TY - JOUR
T1 - A Self-Oscillating Underwater Wireless Charging System With Flexible Load Configuration and Misalignment Tolerance for AUVs
AU - Wang, Jiale
AU - Mao, Zhaoyong
AU - Song, Baowei
AU - Tian, Wenlong
AU - Cheng, Bo
AU - Pang, Shengzhao
AU - Yan, Zhengchao
AU - Ding, Wenjun
AU - Liu, Peizhou
AU - Liang, Bo
AU - Hu, Aiguo Patrick
N1 - Publisher Copyright:
© 1986-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - As ocean exploration expands, underwater wireless charging systems are increasingly required to support multiple autonomous underwater vehicles (AUVs), thereby improving overall mission efficiency. However, seawater disturbances may induce complex interload misalignments that degrade charging stability. This article proposes a self-oscillating underwater wireless charging system for AUVs with flexible load configuration, enabling stable and balanced power transfer under both single-load and dual-load conditions. Circuit models are established for the two operating modes, and the corresponding output characteristics are derived. Three indices are defined to evaluate output-voltage stability, balance, and consistency under variations in coupling conditions, loads, and operating modes. A parameter design procedure is developed to determine the inductance distribution coefficient. A 220 W prototype is built and tested in saline water, achieving a peak DC-DC efficiency of 90.4%. Experimental results show that, in most tested cases with load variations and misalignment-induced coupling-coefficient variations of up to 25%, the output-voltage variation in both operating modes remains within 10%. Under dual-load operation, the interload voltage difference remains within 10%, and the deviation between the single-load and dual-load output voltages is approximately 3%.
AB - As ocean exploration expands, underwater wireless charging systems are increasingly required to support multiple autonomous underwater vehicles (AUVs), thereby improving overall mission efficiency. However, seawater disturbances may induce complex interload misalignments that degrade charging stability. This article proposes a self-oscillating underwater wireless charging system for AUVs with flexible load configuration, enabling stable and balanced power transfer under both single-load and dual-load conditions. Circuit models are established for the two operating modes, and the corresponding output characteristics are derived. Three indices are defined to evaluate output-voltage stability, balance, and consistency under variations in coupling conditions, loads, and operating modes. A parameter design procedure is developed to determine the inductance distribution coefficient. A 220 W prototype is built and tested in saline water, achieving a peak DC-DC efficiency of 90.4%. Experimental results show that, in most tested cases with load variations and misalignment-induced coupling-coefficient variations of up to 25%, the output-voltage variation in both operating modes remains within 10%. Under dual-load operation, the interload voltage difference remains within 10%, and the deviation between the single-load and dual-load output voltages is approximately 3%.
KW - Autonomous underwater vehicles (AUVs)
KW - flexible load configuration
KW - misalignment tolerance
KW - self-oscillation
KW - wireless power transfer (WPT)
UR - https://www.scopus.com/pages/publications/105043620016
U2 - 10.1109/TPEL.2026.3705995
DO - 10.1109/TPEL.2026.3705995
M3 - 文章
AN - SCOPUS:105043620016
SN - 0885-8993
VL - 41
SP - 20777
EP - 20789
JO - IEEE Transactions on Power Electronics
JF - IEEE Transactions on Power Electronics
IS - 11
ER -