Searching for a Numerical Model for Prediction of Pressure-Swirl Atomizer Internal Flow

被引:3
|
作者
Maly, Milan [1 ]
Slama, Jaroslav [2 ]
Cejpek, Ondrej [1 ]
Jedelsky, Jan [1 ]
机构
[1] Brno Univ Technol, Energy Inst, Tech 2, Brno 61669, Czech Republic
[2] Provyko Sro, Vinarska 460, Brno 60300, Czech Republic
来源
APPLIED SCIENCES-BASEL | 2022年 / 12卷 / 13期
关键词
pressure-swirl; internal flow; laminar; CFD; LDA; LES; two-phase; velocity; SPRAY CONE ANGLE; AIR-CORE; DISCHARGE COEFFICIENT; SIMPLEX; APPRAISAL; DYNAMICS; NOZZLE;
D O I
10.3390/app12136357
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Numerical prediction of discharge parameters allows design of a pressure-swirl atomizer in a fast and cheap manner, yet it must provide reliable results for a wide range of geometries and operating regimes. Many authors have used different numerical setups for similar cases and often concluded opposite suggestions on numerical setup. This paper compares 2D (two-dimensional) axisymmetric, 3D (three-dimensional) periodic and full 3D numerical models used for estimation of the internal flow characteristics of a pressure-swirl atomizer. The computed results are compared with experimental data in terms of spray cone angle, discharge coefficient (C-D), internal air-core dimensions, and velocity profiles. The three-component velocity was experimentally measured using a Laser Doppler Anemometry in a scaled transparent model of the atomizer. The internal air-core was visualized by a high-speed camera with backlit illumination. Tested conditions covered a wide range of the Reynolds numbers within the inlet ports, Re = 1000, 2000, 4000. The flow was treated as both steady and transient flow. The numerical solver used laminar and several turbulence models, represented by k-epsilon and k-omega models, Reynolds Stress model (RSM) and Large Eddy Simulation (LES). The laminar solver was capable of closely predicting the C-D, air-core dimensions and velocity profiles compared with the experimental results in both 2D and 3D simulations. The LES performed similarly to the laminar solver for low Re and was slightly superior for Re = 4000. The two-equation models were sensitive to proper solving of the near wall flow and were not accurate for low Re. Surprisingly, the RSM produced the worst results.
引用
收藏
页数:18
相关论文
共 50 条
  • [1] Internal flow characteristics in scaled pressure-swirl atomizer
    Maly, Milan
    Sapik, Marcel
    Jedelsky, Jan
    Janackova, Lada
    Jicha, Miroslav
    Slama, Jaroslav
    Wigley, Graham
    [J]. EFM17 - EXPERIMENTAL FLUID MECHANICS 2017, 2018, 180
  • [2] MODELING INTERNAL FLOW AND PRIMARY ATOMIZATION IN A SIMPLEX PRESSURE-SWIRL ATOMIZER
    Ferrando, D.
    Carreres, M.
    Belmar-Gil, M.
    Cervelló-Sanz, D.
    Duret, B.
    Reveillon, J.
    Salvador, F.J.
    Demoulin, F.X.
    [J]. Atomization and Sprays, 2023, 32 (03) : 1 - 28
  • [3] MODELING INTERNAL FLOW AND PRIMARY ATOMIZATION IN A SIMPLEX PRESSURE-SWIRL ATOMIZER
    Ferrando, D.
    Carreres, M.
    Belmar-Gil, M.
    Cervello-Sanz, D.
    Duret, B.
    Reveillon, J.
    Salvador, F. J.
    Demoulin, F. X.
    [J]. ATOMIZATION AND SPRAYS, 2023, 33 (03) : 1 - 28
  • [4] Viscous flow through the swirl chamber of a pressure-swirl atomizer
    Wimmer, E.
    Brenn, G.
    [J]. INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2013, 53 : 100 - 113
  • [5] A NUMERICAL STUDY OF THE INTERNAL FLOW IN A PRESSURE SWIRL ATOMIZER
    Qian, Weijia
    Hui, Xin
    Zhang, Chi
    Xu, Quanhong
    Lin, Yuzhen
    Sung, Chih-Jen
    [J]. PROCEEDINGS OF THE ASME TURBO EXPO: TURBINE TECHNICAL CONFERENCE AND EXPOSITION, 2017, VOL 4A, 2017,
  • [6] 2D and 3D numerical modelling of internal flow of Pressure-swirl atomizer
    Maly, Milan
    Slama, Jaroslav
    Sapik, Marcel
    Jedelsky, Jan
    [J]. EXPERIMENTAL FLUID MECHANICS 2018 (EFM18), 2019, 213
  • [7] Internal and near-nozzle flow of a pressure-swirl atomizer under varied fuel temperature
    Moon, Seoksu
    Bae, Choongsik
    Abo-Serie, Essam F.
    Choi, Jaejoon
    [J]. ATOMIZATION AND SPRAYS, 2007, 17 (06) : 529 - 550
  • [8] Numerical simulation of the internal flow of swirl atomizer under ambient pressure
    Fu, Qing-fei
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART C-JOURNAL OF MECHANICAL ENGINEERING SCIENCE, 2016, 230 (15) : 2650 - 2659
  • [9] Numerical Simulations of Internal Flow in an Aircraft Engine Pressure Swirl Atomizer
    Galbiati, C.
    Tonini, S.
    Conti, P.
    Cossali, G. E.
    [J]. JOURNAL OF PROPULSION AND POWER, 2016, 32 (06) : 1433 - 1441
  • [10] Primary Liquid Breakup in a Pressure-Swirl Atomizer
    Kushari, A.
    Barman, P.
    [J]. INTERNATIONAL JOURNAL OF FLUID MECHANICS RESEARCH, 2008, 35 (04) : 354 - 364