Investigation of nozzle geometry and wall roughness effects on diesel injector flow

被引:0
作者
Zainab, Saima [1 ]
Syed, Khalid Saifullah [2 ]
机构
[1] Women Univ, Dept Math, Multan, Pakistan
[2] Bahauddin Zakariya Univ, Ctr Adv Studies Pure & Appl Math, Multan, Pakistan
关键词
INTERFACE TRACKING; SURFACE-ROUGHNESS; CAVITATION; SPEED; VALIDATION; ALGORITHMS; VISCOSITY; MODEL;
D O I
10.1063/5.0172988
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The flow and design of fuel injector nozzles have a considerable influence on the spray and combustion characteristics of a diesel engine. In-cylinder combustion, atomization, and primary breakdown are all highly influenced by the cavitation and turbulence in the fuel injector nozzle. In this paper, the effect of the nozzle geometry parameters, wall roughness parameters, and pressure difference on the swirl number, mass flow rate, turbulent kinetic energy, and vapor volume fraction is explored. U-type nozzle hole geometry, a well-known benchmark for the injector nozzle flow, is used to evaluate mesh independence and model validation. Large-eddy simulations are performed to provide a precise presentation of the flow structures and turbulent eddies inside the nozzle. Multiphase flow is studied using the mixture model, whereas cavitation is studied using the Schnerr-Sauer model based on the Rayleigh-Plesset equation. We find that the wall roughness parameters have an exciting impact on the discharge coefficient, swirl number, and vapor volume fraction. Due to the non-monotonic dependence of nozzle flow characteristics on the pressure difference and the wall roughness parameters, we can always find such values of these input parameters that render optimal nozzle flow characteristics. In this way, these parameters provide good control of spray formation and consequently on the quality and rate of combustion in the diesel engine.
引用
收藏
页数:17
相关论文
共 48 条
[1]  
Atluri S. N., 2010, Computer Modeling in Engineering Science, V70, P11
[2]  
Bastawissi H. A.-E., 2014, Engineering, V6, P923, DOI [10.4236/eng.2014.613084, DOI 10.4236/ENG.2014.613084]
[3]   CFD evaluation of wind speed conditions in passages between parallel buildings - effect of wall-function roughness modifications for the atmospheric boundary layer flow [J].
Blocken, Bert ;
Carmeliet, Jan ;
Stathopoulos, Ted .
JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2007, 95 (9-11) :941-962
[4]   Index of resolution quality for large eddy simulations [J].
Celik, IB ;
Cehreli, ZN ;
Yavuz, I .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2005, 127 (05) :949-958
[5]   Experimental study on the effect of nozzle geometry on string cavitation in real-size optical diesel nozzles and spray characteristics [J].
Chen, Zhou ;
He, Zhixia ;
Shang, Weiwei ;
Duan, Lian ;
Zhou, Han ;
Guo, Genmiao ;
Guan, Wei .
FUEL, 2018, 232 :562-571
[6]   Influence of Diesel Fuel Viscosity on Cavitating Throttle Flow Simulations under Erosive Operation Conditions [J].
Cristofaro, Marco ;
Edelbauer, Wilfried ;
Koukouvinis, Phoevos ;
Gavaises, Manolis .
ACS OMEGA, 2020, 5 (13) :7182-7192
[7]  
Duke D. J., 2016, INT C LIQ AT SPRAY S, P4
[8]   Numerical simulation of wall roughness effects in cavitating flow [J].
Echouchene, F. ;
Belmabrouk, H. ;
Le Penven, L. ;
Buffat, M. .
INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2011, 32 (05) :1068-1075
[9]  
Franc JP., 2006, FUNDAMENTALS CAVITAT, V76
[10]   Robust computational algorithms for dynamic interface tracking in three dimensions [J].
Glimm, J ;
Grove, JW ;
Li, XL ;
Tan, DC .
SIAM JOURNAL ON SCIENTIFIC COMPUTING, 2000, 21 (06) :2240-2256