TY - JOUR
T1 - Conceptual design and numerical analysis of mooring in-situ power generation systems under low current velocity conditions
AU - Wang, Yiyuan
AU - Zhang, Dayu
AU - Li, Muyu
AU - Hu, Qiao
AU - Quan, Shuanglu
AU - Guo, Penghua
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/5/15
Y1 - 2026/5/15
N2 - This study proposes a mooring in-situ power generation system harnessing low-speed ocean current energy, with a focus on numerical investigations into its hydrodynamic stability and power output capacity. The mooring configuration effectively addresses sediment issues common to conventional seabed-mounted installations, while enhancing the operational flow velocity range for improved energy capture efficiency. A ductless Archimedes screw turbine serves as the primary energy extraction component, realizing the efficient use of low-speed ocean current energy. An integrated numerical model, coupling mooring lines with turbine dynamics and validated through experiments, was employed in this study. Comparative analysis was conducted for single-line mooring system and four-line mooring system with distinct performance characteristics. Under the low-flow condition of 0.3 m/s, both two mooring systems demonstrate excellent power output capacity. The single-line mooring system achieves a Cp,a of 0.363, while the four-line configuration attains a higher Cp,a of 0.376. Parametric studies on inflow angles revealed different characteristics: the single-line mooring system accommodates wider yaw variations to adapt to the incoming currents, whereas the four-line mooring system demonstrates bidirectional current utilization capability with enhanced dynamic stability. These findings provide valuable design guidelines for optimizing mooring systems in deep-sea renewable energy applications.
AB - This study proposes a mooring in-situ power generation system harnessing low-speed ocean current energy, with a focus on numerical investigations into its hydrodynamic stability and power output capacity. The mooring configuration effectively addresses sediment issues common to conventional seabed-mounted installations, while enhancing the operational flow velocity range for improved energy capture efficiency. A ductless Archimedes screw turbine serves as the primary energy extraction component, realizing the efficient use of low-speed ocean current energy. An integrated numerical model, coupling mooring lines with turbine dynamics and validated through experiments, was employed in this study. Comparative analysis was conducted for single-line mooring system and four-line mooring system with distinct performance characteristics. Under the low-flow condition of 0.3 m/s, both two mooring systems demonstrate excellent power output capacity. The single-line mooring system achieves a Cp,a of 0.363, while the four-line configuration attains a higher Cp,a of 0.376. Parametric studies on inflow angles revealed different characteristics: the single-line mooring system accommodates wider yaw variations to adapt to the incoming currents, whereas the four-line mooring system demonstrates bidirectional current utilization capability with enhanced dynamic stability. These findings provide valuable design guidelines for optimizing mooring systems in deep-sea renewable energy applications.
KW - Deep sea
KW - Ductless Archimedes screw turbine
KW - In-situ power generation system
KW - Mooring system
KW - Ocean current energy
UR - https://www.scopus.com/pages/publications/105034618167
U2 - 10.1016/j.oceaneng.2026.125108
DO - 10.1016/j.oceaneng.2026.125108
M3 - 文章
AN - SCOPUS:105034618167
SN - 0029-8018
VL - 355
JO - Ocean Engineering
JF - Ocean Engineering
M1 - 125108
ER -