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Sustainable Drying and Torrefaction Processes of Miscanthus for Use as a Pelletized Solid Biofuel and Biocarbon-Carrier for Fertilizers

Miscanthus is resistant to dry, frosty winters in Poland and most European Union countries. Miscanthus gives higher yields compared to native species. Farmers can produce Miscanthus pellets after drying it for their own heating purposes. From the third year, the most efficient plant development begi...

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Autores principales: Szufa, Szymon, Piersa, Piotr, Adrian, Łukasz, Czerwińska, Justyna, Lewandowski, Artur, Lewandowska, Wiktoria, Sielski, Jan, Dzikuć, Maria, Wróbel, Marek, Jewiarz, Marcin, Knapczyk, Adrian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7918560/
https://www.ncbi.nlm.nih.gov/pubmed/33672961
http://dx.doi.org/10.3390/molecules26041014
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author Szufa, Szymon
Piersa, Piotr
Adrian, Łukasz
Czerwińska, Justyna
Lewandowski, Artur
Lewandowska, Wiktoria
Sielski, Jan
Dzikuć, Maria
Wróbel, Marek
Jewiarz, Marcin
Knapczyk, Adrian
author_facet Szufa, Szymon
Piersa, Piotr
Adrian, Łukasz
Czerwińska, Justyna
Lewandowski, Artur
Lewandowska, Wiktoria
Sielski, Jan
Dzikuć, Maria
Wróbel, Marek
Jewiarz, Marcin
Knapczyk, Adrian
author_sort Szufa, Szymon
collection PubMed
description Miscanthus is resistant to dry, frosty winters in Poland and most European Union countries. Miscanthus gives higher yields compared to native species. Farmers can produce Miscanthus pellets after drying it for their own heating purposes. From the third year, the most efficient plant development begins, resulting in a yield of 25–30 tons of dry matter from an area of 1 hectare. Laboratory scale tests were carried out on the processes of drying, compacting, and torrefaction of this biomass type. The analysis of the drying process was conducted at three temperature levels of the drying agent (60, 100, and 140 °C). Compaction on a hydraulic press was carried out in the pressure range characteristic of a pressure agglomeration (130.8–457.8 MPa) at different moisture contents of the raw material (0.5% and 10%). The main interest in this part was to assess the influence of drying temperature, moisture content, and compaction pressure on the specific densities (DE) and the mechanical durability of the pellets (DU). In the next step, laboratory analyses of the torrefaction process were carried out, initially using the Thermogravimetric Analysis TGA and Differential Scaning Calorimeter DSC techniques (to assess activation energy (EA)), followed by a flow reactor operating at five temperature levels (225, 250, 275, 300, and 525 °C). A SEM analysis of Miscanthus after torrefaction processes at three different temperatures was performed. Both the parameters of biochar (proximate and ultimate analysis) and the quality of the torgas (volatile organic content (VOC)) were analyzed. The results show that both drying temperature and moisture level will affect the quality of the pellets. Analysis of the torrefaction process shows clearly that the optimum process temperature would be around 300–340 °C from a mass loss ratio and economical perspective.
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spelling pubmed-79185602021-03-02 Sustainable Drying and Torrefaction Processes of Miscanthus for Use as a Pelletized Solid Biofuel and Biocarbon-Carrier for Fertilizers Szufa, Szymon Piersa, Piotr Adrian, Łukasz Czerwińska, Justyna Lewandowski, Artur Lewandowska, Wiktoria Sielski, Jan Dzikuć, Maria Wróbel, Marek Jewiarz, Marcin Knapczyk, Adrian Molecules Article Miscanthus is resistant to dry, frosty winters in Poland and most European Union countries. Miscanthus gives higher yields compared to native species. Farmers can produce Miscanthus pellets after drying it for their own heating purposes. From the third year, the most efficient plant development begins, resulting in a yield of 25–30 tons of dry matter from an area of 1 hectare. Laboratory scale tests were carried out on the processes of drying, compacting, and torrefaction of this biomass type. The analysis of the drying process was conducted at three temperature levels of the drying agent (60, 100, and 140 °C). Compaction on a hydraulic press was carried out in the pressure range characteristic of a pressure agglomeration (130.8–457.8 MPa) at different moisture contents of the raw material (0.5% and 10%). The main interest in this part was to assess the influence of drying temperature, moisture content, and compaction pressure on the specific densities (DE) and the mechanical durability of the pellets (DU). In the next step, laboratory analyses of the torrefaction process were carried out, initially using the Thermogravimetric Analysis TGA and Differential Scaning Calorimeter DSC techniques (to assess activation energy (EA)), followed by a flow reactor operating at five temperature levels (225, 250, 275, 300, and 525 °C). A SEM analysis of Miscanthus after torrefaction processes at three different temperatures was performed. Both the parameters of biochar (proximate and ultimate analysis) and the quality of the torgas (volatile organic content (VOC)) were analyzed. The results show that both drying temperature and moisture level will affect the quality of the pellets. Analysis of the torrefaction process shows clearly that the optimum process temperature would be around 300–340 °C from a mass loss ratio and economical perspective. MDPI 2021-02-14 /pmc/articles/PMC7918560/ /pubmed/33672961 http://dx.doi.org/10.3390/molecules26041014 Text en © 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Szufa, Szymon
Piersa, Piotr
Adrian, Łukasz
Czerwińska, Justyna
Lewandowski, Artur
Lewandowska, Wiktoria
Sielski, Jan
Dzikuć, Maria
Wróbel, Marek
Jewiarz, Marcin
Knapczyk, Adrian
Sustainable Drying and Torrefaction Processes of Miscanthus for Use as a Pelletized Solid Biofuel and Biocarbon-Carrier for Fertilizers
title Sustainable Drying and Torrefaction Processes of Miscanthus for Use as a Pelletized Solid Biofuel and Biocarbon-Carrier for Fertilizers
title_full Sustainable Drying and Torrefaction Processes of Miscanthus for Use as a Pelletized Solid Biofuel and Biocarbon-Carrier for Fertilizers
title_fullStr Sustainable Drying and Torrefaction Processes of Miscanthus for Use as a Pelletized Solid Biofuel and Biocarbon-Carrier for Fertilizers
title_full_unstemmed Sustainable Drying and Torrefaction Processes of Miscanthus for Use as a Pelletized Solid Biofuel and Biocarbon-Carrier for Fertilizers
title_short Sustainable Drying and Torrefaction Processes of Miscanthus for Use as a Pelletized Solid Biofuel and Biocarbon-Carrier for Fertilizers
title_sort sustainable drying and torrefaction processes of miscanthus for use as a pelletized solid biofuel and biocarbon-carrier for fertilizers
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7918560/
https://www.ncbi.nlm.nih.gov/pubmed/33672961
http://dx.doi.org/10.3390/molecules26041014
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