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VIVA-Tech International Journal for Research and Innovation Volume 1, Issue 4 (2021)
ISSN(Online): 2581-7280
VIVA Institute of Technology
9th
National Conference on Role of Engineers in Nation Building – 2021 (NCRENB-2021)
C-104
www.viva-technology.org/New/IJRI
Simulation of induction motor for reference of practical
engineering
Prabjeet Singh1
, Tejas Sakpal2
, Sachin Mondkar3
1
(Department of Electrical Engineering, Viva Institute of Technology, India)
2
(Department of Electrical Engineering, Viva Institute of Technology, India)
3
(Department of Electrical Engineering, Viva Institute of Technology, India)
Abstract : This Project simulates an Induction Motor. It will be helpful for the performer in the practical,
observation of the Induction Motor in the lab, as the design motor will be the simulation of the actual motor used
for the practical and experiment. The Factors such as direction of magnetic field, magnetic field density, number
of windings, heat dissipation, temperature gradient, current flow, etc. which are not visible for the performer but
actually plays a very important role for the performance and the efficiency of the Induction Motor will be seen
digitally, graphically with the help of simulation on the platform of ANSYS software. The design and calculation
of various parameters of the induction motor are done to obtain a simulation which will be approximate to that
of the induction motor used for the practical purposes. This will not only increase the interest of the performer
but also the understandability of the practical will be more convenient as the performer will be able to gain
knowledge about various parameter which were practically impossible to view.
Keywords - ANSYS, Design, Induction Motor, MAXWELL, Simulation.
I. INTRODUCTION
The Induction motors are widely used because of their advantages such as simple and rugged design, less
required maintenance and low cost when compared to DC motors. Hence the study of induction motor in
academics holds much importance for the students in as a theoretical and numerical subject as well as practical
and experimental study performed in the laboratory.
This project will prove to be a helping hand for the performer in the laboratory, as during the session of
practical, the simulation of the same motor will be available for the performer and would be able to view many
factors such as temperature rise, magnetic field, magnitude of different forces as well as their direction, etc. with
the help of software.
While performing the practical the simulation of the motor would be seen by the viewer to understand and
gain more knowledge of the various parameters which are running inside the induction motor.
This will boost the process of understanding the practical and basic knowledge of the subject for the performer
and will gain more interest for the same.
To provide a side by side digital visual approach of the simulation of the induction motor for understanding
the parameters of the performing practical and gaining more information and knowledge about the internal process
of the induction motor.
This will include the visualization of the parameters such as increase in temperature, current flow, magnetic
flux distribution, magnitude of the magnetic field in different portions and many more.
VIVA-Tech International Journal for Research and Innovation Volume 1, Issue 4 (2021)
ISSN(Online): 2581-7280
VIVA Institute of Technology
9th
National Conference on Role of Engineers in Nation Building – 2021 (NCRENB-2021)
C-105
www.viva-technology.org/New/IJRI
II. FLOW OF PROJECT
Figure. 1. Flow Chart of Project
III. OUTPUT
Table 1. General data
Given Output Power (kW) 1.1
Rated Voltage (V) 380
Winding Connection Wye
Number of Poles 2
Given Speed (rpm) 1450
Frequency (Hz) 50
Type of Load Const. Power
Table 2. No-load operation
No-Load Stator Resistance (ohm) 4.76837
No-Load Stator Leakage Reactance (ohm) 5.68191
No-Load Rotor Resistance (ohm) 3.76872
No-Load Rotor Leakage Reactance (ohm) 260.748
No-Load Stator Phase Current (A) 1.32797
No-Load Iron-Core Loss (W) 63.6207
VIVA-Tech International Journal for Research and Innovation Volume 1, Issue 4 (2021)
ISSN(Online): 2581-7280
VIVA Institute of Technology
9th
National Conference on Role of Engineers in Nation Building – 2021 (NCRENB-2021)
C-106
www.viva-technology.org/New/IJRI
No-Load Input Power (W) 219.283
No-Load Power Factor 0.238298
No-Load Slip 0.003592
No-Load Shaft Speed (rpm) 2989.22
Table 3. Break-down operation
Break-Down Slip 0.2
Break-Down Torque (N.m) 6.61016
Break-Down Torque Ratio 1.78204
Break-Down Phase Current (A) 6.97758
Table 4. Locked-rotor operation
Locked-Rotor Torque (N.m) 3.37892
Locked-Rotor Phase Current (A) 10.4422
Locked-Rotor Torque Ratio 0.910926
Locked-Rotor Current Ratio 3.15408
Locked-Rotor Stator Resistance (ohm) 4.76837
Locked-Rotor Stator Leakage Reactance (ohm) 5.65493
Locked-Rotor Rotor Resistance (ohm) 3.93985
Locked-Rotor Rotor Leakage Reactance (ohm) 14.8773
Table 5. Losses
Copper Loss of Stator Winding (W) 156.793
Copper Loss of Rotor Winding (W) 71.4512
Iron-Core Loss (W) 54.4812
Frictional and Windage Loss (W) 103.425
Stray Loss (W) 11
Total Loss (W) 397.15
Input Power (kW) 1.49716
Output Power (kW) 1.10001
Figure. 2. efficiency vs speed
VIVA-Tech International Journal for Research and Innovation Volume 1, Issue 4 (2021)
ISSN(Online): 2581-7280
VIVA Institute of Technology
9th
National Conference on Role of Engineers in Nation Building – 2021 (NCRENB-2021)
C-107
www.viva-technology.org/New/IJRI
Figure. 3 torque vs speed
IV. CONCLUSION
This project would be a boon for all the practical performed in the lab by the students as there would be
a new and different perspective of a simulated based study on the experiments.
