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Erschienen in: The International Journal of Life Cycle Assessment 3/2016

28.01.2016 | CARBON FOOTPRINTING

Evaluating the carbon footprint of Chilean organic blueberry production

verfasst von: Hanna Cordes, Alfredo Iriarte, Pablo Villalobos

Erschienen in: The International Journal of Life Cycle Assessment | Ausgabe 3/2016

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Abstract

Purpose

Chile is the second largest blueberry producer and exporter worldwide. At the global level, there is a lack of information by means of field data about greenhouse gas emissions from organic cultivation of this fruit. This study obtains a resource use inventory and assesses the cradle-to-farm gate carbon footprint (CF) of organic blueberry (Vaccinium corymbosum) production in the main cultivation area of Chile in order to identify CF key factors and to provide improvement measures.

Methods

The method used in this study follows the ISO 14040 framework and the main recommendations in the PAS 2050 guide as well as its specification for horticultural products PAS 2050-1. Primary data were collected for three consecutive production seasons from five organic Chilean blueberry orchards and calculations conducted with the GaBi 4 software. Agricultural factors such as fertilizers, pesticides, fossil fuels, electricity, materials, machinery, and direct land use change (LUC) are included. Only three orchards present direct LUC.

Results and discussion

The direct LUC associated with the conversion from annual crops to perennial crops is a key factor in the greenhouse gas removals from the orchards. When accounting for direct LUC, the CF of organic blueberry production in the studied orchards ranges from removals (reported as negative value) of −0.94 to emissions of 0.61 kg CO2-e/kg blueberry. CF excluding LUC ranges from 0.27 to 0.69 kg CO2-e/kg blueberry. The variability in the results of the orchards suggests that the production practices have important effects on the CF. The factors with the greatest contribution to the greenhouse emissions are organic fertilizers followed by energy use causing, on average, 50 and 43 % of total emissions, respectively.

Conclusions

The CF of the organic blueberry orchards under study decreases significantly when taking into account removals related to LUC. The results highlight the importance of reporting separately the greenhouse gas (GHG) emissions from LUC. The CF of blueberry production could be reduced by optimizing fertilizer application, using cover crops and replacing inefficient tractors and large irrigation pumps. The identification of improvement measures would be a useful guide for changing grower practices.

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Fußnoten
1
Because this study does a cradle-to-farm gate assessment of a horticultural product, PAS 2050-1 was chosen instead of the ISO/TS 14067:2013. PAS 2050-1 provides specific guidance and indicates supplementary requirements for use in conjunction with PAS 2050 for the cradle-to-gate assessment of the GHG emissions from the cultivation of horticultural products.
 
