Shock-induced atomisation of a liquid metal droplet

被引:8
|
作者
Sharma, Shubham [1 ]
Chandra, Navin Kumar [1 ]
Kumar, Aloke [1 ]
Basu, Saptarshi [1 ,2 ]
机构
[1] Indian Inst Sci, Dept Mech Engn, Bangalore 560012, India
[2] Indian Inst Sci, Interdisciplinary Ctr Energy Res, Bangalore, India
关键词
drops; BREAKUP; AEROBREAKUP; DISPERSION; SPHERE; OXIDE; SIZE; WAVE;
D O I
10.1017/jfm.2023.705
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The present study uses Galinstan as a test fluid to investigate the shock-induced atomisation of a liquid metal droplet in a high-Weber-number regime (We similar to 400-8000). Atomisation dynamics is examined for three test environments: oxidizing (Galinstan-air), inert (Galinstan-nitrogen) and conventional fluids (deionised water-air). Due to the readily oxidizing nature of liquid metals, their atomisation in an industrial scale system is generally carried out in inert atmosphere conditions. However, no previous study has considered gas-induced secondary atomisation of liquid metals in inert conditions. Due to experimental challenges associated with molten metals, laboratory scale models are generally tested for conventional fluids like deionised water, liquid fuels, etc. The translation of results obtained from conventional fluid to liquid metal atomisation is rarely explored. Here a direct multiscale spatial and temporal comparison is provided between the atomisation dynamics of conventional fluid and liquid metals under oxidizing and inert conditions. The liquid metal droplet undergoes breakup through the shear-induced entrainment mode for the studied range of Weber number values. The prevailing mechanism is explained based on the relative dominance of droplet deformation and Kelvin-Helmholtz wave formation. The study provides quantitative and qualitative similarities for the three test cases and explains the differences in morphology of fragmenting secondary droplets in the oxidizing test case (Galinstan-air) due to rapid oxidation of the fragmenting ligaments. A phenomenological framework is postulated for predicting the morphology of secondary droplets. The formation of flake-like secondary droplets in the Galinstan air test case is based on the oxidation rate of liquid metals and the properties of the oxide layer formed on the atomizing ligament surface.
引用
收藏
页数:25
相关论文
共 50 条
  • [41] Numerical analysis of droplet breakup, cooling, and solidification during gas atomisation
    Wang, Gezhou
    Deng, Yuanbin
    Adjei-Kyeremeh, Frank
    Zhang, Jiali
    Raffeis, Iris
    Buehrig-Polaczek, Andreas
    Kaletsch, Anke
    Broeckmann, Christoph
    POWDER METALLURGY, 2023, 66 (05) : 493 - 508
  • [42] Numerical Study on Liquid Droplet Internal Flow Under Shock Impact
    Guan, Ben
    Liu, Yao
    Wen, Chih-Yung
    Shen, Hua
    AIAA JOURNAL, 2018, 56 (09) : 3382 - 3387
  • [43] Instability and low-frequency unsteadiness in a shock-induced laminar separation bubble
    Sansica, Andrea
    Sandham, Neil D.
    Hu, Zhiwei
    JOURNAL OF FLUID MECHANICS, 2016, 798 : 5 - 26
  • [44] Shock-induced ignition with three-step chain-branching kinetics
    Gavilanes, Josue Melguizo
    Bauwens, Luc
    SCIENCE AND TECHNOLOGY OF ENERGETIC MATERIALS, 2011, 72 (5-6) : 169 - 173
  • [45] Experimental investigation of the shock-induced flow over a wall-mounted cylinder
    Ozawa, H.
    Laurence, S. J.
    JOURNAL OF FLUID MECHANICS, 2018, 849 : 1009 - 1042
  • [46] Laser astrophysics experiment on the amplification of magnetic fields by shock-induced interfacial instabilities
    Sano, Takayoshi
    Tamatani, Shohei
    Matsuo, Kazuki
    Law, King Fai Farley
    Morita, Taichi
    Egashira, Shunsuke
    Ota, Masato
    Kumar, Rajesh
    Shimogawara, Hiroshi
    Hara, Yukiko
    Lee, Seungho
    Sakata, Shohei
    Rigon, Gabriel
    Michel, Thibault
    Mabey, Paul
    Albertazzi, Bruno
    Koenig, Michel
    Casner, Alexis
    Shigemori, Keisuke
    Fujioka, Shinsuke
    Murakami, Masakatsu
    Sakawa, Youichi
    PHYSICAL REVIEW E, 2021, 104 (03)
  • [47] On the scaling of three-dimensional shock-induced separated flow due to protuberances
    Bhardwaj, S.
    Vamsi, K. Hemanth Chandra
    Sriram, R.
    PHYSICS OF FLUIDS, 2022, 34 (07)
  • [48] Evolution of shock-induced reactive and inert double-layer gas cylinders
    Li, Xin
    Hao, Jiaao
    Fan, E.
    Uy, Ken Chun Kit
    Shao, Xinke
    Wen, Chih-Yung
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2025, 109 : 1064 - 1080
  • [49] Shock-induced phase transition in systems of hard spheres with internal degrees of freedom
    Taniguchi, Shigeru
    Mentrelli, Andrea
    Zhao, Nanrong
    Ruggeri, Tommaso
    Sugiyama, Masaru
    PHYSICAL REVIEW E, 2010, 81 (06):
  • [50] Correlation for Length of Impinging Shock-Induced Large Separation Bubble at Hypersonic Speed
    Sriram, R.
    Jagadeesh, G.
    AIAA JOURNAL, 2015, 53 (09) : 2771 - 2775