LAPSE:2023.17749v1
Published Article
LAPSE:2023.17749v1
Energetic and Exergetic Performances of a Retrofitted, Large-Scale, Biomass-Fired CHP Coupled to a Steam-Explosion Biomass Upgrading Plant, a Biorefinery Process and a High-Temperature Heat Network
Roeland De Meulenaere, Tim Maertens, Ale Sikkema, Rune Brusletto, Tanja Barth, Julien Blondeau
March 6, 2023
Abstract
This paper aims at assessing the impact of retrofitting an existing, 730 MWe, coal-fired power plant into a biomass-fired combined heat and power (CHP) plant on its energetic and exergetic performances. A comprehensive thermodynamic model of the power plant was developed and validated against field data, resulting in less than 1% deviation between the model and the measurements for the main process parameters. The validated model was then used to predict the behaviour of the biomass CHP after retrofitting. The modelled CHP unit is coupled to a steam-explosion biomass upgrading plant, a biorefinery process, and a high-temperature heat network. 13 scenarios were studied. At constant boiler load, delivering heat to the considered heat clients can increase the total energy efficiency of the plant from 44% (electricity only) to 64%, while the total exergy efficiency decreases from 39% to 35%. A total energy efficiency of 67% could be reached by lowering the network temperature from 120∘C to 70∘C. Identifying the needed heat clients could, however, represent a limiting factor to reach such high efficiencies. For a constant power demand, increasing the boiler load from 80 to 100% in order to provide additional heat makes the total energy efficiency increase from 43% to 55%, while the total exergy efficiency decreases from 39% to 36%.
Keywords
Biomass, CHP, Exergy, retrofit, steam-explosion
Suggested Citation
De Meulenaere R, Maertens T, Sikkema A, Brusletto R, Barth T, Blondeau J. Energetic and Exergetic Performances of a Retrofitted, Large-Scale, Biomass-Fired CHP Coupled to a Steam-Explosion Biomass Upgrading Plant, a Biorefinery Process and a High-Temperature Heat Network. (2023). LAPSE:2023.17749v1
Author Affiliations
De Meulenaere R: Thermo and Fluid Dynamics (FLOW), Faculty of Engineering, Vrije Universiteit Brussel (VUB), Pleinlaan 2, 1050 Brussels, Belgium; Brussels Institute for Thermal-Fluid Systems and Clean Energy (BRITE), Vrije Universiteit Brussel (VUB) and Université Libre [ORCID]
Maertens T: Onyx Power, Missouriweg 69, 3199 LB Maasvlakte, The Netherlands
Sikkema A: Onyx Power, Missouriweg 69, 3199 LB Maasvlakte, The Netherlands
Brusletto R: Arbaflame, Henrik Ibsens Gate 90, 0255 Oslo, Norway
Barth T: Department of Chemistry, University of Bergen, Allégaten 41, 5007 Bergen, Norway
Blondeau J: Thermo and Fluid Dynamics (FLOW), Faculty of Engineering, Vrije Universiteit Brussel (VUB), Pleinlaan 2, 1050 Brussels, Belgium; Brussels Institute for Thermal-Fluid Systems and Clean Energy (BRITE), Vrije Universiteit Brussel (VUB) and Université Libre
Journal Name
Energies
Volume
14
Issue
22
First Page
7720
Year
2021
Publication Date
2021-11-18
ISSN
1996-1073
Version Comments
Original Submission
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PII: en14227720, Publication Type: Journal Article
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LAPSE:2023.17749v1
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https://doi.org/10.3390/en14227720
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