Literatur
Zurück zum Zitat Achten W, Almeida J, Fobelets V, Bolle E, Mathijs E, Singh V, Tewari D, Verchot L, Muys B (2010) Life cycle assessment of Jatropha biodiesel as transportation fuel in rural India. Appl Energy 87:3652–3660CrossRef Achten W, Almeida J, Fobelets V, Bolle E, Mathijs E, Singh V, Tewari D, Verchot L, Muys B (2010) Life cycle assessment of Jatropha biodiesel as transportation fuel in rural India. Appl Energy 87:3652–3660CrossRef
Zurück zum Zitat Beccali M, Cellura M, Iudicello M, Mistretta M (2009) Resource consumption and environmental impacts of the agrofood sector: life cycle assessment of Italian citrus-based products. Environ Manage 43:707–724CrossRef Beccali M, Cellura M, Iudicello M, Mistretta M (2009) Resource consumption and environmental impacts of the agrofood sector: life cycle assessment of Italian citrus-based products. Environ Manage 43:707–724CrossRef
Zurück zum Zitat Bessou C, Basset-Mens C, Tran T, Benoist A (2013) LCA applied to perennial cropping systems: a review focused on the farm stage. Int J Life Cycle Assess 18:340–361CrossRef Bessou C, Basset-Mens C, Tran T, Benoist A (2013) LCA applied to perennial cropping systems: a review focused on the farm stage. Int J Life Cycle Assess 18:340–361CrossRef
Zurück zum Zitat Bilalis D, Kamariari P, Karkanis A, Efthimiadou A, Zorpas A, Kakabouki I (2013) Energy inputs, output and productivity in organic and conventional maize and tomato production, under Mediterranean conditions. Not Bot Horti Agrobot Cluj-Napoca 41:190–194 Bilalis D, Kamariari P, Karkanis A, Efthimiadou A, Zorpas A, Kakabouki I (2013) Energy inputs, output and productivity in organic and conventional maize and tomato production, under Mediterranean conditions. Not Bot Horti Agrobot Cluj-Napoca 41:190–194
Zurück zum Zitat Bina S, Dowlatabadib H (2005) Consumer lifestyle approach to US energy use and the related CO2 emissions. Energ Policy 33:197–208CrossRef Bina S, Dowlatabadib H (2005) Consumer lifestyle approach to US energy use and the related CO2 emissions. Energ Policy 33:197–208CrossRef
Zurück zum Zitat Brito de Figueirêdo MC, Kroeze C, Potting J et al (2012) The carbon footprint of exported Brazilian yellow melón. J Clean Prod 47:404–414CrossRef Brito de Figueirêdo MC, Kroeze C, Potting J et al (2012) The carbon footprint of exported Brazilian yellow melón. J Clean Prod 47:404–414CrossRef
Zurück zum Zitat BSI (2011) PAS 2050:2011. Specification for the assessment of life cycle greenhouse gas emissions of goods and services. British Standards Institution, London BSI (2011) PAS 2050:2011. Specification for the assessment of life cycle greenhouse gas emissions of goods and services. British Standards Institution, London
Zurück zum Zitat BSI (2012) PAS 2050-1:2012. Assessment of life cycle greenhouse gas emissions from horticultural products. British Standards Institution, London BSI (2012) PAS 2050-1:2012. Assessment of life cycle greenhouse gas emissions from horticultural products. British Standards Institution, London
Zurück zum Zitat Cerutti A, Bagliani M, Beccaro G, Bounous G (2010) Application of ecological footprint analysis on nectarine production: methodological issues and results from a case study in Italy. J Clean Prod 18:771–776CrossRef Cerutti A, Bagliani M, Beccaro G, Bounous G (2010) Application of ecological footprint analysis on nectarine production: methodological issues and results from a case study in Italy. J Clean Prod 18:771–776CrossRef
Zurück zum Zitat Cerutti A, Bruun S, Beccaro G, Bounous G (2011) A review of studies applying environmental impact assessment methods on fruit production systems. J Environ Manage 92:2277–2286CrossRef Cerutti A, Bruun S, Beccaro G, Bounous G (2011) A review of studies applying environmental impact assessment methods on fruit production systems. J Environ Manage 92:2277–2286CrossRef
