Electric Vehicles
Recent research in this area is directed at substantially reducing the loss of drivetrain power electronics over standard EPA drive cycles. These gains are achieved through a newÌýcomposite converterÌýapproach, with demonstrated reduction in average loss by a factor of 2-4. Earlier research includes power conversion for on-board chargers and for facilitation of a 42 VDC standard.
Composite Converter Architectures: Beyond Multilevel Modular Conversion

Distribution (PDF) of electric vehicle DC bus voltage and power for a simulated US06 (aggressive) drive cycle.
- H. Chen, K. Sabi, H. Kim, T. Harada, R. Erickson, and D. Maksimovic,ÌýÌýIEEE Energy Conversion Congress and Exposition, Sept. 2014.
- H. Chen, K. Sabi, H. Kim, T. Harada, R. Erickson, and D. Maksimovic,ÌýIEEE Transactions on Power Electronics, vol. 31, no. 1, pp. 101-110, Jan. 2016.
Conference paper [1] and updated journal paper [2] describe a new composite converter approach and its application to electric vehicle drivetrains. - H. Kim, H. Chen, D. Maksimovic, and R. Erickson,ÌýÌýIEEE Energy Conversion Congress and Exposition,ÌýSept. 2015.
This paper documents design and experimental results of a 30 kW boost composite converter for an electric drivetrain application. - H. Chen, H. Kim, R. Erickson, and D. Maksimovic,ÌýÌýIEEE Transactions on Power ElectronicsÌýJan. 2017.

Comparison of efficiency vs. power for conventional boost (solid line) vs. composite (experimental data points), 250 V : 650 V, 30 kW rated converters. It is remarkable that 98% efficiency is maintained down to nearly zero power.
Options for performing the boost function in EV drivetrains are compared using a calibrated loss model, to predict total loss over standard EPA drive cycles, as well as size of the reactive elements. The composite converter approach reduces the loss over typical drive cycles by a factor of approximately four, while also reducing the size of the system film capacitors. - U. Anwar, H. Jin, H. Chen, R. Erickson, D. Maksimovic, and K. Afridi,ÌýÌýIEEE Energy Conversion Congress and Exposition, Sept. 2016.
- H. Kim, H. Chen, D. Maksimovic, and R. Erickson,ÌýÌýIEEE Energy Conversion Conference and Exposition, Sept. 2016.
- H. Kim, H. Chen, Z. Cole, B. Passmore, K. Olejniczak, R. Erickson, and D. Maksimovic,ÌýÌýIEEE Applied Power Electronics Conference, Mar 2017.
- H. Kim, H. Chen, J. Zhu, D. Maksimovic, and R. Erickson,ÌýÌýIEEE Workshop on Wide Bandgap Power Devices and Applications, Nov. 2016.
Earlier Work Related to Vehicle Power Electronics
J. Hong, D. Maksimovic, R.W. Erickson, and I. Khan, “Half-Cycle Control of the Parallel Resonant Converter Operated as a High Power Factor Rectifierâ€�,ÌýIEEE Transactions on Power Electronics,Ìývol. 10, no. 1, pp. 1-8, January 1995.
Stephen W. Anderson, Robert W. Erickson, and Ronald A. Martin, “An Improved Automotive Power Distribution System Using Nonlinear Resonant Switch Converters,â€�ÌýIEEE Transactions on Power Electronics,ÌýJanuary 1991.
- Stephen W. Anderson, Robert W. Erickson, and Ronald A. Martin, “An Improved Automotive Power Distribution System Using Nonlinear Resonant Switch Converters,â€�ÌýIEEE/SAE Workshop on Automotive Power Electronics,ÌýAugust 1989.
- Robert Erickson, Adan Hernandez, Arthur Witulski, and Renjie Xu,ÌýÌýIEEE Power Electronics Specialists Conference,Ìý1989 Record, pp. 43-50, June 1989. Also inÌýIEEE Transactions on Power Electronics, vol. 4 no. 2, April 1989, pp. 242-252.