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  4. For Voltage-Source Inverters of PMSM Drives, Fault Diagnosis for Multi-Switches Based on Small Low Frequency Data
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Category: MTech Power Electronics Projects
By MTech Projects
MTech Projects
16.Nov
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For Voltage-Source Inverters of PMSM Drives, Fault Diagnosis for Multi-Switches Based on Small Low Frequency Data

PROJECT TITLE :

Multi-Switches Fault Diagnosis Based on Small Low Frequency Data for Voltage-Source Inverters of PMSM Drives

ABSTRACT:

Using small low-frequency data for inverter failure diagnosis of permanent magnet synchronous machine drives requires additional hardware and has a negative impact on diagnostic accuracy. There is a lot of superfluous work and corresponding system memory wasted, which raises the hardware requirements and implementation difficulties as well as affects practicability. A unique multi-switches fault diagnosis algorithm is given to improve this problem, to make the design, debugging, and implementation of fault diagnostic more convenient and at cheap cost, and further to increase the practicability of the algorithm. Small low-frequency data can be obtained from the controller's feedback signals using a second low-frequency processing method, as shown in Figure 1. The most important information about switch states can be found in these low-frequency data points. These low-frequency data are also effectively adjusted by the single extremum normalisation approach, which is based on the symmetry properties of various state data. The asymmetry of an inverter's fault state can be well preserved using these processed data. For the third step, the primary fault components and features are recovered from the processed low-frequency data's distortion and envelope change. It is then utilised in conjunction with the retrieved features to create an intelligent categorization system. The design of the structure of the hidden layer network is simplified, and the network training time is extremely quick, unlike the standard neural network. Since this network is so easy to troubleshoot, it is a great benefit. The suggested fault diagnosis algorithm is more straightforward and less expensive to implement for multi-switch fault diagnosis than the existing algorithms, and the usefulness of the fault diagnosis algorithm is demonstrated by an experiment.

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  • Inverter Power Control Based on DC-link Voltage Regulation for IPMSM Drives without Electrolytic Capacitors - 2017
  • Decoupled Current Control with Synchronous Frequency Damping for MMC Considering Sub module Capacitor Voltage Ripple - 2017
  • Interleaved SEPIC Power Factor Pre-Regulator Using Coupled Inductors in Discontinuous Conduction Mode with Wide Output Voltage - 2016
  • Isolated Boost DC-DC Converter with Three Switches - 2017
  • Start-up Scheme for a Three-Phase Isolated Full-Bridge Boost PFC Converter with the Passive Fly back Auxiliary Circuit - 2017
  • A Single-Stage Two-Switch PFC Rectifier with Wide Output Voltage Range and Automatic AC Ripple Power Decoupling - 2017
  • Enhanced Instantaneous Power Theory for Control of Grid Connected Voltage Sourced Converters under Unbalanced Conditions - 2017
  • A Class of Single-Stage High-Frequency AC-Link Converters That Is Extremely Reliable and Efficient
  • A 12-Sector Space Vector Switching Scheme for Performance Improvement of Matrix Converter Based DTC of IM Drive - 2015
  • Variable-Frequency Phase Shift Modulation of a Dual Active Bridge Converter - 2015
Previous article: Design of a Non-Ideal Power Grid Power Decoupling Strategy for a Single-Phase Grid-Connected Inverter Design of a Non-Ideal Power Grid Power Decoupling Strategy for a Single-Phase Grid-Connected Inverter Next article: Soft-Switching Modulation for High-Frequency Three-Phase Bi-Directional ACDC Converters Using Critical-Mode-Based Soft-Switching Soft-Switching Modulation for High-Frequency Three-Phase Bi-Directional ACDC Converters Using Critical-Mode-Based Soft-Switching
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