发表论文
部分发表论文:
[1] H. Chen, F.R. Ming*, S.L. Sun, A.M. Zhang. Study on the flooding characteristics of a deep-water submarine based on δ plus-smoothed particle hydrodynamics method and graphic processing units acceleration. Physics of Fluids, 2024, 36 (1): 012132.
[2] Y.T. Sui, F.R. Ming*, S.P. Wang, Q. Zhong, S. Zhang. Experimental and numerical investigations on the transient impact load of the oblique water entry of the concave-nose projectiles. International Journal of Multiphase Flow, 2024, 174: 104748.
[3] W.T. Liu, A.M. Zhang*, X.H. Miao, F.R. Ming, Y.L. Liu. Investigation of hydrodynamics of water impact and tail slamming of high-speed water entry with a novel immersed boundary method. Journal of Fluid Mechanics, 2023,958: A42.
[4] Q.S. Zhang, F.R. Ming*, X.J. Liu, W.T. Liu, A.M. Zhang. Experimental investigation of the dynamic evolution of cavity during the free water-exit of a high-pressure venting vehicle. Physics of Fluids, 2023, 35 (12): 122118.
[5] Y.T. Sui, F.R. Ming*, S.P. Wang, R. Han. Experimental investigation on the impact force of the oblique water entry of a slender projectile with spring buffer. Applied Ocean Research, 2023, 138: 103631.
[6] W.B. Liu, F.R. Ming*, H. Chen, A.M. Zhang. Experimental study on the air cushion effect during the flooding process of a damaged ship cabin. Physics of Fluids, 2023, 35 (8): 082114.
[7] 张阿漫*,明付仁,刘云龙,李帅,王诗平. 水下爆炸载荷特性及其作用下的舰船毁伤与防护研究综述. 中国舰船研究, 2023, 18: 1-17.
[8] K. Zhao, S.F. Yang, F.R. Ming*. Numerical analysis of water entry under ocean currents with smoothed particle hydrodynamics method. Physics of Fluids, 2023, 35 (6): 062103.
[9] M.K. Li, A.M. Zhang*, F.R. Ming, Y.X. Peng. A coupled smoothed particle hydrodynamics-finite volume method for three-dimensional modeling of bubble dynamics. Physics of Fluids, 2023, 35 (5):056117.
[10] X.L. Fang, F.R. Ming*, P.P. Wang, P.N. Sun, A.M. Zhang. Application of SPH method in the study of ship capsizing induced by large-scale rising bubble. Ocean Engineering, 2022, 257: 111629.
[11] H. Cheng, Y. Liu, F.R. Ming*, P.N. Sun. Investigation on the bouncing and coalescence behaviors of bubble pairs based on an improved APR-SPH method. Ocean Engineering, 2022, 255: 111401.
[12] W.B. Liu, F.R. Ming*, S.P. Wang, S. Zhang. Application of smoothed particle hydrodynamics method for simulating the flooding process of a damaged ship cabin in full-time domain. Ocean Engineering, 2022, 248: 110716.
[13] X.L. Fang, F.R. Ming*, P.P. Wang, Z.F. Meng, A.M. Zhang. Application of multiphase Riemann-SPH in analysis of air-cushion effect and slamming load in water entry. Ocean Engineering, 2022, 248: 110789.
[14] M.K. Li, A.M. Zhang*, Y.X. Peng, F.R. Ming. An improved model for compressible multiphase flows based on Smoothed Particle Hydrodynamics with enhanced particle regeneration technique. Journal of Computational Physics, 2022, 458: 111106.
[15] Y.T. Sui, S. Li*, F.R. Ming, A.M. Zhang. An experimental study of the water entry trajectories of truncated cone projectiles: The influence of nose parameters. Physics of Fluids, 2022, 34 (5): 052102.
[16] Z.F. Meng, A.M. Zhang*, P.P. Wang, F.R. Ming, B.C. Khoo. A targeted essentially non-oscillatory (TENO) SPH method and its applications in hydrodynamics. Ocean Engineering 2022, 243: 110100.
[17] P.P. Wang, A.M. Zhang*, Z.F. Meng, F.R. Ming, X.L. Fang. A new type of WENO scheme in SPH for compressible flows with discontinuities. Computer Methods in Applied Mechanics and Engineering, 2021, 381: 113770.
[18] Y.T. Sui, A.M. Zhang*, F.R. Ming, S. Li. Experimental investigation of oblique water entry of high-speed truncated cone projectiles: Cavity dynamics and impact load. Journal of Fluids and Structures, 2021, 104: 103305.
[19] Y.X. Peng, A.M. Zhang*, F.R. Ming. Numerical simulation of structural damage subjected to the near-field underwater explosion based on SPH and RKPM. Ocean Engineering, 2021, 222: 108576.
[20] Y.X. Peng, A.M. Zhang*, F.R. Ming. Particle regeneration technique for Smoothed Particle Hydrodynamics in simulation of compressible multiphase flows. Computer Methods in Applied Mechanics and Engineering, 2021, 376: 113653.
[21] Y.X. Peng, A.M. Zhang*, F.R. Ming. A 3D meshfree crack propagation algorithm for the dynamic fracture in arbitrary curved shell. Computer Methods in Applied Mechanics and Engineering, 2020, 367: 113139.
[22] M.K. Li, A.M. Zhang*, F.R. Ming, P.N. Sun, Y.X. Peng. An axisymmetric multiphase SPH model for the simulation of rising bubble. Computer Methods in Applied Mechanics and Engineering, 2020, 366: 113039.
[23] Z.F. Meng, P.P. Wang, A.M. Zhang*, F.R. Ming, P.N. Sun. A multiphase SPH model based on Roe's approximate Riemann solver for hydraulic flows with complex interface. Computer Methods in Applied Mechanics and Engineering, 2020, 365(15): 112999.
[24] P.P. Wang, Z.F. Meng, A.M. Zhang*, F.R. Ming, P.N. Sun. Improved particle shifting technology and optimized free-surface detection method for free-surface flows in smoothed particle hydrodynamics. Computer Methods in Applied Mechanics and Engineering, 2019, 357: 112580.
[25] P.P Wang, A.M. Zhang*, F.R. Ming, P.N. Sun, H. Cheng. A novel non-reflecting boundary condition for fluid dynamics solved by smoothed particle hydrodynamics. Journal of Fluid Mechanics, 2019, 860: 81-114.
[26] Y.X.Peng, A.M. Zhang*, F.R. Ming, S.P. Wang. A meshfree framework for the numerical simulation of elasto-plasticity deformation of ship structure. Ocean Engineering, 2019, 192: 106507.
[27] X.Y. Cao, L. Tao*, A.M. Zhang, F.R. Ming. Smoothed particle hydrodynamics (SPH) model for coupled analysis of a damaged ship with internal sloshing in beam seas. Physics of Fluids, 2019, 31 (3): 032103.
[28] Y.X. Peng, A.M. Zhang*, S.F. Li, F.R. Ming. A beam formulation based on RKPM for the dynamic analysis of stiffened shell structures. Computational Mechanics, 2019, 63: 35-48.
[29] F.R. Ming, A.M. Zhang*, H. Cheng, P.N. Sun. Numerical simulation of a damaged ship cabin flooding in transversal waves with Smoothed Particle Hydrodynamics method. Ocean Engineering, 2018, 165: 336-352.
[30] Y.X. Peng, A.M. Zhang*, F.R. Ming. A thick shell model based on Reproducing Kernel Particle Method and its application on geometrically nonlinear analysis. Computational Mechanics, 2018, 62: 309-321.