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Erschienen in: Clean Technologies and Environmental Policy 6/2013

01.12.2013 | Original Paper

Production of green energy from co-digestion: perspectives for the Province of Cuneo, energetic balance and environmental sustainability

verfasst von: Deborah Panepinto, Giuseppe Genon, Enrico Brizio, Daniele Russolillo

Erschienen in: Clean Technologies and Environmental Policy | Ausgabe 6/2013

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Abstract

In Italy and many European countries, energy production from biomass is encouraged by strong economic subsidies so that biomass energy plants are getting large diffusion. Nevertheless, it is necessary to define the environmental compatibility taking into account global parameters as well as environmental impacts at regional and local scales coming from new polluting emissions. The environmental balances regarding new energy plants are of primary importance within very polluted areas such as Northern Italy where air quality limits are systematically exceeded, in particular for PM10, NO2, and ozone. The paper analyzes the renewable energy scenario relating to manure anaerobic digestion and biogas production for the Province of Cuneo, N–W Italy, and the environmental sustainability of the possible choices. The study is focused on energy producibility, heat and power, nitrogen oxides and ammonia emissions, GHG (greenhouse gases) balances dealing also with indirect releases of CH4 and N2O, as well as emissions due to energy crops production. The most important conclusion that can be drawn is that the production of renewable energy from anaerobic digestion could cover up to 13 % of the Province electricity consumption, but sustainability in terms of CO2 emissions can be reached only through an overriding use of agricultural waste products (manure and by-products instead of energy crops) and cogeneration of thermal energy at disposal; the application of the best available techniques to waste gas cleaning, energy recovery, and digestate chemical–physical treatments allows positive emissive balances.

