A Generalized Hybrid RANSE/BEM Approach for the Analysis of Hull-Propeller Interaction in Off-Design Conditions

被引:2
|
作者
Calcagni, Danilo [1 ]
Dubbioso, Giulio [1 ]
Capone, Alessandro [1 ]
Ortolani, Fabrizio [1 ]
Broglia, Riccardo [1 ]
机构
[1] CNR INM, Natl Res Council, Inst Marine Engn, Via Vallerano 139, I-00128 Rome, Italy
关键词
ship in service; RANS; BEM; S-PIV; multiaxial force transducer; SINGLE BLADE; STRAIGHT; LOADS; SHIP;
D O I
10.3390/jmse9050482
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
During maneuvers, propellers' operation differs from their design due to strong modification of the wake field with respect to the straight-ahead motion. The consequent modification of the loads overstresses the mechanical components of the shaftline, exacerbates propeller side effects and worsens overall efficiency. Therefore, the analysis of these situations in the early design phase is pivotal to increase the operation capabilities and safety at sea. This task relies on novel tools capable to accurately predict the complex flow field that develops past the hull and the propeller loads. Since the solution of the fully coupled problem with the rotating propeller by viscous flow solver is impractical for routine applications, hybrid approaches are a viable alternative. In this paper, an interactive RANSE/BEM methodology is presented, where the propeller is replaced by rotating body forces that map the actual loading state of the blades, allowing a fully unsteady analysis of hull-propeller interaction. The methodology is applied to the straight ahead and 8.4 degrees pure drift motions of a twin screw propulsive configuration. Last, but not least, the study presents a validation study with accurate experimental data of the nominal wake field and single blade loads.
引用
收藏
页数:21
相关论文
共 50 条
  • [1] Estimation of hull-propeller interaction of a self-propelling model hull using a RANSE solver
    Dhinesh, G.
    Murali, K.
    Subramanian, V. Anantha
    SHIPS AND OFFSHORE STRUCTURES, 2010, 5 (02) : 125 - 139
  • [2] Propeller modeling approaches for off-design operative conditions
    Gaggero, Stefano
    Dubbioso, Giulio
    Villa, Diego
    Muscari, Roberto
    Viviani, Michele
    OCEAN ENGINEERING, 2019, 178 : 283 - 305
  • [3] Experimental and Numerical Investigation of Propeller Loads in Off-Design Conditions
    Ortolani, Fabrizio
    Dubbioso, Giulio
    Muscari, Roberto
    Mauro, Salvatore
    Di Mascio, Andrea
    JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2018, 6 (02)
  • [4] OFF-DESIGN ANALYSIS OF COUNTER-ROTATING PROPELLER CONFIGURATIONS
    KORKAN, KD
    GAZZANIGA, JA
    JOURNAL OF PROPULSION AND POWER, 1987, 3 (01) : 91 - 93
  • [5] Effects of propeller cavitation on ship propulsion performance in off-design operating conditions
    Tan, Quan
    Ding, Yu
    Sui, Congbiao
    Xiang, La
    OCEAN ENGINEERING, 2024, 313
  • [6] Off-design analysis of SOFC hybrid system
    Milewski, Jaroslaw
    Miller, Andrzej
    Salacinski, Jacek
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2007, 32 (06) : 687 - 698
  • [7] INTERACTION BETWEEN IMPELLER AND VOLUTE OF PUMPS AT OFF-DESIGN CONDITIONS
    LORETT, JA
    GOPALAKRISHNAN, S
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1986, 108 (01): : 12 - 18
  • [8] Numerical analysis of propeller and rudder system working in off-design condition on LNG carrier
    Handke, Jakub
    Abramowski, Tomasz
    SCIENTIFIC JOURNALS OF THE MARITIME UNIVERSITY OF SZCZECIN-ZESZYTY NAUKOWE AKADEMII MORSKIEJ W SZCZECINIE, 2010, 22 (94): : 83 - 87
  • [9] Performance Analysis of a Mach 12 Scramjet at Off-Design Conditions
    Moule, Y.
    Smart, M. K.
    JOURNAL OF PROPULSION AND POWER, 2013, 29 (01) : 282 - 285
  • [10] Predicting cavitating propeller noise in off-design conditions using scale-resolving CFD simulations
    Lidtke, Artur K.
    Lloyd, Thomas
    Lafeber, Frans Hendrik
    Bosschers, Johan
    OCEAN ENGINEERING, 2022, 254