Evaluation green house gases and energy of pumpkin production in north of Iran

Paper Details

Research Paper 01/08/2013
Views (682)
current_issue_feature_image
publication_file

Evaluation green house gases and energy of pumpkin production in north of Iran

Ebrahim Azarpour, Soraya Afshin Mehr, Maral Moraditochaee, Hamid Reza Bozorgi
Int. J. Biosci. 3(8), 182-190, August 2013.
Copyright Statement: Copyright 2013; The Author(s).
License: CC BY-NC 4.0

Abstract

Energy has a key role in social-economic development of countries. Efficient use of energy in agriculture is one of the conditions for sustainable production. In this article, evaluation of energy balance and energy indices under dry land farming pumpkin in north of Iran (Guilan province) were investigated. Data were collected from 72 farms by used a face to face questionnaire method during 2011 year in Guilan province. By using of consumed data as inputs and total production as output, and their concern equivalent energy, energy balance and energy indices were calculated. Energy efficiency (energy output to input energy ratio) for seed and fruit in this study were calculated 0.16 and 1.43 respectively; showing the affective use of energy in the agro ecosystems pumpkin production. Energy balance efficiency (production energy to consumption energy ratio) for seed and fruit in this study were calculated 0.09 and 1.54 respectively; showing the affective use of energy in the agro ecosystems pumpkin production.

Alam MS, Alam MR, Islam KK. 2005. Energy Flow in Agriculture: Bangladesh. American Journal of Environmental Sciences. 1(3): 213-220. http://dx.doi.org/10.3844/ajessp.2005.213.220

Alfaz MA. 2004. Chemical Composition and Oil Characteristics of Pumpkin (Cucurbita maxima) Seed Kernels. Food and Agriculture Sciences Research Center. The Research Center of the Faculty of Agriculture – King Saud University. 129: 5-18.

Azarpour E. 2012. Evaluation energy balance and energy indices of barley production under watered farming in north of Iran. ARPN Journal of Agricultural and Biological Science. 7(3): 163-168

Azarpour E, Moraditochaee M, Bozorgi HR. 2012. Evaluating energy balance and energy indices of wheat production in rain-fed farming in northern Iran, African Journal of Agricultural Research. 7(12): 1950-1955.

Ghahderijani M, Pishgar Komleh SH, Keyhani A, Sefeedpari P. 2013.  Energy  analysis  and  life cycle assessment of wheat production in Iran, African Journal of Agricultura Research. 8(18):1929-1939.

Hosini N, Haji Hasani N, Resaeefar M. 2009. Evaluation energy balance of pumpkin production pumpkin in Khoy, Iran. Research of agronomical science. 1(4):15-24.

Khan S, Khan MA, Latif N. 2010. Energy requirements and economic analysis of wheat, rice and barley production in Australia. Soil & Environment 29(1), 61- 68.

Kizilaslan H. 2009. Input-output energy analysis of cherries production in Tokat Province of Turkey. Applied Energy. 86: 1354-1358. http://dx.doi.org/10.1016/j.apenergy.2008.07.009

Namdari M. 2011. Energy use and cost analysis of watermelon production under different farming technologies in Iran. International Journal of Environmental Sciences 1(6), 1144-1153.

Namdari M, Mohammadi A, Ghasemi mobtaker H, 2011. Assessment of energy requirements and sensitivty analysis of inputs for watermelon production in Iran. International Journal of Plant. Animal and Environmental Sciences. 1(1): 102-110.

Percin D, Krimer V, Trivic S, Radulovic L. 2009. The distribution of phenolic acids in pumpkins hull-less seed, skin, oil cake meal, de hulled kernel and hull. Food Chemistry. 113 :450-456.

Piringer GJ, Steinberg L. 2006. Reevaluation of Energy Use in Wheat Production in the United States. Journal of Industrial Ecology. 10: 149-167.

Robinson RW, Decker-Walters, DS. 1997. “What are Cucurbits”. In Cucurbits, R.W. Robinson & D.S. Decker-Walters, CAB International, New York. pp: 1-22.

Teppner H. 2000. Cucurbita pepo (cucurbitaceae)-history, seed coat types, thin coated seeds and their genetics. Phyton 40, 1-42

Uhlin H. 1998. Why energy productivity is increasing: an I–O analysis of Swedish agriculture. Agricultural Systems 56(4), 443-465. http://dx.doi.org/ 10.1016/S0308-521X(97)00059-0

Yilmaz I, Akcaoz H, Ozkan B. 2005. An analysis of energy use and input costs for cotton production in Turkey. Renewable Energy. 30: 145-55. http://dx.doi.org/ 10.1016/j.renene.2004.06.001

Related Articles

Implications of aberrant glycosylation on age-related disease progression

Tahmid Ahmad Patwary, Mukramur Rahman, Md. Nafis Fuad Prottoy, Sayad Md. Didarul Alam, Int. J. Biosci. 27(2), 176-188, August 2025.

Design and development of solar powered water sprayer: A green technology innovation

Lorenzo V. Sugod, Int. J. Biosci. 27(2), 159-175, August 2025.

Knowledge, attitudes, practices, and social awareness regarding SARS-CoV-2 infection in the kyrgyz population in the post-pandemic period

Mirza Masroor Ali Beg, Haider Ali, Yahya Nur Ahmed, Yavuz Gunduz, Hafsa Develi, Tilekeeva UM, Int. J. Biosci. 27(2), 151-158, August 2025.

Tumor suppressing ability of myrtenal in DMBA-induced rat mammary cancer: A biochemical and histopathological evaluation

Manoharan Pethanasamy, Shanmugam M. Sivasankaran, Saravanan Surya, Raju Kowsalya, Int. J. Biosci. 27(2), 141-150, August 2025.

Assessing tree diversity in cashew plantations: Environmental and agronomic determinants in buffer zones of Mont Sangbé National Park, western Côte d’Ivoire

Kouamé Christophe Koffi, Kouakou Hilaire Bohoussou, Serge Cherry Piba, Naomie Ouffoue, Sylvestre Gagbe, Alex Beda, Adama Tondossama, Int. J. Biosci. 27(2), 122-133, August 2025.

Anthelmintic potential of powdered papaya seed Carica papaya in varying levels against Ascaridia galli in broiler chicken

Roniemay P. Sayson, Mylene G. Millapez, Zandro O. Perez, Int. J. Biosci. 27(2), 114-121, August 2025.

Valorization of fish scale waste for the synthesis of functional gelatin-based biopolymers

N. Natarajan Arun Nagendran, B. Balakrishnan Rajalakshmi, C. Chellapandi Balachandran, Jayabalan Viji, Int. J. Biosci. 27(2), 102-113, August 2025.