Numerical analysis of flow characteristics in diesel injector nozzles with convergent-divergent orifices

被引:10
|
作者
Salvador, Francisco J. [1 ]
de la Morena, Joaquin [1 ]
Carreres, Marcos [1 ]
Jaramillo, David [1 ]
机构
[1] Univ Politecn Valencia, CMT Motores Term, Camino Vera S-N, E-46022 Valencia, Spain
关键词
Nozzle; diesel; injection; Computational Fluid Dynamics; cavitation; convergent-divergent; CAVITATION PHENOMENON; INTERNAL FLOW; NEEDLE LIFT; SPRAYS; COMBUSTION; VELOCITY;
D O I
10.1177/0954407017692220
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The geometry of diesel injector nozzles is known to significantly affect the characteristic spray behavior and emissions formation. In this paper, a novel nozzle concept, consisting of orifices with a convergent-divergent shape, is investigated through Computational Fluid Dynamics techniques. Three of these nozzles, characterized by different degrees of conicity, are compared to a nozzle with cylindrical orifices, which acts as a baseline. A homogeneous equilibrium model, validated against experimental data in previous works by the authors, is used to calculate the eventual cavitation formation inside these orifices. Additionally, the characteristics of the flow at the orifice outlet are analyzed for the four aforementioned nozzles in terms of their steady-state mass flow, effective outlet velocity and area coefficient. The results show that convergent-divergent nozzles exhibit a high cavitation intensity, located in the transition between the convergent and the divergent sections. This high cavitation intensity tends to compensate for the expected velocity decrease induced by the divergent shape, producing effective velocity values similar to those achieved by the cylindrical nozzle in many of the simulated conditions. The characteristics of the flow, together with the higher spray opening angles expected due to the divergent section of the nozzle, may improve atomization and fuel-air mixing processes.
引用
收藏
页码:1935 / 1944
页数:10
相关论文
共 50 条
  • [31] MOMENTUM TRANSFER IN SUBMERGED GAS INJECTION USING CONVERGENT-DIVERGENT NOZZLES
    Arellano, A. I.
    Jaramillo, D.
    Barron, M. A.
    Plascencia, G.
    LATIN AMERICAN APPLIED RESEARCH, 2014, 44 (04) : 295 - 299
  • [32] Convergent-divergent micromixer coupled with pulsatile flow
    Afzal, Arshad
    Kim, Kwang-Yong
    SENSORS AND ACTUATORS B-CHEMICAL, 2015, 211 : 198 - 205
  • [33] Nozzle flow and spray characteristics from VCO diesel injector nozzles
    Gavaises, M
    Arcoumanis, C
    Roth, H
    Choi, YS
    Theodorakakos, A
    THERMO- AND FLUID DYNAMIC PROCESSES IN DIESEL ENGINES 2, 2004, : 31 - 48
  • [34] Numerical Analysis of Dry Ice Blasting Convergent-Divergent Supersonic Nozzle
    Dzido, Aleksandra
    Krawczyk, Piotr
    Kurkus-Gruszecka, Michalina
    ENERGIES, 2019, 12 (24)
  • [35] Numerical investigation of multiphase supersonic swirl flow inside convergent-divergent nozzle
    Eslamian E.
    Shirvani H.
    J. Comput. Multiph. Flows, 2 (120-136): : 120 - 136
  • [36] CFD simulation of vortex flashing R134a flow expanded through convergent-divergent nozzles
    Zhu, Jingwei
    Elbel, Stefan
    INTERNATIONAL JOURNAL OF REFRIGERATION, 2020, 112 (112) : 56 - 68
  • [37] Newton-Raphson solution of cryogenic homogenous two-phase flow in convergent-divergent nozzles
    Akmandor, LS
    Nagashima, T
    TRANSACTIONS OF THE JAPAN SOCIETY FOR AERONAUTICAL AND SPACE SCIENCES, 1997, 40 (127) : 40 - 58
  • [38] Numerical and experimental investigation of an efficient convergent-divergent micromixer
    Usefian, Azam
    Bayareh, Morteza
    MECCANICA, 2020, 55 (05) : 1025 - 1035
  • [40] Experimental and Numerical Investigation of a Supersonic Convergent-Divergent Nozzle
    Burak, Markus O.
    Eriksson, Lars-Erik
    Munday, David
    Gutmark, Ephraim
    Prisell, Erik
    AIAA JOURNAL, 2012, 50 (07) : 1462 - 1475