Journal of Emergy, Life Cycle and System Analysis in Agriculture

Document Type : Original research article

Authors

1 M.Sc student of Biosystems Engineering, Ferdowsi University of Mashhad, Mashhad, Iran

2 Department of Biosystems Engineering, Ferdowsi University of Mashhad, Mashhad, Iran

Abstract

Green almonds are a seasonal treat, and mechanical harvesting of green almonds has the potential to increase their consumption while also introducing a new method of reducing almond processing costs and residue. The purpose of this study was to investigate the physical properties and mechanical behavior of green almonds of the Sahand variety. The physical properties measured were length, width, thickness, arithmetic and geometric mean diameters, which averaged 29.73, 20.23, 15.02, 21.66, and 20.81 mm, respectively. Additionally, the surface and projected areas, aspect ratio, sphericity, mass, volume, true density, and porosity were determined to be 1366.77 mm2, 473.59 mm2, 0.68, 0.70, 4.14 g, 3.78 cm3, 1.10 g/cm3, and 0.44. Almost all of the physical properties of green almonds studied were found to be correlated. Green almonds had a static friction coefficient of 0.519, 0.441, and 0.523 on MDF, galvanized iron, and rubber, respectively, and the static friction coefficients on MDF and rubber were not significantly different at the 1% confidence level. A uniaxial compression test was used to investigate the mechanical behavior of green almonds under compression. The tests were conducted in three directions (X, Y, and Z, which correspond to the length, width, and thickness of green almonds, respectively) and at three speeds (10, 15, and 20 mm/min). The results indicated that only direction had a significant effect on the mechanical test results and that green almonds can withstand greater deformation along their length before rapture.

Highlights

  • This research looked into the physical and mechanical properties of Sahand green almonds.
  • The average length, width, thickness, arithmetic and geometric mean diameters were 29.73, 20.23, 15.02, 21.66, and 20.81 mm.
  • The surface and projected areas, aspect ratio, sphericity, mass, volume, true density, and porosity were determined to be 1366.77 mm2, 473.59 mm2, 0.68, 0.70, 4.14 g, 3.78 cm3, 1.10 g/cm3, and 0.44.
  • Green almonds had static friction coefficients of 0.519, 0.441, and 0.523 on MDF, galvanized iron, and rubber, respectively.

