Academic literature on the topic 'Ship maneuvering'
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Journal articles on the topic "Ship maneuvering"
Nedelcu, A. "Ship Maneuvering Prediction based Pivot Point Estimation." Scientific Bulletin of Naval Academy XXI, no. 2 (December 15, 2018): 81–86. http://dx.doi.org/10.21279/1454-864x-18-i2-008.
Full textZhang, Zhao, and Junsheng Ren. "Locally Weighted Non-Parametric Modeling of Ship Maneuvering Motion Based on Sparse Gaussian Process." Journal of Marine Science and Engineering 9, no. 6 (June 1, 2021): 606. http://dx.doi.org/10.3390/jmse9060606.
Full textLi, Dong Li, Liang Yang, Hong Yu Zhang, and Tian Shu Peng. "Numerical Simulation of Ship Maneuvering Motions in Viscous Flow." Key Engineering Materials 419-420 (October 2009): 677–80. http://dx.doi.org/10.4028/www.scientific.net/kem.419-420.677.
Full textLi, Ye, and Sander M. Çalisal. "Numerical Simulation of Ship Maneuverability in Wind and Current, With Escort Tugs." Marine Technology and SNAME News 42, no. 04 (October 1, 2005): 159–76. http://dx.doi.org/10.5957/mt1.2005.42.4.159.
Full textWu, Gongxing, Xiaolong Zhao, Yushan Sun, and Linling Wang. "Cooperative Maneuvering Mathematical Modeling for Multi-Tugs Towing a Ship in the Port Environment." Journal of Marine Science and Engineering 9, no. 4 (April 4, 2021): 384. http://dx.doi.org/10.3390/jmse9040384.
Full textGalor, Wiesław. "Determination of Dynamic Under Keel Clearance of Maneuvering Ship." Journal of Konbin 8, no. 1 (January 1, 2008): 53–60. http://dx.doi.org/10.2478/v10040-008-0100-0.
Full textSong, Hao Ran. "Study on Application in the Teaching of Ship Maneuvering Simulator." Applied Mechanics and Materials 310 (February 2013): 580–83. http://dx.doi.org/10.4028/www.scientific.net/amm.310.580.
Full textLee, Hyeong-Tak, Jeong-Seok Lee, Hyun Yang, and Ik-Soon Cho. "An AIS Data-Driven Approach to Analyze the Pattern of Ship Trajectories in Ports Using the DBSCAN Algorithm." Applied Sciences 11, no. 2 (January 15, 2021): 799. http://dx.doi.org/10.3390/app11020799.
Full textPHAM, Van Thuan, and Hiroaki KOBAYASHI. "Evaluation of Container Ship Maneuvering Characteristics from View Point of Ship Handling Ability." Journal of Japan Institute of Navigation 118 (2008): 283–89. http://dx.doi.org/10.9749/jin.118.283.
Full textYim, Jeong-Bin, and Deuk-Jin Park. "Estimating Critical Latency Affecting Ship’s Collision in Re-Mote Maneuvering of Autonomous Ships." Applied Sciences 11, no. 22 (November 19, 2021): 10987. http://dx.doi.org/10.3390/app112210987.
Full textDissertations / Theses on the topic "Ship maneuvering"
Pakkan, Sinan. "Modeling And Simulation Of A Maneuvering Ship." Master's thesis, METU, 2007. http://etd.lib.metu.edu.tr/upload/12608933/index.pdf.
Full textbetter&rdquo
real-time performance are evaluated comparatively in reference to original runs conducted before the application of improvement under consideration. A new method to the computation of the wave model that allows faster calculation in real-time is presented. A modular programming approach is followed in the overall algorithm development process in order to make the integration of new program components into the software, such as a new hull or propulsion model or a different integrator type possible, easily and quickly.
LaFontant, Patrick B. "Development and assessment of a ship maneuvering simulation model." Thesis, Monterey, Calif. : Springfield, Va. : Naval Postgraduate School ; Available from National Technical Information Service, 1995. http://handle.dtic.mil/100.2/ADA306194.
Full textThomas, Brian S. S. M. Massachusetts Institute of Technology. "Optimal control theory applied to ship maneuvering in restricted waters." Thesis, Massachusetts Institute of Technology, 2005. http://hdl.handle.net/1721.1/33591.
Full textIncludes bibliographical references (leaves 70-71).