Zurück zum Zitat Choo YM, Muhamad H, Hashim Z, Subramaniam V, Puah CW et al (2011) Determination of GHG contributions by subsystems in the oil palm supply chain using the LCA approach. Int J Life Cycle Assess 16:669–681CrossRef Choo YM, Muhamad H, Hashim Z, Subramaniam V, Puah CW et al (2011) Determination of GHG contributions by subsystems in the oil palm supply chain using the LCA approach. Int J Life Cycle Assess 16:669–681CrossRef
Zurück zum Zitat Dalgaard T, Halberg N, Porter JR (2001) A model for fossil energy use in Danish agriculture used to compare organic and conventional farming. Agric Ecosyst Environ 87:51–65CrossRef Dalgaard T, Halberg N, Porter JR (2001) A model for fossil energy use in Danish agriculture used to compare organic and conventional farming. Agric Ecosyst Environ 87:51–65CrossRef
Zurück zum Zitat EPLCA (2007) Carbon footprint - what it is and how to measure it. EPLCA (European Platform on Life Cycle Assessment), Joint Research Centre-Institute for Environment and Sustainability. Ispra, Italy EPLCA (2007) Carbon footprint - what it is and how to measure it. EPLCA (European Platform on Life Cycle Assessment), Joint Research Centre-Institute for Environment and Sustainability. Ispra, Italy
Zurück zum Zitat FAO (2014a) Agriculture, forestry and other land use emissions by sources and removals by sinks. 1990–2011 analysis. In: Tubiello FN, Salvatore M, Cóndor Golec RD et al. (eds) Working Paper Series FAO. Rome, Italy FAO (2014a) Agriculture, forestry and other land use emissions by sources and removals by sinks. 1990–2011 analysis. In: Tubiello FN, Salvatore M, Cóndor Golec RD et al. (eds) Working Paper Series FAO. Rome, Italy
Zurück zum Zitat Finkbeiner M (2009) Carbon footprinting—opportunities and threats. Int J Life Cycle Assess 14:91–94CrossRef Finkbeiner M (2009) Carbon footprinting—opportunities and threats. Int J Life Cycle Assess 14:91–94CrossRef
Zurück zum Zitat Franchetti M, Apul D (2012) Carbon footprint analysis: concepts, methods, implementation, and case studies. CRC Press, FloridaCrossRef Franchetti M, Apul D (2012) Carbon footprint analysis: concepts, methods, implementation, and case studies. CRC Press, FloridaCrossRef
Zurück zum Zitat Fresh Fruit Portal (2014) International Special Edition. Blueberries 2014. Gutierres, ed, Santiago, Chile Fresh Fruit Portal (2014) International Special Edition. Blueberries 2014. Gutierres, ed, Santiago, Chile
Zurück zum Zitat Frischknecht R, Jungbluth N, Althaus HJ, Doka G, Heck T, Hellweg S, Hischier R, Nemecek T, Rebitzer G, Spielmann M, Wernet G (2007) Overview and methodology. Ecoinvent report No. 1. Swiss Centre for Life Cycle Inventories, Dübendorf Frischknecht R, Jungbluth N, Althaus HJ, Doka G, Heck T, Hellweg S, Hischier R, Nemecek T, Rebitzer G, Spielmann M, Wernet G (2007) Overview and methodology. Ecoinvent report No. 1. Swiss Centre for Life Cycle Inventories, Dübendorf
Zurück zum Zitat Gan Y, Liang C, Hamel C, Cutforth H, Wang H (2011) Strategies for reducing the carbon footprint of field crops for semiarid areas. A review. Agron Sustainable Dev 31:643–656CrossRef Gan Y, Liang C, Hamel C, Cutforth H, Wang H (2011) Strategies for reducing the carbon footprint of field crops for semiarid areas. A review. Agron Sustainable Dev 31:643–656CrossRef
Zurück zum Zitat Garnett T (2006) Fruit and vegetables and greenhouse gas emissions: exploring the relationship. Working paper produced as part of the work of the Food Climate Research Network. Centre for Environmental Strategy, University of Surrey Garnett T (2006) Fruit and vegetables and greenhouse gas emissions: exploring the relationship. Working paper produced as part of the work of the Food Climate Research Network. Centre for Environmental Strategy, University of Surrey