The side by side analysis of the induction motor can be done by viewing the internal parameters that
were not possible in the traditional approach of performing the practical including the magnetization, current flow,
magnitude of force generation, temperature rise etc. This would provide a detailed study of the induction motor
and a new way to cross check the readings of the undergoing practical of the induction motor.
Acknowledgements
We shall be failing in our duty if we will not express our sincere gratitude to all those distinguished personalities
with the help of whom we have successfully completed our project. My deep gratitude to Dr. Arun Kumar,
Principal, Viva Institute of Technology, who always been playing a great role in all round development of the
student. My deep gratitude to Prof. Bhushan save, the head of electrical department and our project coordinator
Prof. Pratik Mahale and our project guide Prof. Pratik Mahale for his valuable guidance, advice and constant
aspiration to our work, teaching and non-teaching staff for their kind support, help and assistance, which they
extended as and when required.
Last but not the least I wish to thank my friends for providing technical and moral support . I hope that this project
report would meet the high standards of all concerned people and for their continuous co-operation during the
whole period of period of project that helped us in enhancement of this project.
REFERENCES
[1] Andres Diaz, Roger Saltares, Christian Rodriguez, Roberto F. Nunez, Eduardo I. Ortiz-Rivera, Jesus Gonzalez-Llorente, “Induction
motor equivalent circuit for dynamic simulation”, IEEE International Electric Machines and Drives Conference, 2009.
[2] Nouri Ali Daw, “Comparison of lab work and simulation results for speed control of single-phase induction motor capacitor starting”,
17th International Conference on Sciences and Techniques of Automatic Control and Computer Engineering (STA), 2016.
[3] Essam E. M. Mohamed, Taiea A. Ahmed, Mahmoud A. Sayed, “Real-time simulation of position control for linear induction motor
drives using cascaded sliding mode control”, International Conference on Innovative Trends in Computer Engineering (ITCE 2018),
2018.
[4] T. Aboul-Seoud, J. Jatskevich, “Dynamic modeling of induction motor loads for transient voltage stability studies”, IEEE Electrical
Power & Energy Conference , 2008.
[5] Aiyuan Wang, “Modeling and simulation of energy saving for inverter-fed induction motor”, International Conference on Automation
and Logistics Qingdao , 2008.
[6] Qianxiang Li, Jingtao Hu, “Simulation Model of Induction Motor Based on LabVIEW”, Third International Conference on Intelligent
Networks and Intelligent Systems, 2010.
[7] Amit Kumar Singh, Praveen Kumar; C Upendra Reddy, Kashyap Prabhakar, “Simulation of direct torque control of induction motor
using Simulink, simplorer and Maxwell software”, IEEE International Transportation Electrification Conference (ITEC), 2015.
[8] Hui Zhu, Ximei Liu, Nikos E. Mastorakis, “The Simulation Analysis of Motor Startup Based on the ETAP Platform”, International
Conference on Mathematics and Computers in Sciences and in Industry, 2014.
[9] Nikolay Matanov, “Study of the impact of induction motors starting on the supply voltage”, 16th Conference on Electrical Machines,
Drives and Power Systems (ELMA), 2019.
VIVA-Tech International Journal for Research and Innovation Volume 1, Issue 4 (2021)
ISSN(Online): 2581-7280
VIVA Institute of Technology
9th
National Conference on Role of Engineers in Nation Building – 2021 (NCRENB-2021)
C-108
www.viva-technology.org/New/IJRI
[10] Salah A. Abdel Maksoud,Tatyana V. Chestyunina, “Simulation and Experimental Increased Temperature Effect on Induction Motor
Parameters”, XIV International Scientific-Technical Conference on Actual Problems of Electronics Instrument Engineering (APEIE),
2018.
