High-speed droplet impingement on dry and wetted substrates

被引:34
|
作者
Marzbali, Mason [1 ,2 ]
Dolatabadi, Ali [2 ]
机构
[1] Amer Univ Dubai, Dept Mech Engn, POB 28282, Dubai, U Arab Emirates
[2] Concordia Univ, Dept Mech Ind & Aerosp Engn, 1455 Maisonneuve Blvd, Montreal, PQ H3G 1M8, Canada
基金
加拿大创新基金会; 加拿大自然科学与工程研究理事会;
关键词
LIQUID-DROP; IMPACT; SURFACE; COLLISION; COATINGS; DYNAMICS; POWDERS; PLATE; HVOF;
D O I
10.1063/5.0020977
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
High-speed droplet impact is of great interest to power generation and aerospace industries due to the accrued cost of maintenance in steam and gas turbines. The repetitive impacts of liquid droplets onto rotor blades, at high relative velocities, result in blade erosion, which is known as liquid impingement erosion (LIE). Experimental and analytical studies in this field are limited due to the complexity of the droplet impact at such conditions. Hence, numerical analysis is a very powerful and affordable tool to investigate the LIE phenomenon. In this regard, it is crucial to understand the hydrodynamics of the impact in order to identify the consequent solid response before addressing the LIE problem. The numerical study of the droplet impingement provides the transient pressure history generated in the liquid. Determining the transient behavior of the substrate, in response to the pressure force exerted due to the droplet impact, would facilitate engineering new types of surface coatings that are more resistant to LIE. To that end, quantifying the impact pressure of compressible liquid droplets impinged at very high velocities, up to 500 m/s, on rigid solid substrates and liquid films is the main objective of the present work. A wide range of scenarios that commonly arise in the LIE problem are considered, i.e., droplet sizes between 200 mu m and 1000 mu m, impact velocities ranging from 100 m/s to 500 m/s, and liquid film thicknesses of 0 mu m-200 mu m. The maximum pressure exerted on the solid surface due to the droplet impact is calculated for both dry and wetted substrates. The results obtained from compressible fluid modeling are compared to those of other numerical studies and analytical correlations, available in the open literature. New correlations are developed for maximum impact pressure on rigid solids and liquid films that can be used to characterize the solid stress and estimate the lifetime of the material by carrying out the fatigue analysis.
引用
收藏
页数:20
相关论文
共 50 条
  • [1] Curved surface effect on high-speed droplet impingement
    Wu, Wangxia
    Liu, Qingquan
    Wang, Bing
    JOURNAL OF FLUID MECHANICS, 2021, 909 (909)
  • [2] Experiments on liquid droplet impingement erosion by high-speed spray
    Fujisawa, Nobuyuki
    Yamagata, Takayuki
    Hayashi, Kanto
    Takano, Tsuyoshi
    NUCLEAR ENGINEERING AND DESIGN, 2012, 250 : 101 - 107
  • [3] Numerical Analysis of Influence of Roughness of Material Surface on High-Speed Liquid Droplet Impingement
    Sasaki, Hirotoshi
    Iga, Yuka
    JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 2019, 141 (03):
  • [4] Effect of impact velocity on time-dependent force and droplet pressure in high-speed liquid droplet impingement
    Fujisawa, Kei
    ANNALS OF NUCLEAR ENERGY, 2022, 166
  • [5] Dry, high-speed milling
    不详
    AMERICAN CERAMIC SOCIETY BULLETIN, 2005, 84 (03): : 4 - 4
  • [6] High-speed dry hobbing
    Sulzer, G
    MANUFACTURING ENGINEERING, 1997, 119 (05): : 46 - &
  • [7] With droplet microfluidics to high-speed biotechnology
    Kästner B.
    Hengoju S.
    Svensson C.-M.
    Figge M.T.
    Rosenbaum M.A.
    BIOspektrum, 2021, 27 (3) : 260 - 262
  • [8] HIGH-SPEED DROPLET MIGRATION IN SILICON
    CLINE, HE
    ANTHONY, TR
    JOURNAL OF APPLIED PHYSICS, 1976, 47 (06) : 2325 - 2331
  • [9] Long-term investigation of erosion behaviors on metal surfaces by impingement of liquid droplet with high-speed
    Duk Hyun Choi
    Kyung Hoon Kim
    Hyung Joon Kim
    Journal of Mechanical Science and Technology, 2015, 29 : 1085 - 1091
  • [10] Compressible multicomponent flow simulations and data-driven modeling of high-speed liquid droplet impingement
    Fujisawa, Kei
    ANNALS OF NUCLEAR ENERGY, 2023, 194