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DOE OSTI · 3374959

Power Electronic Development Challenges for High Power Density Integrated Electric Drive Applications

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Abstract

The ever-increasing demand for compact, efficient, and high-performance traction drive systems for transportation applications has accelerated the development of integrated electric drives. In these systems, the electric machine and inverter are integrated within a single housing, offering significant advantages in electrical performance, volume, weight, cost, and overall system efficiency. Despite these benefits, such high levels of integration introduce a new set of challenges, particularly in power electronic design and component selection. This article presents an in-depth investigation of a highly integrated electric drive architecture with an internal stator-mounted inverter, highlighting key design considerations and trade-offs aimed exclusively at maximizing system power density.Based on a comprehensive review of the literature, the power density of a voltage-source-inverter-driven electric drive is primarily governed by the volumetric contributions of the power modules, heat sinks, and DC-link capacitors. Accordingly, this work focuses on the optimization of these three critical components to enhance the inverter's overall power density. The proposed design achieves a power density of 100 kW/L, demonstrating the effectiveness of the presented approach for next-generation integrated electric drive systems.

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BibTeXRIS

Chowdhury, Shajjad [Oak Ridge National Laboratory], Barua, Himel [Oak Ridge National Laboratory], Rallabani, Vandana [Oak Ridge National Laboratory], Wilkins, Jon [Oak Ridge National Laboratory], Su, Gui-Jia [Oak Ridge National Laboratory], Ribeiro, Pedro [Oak Ridge National Laboratory], Rowden, Brian [Oak Ridge National Laboratory], Ozpineci, Burak [Oak Ridge National Laboratory], Kekelia, Bidzina [National Laboratory of the Rockies, Golden, CO (United States)] (ORCID:0000000328663319), Narumanchi, Sreekant [National Laboratory of the Rockies, Golden, CO (United States)] (ORCID:0000000153376069). 2026-05-20. Power Electronic Development Challenges for High Power Density Integrated Electric Drive Applications. https://doi.org/10.1109/apec51134.2026.11517128

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