scholarly journals Sliding Mode Control of a Nonlinear Wave Energy Converter Model

2021 ◽  
Author(s):  
Tania Demonte Gonzalez
2018 ◽  
Vol 163 ◽  
pp. 275-287 ◽  
Author(s):  
Oscar Barambones ◽  
José A. Cortajarena ◽  
José M. Gonzalez de Durana ◽  
Patxi Alkorta

2021 ◽  
Vol 9 (9) ◽  
pp. 951
Author(s):  
Tania Demonte Gonzalez ◽  
Gordon G. Parker ◽  
Enrico Anderlini ◽  
Wayne W. Weaver

The most accurate wave energy converter models for heaving point absorbers include nonlinearities, which increase as resonance is achieved to maximize the energy capture. Over the power production spectrum and within the physical limits of the devices, the efficiency of wave energy converters can be enhanced by employing a control scheme that accounts for these nonlinearities. This paper proposes a sliding mode control for a heaving point absorber that includes the nonlinear effects of the dynamic and static Froude-Krylov forces. The sliding mode controller tracks a reference velocity that matches the phase of the excitation force to ensure higher energy absorption. This control algorithm is tested in regular linear waves and is compared to a complex-conjugate control and a nonlinear variation of the complex-conjugate control. The results show that the sliding mode control successfully tracks the reference and keeps the device displacement bounded while absorbing more energy than the other control strategies. Furthermore, due to the robustness of the control law, it can also accommodate disturbances and uncertainties in the dynamic model of the wave energy converter.


Author(s):  
Daniel Tim Gaebele ◽  
Mario Edgardo Magana ◽  
Ted Brekken ◽  
Joao C. C. Henriques ◽  
Ana Alexandra de Freitas Dias Ipolliti Carrelhas ◽  
...  

Author(s):  
Zhongqiang Zheng ◽  
Zhipeng Yao ◽  
Zongyu Chang ◽  
Tao Yao ◽  
Bo Liu

Point absorber wave energy converter is one of the most effective wave energy harness devices. Most of the wave energy converters generate energy by oscillating the floating body. Usually, the power-take-off system is simplified as a linear spring and a linear damper. However, the narrow frequency bandwidth around a particular resonant frequency is not suitable for real vibrations applications. Thus, a nonlinear hardening spring and a linear damper are applied in the power-take-off system. The bandwidth of hardening mechanism is discussed. The dynamic model of wave energy converter is built in regular waves with time domain method. The results show that the nonlinear wave energy converter has higher conversion efficiency than the linear wave energy converter more than the natural frequency state. The conversion efficiency of the nonlinear wave energy converter in the low frequency state is closed to the linear converter. The amplitude of the incident wave, the damping of the nonlinear wave energy converter and the nonlinear parameter [Formula: see text] affect the energy capture performance of the wave energy converter.


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