LAPSE:2018.0199
Published Article
LAPSE:2018.0199
Online Optimization Applied to a Shockless Explosion Combustor
Jan-Simon Schäpel, Thoralf G. Reichel, Rupert Klein, Christian Oliver Paschereit, Rudibert King
July 30, 2018
Changing the combustion process of a gas turbine from a constant-pressure to a pressure-increasing approximate constant-volume combustion (aCVC) is one of the most promising ways to increase the efficiency of turbines in the future. In this paper, a newly proposed method to achieve such an aCVC is considered. The so-called shockless explosion combustion (SEC) uses auto-ignition and a fuel stratification to achieve a spatially homogeneous ignition. The homogeneity of the ignition can be adjusted by the mixing of fuel and air. A proper filling profile, however, also depends on changing parameters, such as temperature, that cannot be measured in detail due to the harsh conditions inside the combustion tube. Therefore, a closed-loop control is required to obtain an adequate injection profile and to reject such unknown disturbances. For this, an optimization problem is set up and a novel formulation of a discrete extremum seeking controller is presented. By approximating the cost function with a parabola, the first derivative and a Hessian matrix are estimated, allowing the controller to use Newton steps to converge to the optimal control trajectory. The controller is applied to an atmospheric test rig, where the auto-ignition process can be investigated for single ignitions. In the set-up, dimethyl ether is injected into a preheated air stream using a controlled proportional valve. Optical measurements are used to evaluate the auto-ignition process and to show that using the extremum seeking control approach, the homogeneity of the ignition process can be increased significantly.
Keywords
constant volume combustion, extremum seeking control, shockless explosion combustion
Suggested Citation
Schäpel JS, Reichel TG, Klein R, Paschereit CO, King R. Online Optimization Applied to a Shockless Explosion Combustor. (2018). LAPSE:2018.0199
Author Affiliations
Schäpel JS: Department of Process Technology, Measurement and Control, Technische Universität Berlin, 10623 Berlin, Germany
Reichel TG: Department of Fluid Dynamics and Technical Acoustics, Herman Föttinger Institute, Technische Universität Berlin, 10623 Berlin, Germany
Klein R: Department of Mathematics, Geophysical Fluid Dynamics, Freie Universität Berlin, 14195 Berlin, Germany
Paschereit CO: Department of Fluid Dynamics and Technical Acoustics, Herman Föttinger Institute, Technische Universität Berlin, 10623 Berlin, Germany
King R: Department of Process Technology, Measurement and Control, Technische Universität Berlin, 10623 Berlin, Germany [ORCID]
[Login] to see author email addresses.
Journal Name
Processes
Volume
4
Issue
4
Article Number
E48
Year
2016
Publication Date
2016-11-30
Published Version
ISSN
2227-9717
Version Comments
Original Submission
Other Meta
PII: pr4040048, Publication Type: Journal Article
Record Map
Published Article

LAPSE:2018.0199
This Record
External Link

doi:10.3390/pr4040048
Publisher Version
Download
Files
[Download 1v1.pdf] (3.4 MB)
Jul 30, 2018
Main Article
License
CC BY 4.0
Meta
Record Statistics
Record Views
712
Version History
[v1] (Original Submission)
Jul 30, 2018
 
Verified by curator on
Jul 30, 2018
This Version Number
v1
Citations
Most Recent
This Version
URL Here
https://psecommunity.org/LAPSE:2018.0199
 
Original Submitter
Auto Uploader for LAPSE
Links to Related Works
Directly Related to This Work
Publisher Version