Ship drivers have long understood that powerful interaction forces exist when ships operate in close proximity to rigid boundaries or other vessels. Controlling the effects of these forces has been traditionally handled by experienced helmsmen. The purpose of this research is to apply modern optimal control theory to these maneuvering scenarios in order to show that helmsman may some day be replaced by modern controllers. The maneuvering equations of motion are cast in a linear state space framework, permitting the design of a linear quadratic (LQ) controller. In addition, the hydrodynamic effects are modeled using potential flow theory in order to simulate the interaction forces and test the efficacy of the controller. This research demonstrates that the linear quadratic regulator effectively controls ship motions due to the presence of a boundary or other vessel over a broad range of speeds and separation distances. Furthermore, the method proposed provides stable control in the presence of additional. stochastic disturbances.
by Brian S. Thomas.
S.M.
Betancourt, Michelle K. "A comparison of ship maneuvering characteristics for rudders and podded propulsors." Thesis, Monterey, Calif. : Springfield, Va. : Naval Postgraduate School ; Available from National Technical Information Service, 2003. http://library.nps.navy.mil/uhtbin/hyperion-image/03Jun%5FBetancourt.pdf.
Full textXing-Kaeding, Yan. "Unified approach to ship seakeeping and maneuvering by a RANSE method." Hamburg Arbeitsbereiche Schiffbau, Techn. Univ. Hamburg-Harburg, 2006. http://doku.b.tu-harburg.de/volltexte/2006/303/.
Full textDu, Peng. "Numerical modeling and prediction of ship maneuvering and hydrodynamics during inland waterway transport." Thesis, Compiègne, 2018. http://www.theses.fr/2018COMP2459.
Full textIn this thesis, the ship hydrodynamics during inland waterway transport and ship maneuvering are investigated using CFD (Computational Fluid Dynamics) based onOpenFoam. Validation and verification studies are carried out for the mesh convergence, time step convergence, sensitivity to turbulence models and dynamic mesh techniques. A quaternion-based 6DoF motion solver is implemented for the trim and sinkage predictions. Environmental effects on several inland vessels (convoy 1, convoy 2, tanker) are studied using the validated numerical models. Three important aspects, the confinement effect of the waterway, head-on encounter and ship-bridge pile interaction are simulated. The testing conditions cover a wide range, including various channel dimensions, water depths, ship draughts and speeds. The ship resistance, wave pattern, Kelvin angle and wave elevation at specific positions are investigated as functions of these parameters. Ship maneuvering is investigated using virtual captive model tests based on the MMG (Mathematical Maneuvering Group) model. An actuator disk is implemented to replace the real propeller. Open water test, rudder force test, OTT (Oblique Towing Tank test) and CMT (Circular Motion Test) of a KVLCC2 model are carried out to obtain the hydrodynamic coefficients of the propeller, rudder and ship hull. Using the obtained coefficients, system-based maneuvering simulations are carried out and validated using the free running test data. These studies reproduce real ship tests and thus prove the validity of our numerical models. As a result, the numerical solver is promising in ship hydrodynamics and marine engineering simulations
Kizakkevariath, Sankaranarayanan. "Hydrodynamic analysis and computer simulation applied to ship interaction during maneuvering in shallow channels." Diss., Virginia Polytechnic Institute and State University, 1989. http://hdl.handle.net/10919/54219.
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Xing-Kaeding, Yan [Verfasser]. "Unified approach to ship seakeeping and maneuvering by a RANSE method / von Yan Xing-Kaeding." Hamburg : Arbeitsbereiche Schiffbau, Techn. Univ. Hamburg-Harburg, 2006. http://d-nb.info/980303303/34.
Full textMofidi, Alireza. "Ship maneuvers with discretized propeller and coupled propeller model/CFD." Diss., University of Iowa, 2017. https://ir.uiowa.edu/etd/5814.
Full textSilva, Gustavo Oliveira. "Implementação de efeitos de interação hidrodinâmica navio-navio e navio-margem em simuladores de manobras em tempo real." Universidade de São Paulo, 2017. http://www.teses.usp.br/teses/disponiveis/3/3152/tde-03082017-103227/.
