A real time sliding mode control for a wave energy converter based on a wells turbine

被引:18
|
作者
Barambones, Oscar [1 ]
Cortajarena, Jose A. [1 ]
Gonzalez de Durana, Jose M. [1 ]
Alkorta, Patxi [1 ]
机构
[1] Univ Basque Country, EUI Vitoria, Automat Control & Syst Engn Dept, Nieves Cano 12,1006, Vitoria, Spain
关键词
Wave power; Wave energy converters; Sliding mode control; Real-time control; DFIG (doubly-fed induction generator); PERFORMANCE; RESOURCE;
D O I
10.1016/j.oceaneng.2018.05.058
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Due to the nonlinear dynamics and uncertainties usually present in wave energy conversion systems, the efficiency of these devices can be enhanced employing a robust control algorithms. Wave energy converters are constructed using electric generators of variable velocity, like double feed induction generator (DFIG) since they may improve the system efficiency to generate power when compared to fixed speed generators. The main reason is that this generators with variable speed may adapt the speed of the turbine in order to maintain the optimal flow coefficient values which improves the efficiency of the Wells turbine. However, a suitable speed controller is required in these systems first in order to avoid the stalling phenomenon and second in order to track the optimal turbine reference velocity that optimizes the power generation. In this paper a real time sliding mode control scheme for wave energy conversion systems that incorporate a Wells turbine and a DFIG is proposed. The Lyapunov stability theory is used to analyse the stability of this control scheme under parameter uncertainties and system disturbances. Next, the proposed control scheme is validated first by means of some simulation examples using the Matlab/Simulink software and second using a real-time experimental platform based on a dSPACE DS1103 control board.
引用
收藏
页码:275 / 287
页数:13
相关论文
共 50 条
  • [21] A buck converter design based on sliding mode control strategy
    Gao, Yu
    Zhou, Chu
    Zhou, Bin
    Qu, Shaocheng
    FRONTIERS OF MANUFACTURING SCIENCE AND MEASURING TECHNOLOGY III, PTS 1-3, 2013, 401 : 2033 - 2036
  • [22] Sliding mode control of SEPIC converter based photovoltaic system
    Zhang, Meng
    Zhong, Ningfan
    Ma, Mingyuan
    SYSTEMS SCIENCE & CONTROL ENGINEERING, 2021, 9 (S2) : 112 - 118
  • [23] Complex phenomena in SEPIC converter based on sliding mode control
    Wang, Shi-Bing
    Zhou, Yufei
    Iu, Herbert H. C.
    Chen, Jun-Ning
    2007 IEEE INTERNATIONAL SYMPOSIUM ON CIRCUITS AND SYSTEMS, VOLS 1-11, 2007, : 2407 - +
  • [24] Dynamic Buoy Effects on a Sliding Wave Energy Converter with eSpring Control
    Chen, H. Ming
    DelBalzo, Donald R.
    OCEANS 2016 - SHANGHAI, 2016,
  • [25] On DSP-based real time control of an induction motor using sliding mode
    Benchaib, A
    Tadjine, M
    Rachid, A
    1996 IEEE INTERNATIONAL WORKSHOP ON VARIABLE STRUCTURE SYSTEMS - VSS '96, PROCEEDINGS, 1996, : 78 - 83
  • [26] Wells turbine for wave energy conversion: a review
    Shehata, Ahmed S.
    Xiao, Qing
    Saqr, Khalid M.
    Alexander, Day
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2017, 41 (01) : 6 - 38
  • [27] A modified Wells turbine for wave energy conversion
    Setoguchi, T
    Santhakumar, S
    Takao, M
    Kim, TH
    Kaneko, K
    RENEWABLE ENERGY, 2003, 28 (01) : 79 - 91
  • [28] Integral sliding mode control for back-to-back converter of DFIG wind turbine system
    Merabet, Adel
    Al-Durra, Ahmed
    Debouza, Mahdi
    Tanvir, Aman A.
    Eshaft, Hisham
    JOURNAL OF ENGINEERING-JOE, 2020, 2020 (10): : 834 - 842
  • [29] A Sliding Mode Control based Multi-Functional Power Converter for Electric Vehicles and Energy Applications
    Na, Woonki
    Quattum, Basheer
    Publes, Andy
    Maddipatla, Vamsipriya
    2013 IEEE INTERNATIONAL ELECTRIC MACHINES & DRIVES CONFERENCE (IEMDC), 2013, : 742 - 746
  • [30] Sliding Mode Control for Voltage Source Converter Applied to Wind Energy Systems
    Kairous, D.
    Beaudoin, J. J.
    Wamkeue, R.
    Ouhrouche, M.
    2014 INTERNATIONAL CONFERENCE ON RENEWABLE ENERGY RESEARCH AND APPLICATION (ICRERA), 2014, : 389 - 394