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Verified CAS / Academic Author3 Decoded Studies

Prof. NIE Feng

Goldwind Science & Technology Co., Ltd., Beijing 100176, China

Research Publications & English Decoded Briefs

Showing 3 publications
Acta Energiae Solaris Sinica2026DOI: 10.19912/j.0254-0096.tynxb.202608_9726

Sensitivity Factors in Site Calibration for Wind Turbine Power Performance Testing

Site calibration under IEC 61400-12-3 conventionally relies on wind direction and either mean wind speed or wind shear as the primary sensitivity factors. This study investigates the influence of wind speed, wind shear, inflow angle, turbulence intensity, and wind veer on the calibration relationship at a moderately complex site. Data from a reference met mast and a temporary met mast at the turbine position were analyzed. Results show that inflow angle exhibits a stronger correlation with the wind speed ratio than wind shear. Discarding data bins with low correlation improves calibration quality. At the lower blade tip height, terrain-induced flow distortion increases scatter, yielding poor calibration quality that fails to meet IEC 61400-12-3 requirements. The optimal calibration model uses wind speed as the sensitivity factor (Method 2), achieving a coefficient of determination (R²) of 0.9551 in the 190°–200° sector, compared to 0.9092 with wind shear. Using inflow angle as the sensitivity factor raises R² from 0.8802 to 0.9544 in the same sector and reduces overall Type A uncertainty. For the 200°–220° sector, Method 2 is recommended. The study demonstrates that inflow angle can serve as an effective alternative sensitivity factor, particularly in complex terrain, and that lower blade tip calibration is unreliable for power curve testing in such environments.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3424-6

Growth of wafer-scale two-dimensional ferroelectric CuCrS2 films

Two-dimensional ferroelectrics with high Curie temperature (Tc) enable stable ferroelectricity at the nanoscale, critical for miniaturized nonvolatile memory and in-memory computing. However, wafer-scale growth of 2D ferroelectric films with controlled thickness remains a bottleneck. This work reports a two-step vapour deposition method to grow wafer-scale 2D CuCrS2 ferroelectric films with uniform thickness from 2 to 10 nm. The films exhibit a non-centrosymmetric 3R stacking sequence, confirmed by second-harmonic generation (SHG) showing six-fold rotational symmetry. Ferroelectric polarization is demonstrated via hysteresis loops that strengthen with increasing temperature, attributed to ionized Cu movement above 200 K. The Tc exceeds room temperature, ensuring ferroelectric stability. Vertical memristor devices fabricated with 200 nm Au electrodes exhibit typical LRS-LRS memristor characteristics and robust hysteresis loops across multiple locations. The method is extended to CuCrSe2 films (7.8 nm thick) with Raman peaks at ~146 and 220 cm−1, confirming reproducibility. This work establishes a scalable route for integrating 2D ferroelectrics into next-generation electronic devices.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3461-5

Effect of TiB2 Particles on the Thermal Deformation and Recrystallization Behaviour of Al-Cu-Mg Alloys

Thermal compression experiments were conducted on Al-Cu-Mg alloys with varying TiB2 contents (0, 0.1, and 1 wt%) in the temperature range of 340–500 °C and strain rate range of 0.01–10 s−1. Arrhenius-type constitutive equations were formulated to characterize flow behavior, and microstructures of deformed alloys were analyzed. TiB2 particles markedly refine grains from 117 μm (0 wt% TiB2) to 35 μm (0.1 wt% TiB2) and 29 μm (1 wt% TiB2). Both grain size reduction and TiB2 presence contribute to increased flow stress during thermal deformation. Grain refinement induced by TiB2 addition enhances dynamic recrystallization (DRX) processes. Excess TiB2 (1 wt%) further stimulates DRX via particle-stimulated nucleation (PSN) mechanism. Addition of TiB2 effectively suppresses coarsening of recrystallized grains following thermal deformation. These findings elucidate the dual role of TiB2 particles in modulating thermal deformation behavior and recrystallization kinetics, providing a quantitative basis for optimizing thermomechanical processing of particle-reinforced Al-Cu-Mg alloys for aerospace and military applications.