Document Type : Research Article
Authors
1 Department of Plant Production and Genetics, Faculty of Agricultural Sciences and Engineering, Razi University, Kermanshah, Iran
2 Department of Soil Science, Faculty of Agriculture, Razi University, Kermanshah, Iran
Abstract
Introduction
Optimum yield production under rainfed cultivation directly depends on the amount of rainfall and moisture storage in the soil. The tillage system directly influences soil moisture retention as well as the soil’s physical and chemical properties. Selecting the appropriate tillage system can significantly impact crop yields. Oilseeds are particularly important among crops, representing the second-largest food reserve in the world after grains. These products are rich in fatty acids. Today, the oil extraction and production industry is one of the most strategic industries in most countries. Iran has vast arable land and favorable conditions for cultivating oilseeds. However, according to available statistics, over 80% of the country's oil needs are met through imports. Given the increasing demand for higher-quality oil products and the challenges posed by climate issues, such as recurring droughts, cultivating and developing crops with lower water requirements and greater resilience appears to be a promising solution. Implementing effective management practices and appropriate fertilizers aligned with conservation agriculture could help increase crop yields while maintaining and improving long-term soil quality. To explore the potential of oilseed cultivation, an experiment was conducted to examine the effects of tillage and fertilization on the yield and yield components of safflower under rainfed conditions.
Materials and Methods
This experiment was carried out as split plots based on random complete blocks design, with three replications under rainfed conditions. The treatments included tillage systems (conventional tillage, reduced tillage, and no-tillage) as the main factor and NPK fertilizer (a mixture of urea, triple superphosphate, and potassium sulfate) at four levels of zero, 33, 66, and 100% as a secondary factor. Potassium and phosphorus fertilization and 50% of nitrogen fertilizer were used at the same time as planting, and the remaining 50% of nitrogen fertilizer was used four months after planting. Each block had three main plots; the distance between each block was 3 meters, and between the main plots was 2 meters. In each main plot, four sub-plots were created, and the distance between the sub-plots was 1 meter. The area of the main plots was 21 × 15 meters, and the area of each sub-plot was 4.5 ×15 meters. The amount of seed used for safflower was 25 kg per hectare. The safflower seeds were sown in 5 rows and planted at a distance of 50 cm and a distance between plants of 10 cm. At all stages of planting, maintenance, and harvesting, agricultural management followed the traditional practices of the study area, as performed by the local farmers. The final sampling, or harvesting, was carried out manually at the physiological maturity stage. Before conducting variance analysis, a normality test was performed on the data. In this research, the LSD test was used to compare the mean at the 5% probability level, Excel software was used to draw graphs, and SAS 9.4 software was used to analyze the data.
Results and Discussion
The research showed that the traits examined, including leaf area index, dry matter content, thousand seed weight, seed yield, and biological yield, were affected by the tillage system, fertilizer, and their interaction effect. The highest safflower seed yield of 195.6 g/m2 was obtained from the fertilizer ratio of 33% and conventional tillage, and the lowest seed yield of 116.2 g/m2 was obtained from no-tillage and no fertilizer use. The results indicated that the conventional tillage system outperformed both reduced tillage and no-tillage systems. In reduced and no-tillage systems, the changes in the leaf area index of the safflower plant were similar, with the 100% fertilizer application under reduced tillage having a more pronounced effect compared to no-tillage. Additionally, in the absence of fertilizer in the no-tillage system, the leaf area index was lower. Fertilizer application increased the plant's biological yield, but its impact was greater under conventional tillage compared to reduced and no-tillage systems. Applying 33% of the required fertilizer in the conventional tillage system resulted in the highest biological yield for safflower, leading to a 94% increase in biological performance compared to the control.
