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Thermal Management Solution for Integrated Outer-Rotor Motor Drive: Associated Opportunities and Challenges

  • National Laboratory of the Rockies
  • Oak Ridge National Laboratory

Research output: Contribution to conferencePaper

Abstract

This work highlights an integrated thermal management solution for the outer-rotor motor (ORM) drive. The integrated ORM drive utilizes water-ethylene glycol coolant for power electronics and stator cooling. Air cooling is used for rotor laminations, magnets and outer-rotor structures, and the rotor shaft. To fully understand the performance of the integrated ORM drive and thermal management coupling effects, a full drive conjugate heat transfer model has been developed to investigate coupled cooling performance of various components of the ORM drive. Various motor rotational speeds, power output scenarios, and cooling options for the integrated ORM drive have been investigated. The model estimates the operating window for the ORM drive while keeping component operating temperatures below prescribed limits. The model also highlights the importance of windage losses at higher rotational speeds for this ORM design, which involves higher rotor surface area per unit width of the rotor. Different designs are also investigated, particularly focusing on rotor cooling with air either naturally induced by rotor spin or forced airflow with the help of a blower, to circumvent challenges imposed by higher windage losses. The work highlights motor rotational speed limitations and the need for potential liquid cooling options for desired rotor performance at higher rotational speeds. Liquid cooling for the rotor may even become more critical for nonuniform rotor-stator gaps, leading to even higher and uneven windage losses across the full circumference of the motor, consequentially, more heating for the rotor.
Original languageAmerican English
Number of pages8
DOIs
StatePublished - 2025
EventASME 2025 International Technical Conference and Exhibition on Packaging and Integration of Electronic and Photonic Microsystems - Anaheim, California
Duration: 28 Oct 202530 Oct 2025

Conference

ConferenceASME 2025 International Technical Conference and Exhibition on Packaging and Integration of Electronic and Photonic Microsystems
CityAnaheim, California
Period28/10/2530/10/25

NLR Publication Number

  • NLR/CP-5700-99593

Keywords

  • conjugate heat transfer (CHT) model
  • integrated drive
  • outer-rotor motor (ORM)
  • power electronics
  • thermal management
  • windage losses

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