IDEAS home Printed from https://ideas.repec.org/r/eee/agisys/v57y1998i4p599-630.html
   My bibliography  Save this item

Energy utilization in crop and dairy production in organic and conventional livestock production systems

Citations

Citations are extracted by the CitEc Project, subscribe to its RSS feed for this item.
as


Cited by:

  1. Martinho, Vítor João Pereira Domingues, 2021. "Direct and indirect energy consumption in farming: Impacts from fertilizer use," Energy, Elsevier, vol. 236(C).
  2. Van linden, Veerle & Herman, Lieve, 2014. "A fuel consumption model for off-road use of mobile machinery in agriculture," Energy, Elsevier, vol. 77(C), pages 880-889.
  3. Luhmann, Henrike & Schape, Christian & Theuvsen, Ludwig & Weiland, Ingke, 2016. "Was Bedingt Die Bereitschaft Deutscher Milcherzeuger Zur Teilnahme An Einem Nachhaltigkeitsstandard? Ergebnisse Einer Empirischen Untersuchung," 56th Annual Conference, Bonn, Germany, September 28-30, 2016 244758, German Association of Agricultural Economists (GEWISOLA).
  4. Hung-Chun Lin & Yasuhiro Fukushima, 2016. "Rice Cultivation Methods and Their Sustainability Aspects: Organic and Conventional Rice Production in Industrialized Tropical Monsoon Asia with a Dual Cropping System," Sustainability, MDPI, vol. 8(6), pages 1-23, June.
  5. Oğuz, Cennet & Yener, Aysun, 2019. "The use of energy in milk production; a case study from Konya province of Turkey," Energy, Elsevier, vol. 183(C), pages 142-148.
  6. Pervanchon, F. & Bockstaller, C. & Girardin, P., 2002. "Assessment of energy use in arable farming systems by means of an agro-ecological indicator: the energy indicator," Agricultural Systems, Elsevier, vol. 72(2), pages 149-172, May.
  7. Alireza Koocheki & Reza Ghorbani & Farzad Mondani & Yaser Alizade, 2011. "Pulses Production Systems in Term of Energy Use Efficiency and Economical Analysis in Iran," International Journal of Energy Economics and Policy, Econjournals, vol. 1(4), pages 95-106.
  8. Barut, Zeliha Bereket & Ertekin, Can & Karaagac, Hasan Ali, 2011. "Tillage effects on energy use for corn silage in Mediterranean Coastal of Turkey," Energy, Elsevier, vol. 36(9), pages 5466-5475.
  9. Carl F. Jordan, 2016. "The Farm as a Thermodynamic System: Implications of the Maximum Power Principle," Biophysical Economics and Resource Quality, Springer, vol. 1(2), pages 1-14, December.
  10. Mariarosaria Agostino, 2016. "Organic Agriculture, Greenhouse Gas Emissions and Environmental Efficiency: An Empirical Study on OECD Countries," International Journal of Economics and Finance, Canadian Center of Science and Education, vol. 8(11), pages 1-78, November.
  11. Philip Shine & John Upton & Paria Sefeedpari & Michael D. Murphy, 2020. "Energy Consumption on Dairy Farms: A Review of Monitoring, Prediction Modelling, and Analyses," Energies, MDPI, vol. 13(5), pages 1-25, March.
  12. Marco Cossu & Luigi Ledda & Stefania Solinas & Andrea Cossu & Antonio Pazzona, 2020. "Evaluation of the Energy Utilization Index in Sheep Milk Cooling Systems," Energies, MDPI, vol. 13(9), pages 1-16, April.
  13. Guyader, Jessie & Little, Shannan & Kröbel, Roland & Benchaar, Chaouki & Beauchemin, Karen A., 2017. "Comparison of greenhouse gas emissions from corn- and barley-based dairy production systems in Eastern Canada," Agricultural Systems, Elsevier, vol. 152(C), pages 38-46.
  14. Wallgren, Christine & Höjer, Mattias, 2009. "Eating energy--Identifying possibilities for reduced energy use in the future food supply system," Energy Policy, Elsevier, vol. 37(12), pages 5803-5813, December.
  15. Pashaei Kamali, Farahnaz & Borges, João A.R. & Meuwissen, Miranda P.M. & de Boer, Imke J.M. & Oude Lansink, Alfons G.J.M., 2017. "Sustainability assessment of agricultural systems: The validity of expert opinion and robustness of a multi-criteria analysis," Agricultural Systems, Elsevier, vol. 157(C), pages 118-128.
  16. Alluvione, Francesco & Moretti, Barbara & Sacco, Dario & Grignani, Carlo, 2011. "EUE (energy use efficiency) of cropping systems for a sustainable agriculture," Energy, Elsevier, vol. 36(7), pages 4468-4481.
