期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
Formulation of a new ocean salinity boundary condition and impact on the simulated climate of an oceanic general circulation model 被引量:8
1
作者 JIN JiangBo ZENG QingCun +2 位作者 WU Lin LIU HaiLong ZHANG MingHua 《Science China Earth Sciences》 SCIE EI CAS CSCD 2017年第3期491-500,共10页
The salinity boundary condition at the ocean surface plays an important role in the stability of long-term integrations of an oceanic general circulation model (OGCM) and in determining its equilibrium solutions. Th... The salinity boundary condition at the ocean surface plays an important role in the stability of long-term integrations of an oceanic general circulation model (OGCM) and in determining its equilibrium solutions. This study presents a new formulation of the salt flux calculation at the ocean surface based on physical processes of salt exchange at the air-sea interface. The formulation improves the commonly used virtual salt flux with constant reference salinity by allowing for spatial correlations between surface freshwater flux and sea-surface salinity while preserving the conservation of global salinity. The new boundary condition is implemented in the latest version of the National Key Laboratory of NumericaI Modeling for Atmospheric Sciences and Geophysical Fluid Dynamics/Institute of Atmospheric Physics Climate Ocean Model version 2 (LICOM2.0). The impact of the new boundary condition on the equilibrium simulations of the model is presented. It is shown that the new formulation leads to a stronger Atlantic meridional overturning circulation (AMOC) that is closer to observational estimates. It also slightly improves poleward heat transport by the oceans in both the Atlantic and the global oceans. 展开更多
关键词 OGCM Surface salinity boundary condition virtual salinity flux Upward salt flux from oceanic surface AMOC
原文传递
Super twisting sliding mode approach applied to voltage orientated control of a stand-alone induction generator
2
作者 Yacine Bendjeddou Abdelhakim Deboucha +2 位作者 Larafi Bentouhami Elkheir Merabet Rachid Abdessemed 《Protection and Control of Modern Power Systems》 2021年第1期233-241,共9页
To enhance the robustness and dynamic performance of a self-excited induction generator (SEIG) used in a stand-alone wind energy system (WES), a virtual flux oriented control (VFOC) based on nonlinear super-twisting s... To enhance the robustness and dynamic performance of a self-excited induction generator (SEIG) used in a stand-alone wind energy system (WES), a virtual flux oriented control (VFOC) based on nonlinear super-twisting sliding mode control (STSMC) is adopted. STSMC is used to replace the conventional proportional-integral-Fuzzy Logic Controller (PI-FLC) of the inner current control loops. The combination of the proposed control strategy with space vector modulation (SVM) applied to a PWM rectifier brings many advantages such as reduction in harmonics, and precise and rapid tracking of the references. The performance of the proposed control technique (STSMC-VFOC-SVM) is verified through simulations and compared with the traditional technique (PI-FLC-VFOC-SVM). It shows that the proposed method improves the dynamics of the system with reduced current harmonics. In addition, the use of a virtual flux estimator instead of a phase-locked loop (PLL) eliminates the line voltage sensors and thus increases the reliability of the system. 展开更多
关键词 Self-excited induction generator virtual flux oriented control Back-to-back converter Super twisting sliding mode control PI-fuzzy controller wind energy
原文传递
上一页 1 下一页 到第
使用帮助 返回顶部