[11] A.K. Sawhney, Electrical Machine Design - Edition 6 (Dhanpat Rai & Co., 2014).

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Simulation of induction motor for reference of practical engineering

  • 1. VIVA-Tech International Journal for Research and Innovation Volume 1, Issue 4 (2021) ISSN(Online): 2581-7280 VIVA Institute of Technology 9th National Conference on Role of Engineers in Nation Building – 2021 (NCRENB-2021) C-104 www.viva-technology.org/New/IJRI Simulation of induction motor for reference of practical engineering Prabjeet Singh1 , Tejas Sakpal2 , Sachin Mondkar3 1 (Department of Electrical Engineering, Viva Institute of Technology, India) 2 (Department of Electrical Engineering, Viva Institute of Technology, India) 3 (Department of Electrical Engineering, Viva Institute of Technology, India) Abstract : This Project simulates an Induction Motor. It will be helpful for the performer in the practical, observation of the Induction Motor in the lab, as the design motor will be the simulation of the actual motor used for the practical and experiment. The Factors such as direction of magnetic field, magnetic field density, number of windings, heat dissipation, temperature gradient, current flow, etc. which are not visible for the performer but actually plays a very important role for the performance and the efficiency of the Induction Motor will be seen digitally, graphically with the help of simulation on the platform of ANSYS software. The design and calculation of various parameters of the induction motor are done to obtain a simulation which will be approximate to that of the induction motor used for the practical purposes. This will not only increase the interest of the performer but also the understandability of the practical will be more convenient as the performer will be able to gain knowledge about various parameter which were practically impossible to view. Keywords - ANSYS, Design, Induction Motor, MAXWELL, Simulation. I. INTRODUCTION The Induction motors are widely used because of their advantages such as simple and rugged design, less required maintenance and low cost when compared to DC motors. Hence the study of induction motor in academics holds much importance for the students in as a theoretical and numerical subject as well as practical and experimental study performed in the laboratory. This project will prove to be a helping hand for the performer in the laboratory, as during the session of practical, the simulation of the same motor will be available for the performer and would be able to view many factors such as temperature rise, magnetic field, magnitude of different forces as well as their direction, etc. with the help of software. While performing the practical the simulation of the motor would be seen by the viewer to understand and gain more knowledge of the various parameters which are running inside the induction motor. This will boost the process of understanding the practical and basic knowledge of the subject for the performer and will gain more interest for the same. To provide a side by side digital visual approach of the simulation of the induction motor for understanding the parameters of the performing practical and gaining more information and knowledge about the internal process of the induction motor. This will include the visualization of the parameters such as increase in temperature, current flow, magnetic flux distribution, magnitude of the magnetic field in different portions and many more.
  • 2. VIVA-Tech International Journal for Research and Innovation Volume 1, Issue 4 (2021) ISSN(Online): 2581-7280 VIVA Institute of Technology 9th National Conference on Role of Engineers in Nation Building – 2021 (NCRENB-2021) C-105 www.viva-technology.org/New/IJRI II. FLOW OF PROJECT Figure. 1. Flow Chart of Project III. OUTPUT Table 1. General data Given Output Power (kW) 1.1 Rated Voltage (V) 380 Winding Connection Wye Number of Poles 2 Given Speed (rpm) 1450 Frequency (Hz) 50 Type of Load Const. Power Table 2. No-load operation No-Load Stator Resistance (ohm) 4.76837 No-Load Stator Leakage Reactance (ohm) 5.68191 No-Load Rotor Resistance (ohm) 3.76872 No-Load Rotor Leakage Reactance (ohm) 260.748 No-Load Stator Phase Current (A) 1.32797 No-Load Iron-Core Loss (W) 63.6207
  • 3. VIVA-Tech International Journal for Research and Innovation Volume 1, Issue 4 (2021) ISSN(Online): 2581-7280 VIVA Institute of Technology 9th National Conference on Role of Engineers in Nation Building – 2021 (NCRENB-2021) C-106 www.viva-technology.org/New/IJRI No-Load Input Power (W) 219.283 No-Load Power Factor 0.238298 No-Load Slip 0.003592 No-Load Shaft Speed (rpm) 2989.22 Table 3. Break-down operation Break-Down Slip 0.2 Break-Down Torque (N.m) 6.61016 Break-Down Torque Ratio 1.78204 Break-Down Phase Current (A) 6.97758 Table 4. Locked-rotor operation Locked-Rotor Torque (N.m) 3.37892 Locked-Rotor Phase Current (A) 10.4422 Locked-Rotor Torque Ratio 0.910926 Locked-Rotor Current Ratio 3.15408 Locked-Rotor Stator Resistance (ohm) 4.76837 Locked-Rotor Stator Leakage Reactance (ohm) 5.65493 Locked-Rotor Rotor Resistance (ohm) 3.93985 Locked-Rotor Rotor Leakage Reactance (ohm) 14.8773 Table 5. Losses Copper Loss of Stator Winding (W) 156.793 Copper Loss of Rotor Winding (W) 71.4512 Iron-Core Loss (W) 54.4812 Frictional and Windage Loss (W) 103.425 Stray Loss (W) 11 Total Loss (W) 397.15 Input Power (kW) 1.49716 Output Power (kW) 1.10001 Figure. 2. efficiency vs speed
