This work is licensed under the Creative Commons Attribution 4.0 International License.
Aishwarya, V. and Jayanand, B. (2016). Estimation and control of sensorless brushless DC motor drive using extended Kalman filter. In: 2016 International Conference on Circuit, Power and Computing Technologies (ICCPCT), Nagercoil, India, 2016.AishwaryaV.JayanandB.2016Estimation and control of sensorless brushless DC motor drive using extended Kalman filterIn:2016 International Conference on Circuit, Power and Computing Technologies (ICCPCT)Nagercoil, India2016Search in Google Scholar
Alberto, A. P., Michael, F. and Chunjiang, Q. (2009). Particle swarm optimization for PID tuning of a BLDC motor. In: 2009 IEEE International Conference on Systems. Man and Cybernetics, San Antonio, TX, USA, 11–14 October 2009, pp. 3917–3922.AlbertoA. P.MichaelF.ChunjiangQ.2009Particle swarm optimization for PID tuning of a BLDC motorIn:2009 IEEE International Conference on Systems. Man and CyberneticsSan Antonio, TX, USA11–14 October 200939173922Search in Google Scholar
Basilio, J. C. and Matos, S. R. (2002). Design of PI and PID Controllers with Transient Performance Specification. IEEE Transactions on Education, 45(4), pp. 364–370. doi: 10.1109/TE.2002.804399BasilioJ. C.MatosS. R.2002Design of PI and PID Controllers with Transient Performance SpecificationIEEE Transactions on Education45436437010.1109/TE.2002.804399Open DOISearch in Google Scholar
Bazanella, A. S., Pereira, L. F. A. and Parraga, A. (2017). A New Method for PID Tuning Including Plants without Ultimate Frequency. IEEE Transactions on Control Systems Technology, 25(2), pp. 637–644. doi: 10.1109/TCST.2016.2557723BazanellaA. S.PereiraL. F. A.ParragaA.2017A New Method for PID Tuning Including Plants without Ultimate FrequencyIEEE Transactions on Control Systems Technology25263764410.1109/TCST.2016.2557723Open DOISearch in Google Scholar
Bosso, A., Conficoni, C., Raggini, D. and Tilli, A. (2021). A Computational-Effective Field-Oriented Control Strategy for Accurate and Efficient Electric Propulsion of Unmanned Aerial Vehicles. IEEE/ASME Transactions on Mechatronics, 26(3), pp. 1501–1511. doi: 10.1109/TMECH.2020.3022379BossoA.ConficoniC.RagginiD.TilliA.2021A Computational-Effective Field-Oriented Control Strategy for Accurate and Efficient Electric Propulsion of Unmanned Aerial VehiclesIEEE/ASME Transactions on Mechatronics2631501151110.1109/TMECH.2020.3022379Open DOISearch in Google Scholar
Chau, K. T., Zhang, D., Jiang, J. Z., Liu, C. and Zhang, Y. (2007). Design of a Magnetic-Geared Outer-Rotor Permanent-Magnet Brushless Motor for Electric Vehicles. IEEE Transactions on Magnetics, 43(6), pp. 2504–2506. doi: 10.1109/TMAG.2007.893714ChauK. T.ZhangD.JiangJ. Z.LiuC.ZhangY.2007Design of a Magnetic-Geared Outer-Rotor Permanent-Magnet Brushless Motor for Electric VehiclesIEEE Transactions on Magnetics4362504250610.1109/TMAG.2007.893714Open DOISearch in Google Scholar
Chen, G, Y. and Perng. J. W. (2017). PI speed controller design based on GA with time delay for BLDC motor using DSP. In: 2017 IEEE International Conference on Mechatronics and Automation (ICMA), Takamatsu, Japan, 6–9 August 2017, pp. 1174–1179.ChenG, Y.PerngJ. W.2017PI speed controller design based on GA with time delay for BLDC motor using DSPIn:2017 IEEE International Conference on Mechatronics and Automation (ICMA)Takamatsu, Japan6–9 August 201711741179Search in Google Scholar
