Fluid-solid coupled simulation of hypervelocity impact and plasma formation

被引:3
|
作者
Islam, Shafquat T. [1 ]
Ma, Wentao [1 ]
Michopoulos, John G. [2 ]
Wang, Kevin [1 ]
机构
[1] Virginia Tech, Dept Aerosp & Ocean Engn, Blacksburg, VA 24061 USA
[2] US Naval Res Lab, Washington, DC USA
基金
美国国家科学基金会;
关键词
Hypervelocity impact; Ionization; Plasma; Fluid-structure interaction; Numerical methods; MULTIMATERIAL; FIVER;
D O I
10.1016/j.ijimpeng.2023.104695
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Previous theoretical and computational studies on hypervelocity impact have mainly focused on the dynamic response of the solid materials that constitute the projectile and the target, while the surrounding environment is often assumed to be a vacuum. In this paper, we consider impact events that occur in a fluid (e.g., gas) medium, and present a computational model that includes the dynamics, thermodynamics, and ionization of the surrounding fluid material. The model couples the compressible Navier-Stokes equations with the Saha equations to predict the onset and extent of ionization in the surrounding fluid. An extended level set method with two signed distance functions is employed to track the three material interfaces between the projectile, the target, and the ambient fluid. This method accommodates the large deformation, contact, and separation of the interfaces, while avoiding spurious overlapping of different material subdomains. The advective fluxes across material interfaces are computed by constructing and solving bimaterial Riemann problems, thereby taking into account the discontinuities in both state variables (e.g., density) and thermodynamic relations. The computational model is first verified for an infinite ideal plasma and a one-dimensional three-material impact problem. Next, the model is employed to analyze the impact of a tantalum rod projectile onto a soda lime glass (SLG) target in an argon gas environment. In different analyses, the impact velocity is varied between 3 and 6 km/s, and the radius of the projectile is varied between 2.5 and 10 mm. Each analysis starts with a steadystate fluid dynamics simulation that generates the shock-dominated hypersonic flow around the projectile. This flow field is then used as an initial condition to start the fluid-solid coupled impact simulation. The predicted maximum temperature and pressure within the SLG target agree reasonably well with published experimental data for a similar material (fused quartz). Within the ambient gas, the impact-generated shock wave is found to be stronger than the initial bow shock in front of the projectile. Behind this shock wave, a region of high pressure and temperature forms in the early stage of the impact, mainly due to the hypersonic compression of the fluid between the projectile and the target. The temperature within this region is significantly higher than the peak temperature in the solid materials. For impact velocities higher than 4 km/s, ionization is predicted. This finding indicates that the ambient gas may be a nontrivial contributor to the plasma formed in terrestrial and atmospheric hypervelocity impact events.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] Fluid-solid Coupled Simulation of a Novel Platelet Heat Exchanger Used in Solar Thermal Thruster
    Xing Baoyu
    Huang Minchao
    Cheng Mousen
    Liu Kun
    ADVANCED MATERIALS, MECHANICS AND INDUSTRIAL ENGINEERING, 2014, 598 : 281 - 287
  • [22] A porous cell method for the simulation of fluid-solid interactions
    DMCauson
    CGMingham
    水道港口, 2010, 31 (05) : 318 - 318
  • [23] Numerical Simulation of Fluid-Solid Coupling Seepage of Groundwater
    Xing Li-ming
    Liang Bing
    Li Gang
    FLOW IN POROUS MEDIA - FROM PHENOMENA TO ENGINEERING AND BEYOND, 2009, : 315 - +
  • [24] Simulation of Mechanism of Piping Based on Fluid-solid Coupling
    Su Hui
    Di WeiJin
    CIVIL ENGINEERING IN CHINA - CURRENT PRACTICE AND RESEARCH REPORT, 2010, : 656 - +
  • [25] On the calculation of supercritical fluid-solid equilibria by molecular simulation
    Albo, S
    Müller, EA
    JOURNAL OF PHYSICAL CHEMISTRY B, 2003, 107 (07): : 1672 - 1678
  • [26] Simulation of fluid-solid interaction within extracellular matrix
    Li, ZY
    Wang, W
    Parker, KH
    PROCEEDINGS OF THE WORLD ENGINEERS' CONVENTION 2004, VOL B, BIOLOGICAL ENGINEERING AND HEALTH CARE, 2004, : 82 - 85
  • [27] The numerical analysis of fluid-solid interactions for blood flow in arterial structures - Part 2: development of coupled fluid-solid algorithms
    Zhao, SZ
    Xu, XY
    Collins, MW
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART H-JOURNAL OF ENGINEERING IN MEDICINE, 1998, 212 (H4) : 241 - 252
  • [28] Hybrid modelling of coupled pore fluid-solid deformation problems
    Sakaguchi, H
    Mühlhaus, HB
    PURE AND APPLIED GEOPHYSICS, 2000, 157 (11-12) : 1889 - 1904
  • [29] Coupled Fluid-Solid Modelling of the Valve Dynamics in Reciprocating Compressors
    Ervik, Asmund
    Saai, Afaf
    Berstad, Torodd
    Meyer, Ole
    Tsuji, Takuma
    Oku, Tatsuya
    Hattori, Kazuhiro
    Yamada, Kazuya
    Delhaye, Virgile
    Neksa, Petter
    15TH IIR-GUSTAV LORENTZEN CONFERENCE ON NATURAL REFRIGERANTS, 2022, : 1147 - 1155
  • [30] An unsteady point vortex method for coupled fluid-solid problems
    Michelin, Sebastien
    Smith, Stefan G. Llewellyn
    THEORETICAL AND COMPUTATIONAL FLUID DYNAMICS, 2009, 23 (02) : 127 - 153