LAPSE:2023.8709v1
Published Article

LAPSE:2023.8709v1
Predicting the Impact of Compressor Flexibility Improvements on Heavy-Duty Gas Turbines for Minimum and Base Load Conditions
February 24, 2023
Abstract
The increasing importance of renewable energy capacity in the power generation scenario, together with the fluctuating consumer energy demand, forces conventional fossil fuel power generation systems to promptly respond to relevant and rapid load variations and to operate under off-design conditions during a major fraction of their lives. In order to improve existing power plants’ flexibility in facing energy surplus or deficit, retrofittable solutions for gas turbine compressors are proposed. In this paper, two different operation strategies, variable inlet guide vanes (IGVs) and blow-off extraction (BO), are considered for enabling partial load and minimum environmental load operation, and thus to identify implementation opportunities in existing thermal power plants. A typical 15-stage F-class gas turbine compressor is chosen as a test case and some energy demand scenarios are selected to validate the adopted solutions. The results of an extensive 3D, steady, CFD analysis are compared with the measurements coming from an experimental campaign carried out in the framework of the European Turbo-Reflex project. It will be shown how the combined strategies can reduce gas turbine mass flow rate and power plant output, without significantly penalizing efficiency, and how such off-design performance figures can be reliably predicted by employing state-of-the-art CFD models.
The increasing importance of renewable energy capacity in the power generation scenario, together with the fluctuating consumer energy demand, forces conventional fossil fuel power generation systems to promptly respond to relevant and rapid load variations and to operate under off-design conditions during a major fraction of their lives. In order to improve existing power plants’ flexibility in facing energy surplus or deficit, retrofittable solutions for gas turbine compressors are proposed. In this paper, two different operation strategies, variable inlet guide vanes (IGVs) and blow-off extraction (BO), are considered for enabling partial load and minimum environmental load operation, and thus to identify implementation opportunities in existing thermal power plants. A typical 15-stage F-class gas turbine compressor is chosen as a test case and some energy demand scenarios are selected to validate the adopted solutions. The results of an extensive 3D, steady, CFD analysis are compared with the measurements coming from an experimental campaign carried out in the framework of the European Turbo-Reflex project. It will be shown how the combined strategies can reduce gas turbine mass flow rate and power plant output, without significantly penalizing efficiency, and how such off-design performance figures can be reliably predicted by employing state-of-the-art CFD models.
Record ID
Keywords
axial compressor, Computational Fluid Dynamics, minimum environmental load
Subject
Suggested Citation
Ricci M, Benvenuto M, Mosele SG, Pacciani R, Marconcini M. Predicting the Impact of Compressor Flexibility Improvements on Heavy-Duty Gas Turbines for Minimum and Base Load Conditions. (2023). LAPSE:2023.8709v1
Author Affiliations
Ricci M: Department of Industrial Engineering, University of Florence, Via di S. Marta, 3, 50139 Florence, Italy [ORCID]
Benvenuto M: Ansaldo Energia, Via Nicola Lorenzi, 8, 16152 Genoa, Italy
Mosele SG: Ansaldo Energia, Via Nicola Lorenzi, 8, 16152 Genoa, Italy [ORCID]
Pacciani R: Department of Industrial Engineering, University of Florence, Via di S. Marta, 3, 50139 Florence, Italy [ORCID]
Marconcini M: Department of Industrial Engineering, University of Florence, Via di S. Marta, 3, 50139 Florence, Italy [ORCID]
Benvenuto M: Ansaldo Energia, Via Nicola Lorenzi, 8, 16152 Genoa, Italy
Mosele SG: Ansaldo Energia, Via Nicola Lorenzi, 8, 16152 Genoa, Italy [ORCID]
Pacciani R: Department of Industrial Engineering, University of Florence, Via di S. Marta, 3, 50139 Florence, Italy [ORCID]
Marconcini M: Department of Industrial Engineering, University of Florence, Via di S. Marta, 3, 50139 Florence, Italy [ORCID]
Journal Name
Energies
Volume
15
Issue
20
First Page
7546
Year
2022
Publication Date
2022-10-13
ISSN
1996-1073
Version Comments
Original Submission
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PII: en15207546, Publication Type: Journal Article
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LAPSE:2023.8709v1
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Feb 24, 2023
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