1. Haris S., Amdahl J.: Analysis of ship–ship collision damage accounting for bow and side deformation interaction. Marine Structures. No 7, Vol. 32, 2013, pp.18–48.10.1016/j.marstruc.2013.02.002
2. Liu B., Soares C.G.: Assessment of the strength of double-hull tanker side structures in minor ship collisions. Engineering Structures. Vol. 120, 2016, pp. 1–12.10.1016/j.engstruct.2016.04.011
3. Prabowo A.R., Dong M.B., Sohn J.M., Zakki A.F., Cao B., Wang Q.: Analysis of structural damage on the struck ship under side collision scenario. Alexandria Engineering Journal. 2017.10.1016/j.aej.2017.05.002
5. Liu B., Villavicencio R., Zhang S., Soares C.G.: Assessment of external dynamics and internal mechanics in ship collisions. Ocean Engineering. Vol. 141, 2017, pp. 326–336.10.1016/j.oceaneng.2017.06.053
6. Lee S.G., Lee J.S., Lee H.S., Park J.H., Jung T.Y.: Full-scale Ship Collision, Grounding and Sinking Simulation Using Highly Advanced M&S System of FSI Analysis Technique. Procedia Engineering. Vol. 173, 2017, p.1507-1514.10.1016/j.proeng.2016.12.232
7. Gagnon R.E., Wang J.: Numerical simulations of a tanker collision with a bergy bit incorporating hydrodynamics, a validated ice model and damage to the vessel. Cold Regions Science and Technology. No 5, Vol. 81, 2012, pp. 26–35.10.1016/j.coldregions.2012.04.006
8. Yu Z., Amdahl J., Storheim M.: A new approach for coupling external dynamics and internal mechanics in ship collisions. Marine Structures. Vol. 45, 2016, pp. 110–132.10.1016/j.marstruc.2015.11.001
9. Zhang A., Suzuki K.: A comparative study of numerical simulations for fluid–structure interaction of liquid-filled tank during ship collision. Ocean Engineering. No 5, Vol. 34, 2007, pp. 645–652.10.1016/j.oceaneng.2006.06.001
10. Jie C., Zhang A.M., Yao X.L., Yang S.T.: Influence of liquid cargo in tank on crashworthiness of double-skin side structure. Journal of Ship Mechanics. No 3, Vol. 15, 2011, pp. 259–268.
11. Wu W.F., Yang Y.B., Lu J.S., Deng J.J, Zhu F.X.: Study on liquid cargo sloshing impact on the performance of the double hull oil tanker collision. China Shiprepair. No 6, Vol. 29, 2016, pp.10–14.
12. Tabri K., Matusiak J., Varsta P.: Sloshing interaction in ship collisions—An experimental and numerical study. Ocean Engineering. No 17, Vol. 36, 2009, pp. 1366–1376.10.1016/j.oceaneng.2009.08.017
13. Rudan S., Tabri K., Klarić I.: Analysis of sloshing interaction in ship collisions by means of ALE finite element method. In: Proceedings of fifth International Conference on Collision and Grounding of Ships, Espoo, Finland, 2010, pp. 229–234.
14. Sun B., Hu Z., Wang G.: An analytical method for predicting the ship side structure response in raked bow collisions. Marine Structures. Vol. 41, 2015, pp. 288–311.10.1016/j.marstruc.2015.02.007
15. Belytschko T., Lin J.I., Chen-Shyh T.: Explicit algorithms for the nonlinear dynamics of shells. Computer Methods in Applied Mechanics and Engineering. No 2, Vol. 42, 1984, pp. 225–251.10.1016/0045-7825(84)90026-4
16. Song M., Ma J., Huang Y.: Fluid-structure interaction analysis of ship-ship collisions. Marine Structures. Vol. 55, 2017, pp. 121–136.10.1016/j.marstruc.2017.05.006