Conclusion
In most of the examined traits, the application of 33 and 66% of the fertilizer requirement caused the best results, and the 100% fertilizer ratio left adverse effects, which indicates the lower fertilizer requirement of this cultivar in the studied conditions compared to cultivars in other regions. Since the research was conducted in rainy years, conventional tillage was better than low tillage. It is suggested that this plant's production amount be evaluated under different irrigation conditions and moisture limitations so that tillage systems and management methods can be examined and selected more carefully.
Keywords
Main Subjects
©2024 The author(s). This is an open access article distributed under Creative Commons Attribution 4.0 International License (CC BY 4.0).
- Abdullah, A.S. (2014). Minimum tillage and residue management increase soil water content, soil organic matter and canola seed yield and seed oil content in the semiarid areas of Northern Iraq. Soil and Tillage Research, 144, 150-155. https://doi.org/10.1016/j.still.2014.07.017
- Afshoon, E., Jahansooz, M.R., Moghadam, H., & Oveisi, M. (2021). Effect of tillage, nitrogen fertilizer, and water stress on crop growth indices and yield of forage corn (Zea mays). Journal of Crops Improvement, 23(2), 235-246. (In Persian). https://doi.org/10.22059/jci.2020.295787.2337
- Baumhardt, R., Jones, O., Busscher, W., & Frederick, J. (2005). Long-term benefits of deep tillage on soil physical properties and crop yield. Proceedings of the 27th Southern Conservation Tillage Systems Conference,
- Bayat, M., Pakina, E., Astarkhanova, T., Sediqi, A.N., Zargar, M., & Vvedenskiy, V. (2019). Review on agro-nanotechnology for ameliorating strawberry cultivation. Research on Crops, 20(4), 731-736. https://doi.org/10.31830/2348-7542.2019.108
- Bekele, D. (2020). The effect of tillage on soil moisture conservation: A review. International Journal of Research Studies in Computing, 6(10), 30-41. https://doi.org/10.20431/2454-6224.0610004
- Busari, M.A., Kukal, S.S., Kaur, A., Bhatt, R., & Dulazi, A.A. (2015). Conservation tillage impacts on soil, crop and the environment. International Soil and Water Conservation Research, 3(2), 119-129. https://doi.org/10.1016/j.iswcr.2015.05.002
- Castellini, M., & Ventrella, D. (2012). Impact of conventional and minimum tillage on soil hydraulic conductivity in typical cropping system in Southern Italy. Soil and Tillage Research, 124, 47-56. https://doi.org/10.1016/j.still.2012.04.008
- Estefan, G. (2013). Methods of soil, plant, and water analysis: a manual for the West Asia and North Africa region. International Center for Agricultural Research in the Dry Areas.
- Fageria, N.K., Moraes, O.P., & Vasconcelos, M.J. (2013). Upland rice genotypes evaluation for phosphorus use efficiency. Journal of Plant Nutrition, 36(12), 1868-1880. https://doi.org/10.1080/01904167.2013.818153
- Fismes, J., Vong, P.C., Guckert, A., & Frossard, E.T.H.I.O.P.I.A.N. (2000). Influence of sulfur on apparent N-use efficiency, yield and quality of oilseed rape (Brassica napus) grown on a calcareous soil. European Journal of Agronomy, 12(2), 127-141. https://doi.org/10.1016/S1161-0301(99)00052-0
- Gan, Y., Malhi, S., Brandt, S., Katepa‐Mupondwa, F., & Stevenson, C. (2008). Nitrogen use efficiency and nitrogen uptake of juncea canola under diverse environments. Agronomy Journal, 100(2), 285-295. https://doi.org/10.2134/agronj2007.0229
- Hasanvandi, M.S., Rafiee, M., & Bagheri, A. (2013). Safflower growth analysis using regression modeling. Journal of Crops Improvement, 15(3), 27-37. (In Persian). https://doi.org/10.22059/jci.2013.36384