Zurück zum Zitat Girgenti V, Peano C, Bounous M, Baudino C (2013) A life cycle assessment of non-renewable energy use and greenhouse gas emissions associated with blueberry and raspberry production in northern Italy. Sci Total Environ 458–460:414–418CrossRef Girgenti V, Peano C, Bounous M, Baudino C (2013) A life cycle assessment of non-renewable energy use and greenhouse gas emissions associated with blueberry and raspberry production in northern Italy. Sci Total Environ 458–460:414–418CrossRef
Zurück zum Zitat Goodland R (1997) Environmental sustainability in agriculture: diet matters. Ecol Econ 23:189–200CrossRef Goodland R (1997) Environmental sustainability in agriculture: diet matters. Ecol Econ 23:189–200CrossRef
Zurück zum Zitat Guinée JB, Gorrée M, Heijungs R, Huppes G, Kleijn R et al (2002) Handbook on life cycle assessment. Operational guide to the ISO standards. I: LCA in perspective. IIa: Guide. IIb: Operational annex. III: scientific background. Kluwer Academic Publishers, Dordrecht, p 692 Guinée JB, Gorrée M, Heijungs R, Huppes G, Kleijn R et al (2002) Handbook on life cycle assessment. Operational guide to the ISO standards. I: LCA in perspective. IIa: Guide. IIb: Operational annex. III: scientific background. Kluwer Academic Publishers, Dordrecht, p 692
Zurück zum Zitat Guzmán GI, Alonso AM (2008) A comparison of energy use in conventional and organic olive oil production in Spain. Agric Syst 98:167–176CrossRef Guzmán GI, Alonso AM (2008) A comparison of energy use in conventional and organic olive oil production in Spain. Agric Syst 98:167–176CrossRef
Zurück zum Zitat Heller M, Keoleian G (2015) Greenhouse gas emission estimates of U.S. dietary choices and food loss. J Ind Ecol 19:391–401CrossRef Heller M, Keoleian G (2015) Greenhouse gas emission estimates of U.S. dietary choices and food loss. J Ind Ecol 19:391–401CrossRef
Zurück zum Zitat Huerta JH, Muñoz E, Montalba R (2012) Evaluation of two production methods of Chilean wheat by life cycle assessment (LCA). Idesia 30:101–110CrossRef Huerta JH, Muñoz E, Montalba R (2012) Evaluation of two production methods of Chilean wheat by life cycle assessment (LCA). Idesia 30:101–110CrossRef
Zurück zum Zitat Ingwersen W (2012) Life cycle assessment of fresh pineapple from Costa Rica. J Clean Prod 35:152–153CrossRef Ingwersen W (2012) Life cycle assessment of fresh pineapple from Costa Rica. J Clean Prod 35:152–153CrossRef
Zurück zum Zitat INIA (2010) Huella de Carbono en productos de exportación agropecuarios de Chile. Instituto de Investigaciones Agropecuarias (INIA), Servicios de Ingeniería DEUMAN Ltda, Santiago, Chile INIA (2010) Huella de Carbono en productos de exportación agropecuarios de Chile. Instituto de Investigaciones Agropecuarias (INIA), Servicios de Ingeniería DEUMAN Ltda, Santiago, Chile
Zurück zum Zitat IPCC (2006a) N2O emissions from managed soils and CO2 emissions from lime and urea application. Chapter 11. In: Eggleston HS, Buendia L, Miwa K, Ngara T, Tanabe K (eds) Intergovernmental Panel on Climate Change guidelines for national greenhouse gas inventories. National Greenhouse Gas Inventories Programme, IGES Hayama, Japan IPCC (2006a) N2O emissions from managed soils and CO2 emissions from lime and urea application. Chapter 11. In: Eggleston HS, Buendia L, Miwa K, Ngara T, Tanabe K (eds) Intergovernmental Panel on Climate Change guidelines for national greenhouse gas inventories. National Greenhouse Gas Inventories Programme, IGES Hayama, Japan