Chen, Z., Tomita, M., Doki, S. and Okuma, S. (2000). New Adaptive Sliding Observers for Position- and Velocity-Sensorless Controls of Brushless DC Motors. IEEE Transactions on Industrial Electronics, 47(3), pp. 582–591. doi: 10.1109/41.847899ChenZ.TomitaM.DokiS.OkumaS.2000New Adaptive Sliding Observers for Position- and Velocity-Sensorless Controls of Brushless DC MotorsIEEE Transactions on Industrial Electronics47358259110.1109/41.847899Open DOISearch in Google Scholar
Damodharan, P. and Vasudevan, K. (2010). Sensorless Brushless DC Motor Drive Based on the Zero-Crossing Detection of Back Electromotive Force (EMF) from the Line Voltage Difference. IEEE Transactions on Energy Conversion, 25(3), pp. 661–668. doi: 10.1109/TEC.2010.2041781DamodharanP.VasudevanK.2010Sensorless Brushless DC Motor Drive Based on the Zero-Crossing Detection of Back Electromotive Force (EMF) from the Line Voltage DifferenceIEEE Transactions on Energy Conversion25366166810.1109/TEC.2010.2041781Open DOISearch in Google Scholar
De, A., Stewart-Height, A. and Koditschek, D. E. (2019). Task-Based Control and Design of a BLDC Actuator for Robotics. IEEE Robotics and Automation Letters, 4(3), pp. 2393–2400. doi: 10.1109/LRA.2019.2894860DeA.Stewart-HeightA.KoditschekD. E.2019Task-Based Control and Design of a BLDC Actuator for RoboticsIEEE Robotics and Automation Letters432393240010.1109/LRA.2019.2894860Open DOISearch in Google Scholar
Gabriel, H. and Nesimi, E. (2016). Wide Speed Range Sensorless Operation of Brushless Permanent-Magnet Motor Using Flux Linkage Increment. IEEE Transactions on Industrial Electronics, 63(7), pp. 4052–4060. doi: 10.1109/TIE.2016.2544250GabrielH.NesimiE.2016Wide Speed Range Sensorless Operation of Brushless Permanent-Magnet Motor Using Flux Linkage IncrementIEEE Transactions on Industrial Electronics6374052406010.1109/TIE.2016.2544250Open DOISearch in Google Scholar
Gopan, V. K. and Shree, J. D. (2022). Implementation of a High Power Quality BLDC Motor Drive Using Bridgeless DC to DC Converter with Fuzzy Logic Controller. Engineering, Technology & Applied Science Research, 12(5), pp. 9178–9185. doi: 10.48084/etasr.5213GopanV. K.ShreeJ. D.2022Implementation of a High Power Quality BLDC Motor Drive Using Bridgeless DC to DC Converter with Fuzzy Logic ControllerEngineering, Technology & Applied Science Research1259178918510.48084/etasr.5213Open DOISearch in Google Scholar
Gujjar, M, N. and Kumar, P. (2017). Comparative analysis of field oriented control of BLDC motor using SPWM and SVPWM techniques. In: 2017 2nd IEEE International Conference on Recent Trends in Electronics, Information & Communication Technology (RTEICT), Bangalore, India, 2017, pp. 924–929.GujjarM, N.KumarP.2017Comparative analysis of field oriented control of BLDC motor using SPWM and SVPWM techniquesIn:2017 2nd IEEE International Conference on Recent Trends in Electronics, Information & Communication Technology (RTEICT)Bangalore, India2017924929Search in Google Scholar
