Effective thermal management of the rotor is crucial for high-speed permanent magnet motors seeking to enhance power density. This paper proposes spiral water cooling to effectively mitigate the rise in rotor temperature resulting from significant rotor eddy current losses in fractional slot concentrated winding motors. This advanced cooling structure consists of a hollow shaft with multiple spiral ducts on its surface and a rotor hub constructed from a high thermal conductivity material, joined together through the interference fit. By employing the spoke-type rotor in the prototype, the rotor hub comes into direct contact with the heat sources from other rotor components, thereby achieving exceptional heat dissipation capabilities. The three-dimensional computational fluid dynamics model is utilized to investigate the fluid flow characteristics of the spiral water cooling and elucidates the impact of parameters such as rotational speed, coolant flow rate, and duct size on the convective heat transfer coefficient of the cooling structure. In addition, the advantages of spiral water cooling are illustrated by comparing the cooling performance of spiral water cooling and hollow shaft cooling with different cooling media. On this basis, the temperature distribution of each component of the prototype is forecasted. Experiments and simulations definitively proved the effectiveness of the proposed rotor cooling structure and the accuracy of the calculation results.

Application and Verification of Spiral Water Cooling for Rotor in High-Power Density Motors / Chu, C.; Yao, Y.; Huang, Y.; Peng, F.; Zhu, Z.; Cao, Z.; Cavagnino, A.. - In: IEEE TRANSACTIONS ON TRANSPORTATION ELECTRIFICATION. - ISSN 2332-7782. - (2024), pp. 1-1. [10.1109/TTE.2024.3403143]

Application and Verification of Spiral Water Cooling for Rotor in High-Power Density Motors

Cavagnino A.
2024

Abstract

Effective thermal management of the rotor is crucial for high-speed permanent magnet motors seeking to enhance power density. This paper proposes spiral water cooling to effectively mitigate the rise in rotor temperature resulting from significant rotor eddy current losses in fractional slot concentrated winding motors. This advanced cooling structure consists of a hollow shaft with multiple spiral ducts on its surface and a rotor hub constructed from a high thermal conductivity material, joined together through the interference fit. By employing the spoke-type rotor in the prototype, the rotor hub comes into direct contact with the heat sources from other rotor components, thereby achieving exceptional heat dissipation capabilities. The three-dimensional computational fluid dynamics model is utilized to investigate the fluid flow characteristics of the spiral water cooling and elucidates the impact of parameters such as rotational speed, coolant flow rate, and duct size on the convective heat transfer coefficient of the cooling structure. In addition, the advantages of spiral water cooling are illustrated by comparing the cooling performance of spiral water cooling and hollow shaft cooling with different cooling media. On this basis, the temperature distribution of each component of the prototype is forecasted. Experiments and simulations definitively proved the effectiveness of the proposed rotor cooling structure and the accuracy of the calculation results.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/2995428