Sliding mode direct torque control of three phase induction machine applicable in electric vehicles

 

Table Of Contents


Chapter ONE

INTRODUCTION

  • 1.1Introduction
  • 1.2Background of the Study
  • 1.3Problem Statement
  • 1.4Objective of Study
  • 1.5Limitation of Study
  • 1.6Scope of Study
  • 1.7Significance of Study
  • 1.8Structure of the Research
  • 1.9Definition of Terms

Chapter TWO

LITERATURE REVIEW

  • 2.1Overview of Direct Torque Control
  • 2.2Induction Machine Fundamentals
  • 2.3Electric Vehicle Applications
  • 2.4Sliding Mode Control Theory
  • 2.5Comparison of Control Techniques
  • 2.6Advances in Induction Machine Control
  • 2.7Torque Control Strategies
  • 2.8Sensorless Control Methods
  • 2.9Energy Efficiency in Electric Vehicles
  • 2.10Future Trends in Electric Vehicle Technologies

Chapter THREE

RESEARCH METHODOLOGY

  • 3.1Research Design
  • 3.2Selection of Induction Machine Parameters
  • 3.3Simulation Software and Tools
  • 3.4Data Collection Methods
  • 3.5Experimental Setup
  • 3.6Control Algorithm Implementation
  • 3.7Performance Evaluation Metrics
  • 3.8Statistical Analysis Techniques

Chapter FOUR

DATA PRESENTATION AND ANALYSIS

  • 4.1Analysis of Simulation Results
  • 4.2Comparison of Experimental Data
  • 4.3Impact of Control Parameters
  • 4.4Efficiency and Performance Evaluation
  • 4.5Fault Tolerance and Robustness
  • 4.6Optimization Strategies
  • 4.7Environmental Implications
  • 4.8Future Research Directions

Chapter FIVE

SUMMARY, CONCLUSION AND RECOMMENDATIONS

  • 5.1Summary of Findings
  • 5.2Conclusions
  • 5.3Recommendations for Future Work
  • 5.4Contribution to the Field
  • 5.5Practical Implications
  • 5.6Reflection on Research Process
  • 5.7Limitations of the Study
  • 5.8Final Remarks

Project Abstract

<p> The electric vehicle relies on electric motors for propulsion. In this report, the case was made for the induction motor as a suitable candidate for this tractive application. Being able to control the electric motor invariably implies efficient control of the vehicle. This work reports the six-step operation of the constant volts/hertz (V/f) control technique for voltage fed induction motor drives. Mathematical equations supporting the principle is discussed and the drive is modelled and implemented in the open loop with results. The line and phase voltage outputs of the laboratory-implemented v/f drive is presented. The modelled results show the behaviour of the v/f drive under varying load conditions. The reference speed is set at 1800rpm while the actual speed only follows the reference speed until torque is applied at 0, 2, 3 and 4 seconds with torque values 0, –11, 11 and 0 Nm respectively. At 2 seconds, the actual speed changes (increases) from the reference speed slightly and reduces slightly when the positive torque is applied, but the speed does not totally match the reference speed until the torque is completely withdrawn. The Direct Torque Control (DTC) scheme is analysed mathematically and the principle of Variable Structure Systems (VSS) theory is applied to the DTC for robustness and tolerance to disturbances. DTC simulation results are presented, the system is run at steady state conditions, at time t = 0.4s, a load-torque disturbance causes it to reduce to one-half of its initial value. The objective of this drive scheme is to keep the load speed constant at its initial value. This causes a sharp increase in speed but it returns to the set reference speed in about 0.4s. This shows the control efficiency and robustness of the DTC scheme as compared with the v/f control method. <br></p>

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