Ho, T, Y., Chen, M, S., Lin, J, S., Chen, P, H. (2012). The design and implementation of the BLDC motor drive for a washing machine. In: The 1st IEEE Global Conference on Consumer Electronics, Tokyo, Japan, 2012, pp. 156–157.HoT, Y.ChenM, S.LinJ, S.ChenP, H.2012The design and implementation of the BLDC motor drive for a washing machineIn:The 1st IEEE Global Conference on Consumer ElectronicsTokyo, Japan2012156157Search in Google Scholar
Huang, C. L., Lee, F. C., Liu, C. J., Chen, J. Y., Lin, Y. J. and Yang, S. C. (2022). Torque Ripple Reduction for BLDC Permanent Magnet Motor Drive Using DC-Link Voltage and Current Modulation. IEEE Access, 10, pp. 51272–51284. doi: 10.1109/ACCESS.2022.3173325HuangC. L.LeeF. C.LiuC. J.ChenJ. Y.LinY. J.YangS. C.2022Torque Ripple Reduction for BLDC Permanent Magnet Motor Drive Using DC-Link Voltage and Current ModulationIEEE Access10512725128410.1109/ACCESS.2022.3173325Open DOISearch in Google Scholar
Huba, M., Bisták, P., Briežnik, J. and Vrancic, D. (2024). Constrained Series PI, PID and PIDA Controller Design Inspired by Ziegler–Nichols. Power Electronics and Drives, 9(44), pp. 331–346. doi: 10.2478/pead-2024-0021HubaM.BistákP.BriežnikJ.VrancicD.2024Constrained Series PI, PID and PIDA Controller Design Inspired by Ziegler–NicholsPower Electronics and Drives94433134610.2478/pead-2024-0021Open DOISearch in Google Scholar
Khan, K. R. and Miah, M. S. (2020). Fault-Tolerant BLDC Motor-Driven Pump for Fluids with Unknown Specific Gravity: An Experimental Approach. IEEE Access, 8, pp. 30160–30173. doi: 10.1109/ACCESS.2020.2972942KhanK. R.MiahM. S.2020Fault-Tolerant BLDC Motor-Driven Pump for Fluids with Unknown Specific Gravity: An Experimental ApproachIEEE Access8301603017310.1109/ACCESS.2020.2972942Open DOISearch in Google Scholar
Lee, T. Y., Seo, Y. K., Kim, Y. J. and Jung, S. Y. (2016). Motor Design and Characteristics Comparison of Outer-Rotor-Type BLDC Motor and BLAC Motor Based on Numerical Analysis. IEEE Transactions on Applied Superconductivity, 26(4), pp. 1–6. doi: 10.1109/TASC.2016.2548079.LeeT. Y.SeoY. K.KimY. J.JungS. Y.2016Motor Design and Characteristics Comparison of Outer-Rotor-Type BLDC Motor and BLAC Motor Based on Numerical AnalysisIEEE Transactions on Applied Superconductivity2641610.1109/TASC.2016.2548079.Open DOISearch in Google Scholar
Mohanraj, D., Aruldavid, R., Verma, R., Sathiyasekar, K., Barnawi, A. B. and Chokkalingam, B. (2022). A Review of BLDC Motor: State of Art, Advanced Control Techniques, and Applications. IEEE Access, 10, pp. 54833–54869. doi: 10.1109/ACCESS.2022.3175011MohanrajD.AruldavidR.VermaR.SathiyasekarK.BarnawiA. B.ChokkalingamB.2022A Review of BLDC Motor: State of Art, Advanced Control Techniques, and ApplicationsIEEE Access10548335486910.1109/ACCESS.2022.3175011Open DOISearch in Google Scholar
Nelder, J. A. and Mead, R. (1965). A Simplex Method for Function Minimization. The Computer Journal, 7, pp. 308–313. doi: 10.1093/comjnl/7.4.308NelderJ. A.MeadR.1965A Simplex Method for Function MinimizationThe Computer Journal730831310.1093/comjnl/7.4.308Open DOISearch in Google Scholar
Owusu, G., Annan, J. K. and Nunoo, S. (2023). Neural Network-Based Optimisation of Sinusoidal PWM Controller for VSI-Driven BLDC Motor. Power Electronics and Drives, 8, pp. 275–298. doi: 10.2478/pead-2023-0018OwusuG.AnnanJ. K.NunooS.2023Neural Network-Based Optimisation of Sinusoidal PWM Controller for VSI-Driven BLDC MotorPower Electronics and Drives827529810.2478/pead-2023-0018Open DOISearch in Google Scholar
