Accesso libero

Research on high-precision rotational inertia characteristic modeling and control method for auxiliary services

, , ,  e   
14 nov 2024
INFORMAZIONI SU QUESTO ARTICOLO

Cita
Scarica la copertina

Petrescu, F. I. T. A., Apicella, A., Aversa, R., Petrescu, R. V., Calautit, J. K., Mirsayar, M. M., & Riccio, A. (2016). Something about the mechanical moment of inertia. American Journal of Applied Sciences, 13(11), 1085-1090. Search in Google Scholar

Mulhayatiah, D., Suhendi, H. Y., Zakwandi, R., Dirgantara, Y., & Ramdani, M. A. (2018, November). Moment of inertia: development of rotational dynamics KIT for physics students. In IOP Conference Series: Materials Science and Engineering (Vol. 434, No. 1, p. 012014). IOP Publishing. Search in Google Scholar

Kim, S. (2018). Moment of inertia and friction torque coefficient identification in a servo drive system. IEEE Transactions on Industrial Electronics, 66(1), 60-70. Search in Google Scholar

Bächer, M., Bickel, B., Whiting, E., & Sorkine-Hornung, O. (2017). Spin-it: optimizing moment of inertia for spinnable objects. Communications of the ACM, 60(8), 92-99. Search in Google Scholar

Sharma, S., & Ahluwalia, P. K. (2020, April). Alternative approaches in digital era to handle undergraduate physics (mechanics) laboratory: a case study of moment of inertia of a flywheel experiment. In Journal of Physics: Conference Series (Vol. 1512, No. 1, p. 012027). IOP Publishing. Search in Google Scholar

Tarczewski, T., Szczepanski, R., Erwinski, K., Hu, X., & Grzesiak, L. M. (2022). A novel sensitivity analysis to moment of inertia and load variations for PMSM drives. IEEE Transactions on Power Electronics, 37(11), 13299-13309. Search in Google Scholar

Lončar, J., Igrec, B., & Babić, D. (2022). Negative-inertia converters: Devices manifesting negative mass and negative moment of inertia. Symmetry, 14(3), 529. Search in Google Scholar

Liu, K., & Zhu, Z. (2016). Fast determination of moment of inertia of permanent magnet synchronous machine drives for design of speed loop regulator. IEEE Transactions on Control Systems Technology, 25(5), 1816-1824. Search in Google Scholar

Sziki, G. Á., Szántó, A., & Ádámkó, E. (2024). Review of methods for determining the moment of inertia and friction torque of electric motors. Acta Polytechnica Hungarica, 21(4). Search in Google Scholar

Trotea, M., Constantinescu, A., & Romanescu, A. E. (2019, August). Considerations on the influence of the moment of inertia on the movement of a vehicle. In IOP Conference Series: Materials Science and Engineering (Vol. 568, No. 1, p. 012067). IOP Publishing. Search in Google Scholar

Thonig, D., Eriksson, O., & Pereiro, M. (2017). Magnetic moment of inertia within the torque-torque correlation model. Scientific reports, 7(1), 931. Search in Google Scholar

Wang, Y. (2019, August). Research on Moment of Inertia Measurement Method. In IOP Conference Series: Materials Science and Engineering (Vol. 592, No. 1, p. 012078). IOP Publishing. Search in Google Scholar

Klaus, L. (2017). Comparison of two experiments based on a physical and a torsion pendulum to determine the mass moment of inertia including measurement uncertainties. Measurement Science Review, 17(1), 9. Search in Google Scholar

Messina, M., Njuguna, J., & Palas, C. (2018). Mechanical structural design of a MEMS-based piezoresistive accelerometer for head injuries monitoring: A computational analysis by increments of the sensor mass moment of inertia. Sensors, 18(1), 289. Search in Google Scholar

Kaššay, P., & Grega, R. (2020). Measuring Mass Moment of Inertia of a Rotor—Two Simple Methods Using No Special Equipment. In Current Methods of Construction Design: Proceedings of the ICMD 2018 (pp. 303-315). Springer International Publishing. Search in Google Scholar

Said, A. E., & Awwad, A. M. E. (2021). A comparative study of performance of AC and DC electric drive control systems with variable moment of inertia. Bulletin of Electrical Engineering and Informatics, 10(2), 588-597. Search in Google Scholar

Sun, L., Wang, S., Wang, H., Zhao, W., Li, J., & Shang, C. (2022). Design and accuracy test of polar moment of inertia measuring equipment for projectile and rocket. Vibroengineering Procedia, 44, 87-92. Search in Google Scholar

Gabl, R., Davey, T., Nixon, E., & Ingram, D. M. (2021). Accuracy Analysis of the Measurement of Centre of Gravity and Moment of Inertia with a Swing. Applied Sciences, 11(12), 5345. Search in Google Scholar

Dovydenko, O., Samoylenko, A., & Petronevich, V. (2020, June). Special measurement standard of mass, mass center and inertia moment. In 2020 IEEE 7th International Workshop on Metrology for AeroSpace (MetroAeroSpace) (pp. 430-435). IEEE. Search in Google Scholar

Cuong Ngo Cao,Loc Ho Dac & Phuong Nguyen Thanh. (2005). Modeling and control of synchronous generator: adaptive approach. ICMIT 2005: CONTROL SYSTEMS AND ROBOTICS60421G-60421G-4. Search in Google Scholar

Xu Yunyang,Nian Heng,Wang Yangming & Sun Dan. (2020). Impedance Modeling and Stability Analysis of VSG Controlled Grid-Connected Converters with Cascaded Inner Control Loop. Energies(19), 5114-5114. Search in Google Scholar

Cheng Min,Yan Wenlin,Zhang Dan,Liu Xufei,He Lei,Xu Mingyu & Yao Qiang. (2024). Frequency stability of new energy power systems based on VSG adaptive energy storage coordinated control strategy. Energy Informatics(1). Search in Google Scholar

Wanli Yang,Chunming Tu,Fan Xiao & Jiaqi Yu. (2024). A Method to Improve Both Frequency Stability and Transient Stability of Virtual Synchronous Generators during Grid Faults.Sustainability(5). Search in Google Scholar

Lingua:
Inglese
Frequenza di pubblicazione:
1 volte all'anno
Argomenti della rivista:
Scienze biologiche, Scienze della vita, altro, Matematica, Matematica applicata, Matematica generale, Fisica, Fisica, altro