TY - JOUR
T1 - Optimized rotor structural design methodology for high-speed electrical machines based on mechanical characteristics
AU - Ran, Liaoyuan
AU - Halim, Dunant
AU - Thein, Chung Ket
AU - Galea, Michael
AU - Zhao, Weiduo
N1 - Funding Information:
The authors acknowledge the support received from Ningbo Natural Science Foundation (Project ID 2022J176) China and Ningbo Key Laboratory on Energy Material and Technology. This work was partially supported by the PF42 project of the Propulsion Futures Beacon of the University of Nottingham.
Publisher Copyright:
© 2023 Taylor & Francis Group, LLC.
PY - 2023/4/12
Y1 - 2023/4/12
N2 - In high-speed electrical machines (HSEM), mechanical vibration associated with critical speeds of rotor systems can be detrimental to the machine operational stability, especially for vibration near resonances. The structural sizing of a rotor system is often constrained to its mechanical parameters, such as its overall weight, maximum torque, and rated power, which complicate the design, necessitating an iterative design optimization process. This work presents a systematic and iterative rotor structural sizing optimization methodology that incorporates semi-analytical and numerical modeling, specifically taking into account multiple mechanical design parameters from the static, rotordynamic, and electromagnetic-thermal evaluation. The proposed methodology provides an effective design optimization procedure for a general application of HSEM to accelerate its design process, by which the power density and the dynamics stability during high-speed operation are optimized simultaneously. A parametric analysis was carried out where a 24-kW, 12,000-rpm aviation starter-generator was optimized. It was demonstrated that the power density of the machine could be increased by 14.7% from 2.3 to 2.6 kW/kg, while the critical speed was increased by 128.6% from 1,400 to 3,200 Hz.
AB - In high-speed electrical machines (HSEM), mechanical vibration associated with critical speeds of rotor systems can be detrimental to the machine operational stability, especially for vibration near resonances. The structural sizing of a rotor system is often constrained to its mechanical parameters, such as its overall weight, maximum torque, and rated power, which complicate the design, necessitating an iterative design optimization process. This work presents a systematic and iterative rotor structural sizing optimization methodology that incorporates semi-analytical and numerical modeling, specifically taking into account multiple mechanical design parameters from the static, rotordynamic, and electromagnetic-thermal evaluation. The proposed methodology provides an effective design optimization procedure for a general application of HSEM to accelerate its design process, by which the power density and the dynamics stability during high-speed operation are optimized simultaneously. A parametric analysis was carried out where a 24-kW, 12,000-rpm aviation starter-generator was optimized. It was demonstrated that the power density of the machine could be increased by 14.7% from 2.3 to 2.6 kW/kg, while the critical speed was increased by 128.6% from 1,400 to 3,200 Hz.
KW - multi-disciplinary optimization
KW - permanent magnet machines
KW - rotor structures
KW - Structural design methodology
UR - http://www.scopus.com/inward/record.url?scp=85152401211&partnerID=8YFLogxK
U2 - 10.1080/15397734.2023.2197042
DO - 10.1080/15397734.2023.2197042
M3 - Article
AN - SCOPUS:85152401211
SN - 1539-7734
VL - 52
SP - 2984
EP - 3006
JO - Mechanics Based Design of Structures and Machines
JF - Mechanics Based Design of Structures and Machines
IS - 5
ER -