- Iboyi, J.E., Mulvaney, M.J., Balkcom, K.S., Seepaul, R., Bashyal, M., Perondi, D., Leon, R.G., Devkota, P., Small, I.M., & George, S. (2021). Tillage system and seeding rate effects on the performance of Brassica carinata. GCB Bioenergy, 13(4), 600-617. https://doi.org/10.1111/gcbb.12809
- Jabari, H., familiarity, S.P., Asadi, M.I., Noorgholipour, F., Tafete, A., Islamic, B.P., Shahsawari, M., Walipour, M.B., Moghadam, M.J., Safari, M., Nesab, H.S., Nazari, M.R., Pourdad, S.S., Kihanian, A.A., Garmarodi, H.S., Akbari, M., & Karminejad, M.R. (2023). Irrigation and Rainfed Safflower Cultivation. 63637 Issue. (In Persian)
- Jabro, J., Stevens, W., Iversen, W., & Evans, R. (2010). Tillage depth effects on soil physical properties, sugarbeet yield, and sugarbeet quality. Communications in Soil Science and Plant Analysis, 41(7), 908-916. https://doi.org/10.1080/00103621003594677
- Jones, J.W., Hoogenboom, G., Porter, C.H., Boote, K.J., Batchelor, W.D., Hunt, L., Wilkens, P.W., Singh, U., Gijsman, A.J., & Ritchie, J.T. (2003). The DSSAT cropping system model. European Journal of Agronomy, 18(3-4), 235-265. https://doi.org/10.1016/S1161-0301(02)00107-7
- Khadempir, M., Zeinali, E., Soltani, A., & Toorani, M. (2014). Investigation leaf area index, dry matter accumulation and allocation in two cultivars of faba bean (Vicia faba) affected by the distance between rows and planting date. Applied Research of Plant Ecophysiology Journal, 1(3), 15-36. (In Persian). http://arpe.gonbad.ac.ir/article-1-115-en.html
- Khan, S., Shah, A., Nawaz, M., & Khan, M. (2017). Impact of different tillage practices on soil physical properties, nitrate leaching and yield attributes of maize (Zea mays). Journal of Soil Science and Plant Nutrition, 17(1), 240-252. https://doi.org/10.4067/S0718-95162017005000019
- Kumar, R., & Trivedi, S.K. (2011). Effect of levels and sources of sulphur on yield, quality and nutrient uptake by mustard (Brassica juncea). Progressive Agriculture, 11(1), 58-61.
- Lack, S., Kermanshahi, M., & Noryani, H. (2015). Variation trend of leaf area index, yield and yield components of green beans (Phaseolous vulgaris) by using zinc sulfate and nitrogen. Journal of Crop Ecophysiology, 9(36), 599-610. (In Persian)
- López-Garrido, R., Madejón, E., León-Camacho, M., Girón, I., Moreno, F., & Murillo, J. (2014). Reduced tillage as an alternative to no-tillage under Mediterranean conditions: A case study. Soil and Tillage Research, 140, 40-47. https://doi.org/10.1016/j.still.2014.02.008
- Loveimi, N., Safari, M., & Heidarpour, N. (2011). Comparison of the effects of no tillage, minimum tillage and conventional tillage on dry land wheat yield in pebbly field in tropical region. Journal of Agricultural Machinery, 1(2), 110-121. (In Persian). https://dorl.net/dor/20.1001.1.22286829.1390.1.2.7.2
- Lv, Y.J., Zhang, X.L., Gong, L., Huang, S.B., Sun, B.L., Zheng, J.Y., Wang, Y.J., & Wang, L.C. (2024). Long-term reduced and no tillage increase maize (Zea mays ) grain yield and yield stability in Northeast China. European Journal of Agronomy, 158, 127-217. https://doi.org/10.1016/j.eja.2024.127217
- Ma, B., & Herath, A. (2016). Timing and rates of nitrogen fertiliser application on seed yield, quality and nitrogen-use efficiency of canola. Crop and Pasture Science, 67(2), 167-180. https://doi.org/10.1071/CP15069
- Madani, K., AghaKouchak, A., & Mirchi, A. (2016). Iran’s socio-economic drought: challenges of a water-bankrupt nation. Iranian Studies, 49(6), 997-1016. (In Persian)
- Malakouti, M., & Homaee, M. (2004). Fertile soils of arid and semi-arid problems and solutions. Tarbiat Modares of University Press. (In Persian)
- Małecka, I., & Blecharczyk, A. (2008). Effect of tillage systems, mulches and nitrogen fertilization on spring barley (Hordeum vulgare). Agronomy Research, 6(2), 517-529.
