Dynamic Toolface Estimation for Rotary Steerable Drilling System
Abstract
:1. Introduction
2. Preliminaries
2.1. Toolface Estimation from Tri-Axial Accelerometer
2.2. Toolface Estimation from Gyro
2.3. Complementary Filter
3. Toolface Estimation Method
3.1. Dual-Accelerometer Toolface Measurement
3.2. Toolface Adaptive Nonlinear CF Scheme
3.2.1. Frequency-Domain Characteristics of Nonlinear CF
3.2.2. Adaptive Nonlinear CF Scheme
- Step 1:
- Initialization: Acquire data from dual-accelerometer in steady state, calculate by Equation (15), let and ;
- Step 2:
- Start estimation: Calculate and by Equation (15) and Equation (16), respectively;
- Step 3:
- Calculate and by Equation (22), then obtain from Equation (23);
- Step 4:
- Calculate by Equation (24), GOTO step 2 for next instant.
4. Experiments and Results
4.1. DPRSS Prototype for Experiments
4.2. Dual-Accelerometer Toolface Measurement Test
4.3. Dynamic Toolface Estimator Performance Test
4.3.1. Stick-Slip Dynamic Toolface Estimator Test and Parameters Tuning
4.3.2. Multi Processes Dynamic Toolface Estimator Test
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Parameters | Accelerometer | Gyro |
---|---|---|
Range | ±8 g | ±1200°/s |
Sensitivity | 1024 counts/g | 0.83 mV/°/s |
Bandwidth | 400 Hz | 40 Hz |
Sources | Dual-Accelerometer | Gyro | Proposed CF |
---|---|---|---|
RMSE (°) | 18.022 | 11.6306 | 1.0069 |
Sources | Dual-Accelerometer | Gyro | Proposed CF |
---|---|---|---|
RMSE (°) | 61.032 | 5.872 | 3.017 |
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Wang, W.; Geng, Y.; Wang, K.; Si, J.; Fiaux, J.D.O. Dynamic Toolface Estimation for Rotary Steerable Drilling System. Sensors 2018, 18, 2944. https://doi.org/10.3390/s18092944
Wang W, Geng Y, Wang K, Si J, Fiaux JDO. Dynamic Toolface Estimation for Rotary Steerable Drilling System. Sensors. 2018; 18(9):2944. https://doi.org/10.3390/s18092944
Chicago/Turabian StyleWang, Weiliang, Yanfeng Geng, Kai Wang, Jieru Si, and Joice De Oliveira Fiaux. 2018. "Dynamic Toolface Estimation for Rotary Steerable Drilling System" Sensors 18, no. 9: 2944. https://doi.org/10.3390/s18092944