adjusted measured hook load and the adjusted estimated hook load.

17 . The method of claim 1 , further comprising:

determining that the drillstring is tapered;

calculating a piston force for the drillstring at a current depth of the drillstring within the wellbore; and

including the calculated piston force as at least a part of the value of the at least one oppositional force used to determine the adjusted measured hook load and the adjusted estimated hook load.

18 . The one or more non-transitory machine-readable media of claim 10 , wherein the program code further comprises code to:

determine that a drilling fluid is flowing in the wellbore;

calculate a pump off force for the drillstring at a current depth of the drillstring within the wellbore; and

include the calculated pump off force as at least a part of the value of the at least one oppositional force used to determine the adjusted measured hook load and the adjusted estimated hook load.

19 . The apparatus of claim 15 , wherein the program code further comprises program code executable by the processor to cause the apparatus to:

determine that the drillstring is tapered;

calculate a piston force for the drillstring at a current depth of the drillstring within the wellbore; and

include the calculated piston force as at least a part of the value of the at least one oppositional force used to determine the adjusted measured hook load and the adjusted estimated hook load.

20 . The apparatus of claim 15 , wherein the at least one oppositional force comprises at least one of buckling stability force, buoyancy force, piston force, hydrodynamic force, and pump off force.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 20, 2021
From: SAMUEL, ROBELLO
To: LANDMARK GRAPHICS CORPORATION
Reel/Frame 057245/0582 →
Continuity (1)
Related Publication 20230059507A1 · Feb 23, 2023
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