- Mirshekari, B. (2010). Effect of different tillage methods on energy indexes and yield components of safflower. Agroecology Journal, 6(3), 77-84. (In Persian)
- Mohammadi, K., Nabi, E.K., Agha, A.M., & Khormali, F. (2009). Study on the effect of different tillage methods on the soil physical properties, yield and yield components of rainfed wheat. Journal of Plant Production Research, 16(4), 77-92. (In Persian). https://dorl.net/dor/20.1001.1.23222050.1388.16.4.5.6
- Mohsen Nia, O., & Jalilian, J. (2012). Effects of drought stress and fertilizer sources on yield and yield components of safflower (Carthamus tinctorius). Agroecology Journal 4(3), 235-245. (In Persian). https://doi.org/10.22067/jag.v4i3.15312
- Mojiri, A., & Arzani, A. (2003). Effect of nitrogen rate and plant density on yield and yield components of sunflower. Isfahan University of Technology-Journal of Crop Production and Processing, 7(2), 115-125. (In Persian). http://jstnar.iut.ac.ir/article-1-468-en.html
- Mousavi, S., Fathi, G., & Dadgar, M. (2005). Planting date and density on growth, yield components and yield of red beans. Proceedings of First Pulse National Conference.
- Najar, G.R., Singh, S.R., Akhtar, F., & Hakeem, S.A. (2011). Influence of sulphur level on yield, uptake and quality of soybean (Glycine max) under temperate conditions of Kashmir valley. Indian Journal of Agricultural Sciences, 81(4), 340.
- Nunes, M.R., Karlen, D.L., & Moorman, T.B. (2020). Tillage intensity effects on soil structure indicators-A US meta-analysis. Sustainability, 12(5), 2071. https://doi.org/10.3390/su12052071
- Omidi, A., & Sharifmogadas, M. (2010). Evaluation of Iranian safflower cultivars reaction to different sowing dates and plant densities. World Applied Science Journal, 8(8), 953-958.
- Omidmehr, Z., & Faezniya, F. (2019). Effects of different tillage techniques on some soil properties and sunflower yield in dryland conditions of Shahrood (Miami). Iranian Dryland Agronomy Journal, 7(2), 143-158. (In Persian). https://doi.org/10.22092/idaj.2018.121791.218
- Ordoñez-Morales, K.D., Cadena-Zapata, M., Zermeño-González, A., & Campos-Magaña, S. (2019). Effect of tillage systems on physical properties of a clay loam soil under oats. Agriculture, 9(3), 62. https://doi.org/10.3390/agriculture9030062
- Roozbeh, M., & Pooskani, M. (2003). The effect of different tillage methods on wheat yield when in rotation with corn. Iranian Journal of Agricultural Sciences, 34(1), 29-38. (In Persian)
- Sabbr, Z., Peirdashti, H., Esmaili, M., & Abassian, A. (2010). Evaluation of growth promoting bacteria, nitrogen, and phosphorus on fertilizer efficiency and yield of wheat The 11th Iranian Crop Sciences Congress, Shahid Beheshti University, Tehran, Iran. (In Persian)
- Safahani, A., Petroodi, M.A., Cherati, A., & Irani, A. (2017). Effect of management of plant debris of wheat, tillage and consumption of nitrogen fertilizer on growth, Function and grain yield components of soybean in summer planting. Journal of Plant Production Sciences, 7(1), 51-65. (In Persian)
- Sepide dam, S., & Ramroudi, M. (2016). Effects of tillage systems and nitrogen fertilizer on yield, yield components and seed protein of wheat. Applied Research of Plant Ecophysiology Journal, 2(2), 33-46. (In Persian). https://doi.org/http://arpe.gonbad.ac.ir/article-1-162-fa.html
