과제정보
This work is financially supported by National Natural Science Foundation of China (Grand No.61801275), Shandong Provincial Natural Science Foundation (Grand No. ZR2020QA045), International Science and Technology Cooperation Project of Shandong Academy of Sciences(Grant No.2019GHZD01), Key Research and Development Plan Project of Shandong Province(Grant No.2018JHZ002).
참고문헌
- Akbari, H., Pooyarad, A., 2020. Wave force on protected submarine pipelines over porous and impermeable beds using SPH numerical model. Appl. Ocean Res. 98, 102118. https://doi.org/10.1016/j.apor.2020.102118
- Algie, C., Gourlay, T., Lazauskas, L., Raven, H., 2018. Application of potential flow methods to fast displacement ships at transcritical speeds in shallow water. Appl. Ocean Res. 71, 11-19. https://doi.org/10.1016/j.apor.2017.11.009
- Amiri, M.M., Sphaier, S.H., Vitola, M.A., Esperanca, P.T., 2019. URANS investigation of the interaction between the free surface and a shallowly submerged underwater vehicle at steady drift. Appl. Ocean Res. 84, 192-205. https://doi.org/10.1016/j.apor.2019.01.012
- Caplier, C., Rousseaux, G., Calluaud, D., David, L., 2020. Effects of finite water depth and lateral confinement on ships wakes and resistance. J. Hydrodyn. 32 (3), 582-590. https://doi.org/10.1007/s42241-019-0054-9
- Capone, T., Monaghan, A.P., J, J., 2010. SPH modelling of water waves generated by submarine landslides. J. Hydraul. Res. 48 (S1), 80-84. https://doi.org/10.1080/00221686.2010.9641248
- Carberry, M.S.R., Chen, D., Hartwig, J.W., Sahin, I., Tafuni, A., 2018. Hydrodynamic analysis and optimization of the Titan submarine via the SPH and Finitee-Volume methods. Comput. Fluids 174, 271-282. https://doi.org/10.1016/j.compfluid.2018.08.014
- Darmon, A., Benzaquen, M., RaphaeL, E., 2013. Kelvin wake pattern at large Froude numbers. J. Fluid Mech. 738 (R3), 1-8.
- Das, K., Janetzke, R., Basu, D., Green, S., Stamatakos, J., 2009. Numerical simulations of tsunami wave generation by submarine and aerial landslides using RANS and SPH models. In: Proceedings of the ASME 2009 28th International Conference on Ocean. Offshore and Arctic Engineering, Honolulu, Hawaii, USA.
- Groves, N.C., Huang, T.T., 1989. Geometric Characteristics of DARPA (Defense Advanced Research Projects Agency) SUBOFF Models (DTRC Model Numbers 5470 and 5471). DTRC/SHD-1298-01.
- He, J., Zhang, C., Zhu, Y., Wu, H., Yang, C., Noblesse, F., Gu, X., Li, W., 2015. Comparison of three simple models of Kelvin's ship wake. Eur. J. Mech. B Fluid 49, 12-19. https://doi.org/10.1016/j.euromechflu.2014.07.006
- Huang, T.T., Liu, H.L., 1994. Measurements of Flows over an Axisymmetric Body with Various Appendages in a Wind Tunnel: the DARPA SUBOFF Experimental Program, 19th Symposium on Naval Hydrodynamics, Seoul, South Korea.
- Jasak, H., Vukcevic, V., Gatin, I., Lalovic, I., 2019. CFD validation and grid sensitivity studies of full scale ship self propulsion. Int. J. Nav. Architect. Ocean Eng. 11 (1), 33-43. https://doi.org/10.1016/j.ijnaoe.2017.12.004
- Khalil, S.S., Hossein, M.S., 2018. Identification of underwater vehicles using surface wave pattern. Appl. Ocean Res. 78, 281-289. https://doi.org/10.1016/j.apor.2018.07.003
- Lateb, M., Masson, C., Stathopoulos, T., Bedard, C., 2013. Comparison of various types of k-ε models for pollutant emissions around a two-building configuration. J. Wind Eng. Ind. Aerod. 115, 9-21. https://doi.org/10.1016/j.jweia.2013.01.001
- Lee, C., Park, S., Yu, J., Choi, J., Lee, I., 2019. Effects of diffraction in regular head waves on added resistance and wake using CFD. Int. J. Nav. Architect. Ocean Eng. 11 (2), 736-749. https://doi.org/10.1016/j.ijnaoe.2019.02.013
- Liu, P., Qiu, J., 2017. Simulation of synthetic aperture radar imaging of dynamic wakes of submerged body. IET Radar, Sonar Navig. 11 (3), 481-489. https://doi.org/10.1049/iet-rsn.2016.0297
- Liu, T., Guo, Z., 2013. Analysis of wave spectrum for submerged bodies moving near the free surface. Ocean Eng. 58, 239-251. https://doi.org/10.1016/j.oceaneng.2012.10.003
- Liu, Y., Deng, R., Zhao, J., 2019. Simulation of Kelvin wakes in optical images of rough sea surface. Appl. Ocean Res. 89, 36-43. https://doi.org/10.1016/j.apor.2019.05.006
- Noblesse, F., He, J., Zhu, Y., Hong, L., Zhang, C., Zhu, R., Yang, C., 2014. Why can ship wakes appear narrower than Kelvin's angle. Eur. J. Mech. B Fluid 46, 164-171. https://doi.org/10.1016/j.euromechflu.2014.03.012
- Pethiyagoda, R., Mccue, S.W., Moroney, T.J., 2014. What is the apparent angle of a Kelvin ship wave pattern. J. Fluid Mech. 758, 468-485. https://doi.org/10.1017/jfm.2014.530
- Rabaud, M., Moisy, F., 2014. Narrow ship wakes and wave drag for planing hulls. Ocean Eng. 90, 34-38. https://doi.org/10.1016/j.oceaneng.2014.06.039
- Shariati, S.K., Mousavizadegan, S.H., 2017. The effect of appendages on the hydrodynamic characteristics of an underwater vehicle near the free surface. Appl. Ocean Res. 67, 31-43. https://doi.org/10.1016/j.apor.2017.07.001
- Shibata, K., Koshizuka, S., Sakai, M., Tanizawa, K., 2012. Lagrangian simulations of ship-wave interactions in rough seas. Ocean Eng. 42, 13-25. https://doi.org/10.1016/j.oceaneng.2012.01.016
- Shin, H., Paik, K., Jang, Y., Eom, M., Lee, S., 2020. A numerical investigation on the nominal wake of KVLCC2 model ship in regular head waves. Int. J. Nav. Architect. Ocean Eng. 12, 270-282. https://doi.org/10.1016/j.ijnaoe.2020.01.001
- Tafuni, A., Sahin, I., 2014. Seafloor pressure signatures of a high-speed boat in shallow water with SPH. In: International Conference on Ocean. Offshore and Arctic Engineering, San Francisco, California, USA.
- Tafuni, A., Sahin, I., Hyman, M., 2016. Numerical investigation of wave elevation and bottom pressure generated by a planing hull in finite-depth water. Appl. Ocean Res. 58, 281-291. https://doi.org/10.1016/j.apor.2016.04.002