The effect of irrigation systems on yield, yield components and water use efficiency in three wheat genotypes in Kermanshah province

Document Type : Original Article

Authors

1 Faculty member, Department of Environmental Resources management, ACECR, Kermanshah, Iran.

2 Researcher of Environmental Resources management Department, ACECR, Kermanshah, Iran.

3 Assistant Professor, Department of Environmental Resources management, ACECR, Kermanshah, Iran.

4 Assistant Professor ,Crop and Horticultural Science Research Department, Khuzestan Agricultural and Natural Resources Research and Education Center, Agricultural Research, Education and Extension Organization (AREEO), Ahvaz, Iran.

Abstract

Iran is the thirteenth country in terms of wheat production in the world. Kermanshah Province is known as the west agricultural pole of the country. It has about 700,000 hectares of agricultural land, and more than 173,000 hectares of high quality water land. Irrigation is one of the most important effective factors in grain production in hot and dry climates. Research has shown that the use of modern pressurized irrigation systems reduces water consumption and increases the water use efficiency. Considering the issue of water shortage that has been raised in the country in recent years, The simultaneous investigation of the effects of sprinkler and strip drip irrigation systems in three wheat cultivars including Baharan, Rakhshan and Heydari cultivars on yield, yield components and water use efficiency in this province seemed necessary.
This research was carried out in the research farm of ACECR, Kermanshah province unit during 2021. Wheat seeds of Baharan, Rakhshan and Heydari cultivars were cultivated on 08/30/2020 after health control and detoxification. This study was conducted in the form of a split plot in a randomized complete block design with three replications. In the main plots, the irrigation methods including sprinkler and strip drip irrigation were evaluated and in the sub-plots, wheat cultivars including Baharan, Rakhshan and Heidari were evaluated. From each treatment, one square meter of samples was taken from the middle of the plot. These samples were placed separately in special bags (by installing specifications on each sample) and were immediately transferred to the laboratory. According to the dimensions of the plots (60 m2), during the growth period of the wheat plant, the irrigation amount was 633.50 mm in sprinkler irrigation method and 436 mm in strip drip irrigation method. Finally, after data collection, statistical analysis, including an analysis of variance and comparison of means, was performed using Duncan's multi-range test at a five percent probability level with SAS Ver 9.4 software.
Based on the results of the statistical analysis of the irrigation method, there was a significant effect on the characteristics of plant height, number of seeds per spike, seed yield, biomass yield, and water use efficiency of the crop. Additionally, the effect of cultivars was significant in plant height, number of seeds per spike, seed yield, biomass yield, and water use efficiency. The results of the analysis of variance showed significant effects of irrigation method and cultivars for crop yield traits and water use efficiency. The comparison of means revealed that the highest yield of 9458 kg/ha was observed in the strip drip irrigation treatment in Baharan cultivar, which had a statistical difference with the sprinkler irrigation treatment in similar cultivars. Furthermore, the sprinkler irrigation treatment in Heydari cultivar with a yield of 6539 kg/ha had the lowest yield. Based on the obtained results, the highest and lowest water use efficiency productivity with values of 2.13 and 1.03 kg/m3 were observed in the strip drip irrigation treatments of Baharan variety and sprinkler irrigation of Heydari variety, respectively. The results of the research showed that the use of strip drip irrigation method compared to the sprinkler irrigation method in Baharan, Rakhshan, and Heydari cultivars resulted in an increase of 20.07%, 29.76%, and 20.50% in crop yield, respectively.
Optimum use of water seems necessary considering the climatic conditions of the country and the recent droughts. One of the important and effective solutions is to use modern irrigation systems. The results revealed that the use of different irrigation systems caused a significant difference at the levels of 1% and 5% on the yield and yield components of wheat in investigated cultivars. Based on the results in the tape irrigation method, the yield increased in most of the analyzed parameters compared to the sprinkler irrigation method. The results exhibited that, the use of tape method saved water consumption by 31% and increased the yield of the product and finally increased the water efficiency compared to the sprinkler irrigation method.

