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Progress on Optimizing Miscanthus Biomass Production for the European Bioeconomy: Results of the EU FP7 Project OPTIMISC
This paper describes the complete findings of the EU-funded research project OPTIMISC, which investigated methods to optimize the production and use of miscanthus biomass. Miscanthus bioenergy and bioproduct chains were investigated by trialing 15 diverse germplasm types in a range of climatic and s...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Frontiers Media S.A.
2016
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5114296/ https://www.ncbi.nlm.nih.gov/pubmed/27917177 http://dx.doi.org/10.3389/fpls.2016.01620 |
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author | Lewandowski, Iris Clifton-Brown, John Trindade, Luisa M. van der Linden, Gerard C. Schwarz, Kai-Uwe Müller-Sämann, Karl Anisimov, Alexander Chen, C.-L. Dolstra, Oene Donnison, Iain S. Farrar, Kerrie Fonteyne, Simon Harding, Graham Hastings, Astley Huxley, Laurie M. Iqbal, Yasir Khokhlov, Nikolay Kiesel, Andreas Lootens, Peter Meyer, Heike Mos, Michal Muylle, Hilde Nunn, Chris Özgüven, Mensure Roldán-Ruiz, Isabel Schüle, Heinrich Tarakanov, Ivan van der Weijde, Tim Wagner, Moritz Xi, Qingguo Kalinina, Olena |
author_facet | Lewandowski, Iris Clifton-Brown, John Trindade, Luisa M. van der Linden, Gerard C. Schwarz, Kai-Uwe Müller-Sämann, Karl Anisimov, Alexander Chen, C.-L. Dolstra, Oene Donnison, Iain S. Farrar, Kerrie Fonteyne, Simon Harding, Graham Hastings, Astley Huxley, Laurie M. Iqbal, Yasir Khokhlov, Nikolay Kiesel, Andreas Lootens, Peter Meyer, Heike Mos, Michal Muylle, Hilde Nunn, Chris Özgüven, Mensure Roldán-Ruiz, Isabel Schüle, Heinrich Tarakanov, Ivan van der Weijde, Tim Wagner, Moritz Xi, Qingguo Kalinina, Olena |
author_sort | Lewandowski, Iris |
collection | PubMed |
description | This paper describes the complete findings of the EU-funded research project OPTIMISC, which investigated methods to optimize the production and use of miscanthus biomass. Miscanthus bioenergy and bioproduct chains were investigated by trialing 15 diverse germplasm types in a range of climatic and soil environments across central Europe, Ukraine, Russia, and China. The abiotic stress tolerances of a wider panel of 100 germplasm types to drought, salinity, and low temperatures were measured in the laboratory and a field trial in Belgium. A small selection of germplasm types was evaluated for performance in grasslands on marginal sites in Germany and the UK. The growth traits underlying biomass yield and quality were measured to improve regional estimates of feedstock availability. Several potential high-value bioproducts were identified. The combined results provide recommendations to policymakers, growers and industry. The major technical advances in miscanthus production achieved by OPTIMISC include: (1) demonstration that novel hybrids can out-yield the standard commercially grown genotype Miscanthus x giganteus; (2) characterization of the interactions of physiological growth responses with environmental variation within and between sites; (3) quantification of biomass-quality-relevant traits; (4) abiotic stress tolerances of miscanthus genotypes; (5) selections suitable for production on marginal land; (6) field establishment methods for seeds using plugs; (7) evaluation of harvesting methods; and (8) quantification of energy used in densification (pellet) technologies with a range of hybrids with differences in stem wall properties. End-user needs were addressed by demonstrating the potential of optimizing miscanthus biomass composition for the production of ethanol and biogas as well as for combustion. The costs and life-cycle assessment of seven miscanthus-based value chains, including small- and large-scale heat and power, ethanol, biogas, and insulation material production, revealed GHG-emission- and fossil-energy-saving potentials of up to 30.6 t CO(2eq) C ha(−1)y(−1) and 429 GJ ha(−1)y(−1), respectively. Transport distance was identified as an important cost factor. Negative carbon mitigation costs of –78€ t(−1) CO(2eq) C were recorded for local biomass use. The OPTIMISC results demonstrate the potential of miscanthus as a crop for marginal sites and provide information and technologies for the commercial implementation of miscanthus-based value chains. |
format | Online Article Text |
id | pubmed-5114296 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2016 |
publisher | Frontiers Media S.A. |
record_format | MEDLINE/PubMed |