  17. Kraatz, Simone, 2012. "Energy intensity in livestock operations – Modeling of dairy farming systems in Germany," Agricultural Systems, Elsevier, vol. 110(C), pages 90-106.
  18. Baynes, Timothy & Lenzen, Manfred & Steinberger, Julia K. & Bai, Xuemei, 2011. "Comparison of household consumption and regional production approaches to assess urban energy use and implications for policy," Energy Policy, Elsevier, vol. 39(11), pages 7298-7309.
  19. Luhmann, Henrike & Schaper, Christian & Theuvsen, Ludwig, 2016. "Acceptance of a Sustainability Standard: Evidence from an Empirical Study of Future-Oriented Dairy Farmers," 2016 International European Forum (151st EAAE Seminar), February 15-19, 2016, Innsbruck-Igls, Austria 244538, International European Forum on System Dynamics and Innovation in Food Networks.
  20. Ali S. Pracha & Timothy A. Volk, 2011. "An Edible Energy Return on Investment (EEROI) Analysis of Wheat and Rice in Pakistan," Sustainability, MDPI, vol. 3(12), pages 1-34, December.
  21. David E. Winickoff & Kendra Klein, 2011. "Food Labels and the Environment: Towards Harmonization of EU and US Organic Standards," Chapters, in: David Vogel & Johan Swinnen (ed.), Transatlantic Regulatory Cooperation, chapter 10, Edward Elgar Publishing.
  22. Pagani, Marco & Vittuari, Matteo & Johnson, Thomas G. & De Menna, Fabio, 2016. "An assessment of the energy footprint of dairy farms in Missouri and Emilia-Romagna," Agricultural Systems, Elsevier, vol. 145(C), pages 116-126.
  23. Nemecek, Thomas & Dubois, David & Huguenin-Elie, Olivier & Gaillard, Gérard, 2011. "Life cycle assessment of Swiss farming systems: I. Integrated and organic farming," Agricultural Systems, Elsevier, vol. 104(3), pages 217-232, March.
  24. Anna Kuczuk & Janusz Pospolita, 2020. "Sustainable Agriculture – Energy and Emergy Aspects of Agricultural Production," European Research Studies Journal, European Research Studies Journal, vol. 0(4), pages 1000-1018.
  25. Wood, Richard & Lenzen, Manfred & Dey, Christopher & Lundie, Sven, 2006. "A comparative study of some environmental impacts of conventional and organic farming in Australia," Agricultural Systems, Elsevier, vol. 89(2-3), pages 324-348, September.
  26. Mariarosaria Agostino, 2016. "Organic Agriculture, Greenhouse Gas Emissions and Environmental Efficiency: An Empirical Study on OECD Countries," International Journal of Economics and Finance, Canadian Center of Science and Education, vol. 8(11), pages 78-95, November.
  27. L. Hlisnikovský & E. Kunzová & L. Menšík, 2016. "Winter wheat: results of long-term fertilizer experiment in Prague-Ruzyně over the last 60 years," Plant, Soil and Environment, Czech Academy of Agricultural Sciences, vol. 62(3), pages 105-113.
  28. Tzilivakis, J. & Warner, D.J. & May, M. & Lewis, K.A. & Jaggard, K., 2005. "An assessment of the energy inputs and greenhouse gas emissions in sugar beet (Beta vulgaris) production in the UK," Agricultural Systems, Elsevier, vol. 85(2), pages 101-119, August.
  29. Luhmann, Henrike & Schaper, Christian & Theuvsen, Ludwig, 2016. "Future-Oriented Dairy Farmers’ Willingness to Participate in a Sustainability Standard: Evidence from an Empirical Study in Germany," International Journal on Food System Dynamics, International Center for Management, Communication, and Research, vol. 7(3), pages 1-15, July.
  30. M.R. Jadidi & M.S. Sabuni & M. Homayounifar & A. Mohammadi, 2012. "Assessment of energy use pattern for tomato production in Iran: A case study from the Marand region," Research in Agricultural Engineering, Czech Academy of Agricultural Sciences, vol. 58(2), pages 50-56.
  31. Oudshoorn, Frank W. & Sørensen, Claus Aage G. & de Boer, Imke I.J.M., 2011. "Economic and environmental evaluation of three goal-vision based scenarios for organic dairy farming in Denmark," Agricultural Systems, Elsevier, vol. 104(4), pages 315-325, April.
  32. Martinho, V.J.P.D., 2020. "Relationships between agricultural energy and farming indicators," Renewable and Sustainable Energy Reviews, Elsevier, vol. 132(C).
IDEAS is a RePEc service. RePEc uses bibliographic data supplied by the respective publishers.