Keywords

Ahmadpour, A., Tahmasbi, M., Bastami, T.R., Besharati, J.A., 2009. Rapid removal of cobalt ion from aqueous solutions by almond green hull. Journal of Hazardous Materials 166, 925-930.
Aktas, T., Polat, R., Atay, U., 2007. Comparison of mechanical properties of some selected almond cultivars with hard and soft shell under compression loading. Journal of Food Process Engineering 30, 773-789.
Akubude, V.C., Nwaigwe, K.N., 2016. Economic importance of edible and non-edible almond fruit as bioenergy material: a review. American Journal of Energy Science 3, 31-39.
Altuntas, E., Gercekcioglu, R., Kaya, C., 2010. Selected mechanical and geometric properties of different almond cultivars. International Journal of Food Properties 13, 282-293.
Appah, S., Wang, P., Ou, M., Gong, C., Jia, W., 2019. Review of electrostatic system parameters, charged droplets characteristics and substrate impact behavior from pesticides spraying. International Journal of Agricultural and Biological Engineering 12, 1-9.
Askari Asli‐Ardeh, E.A., Mohammad Zadeh, H., Abbaspour‐Gilandeh, Y., 2017. Determination of dynamic friction coefficient in common wheat varieties on different contact surfaces. Agricultural Engineering International: CIGR Journal 19, 136-141.
Aydin, C., 2003. Physical properties of almond nut and kernel. Journal of food engineering 60, 315-320.
Baradaran Motie, J., Miraei Ashtiani, S.H., Abbaspour-Fard, M.H., Emadi, B., 2014. Modeling physical properties of lemon fruits for separation and classification. International Food Research Journal 21, 1901-1909.
Demir, B., Sayinci, B., Çetin, N., Yaman, M., Çömlek, R., 2019. Shape discrimination of almond cultivars by Elliptic Fourier Descriptors. Erwerbs-Obstbau 61, 245-256.
DePeters, E., Swanson, K., Bill, H., Asmus, J., Heguy, J., 2020. Nutritional composition of almond hulls. Applied Animal Science 36, 761-770.
Díez-Palet, I., Funes, I., Savé, R., Biel, C., de Herralde, F., Miarnau, X., Vargas, F., Àvila, G., Carbó, J., Aranda, X., 2019. Blooming under Mediterranean climate: Estimating cultivar-specific chill and heat requirements of almond and apple trees using a statistical approach. Agronomy 9, 760.
Egea, G., González-Real, M.M., Baille, A., Nortes, P.A., Sánchez-Bel, P., Domingo, R., 2009. The effects of contrasted deficit irrigation strategies on the fruit growth and kernel quality of mature almond trees. Agricultural water management 96, 1605-1614.
Emadi, B., Abolghasemi, R., Aghkhani, M.H., Beyraghi Toosi, S., 2011. Physical and mechanical properties of peach. World Applied Sciences Journal 12, 119-122.
Esfahlan, A.J., Jamei, R., Esfahlan, R.J., 2010. The importance of almond (Prunus amygdalus L.) and its by-products. Food chemistry 120, 349-360.
Eskandari, S., Majidazar, M., 2009. Introduction of new hybrid varieties of almond (Prunus amygdalus Batsch) for almond producing regions of Iran. World Applied Sciences Journal 6, 323-330.
Eski, İ., Demir, B., Gürbüz, F., Kuş, Z.A., Yilmaz, K.U., Uzun, M., Ercişli, S., 2018. Design of neural network predictor for the physical properties of almond nuts. Erwerbs-Obstbau 60, 153-160.
Essabir, H., Nekhlaoui, S., Malha, M., Bensalah, M., Arrakhiz, F., Qaiss, A., Bouhfid, R., 2013. Bio-composites based on polypropylene reinforced with Almond Shells particles: Mechanical and thermal properties. Materials & Design 51, 225-230.
FAOSTAT, 2021. FAO Global Statistical Yearbook. FAO, Rome.
Ferrandez-Villena, M., Ferrandez-Garcia, C.E., Garcia Ortuño, T., Ferrandez-Garcia, A., Ferrandez-Garcia, M.T., 2019. Study of the utilisation of almond residues for low-cost panels. Agronomy 9, 811-820.
Gradziel, T.M., 2020. Redomesticating almond to meet emerging food safety needs. Frontiers in Plant Science 11, 778.
Guo, C., Wei, Y., Yang, B., Ayup, M., Li, N., Liu, J., Liao, K., Wang, H., 2021. Developmental transcriptome profiling uncovered carbon signaling genes associated with almond fruit drop. Scientific reports 11, 3401.
Gupta, A., Sharma, R., Sharma, S., 2020. Almond. In: Nayik, G.A., Gull, A. (Eds.), Antioxidants in Vegetables and Nuts-Properties and Health Benefits. Springer, Singapore, pp. 423-452.
Hawker, J., Buttrose, M., 1980. Development of the almond nut (Prunus dulcis (Mill.) DA Webb). Anatomy and chemical composition of fruit parts from anthesis to maturity. Annals of Botany 46, 313-321.
Huang, G., Lapsley, K., 2019. Almonds. In: Pan, Z., Zhang, R., Zicari, S. (Eds.), Integrated Processing Technologies for Food and Agricultural By-Products. Academic Press, pp. 373-390.
Jahanbakhshi, A., Rasooli Sharabiani, V., Heidarbeigi, K., Kaveh, M., Taghinezhad, E., 2019. Evaluation of engineering properties for waste control of tomato during harvesting and postharvesting. Food science & nutrition 7, 1473-1481.
