Application of Different Ratios of Effluents of Ethyl Alcohol Factories on Germination of Barley
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Application of Different Ratios of Effluents of Ethyl Alcohol Factories on Germination of Barley

Authors: Azadeh Vaziri

Abstract:

Using effluent as a sustainable water resource for agriculture not only could provide part of water needs but also would save the existing water resources, durably. Vinasse, the effluent of ethyl alcohol factories, a by-product, which is derived from sugarcane molasses, is one of the water resources that could be effectively utilized for agricultural purposes. In the present study in order to investigate the application of different ratios of water: vinasse on germination and growth of barley seedlings an experiment was designed in pots with completely randomized design with three replications and control treatment. The consequences of four irrigation levels were studied with different water: effluent ratios (100% water, 90% water & 10% effluent, 75% water & 25% effluent, 50% water & 50% effluent) on germination and growth of barley seedling components in sandy-loam soil. The results showed that, with increasing the percentage of vinasse in the irrigation admixture, the germination percentage in barley seedlings decreased, significantly, so that the decrease in germination in comparison with the control samples in the second and third treatments was 20% and 93.33%, respectively. Seed germination percentage was about 46.66. The average stem length in seedlings was 14.3 mm and the average root length was 9.37 mm. The averages of the soils Electrical Conductivity (EC) and pH which were under irrigation with different ratios of vinasse (dSm-1) were 5.85 and 7.32, respectively, which showed a 76.2% increase in soil salinity.

Keywords: Electrical Conductivity, effluent, germination, vinasse, barley.

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References:


[1] A. Vaziri, “Effects of Ethanol Wastewater Plants (Vinasse) on the Chemical Characteristics of both Light and Heavy Textured Soils”, Islamic Azad University, Khorasgan, Isfahan. 2014.
[2] M. Jolaini, S. Sahrahi Sadabadi, “Feasibility of Wastewater Application in Water Resources Management In agriculture (Case Study: Mashhad Plain)”, The first national conference on irrigation deficiency and the use of unconventional water in agriculture in dry areas, 2021 IRRIGATION01_072, 02 January, Mashhad, Iran.
[3] V. Robles Gonzalez, “Integrated treatment of mezcal vinasses for depuration and discharge”, Doctoral Thesis, ENCB del IPN. Mexico, D.F., 2011. Mexico.
[4] N. Alavi, M. Daneshpajou, M. Shirmardi, G. Goudarzi, A. Neisi and A.A. Babaei, “Investigating the efficiency of co-composting and vermicomposting of vinasse with the mixture of cow manure wastes, bagasse, and natural zeolite, Waste Management”, 2017, 69, pp. 117-126.
[5] C.E.R. Reis, H.B.S. Bento, T.M. Alves, A.K.F. Carvalho, and H.F. De Castro, “Vinasse Treatment within the Sugarcane-Ethanol Industry Using Ozone Combined with Anaerobic and Aerobic Microbial Processes, Environments”, 2019, 6(1):5, January.
[6] R.G. Moran Salazar, A.L. Sanchez Lizarraga, J. Rodriguez Campos, Davila G. Vazquez, E.N. Marino Marmolejo, L. Dendooven, “Utilization of vinasses as soil amendment: consequences and perspectives”, Springerplus, 2016, 5:1007.
[7] E. Aleebrahim Dehkordi, A. Kazemi, A. Taii, “Reaction percentage and germination rate in three different barley genotypes under the influence of salinity and different fertilizer treatments, International Conference on New Research in Agricultural and Environment”, Malaysia, Kuala Lumpur, 2016, December.
[8] R. Mohammadian, M. Khalili, “Identifying QTLs associated with salinity tolerance in early stages of barley germination, Crop Biotech”, 2016, spring, No 13: pp. 41-55.
[9] E. Mwando, T.T. Angessa, Y. Han, C. LIi, “Salinity tolerance in barley during germination- homologs and potential genes, Journal of Zhejiang University-SCIENCE B (Biomedicine & Biotechnology)”, 2020, No 21(2): pp. 93-121.
[10] E. Al-Jbawi, F. Abbas, T. Al-Huniesh, “Effect of Water Stress on Germination Process and Initial Seedling Growth of Quinoa (Chenopodium quinoa Willd”, Research Journal of Science – RJS 1(1), 2020, pp. 1-9, June.
[11] C.A. Santos, N.V. Silva, L.S. Walter, E.C.A. Silva and R.J.M.C. Nogueira, “Germinação de sementes de duas espécies da caatinga sob déficit hídrico e salinidade. Pesquisa Florestal Brasileira”, 2016, 36(87): pp. 219- 224.
[12] R. Roshani, A. Solymani, M. Mahlooji, M.R. Nader, “Evaluation of the effect of foliar application on some physiological indicators affecting the growth and yield of barley cultivars under drought stress conditions, Crop Science Research in Arid Areas”, Zabol University, 20201, Volume 3, No 2, pp. 319-337, November.
[13] Anonymous, “Hand Book for Seedling Evaluation (4rd.Ed.). International Seed Testing Association (ISTA)”, 2018, Zurich, Switzerland.
[14] A. Mahender, A. Anandan, S.K. Pradhan, “Early seedling vigour; an imperative trait for direct-seeded rice: An overview on physio-morphological parameters and molecular Markers”, Planta, 2015, 241, pp. 1027–1050.
[15] A. Rajabi Dehnavi, M. Zahedi, A. Ludwiczak, E. Cardenas Perez and A. Piernik, “Effect of Salinity on Seed Germination and Seedling Development of Sorghum (Sorghum bicolor (L.) Moench) Genotypes Agronomy”, 2020, 10, 859, June.
[16] D. Tecroni, L.R. Hampton, “Methods for evaluating seed vigor”, 2005, Publication of agricultural test.
[17] A. Pirzad, “Investigation of the reaction of Hyssopus officinalis hyssopus to salinity stress levels (sodium chloride) and Lake Urmia water in germination and seedling stage”, Agronomy Journal (Pajouhesh and Sazandegi), 2014, No 104 pp. 26-33.
[18] J. Lin, Y. Wang, S. Sun, C. Mu, X. Yan, “Effects of arbuscular mycorrhizal fungi on the growth, photosynthesis and photosynthetic pigments of Leymus chinensis seedlings under salt-alkali stress and nitrogen deposition”. Sci. Total Environ, 2017, 576, pp. 234–241.
[19] A. Bybordi, J. Tabatabaei, “Effect of salinity stress on germination and seedling properties in canola cultivars (Brassica napus L.)”. Not Bot Hort Agrobot Cluj, 2009, 37 (2): pp. 71-76
[20] K. Hessini, S. Ferchichi, S.B. Youssef, K.H. Werner, C. Cruz, M. Gangour, M, How does salinity duration affect growth and productivity of cultivated barley?”, 2015, 107, pp. 174–180. January.