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Energy Use and Cost Analysis of Olive Under Flat and Sloping Growing Conditions

Year 2020, Volume: 8 Issue: 1, 125 - 135, 14.07.2020
https://doi.org/10.33202/comuagri.664249

Abstract

Olive is an important crop that grows under different cultivation systems of the western Turkey. Efficient use of energy and cost is an important step in terms of increasing the sustainability of olive cultivation. Energy and cost of olive farms analysed under traditional-flat/sloping and intensive-flat systems established on hilly or flat areas in a semiarid environment. Data of inputs and outputs collected in 165 farms through face to face questionnaires. Total energy consumed was 31098.2, 14293.3 and 7380.5 MJ ha-1 for intensive-flat, traditional-flat and sloping systems. Energy inputs of fertilizer was the highest for traditional and intensive flat by 12.93 and 8.95% of the total energy inputs, respectively. Highest net energy gain, ratio, productivity and lowest specific energy were estimated as 14332.8 MJ ha-1, 1.46, 0.93 kg MJ-1 and 1.07 MJ kg-1, respectively, in intensive-flat system. Highest net return (5256.5 € ha-1), a benefit to cost ratio (1.99) and productivity (1.66 kg €-1) was calculated for the same system. Therefore, the results can be very useful in evaluating the sustainability of olive cultivation in this part of the country possessing the characteristic of semiarid, and can also provide a useful guide in order to prioritize the steps for increasing energy efficiency and decreasing cost without worsening environmental conditions.

References

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  • Bilandzija, N., Voca, N., Kricka, T., Matin, A., Jurisic, V., 2012. Energy potential of fruit tree pruned biomass in Croatia. Spanish J of Agri. Res. 10, 292-298.
  • Cappelletti, G.M., Ioppolo, G., Nicoletti, G.M., Russo, C., 2014. Energy requirement of extra virgin olive oil production. Sustainability 6, 4966-4974.
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  • Hemmati, A., Tabatabaeefar, A., Rajabipour, A., 2013. Comparison of energy flow and economic performance between flat land and sloping land olive orchards. Energy 61, 472-478.
  • Kaltsas, A.M., Mamolos, A.P., Tsatsarelis, C.A., Nanos, G.D., Kalburtji, K.L., 2007. Energy budget in organic and conventional olive groves. Agric. Eco. Environ. 122, 243-251. Kitani, O., 1999. Energy and Biomass Engineering. CIGR, V. St Joseph, MI: ASAE.
  • Mikkola, H.J., Ahokas, J., 2010. Indirect energy input of agricultural machinery in bioenergy production. Renewable Energy 35, 23-28.
  • Mudahar, M.S., Hignett, T.P., 1987. Energy requirements, technology and resources in fertilizer sector. Energy in Plant Nutrition and Pest Control. pp. 25-61. Amsterdam: Elsevier.
  • Ozpinar, S., 2002. A research on determination of agricultural structure and mechanisation characteristics of farms in Çanakkale Province. 8th International Congress on Mechanization and Energy in Agriculture. October 15-17, pp.436-441, Kusadası, Turkey. 2002.
  • Özpınar, S., 2018. An assessment of biogas production potential from animal manures in Çanakkale. COMU Journal Agriculture Faculty 6, 109-116.
  • Pimentel, D., Hurd, L.E., Belloti, A.C., Forster, M.J., Oka, I.N., Sholes, O.D., Whitman, R.J., 1973. Food production and the energy crisis. Science 182, 443-449.
  • Rafiee, S., Mousavi-Avval, S.H., Mohammadi, A., 2010. Modelling and sensitivity analysis of energy inputs for apple production in Iran. Energy 35, 3301-3306.
  • Rallo, L., Barranco, D., Castro-Garcia, S., Connor, D.J., Gómez del Campo, M., Rallo, P., 2013. High-density olive plantations. In J. Janick (Ed.), Horticultural Reviews 41, 303-384.
  • Rajaeifar, M.A., Akram, A., Ghobadian, B., Rafiee, S., Heidari, M.D., 2014. Energy-economic life cycle assessment (LCA) and greenhouse gas emissions analysis of olive oil production in Iran. Energy 66, 139-149.
  • Romero-Gámez, M., Castro-Rodríguez, J., Suárez-Rey, E.M., 2017. Optimization of olive growing practices in Spain from a life cycle assessment perspective. J of Cleaner Pro. 149, 25-37.
  • Sánchez-Escobar, F., Coq-Huelva, D., Sanz-Cañada, J., 2018. Measurement of sustainable intensification by the integrated analysis of energy and economic flows: Case study of the olive-oil agricultural system of Estepa, Spain. J of Cleaner Pro. 463-470.
  • Singh, S., Mittal, J.P., 1992. Energy in production agriculture. NewDelhi: Mittol Publications.
  • Yamane, T., 1967. Elementary Sampling Theory. New Jersey: Prentice-Hall Englewood.
  • Yılmaz, S., Sümer, S.K., 2018. Determining of the tractor renewing rates and agricultural mechanization level in Turkey. Journal of Agricultural Machinery Science 14, 79-87.
  • Tombesi, A.M., Boco, M., Pill, M., Farinelli, D., 2002. Influence of canopy density on efficiency of trunk shaker olive mechanical harvesting. Acta Hort. 586, 291-294.
  • TUIK, 2018. Turkish Statistical Institute (TUIK) http://www.tuik.gov.tr/(15 September 2019).
  • Wiesman, Z., 2009. Desert olive oil cultivation. Netherland. pp. 87-133. Chap. 6.
Year 2020, Volume: 8 Issue: 1, 125 - 135, 14.07.2020
https://doi.org/10.33202/comuagri.664249

