Temperature Analysis of Three-Phase 15kW Switched Reluctance Motor Based on Motor_CAD ANSYS Software

Main Article Content

Hussein Ali Bardan
https://orcid.org/0009-0008-6299-2750
Abdalrahman Ataalla
Aymen Jalil Abdulelah
Ahmed Hikmat Saeed
Munther Naif Thiyab

Abstract

An electrical motor that utilizes the principle of magnetic reluctance to generate motion is called a Switched Reluctance Motor (SRM). It has a simple structure with a stator and rotor having salient poles and winding only in the stator. SRMs don’t have permanent magnets on the rotor, unlike traditional motors. This paper introduces the temperature analysis of a three-phase, 15kW, 18/12 stator/rotor poles SRM using RMXprt (analytical software, and Motor_CAD software, which is based on LPTN (Lumped Parameter Thermal Network). Cooling strategies, such as water, fins, and spray, are examined to mitigate temperature rise. The analysis encompasses varying load conditions, which are also considered, allowing for a comprehensive evaluation of their temperature effects on the SRM. Motor losses, such as mechanical losses, copper losses, and core losses, are considered the source of SRM heat, which was determined by RMXprt software. Furthermore, this paper presents the efficiency analysis of SRM by changing the number of phases. The temperature analysis by Motor_CAD presents the distribution of temperature on various parts of the motor, such as housing, shaft, rotor yoke, rotor poles, stator yoke, stator poles, and stator winding. The results of this analysis aim to contribute valuable information for optimizing the design and operation of SRM, particularly in terms of thermal management, efficiency, and overall reliability.

Metrics

Metrics Loading ...

Article Details

Section
Articles

Plaudit

References

Bilgin B, Jiang WJ, Emadi A. Switched Reluctance Motor Drives: Fundamentals to Applications. Boca Raton, FL; 2018. DOI: https://doi.org/10.1201/9780203729991

Arbab N, Wang W, Lin C, Hearron J, Fahimi B. Thermal Modeling and Analysis of a Double-Stator Switched Reluctance Motor. IEEE Transactions on Energy Conversion 2015; 30(3):1209-1217. DOI: https://doi.org/10.1109/TEC.2015.2424400

Elhomdy E, Liu Z, Li Z. Thermal and Mechanical Analysis of a 72/48 Switched Reluctance Motor for Low-Speed Direct-Drive Mining Applications. Applied Sciences 2019; 9(13):2722. DOI: https://doi.org/10.3390/app9132722

Pavan A, Sathyanarayanan N, Rajesh K, Lenin NC, Sivakumar R. Thermal Investigation of a Switched Reluctance Motor. International Journal of Electrical Engineering 2015; 8(2):115-121.

Bieńkowski K, Szulborski M, Sebastian Ł, Kolimas Ł, Cichecki H. Parameterized 2D Field Model of a Switched Reluctance Motor. Electricity 2021; 2(4):590-613. DOI: https://doi.org/10.3390/electricity2040034

Chiu HC, Jang JH, Yan WM, Shiao RB. Thermal Performance Analysis of a 30 kW Switched Reluctance Motor. 2017; 114:145-154. DOI: https://doi.org/10.1016/j.ijheatmasstransfer.2017.06.057

Huang JL, Xuan Y, Zhang L, Liu TG. Analysis on the Design and Temperature Field of Switched Reluctance Motor for Electric Vehicle. Journal of Physics: Conference Series 2021; 1777(1):12001. DOI: https://doi.org/10.1088/1742-6596/1777/1/012001

Jang JH, Chiu HC, Yan WM, Tsai MC, Wang PY. Numerical Study on Electromagnetics and Thermal Cooling of a Switched Reluctance Motor. Case Studies in Thermal Engineering 2015; 6:16-27. DOI: https://doi.org/10.1016/j.csite.2015.05.001

Reis RRC, Kimpara MLM, Pinto JOP, Fahimi B. Multi-Physics Simulation of 6/4 Switched Reluctance Motor by Finite Element Method. Eletrônica de Potência SOBRAEP 2021; 26(1):9-18. DOI: https://doi.org/10.18618/REP.2021.1.0004

Kasprzak M, Jiang JW, Bilgin B, Emadi A. Thermal Analysis of a Three-Phase 24/16 Switched Reluctance Machine Used in HEVs. IEEE Energy Conversion Congress and Exposition 2016:1-7. DOI: https://doi.org/10.1109/ECCE.2016.7855510

