Published April 5, 2013 | Version v1
Journal article

Imaging diagnostics of ethanol port fuel injection sprays for automobile engine applications

  • 1. School of Mechanical and Manufacturing Engineering, Engine Research Laboratory, The University of New South Wales, Kensington, Sydney NSW 2052 (Australia)
  • 2. School of Photovoltaic and Renewable Energy Engineering, The University of New South Wales, Kensington, Sydney NSW 2052 (Australia)

Description

This paper presents characteristics of ethanol sprays at port fuel injection (PFI) conditions with variations in injection and ambient parameters. Details of temporal and spatial development of ethanol PFI sprays are studied using Mie-scattering and high-speed shadowgraph imaging techniques. Momentum flux-based injection rate measurement is also performed. The influences of fuel flow-rate, injection duration, and ambient air cross-flow are of particular interest in an effort to understand ethanol PFI spray characteristics that are relevant to automobile engines. For comparison purposes, the results from gasoline fuel are also presented. Ethanol flow-rate effects are studied using two injectors with different nozzle-hole sizes at a fixed injection pressure. From the experiments, it was found that the actual injection duration was longer for the higher flow-rate injector although an electronic pulse width was fixed. This was due to an extended delay in the injector needle closing as the flow resistance against the needle was increased for the high flow-rate injector. For liquid droplets, the larger hole size of the higher flow-rate injector caused a higher mean droplet diameter and higher number of droplets. Injection duration was also varied to study transient spray behaviour: short-injection sprays with the end-of-injection transient dominating the overall spray development were compared to long, steady-injection sprays. From Mie-scattering images, the number of droplets and mean droplet diameter were found to be less for the short injection sprays. Detailed analysis using an axial profile of the number of droplets and mean droplet diameter suggested that the observed trends were a result of increased evaporation rate near the nozzle after the end of injection. This was consistent with shadowgraph images showing no liquid regions but only the vapour-phase fuel near the nozzle. Under the influence of ambient air cross-flow, both mean droplet diameter and number of droplets were less than quiescent ambient conditions once again due to increased evaporation rate. This cross-flow effect was measurable only after the end of injection when no injection momentum presented. -- Highlights: ► A high flow-rate port-fuel injector shows extended injection duration. ► After the end of injection, the evaporation of near nozzle droplets increases. ► The cross-flow effect on droplets is dominant only after the end of injection

Availability note (English)

Available from http://dx.doi.org/10.1016/j.applthermaleng.2012.11.007

Additional details

Identifiers

DOI
10.1016/j.applthermaleng.2012.11.007;
PII
S1359-4311(12)00720-X;

Publishing Information

Journal Title
Applied Thermal Engineering
Journal Volume
52
Journal Issue
1
Journal Page Range
p. 24-37
ISSN
1359-4311
CODEN
ATENFT

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
45052481
Subject category
S42: ENGINEERING;
Descriptors DEI
AIR; AUTOMOBILES; COMPARATIVE EVALUATIONS; DROPLETS; ENGINES; ETHANOL; EVAPORATION; FLOW RATE; FLUID FLOW; GASOLINE; INJECTION; LIQUIDS; NOZZLES; SPRAYS; VAPORS; VELOCITY
Descriptors DEC
ALCOHOLS; EVALUATION; FLUIDS; FUELS; GASES; HYDROXY COMPOUNDS; INTAKE; LIQUID FUELS; ORGANIC COMPOUNDS; PARTICLES; PETROLEUM PRODUCTS; PHASE TRANSFORMATIONS; VEHICLES

Optional Information

Copyright
Copyright (c) 2012 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.