Numerical Simulation of Nonlinear Processes in the “Thruster—Downhole Motor—Bit” System While Extended Reach Well Drilling
Abstract
:1. Introduction
2. Materials and Methods
2.1. Determination of the Parameters of the Bit Operation
- —number of bit nozzles, units.
- —diameter of bit nozzles, m.
- —specific moment on the bit, N · mm/N.
- —bit diameter, mm.
- —bit flushing unit flow rate (assumed to be 0.68).
- —drilling mud density, kg/m3.
- —drilling fluid consumption, L/s.
- —total area of flush nozzles of the bit, m2.
2.2. Determination of the Parameters of the Hydraulic Downhole Engine
- —shaft torque, N · m.
- —differential pressure during idle operation (for this downhole motor, = 482,633 Pa), Pa.
2.3. Determination of the Parameters of the Hydraulic Thrusting Device
- —total area of holes in the diaphragm, m2.
- —area of the inner section of the adapter, m2.
- —the number of holes in the diaphragm, units.
- —diameter of holes in the diaphragm, m.
- —outer diameter of the choke spear, m.
- —inner diameter of the upper adapter, m.
- —consumption of drilling mud, L/s.
- —drilling mud density, kg/m3.
- , —flow through the diaphragm and the bushing, respectively, L/s.
- , —the area of the internal section of the diaphragm and bushing, respectively, m2.
2.4. Drawing a Dynamic Model of the System “Hydraulic Thrusting Device—Downhole Motor—Bit”
- —WOB created by the hydraulic thrusting device, N.
- —friction force inside the hydraulic thrusting device, N.
- , —hydrostatic and hydrodynamic pressure, respectively, Pa.
- —area of ledges on the hydraulic thrusting device piston, m2.
- 1.
- The torque on the bit for the WOB generated by the hydraulic thrusting device is determined by:
- 2.
- The pressure drop in the hydraulic downhole motor is calculated according to (2).
- 3.
- The WOB created by a hydraulic thrusting device due to a change in pressure drop is calculated by:
- 4.
- Repetition of the calculation. The iterative process continues until the change in the WOB between the ith and i + 1 iterations is less than 200 N.
3. Results
- 1.
- The dependence of the pressure drop in the system on the flow rate of the drilling mud (Figure 10).
- 2.
- The dependence of WOB on differential pressure (Figure 11).
- 3.
- The dependence of the WOB on the flow rate of the drilling mud (Figure 12).
- 4.
- The dependence of the WOB on the zenith angle (Figure 13).
- 5.
- The dependence of the WOB on the bit aggressiveness (Figure 14).
- —area of the perpendicular platform, m2.
- —area of the site inclined at an angle of 45° to the flow of drilling mud, m2.
- —average value of pressure acting on two sites, Pa.
4. Discussion
5. Conclusions
- -
- The expediency of using hydraulic thrusting devices in the practice of drilling wells with the possibility of forecasting and the operational regulation of the parameters of the operation of the “Hydraulic Thrusting Device—Downhole Motor—Bit” system is confirmed. The calculation performed shows the ability of the device to create the necessary WOB when drilling with a PDC bit in medium rock, amounting to 72.7 kN.
- -
- A mathematical model was built based on the method of simple iterations and implemented in the Python environment, allowing for predicting the operating modes of a hydraulic thrusting device together with a downhole motor and a PDC bit. The results of the mathematical modeling show high convergence.
- -
- A mathematical calculation and computer simulation showed that the hydraulic thrusting device with a flow rate of drilling fluid in the range of 18–26 L/s is capable of creating a WOB in the range of 43 to 89 kN. The dependence of the WOB and drilling fluid flow rate is described by the equation shown in Figure 12. In addition, the simulation showed the versatility of the design of the hydraulic thrusting device, i.e., replacing the nozzle on the choke spear allows for a change in the WOB created by the thruster.
- -
- Based on the results of the modeling, a smooth increase in the WOB from 68.1 kN to 72.7 kN from the moment the mud pumps are turned on is theoretically substantiated and proved. The reason for this is a gradual decrease in the reactive moment on the bit. These dependencies are described in Equations (21) and (22), from which the values of the pressure drop of 2.22 MPa and the moment of 578 N · m were obtained.
