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Experimental investigation of methane lean blowout limit; effects of dilution, mass flow rate and inlet temperature

Sayad, Parisa LU ; Schönborn, Alessandro LU ; Clerini, Denny and Klingmann, Jens LU (2012) ASME 2012 Gas Turbine India Conference, GTINDIA 2012 p.815-826
Abstract

Lean blowout (LBO) is one of the major instability problems of premixed combustion. LBO equivalence ratio is a function of inlet temperature and pressure, mass flow or aerodynamic loading, and fuel composition. All these, except the last, vary during startup and with load. Developing gas turbine combustors capable of operating within wider range of fuel compositions requires extensive knowledge about instability limits of the combustor at different operating conditions. In this work an atmospheric variable swirl combustor was used to study the influence of inlet temperature, mass flow, swirl number and dilution on lean blowout of methane. The equivalence ratio at LBO was investigated for methane at 3 different inlet temperatures at... (More)

Lean blowout (LBO) is one of the major instability problems of premixed combustion. LBO equivalence ratio is a function of inlet temperature and pressure, mass flow or aerodynamic loading, and fuel composition. All these, except the last, vary during startup and with load. Developing gas turbine combustors capable of operating within wider range of fuel compositions requires extensive knowledge about instability limits of the combustor at different operating conditions. In this work an atmospheric variable swirl combustor was used to study the influence of inlet temperature, mass flow, swirl number and dilution on lean blowout of methane. The equivalence ratio at LBO was investigated for methane at 3 different inlet temperatures at various swirl numbers. The swirl number was varied by changing the ratio of axial and tangential flow through the combustor inlet, and was determined using Laser Doppler Anemometry. The experiments showed that increasing the swirl number reduced the lean blowout equivalence ratio for a given inlet temperature and that increasing the inlet temperature reduced the lean blowout equivalence ratio at a certain swirl number. In order to study the effect of inlet mass flow rate on lean stability limit, blowout experiments were conducted at 7 different mass flow rates. The measurements showed that the total mass flow has a nonmonotonic effect on the lean blowout limit. At total mass flow rates below 200 SLPM increasing the total mass flow extended lean stability limit whereas at mass flow rates higher than 300 SLPM the trend was reversed. The effect of fuel dilution on the LBO limit was also investigated by adding different fractions of N2 and CO2 to the fuel mixture. The results were compared with those for pure methane at the same swirl number. Dilution with either diluent reduced the LBO limit of methane. However at the concentrations lower than 50 % the effect of dilution on LBO equivalence ratio was relatively small and no significant difference was observed between N2 and CO 2 dilution.

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Please use this url to cite or link to this publication:
author
; ; and
organization
publishing date
type
Chapter in Book/Report/Conference proceeding
publication status
published
subject
host publication
ASME 2012 Gas Turbine India Conference, GTINDIA 2012
pages
12 pages
conference name
ASME 2012 Gas Turbine India Conference, GTINDIA 2012
conference location
Mumbai, Maharashtra, India
conference dates
2012-12-01 - 2012-12-01
external identifiers
  • scopus:84888222189
ISBN
9780791845165
DOI
10.1115/GTINDIA2012-9742
language
English
LU publication?
yes
id
09c40416-b797-4435-bd83-7a37b5dddfa5
date added to LUP
2018-10-18 12:41:04
date last changed
2022-01-31 06:14:17
@inproceedings{09c40416-b797-4435-bd83-7a37b5dddfa5,
  abstract     = {{<p>Lean blowout (LBO) is one of the major instability problems of premixed combustion. LBO equivalence ratio is a function of inlet temperature and pressure, mass flow or aerodynamic loading, and fuel composition. All these, except the last, vary during startup and with load. Developing gas turbine combustors capable of operating within wider range of fuel compositions requires extensive knowledge about instability limits of the combustor at different operating conditions. In this work an atmospheric variable swirl combustor was used to study the influence of inlet temperature, mass flow, swirl number and dilution on lean blowout of methane. The equivalence ratio at LBO was investigated for methane at 3 different inlet temperatures at various swirl numbers. The swirl number was varied by changing the ratio of axial and tangential flow through the combustor inlet, and was determined using Laser Doppler Anemometry. The experiments showed that increasing the swirl number reduced the lean blowout equivalence ratio for a given inlet temperature and that increasing the inlet temperature reduced the lean blowout equivalence ratio at a certain swirl number. In order to study the effect of inlet mass flow rate on lean stability limit, blowout experiments were conducted at 7 different mass flow rates. The measurements showed that the total mass flow has a nonmonotonic effect on the lean blowout limit. At total mass flow rates below 200 SLPM increasing the total mass flow extended lean stability limit whereas at mass flow rates higher than 300 SLPM the trend was reversed. The effect of fuel dilution on the LBO limit was also investigated by adding different fractions of N<sub>2</sub> and CO<sub>2</sub> to the fuel mixture. The results were compared with those for pure methane at the same swirl number. Dilution with either diluent reduced the LBO limit of methane. However at the concentrations lower than 50 % the effect of dilution on LBO equivalence ratio was relatively small and no significant difference was observed between N<sub>2</sub> and CO <sub>2</sub> dilution.</p>}},
  author       = {{Sayad, Parisa and Schönborn, Alessandro and Clerini, Denny and Klingmann, Jens}},
  booktitle    = {{ASME 2012 Gas Turbine India Conference, GTINDIA 2012}},
  isbn         = {{9780791845165}},
  language     = {{eng}},
  month        = {{12}},
  pages        = {{815--826}},
  title        = {{Experimental investigation of methane lean blowout limit; effects of dilution, mass flow rate and inlet temperature}},
  url          = {{http://dx.doi.org/10.1115/GTINDIA2012-9742}},
  doi          = {{10.1115/GTINDIA2012-9742}},
  year         = {{2012}},
}