All Issue

2026 Vol.31, Issue 3 Preview Page

Original Article

30 September 2026. pp. 190-201
Abstract
References
1

2016, Josserand, C. and Thoroddsen, S.T., “Drop impact on a solid surface,” Annu. Rev. Fluid Mech., Vol.48, pp.365-391.

10.1146/annurev-fluid-122414-034401
2

2024, Sha, M., Sun, Y., Li, Y., Liu, Y., Fedotenkov, G., Rabinskiy, L., Babaytsev, A., and Li, Y., “Impact damage testing based on high-speed continuous water jet aircraft coatings,” Chin. J. Aeronaut., Vol.37, pp.249-264.

10.1016/j.cja.2024.05.017
3

2025, Lee, S. and Lee, D., “Modeling structural damage to line/space patterns from high-speed droplet impact in particulate cleaning on patterned wafers,” Adv. Powder Technol., Vol.36, pp.105081.

10.1016/j.apt.2025.105081
4

2019, Bartolomé, L. and Teuwen, J., “Prospective challenges in the experimentation of the rain erosion on the leading edge of wind turbine blades,” Wind Energy, Vol.22, pp.140-151.

10.1002/we.2272
5

2012, Antonini, C., Amirfazli, A. and Marengo, M., “Drop impact and wettability: From hydrophilic to superhydrophobic surfaces,” Phys. Fluids, Vol.24, pp.102104.

10.1063/1.4757122
6

2006, Yarin, A.L., “Drop Impact Dynamics: Splashing, Spreading, Receding, Bouncing, ...,” Annu. Rev. Fluid Mech., Vol.38, pp.159-192.

10.1146/annurev.fluid.38.050304.092144
7

2014, Soto, D., De Lariviere, A., Boutillon, X., Clanet, C. and Quere, D., “The force of impacting rain,” Soft Matter, Vol.10, pp.4929-4934.

10.1039/C4SM00513A
8

2017, Zhang, B., Li, J., Guo, P. and Lv, Q., “Experimental studies on the effect of Reynolds and Weber numbers on the impact forces of low-speed droplets colliding with a solid surface,” Exp. Fluids, Vol.58, article 125.

10.1007/s00348-017-2413-z
9

2018, Gordillo, L., Sun, T.-P. and Cheng, X., “Dynamics of drop impact on solid surfaces: evolution of impact force and self-similar spreading,” J. Fluid Mech., Vol.840, pp.190-214.

10.1017/jfm.2017.901
10

2022, Zhang, B., Sanjay, V., Shi, S., Zhao, Y., Lv, C., Feng, X.-Q. and Lohse, D., “Impact forces of water drops falling on superhydrophobic surfaces,” Phys. Rev. Lett., Vol.129, article 104501.

10.1103/PhysRevLett.129.104501
11

2020, Nguyen, T.V. and Ichiki, M., “Bubble entrapment during the recoil of an impacting droplet,” Microsyst. Nanoeng., Vol.6, article 36.

10.1038/s41378-020-0158-y34567650PMC8433192
12

2002, Shin, S. and Juric, D., “Modeling three-dimensional multiphase flow using a level contour reconstruction method for Front-tracking without connectivity,” J. Comput. Phys., Vol.180, pp.427-470.

10.1006/jcph.2002.7086
13

2001, Tryggvason, G., Bunner, B., Esmaeeli, A., Juric, D., Al-Rawahi, N., Tauber, W., Han, J., Nas, S. and Jan, Y.-J., “A front tracking method for the computations of multiphase flow,” J. Comput. Phys., Vol.169, pp.708-759.

10.1006/jcph.2001.6726
14

2001, Osher, S. and Fedkiw, R.P., “Level set methods: An overview and some recent results,” J. Comput. Phys., Vol.169, pp.463-502.

10.1006/jcph.2000.6636
15

2021, Yoon, I. and Shin, S., “Direct numerical simulation of droplet collision with stationary spherical particle: A comprehensive map of outcomes,” Int. J. Multiphase Flow, Vol.135, pp.103503.

10.1016/j.ijmultiphaseflow.2020.103503
16

2005, Bartolo, D., Josserand, C. and Bonn, D., “Retraction dynamics of aqueous drops upon impact on non-wetting surfaces,” J. Fluid Mech., Vol.545, pp.329-338.

10.1017/S0022112005007184
17

2017, Chen, L., Li, L., Li, Z. and Zhang, K., “Submillimeter-Sized Bubble Entrapment and a High-Speed Jet Emission during Droplet Impact on Solid Surfaces,” Langmuir, Vol.33, pp.7225-7230.

10.1021/acs.langmuir.7b01506
18

2013, Brämming, P., Eklöf, F.M., Näsström, F., Robinson, J. and Strömbäck, P., “Research Trends for Guided Weapons - Part 1,” Swedish Defence Research Agency (FOI) Report, FOI-R—3652—SE, pp.52.

19

2019, Hu, T., Ren, W., Zhao, Y. and Xue, Y., “The Research on Actuation Performance of MEMS Safety-and-Arming Device with Interlock Mechanism,” Micromachines, Vol.10, No.2, Article No.76.

10.3390/mi1002007630678157PMC6412507
20

1969, Mueller, E.A. and Sims, A.L., “Effects of Rainfall and Drop Size Spectra on the Standard and Modified MTSQ M564 Fuze,” Illinois State Water Survey Contract Report, CR 105, University of Illinois.

21

1981, Matthewson, M.J. and Gorham, D.A., “An Investigation of the Liquid Impact Properties of a GFRP Radome Material,” J. Mater. Sci., Vol.16, No.6, pp.1616-1626.

10.1007/BF00553975
22

1981, Zahavi, J., Nadiv, S. and Schmitt, G.F., “Indirect Damage in Composite Materials due to Raindrop Impact,” Wear, Vol.72, No.3, pp.305-313.

10.1016/0043-1648(81)90257-X
23

2024, Ji, J., Ren, J., Jiang, X., Wang, W., Yu, H., Yin, K. and Chen, B., “A Novel Method for Calculating Broadband Electrical Performance of High-Speed Aircraft Radome under Thermo-Mechanical-Electrical Coupling,” Chin. J. Aeronaut., Vol.37, No.9, pp.463-474.

10.1016/j.cja.2024.06.008
24

1981, Talreja, R., “Fatigue of Composite Materials: Damage Mechanisms and Fatigue-Life Diagrams,” Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences, Vol.378, No.1775, pp.461-475.

10.1098/rspa.1981.0163
Information
  • Publisher :Korean Society for Computational Fluids Engineering
  • Publisher(Ko) :한국전산유체공학회
  • Journal Title :Journal of Computational Fluids Engineering
  • Journal Title(Ko) :한국전산유체공학회지
  • Volume : 31
  • No :3
  • Pages :190-201
  • Received Date : 2026-08-31
  • Revised Date : 2026-09-15
  • Accepted Date : 2026-09-15