Design of hydraulic power take-off systems unit parameters for multi-point absorbers wave energy converter

被引:6
作者
Waskito, Kurniawan T. [1 ]
Geraldi, Ario [1 ]
Ichi, Andi C. [1 ]
Yanuar [1 ]
Rahardjo, Gema P. [1 ]
Al Ghifari, Isyroqi [1 ]
机构
[1] Univ Indonesia, Dept Mech Engn, Depok 16424, Indonesia
关键词
Multi-point absorbers; Wave energy converter; Hydraulic PTO; Hydrodynamic parameters; Control strategy; Pressure drop; CONVERSION SYSTEMS; CONTROL STRATEGIES; SPEED CONTROL; PTO;
D O I
10.1016/j.egyr.2023.11.042
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
Ocean waves represent a substantial renewable energy source, prompting this study's exploration of harnessing this potential via multi-point floating absorbers equipped with hydraulic Power Take-Off (PTO) systems. The study's primary motivation is to comprehensively model a Wave Energy Converter (WEC), including the hydraulic PTO system's control mechanism and protection system. To optimize the WEC design, we first investigate the hydrodynamic parameters of the floating absorber, employing potential flow theories and assessing the effects of varying the diameter-to-draft ratio. Our research involves analyzing Response Amplitude Operators (RAOs) and hydrodynamic forces for different ratios to identify the most effective design, followed by using computed wave forces as inputs for PTO simulations in MATLAB/SimScape to determine the unit parameters. The analysis of RAOs and wave-exciting forces reveals that diameter-to-draft ratios between 0.67 and 1.0 yield the best WEC performance, offering promising recommendations. In the final step, we compare the performance of single and multi-point absorber system simulations, assessing factors such as pressure drop, flow rate, and power output at the hydraulic motor. This comparison concludes that multi-point absorbers generate a more stable power output than their single-absorber counterparts.
引用
收藏
页码:115 / 127
页数:13
相关论文
共 38 条
[1]  
ANSYS, ANSYS Aqwa User's Manual, Release 18.2. 2016a
[2]  
ANSYS, ANSYS Aqwa Theory Manual
[3]  
Cargo C., 2012, Design and control of hydraulic power take-offs for wave energy converters
[4]   Modeling Innovative Power Take-Off Based on Double-Acting Hydraulic Cylinders Array for Wave Energy Conversion [J].
Carlos Antolin-Urbaneja, Juan ;
Cortes, Alain ;
Cabanes, Itziar ;
Estensoro, Patxi ;
Lasa, Joseba ;
Marcos, Marga .
ENERGIES, 2015, 8 (03) :2230-2267
[5]  
Carrasco J.F., 2014, Low Carbon Economy
[6]  
Costello R., 2011, P 9 EUR WAV TID EN C
[7]   Energy-maximising control of wave energy converters using a moment-domain representation [J].
Faedo, Nicolas ;
Scarciotti, Giordano ;
Astolfi, Alessandro ;
Ringwood, John V. .
CONTROL ENGINEERING PRACTICE, 2018, 81 :85-96
[8]   Design tradeoffs of an oil-hydraulic power take-off for wave energy converters [J].
Gaspar, Jose F. ;
Calvario, Miguel ;
Kamarlouei, Mojtaba ;
Guedes Soares, C. .
RENEWABLE ENERGY, 2018, 129 :245-259
[9]   Analysis of electrical drive speed control limitations of a power take-off system for wave energy converters [J].
Gaspar, Jose F. ;
Kamarlouei, Mojtaba ;
Sinha, Ashank ;
Xu, Haitong ;
Calvario, Miguel ;
Fay, Francois-Xavier ;
Robles, Eider ;
Soares, C. Guedes .
RENEWABLE ENERGY, 2017, 113 :335-346
[10]   Speed control of oil-hydraulic power take-off system for oscillating body type wave energy converters [J].
Gaspar, Jose F. ;
Kamarlouei, Mojtaba ;
Sinha, Ashank ;
Xu, Haitong ;
Calvario, Miguel ;
Fay, Francois-Xavier ;
Robles, Eider ;
Guedes Soares, C. .
RENEWABLE ENERGY, 2016, 97 :769-783