Accurate and computationally efficient mathematical models are fundamental for designing, optimizing, and controlling wave energy converters. Wave energy devices are likely to exhibit significant nonlinear behaviour, over their full operational envelope, so that nonlinear models may become indispensable. Froude-Krylov nonlinearities are of great importance in point absorbers but, in general, their calculation requires an often unacceptable increase in model complexity and computational time. However, if the body is assumed to be axisymmetric, it is possible to describe the whole geometry analytically, thereby allowing faster calculation of nonlinear Froude-Krylov forces. In this paper, a convenient parametrization of axisymmetric body...
Designing, optimizing and controlling a wave energy converter requires the construction of a mathema...
Two of the most common modes of oscillation of single degree of freedom wave energy converters are h...
Due to the amount of iterative computation involved, researchers involved in geometric optimisation ...
Accurate and computationally efficient mathematical models are fundamental for designing, optimizing...
Accurate and computationally efficient mathematical models are fundamental for designing, optimizing...
Most wave energy converters (WECs) are described by linear mathematical models, based on the main as...
Most mathematical models used to assess the motions of wave-energy converters are linear, which may...
Numerical models for heaving buoy wave energy converters are a fundamental tool for device design an...
Numerical models for heaving buoy wave energy converters are a fundamental tool for device de...
Nonlinear behaviour of wave energy converters in power production mode can be relevant depending on ...
High accuracy at a low computational time is likely to be a fundamental trait for mathematical model...
Floating wave energy converters usually exhibit significant nonlinear behaviour, especially due to l...
Designing, optimizing and controlling a wave energy converter requires the construction of a mathema...
Two of the most common modes of oscillation of single degree of freedom wave energy converters are h...
Due to the amount of iterative computation involved, researchers involved in geometric optimisation ...
Accurate and computationally efficient mathematical models are fundamental for designing, optimizing...
Accurate and computationally efficient mathematical models are fundamental for designing, optimizing...
Most wave energy converters (WECs) are described by linear mathematical models, based on the main as...
Most mathematical models used to assess the motions of wave-energy converters are linear, which may...
Numerical models for heaving buoy wave energy converters are a fundamental tool for device design an...
Numerical models for heaving buoy wave energy converters are a fundamental tool for device de...
Nonlinear behaviour of wave energy converters in power production mode can be relevant depending on ...
High accuracy at a low computational time is likely to be a fundamental trait for mathematical model...
Floating wave energy converters usually exhibit significant nonlinear behaviour, especially due to l...
Designing, optimizing and controlling a wave energy converter requires the construction of a mathema...
Two of the most common modes of oscillation of single degree of freedom wave energy converters are h...
Due to the amount of iterative computation involved, researchers involved in geometric optimisation ...