Research on New Drilling Downlink Communication Based on Anisotropic Magnetoresistive Technology
Abstract
:1. Introduction
2. Downlink Communication and Modeling of Information While Drilling Based on Anisotropic Magnetoresistance Detection
- Drill string belongs to the metal conductor, its conduction current is much greater than the displacement current, the displacement current can be ignored
- The conductivity of electrode and drill string is much higher than that of rock soil and drilling fluid. The surface is approximately equal potential, which conforms to the boundary conditions of the electrostatic field
- The medium in the rock, and soil layer remains unchanged
- The magnetoresistance sensor is close to the drill string
- Because the drill string is usually several thousand meters long, the drill string is approximately regarded as a thin line
- The carrier signal with the communication frequency not higher than 30 kHz can be regarded as the direct current (DC) power supply.
2.1. Mathematical Model of Downhole Drill String Current Distribution
2.2. Mathematical Model of Magnetic Field Distribution around Downhole Drill String
3. Experimental Work
3.1. Design of Information Downlink Communication System While Drilling Based on Anisotropic Magnetoresistance Detection
3.2. Construction of Experimental Platform
3.3. Experimental Design
4. Experimental Test and Analysis
4.1. Overall Test and Analysis of the System
4.2. Test and Analysis of the Factors Affecting the Quality of Download
4.2.1. Test under Different Transmitting Voltage
4.2.2. Measurement under Different Distances(d) between Electrodes
4.2.3. Test at Different Temperatures
5. Conclusions
- In order to study the structure of the underground wireless communication system, the system structure model is established; at the same time, the current distribution model and magnetic field distribution model of different positions of downhole power drill string are established based on the anisotropic magnetoresistance detection principle and downhole electric current field theory. The design of the laboratory prototype of the downlink communication system based on anisotropic magnetoresistance is realized
- To verify the feasibility of the proposed information downlink communication technology while drilling, a ground experimental platform simulating the downhole communication state is built, and the principle prototype is tested. The test results show that when the communication distance is 9 cm and the data transmission rate is 1 kbps, the maximum BER of the simulation system based on anisotropic magnetoresistance detection is
- For the purpose of further analyzing the influence factors of downlink communication quality, the emission voltage, the distance between electrodes, and the working temperature are tested and analyzed. The experimental data show that the transmission voltage and the temperature of the test environment have great impacts on the experimental BER, which provides a reference for further reducing the BER and ideas for optimizing the technology of downlink information communication while drilling
- Although the system has completed the theoretical research and realized the small-scale model verification, it is still in the laboratory application stage and has certain limitations, such as: no study on the effect of rock properties. In the future work, the in-situ verification experiment of complex downhole conditions will be carried out to further enhance its application value.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Ge, L.; Zhang, L.; Li, H.; Xiao, X.; He, Y.; Yang, C. Research on New Drilling Downlink Communication Based on Anisotropic Magnetoresistive Technology. Energies 2022, 15, 4358. https://doi.org/10.3390/en15124358
Ge L, Zhang L, Li H, Xiao X, He Y, Yang C. Research on New Drilling Downlink Communication Based on Anisotropic Magnetoresistive Technology. Energies. 2022; 15(12):4358. https://doi.org/10.3390/en15124358
Chicago/Turabian StyleGe, Liang, Le Zhang, Hao Li, Xiaoting Xiao, Yang He, and Caixia Yang. 2022. "Research on New Drilling Downlink Communication Based on Anisotropic Magnetoresistive Technology" Energies 15, no. 12: 4358. https://doi.org/10.3390/en15124358
APA StyleGe, L., Zhang, L., Li, H., Xiao, X., He, Y., & Yang, C. (2022). Research on New Drilling Downlink Communication Based on Anisotropic Magnetoresistive Technology. Energies, 15(12), 4358. https://doi.org/10.3390/en15124358