Development of Monitoring and Forecasting Technology Energy Efficiency of Well Drilling Using Mechanical Specific Energy
Abstract
:1. Introduction
2. Materials and Methods
2.1. Development of Algorithms for Association of Axial and Transverse Vibrations While Drilling
- The height of the bit indenter—h, the damping coefficient that combines the action of dissipative forces and controls the rate of damping of vibrations, the Young’s modulus of the string, the outer and inner diameters of the DS, its mass, length of the BHA, and the frequency of shocks generated at the bottom are set.
- The initial conditions are assumed as follows: the DS is lowered to the bottom, the rock is destroyed, and the first wave is simultaneously generated, which makes the following contribution to the effective acceleration of gravity acting on the DS, Equation (8).
- For the time in the specified range, the generation of new waves is calculated. New waves can be generated in two ways: (1) the wave, propagating at the speed of sound in steel, reaches the top of the BHA. The wave is reflected, which can be represented as an instantaneous damping of the incident wave with the generation of a secondary reflected wave in the opposite direction; (2) the DS is again lowered to the bottom, generating a wave when the indenter contacts the bottom rock.
- A graph of the total impact of waves is built for a given time, taking into account their attenuation, the decrement of which can be expressed as , where T—period, moreover , and .
- m—the mass of the BHA, kg.
- Ac—contact area proportional to the indenter area, m2.
- ω—the angular velocity of rotation of the bit, rad/s.
- I—the moment of inertia of the BHA, kg × m2.
- —cutting depth for rock breaking, m.
- n—rate of rotation, rpm.
2.2. Experimental Research of Longitudinal and Transverse Deformation of Rock Samples
2.3. Simulation of the Dynamics of Directional Indention to Determine the Cutting Depth of the Drilling of Rocks
- —Young’s modulus of steel and rock, GPa.
- —density of steel and rock, respectively, kg/m3.
2.4. Analysis of the Drilling Process Performance
- N—number of rotations.
- Mb—torque on bit, N·m.
- M—torque on rotor, N·m.
- —bit sliding coefficient, units.
- —drill string sliding coefficient of friction, units.
- —zenith angle, rad.
- E—energy spent on rock destruction, J.
- V—volume of destroyed rock, m3.
- Sb—borehole cross-sectional area, m2.
- —Actual WOB at the bottom hole, N.
- —torque at the bottom hole, N × m.
- —bit sliding coefficient of friction, units.
- —drill string sliding coefficient of friction, units.
- —zenith angle, rad.
2.5. Algorithm for Predicting and Monitoring the Impulse and Determining the Most Efficient WOB While Drilling Directional Wells
- y—the predicted value of the model.
- x—the real value.
- n—number of values.
3. Results of Research and Analysis of Developed Algorithms
- The shock impulse is calculated according to (21):
- The shock time is determined by (23):
- The average magnitude of the shock reaction according to (24):
4. Discussion
5. Conclusions
- The necessity and expediency of monitoring and predicting BHA shock impulse, which is the basis for the formation of an energy-efficient WOB during well drilling, were theoretically substantiated and scientifically confirmed.
- Based on experimental studies of the physical and mechanical properties of rocks with a hardness of 60 to 170 MPa, a range of longitudinal and transverse deformations was established, which makes it possible to estimate the penetration depth of the PDC bit cutting structure for the determination of the BHA impact impulse and its prediction using the lithological and stratigraphic data of the well.
- A mathematical model was developed that enabled us to determine effective PDC WOB, represented by the introduced BHA unloading capacity coefficient, based on the discussed energy-efficient rock destruction theory.
- Based on the proposed algorithm for determination of the minimum resultant vibration acceleration of the BHA and the cut depth of the rock, which ensure the creation of its optimal shock impulse, a technology for monitoring and predicting energy-efficient PDC WOB was developed.
6. Patents
- Kunshin, A.A.; Starikov, V.V.; Buslaev G.V. Program for predicting possible complications while drilling in real time based on artificial neural networks and calculating the mechanical specific energy. Russia. Certificate No. 2021665628, 30 September 2021.
- Kunshin, A.A.; Dvoynikov, M.V. Program for determining the required WOB while drilling wells with vibration acceleration of the BHA. Russia. Certificate No. 2020616213, 11 June 2020.
- Kunshin, A.A.; Dvoynikov, M.V.; Polyansky, S.D. Program for determining vibration acceleration with damped axial vibrations of the drill string. Russia. Certificate No. 2020615753, 1 June 2020.
- Kunshin, A.A.; Sidorov, D.A.; Buslaev, G.V.; Dvoynikov, M.V. Downhole shock absorber. Russia. Patent No. 2749705 C1, 16 June 2021.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Name of the Rock | Poisson’s Ratio | Differential Strength, MPa |
---|---|---|
Shale | 0.11 | 19.6 |
Limestone | 0.32 | 50.0 |
Siltstone | 0.35 | 107.22 |
Granite | 0.27 | 166.0 |
Silty sandstone | 0.28 | 172.4 |
Quartz | 0.15 | 215.7 |
Type of the Rock | k, Units | β, Units |
---|---|---|
Shale | 0.05–0.1 | 110–170 |
Limestone | 0.03–0.06 | 300–900 |
Siltstone | 0.04–0.08 | 170–650 |
Granite | 0.03–0.05 | 300–550 |
Silty sandstone | 0.05–0.08 | 170–420 |
Quartz | 0.06–0.08 | 170–300 |
Interval, m | 950–1000 | 1020–1100 | |
---|---|---|---|
Parameter | |||
WOB, kN | 31 | 101.4 | |
Well diameter, mm | 215.9 | 215.9 | |
ROP, m/h | 16.8 | 51.0 | |
Rate of rotation, rpm | 140.8 | 193.0 | |
Torque, kN × m | 8470.0 | 8360.0 | |
Zenith angle, degrees | 59.0 | 60.0 | |
Friction coefficient «bit-rock» | 0.2 | 0.2 | |
Friction coefficient «DS-wellbore» | 0.45 | 0.45 | |
Strength strongest compression of sandstone, MPa | 115.0 | ||
Sandstone density, kg/m3 | 2400.0 | ||
Steel density, kg/m3 | 7800.0 | ||
Young’s modulus (sandstone), GPa | 25.0 | ||
Young’s modulus (steel), GPa | 200.0 |
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Kunshin, A.; Dvoynikov, M.; Timashev, E.; Starikov, V. Development of Monitoring and Forecasting Technology Energy Efficiency of Well Drilling Using Mechanical Specific Energy. Energies 2022, 15, 7408. https://doi.org/10.3390/en15197408
Kunshin A, Dvoynikov M, Timashev E, Starikov V. Development of Monitoring and Forecasting Technology Energy Efficiency of Well Drilling Using Mechanical Specific Energy. Energies. 2022; 15(19):7408. https://doi.org/10.3390/en15197408
Chicago/Turabian StyleKunshin, Andrey, Mikhail Dvoynikov, Eduard Timashev, and Vitaly Starikov. 2022. "Development of Monitoring and Forecasting Technology Energy Efficiency of Well Drilling Using Mechanical Specific Energy" Energies 15, no. 19: 7408. https://doi.org/10.3390/en15197408
APA StyleKunshin, A., Dvoynikov, M., Timashev, E., & Starikov, V. (2022). Development of Monitoring and Forecasting Technology Energy Efficiency of Well Drilling Using Mechanical Specific Energy. Energies, 15(19), 7408. https://doi.org/10.3390/en15197408