Validation of Theoretical Estimation Methods and Maximum Value Distribution Calculation for Parametric Roll Amplitude in Long-Crested Irregular Waves
Keiji Katsumura, Leo Dostal, Taiga Kono, Yuuki Maruyama, Masahiro, Sakai, Atsuo Maki

TL;DR
This study validates and improves theoretical methods for estimating parametric roll amplitudes in irregular waves, comparing them with experimental data and proposing corrections for better accuracy in predicting maximum roll amplitudes.
Contribution
It validates and refines theoretical estimation methods for parametric roll amplitudes, enhancing their accuracy through experimental comparison and correction techniques.
Findings
Theoretical PDFs differ from experimental results.
Correcting GM variation improves estimation accuracy.
Method using moment equations estimates maximum amplitude distribution.
Abstract
Parametric rolling is a parametric excitation phenomenon caused by GM variation in waves. There are a lot of studies of the estimation the conditions, the occurrence, and the amplitude of parametric rolling. On the other hand, there are relatively few cases in which theoretical methods for estimating parametric roll amplitudes in irregular waves have been validated in tank tests. The primary objective of this study is to validate theoretical estimation methods for the parametric roll amplitude in irregular waves and improve their accuracy. First, the probability density functions (PDF) of the parametric roll amplitude obtained from the model ship motion experiment in irregular waves are compared with that obtained from theoretical estimation methods. Second, the method to improve the accuracy of estimation of the roll restoring variation in irregular waves is suggested. Third, the…
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Taxonomy
TopicsShip Hydrodynamics and Maneuverability · Ocean Waves and Remote Sensing · Aerodynamics and Fluid Dynamics Research
