Modeling and performance estimation for L-shaped OWC wave energy converters with a theoretical correction for spring-like air compressibility

被引:1
作者
Nguyen, Duy Tong [1 ,3 ]
Chow, Yi-Chih [1 ,3 ]
Lin, Chen-Chou [1 ,2 ]
机构
[1] Natl Taiwan Ocean Univ, Ctr Ocean Energy Syst, Keelung, Taiwan
[2] Natl Taiwan Ocean Univ, Dept Mech & Mechatron Engn, Keelung, Taiwan
[3] Natl Taiwan Ocean Univ, Dept Syst Engn & Naval Architecture, Keelung, Taiwan
关键词
Oscillating water column (OWC); L-shaped OWC; Spring-like air compressibility effect; Scaling-rematched approach; Theoretical correction; Performance estimation; OSCILLATING SURFACE-PRESSURE; OPTIMIZATION; SYSTEMS;
D O I
10.1016/j.renene.2024.121499
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The investigation of Oscillating Water Columns (OWC) has gained significant attention in recent years thanks to their resilient structural design, allowing them to withstand harsh environmental conditions. This study focuses on the L-shaped OWC (L-OWC) due to its excellent energy capture efficiency. It should be noted that air compressibility plays a significant role in the plenum chamber of the OWC, especially at full scale. The present paper proposes a scaling-rematched approach, facilitating the evaluation of hydrodynamic coefficients and the performance estimation with a theoretical correction for the unmatched scaling problem of spring-like air compressibility. The methodology is applied successfully to a model-scale L-OWC design, employing threedimensional, incompressible-flow simulations combined with an impeller model. The present study reveals the hydrodynamic characteristics (advantages) of the L-OWC: small fluid damping coefficient and large added mass, and hence the possibility that the spring-like air compressibility can be used to raise the efficiency of power capturing. Furthermore, there exists an interval where the air compressibility has a positive effect on the performance, not only having a significantly longer span than that of the conventional OWC but also much more directly matching the period range of high energy potential found in the wave climate of Northeastern Taiwan waters.
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页数:16
相关论文
共 30 条
  • [21] Optimisation of turbine-induced damping for an OWC wave energy converter using a RANS-VOF numerical model
    Lopez, I.
    Pereiras, B.
    Castro, F.
    Iglesias, G.
    [J]. APPLIED ENERGY, 2014, 127 : 105 - 114
  • [22] Design Selection and Geometry in OWC Wave Energy Converters for Performance
    Lopez, Ivan
    Carballo, Rodrigo
    Fouz, David Mateo
    Iglesias, Gregorio
    [J]. ENERGIES, 2021, 14 (06)
  • [23] Numerical Simulation of a Dual-Chamber Oscillating Water Column Wave Energy Converter
    Ning, Dezhi
    Wang, Rongquan
    Zhang, Chongwei
    [J]. SUSTAINABILITY, 2017, 9 (09)
  • [24] Stepped sea bottom effects on the efficiency of nearshore oscillating water column device
    Rezanejad, K.
    Bhattacharjee, J.
    Guedes Soares, C.
    [J]. OCEAN ENGINEERING, 2013, 70 : 25 - 38
  • [25] WAVE GENERATION BY AN OSCILLATING SURFACE-PRESSURE AND ITS APPLICATION IN WAVE-ENERGY EXTRACTION
    SARMENTO, AJNA
    FALCAO, AFD
    [J]. JOURNAL OF FLUID MECHANICS, 1985, 150 (JAN) : 467 - 485
  • [26] Evaluation of air compressibility effects on the performance of fixed OWC wave energy converters using CFD modelling
    Simonetti, I.
    Cappietti, L.
    Elsafti, H.
    Oumeraci, H.
    [J]. RENEWABLE ENERGY, 2018, 119 : 741 - 753
  • [27] Suzuki M, 2004, INT OFFSHORE POLAR E, P202
  • [28] Torre-Enciso Y., 2009, Proceedings of 8th European Wave Tidal Energy Conference, P319
  • [29] Tzang S.Y., 2018, 4 AS WAV TID EN C AW
  • [30] Coast/breakwater-integrated OWC: A theoretical model
    Zheng, Siming
    Zhang, Yongliang
    Iglesias, Gregorio
    [J]. MARINE STRUCTURES, 2019, 66 : 121 - 135