Residence time distributions in a swirling, premixed combustor flow are determined by means of tracer experiments and a reactor network model. The measurements were conducted at nonreacting, reacting, and steam-diluted reacting conditions for steam contents of up to 30% of the air mass flow. The tracer distribution was obtained from the light scattering of seeding particles employing the quantitative light sheet technique (QLS). At steady operating conditions, a positive step of particle feed was applied, yielding cumulative distribution functions (CDF) for the tracer response. The shape of the curve is characteristic for the local degree of mixedness. Fresh and recirculating gases were found to mix rapidly at nonreacting and highly steam-diluted conditions, whereas mixing was more gradual at dry reacting conditions. The instantaneous mixing near the burner outlet is related to the presence of a large-scale helical structure, which was suppressed at dry reacting conditions. Zones of similar mixing time scales, such as the recirculation zones, are identified. The CDF curves in these zones are reproduced by a network model of plug flow and perfectly mixed flow reactors. Reactor residence times and inlet volume flow fractions obtained in this way provide data for kinetic network models.
Skip Nav Destination
Hermann-Föttinger-Institut,
Technische Universität Berlin,
Berlin D-10623,
Article navigation
April 2014
Research-Article
Residence Time Distribution in a Swirling Flow at Nonreacting, Reacting, and Steam-Diluted Conditions
Katharina Göckeler,
Katharina Göckeler
1
e-mail: katharina.goeckeler@tu-berlin.de
1Corresponding author.
Search for other works by this author on:
Christian Oliver Paschereit
Hermann-Föttinger-Institut,
Technische Universität Berlin,
Berlin D-10623,
Christian Oliver Paschereit
Chair of Fluid Dynamics
,Hermann-Föttinger-Institut,
Technische Universität Berlin,
Müller-Breslau-Str. 8
,Berlin D-10623,
Germany
Search for other works by this author on:
Katharina Göckeler
e-mail: katharina.goeckeler@tu-berlin.de
Christian Oliver Paschereit
Chair of Fluid Dynamics
,Hermann-Föttinger-Institut,
Technische Universität Berlin,
Müller-Breslau-Str. 8
,Berlin D-10623,
Germany
1Corresponding author.
Contributed by the Combustion and Fuels Committee of ASME for publication in the JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER. Manuscript received July 15, 2013; final manuscript received August 8, 2013; published online December 12, 2013. Editor: David Wisler.
J. Eng. Gas Turbines Power. Apr 2014, 136(4): 041505 (9 pages)
Published Online: December 12, 2013
Article history
Received:
July 15, 2013
Revision Received:
August 8, 2013
Citation
Göckeler, K., Terhaar, S., and Oliver Paschereit, C. (December 12, 2013). "Residence Time Distribution in a Swirling Flow at Nonreacting, Reacting, and Steam-Diluted Conditions." ASME. J. Eng. Gas Turbines Power. April 2014; 136(4): 041505. https://doi.org/10.1115/1.4026000
Download citation file:
Get Email Alerts
Inter-Stage Pressure Drop of Multi-Stage Brush Seal with Differentiated Structure
J. Eng. Gas Turbines Power
Mixture Distribution in Spark Ignited Port Fuel Injection Engines: A Review.
J. Eng. Gas Turbines Power
Experimental Investigation of Combustion Dynamics in a High-Pressure Liquid-fueled Swirl Combustor
J. Eng. Gas Turbines Power
Related Articles
Engine Design and Operational Impacts on Particulate Matter Precursor Emissions
J. Eng. Gas Turbines Power (March,2008)
Supervisory Control of Dynamical Systems With Uncertain Time Delays
J. Vib. Acoust (December,2010)
An Experimental and Modeling Study of Humid Air Premixed Flames
J. Eng. Gas Turbines Power (July,2000)
Combustion of Coal/Water Mixtures With Thermal Preconditioning
J. Eng. Gas Turbines Power (July,1987)
Related Proceedings Papers
Related Chapters
Outlook
Closed-Cycle Gas Turbines: Operating Experience and Future Potential
Combined Cycle Power Plant
Energy and Power Generation Handbook: Established and Emerging Technologies
A Computationally Efficient Algorithm for Modeling Multi-Regime Delays in the Sensory Flow of Networked Telerobots*
International Conference on Advanced Computer Theory and Engineering, 5th (ICACTE 2012)