Ozturk, S. B. and Toliyat, H. A. (2011). Direct Torque and Indirect Flux Control of Brushless DC Motor. IEEE/ASME Transactions on Mechatronics, 16(2), pp. 351–360. doi: 10.1109/TMECH.2010.2043742OzturkS. B.ToliyatH. A.2011Direct Torque and Indirect Flux Control of Brushless DC MotorIEEE/ASME Transactions on Mechatronics16235136010.1109/TMECH.2010.2043742Open DOISearch in Google Scholar
Pakdeeto, J., Wansungnoen, S., Areerak, K. and Areerak, K. (2023). Optimal Speed Controller Design of Commercial BLDC Motor by Adaptive Tabu Search Algorithm. IEEE Access, 11, pp. 79710–79720. doi: 10.1109/ACCESS.2023.3300233PakdeetoJ.WansungnoenS.AreerakK.AreerakK.2023Optimal Speed Controller Design of Commercial BLDC Motor by Adaptive Tabu Search AlgorithmIEEE Access11797107972010.1109/ACCESS.2023.3300233Open DOISearch in Google Scholar
Raja, S. and Rathinakumar, M. (2023). Transient Analysis of the Fuzzy Logic-based Speed Control of a Three-phase BLDC Motor. Engineering, Technology & Applied Science Research, 13(1), pp. 9855–9860. doi: 10.48084/etasr.5419RajaS.RathinakumarM.2023Transient Analysis of the Fuzzy Logic-based Speed Control of a Three-phase BLDC MotorEngineering, Technology & Applied Science Research1319855986010.48084/etasr.5419Open DOISearch in Google Scholar
Rubaai, A. and Young, P. (2015). Hardware/Software Implementation of Fuzzy-Neural-Network Self-Learning Control Methods for Brushless DC Motor Drives. IEEE Transactions on Industry Applications, 52(1), pp. 414–424. doi: 10.1109/TIA.2015.2468191RubaaiA.YoungP.2015Hardware/Software Implementation of Fuzzy-Neural-Network Self-Learning Control Methods for Brushless DC Motor DrivesIEEE Transactions on Industry Applications52141442410.1109/TIA.2015.2468191Open DOISearch in Google Scholar
Shao, J. (2006). An Improved Microcontroller-Based Sensorless Brushless DC (BLDC) Motor Drive for Automotive Applications. IEEE Transactions on Industry Applications, 42(5), pp. 1216–1221. doi: 10.1109/TIA.2006.880888ShaoJ.2006An Improved Microcontroller-Based Sensorless Brushless DC (BLDC) Motor Drive for Automotive ApplicationsIEEE Transactions on Industry Applications4251216122110.1109/TIA.2006.880888Open DOISearch in Google Scholar
Sinlapakun, V. and Assawinchaichote, W. (2015). Optimized PID Controller Design for Electric Furnace Temperature Systems With Nelder Mead Algorithm. In: 2015 12th International Conference on Electrical Engineering/Electronics, Computer, Telecommunications and Information Technology (ECTI-CON), Hua Hin, Thailand, 2015.SinlapakunV.AssawinchaichoteW.2015Optimized PID Controller Design for Electric Furnace Temperature Systems With Nelder Mead AlgorithmIn:2015 12th International Conference on Electrical Engineering/Electronics, Computer, Telecommunications and Information Technology (ECTI-CON)Hua Hin, Thailand2015Search in Google Scholar
Ubare, P. and Sonawane, D. N. (2022). Performance Assessment of the BLDC Motor in EV Drives using Nonlinear Model Predictive Control. Engineering, Technology & Applied Science Research, 12(4), pp. 8901–8909. doi: 10.48084/etasr.4976UbareP.SonawaneD. N.2022Performance Assessment of the BLDC Motor in EV Drives using Nonlinear Model Predictive ControlEngineering, Technology & Applied Science Research1248901890910.48084/etasr.4976Open DOISearch in Google Scholar