FLOW MODAL DECOMPOSITION OF A VERTICAL-AXIS WIND TURBINE WITH THE MOVING BOUNDARIES OF ROTATING BLADES

被引:0
|
作者
Tian, Tian [1 ]
Sun, Chong [1 ]
Zhu, Xiaocheng [1 ]
Du, Zhaohui [1 ]
机构
[1] Shanghai Jiao Tong Univ, Sch Mech Engn, Shanghai, Peoples R China
来源
PROCEEDINGS OF ASME TURBO EXPO 2022: TURBOMACHINERY TECHNICAL CONFERENCE AND EXPOSITION, GT2022, VOL 11 | 2022年
基金
中国国家自然科学基金;
关键词
wind energy; vertical axis wind turbine; reduced order modal method; Dynamic Mode Decomposition; SIMULATION; POD;
D O I
暂无
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Aiming at analyzing the wake evolution features of a 3-blade vertical axis wind turbine(VAWT), dynamic mode decomposition(DMD) is used to evaluate statistics of the flow field based on unsteady flow field computations. Considering the limitation that DMD can only be applied to problems with stationary boundaries, the technology to deal with the moving boundaries of rotating blades is investigated. First, the flow fields of VAWT are calculated using CFD, and computations are compared with the experimental results to verify the numeral calculations. Then the spectral analysis is performed on the VAWT wake at a tip speed ratio of 2.35, and different frequency characteristics are observed in the near wake, the transition region of the wake, and the far wake, respectively. Next, DMD is employed to investigate the dynamic stall and the wake evolution of the VAWT in the absolute frame and the relative frame, respectively. Details of different possessing methods are presented. Finally, depending on the corresponding frequencies obtained before, the dominant modes are extracted from the CFD results by DMD. The extracted modes corresponding to specific frequencies can capture the coherent structures with different scales, which reflecting the characteristics of the propagation of shedding vortices from blades and the bluff-body oscillation in the wake of the VAWT.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Environmental activism and vertical-axis wind turbine preferences in California
    Hui, Iris
    Cain, Bruce E.
    Dabiri, John O.
    WIND ENERGY, 2019, 22 (12) : 1733 - 1745
  • [22] Inboard/outboard plasma actuation on a vertical-axis wind turbine
    Greenblatt, David
    Lautman, Ronen
    RENEWABLE ENERGY, 2015, 83 : 1147 - 1156
  • [23] Analysis of Photovoltaic Modules Attached with a Vertical-Axis Wind Turbine
    Al Tarabsheh, A.
    Akmal, M.
    Hareb, M.
    2017 6TH INTERNATIONAL CONFERENCE ON CLEAN ELECTRICAL POWER (ICCEP): RENEWABLE ENERGY IMPACT, 2017, : 41 - 45
  • [24] An optimized airfoil geometry for vertical-axis wind turbine applications
    Meana-Fernandez, A.
    Diaz-Artos, L.
    Oro, J. M. Fernandez
    Velarde-Suarez, S.
    INTERNATIONAL JOURNAL OF GREEN ENERGY, 2020, 17 (03) : 181 - 195
  • [25] Structural optimisation of vertical-axis wind turbine composite blades based on finite element analysis and genetic algorithm
    Wang, Lin
    Kolios, Athanasios
    Nishino, Takafumi
    Delafin, Pierre-Luc
    Bird, Theodore
    COMPOSITE STRUCTURES, 2016, 153 : 123 - 138
  • [26] An investigation on the aerodynamic performance of a co-axial contra-rotating vertical-axis wind turbine
    Poguluri, Sunny Kumar
    Lee, Hyebin
    Bae, Yoon Hyeok
    ENERGY, 2021, 219
  • [27] Self-similarity and flow characteristics of vertical-axis wind turbine wakes: an LES study
    Abkar, Mahdi
    Dabiri, John O.
    JOURNAL OF TURBULENCE, 2017, 18 (04): : 373 - 389
  • [28] Design of Rotor Blades for Vertical Axis Wind Turbine with Wind Flow Modifier for Low Wind Profile Areas
    Anthony, Mohanasundaram
    Prasad, Valsalal
    Raju, Kannadasan
    Alsharif, Mohammed H.
    Geem, Zong Woo
    Hong, Junhee
    SUSTAINABILITY, 2020, 12 (19) : 1 - 24
  • [29] A Dynamic Rotor Vertical-Axis Wind Turbine with a Blade Transitioning Capability
    Antar, Elie
    El Cheikh, Amne
    Elkhoury, Michel
    ENERGIES, 2019, 12 (08)
  • [30] Simulating the aerodynamic performance and wake dynamics of a vertical-axis wind turbine
    Scheurich, Frank
    Fletcher, Timothy M.
    Brown, Richard E.
    WIND ENERGY, 2011, 14 (02) : 159 - 177