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Main Subjects


Agricultural statistics. (2021). Agricultural products. Ministry of Agricultural Jihad, Vice President of Planning and Economic Information and Communication Technology Centerو First volume. [in Persian]
Alizadeh, A. (2010). Drip irrigation (principles and operations). Imam Reza University. Mashhad. Second edition. [in Persian]
Ali, M. H., Hoque, M. R., Hassan, A. A., & Khair, A. (2007). Effects of deficit irrigation on yield, water productivity, and economic returns of wheat. Agricultural water management, 92(3), 151-161. http://dx.doi.org/10.1016/j.agwat.2007.05.010
Cone, A. E., Slafer, G. A., & Halloran, G. M. (1995). Effects of moisture stress on leaf appearance, tillering and other aspects of development in Triticum tauschii. Euphytica. 86(1), 55-64. https://doi.org/10.1007/BF00035939
De Vita, P., Di Paolo, E., Fecondo, G., Di Fonzo, N., & Pisante, M. (2007). No-tillage and conventional tillage effects on durum wheat yield, grain quality and soil moisture content in southern Italy. Soil and tillage research. 92(1-2), 69-78. http://dx.doi.org/10.1016/j.still.2006.01.012
Duggan, B. L., & Fowler, D. B. (2006). Yield structure and kernel potential of winter wheat on the Canadian prairies. Crop science. 46(4), 1479-1487. http://dx.doi.org/10.2135/cropsci2005.06-0126
Eidizadeh, K., Ebrahimpour, F., & Ebrahimi, M. A. (2016). Effect of different irrigation regimes on yield and yield components of wheat (Triticum aestivum L.) cultivars in Ramin climate. Environmental Stresses in Crop Sciencesو 9(1), 29-36. https://doi.org/10.22077/escs.1395.297
FAO. )2022(. FAOSTAT: Production: Crops and livestock products. Agricultural production statistics, 2000–2021.
Ghadami Firouzabadi, A., Ch, M., & Seyedan, S. M. (2017). Effects of different irrigation systems on yield, some agronomic traits, and water productivity of different wheat genotypes and their economic assessment in Hamedan. Journal of Water Research in Agriculture, 31(2), 139-149. https://doi.org/10.22092/jwra.2017.113159
Ghadami Firouzabadi, A., & Baghani, J. (2019). Effects of different wheat planting patterns in drip tape irrigation on yield and water productivity of bread wheat in Hamedan. Iranian Journal of Irrigation & Drainage13(2), 528-539. https://dorl.net/dor/20.1001.1.20087942.1398.13.2.22.0 [in Persian]
Guo, X., Zhao, Q., Li, J., Wang, Z., Zhang, Y., & Xue, X. (2022). Daily drip irrigation based on real‐time weather improves winter wheat grain yield and water use efficiency. Irrigation and Drainage, 71(3), 589-603. https://doi.org/10.1002/ird.2673
Jha, S. K., GAO, Y., Liu, H., Huang, Z., Wang, G., Liang, Y., & Duan, A. (2017). Root development and water uptake in winter wheat under different irrigation methods and scheduling for North China. Agricultural water management, 182, 139-150. https://doi.org/10.1016/j.agwat.2016.12.015
Kiyanian, A. (2014). A comprehensive guide to wheat irrigation. Institute of Technical Research and Agricultural Engineering and Office of Promotion of Agriculture and Natural Resources.
Mokari, M. (2021). Investigation the Effect of Changing the Irrigation Method on the Harvest Index and Water Productivity of Two Wheat Cultivars with the Use of Nitrogen Fertilizer. JWSS-Isfahan University of Technology, 24(4), 141-158. http://dx.doi.org/10.47176/jwss.24.4.22993 [in Persian]
Oktem, A., Simsek, M., & Oktem, A. G. (2003). Deficit irrigation effects on sweet corn (Zea mays saccharata Sturt) with drip irrigation system in a semi-arid region: I. Water-yield relationship. Agricultural water management, 61(1), 63-74. http://dx.doi.org/10.1016/S0378-3774(02)00161-0