  • 4. VIVA-Tech International Journal for Research and Innovation Volume 1, Issue 4 (2021) ISSN(Online): 2581-7280 VIVA Institute of Technology 9th National Conference on Role of Engineers in Nation Building – 2021 (NCRENB-2021) C-107 www.viva-technology.org/New/IJRI Figure. 3 torque vs speed IV. CONCLUSION This project would be a boon for all the practical performed in the lab by the students as there would be a new and different perspective of a simulated based study on the experiments. The side by side analysis of the induction motor can be done by viewing the internal parameters that were not possible in the traditional approach of performing the practical including the magnetization, current flow, magnitude of force generation, temperature rise etc. This would provide a detailed study of the induction motor and a new way to cross check the readings of the undergoing practical of the induction motor. Acknowledgements We shall be failing in our duty if we will not express our sincere gratitude to all those distinguished personalities with the help of whom we have successfully completed our project. My deep gratitude to Dr. Arun Kumar, Principal, Viva Institute of Technology, who always been playing a great role in all round development of the student. My deep gratitude to Prof. Bhushan save, the head of electrical department and our project coordinator Prof. Pratik Mahale and our project guide Prof. Pratik Mahale for his valuable guidance, advice and constant aspiration to our work, teaching and non-teaching staff for their kind support, help and assistance, which they extended as and when required. Last but not the least I wish to thank my friends for providing technical and moral support . I hope that this project report would meet the high standards of all concerned people and for their continuous co-operation during the whole period of period of project that helped us in enhancement of this project. REFERENCES [1] Andres Diaz, Roger Saltares, Christian Rodriguez, Roberto F. Nunez, Eduardo I. Ortiz-Rivera, Jesus Gonzalez-Llorente, “Induction motor equivalent circuit for dynamic simulation”, IEEE International Electric Machines and Drives Conference, 2009. [2] Nouri Ali Daw, “Comparison of lab work and simulation results for speed control of single-phase induction motor capacitor starting”, 17th International Conference on Sciences and Techniques of Automatic Control and Computer Engineering (STA), 2016. [3] Essam E. M. Mohamed, Taiea A. Ahmed, Mahmoud A. Sayed, “Real-time simulation of position control for linear induction motor drives using cascaded sliding mode control”, International Conference on Innovative Trends in Computer Engineering (ITCE 2018), 2018. [4] T. Aboul-Seoud, J. Jatskevich, “Dynamic modeling of induction motor loads for transient voltage stability studies”, IEEE Electrical Power & Energy Conference , 2008. [5] Aiyuan Wang, “Modeling and simulation of energy saving for inverter-fed induction motor”, International Conference on Automation and Logistics Qingdao , 2008. [6] Qianxiang Li, Jingtao Hu, “Simulation Model of Induction Motor Based on LabVIEW”, Third International Conference on Intelligent Networks and Intelligent Systems, 2010. [7] Amit Kumar Singh, Praveen Kumar; C Upendra Reddy, Kashyap Prabhakar, “Simulation of direct torque control of induction motor using Simulink, simplorer and Maxwell software”, IEEE International Transportation Electrification Conference (ITEC), 2015. [8] Hui Zhu, Ximei Liu, Nikos E. Mastorakis, “The Simulation Analysis of Motor Startup Based on the ETAP Platform”, International Conference on Mathematics and Computers in Sciences and in Industry, 2014. [9] Nikolay Matanov, “Study of the impact of induction motors starting on the supply voltage”, 16th Conference on Electrical Machines, Drives and Power Systems (ELMA), 2019.
  • 5. VIVA-Tech International Journal for Research and Innovation Volume 1, Issue 4 (2021) ISSN(Online): 2581-7280 VIVA Institute of Technology 9th National Conference on Role of Engineers in Nation Building – 2021 (NCRENB-2021) C-108 www.viva-technology.org/New/IJRI [10] Salah A. Abdel Maksoud,Tatyana V. Chestyunina, “Simulation and Experimental Increased Temperature Effect on Induction Motor Parameters”, XIV International Scientific-Technical Conference on Actual Problems of Electronics Instrument Engineering (APEIE), 2018. [11] A.K. Sawhney, Electrical Machine Design - Edition 6 (Dhanpat Rai & Co., 2014).