Conceptualization and Evaluation of DC link Cooling for a 6-phase 500-kW Inverter with Respect to Life Time
Paper in proceeding, 2026

This paper presents an experimental and modelling-based evaluation of DC-link cooling strategies for a six-phase, 500 kW SiC-based traction inverter for heavy-duty electric vehicles. Two configurations - top and bottom bus-bar cooled - are characterized under passive and active cooling using high ripple current excitation. The results show that DC-link capacitors exhibit large thermal time constants of 0.5-1 h, leading to slow temperature dynamics and thermal accumulation over the drive cycle. As a result, external cooling primarily reduces the bus-bar temperature, while the capacitor hotspot temperature is limited by internal thermal resistance.A physics-based electro-thermal model, parameterized from experimental data and combined with an HHDDT mission-profile simulation, is used to estimate capacitor lifetime. The top bus-bar cooled configuration achieves a lifetime increase from 7.0 to 8.65 years (23%), while the bottom bus-bar cooled configuration increases from 7.88 to 9.83 years (24%) and maintains a higher baseline lifetime. The results demonstrate that capacitor lifetime is primarily governed by the thermal design of the DC-link, with the bottom bus-bar cooled topology providing superior performance.

thermal management

DC-link capacitor

lifetime modeling

six-phase inverter

liquid cooling

laminated busbar

Author

Artem Rodionov

Chalmers, Electrical Engineering, Electric Power Engineering

Jedsada Yodwong

Student at Chalmers

Sebastiaan De Boodt

ROGERS

Yujing Liu

Chalmers, Electrical Engineering, Electric Power Engineering

2026 International Power Electronics Conference IPEC Nagasaki 2026 Ecce Asia


9784886864475 (ISBN)

2026 International Power Electronics Conference, IPEC-Nagasaki 2026 - ECCE Asia
Nagasaki, Japan,

Power electronics optimisation for next generation electric vehicle components (PowerDrive)

European Commission (EC) (EC/HE/101056857), 2022-05-01 -- 2025-10-31.

Areas of Advance

Transport

Energy

Subject Categories (SSIF 2025)

Ceramics and Powder Metallurgical Materials

Energy Engineering

DOI

10.23919/IPEC-Nagasaki2026-EC64663.2026.11596842

More information

Latest update

8/10/2026