학술논문

Research on noise suppression method of underwater propulsion motor based on periodic-phase-variation hybrid spread spectrum modulation
Document Type
Conference
Source
2023 IEEE 18th Conference on Industrial Electronics and Applications (ICIEA) Industrial Electronics and Applications (ICIEA), 2023 IEEE 18th Conference on. :920-924 Aug, 2023
Subject
Communication, Networking and Broadcast Technologies
Components, Circuits, Devices and Systems
Power, Energy and Industry Applications
Robotics and Control Systems
Signal Processing and Analysis
Harmonics suppression
Time-frequency analysis
Torque
Electromagnetic interference
Bandwidth
Electromagnetic launching
Harmonic analysis
Underwater Propulsion Motor
Noise Suppression
Periodic Phase Variation Hybrid Spread Spectrum Modulation
Language
ISSN
2158-2297
Abstract
In this paper, a periodic-phase-variation hybrid spread spectrum modulation (PPVH-SSM) method is proposed to suppress the electromagnetic noise interference of underwater propulsion motors (UPM). Given the problem that the traditional spread spectrum modulation method is difficult to select parameters due to the contradiction between the spread spectrum bandwidth and the degree of harmonic suppression, resulting in the problem that the method cannot effectively suppress noise interference, the author first analyzes the disadvantages of the traditional method, that is, it cannot make full use of the frequency points within the given bandwidth to disperse harmonic energy. Secondly, the harmonic mathematical model after the proposed PPVH-SSM method is deduced through mathematical formulas. It is theoretically proved that the technique has more harmonic frequency points in the specified frequency band, and the reason why the new method can have a larger bandwidth under the premise of the same harmonic suppression degree is analyzed and proved. In the Matlab/Simulink simulation process, the phase-locked method is used to ensure the stability of the phase transition. Finally, the effectiveness and superiority of the proposed method in suppressing the electromagnetic noise interference of the UPM are verified and compared.