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Title: CFD simulations of electric motor end ring cooling for improved thermal management

Journal Article · · Science and Technology for Energy Transition
DOI:https://doi.org/10.2516/stet/2022015· OSTI ID:1988619

Proper thermal management of an electric motor for vehicle applications extends its operating range. One cooling approach is to impinge Automatic Transmission Fluid (ATF) onto the rotor end ring. Increased ATF coverage correlates to enhanced heat transfer. Computational Fluid Dynamics (CFD) analytical tools provide a mechanism to assess motor thermal management prior to hardware fabrication. The complexity of the fluid flow (e.g., jet atomization, interface tracking, wall impingement) and heat transfer makes these simulations challenging. Computational costs are high when solving these flows on high-speed rotating meshes. Typically, a Volume-of Fluid (VOF) technique (i.e., two-fluid system) is used to resolve ATF dynamics within this rotating framework. Suitable numerical resolution of the relevant physics for thin films under strong inertial forces at high rotor speeds is computationally expensive, further increasing the run times. In this work, a numerical study of rotor-ring cooling by ATF is presented using a patent automated Cartesian cut-cell based method coupled with Automatic Mesh Refinement (AMR). This approach automatically creates the Cartesian mesh on-the-fly and can effectively handle complex rotating geometries by adaptively refining the mesh based on local gradients in the flow field which results in better resolution of the air-ATF interface. A Single non-inertial Reference Frame (SRF) approach is used to account for the rotating geometry and to further improve the overall computational efficiency. Quasi-steady state conditions are targeted in the analysis of the results. Important physics such as ATF jet structure, velocity detail near the air-jet interface, ATF coverage/accumulation on the ring surface, and cooling capacity are presented for a low-resolution Reynolds averaged Navier-Stokes (RANS), high-resolution RANS, and high-resolution Large-Eddy Simulation (LES) models. Computations are scaled over hundreds of cores on a supercomputer to maximize turnaround time. Each numerical approach is shown to capture the general trajectory of the oil jet prior to surface impingement. The high-resolution LES simulation, however, is superior in capturing small scale details and heat transfer between the free jet and surrounding air.

Research Organization:
Argonne National Laboratory (ANL), Argonne, IL (United States)
Sponsoring Organization:
USDOE Laboratory Directed Research and Development (LDRD) Program
Grant/Contract Number:
AC02-06CH11357
OSTI ID:
1988619
Journal Information:
Science and Technology for Energy Transition, Vol. 77; ISSN 2804-7699
Publisher:
EDP SciencesCopyright Statement
Country of Publication:
United States
Language:
English

References (14)

Real-time capable methods to determine the magnet temperature of permanent magnet synchronous motors — A review conference October 2014
An overview of Rayleigh-Taylor instability journal July 1984
A proposed modification of the Germano subgrid‐scale closure method journal March 1992
Numerical and experimental investigation of flow phenomena in rotating step-holes for direct-spray-cooled electric motors journal June 2020
Numerical study of the turbulent flow past an airfoil with trailing edge separation journal November 1983
Three-Way Catalyst Design for Urealess Passive Ammonia SCR: Lean-Burn SIDI Aftertreatment System conference April 2011
Two-equation eddy-viscosity turbulence models for engineering applications journal August 1994
High-Speed Imaging Studies of Gasoline Fuel Sprays at Fuel Injection Pressures from 300 to 1500 bar conference April 2018
A New Combustion System Achieving High Drive Cycle Fuel Economy Improvements in a Modern Vehicle Powertrain conference April 2011
Investigation of an Innovative Combustion Process for High-Performance Engines and Its Impact on Emissions conference January 2019
Analysis of temperature effects on performance of interior permanent magnet machines conference September 2016
A New Parallel Cut-Cell Cartesian CFD Code for Rapid Grid Generation Applied to In-Cylinder Diesel Engine Simulations conference April 2007
Modeling Turbulent Combustion Using a RANS Model, Detailed Chemistry, and Adaptive Mesh Refinement conference April 2014
Rayleigh–Taylor and Richtmyer–Meshkov instabilities: A journey through scales journal September 2021