Abstract

References

  • Bernardi, B., Falcone, G., Stillitano, T., Benalia, S., Strano, Bacenetti, A. J., De Luca, A.I., 2018. Harvesting system sustainability in Mediterranean olive cultivation. Sci. of the Total Envi. 625, 1446-1458.
  • Bilandzija, N., Voca, N., Kricka, T., Matin, A., Jurisic, V., 2012. Energy potential of fruit tree pruned biomass in Croatia. Spanish J of Agri. Res. 10, 292-298.
  • Cappelletti, G.M., Ioppolo, G., Nicoletti, G.M., Russo, C., 2014. Energy requirement of extra virgin olive oil production. Sustainability 6, 4966-4974.
  • FAOSTAT, 2018. The Food and Agriculture Organization (FAO) of the United Nations (UN) Statistical Database. http://www.faostat3.fao.org; 2019 (accessed 15 September 2019).
  • Guzmán, G.I., Alonso, A.M., 2008. A comparison of energy use in conventional and organic olive oil production in Spanish. Agricultural Systems 98, 167-176.
  • Hemmati, A., Tabatabaeefar, A., Rajabipour, A., 2013. Comparison of energy flow and economic performance between flat land and sloping land olive orchards. Energy 61, 472-478.
  • Kaltsas, A.M., Mamolos, A.P., Tsatsarelis, C.A., Nanos, G.D., Kalburtji, K.L., 2007. Energy budget in organic and conventional olive groves. Agric. Eco. Environ. 122, 243-251. Kitani, O., 1999. Energy and Biomass Engineering. CIGR, V. St Joseph, MI: ASAE.
  • Mikkola, H.J., Ahokas, J., 2010. Indirect energy input of agricultural machinery in bioenergy production. Renewable Energy 35, 23-28.
  • Mudahar, M.S., Hignett, T.P., 1987. Energy requirements, technology and resources in fertilizer sector. Energy in Plant Nutrition and Pest Control. pp. 25-61. Amsterdam: Elsevier.
  • Ozpinar, S., 2002. A research on determination of agricultural structure and mechanisation characteristics of farms in Çanakkale Province. 8th International Congress on Mechanization and Energy in Agriculture. October 15-17, pp.436-441, Kusadası, Turkey. 2002.
  • Özpınar, S., 2018. An assessment of biogas production potential from animal manures in Çanakkale. COMU Journal Agriculture Faculty 6, 109-116.
  • Pimentel, D., Hurd, L.E., Belloti, A.C., Forster, M.J., Oka, I.N., Sholes, O.D., Whitman, R.J., 1973. Food production and the energy crisis. Science 182, 443-449.
  • Rafiee, S., Mousavi-Avval, S.H., Mohammadi, A., 2010. Modelling and sensitivity analysis of energy inputs for apple production in Iran. Energy 35, 3301-3306.
  • Rallo, L., Barranco, D., Castro-Garcia, S., Connor, D.J., Gómez del Campo, M., Rallo, P., 2013. High-density olive plantations. In J. Janick (Ed.), Horticultural Reviews 41, 303-384.
  • Rajaeifar, M.A., Akram, A., Ghobadian, B., Rafiee, S., Heidari, M.D., 2014. Energy-economic life cycle assessment (LCA) and greenhouse gas emissions analysis of olive oil production in Iran. Energy 66, 139-149.
  • Romero-Gámez, M., Castro-Rodríguez, J., Suárez-Rey, E.M., 2017. Optimization of olive growing practices in Spain from a life cycle assessment perspective. J of Cleaner Pro. 149, 25-37.
  • Sánchez-Escobar, F., Coq-Huelva, D., Sanz-Cañada, J., 2018. Measurement of sustainable intensification by the integrated analysis of energy and economic flows: Case study of the olive-oil agricultural system of Estepa, Spain. J of Cleaner Pro. 463-470.
  • Singh, S., Mittal, J.P., 1992. Energy in production agriculture. NewDelhi: Mittol Publications.
  • Yamane, T., 1967. Elementary Sampling Theory. New Jersey: Prentice-Hall Englewood.
  • Yılmaz, S., Sümer, S.K., 2018. Determining of the tractor renewing rates and agricultural mechanization level in Turkey. Journal of Agricultural Machinery Science 14, 79-87.
  • Tombesi, A.M., Boco, M., Pill, M., Farinelli, D., 2002. Influence of canopy density on efficiency of trunk shaker olive mechanical harvesting. Acta Hort. 586, 291-294.
  • TUIK, 2018. Turkish Statistical Institute (TUIK) http://www.tuik.gov.tr/(15 September 2019).
  • Wiesman, Z., 2009. Desert olive oil cultivation. Netherland. pp. 87-133. Chap. 6.
There are 23 citations in total.

Details

Primary Language English
Subjects Agricultural Engineering
Journal Section Articles
Authors

Sakine Özpınar

Publication Date July 14, 2020
Published in Issue Year 2020 Volume: 8 Issue: 1

Cite

APA Özpınar, S. (2020). Energy Use and Cost Analysis of Olive Under Flat and Sloping Growing Conditions. ÇOMÜ Ziraat Fakültesi Dergisi, 8(1), 125-135. https://doi.org/10.33202/comuagri.664249