Zurück zum Zitat IPCC (2006b) Agriculture, forestry and other land use. Introduction. In: Eggleston HS, Buendia L, Miwa K, Ngara T, Tanabe K (eds) Intergovernmental Panel on Climate Change guidelines for national greenhouse gas inventories. National Greenhouse Gas Inventories Programme, IGES Hayama, Japan IPCC (2006b) Agriculture, forestry and other land use. Introduction. In: Eggleston HS, Buendia L, Miwa K, Ngara T, Tanabe K (eds) Intergovernmental Panel on Climate Change guidelines for national greenhouse gas inventories. National Greenhouse Gas Inventories Programme, IGES Hayama, Japan
Zurück zum Zitat Iriarte A, Rieradevall J, Gabarrell X (2010) Life cycle assessment of sunflower and rapeseed as energy crops under Chilean conditions. J Clean Prod 18:336–345CrossRef Iriarte A, Rieradevall J, Gabarrell X (2010) Life cycle assessment of sunflower and rapeseed as energy crops under Chilean conditions. J Clean Prod 18:336–345CrossRef
Zurück zum Zitat Iriarte A, Rieradevall J, Gabarrell X (2011) Environmental impacts and energy demand of rapeseed as an energy crop in Chile under different fertilization and tillage practices. Biomass Bioenergy 35:4305–4315CrossRef Iriarte A, Rieradevall J, Gabarrell X (2011) Environmental impacts and energy demand of rapeseed as an energy crop in Chile under different fertilization and tillage practices. Biomass Bioenergy 35:4305–4315CrossRef
Zurück zum Zitat Iriarte A, Almeida MG, Villalobos P (2014) Carbon footprint of premium quality export bananas: case study in Ecuador, the world’s largest exporter. Sci Total Environ 472:1082–1088CrossRef Iriarte A, Almeida MG, Villalobos P (2014) Carbon footprint of premium quality export bananas: case study in Ecuador, the world’s largest exporter. Sci Total Environ 472:1082–1088CrossRef
Zurück zum Zitat ISO (2006) ISO 14040:2006. Environmental management—life cycle assessment—principles and framework. International Organization for Standardization, Geneva ISO (2006) ISO 14040:2006. Environmental management—life cycle assessment—principles and framework. International Organization for Standardization, Geneva
Zurück zum Zitat Kaltsas AM, Mamolos AP, Tsatsarelis CA, Nanos GD, Kalburtji KL (2007) Energy budget in organic and conventional olive groves. Agric Ecosyst Environ 122:243–251CrossRef Kaltsas AM, Mamolos AP, Tsatsarelis CA, Nanos GD, Kalburtji KL (2007) Energy budget in organic and conventional olive groves. Agric Ecosyst Environ 122:243–251CrossRef
Zurück zum Zitat Kavargiris SE, Mamolos AP, Tsatsarelis CA, Nikolaidou AE, Kalburtji KL (2009) Energy resources’ utilization in organic and conventional vineyards: energy flow, greenhouse gas emissions and biofuel production. Biomass Bioenergy 33:1239–1250CrossRef Kavargiris SE, Mamolos AP, Tsatsarelis CA, Nikolaidou AE, Kalburtji KL (2009) Energy resources’ utilization in organic and conventional vineyards: energy flow, greenhouse gas emissions and biofuel production. Biomass Bioenergy 33:1239–1250CrossRef
Zurück zum Zitat Kramer K, Moll H, Nonhebel S, Wilting H (1999) Greenhouse gas emissions related to Dutch food consumption. Energy Policy 27:203–216CrossRef Kramer K, Moll H, Nonhebel S, Wilting H (1999) Greenhouse gas emissions related to Dutch food consumption. Energy Policy 27:203–216CrossRef
Zurück zum Zitat Kroodsma DA, Field CB (2006) Carbon sequestration in California agriculture, 1980–2000. Ecol Appl 16:1975–1985CrossRef Kroodsma DA, Field CB (2006) Carbon sequestration in California agriculture, 1980–2000. Ecol Appl 16:1975–1985CrossRef
Zurück zum Zitat Lal R (2009) Challenges and opportunities in soil organic matter research. Eur J Soil Sci 60:158–169CrossRef Lal R (2009) Challenges and opportunities in soil organic matter research. Eur J Soil Sci 60:158–169CrossRef
