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contributor authorN. K. Rizk
contributor authorJ. S. Chin
contributor authorM. K. Razdan
date accessioned2017-05-08T23:53:31Z
date available2017-05-08T23:53:31Z
date copyrightJanuary, 1997
date issued1997
identifier issn1528-8919
identifier otherJETPEZ-26761#34_1.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/118716
description abstractSatisfactory performance of the gas turbine combustor relies on the careful design of various components, particularly the fuel injector. It is, therefore, essential to establish a fundamental basis for fuel injection modeling that involves various atomization processes. A two-dimensional fuel injection model has been formulated to simulate the airflow within and downstream of the atomizer and address the formation and breakup of the liquid sheet formed at the atomizer exit. The sheet breakup under the effects of airblast, fuel pressure, or the combined atomization mode of the airassist type is considered in the calculation. The model accounts for secondary breakup of drops and the stochastic Lagrangian treatment of spray. The calculation of spray evaporation addresses both droplet heat-up and steady-state mechanisms, and fuel vapor concentration is based on the partial pressure concept. An enhanced evaporation model has been developed that accounts for multicomponent, finite mass diffusivity and conductivity effects, and addresses near-critical evaporation. The presents investigation involved predictions of flow and spray characteristics of two distinctively different fuel atomizers under both nonreacting and reacting conditions. The predictions of the continuous phase velocity components and the spray mean drop sizes agree well with the detailed measurements obtained for the two atomizers, which indicates the model accounts for key aspects of atomization. The model also provides insight into ligament formation and breakup at the atomizer exit and the initial drop sizes formed in the atomizer near field region where measurements are difficult to obtain. The calculations of the reacting spray show the fuel-rich region occupied most of the spray volume with two-peak radial gas temperature profiles. The results also provided local concentrations of unburned hydrocarbon (UHC) and carbon monoxide (CO) in atomizer flowfield, information that could support the effort to reduce emission levels of gas turbine combustors.
publisherThe American Society of Mechanical Engineers (ASME)
titleModeling of Gas Turbine Fuel Nozzle Spray
typeJournal Paper
journal volume119
journal issue1
journal titleJournal of Engineering for Gas Turbines and Power
identifier doi10.1115/1.2815559
journal fristpage34
journal lastpage44
identifier eissn0742-4795
keywordsGas turbines
keywordsModeling
keywordsNozzles
keywordsSprays
keywordsFuels
keywordsEvaporation
keywordsDrops
keywordsCombustion chambers
keywordsPressure
keywordsMeasurement
keywordsAir flow
keywordsFlow (Dynamics)
keywordsHeat
keywordsVapors
keywordsCarbon
keywordsDesign
keywordsConductivity
keywordsSteady state
keywordsTemperature profiles
keywordsFuel injectors
keywordsEmissions AND Mechanisms
treeJournal of Engineering for Gas Turbines and Power:;1997:;volume( 119 ):;issue: 001
contenttypeFulltext


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