TY - JOUR
T1 - High-fidelity modeling and thermal efficiency performance of an electro-hydrostatic actuator for wheel-legged robots
AU - Du, Shanxiao
AU - Zhou, Junjie
AU - Shu, Dongwei
AU - Zhao, Huipeng
AU - Wu, Yi
AU - Ning, Wenao
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/11
Y1 - 2026/11
N2 - Research on energy efficiency is essential for enhancing energy utilization and facilitating the broader application of electro-hydrostatic actuators (EHAs) in mobile machinery. This paper presents a comprehensive investigation of the energy transfer mechanisms, efficiency characteristics, and loss patterns of EHAs based on the power bond graph. Subsequently, a high-fidelity efficiency model is developed to emulate real-world conditions. The validity is verified through both simulations and experiments, with the efficiency prediction error remaining within 5%. A full-range efficiency map is generated from the proposed model. The results indicate that the EHA exhibits high efficiency. The majority fall in the 30%-60% interval, while the maximum efficiency exceeds 70%. To provide insight into efficiency optimization strategies, the variations in electrical, volumetric, and mechanical loss contributions across different efficiency zones are clarified. Finally, the research systematically explores the influence of temperature on efficiency and the associated mechanisms from a novel perspective. This study lays the groundwork for further work on thermal effects and performance degradation in EHAs.
AB - Research on energy efficiency is essential for enhancing energy utilization and facilitating the broader application of electro-hydrostatic actuators (EHAs) in mobile machinery. This paper presents a comprehensive investigation of the energy transfer mechanisms, efficiency characteristics, and loss patterns of EHAs based on the power bond graph. Subsequently, a high-fidelity efficiency model is developed to emulate real-world conditions. The validity is verified through both simulations and experiments, with the efficiency prediction error remaining within 5%. A full-range efficiency map is generated from the proposed model. The results indicate that the EHA exhibits high efficiency. The majority fall in the 30%-60% interval, while the maximum efficiency exceeds 70%. To provide insight into efficiency optimization strategies, the variations in electrical, volumetric, and mechanical loss contributions across different efficiency zones are clarified. Finally, the research systematically explores the influence of temperature on efficiency and the associated mechanisms from a novel perspective. This study lays the groundwork for further work on thermal effects and performance degradation in EHAs.
KW - Efficiency map
KW - Electro-hydrostatic actuator
KW - Energy transfer mechanism
KW - High-fidelity model
KW - Thermal efficiency
UR - https://www.scopus.com/pages/publications/105040972976
U2 - 10.1016/j.triboint.2026.112258
DO - 10.1016/j.triboint.2026.112258
M3 - Article
AN - SCOPUS:105040972976
SN - 0301-679X
VL - 223
JO - Tribology International
JF - Tribology International
M1 - 112258
ER -