This study investigates the power generation system and control of an isolated wave device in which heave oscillation of a float drives a flywheel which in turn rotates the shaft of an induction generator. This represents a single unit within a “Manchester Bobber” wave power device; a concept which comprises a closely spaced array of heaving floats. The hydrodynamics have been tested at several scales, 1:100 th and 1:70 th scale in university test facilities and at 1:10 th scale in a large outdoor test tank to evaluate a non-linear model of device response. However, limited research has been undertaken on the power generation system or on control in order to maximise energy extraction from irregular wave-fields. In particular it is important to understand how the torquespeed curve of the generator influences performance and loading. To this end, a model has been developed using EMTDC (ElectroMagnetic Transient including DC) to simulate the coupled electro-mechanical system of a single drive-train when subject to irregular wave-forcing. This is a development of a model of the float hydrodynamics and mechanical system (by Stansby et al.) in which the generator was modelled as a constant torque machine. Sensitivity of device performance to the induction generator torque speed curve is investigated. It is shown that considerable increase of power capture can be obtained by appropriate selection of the generator characteristics but that this is sometimes offset by increased mechanical loads. Specifically, high rates of change of torque may occur. However, these may be reduced by using a proportional-integral controller whilst maintaining similar performance. A brief study of annual output is conducted for a range of sites to assess the variation of performance with deployment location. Finally, an outline of planned experimental validation of these findings is given.
[1]
M G de Sousa Prado,et al.
Modelling and test results of the Archimedes wave swing
,
2006
.
[2]
Johannes Falnes,et al.
Optimum Control of Oscillation of Wave-Energy Converters
,
2002
.
[3]
J. Falnes,et al.
Theoretical and experimental investigation of wave energy conversion by a phase-controlled heaving body
,
2006
.
[4]
A. Clément,et al.
Optimal Latching Control of a Wave Energy Device in Regular and Irregular Waves
,
2006
.
[5]
J. Falnes.
Ocean Waves and Oscillating Systems: Linear Interactions Including Wave-Energy Extraction
,
2002
.
[6]
Aurélien Babarit,et al.
Comparison of latching control strategies for a heaving wave energy device in random sea
,
2004
.
[7]
Raymond A. Serway,et al.
Printed test bank to accompany Physics for scientists and engineers with modern physics
,
1982
.
[8]
D. Evans,et al.
Arrays of three-dimensional wave-energy absorbers
,
1981
.
[9]
S H Salter,et al.
Power conversion mechanisms for wave energy
,
2002
.
[10]
Olimpo Anaya-Lara,et al.
Modelling and control of synchronous generators for wide‐range variable‐speed wind turbines
,
2007
.
[11]
Gilbert M. Masters,et al.
Renewable and Efficient Electric Power Systems
,
2004
.
[12]
T W Thorpe,et al.
An Overview of Wave Energy Technologies: Status, Performance and Costs
,
1999
.