- Shahrokhnia, M.H., & Sepaskhah, A.R. (2017). Physiologic and agronomic traits in safflower under various irrigation strategies, planting methods and nitrogen fertilization. Industrial Crops and Products, 95, 126-139. https://doi.org/10.1016/j.indcrop.2016.10.021
- Sharma, P., Abrol, V., Sharma, K., Sharma, N., Phogat, V., & Vikas, V. (2016). Impact of conservation tillage on soil organic carbon and physical properties–a review. International Journal of Bio-Resource and Stress Management, 7(1), 151-161. https://doi.org/10.23910/IJBSM/2016.7.1.1387
- Shen, Y., Hu, L.T., Xia, B., Ni, Z.J., Elam, E., Thakur, K., & Wei, Z.J. (2021). Effects of different sulfur-containing substances on the structural and flavor properties of defatted sesame seed meal derived Maillard reaction products. Food Chemistry, 365, 130463. https://doi.org/10.1016/j.foodchem.2021.130463
- Singh, K., Prakash, V., Srinivas, K., & Srivastva, A. (2008). Effect of tillage management on energy-use efficiency and economics of soybean (Glycine max) based cropping systems under the rainfed conditions in North-West Himalayan Region. Soil and Tillage Research, 100(1-2), 78-82. https://doi.org/10.1016/j.still.2008.04.011
- Singh, V., & Nimbkar, N. (2016). Safflower. In Breeding Oilseed Crops for Sustainable Production (pp. 149-167). Elsevier.
- Streck, N.A., Bellé, R.A., Rocha, E.K.D., & Schuh, M. (2005). Estimating leaf appearance rate and phyllochron in safflower (Carthamus tinctorius). Ciência Rural, 35, 1448-1450.
- Tabatabaeefar, A., Emamzadeh, H., Varnamkhasti, M.G., Rahimizadeh, R., & Karimi, M. (2009). Comparison of energy of tillage systems in wheat production. Energy, 34(1), 41-45. https://doi.org/10.1016/j.energy.2008.09.023
- Varényiová, M., Ducsay, L., & Ryant, P. (2017). Sulphur nutrition and its effect on yield and oil content of oilseed rape (Brassica napus). Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis, 65(2). https://doi.org/10.11118/actaun201765020555
- Wozniak, A., Wesołowski, M., & Soroka, M. (2015). Effect of long-term reduced tillage on grain yield, grain quality and weed infestation of spring wheat. Journal of Agricultural Science and Technology, 17(4), 899-908. http://dorl.net/dor/20.1001.1.16807073.2015.17.4.3.0
- Xie, Y., Niu, J., Gan, Y., Gao, Y., & Li, A. (2014). Optimizing phosphorus fertilization promotes dry matter accumulation and P remobilization in oilseed flax. Crop Science, 54(4), 1729-1736. https://doi.org/10.2135/cropsci2013.10.0672
- Xie, Y., Niu, X., & Niu, J. (2016). Effect of phosphorus fertilizer on growth, phosphorus uptake, seed yield, yield components, and phosphorus use efficiency of oilseed flax. Agronomy Journal, 108(3), 1257-1266. https://doi.org/10.2134/agronj2015.0537
- Yadavi, A. (2013). Effect of nitrogen fertilizer, vermicompost and nitroxin on growth indices, phenological stages and grain yield of sesame. Journal of Crop Production, 6(2), 73-100. (In Persian). https://dorl.net/dor/20.1001.1.2008739.1392.6.2.5.3
- Yu, X., & Li, B. (2019). Release mechanism of a novel slow-release nitrogen fertilizer. Particuology, 45, 124-130. https://doi.org/10.1016/j.partic.2018.09.005
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