TY - JOUR
T1 - Enhanced dynamic performance of DC microgrids in more electric aircraft via hybrid energy storage system
AU - HUANG, Ming
AU - SONG, Xiaofei
AU - WU, Junchi
AU - LI, Weilin
AU - ZHANG, Xiaobin
N1 - Publisher Copyright:
© 2025 The Author(s)
PY - 2026/8
Y1 - 2026/8
N2 - The Hybrid Energy Storage System (HESS), typically configured with battery-supercapacitor integration, demonstrates significant potential for mitigating DC bus voltage ripples caused by abrupt load variations. However, in More Electric Aircraft (MEA) applications, conventional Filter Frequency Division (FFD) approaches exhibit fundamental limitations in dynamic response characteristics. This is particularly evident when serving pulsed loads, resulting in undesirable DC bus voltage recovery times. To address this issue, an enhanced second-order FFD architecture is proposed. This architecture is systematically reconstructed through a novel negative impedance compensation technique, specifically designed to account for both power source and HESS impedance characteristics. The proposed methodology fundamentally modifies the output impedance of the DC source-HESS integrated system. This achieves synergistic power stage-control strategy integration, substantially improving DC bus voltage transient recovery performance. Comprehensive simulation studies validate the control scheme in various operational scenarios. Experimental validation on a 10 kW HESS prototype conclusively demonstrates the technical feasibility and performance enhancement of the proposed control.
AB - The Hybrid Energy Storage System (HESS), typically configured with battery-supercapacitor integration, demonstrates significant potential for mitigating DC bus voltage ripples caused by abrupt load variations. However, in More Electric Aircraft (MEA) applications, conventional Filter Frequency Division (FFD) approaches exhibit fundamental limitations in dynamic response characteristics. This is particularly evident when serving pulsed loads, resulting in undesirable DC bus voltage recovery times. To address this issue, an enhanced second-order FFD architecture is proposed. This architecture is systematically reconstructed through a novel negative impedance compensation technique, specifically designed to account for both power source and HESS impedance characteristics. The proposed methodology fundamentally modifies the output impedance of the DC source-HESS integrated system. This achieves synergistic power stage-control strategy integration, substantially improving DC bus voltage transient recovery performance. Comprehensive simulation studies validate the control scheme in various operational scenarios. Experimental validation on a 10 kW HESS prototype conclusively demonstrates the technical feasibility and performance enhancement of the proposed control.
KW - Energy storage components
KW - Filter frequency division
KW - Hybrid energy storage system
KW - Impedance compensation
KW - More electric aircraft
UR - https://www.scopus.com/pages/publications/105043626084
U2 - 10.1016/j.cja.2025.103885
DO - 10.1016/j.cja.2025.103885
M3 - 文章
AN - SCOPUS:105043626084
SN - 1000-9361
VL - 39
JO - Chinese Journal of Aeronautics
JF - Chinese Journal of Aeronautics
IS - 8
M1 - 103885
ER -