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Literatur
Zurück zum Zitat Amon B, Kryvoruchko V, Amon T (2006) Influence of different methods of covering slurry stores on greenhouse gas and ammonia emissions. Int Congr Ser 1293:315–318CrossRef Amon B, Kryvoruchko V, Amon T (2006) Influence of different methods of covering slurry stores on greenhouse gas and ammonia emissions. Int Congr Ser 1293:315–318CrossRef
Zurück zum Zitat Balsari P, Menardo S (2010) Vantaggi dei pre-trattamenti delle biomasse in ingresso al digestore. Distretto Energetica, Torino Balsari P, Menardo S (2010) Vantaggi dei pre-trattamenti delle biomasse in ingresso al digestore. Distretto Energetica, Torino
Zurück zum Zitat Blengini GA, Brizio E, Cibrario M, Genon G (2011) LCA of bioenergy chains in Piedmont (Italy): a case study to support public decision makers towards sustainability. Resour Conserv Recycl 57:36–47CrossRef Blengini GA, Brizio E, Cibrario M, Genon G (2011) LCA of bioenergy chains in Piedmont (Italy): a case study to support public decision makers towards sustainability. Resour Conserv Recycl 57:36–47CrossRef
Zurück zum Zitat Borjesson P, Berglund M (2007) Environmental systems analysis of biogas systems—Part II: the environmental impact of replacing various reference systems. Biomass Bioenergy 31:326–344CrossRef Borjesson P, Berglund M (2007) Environmental systems analysis of biogas systems—Part II: the environmental impact of replacing various reference systems. Biomass Bioenergy 31:326–344CrossRef
Zurück zum Zitat Brizio E, Genon G (2005) Environmental compatibility of renewable energy plants, air pollution XVIII. Wessex Institute of Technology Press, Southampton, pp 149–159 Brizio E, Genon G (2005) Environmental compatibility of renewable energy plants, air pollution XVIII. Wessex Institute of Technology Press, Southampton, pp 149–159
Zurück zum Zitat Buratti C, Fantozzi F (2010) Life cycle assessment of biomass production: development of a methodology to improve the environmental indicators and testing with fiber sorghum energy crop. Biomass Bioenergy 34:1513–1522CrossRef Buratti C, Fantozzi F (2010) Life cycle assessment of biomass production: development of a methodology to improve the environmental indicators and testing with fiber sorghum energy crop. Biomass Bioenergy 34:1513–1522CrossRef
Zurück zum Zitat Cherubini F (2010) GHG balances of bioenergy systems—overview of key steps in the production chain and methodological concerns. Renew Energy 35:1565–1573CrossRef Cherubini F (2010) GHG balances of bioenergy systems—overview of key steps in the production chain and methodological concerns. Renew Energy 35:1565–1573CrossRef
Zurück zum Zitat Cibrario M, (2010) Final Thesis Sostenibilità ambientale delle filiere bio-energetiche dedicate: analisi degli impatti relativi alla digestione anaerobica delle colture energetiche con metodologia LCA, Politecnico di Torino, Italy Cibrario M, (2010) Final Thesis Sostenibilità ambientale delle filiere bio-energetiche dedicate: analisi degli impatti relativi alla digestione anaerobica delle colture energetiche con metodologia LCA, Politecnico di Torino, Italy
Zurück zum Zitat De Leeuw F (2002) A set of emission indicators for long range transboundary air pollution. Environ Sci Policy 5:135–145CrossRef De Leeuw F (2002) A set of emission indicators for long range transboundary air pollution. Environ Sci Policy 5:135–145CrossRef
Zurück zum Zitat Giugliano M, Lonati G (2005) Polveri fini in atmosfera: la componente secondaria, Energia 3/2005, July 2005 Giugliano M, Lonati G (2005) Polveri fini in atmosfera: la componente secondaria, Energia 3/2005, July 2005
Zurück zum Zitat Jury C, Benetto E, Koster D, Schmitt B, Welfring J (2010) Life cycle assessment of biogas production by monofermentation of energy crops and injection into the natural gas grid. Biomass Bioenergy 34:54–66CrossRef Jury C, Benetto E, Koster D, Schmitt B, Welfring J (2010) Life cycle assessment of biogas production by monofermentation of energy crops and injection into the natural gas grid. Biomass Bioenergy 34:54–66CrossRef
Zurück zum Zitat Kaparaju PLN, Rintala JA (2003) Effects of temperature on post-methanation of digested dairy cow manure in a farm-scale biogas production system. Environ Technol 24:1315–1321CrossRef Kaparaju PLN, Rintala JA (2003) Effects of temperature on post-methanation of digested dairy cow manure in a farm-scale biogas production system. Environ Technol 24:1315–1321CrossRef
Zurück zum Zitat Kolář L, Kužel S, Peterka J, Borová-Batt J (2011) Utilisation of waste from digesters for biogas production, Chapter 9. In: Dos Santos Bernardes MA (ed) Biofuel’s Engineering Process Technology. INTECH, Rijeka Kolář L, Kužel S, Peterka J, Borová-Batt J (2011) Utilisation of waste from digesters for biogas production, Chapter 9. In: Dos Santos Bernardes MA (ed) Biofuel’s Engineering Process Technology. INTECH, Rijeka
Zurück zum Zitat Lehtomaki A, Huttunen S, Rintala JA (2007) Laboratory investigations on co-digestion of energy crops and crop residues with cow manure for methane production: effect of crop to manure ratio. Resour Conserv Recycl 51:591–609CrossRef Lehtomaki A, Huttunen S, Rintala JA (2007) Laboratory investigations on co-digestion of energy crops and crop residues with cow manure for methane production: effect of crop to manure ratio. Resour Conserv Recycl 51:591–609CrossRef
Zurück zum Zitat Maroušek J (in press-a) Removal of hardly fermentable ballast from the maize silage to accelerate biogas production, Industrial crop and Products Maroušek J (in press-a) Removal of hardly fermentable ballast from the maize silage to accelerate biogas production, Industrial crop and Products
Zurück zum Zitat Maroušek J (in press-b), Pretreatment of sunflower stalks for biogas production, Clean Technology and Environmental Policy, 1–6 Maroušek J (in press-b), Pretreatment of sunflower stalks for biogas production, Clean Technology and Environmental Policy, 1–6
Zurück zum Zitat Maroušek J (in press-c) Study on agriculture decision- makers behavior on sustainable energy utilization, J Agric Environ Ethics Maroušek J (in press-c) Study on agriculture decision- makers behavior on sustainable energy utilization, J Agric Environ Ethics
Zurück zum Zitat Maroušek J, Kawamitsu Y, Ueno M, Kondo Y, Kolář L (2012) Methods for improving methane yield from rye straw. Appl Eng Agric 28:747–755CrossRef Maroušek J, Kawamitsu Y, Ueno M, Kondo Y, Kolář L (2012) Methods for improving methane yield from rye straw. Appl Eng Agric 28:747–755CrossRef
Zurück zum Zitat Panichnumsin P, Nopharatana A, Ahring B, Chaiprasert P (2010) Production of methane by co-digestion of cassava pulp with various concentrations of pig manure. Biomass Bioenergy 34:1117–1124CrossRef Panichnumsin P, Nopharatana A, Ahring B, Chaiprasert P (2010) Production of methane by co-digestion of cassava pulp with various concentrations of pig manure. Biomass Bioenergy 34:1117–1124CrossRef
Zurück zum Zitat Poschl M, Ward S, Owende P (2010) Evaluation of energy efficiency of various biogas production and utilization pathways. Appl Energy 87:3305–3321CrossRef Poschl M, Ward S, Owende P (2010) Evaluation of energy efficiency of various biogas production and utilization pathways. Appl Energy 87:3305–3321CrossRef
Zurück zum Zitat Schlamadinger B, Apps M, Bohlin F, Gustavsson L, Jungmeier G, Marland G, Pingoud K, Savolainen I (1997) Towards a standard methodology for greenhouse gas balances of bioenergy systems in comparison with fossil energy systems. Biomass Bioenergy 13:359–375CrossRef Schlamadinger B, Apps M, Bohlin F, Gustavsson L, Jungmeier G, Marland G, Pingoud K, Savolainen I (1997) Towards a standard methodology for greenhouse gas balances of bioenergy systems in comparison with fossil energy systems. Biomass Bioenergy 13:359–375CrossRef
Zurück zum Zitat Weiland P (2003) Production and energetic use of biogas from energy crops and wastes in Germany. Appl Biochem Biotechnol 109:263–274CrossRef Weiland P (2003) Production and energetic use of biogas from energy crops and wastes in Germany. Appl Biochem Biotechnol 109:263–274CrossRef
Metadaten
Titel
Production of green energy from co-digestion: perspectives for the Province of Cuneo, energetic balance and environmental sustainability
verfasst von
Deborah Panepinto
Giuseppe Genon
Enrico Brizio
Daniele Russolillo
Publikationsdatum
01.12.2013
Verlag
Springer Berlin Heidelberg
Erschienen in
Clean Technologies and Environmental Policy / Ausgabe 6/2013
Print ISSN: 1618-954X
Elektronische ISSN: 1618-9558
DOI
https://doi.org/10.1007/s10098-012-0568-0

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