Zurück zum Zitat Laurent A, Olsen S, Hauschild M (2012) Limitations of carbon footprint as indicator of environmental sustainability. Environ Sci Technol 46:4100–4108CrossRef Laurent A, Olsen S, Hauschild M (2012) Limitations of carbon footprint as indicator of environmental sustainability. Environ Sci Technol 46:4100–4108CrossRef
Zurück zum Zitat Liu Y, Langer V, Høgh-Jensen H, Egelyng H (2010) Life cycle assessment of fossil energy use and greenhouse gas emissions in Chinese pear production. J Clean Prod 18:1423–1430CrossRef Liu Y, Langer V, Høgh-Jensen H, Egelyng H (2010) Life cycle assessment of fossil energy use and greenhouse gas emissions in Chinese pear production. J Clean Prod 18:1423–1430CrossRef
Zurück zum Zitat Luo L, Van Der Voet E, Huppes G (2009) Life cycle assessment and life cycle costing of bioethanol from sugarcane in Brazil. Renewable Sustainable Energy Rev 13:1613–1619CrossRef Luo L, Van Der Voet E, Huppes G (2009) Life cycle assessment and life cycle costing of bioethanol from sugarcane in Brazil. Renewable Sustainable Energy Rev 13:1613–1619CrossRef
Zurück zum Zitat Meier M, Stoessel F, Jungbluth N, Juraske R, Schader C, Stolze M (2014) Environmental impacts of organic and conventional agricultural products—are the differences captured by life cycle assessment? J Environ Manage 149:193–208CrossRef Meier M, Stoessel F, Jungbluth N, Juraske R, Schader C, Stolze M (2014) Environmental impacts of organic and conventional agricultural products—are the differences captured by life cycle assessment? J Environ Manage 149:193–208CrossRef
Zurück zum Zitat Milà i Canals L, Burnip GM, Cowell SJ (2006) Evaluation of the environmental impacts of apple production using Life Cycle Assessment (LCA): case study in New Zealand. Agric Ecosyst Environ 114:226–238CrossRef Milà i Canals L, Burnip GM, Cowell SJ (2006) Evaluation of the environmental impacts of apple production using Life Cycle Assessment (LCA): case study in New Zealand. Agric Ecosyst Environ 114:226–238CrossRef
Zurück zum Zitat Mithraratne N, McLaren S, Barber A (2008) Carbon footprinting for the kiwifruit supply chain. Report on methodology and scoping study. Landcare Research. Ministry of Agriculture and Forestry, New Zealand Mithraratne N, McLaren S, Barber A (2008) Carbon footprinting for the kiwifruit supply chain. Report on methodology and scoping study. Landcare Research. Ministry of Agriculture and Forestry, New Zealand
Zurück zum Zitat Mudahar M, Hignett T (1987) Energy requirements, technology, and resources in the fertilizer sector. In: Helsel ZR (ed) Energy in world agriculture. Elsevier, Amsterdam, pp 26–61 Mudahar M, Hignett T (1987) Energy requirements, technology, and resources in the fertilizer sector. In: Helsel ZR (ed) Energy in world agriculture. Elsevier, Amsterdam, pp 26–61
Zurück zum Zitat Öborn I, Sonesson U, Stern S, Berg C, Gunnarsson S, Lagerkvist C (2002) Where are the weak links in a sustainable food chain? An interview survey. MAT21 Rapport. Swedish University of Agricultural Sciences, Uppsala Öborn I, Sonesson U, Stern S, Berg C, Gunnarsson S, Lagerkvist C (2002) Where are the weak links in a sustainable food chain? An interview survey. MAT21 Rapport. Swedish University of Agricultural Sciences, Uppsala
Zurück zum Zitat ODEPA (2013a) Inserción de la agricultura chilena en los mercados internacionales. ODEPA (Oficina de Estudios y Políticas Agrarias), Gobierno de Chile, Santiago, Chile ODEPA (2013a) Inserción de la agricultura chilena en los mercados internacionales. ODEPA (Oficina de Estudios y Políticas Agrarias), Gobierno de Chile, Santiago, Chile