Full textReal-time Ship Maneuvering Simulator models are becoming more common and necessary in the feasibility analysis of ports and access channels. The constant increase in the length and draught of vessels, not followed by equivalent ports development, makes the effects of shallow water, ship-bank and ship-port interaction with other structures more relevant during a maneuver. In order to increase the application range of this kind of simulator, the present work develops a mathematical model to estimate ship-bank and ship-ship hydrodynamic interaction forces and moments during a maneuver. The model uses, as a reference, data derived from an experimentally validated numerical method, the Boundary Element Method (BEM). Based on this method, some reference cases were selected to generate a database which would be used by our mathematical model to extrapolate results and estimate the interaction forces for any unexpected scenario. The forces obtained through the model are based on some input parameters, such as the vessel forward speed and the relative distances between the ship and bank and other ships. Thus, a series of measurements were developed to determine approximate geometries of the port and/or position of other ships at a given time slot. A model verification was performed for some unexpected scenarios, evaluating the errors associated with the model and its application. By taking similar works developed in maritime simulators as a comparison point, the errors obtained in our mathematical model were considered acceptable. The developed model was implemented in the ship maneuvering simulator located at TPN-USP, where some movement sensitivity tests were performed as well as some comparisons with other works, whenever possible.
Books on the topic "Ship maneuvering"
The dynamics of marine craft: Maneuvering and seakeeping. Singapore: World Scientific Pub. Co., 2004.
Find full textThe dynamics of marine craft: Maneuvering and seakeeping. New Jersey: World Scientific, 2004.
Find full textKalinichenko, Evgeny. Theory and methods for calculating the inertial-braking characteristics of a ship. «Scientific Route» OÜ, 2020. http://dx.doi.org/10.21303/978-617-7319-30-5.
Full textA Comparison of Ship Maneuvering Characteristics for Rudders and Podded Propulsors. Storming Media, 2003.
Find full textLewandowski, Edward M. The Dynamics of Marine Craft: Maneuvering and Seakeeping. World Scientific Publishing Company, 2003.
Find full textLewandowski, Edward M. The Dynamics of Marine Craft: Maneuvering and Seakeeping. World Scientific Publishing Company, 2003.
Find full textBook chapters on the topic "Ship maneuvering"
Stec, Andrzej. "Ship Maneuvering Model for Autopilot Simulator." In Advances in Intelligent Systems and Computing, 265–74. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-15796-2_27.
Full textLiu, Jialun. "Impacts of Rudder Configurations on Ship Maneuvering Performance." In Mathematical Modeling of Inland Vessel Maneuverability Considering Rudder Hydrodynamics, 201–20. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-47475-1_8.
Full textBassler, Christopher C., Ronald W. Miller, Arthur M. Reed, and Alan J. Brown. "Considerations for Bilge Keel Force Models in Potential Flow Simulations of Ship Maneuvering in Waves." In Contemporary Ideas on Ship Stability, 151–76. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-00516-0_9.
Full textBai, Yiming, Tieshan Li, and Xiaori Gao. "Ship Maneuvering Modeling Based on Fuzzy Rules Extraction and Optimization." In Advances in Neural Networks – ISNN 2013, 429–35. Berlin, Heidelberg: Springer Berlin Heidelberg, 2013. http://dx.doi.org/10.1007/978-3-642-39068-5_52.
Full textTran, Ngoc-Huy, Nguyen Nhut-Thanh Pham, Bao Hong-Vo Thai, and Tat-Hien Le. "Study on Optimized Guidance and Robust Control for the Ship Maneuvering." In Lecture Notes in Electrical Engineering, 510–20. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-69814-4_49.
Full textLi-Jia, Chen, and Huang Li-Wen. "Ship Collision Avoidance Path Planning by PSO Based on Maneuvering Equation." In Future Computing, Communication, Control and Management, 675–82. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-642-27326-1_87.
Full textMakiyama, Humberto S., Edgar Szilagyi, Gabriel H. Pereira, Leanderson R. R. Alves, Brian M. Kodama, Denis Taniguchi, and Eduardo A. Tannuri. "Computational Graphics and Immersive Technologies Applied to a Ship Maneuvering Simulator." In Advances in Intelligent Systems and Computing, 626–35. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-63403-2_56.
Full textAraki, Motoki, Hamid Sadat-Hosseini, Yugo Sanada, Naoya Umeda, and Frederick Stern. "Improved Maneuvering-Based Mathematical Model for Free-Running Ship Motions in Following Waves Using High-Fidelity CFD Results and System-Identification Technique." In Contemporary Ideas on Ship Stability, 91–115. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-00516-0_6.