- -
- The achieved results make it possible to determine the optimal drilling parameters when using a hydraulic thrusting device. When working directly in the field, it is assumed that there is software that provides the monitoring of the parameters of the device in a system with a downhole motor and a bit. Of particular importance is the monitoring of the pressure drop. If the positions of the protrusions on the instruments at the wellhead coincide, a rapid increase in the pressure drop by 2–3 times will be noticeable, characterizing the approach of the piston to one of the extreme positions. In this case, the field engineer should use the developed algorithm to determine the optimal operating parameters in changing geological and technological conditions.
- -
- To reproduce the described mathematical model, it is necessary to have the characteristics of the hydraulic thrusting device used, the downhole motor, and the bit, as well as the initial conditions of the experiment (torque on the bit, the WOB without taking into account the pressure of the hydraulic thrusting device, and the initial pressure drop in the system with the downhole motor immobilized). Further, it is necessary to apply the method of simple iterations for Equations (2), (21), and (22) until the changes in the drilling parameters become insignificant. Lastly, it is recommended to validate the obtained results in the AnSYS software environment.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Initial Data | Designation | Value |
---|---|---|
Parameters related to the drilling process | ||
Drilling mud consumption, L/s | Q | 26 |
Drilling mud density, kg/m3 | 1100 | |
Inclination angle, ° | 75 | |
Parameters of hydraulic thrusting device | ||
Weight of hydraulic thrusting device, kg | 457 | |
Hydraulic thrusting device piston diameter, mm | 170 | |
Choke spear diameter, mm | 55 | |
Piston stroke length, mm | 1600 | |
Inner diameter of the choke spear nozzle, mm | 17 | |
Number of diaphragm holes, units | 12 | |
Diameter of diaphragm openings, mm | 20 | |
Upper adapter inner diameter, mm | 127 | |
Piston projection surface area, cm2 | 30.8 | |
Downhole motor parameters | ||
Downhole motor weight, kg | 1000 | |
Downhole motor pressure drop, kPa | 482.6 | |
Bit parameters | ||
Bit weight, kg | 65 | |
Bit diameter, mm | 215.9 | |
Number of bit nozzles, units | 6 | |
Bit jet nozzles diameter, mm | 12 |
Iteration Number i | Torque M, N · m | WOB, kN | WOB Increment ΔP, N |
---|---|---|---|
1 | 411 | 68.1 | 13,654 |
2 | 515 | 71.5 | 3424 |
3 | 541 | 72.4 | 859 |
4 | 547 | 72.7 | 215 |
5 | 549 | 72.7 | 54 |
Parameter | Unit of Measurement | Value |
---|---|---|
Torque | 578 | |
Pressure drop | MPa | 2.22 |
WOB | kN | 72.7 |
Drilling mud density | kg/m3 | 1100 |
Drilling mud consumption | L/s | 20 |
Inclination angle | grad. | 75 |
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Kunshin, A.A.; Buslaev, G.V.; Reich, M.; Ulyanov, D.S.; Sidorkin, D.I. Numerical Simulation of Nonlinear Processes in the “Thruster—Downhole Motor—Bit” System While Extended Reach Well Drilling. Energies 2023, 16, 3759. https://doi.org/10.3390/en16093759
Kunshin AA, Buslaev GV, Reich M, Ulyanov DS, Sidorkin DI. Numerical Simulation of Nonlinear Processes in the “Thruster—Downhole Motor—Bit” System While Extended Reach Well Drilling. Energies. 2023; 16(9):3759. https://doi.org/10.3390/en16093759
Chicago/Turabian StyleKunshin, Andrey A., George V. Buslaev, Matthias Reich, Dmitriy S. Ulyanov, and Dmitriy I. Sidorkin. 2023. "Numerical Simulation of Nonlinear Processes in the “Thruster—Downhole Motor—Bit” System While Extended Reach Well Drilling" Energies 16, no. 9: 3759. https://doi.org/10.3390/en16093759
APA StyleKunshin, A. A., Buslaev, G. V., Reich, M., Ulyanov, D. S., & Sidorkin, D. I. (2023). Numerical Simulation of Nonlinear Processes in the “Thruster—Downhole Motor—Bit” System While Extended Reach Well Drilling. Energies, 16(9), 3759. https://doi.org/10.3390/en16093759