Zurück zum Zitat ODEPA (2013b) Alternativas para el cultivo de arándanos. ODEPA (Oficina de Estudios y Políticas Agrarias), Gobierno de Chile, Santiago, Chile ODEPA (2013b) Alternativas para el cultivo de arándanos. ODEPA (Oficina de Estudios y Políticas Agrarias), Gobierno de Chile, Santiago, Chile
Zurück zum Zitat ODEPA (2013c) Evolución de las exportaciones silvoagropecuarias de Chile, 2003 - junio 2013. ODEPA (Oficina de Estudios y Políticas Agrarias), Gobierno de Chile, Santiago, Chile ODEPA (2013c) Evolución de las exportaciones silvoagropecuarias de Chile, 2003 - junio 2013. ODEPA (Oficina de Estudios y Políticas Agrarias), Gobierno de Chile, Santiago, Chile
Zurück zum Zitat OECD (2001) Environmental indicators for agriculture, Vol. 3. Methods and results, vol OECD (Organization for Economic Cooperation and Development). France, Paris OECD (2001) Environmental indicators for agriculture, Vol. 3. Methods and results, vol OECD (Organization for Economic Cooperation and Development). France, Paris
Zurück zum Zitat Ossés de Eicker M, Hischier R, Hurni H, Zah R (2010) Using non-local databases for the environmental assessment of industrial activities: the case of Latin America. Environ Impact Assess Rev 30:145–157CrossRef Ossés de Eicker M, Hischier R, Hurni H, Zah R (2010) Using non-local databases for the environmental assessment of industrial activities: the case of Latin America. Environ Impact Assess Rev 30:145–157CrossRef
Zurück zum Zitat Page G, Kelly T, Minor M, Cameron M (2011) Modeling carbon footprints of organic orchard production systems to address carbon trading: an approach based on life cycle assessment. HortScience 46:324–327 Page G, Kelly T, Minor M, Cameron M (2011) Modeling carbon footprints of organic orchard production systems to address carbon trading: an approach based on life cycle assessment. HortScience 46:324–327
Zurück zum Zitat Pathak H, Jain N, Bhatia A, Patel J, Aggarwal P (2010) Carbon footprints of Indian food items. Agric Ecosyst Environ 139:66–73CrossRef Pathak H, Jain N, Bhatia A, Patel J, Aggarwal P (2010) Carbon footprints of Indian food items. Agric Ecosyst Environ 139:66–73CrossRef
Zurück zum Zitat Percival D, Dias G (2014) Energy consumption and greenhouse gas production in wild blueberry production. Acta Hortic (ISHS) 1017:163–168CrossRef Percival D, Dias G (2014) Energy consumption and greenhouse gas production in wild blueberry production. Acta Hortic (ISHS) 1017:163–168CrossRef
Zurück zum Zitat PRé (2015) SimaPro Database Manual—methods library. PRé Consultants B.V, The Netherlands PRé (2015) SimaPro Database Manual—methods library. PRé Consultants B.V, The Netherlands
Zurück zum Zitat Renouf M, Wegener M, Nielsen L (2008) An environmental life cycle assessment comparing Australian sugarcane with US corn and UK sugar beet as producers of sugars for fermentation. Biomass Bioenergy 32:1144–1155CrossRef Renouf M, Wegener M, Nielsen L (2008) An environmental life cycle assessment comparing Australian sugarcane with US corn and UK sugar beet as producers of sugars for fermentation. Biomass Bioenergy 32:1144–1155CrossRef
Zurück zum Zitat SAG (2013) Agricultura orgánica nacional. Servicio Agrícola y Ganadero (SAG), Ministerio de Agricultura, Santiago, Chile SAG (2013) Agricultura orgánica nacional. Servicio Agrícola y Ganadero (SAG), Ministerio de Agricultura, Santiago, Chile
Zurück zum Zitat Salami P, Ahmadi H, Keyhani A (2010) Estimating the equivalent energy for single super phosphate production in Iran. Journal of Scientific Review 2:1–10 Salami P, Ahmadi H, Keyhani A (2010) Estimating the equivalent energy for single super phosphate production in Iran. Journal of Scientific Review 2:1–10
