Experimental investigation of primary breakup in close-coupled gas atomization

被引:0
|
作者
Cheng, T. [1 ,2 ]
Leibovici, R. [1 ]
Kong, B. [2 ]
van Hout, R. [1 ]
机构
[1] Technion Israel Inst Technol, Dept Mech Engn, IL-3200003 Haifa, Israel
[2] Guangdong Technion Israel Inst Technol, Dept Chem Engn, Shantou 515063, Peoples R China
关键词
Close-coupled gas atomization; Primary breakup; Digital holography; Droplet distributions; LIQUID JET; NUMBER; DISTRIBUTIONS;
D O I
10.1016/j.ijmultiphaseflow.2024.105009
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Primary breakup of a liquid water jet in close-coupled gas atomization (CCGA) was studied using digital inline holography. Different nozzles with constant liquid protrusion length and characterized by three different apex angles,= = 14o, o , 24o o and 34o o were used. Measurements were conducted at two Weber numbers, We = 57.5 and 82.5. At each We, , five different momentum flux ratios, , were studied. A detailed analysis of the instantaneous liquid jet interfaces indicated that the "filming" occurred at a lower critical with increasing . Furthermore, with increasing , peak probabilities of interface lengths shifted to larger values while increasing led to increased maximum lengths. Fractal dimensions increased with downstream distance. Distributions of area-based droplet diameters spanned a broad size range up to 3 mm and were well described by least-squares fitted power laws, including an exponential cut-off. The highest number of droplets was generated at = = 24o o for = = 1.67 and 2.40 for We = 57.5 and 82.5, respectively. The percentage of circular droplets (based on a circularity-based threshold) was highest at = 14o o and decreased with increasing .
引用
收藏
页数:16
相关论文
共 50 条
  • [21] Close-coupled nozzle atomization integral simulation and powder preparation using vacuum induction gas atomization technology
    汪鹏
    李静
    王欣
    刘恒三
    范斌
    甘萍
    郭瑞峰
    葛学元
    王淼辉
    Chinese Physics B, 2021, 30 (02) : 563 - 578
  • [22] Production of Al-based amorphous alloy powders by close-coupled gas atomization
    Chen, Xin
    Ouyang, Hongwu
    Huang, Shicheng
    Huang, Baiyun
    Beijing Keji Daxue Xuebao/Journal of University of Science and Technology Beijing, 2008, 30 (01): : 35 - 39
  • [23] Experimental insights into the supersonic close-coupled atomization process employed for metal powder production
    Apell, Niklas
    Tropea, Cameron
    V. Roisman, Ilia
    Hussong, Jeanette
    POWDER TECHNOLOGY, 2024, 448
  • [24] Close-coupled nozzle atomization integral simulation and powder preparation using vacuum induction gas atomization technology*
    Wang, Peng
    Li, Jing
    Wang, Xin
    Liu, Heng-San
    Fan, Bin
    Gan, Ping
    Guo, Rui-Feng
    Ge, Xue-Yuan
    Wang, Miao-Hui
    CHINESE PHYSICS B, 2021, 30 (02)
  • [25] Analysis of gas recirculation flow effects in the melt feeding zone of a close-coupled gas atomization nozzle
    Anderson, IE
    Terpstra, RL
    Figliola, R
    POWDER MATERIALS: CURRENT RESEARCH AND INDUSTRIAL PRACTICES III, 2003, : 3 - 20
  • [26] Two phase flow model for the close-coupled atomization of metals
    Miller, RS
    Miller, SA
    Savkar, SD
    Mourer, DP
    INTERNATIONAL JOURNAL OF POWDER METALLURGY, 1996, 32 (04): : 341 - 352
  • [27] THE PHYSICAL MECHANISM FOR MELT PULSATION DURING CLOSE-COUPLED ATOMIZATION
    Mullis, Andrew M.
    ATOMIZATION AND SPRAYS, 2019, 29 (02) : 143 - 159
  • [28] Close-coupled
    不详
    PROFESSIONAL ENGINEERING, 2010, 23 (07) : 41 - 42
  • [29] Gas velocity measurements of close-coupled atomizers
    Zhao, Shun-li
    Fan, Jun-fei
    Ren, San-bing
    Le, Hai-rong
    PRICM 6: SIXTH PACIFIC RIM INTERNATIONAL CONFERENCE ON ADVANCED MATERIALS AND PROCESSING, PTS 1-3, 2007, 561-565 : 1819 - 1822
  • [30] Close-coupled gas atomization: High-frame-rate analysis of spray-cone geometry
    Mullis, Andrew M.
    Adkins, Nicholas J. E.
    Aslam, Zabeada
    McCarthy, I.
    Cochrane, Robert F.
    INTERNATIONAL JOURNAL OF POWDER METALLURGY, 2008, 44 (01): : 55 - 64