Open Access

Load Distribution Prediction and Design Models for Ship Special Mechanical Devices and Equipment under Non-linear Sea Conditions

  
Mar 17, 2025

Cite
Download Cover

[1] Ghesmi, M., & Brindley, S. (2021). A nonlinear finite element method to assess loads on container stacks. Ocean Engineering, 235, 109430. Ghesmi M. Brindley S. ( 2021 ). A nonlinear finite element method to assess loads on container stacks . Ocean Engineering , 235 , 109430 . Search in Google Scholar

[2] Mousavi, S. M., Khoogar, A. R., & Ghassemi, H. (2022). Ship nonlinear roll motion identification using artificial neural network. Zeszyty Naukowe Akademii Morskiej w Szczecinie, (72 (144). Mousavi S. M. Khoogar A. R. Ghassemi H. ( 2022 ). Ship nonlinear roll motion identification using artificial neural network . Zeszyty Naukowe Akademii Morskiej w Szczecinie , ( 72 (144 ). Search in Google Scholar

[3] Tian, J., Zhu, P. Q., Ding, J., & Sun, S. L. (2024). Fully nonlinear interaction between a ship-type floater and waves. Ocean Engineering, 309, 118243. Tian J. Zhu P. Q. Ding J. Sun S. L. ( 2024 ). Fully nonlinear interaction between a ship-type floater and waves . Ocean Engineering , 309 , 118243 . Search in Google Scholar

[4] Waskito, K. T., Kashiwagi, M., Iwashita, H., & Hinatsu, M. (2020). Prediction of nonlinear vertical bending moment using measured pressure distribution on ship hull. Applied Ocean Research, 101, 102261. Waskito K. T. Kashiwagi M. Iwashita H. Hinatsu M. ( 2020 ). Prediction of nonlinear vertical bending moment using measured pressure distribution on ship hull . Applied Ocean Research , 101 , 102261 . Search in Google Scholar

[5] Xu, J., Wang, Y., Ma, J., & Zhan, Y. (2023). Cascade control of active heave compensation nonlinear system for marine crane. Journal of Marine Science and Engineering, 11(5), 1092. Xu J. Wang Y. Ma J. Zhan Y. ( 2023 ). Cascade control of active heave compensation nonlinear system for marine crane . Journal of Marine Science and Engineering , 11 ( 5 ), 1092 . Search in Google Scholar

[6] Qian, Y., Fang, Y., & Lu, B. (2019). Adaptive robust tracking control for an offshore ship-mounted crane subject to unmatched sea wave disturbances. Mechanical Systems and Signal Processing, 114, 556-570. Qian Y. Fang Y. Lu B. ( 2019 ). Adaptive robust tracking control for an offshore ship-mounted crane subject to unmatched sea wave disturbances . Mechanical Systems and Signal Processing , 114 , 556 - 570 . Search in Google Scholar

[7] Cao, Y., Zhao, X., & Li, T. (2021, October). Nonlinear model predictive control of shipboard boom cranes with ship roll motion. In 2021 China Automation Congress (CAC) (pp. 5507-5512). IEEE. Cao Y. Zhao X. Li T. ( 2021 , October ). Nonlinear model predictive control of shipboard boom cranes with ship roll motion . In 2021 China Automation Congress (CAC) (pp. 5507 - 5512 ). IEEE . Search in Google Scholar

[8] Sun, Z., Liu, G. J., Zou, L., Zheng, H., & Djidjeli, K. (2021). Investigation of non-linear ship hydroelasticity by CFD-FEM coupling method. Journal of Marine Science and Engineering, 9(5), 511. Sun Z. Liu G. J. Zou L. Zheng H. Djidjeli K. ( 2021 ). Investigation of non-linear ship hydroelasticity by CFD-FEM coupling method . Journal of Marine Science and Engineering , 9 ( 5 ), 511 . Search in Google Scholar

[9] Xie, X., Li, M., Wang, J., & Zhu, L. (2022). Nonlinear dynamics of the rotor system with a floating raft isolation structure under the coupled motion of ship heaving and rolling. Proceedings of the Institution of Mechanical Engineers, Part K: Journal of Multi-body Dynamics, 236(3), 382-406. Xie X. Li M. Wang J. Zhu L. ( 2022 ). Nonlinear dynamics of the rotor system with a floating raft isolation structure under the coupled motion of ship heaving and rolling . Proceedings of the Institution of Mechanical Engineers, Part K: Journal of Multi-body Dynamics , 236 ( 3 ), 382 - 406 . Search in Google Scholar

