Numerical Seakeeping Analysis for a Floating Helicopter After Ditching in Water

被引:1
作者
Katsuno, Eduardo Tadashi [1 ]
Peters, Andreas [1 ]
el Moctar, Ould [1 ]
机构
[1] Univ Duisburg Essen, Inst Ship Technol Ocean Engn & Transport Syst, D-47057 Duisburg, Germany
来源
JOURNAL OF OFFSHORE MECHANICS AND ARCTIC ENGINEERING-TRANSACTIONS OF THE ASME | 2025年 / 147卷 / 01期
关键词
computational fluid dynamics; fluid-structure interaction; hydrodynamics; wave mechanics and wave effects;
D O I
10.1115/1.4065709
中图分类号
P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
This paper investigates the seakeeping behavior of helicopters after an emergency landing in water, focusing on a Northern North Sea wave climate and considering a realistic helicopter geometry. Computational fluid dynamics techniques, including the cell-centered finite volume method and boundary element methods, were utilized to analyze motion responses and load distribution. The study ensures numerical result reliability through recommended simulation practices. Results indicate that the inviscid model produces similar outcomes to the viscous model in decay tests with roll, pitch, and heave motions. Natural periods for roll, pitch, and heave motions were obtained. Linearity between incident wave amplitude and pitch/heave response was noted for regular waves, while roll linearity was limited for small angles. In irregular wave conditions, helicopters tended to align perpendicular to waves over time, resulting in increased peak roll angles with higher significant wave heights. Exceedance rates of maximum roll peaks, useful for the assessment of capsizing probability, were quantified for different significant wave heights.
引用
收藏
页数:12
相关论文
共 32 条
[11]   Influence of Viscosity and Non-Linearities in Predicting Motions of a Wind Energy Offshore Platform in Regular Waves [J].
Ferrandis, Jose del Aguila ;
Bonfiglio, Luca ;
Rodriguez, Ricardo Zamora ;
Chryssostomidis, Chryssostomos ;
Faltinsen, Odd Magnus ;
Triantafyllou, Michael .
JOURNAL OF OFFSHORE MECHANICS AND ARCTIC ENGINEERING-TRANSACTIONS OF THE ASME, 2020, 142 (06)
[12]  
Ferziger J.H., 2020, COMPUTATIONAL METHOD, DOI 10.1007/978-3-319-99693-6
[13]  
ITTC, 2011, Technical Report
[14]  
ITTC, 2017, Technical Report
[15]  
Katsuno E.T., 2023, Seakeeping behavior of a helicopter landing in waves, V7
[16]   A review of human factors causations in commercial air transport accidents and incidents: From to 2000-2016 [J].
Kharoufah, Husam ;
Murray, John ;
Baxter, Glenn ;
Wild, Graham .
PROGRESS IN AEROSPACE SCIENCES, 2018, 99 :1-13
[17]  
Lewandowski E. M., 2004, The Dynamics of Marine Craft: Maneuvering and Seakeeping, V22, DOI [10.1142/4815, DOI 10.1142/4815]
[18]   A Comparative Study of Computational Methods for Wave-Induced Motions and Loads [J].
Ley, Jens ;
el Moctar, Ould .
JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2021, 9 (01) :1-28
[19]   An overview of the current research on stability of ships and ocean vehicles: The STAB2018 perspective [J].
Manderbacka, Teemu ;
Themelis, Nikolaos ;
Backalov, Igor ;
Boulougouris, Evangelos ;
Eliopoulou, Eleftheria ;
Hashimoto, Hirotada ;
Konovessis, Dimitris ;
Leguen, Jean-Francois ;
Miguez Gonzalez, Marcos ;
Rodriguez, Claudio A. ;
Rosen, Anders ;
Ruponen, Pekka ;
Shigunov, Vladimir ;
Schreuder, Martin ;
Terada, Daisuke .
OCEAN ENGINEERING, 2019, 186
[20]  
National Transportation Safety Board, 1998, Aviation Coding Manual, Technical Report