Khazaei, J., Sarmadi, M., Behzad, J., 2006. Physical properties of sunflower seeds and kernels related to harvesting and dehulling. Lucrari Stiintifice 49, 262-271.
Ledbetter, C.A., Palmquist, D.E., 2006. Comparing physical measures and mechanical cracking products of ‘Nonpareil’almond (Prunus dulcis [Mill.] DA Webb.) with two advanced breeding selections. Journal of food engineering 76, 232-237.
Liminana, P., Garcia-Sanoguera, D., Quiles-Carrillo, L., Balart, R., Montanes, N., 2018. Development and characterization of environmentally friendly composites from poly (butylene succinate)(PBS) and almond shell flour with different compatibilizers. Composites Part B: Engineering 144, 153-162.
Maniscalco, M., Corrado, C., Volpe, R., Messineo, A., 2020. Evaluation of the optimal activation parameters for almond shell bio-char production for capacitive deionization. Bioresource Technology Reports 11, 100435.
Martínez-Gómez, P., Sánchez-Pérez, R., Dicenta, F., 2008. Fruit development in almond for fresh consumption. Journal-American Pomological Society 62, 82-86.
McLinden, M.O., Splett, J.D., 2008. A liquid density standard over wide ranges of temperature and pressure based on toluene. Journal of Research of the National Institute of Standards and Technology 113.
Miraei Ashtiani, S.H., Rohani, A., Aghkhani, M.H., 2020. Soft computing-based method for estimation of almond kernel mass from its shell features. Scientia Horticulturae 262, 109071.
Mohsenin, N.N., 1986. Physical Properties of Plant and Animal Materials. Gordon and Breach Science Publishers, New York.
Murathan, Z.T., Kaya, A., Erbil, N., Arslan, M., Dıraz, E., Karaman, Ş., 2020. Comparison of bioactive components, antimicrobial and antimutagenic features of organically and conventionally grown almond hulls. Erwerbs-Obstbau 62, 463-472.
Nasseh, N., Taghavi, L., Barikbin, B., Khodadadi, M., 2017. Advantage of almond green hull over its resultant ash for chromium (VI) removal from aqueous solutions. International Journal of Environmental Science and Technology 14, 251-262.
Oručević, A., Aliman, J., 2018. The phenology of flowering and ripening of almond cultivars Nonpareil, Texas, Ferraduel and Genco in Herzegovina. International Journal of Plant & Soil Science 21, 1-9.
Özcan, M.M., Ünver, A., Erkan, E., Arslan, D., 2011. Characteristics of some almond kernel and oils. Scientia Horticulturae 127, 330-333.
Parker, L.E., Abatzoglou, J.T., 2018. Shifts in the thermal niche of almond under climate change. Climatic change 147, 211-224.
Pirayesh, H., Khazaeian, A., 2012. Using almond (Prunus amygdalus L.) shell as a bio-waste resource in wood based composite. Composites Part B: Engineering 43, 1475-1479.
Prgomet, I., Gonçalves, B., Domínguez-Perles, R., Pascual-Seva, N., Barros, A.I., 2017. Valorization challenges to almond residues: Phytochemical composition and functional application. Molecules 22, 1774.
Rasouli, M., Mollazade, K., Fatahi, R., Zamani, Z., Imani, A., Martínez-Gómez, P., 2010. Evaluation of Engineering Properties in Almond Nuts. International Journal of Natural & Engineering Sciences 4, 17-26.
Remón, J., Latorre-Viu, J., Matharu, A.S., Pinilla, J.L., Suelves, I., 2021. Analysis and optimisation of a novel ‘almond-refinery’concept: Simultaneous production of biofuels and value-added chemicals by hydrothermal treatment of almond hulls. Science of The Total Environment 765, 142671.
Sakar, E.H., El Yamani, M., Rharrabti, Y., 2019. Geometrical Traits in Almond Fruit as Affected by Genotypic and Environmental Variations in Northern Morocco. Erwerbs-Obstbau 61, 103-112.
Serrano, N., Lovera, M., Salguero, A., Arquero, O., Casado, B., Fernández, J., 2011. Flowering and maturation dates of the main late-blooming almond varieties of the Mediterranean basin. Acta horticulturae, 99-102.
Seyedabadi, E., Khojastehpour, M., Sadrnia, H., Saiedirad, M.-H., 2011. Mass modeling of cantaloupe based on geometric attributes: A case study for Tile Magasi and Tile Shahri. Scientia Horticulturae 130, 54-59.
Shirmohammadi, M., Charrault, E., Blencowe, A., 2018. Micromechanical properties of almond kernels with various moisture content levels. International Journal of Food Properties 21, 1820-1832.
Yan, Z., Sousa-Gallagher, M.J., Oliveira, F.A.R., 2008. Shrinkage and porosity of banana, pineapple and mango slices during air-drying. Journal of Food Engineering 84, 430-440.
Zahedi, S.M., Abdelrahman, M., Hosseini, M.S., Yousefi, R., Tran, L.-S.P., 2020. Physical and biochemical properties of 10 wild almond (Amygdalus scoparia) accessions naturally grown in Iran. Food Bioscience 37, 100721.
Zhu, Y., Wilkinson, K.L., Wirthensohn, M., 2017. Changes in fatty acid and tocopherol content during almond (Prunus dulcis, cv. Nonpareil) kernel development. Scientia Horticulturae 225, 150-155.