Design and Output Performance Model of Turbodrill Blade Used in a Slim Borehole
Abstract
:1. Introduction
2. Hydrodynamic Model of a Turbodrill Blade
2.1. Hypothesis of the Model
2.2. Inertial Force Field
2.3. Energy Transformation Model
3. Design of the Turbodrill
3.1. Design Process of the Turbodrill Blade
3.2. Structure Design of the Turbodrill Blade
3.3. Turbine Blade Profile Design
4. Numerical Simulation and Test
4.1. CFD Model of the Turbodrill Blade
4.2. Meshing and Boundary Conditions
4.3. Test Principle of the Turbodrill
5. Result and Discussion
5.1. Simulation of a Single-Stage Turbodrill Blade
5.2. Simulation of the Multistage Turbodrill Blade
5.3. Comparison with the Experimental Results
6. Conclusions
- (1)
- A Φ89 mm turbodrill blade was developed for high-temperature geothermal drilling of granite formations using a Bezier curve design. The single- and multi-blade turbine simulation was used to achieve the optimization and correction of the turbine profile. The relevant manufacturing and assembly work were also completed.
- (2)
- The output characteristics of a turbine blade model were established based on the gravitational and rotation centrifugal field, using the Bernoulli equation and the momentum theorem. The traditional model was modified, and the accuracy of turbine performance prediction was improved.
- (3)
- The turbodrill has 200 stages. The braking torque can reach 341 N·m. The maximum speed is approximately 3800 r/min, and the maximum power is approximately 38 kW. The rated speed is approximately 1800 r/min, and the pressure drop is less than 8 MPa, consistent with the theoretical design and meeting the design requirements. Based on the multi-stage simulation and optimization interval theory, the entire range of fluctuation of the optimum operating actual speed is 900–1800 r/min, and the torque fluctuates in the range of 200–300 N·m. The power fluctuates over the range of 25–38 KW, which reaches the level of the highest efficiency turbine, i.e., it is the best working range.
- (4)
- The multi-stage simulation was used to predict the turbodrill output performance by comparing the single-stage turbine simulation and the entire real analysis; the multi-stage simulation was found to be closer to the truth, i.e., it is more accurate than the single-stage simulation. The multi-stage simulation is a suitable method for predicting the performance parameters.
Acknowledgments
Author Contributions
Conflicts of Interest
Nomenclature
, , and | unit mass gravity of the x-axis, y-axis and z-axis, respectively, |
angular velocity of the revolving turbodrill blade, | |
radius of the point A, | |
potential function produced by mass, | |
height of point A, | |
pressure of point A, | |
flow rate of the drilling mud with respect to the turbodrill blade, | |
and | energy of the drilling mud at the inlet and outlet of the first-stage turbodrill stator, respectively |
p0 and p1 | pressure of the drilling mud at the inlet and outlet of the first-stage turbodrill stator, respectively, Pa |
c0 and c1 | absolute speed of the drilling mud at the inlet and outlet of the first-stage turbodrill stator, respectively, m/s |
z0 and z1 | height of the drilling mud at the inlet and outlet of the first-stage turbodrill stator, respectively, |
mechanical energy loss of the first-stage turbodrill stator, | |
energy of the drilling mud at the outlet of the first-stage turbodrill rotor | |
pressure of the drilling mud at the outlet of the first-stage turbodrill rotor, Pa | |
absolute speed of the drilling mud at outlet of the first-stage turbodrill rotor, m/s | |
height of the drilling mud at outlet of the first-stage turbodrill rotor, | |
mechanical energy loss of the first-stage turbodrill rotor, | |
series of the multi-stage turbodrill blades | |
total mechanical energy loss of the turbodrill | |
total pressure loss of turbodrill, | |
absolute speed of the drilling mud at the outlet of the stage turbodrill rotor, m/s | |
height of the drilling mud at outlet of the stage turbodrill rotor, | |
diameter of the rotor shaft, mm | |
torque on the rotor shaft, N·mm | |
safety factor of the shaft materials | |
allowable twisting stress, MPa | |
weight on the bit, | |
reduction factor according to the flexibility of the shaft | |
allowable stress for the strength calculation, | |
WOB | weight on bit |
ROP | rate of penetration |
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Items/Unit | Value | Items/Unit | Value |
---|---|---|---|
Outside diameter/mm | 89 | Pressure drop/MPa | 6–8 |
Working flow/L·s−1 | 6–7 | Rated torque/N·m | 350 |
Rotation speed/r·min−1 | 1800 | Drilling fluid density/kg·m−3 | 1000–2000 |
Grid | Number of Nodes | Number of Units | Number of Hexahedrons |
---|---|---|---|
Single flow passage of stator | 133,325 | 121,920 | 121,920 |
Full flow passage of stator | 133,325 × 16 | 121,920 × 16 | 121,920 × 16 |
Single flow passage of rotor | 133,325 | 121,920 | 121,920 |
Full flow passage of rotor | 133,325 × 16 | 121,920 × 16 | 121,920 × 16 |
Flow passage of single stage multi-blade | 1,333,250 × 32 | 1,219,200 × 32 | 1,219,200 × 32 |
Flow passage of multi-stage multi-blade | 1,333,250 × 160 | 1,219,200 × 160 | 1,219,200 × 160 |
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Wang, Y.; Xia, B.; Wang, Z.; Wang, L.; Zhou, Q. Design and Output Performance Model of Turbodrill Blade Used in a Slim Borehole. Energies 2016, 9, 1035. https://doi.org/10.3390/en9121035
Wang Y, Xia B, Wang Z, Wang L, Zhou Q. Design and Output Performance Model of Turbodrill Blade Used in a Slim Borehole. Energies. 2016; 9(12):1035. https://doi.org/10.3390/en9121035
Chicago/Turabian StyleWang, Yu, Bairu Xia, Zhiqiao Wang, Liguang Wang, and Qin Zhou. 2016. "Design and Output Performance Model of Turbodrill Blade Used in a Slim Borehole" Energies 9, no. 12: 1035. https://doi.org/10.3390/en9121035
APA StyleWang, Y., Xia, B., Wang, Z., Wang, L., & Zhou, Q. (2016). Design and Output Performance Model of Turbodrill Blade Used in a Slim Borehole. Energies, 9(12), 1035. https://doi.org/10.3390/en9121035