Vijayakumar K, Basanth A, Karthikeyan JR, Sivakumar V, Balamurugan N, Sundaram CS. Influence of Iron Powder Core on the Switched Reluctance Motor Performance Enhancement. Materials Today: Proceedings 2020; 33:2255-2263. DOI: https://doi.org/10.1016/j.matpr.2020.04.082

Nasab PS, Moallem M, Chaharsoghi ES, Narvaez CC, Fahimi B. Predicting Temperature Profile on the Surface of a Switched Reluctance Motor Using a Fast and Accurate Magneto-Thermal Model. IEEE Transactions on Energy Conversion 2020; 35(3):1394-1401. DOI: https://doi.org/10.1109/TEC.2020.2974789

Abunike EC, Okoro OI, Davidson IE. Thermal Analysis of an Optimized Switched Reluctance Motor for Enhanced Performance. IEEE PES/IAS PowerAfrica 2021:1-5. DOI: https://doi.org/10.1109/PowerAfrica52236.2021.9543275

Yan W, Chen H, Liu Y, Chan C. Iron Loss and Temperature Analysis of Switched Reluctance Motor for Electric Vehicles. IET Electric Power Applications 2020; 14(11):2119-2127. DOI: https://doi.org/10.1049/iet-epa.2020.0166

Sun Y, Zhang B, Yuan Y, Yang F. Thermal Characteristics of Switched Reluctance Motor Under Different Working Conditions. Progress in Electromagnetics Research M 2018; 74:11-23. DOI: https://doi.org/10.2528/PIERM18071301

Kartigeyan J, Ramaswamy M. Effect of Material Properties on Core Loss in Switched Reluctance Motor Using Non-Oriented Electrical Steels. Journal of Magnetics 2017; 22(1):93-99. DOI: https://doi.org/10.4283/JMAG.2017.22.1.093

Kocan S, Rafajdus P. Dynamic Model of High Speed Switched Reluctance Motor for Automotive Applications. Transportation Research Procedia 2019; 40:302-309. DOI: https://doi.org/10.1016/j.trpro.2019.07.045

Kocan S, Rafajdus P, Kovacik M. Investigation of Rotor Parameters of High Speed Switched Reluctance Motor for Automotive Application. Transportation Research Procedia 2021; 55:1003-1010. DOI: https://doi.org/10.1016/j.trpro.2021.07.071

Al-Farhan SK, Yehya OSAD. Improving the Switched Reluctance Motor Performance in Electric Vehicles Based on Changing the Parameters of the Geometry-A Review. Al-Rafidain Engineering Journal 2023; 28(2):94-112. DOI: https://doi.org/10.33899/rengj.2023.139978.1252

Alattar MS, Alsammak ANBA. Survey Paper on Six Phase Induction Motor Drive. Al-Rafidain Engineering Journal 2020; 25(1):24-31. DOI: https://doi.org/10.33899/rengj.2020.126535.1009

Abbas LF, Ahmed REA, Mahmmoud ON, Gaeid K, Mokhlis HB. Single Phasing Effects on the Behavior of Three-Phase Induction Motor. Tikrit Journal of Engineering Sciences 2023; 30(4):11-18. DOI: https://doi.org/10.25130/tjes.30.4.2

Mahmmoud ON, Gaeid KS, Nashi AF, Siddiqui KM. Induction Motor Speed Control with Solar Cell Using MPPT Algorithm by Incremental Conductance Method. Tikrit Journal of Engineering Sciences 2020; 27(3):8-16. DOI: https://doi.org/10.25130/tjes.27.3.02

Rahman MS, Lukman GF, Hieu PT, Jeong KI, Ahn JW. Optimization and Characteristics Analysis of High Torque Density 12/8 Switched Reluctance Motor Using Metaheuristic Gray Wolf Optimization Algorithm. Energies 2021; 14(7):2013. DOI: https://doi.org/10.3390/en14072013

Çengel YA, Ghajar AJ. Heat and Mass Transfer Fundamentals and Applications. McGraw-Hill Education; New York: 2015.

Plešinger J. Application of the ANSYS Development Environment for the Design of a 15 kW Switched Reluctance Motor. České Vysoké Učení Technické v Praze; 2017.

Similar Articles

You may also start an advanced similarity search for this article.