Zurück zum Zitat Schmidt JH (2007) Life assessment of rapeseed oil and palm oil. Ph. D. thesis, part 3: life cycle inventory of rapeseed oil. Aalborg University, Aalborg, Denmark Schmidt JH (2007) Life assessment of rapeseed oil and palm oil. Ph. D. thesis, part 3: life cycle inventory of rapeseed oil. Aalborg University, Aalborg, Denmark
Zurück zum Zitat Shepherd M, Pearce B, Cormack B et al (2003) An assessment of the environmental impacts of organic farming. A review for DEFRA-funded Project OF0405, London, UK Shepherd M, Pearce B, Cormack B et al (2003) An assessment of the environmental impacts of organic farming. A review for DEFRA-funded Project OF0405, London, UK
Zurück zum Zitat Stolze M, Piorr A, Häring A, Dabbert S (2000) Environmental impacts of organic farming in Europe. Organic farming in Europe: economics and policy. University of Hohenheim, Stuttgart Stolze M, Piorr A, Häring A, Dabbert S (2000) Environmental impacts of organic farming in Europe. Organic farming in Europe: economics and policy. University of Hohenheim, Stuttgart
Zurück zum Zitat Tan RR, Culaba AB, Purvis MR (2002) Application of possibility theory in the life‐cycle inventory assessment of biofuels. Int J Energy Res 26:737–745CrossRef Tan RR, Culaba AB, Purvis MR (2002) Application of possibility theory in the life‐cycle inventory assessment of biofuels. Int J Energy Res 26:737–745CrossRef
Zurück zum Zitat Tukker A (2000) Life cycle assessment as a tool in environmental impact assessment. Environ Impact Assess Rev 20:435–456CrossRef Tukker A (2000) Life cycle assessment as a tool in environmental impact assessment. Environ Impact Assess Rev 20:435–456CrossRef
Zurück zum Zitat UNEP (2000) Agenda 21. Chapter 14: promoting sustainable agriculture and rural development. United Nations Environment Programme (UNEP), New York UNEP (2000) Agenda 21. Chapter 14: promoting sustainable agriculture and rural development. United Nations Environment Programme (UNEP), New York
Zurück zum Zitat Van der Werf H, Gaillard G, Biard Y, Koch P, Basset-Mens C et al (2010) Creation of a public LCA database of French agricultural raw products: Agri-BALYSE. Proceedings of LCA Food, Bari, Italy Van der Werf H, Gaillard G, Biard Y, Koch P, Basset-Mens C et al (2010) Creation of a public LCA database of French agricultural raw products: Agri-BALYSE. Proceedings of LCA Food, Bari, Italy
Zurück zum Zitat Venkat K (2012) Comparison of twelve organic and conventional farming systems: a life cycle greenhouse gas emissions perspective. J Sustainable Agric 36:620–649CrossRef Venkat K (2012) Comparison of twelve organic and conventional farming systems: a life cycle greenhouse gas emissions perspective. J Sustainable Agric 36:620–649CrossRef
Zurück zum Zitat Weidema B, Thrane M, Christensen P, Schmidt J, Løkke S (2008) Carbon footprint: a catalyst for life cycle assessment? J Ind Ecol 12:3–6CrossRef Weidema B, Thrane M, Christensen P, Schmidt J, Løkke S (2008) Carbon footprint: a catalyst for life cycle assessment? J Ind Ecol 12:3–6CrossRef
Zurück zum Zitat Wiedmann T, Minx J (2007) A definition of carbon footprint. Ecol Econ Res Trends 2:55–65 Wiedmann T, Minx J (2007) A definition of carbon footprint. Ecol Econ Res Trends 2:55–65
Metadaten
Titel
Evaluating the carbon footprint of Chilean organic blueberry production
verfasst von
Hanna Cordes
Alfredo Iriarte
Pablo Villalobos
Publikationsdatum
28.01.2016
Verlag
Springer Berlin Heidelberg
Erschienen in
The International Journal of Life Cycle Assessment / Ausgabe 3/2016
Print ISSN: 0948-3349
Elektronische ISSN: 1614-7502
DOI
https://doi.org/10.1007/s11367-016-1034-8

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