[10] Zhou, J., Ren, J., & Bai, W. (2023). Survey on hydrodynamic analysis of ship–ship interaction during the past decade. Ocean Engineering, 278, 114361. Zhou J. Ren J. Bai W. ( 2023 ). Survey on hydrodynamic analysis of ship–ship interaction during the past decade . Ocean Engineering , 278 , 114361 . Search in Google Scholar

[11] Huang, S., Jiao, J., & Chen, C. (2022). Numerical prediction of ship motion and slamming load characteristics in cross wave. Journal of Marine Science and Technology, 1-21. Huang S. Jiao J. Chen C. ( 2022 ). Numerical prediction of ship motion and slamming load characteristics in cross wave . Journal of Marine Science and Technology , 1 - 21 . Search in Google Scholar

[12] Corigliano, P., Frisone, F., Chianese, C., Altosole, M., Piscopo, V., & Scamardella, A. (2024). Fatigue Overview of Ship Structures under Induced Wave Loads. Journal of Marine Science and Engineering, 12(9), 1608. Corigliano P. Frisone F. Chianese C. Altosole M. Piscopo V. Scamardella A. ( 2024 ). Fatigue Overview of Ship Structures under Induced Wave Loads . Journal of Marine Science and Engineering , 12 ( 9 ), 1608 . Search in Google Scholar

[13] Gao, P., Yan, K., Ni, M., Fu, X., & Liu, Z. (2020). A dynamic model for continuous lowering analysis of deep-sea equipment, based on the lumped-mass method. Applied Sciences, 10(9), 3177. Gao P. Yan K. Ni M. Fu X. Liu Z. ( 2020 ). A dynamic model for continuous lowering analysis of deep-sea equipment, based on the lumped-mass method . Applied Sciences , 10 ( 9 ), 3177 . Search in Google Scholar

[14] Sun, Y., Zhang, Z., Zhang, J., Jin, X., Xu, B., Deng, Y., & Zhao, G. (2015). Effects of transient slamming and harmonic swings on the marine compound NC machine tool. Ocean Engineering, 108, 606-619. Sun Y. Zhang Z. Zhang J. Jin X. Xu B. Deng Y. Zhao G. ( 2015 ). Effects of transient slamming and harmonic swings on the marine compound NC machine tool . Ocean Engineering , 108 , 606 - 619 . Search in Google Scholar

[15] Chu, Y., Li, G., & Zhang, H. (2020, November). Incorporation of ship motion prediction into active heave compensation for offshore crane operation. In 2020 15th IEEE Conference on Industrial Electronics and Applications (ICIEA) (pp. 1444-1449). IEEE. Chu Y. Li G. Zhang H. ( 2020 , November ). Incorporation of ship motion prediction into active heave compensation for offshore crane operation . In 2020 15th IEEE Conference on Industrial Electronics and Applications (ICIEA) (pp. 1444 - 1449 ). IEEE . Search in Google Scholar

[16] Sugimoto, K., Fukumoto, Y., Matsuwaki, J., Akamatsu, T., Ashida, S., Onishi, K., ... & Ishibashi, K. (2020, August). Non linear effect on wave-induced loads for hull structural design: bulk carrier, container carrier, vehicles carrier. In International Conference on Offshore Mechanics and Arctic Engineering (Vol. 84324, p. V02AT02A022). American Society of Mechanical Engineers. Sugimoto K. Fukumoto Y. Matsuwaki J. Akamatsu T. Ashida S. Onishi K. Ishibashi K. ( 2020 , August ). Non linear effect on wave-induced loads for hull structural design: bulk carrier, container carrier, vehicles carrier . In International Conference on Offshore Mechanics and Arctic Engineering (Vol. 84324 , p. V02AT02A022 ). American Society of Mechanical Engineers . Search in Google Scholar

[17] Temarel, P., Bai, W., Bruns, A., Derbanne, Q., Dessi, D., Dhavalikar, S., ... & Wang, S. (2016). Prediction of wave-induced loads on ships: Progress and challenges. Ocean Engineering, 119, 274-308. Temarel P. Bai W. Bruns A. Derbanne Q. Dessi D. Dhavalikar S. Wang S. ( 2016 ). Prediction of wave-induced loads on ships: Progress and challenges . Ocean Engineering , 119 , 274 - 308 . Search in Google Scholar