spelling | pubmed-51142962016-12-02 Progress on Optimizing Miscanthus Biomass Production for the European Bioeconomy: Results of the EU FP7 Project OPTIMISC Lewandowski, Iris Clifton-Brown, John Trindade, Luisa M. van der Linden, Gerard C. Schwarz, Kai-Uwe Müller-Sämann, Karl Anisimov, Alexander Chen, C.-L. Dolstra, Oene Donnison, Iain S. Farrar, Kerrie Fonteyne, Simon Harding, Graham Hastings, Astley Huxley, Laurie M. Iqbal, Yasir Khokhlov, Nikolay Kiesel, Andreas Lootens, Peter Meyer, Heike Mos, Michal Muylle, Hilde Nunn, Chris Özgüven, Mensure Roldán-Ruiz, Isabel Schüle, Heinrich Tarakanov, Ivan van der Weijde, Tim Wagner, Moritz Xi, Qingguo Kalinina, Olena Front Plant Sci Plant Science This paper describes the complete findings of the EU-funded research project OPTIMISC, which investigated methods to optimize the production and use of miscanthus biomass. Miscanthus bioenergy and bioproduct chains were investigated by trialing 15 diverse germplasm types in a range of climatic and soil environments across central Europe, Ukraine, Russia, and China. The abiotic stress tolerances of a wider panel of 100 germplasm types to drought, salinity, and low temperatures were measured in the laboratory and a field trial in Belgium. A small selection of germplasm types was evaluated for performance in grasslands on marginal sites in Germany and the UK. The growth traits underlying biomass yield and quality were measured to improve regional estimates of feedstock availability. Several potential high-value bioproducts were identified. The combined results provide recommendations to policymakers, growers and industry. The major technical advances in miscanthus production achieved by OPTIMISC include: (1) demonstration that novel hybrids can out-yield the standard commercially grown genotype Miscanthus x giganteus; (2) characterization of the interactions of physiological growth responses with environmental variation within and between sites; (3) quantification of biomass-quality-relevant traits; (4) abiotic stress tolerances of miscanthus genotypes; (5) selections suitable for production on marginal land; (6) field establishment methods for seeds using plugs; (7) evaluation of harvesting methods; and (8) quantification of energy used in densification (pellet) technologies with a range of hybrids with differences in stem wall properties. End-user needs were addressed by demonstrating the potential of optimizing miscanthus biomass composition for the production of ethanol and biogas as well as for combustion. The costs and life-cycle assessment of seven miscanthus-based value chains, including small- and large-scale heat and power, ethanol, biogas, and insulation material production, revealed GHG-emission- and fossil-energy-saving potentials of up to 30.6 t CO(2eq) C ha(−1)y(−1) and 429 GJ ha(−1)y(−1), respectively. Transport distance was identified as an important cost factor. Negative carbon mitigation costs of –78€ t(−1) CO(2eq) C were recorded for local biomass use. The OPTIMISC results demonstrate the potential of miscanthus as a crop for marginal sites and provide information and technologies for the commercial implementation of miscanthus-based value chains. Frontiers Media S.A. 2016-11-18 /pmc/articles/PMC5114296/ /pubmed/27917177 http://dx.doi.org/10.3389/fpls.2016.01620 Text en Copyright © 2016 Lewandowski, Clifton-Brown, Trindade, van der Linden, Schwarz, Müller-Sämann, Anisimov, Chen, Dolstra, Donnison, Farrar, Fonteyne, Harding, Hastings, Huxley, Iqbal, Khokhlov, Kiesel, Lootens, Meyer, Mos, Muylle, Nunn, Özgüven, Roldán-Ruiz, Schüle, Tarakanov, van der Weijde, Wagner, Xi and Kalinina. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms. |
spellingShingle | Plant Science Lewandowski, Iris Clifton-Brown, John Trindade, Luisa M. van der Linden, Gerard C. Schwarz, Kai-Uwe Müller-Sämann, Karl Anisimov, Alexander Chen, C.-L. Dolstra, Oene Donnison, Iain S. Farrar, Kerrie Fonteyne, Simon Harding, Graham Hastings, Astley Huxley, Laurie M. Iqbal, Yasir Khokhlov, Nikolay Kiesel, Andreas Lootens, Peter Meyer, Heike Mos, Michal Muylle, Hilde Nunn, Chris Özgüven, Mensure Roldán-Ruiz, Isabel Schüle, Heinrich Tarakanov, Ivan van der Weijde, Tim Wagner, Moritz Xi, Qingguo Kalinina, Olena Progress on Optimizing Miscanthus Biomass Production for the European Bioeconomy: Results of the EU FP7 Project OPTIMISC |
title | Progress on Optimizing Miscanthus Biomass Production for the European Bioeconomy: Results of the EU FP7 Project OPTIMISC |
title_full | Progress on Optimizing Miscanthus Biomass Production for the European Bioeconomy: Results of the EU FP7 Project OPTIMISC |
title_fullStr | Progress on Optimizing Miscanthus Biomass Production for the European Bioeconomy: Results of the EU FP7 Project OPTIMISC |
title_full_unstemmed | Progress on Optimizing Miscanthus Biomass Production for the European Bioeconomy: Results of the EU FP7 Project OPTIMISC |
title_short | Progress on Optimizing Miscanthus Biomass Production for the European Bioeconomy: Results of the EU FP7 Project OPTIMISC |
title_sort | progress on optimizing miscanthus biomass production for the european bioeconomy: results of the eu fp7 project optimisc |
topic | Plant Science |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5114296/ https://www.ncbi.nlm.nih.gov/pubmed/27917177 http://dx.doi.org/10.3389/fpls.2016.01620 |
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