SinoGreenTech Academic Portal
ZP
Verified CAS / Academic Author2 Decoded Studies

Prof. ZHANG Puyang

National Inland Waterway Regulation Engineering Research Center, Chongqing Jiaotong University

Co-Affiliations:Tianjin University, State Key Laboratory of Hydraulic Engineering Intelligent Construction and Operation

Research Publications & English Decoded Briefs

Showing 2 publications
Acta Energiae Solaris Sinica2026DOI: 10.19912/j.0254-0096.tynxb.202608_9734

Experimental Study on Motion Response of a Taut-Moored Wind Turbine with a Four-Bucket Foundation

This study addresses the motion response of a taut-moored wind turbine supported by a four-bucket foundation under wave loading. A 1:100 scale physical model was tested in a wave flume to systematically investigate the effects of water depth, draft, and anchor distance on the motion response of the four-bucket foundation. The model consists of four buckets (diameter 0.1 m, height 0.2 m) arranged in a square pattern with a center-to-center spacing of 0.25 m, connected by rigid members, with a total mass of 3.4 kg. Mooring lines are steel strands (diameter 2 mm, breaking force 1670 N, elastic modulus 12.04 GPa, tensile stiffness 0.378 MN). Regular waves with a height of 0.02 m (unit wave amplitude 0.01 m) were generated. Results indicate that increasing water depth suppresses the oscillatory motion response. Increasing draft amplifies surge and pitch responses while reducing heave response. Increasing anchor distance enhances heave and pitch motions but reduces surge motion during the slow-drift phase. These findings provide empirical data for optimizing taut mooring configurations for deep-sea floating wind turbine foundations, highlighting the trade-offs between stability and motion attenuation under varying environmental and geometric parameters.

Acta Energiae Solaris Sinica2026DOI: 10.19912/j.0254-0096.tynxb.202608_9715

Bearing Performance of Single-Column Composite Bucket Foundations for Offshore Wind Turbines Under Scour Evolution

This study investigates the bearing performance of single-column composite bucket foundations under scour conditions through finite element analysis and scaled model tests. The most unfavorable scour scenario was identified by evaluating load angle effects on bearing capacity, frequency, and stiffness. Laboratory tests were conducted on a 1:60 scaled model of a 36 m diameter prototype foundation embedded in Tianjin clay, with scour depths ranging from 2 m to 10 m. Results indicate that when the load angle faces the scoured side, the ultimate bearing capacity reaches its minimum, with maximum stress concentrated at the bottom of the compartment plate on the scoured side. Lateral stiffness decreases by 15% and frequency by 7–8% as scour depth increases from 2 m to 10 m. Complete scour reduces bearing capacity by approximately 10%, while cyclic loading amplifies scour effects, significantly reducing horizontal stiffness and increasing cumulative rotation. The foundation's bearing mechanism primarily relies on internal soil and base support. Scour protection measures such as rock dumping, geotextile, and fender systems are predicted to restore stiffness to over 90% and bearing capacity to over 95% of unscoured values.