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  5. Thermodynamic and Hydrodynamic Stabilization of Load Changes in a 1 MWth CFB Combustion Pilot Plant via Partial Flue Gas Recirculation
 
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2025
Erstveröffentlichung
Konferenzveröffentlichung
Verlagsversion

Thermodynamic and Hydrodynamic Stabilization of Load Changes in a 1 MWth CFB Combustion Pilot Plant via Partial Flue Gas Recirculation

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Hauptpublikation
FBC25_Kuhn.pdf
CC BY 4.0 International
Format: Adobe PDF
Size: 7.01 MB
TUDa URI
tuda/14462
URN
urn:nbn:de:tuda-tuprints-314869
DOI
10.26083/tuprints-00031486
Autor:innen
Kuhn, Alexander ORCID 0000-0002-9426-7069
Ströhle, Jochen ORCID 0000-0003-2092-326X
Epple, Bernd ORCID 0000-0003-0739-9598
Kurzbeschreibung (Abstract)

The increasing integration of renewable energy sources necessitates enhanced operational flexibility in thermal power plants. Circulating Fluidized Bed (CFB) combustion systems, known for their high thermal inertia, face considerable challenges in maintaining thermodynamic and hydrodynamic stability during load changes. This study investigates the application of Partial Flue Gas Recirculation (PFGR) as an innovative approach to stabilizing combustion conditions during load changes in a 1 MWth CFB pilot plant operating exclusively on Solid Recovered Fuel (SRF). Load step tests were conducted to compare conventional strategies – where total fluidization was reduced proportionally with fuel input – against PFGR, which maintains total fluidization by replacing a portion of fresh air with recirculated flue gas. Without PFGR, load reductions to 86% and 80% resulted in significant hydrodynamic changes, including decreased particle entrainment from the bed to the freeboard zone and the loop seal. This effect was confirmed using the Grace-Diagram, which indicated that conventional load reduction approaches push the system to the operational limits of the circulating fluidized bed regime. The altered hydrodynamics led to increased bed temperatures and reduced freeboard temperatures, causing their temperature difference to rise by 71 K. In contrast, PFGR effectively mitigated these instabilities by maintaining particle entrainment and subsequently pressure conditions in the freeboard and the loop seal, thereby limiting temperature difference increase to just 4 K. While PFGR entails a slight efficiency penalty due to increased heating demands for the recirculated gas, it enables long-term stable operation at reduced loads – an essential factor for flexible power plant operation. This study provides experimental validation of PFGR as a viable strategy for stabilizing CFB combustion under variable load conditions, particularly in 100% waste-fueled systems, contributing to the broader goal of enhancing the flexibility of low-carbon thermal power generation.

Sprache
Englisch
Fachbereich/-gebiet
16 Fachbereich Maschinenbau > Institut für Energiesysteme und Energietechnik (EST)
DDC
600 Technik, Medizin, angewandte Wissenschaften > 620 Ingenieurwissenschaften und Maschinenbau
600 Technik, Medizin, angewandte Wissenschaften > 624 Ingenieurbau und Umwelttechnik
600 Technik, Medizin, angewandte Wissenschaften > 660 Technische Chemie
Institution
Universitäts- und Landesbibliothek Darmstadt
Ort
Darmstadt
Veranstaltungstitel
The 25th Edition of the Fluidized Bed Conversion Conference
Veranstaltungsort
Nanjing, China
Startdatum der Veranstaltung
07.04.2025
Enddatum der Veranstaltung
10.04.2025
PPN
534902456
Zusätzliche Infomationen
Funding Information: EU Research Fund for Coal & Steel: REBECCA (101034024)

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