[18] Jiao, J., Sun, S., & Ren, H. (2016). Predictions of wave induced ship motions and loads by large-scale model measurement at sea and numerical analysis. Brodogradnja: An International Journal of Naval Architecture and Ocean Engineering for Research and Development, 67(2), 81-100. Jiao J. Sun S. Ren H. ( 2016 ). Predictions of wave induced ship motions and loads by large-scale model measurement at sea and numerical analysis . Brodogradnja: An International Journal of Naval Architecture and Ocean Engineering for Research and Development , 67 ( 2 ), 81 - 100 . Search in Google Scholar

[19] Chen, Y., Xie, M., Zou, X., Liu, J., Yan, D., & Jing, X. (2024). Dynamic simulation on multilevel coupled vibration of a naval gun under foundation motion excitation of ship. Alexandria Engineering Journal, 107, 347-358. Chen Y. Xie M. Zou X. Liu J. Yan D. Jing X. ( 2024 ). Dynamic simulation on multilevel coupled vibration of a naval gun under foundation motion excitation of ship . Alexandria Engineering Journal , 107 , 347 - 358 . Search in Google Scholar

[20] Hannan, M. A., & Bai, W. (2016). Analysis of nonlinear dynamics of fully submerged payload hanging from offshore crane vessel. Ocean Engineering, 128, 132-146. Hannan M. A. Bai W. ( 2016 ). Analysis of nonlinear dynamics of fully submerged payload hanging from offshore crane vessel . Ocean Engineering , 128 , 132 - 146 . Search in Google Scholar

[21] Xu, Z., Wang, Z., Shen, Z., & Sun, Y. (2021). Nonlinear differential and integral sliding mode control for wave compensation system of ship-borne manipulator. Measurement and Control, 54(5-6), 711-723. Xu Z. Wang Z. Shen Z. Sun Y. ( 2021 ). Nonlinear differential and integral sliding mode control for wave compensation system of ship-borne manipulator . Measurement and Control , 54 ( 5-6 ), 711 - 723 . Search in Google Scholar

[22] Datta, R., & Guedes Soares, C. (2019). Prediction of Motions and Wave-Induced Loads on a Container Ship Using Nonlinear 3D Time-Domain Panel Method. In Proceedings of the Fourth International Conference in Ocean Engineering (ICOE2018) Volume 1 (pp. 709-720). Springer Singapore. Datta R. Guedes Soares C. ( 2019 ). Prediction of Motions and Wave-Induced Loads on a Container Ship Using Nonlinear 3D Time-Domain Panel Method . In Proceedings of the Fourth International Conference in Ocean Engineering (ICOE2018) Volume 1 (pp. 709 - 720 ). Springer Singapore . Search in Google Scholar

[23] Xueyan Li, Yucheng Sui, Yujie Meng, Xufeng Zhang, Abbas Khayyer, Ming He & Dongfang Liang. (2024). Theory for plunger-type wavemakers to generate second-order Stokes waves and Smoothed Particle Hydrodynamics verification. Applied Ocean Research104244-104244. Li Xueyan Sui Yucheng Meng Yujie Zhang Xufeng Khayyer Abbas He Ming Liang Dongfang ( 2024 ). Theory for plunger-type wavemakers to generate second-order Stokes waves and Smoothed Particle Hydrodynamics verification . Applied Ocean Research 104244 - 104244 . Search in Google Scholar

[24] Huang Shu ting, Liu Yan jun, Xue Gang & Xue Yi fan. (2022). Hydrodynamic Response and Power Performance of A Heave and Pitch Buoy Wave Energy Converter Under Bimodal Ochi—Hubble Wave Spectrum. China Ocean Engineering(1),28-37. ting Huang Shu jun Liu Yan Gang Xue fan Xue Yi ( 2022 ). Hydrodynamic Response and Power Performance of A Heave and Pitch Buoy Wave Energy Converter Under Bimodal Ochi—Hubble Wave Spectrum . China Ocean Engineering ( 1 ), 28 - 37 . Search in Google Scholar

[25] Qingsong Liu, Musa Bashir, Gregorio Iglesias, Weipao Miao, Minnan Yue, Zifei Xu... & Chun Li. (2024). Investigation of aero-hydro-elastic-mooring behavior of a H-type floating vertical axis wind turbine using coupled CFD-FEM method. Applied Energy123816-123816. Liu Qingsong Bashir Musa Iglesias Gregorio Miao Weipao Yue Minnan Xu Zifei Li Chun ( 2024 ). Investigation of aero-hydro-elastic-mooring behavior of a H-type floating vertical axis wind turbine using coupled CFD-FEM method . Applied Energy 123816 - 123816 . Search in Google Scholar

Language:
English