Full textAbásolo, María José, Cristian García Bauza, Marcos Lazo, Juan P. D’Amato, Marcelo Vénere, Armando De Giusti, Cristina Manresa-Yee, and Ramón Mas-Sansó. "From a Serious Training Simulator for Ship Maneuvering to an Entertainment Simulator." In Articulated Motion and Deformable Objects, 106–17. Cham: Springer International Publishing, 2014. http://dx.doi.org/10.1007/978-3-319-08849-5_11.
Full textKaretnikov, Vladimir, Evgeniy Ol’Khovik, Artem Butsanets, and Aleksandra Ivanova. "Simulation of Maneuvering Trials of an Unmanned or Autonomous Surface Ship on a Navigation Simulator." In Lecture Notes in Civil Engineering, 146–56. Singapore: Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-33-6208-6_15.
Full textConference papers on the topic "Ship maneuvering"
Zhan, Dexin, Daniel Agar, Moqin He, Don Spencer, and David Molyneux. "Numerical Simulation of Ship Maneuvering in Pack Ice." In ASME 2010 29th International Conference on Ocean, Offshore and Arctic Engineering. ASMEDC, 2010. http://dx.doi.org/10.1115/omae2010-21109.
Full textEscario, Jose B., Juan F. Jimenez, and Jose M. Giron-Sierra. "Ship maneuvering planning using swarm intelligence." In OCEANS 2011 - SPAIN. IEEE, 2011. http://dx.doi.org/10.1109/oceans-spain.2011.6003449.
Full textPuodziunas, Jessica M., and John R. Somero. "Predicting Ship Maneuvering Through Machine Learning." In AIAA Scitech 2021 Forum. Reston, Virginia: American Institute of Aeronautics and Astronautics, 2021. http://dx.doi.org/10.2514/6.2021-0475.
Full textAmendola, José, Eduardo A. Tannuri, Fabio G. Cozman, and Anna H. Reali. "Batch Reinforcement Learning of Feasible Trajectories in a Ship Maneuvering Simulator." In XV Encontro Nacional de Inteligência Artificial e Computacional. Sociedade Brasileira de Computação - SBC, 2018. http://dx.doi.org/10.5753/eniac.2018.4422.
Full textFalzarano, Jeffrey M., and Chandan Lakhotia. "Effect of Icing on Ship Maneuvering Characteristics." In ASME 2008 27th International Conference on Offshore Mechanics and Arctic Engineering. ASMEDC, 2008. http://dx.doi.org/10.1115/omae2008-57920.
Full textSkejic, Renato, and Tor E. Berg. "Combined Seakeeping and Maneuvering Analysis of a Two-Ship Lightering Operations." In ASME 2010 29th International Conference on Ocean, Offshore and Arctic Engineering. ASMEDC, 2010. http://dx.doi.org/10.1115/omae2010-20616.
Full textSkejic, Renato, and Odd M. Faltinsen. "Maneuvering Behavior of Ships in Irregular Waves." In ASME 2013 32nd International Conference on Ocean, Offshore and Arctic Engineering. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/omae2013-10169.
Full textGuo, Bingjie, Eivind Ruth, Håvard Austefjord, Elzbieta M. Bitner-Gregersen, and Odin Gramstad. "Study on Ship Manoeuvering in Adverse Sea State." In ASME 2017 36th International Conference on Ocean, Offshore and Arctic Engineering. American Society of Mechanical Engineers, 2017. http://dx.doi.org/10.1115/omae2017-61935.
Full textGuo, Bingjie, Ruth Eivind, Håvard Austefjord, Elzbieta M. Bitner-Gregersen, and Olav Rognebakke. "Time Domain Analysis on Ship Maneuvering in Adverse Sea State." In ASME 2016 35th International Conference on Ocean, Offshore and Arctic Engineering. American Society of Mechanical Engineers, 2016. http://dx.doi.org/10.1115/omae2016-54589.
Full textRevestido, E., F. J. Velasco, I. Zamanillo, E. Lopez, and E. Moyano. "Parameter estimation of ship linear maneuvering models." In OCEANS 2011 - SPAIN. IEEE, 2011. http://dx.doi.org/10.1109/oceans-spain.2011.6003588.
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