Palash, M., Bafkar, A., Farhadi Bansouleh, B., & Ghobadi, M. (2022). Effects of deficit irrigation on, quantity, quality Characteristics and water productivity in Grain Maize (KSC 706) in Kermanshah. Advanced Technologies in Water Efficiency, 2(1), 16-37. https://doi.org/10.22126/atwe.2021.6686.1003 [in Persian]
Pandey, B. K., Verma, N. K., Devi, S., Jalikatti, V. N., Kumar, A., & Kumar, P. (2021). Effect of Varieties and Irrigation Methods on Growth and Yield of Wheat (Triticum aestivum L.). International Journal of Agriculture Innovations and Research, 9(4), 304-307. https://ijair.org/administrator/components/com_jresearch/files/publications/IJAIR_3027_FINAL.pdf
Pourgholam-Amiji, M., Hajirad, I., Nayebi, J., Alavi, S. R., Nozari, F., & Akbarpour, M. (2023). Improving Wheat Irrigation Productivity in Iran (Part One: From the View Point of Irrigation System and Water Management). Water and Soil Management and Modelling, https://doi.org/10.22098/mmws.2023.11937.1189
Prayong, K. (2013). Comparison of drip and sprinkler irrigation system for the cultivation plants vertically. Journal of agriculture & biological sciences, 8, 740-744. https://www.semanticscholar.org/paper/COMPARISON-OF-DRIP-AND-SPRINKLER-IRRIGATION-SYSTEM-Keeratiurai/cd52d0aaaa22b4619b1572102d8e1fc4c78a914e
Rabbani, J., & Emam, Y. (2011). Yield response of maize hybrids to drought stress at different growth stages. Isfahan University of Technology-Journal of Crop Production and Processing, 1(2), 65-78. http://dorl.net/dor/20.1001.1.22518517.1390.1.2.5.0 [in Persian]
Salamati, N., Baghani, J., & Abbasi, F. (2018). Determination of wheat water productivity in sprinkler and surface irrigation systems (Case Study in Behbahan). Iranian Journal of Soil and Water Research, 49(4), 821-830. https://doi.org/10.22059/ijswr.2017.240752.667747 [in Persian]
Saleem, M., Waqas, A., & Ahmad, R. N. (2010). Comparison of three wheat varieties with different irrigation systems for water productivity. International Journal of Agriculture and Applied Sciences (Pakistan), 2(1), 7-17. https://agris.fao.org/agris-search/search.do?recordID=PK2014000769
Safarzadeh, S., Saremi, M., Farshid, A., & Dehghani, M. (2021). Investigation Yield, Yield Components and Water Efficiency of Wheat in Three Systems: Surface, Sprinkler and Strip Drip IrrigationIranian Journal of Irrigation & Drainage15(1), 87-97. https://dorl.net/dor/20.1001.1.20087942.1400.15.1.8.8 [in Persian]
Sharma, S. K., Mishra, P. K., Panse, R., & Jamliya, G. (2018). Effect of irrigation methods on yields attributes and water productivity of wheat in Vertisol of Betwa River Basin commands of Vidisha District of MP, India. Int J Curr Microbiol Appl Sci, 7(8), 2670-2673. https://doi.org/10.20546/ijcmas.2018.708.277
Smit, B., & Skinner, M. W. (2002). Adaptation options in agriculture to climate change: a typology. Mitigation and adaptation strategies for global change, 7(1), 85-114. https://doi.org/10.1023/A:1015862228270
 Tavousi, M., & Tawanapour, E. (2019). Comparison of wheat yield and physical productivity of water in surface and drip irrigation. 10th national conference on sustainable agriculture and natural resources. Tehran. https://civilica.com/doc/1036978 [in Persian]
Wajid, A., Hussain, A., Maqsood, M., Ahmad, A., & Awais, M. (2002). Influence of sowing date and irrigation levels on growth and grain yield of wheat. Pakistan Journal of Agricultural Sciences, 39 (1), 22-24. https://www.researchgate.net/publication/291431806_Influence_of_sowing_date_and_irrigation_levels_on_growth_and_grain_yield_of_wheat
Yang, P., Wu, L., Cheng, M., Fan, J., Li, S., Wang, H., & Qian, L. (2023). Review on Drip Irrigation: Impact on Crop Yield, Quality, and Water Productivity in China. Water, 15(9), 1733. https://doi.org/10.3390/w15091733