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Evaluation of direct seeding and transplanting in sugar beet for water productivity, yield and quality under different irrigation regimes and planting densities

Author

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  • Khozaei, Maryam
  • Kamgar Haghighi, Ali Akbar
  • Zand Parsa, Shahrokh
  • Sepaskhah, Ali Reza
  • Razzaghi, Fatemeh
  • Yousefabadi, Vali-allah
  • Emam, Yahya

Abstract

This study was conducted to investigate the effects of plant density, planting method and irrigation regime on water productivity and yield of sugar beet for two years during 2017 and 2018. The planted cultivar was Shokoofa with three irrigation levels: 100%, 75% and 50% of the full irrigation (1368 mm in 2017 and 1412 mm in 2018) as I100, I75 and I50, respectively, two planting methods: direct seeding (D) and transplanting (T) and four planting densities: 180,000, 135,000, 90,000, and 45,000 plants ha−1 as P180, P135, P90, and P45, respectively. Transplanting reduced applied water by about 24% and evapotranspiration about 25% as compared with direct seeding. Decreasing irrigation level, the root yield decreased about 7.4% in I75 to 26.4% in I50 as compared with I100. The difference between white sugar yield in I100 and I75 were not significant, but decreased significantly 17% in I50 as compared to I100 and I75. The root yield and white sugar yield in P90 treatment were higher than other treatments. The values of irrigation water productivity (WPIrrig) and white sugar yield water productivity (WPWSY) increased by 21.7% in I75 to 35.2% in I50 and 26.3% in I75 to 41.7% in I50, respectively as compared to I100. The difference between WPC in I75 and I50 were not significant and increased about 16.1% as compared to I100. Transplanting increased the root yield 7.7% and WPC, WPIrrig and WPWSY 45.7%, 44.7% and 47.7% as compared with direct seeding. The mean highest values of WPC, WPIrrig and WPWSY were 9.32, 9.95 and 1.39 kg m−3, respectively in P3 treatment. Therefore, in regions with scarce water resources, combination of transplanting method and plant density of 90,000 plant ha−1 under deficit irrigation in the level of 75% of full irrigation is suggested to obtain optimum sugar beet yield.

Suggested Citation

  • Khozaei, Maryam & Kamgar Haghighi, Ali Akbar & Zand Parsa, Shahrokh & Sepaskhah, Ali Reza & Razzaghi, Fatemeh & Yousefabadi, Vali-allah & Emam, Yahya, 2020. "Evaluation of direct seeding and transplanting in sugar beet for water productivity, yield and quality under different irrigation regimes and planting densities," Agricultural Water Management, Elsevier, vol. 238(C).
  • Handle: RePEc:eee:agiwat:v:238:y:2020:i:c:s0378377419323297
    DOI: 10.1016/j.agwat.2020.106230
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    1. Ünlü, Mustafa & Kanber, RIza & Koç, D. Levent & Tekin, Servet & Kapur, Burçak, 2011. "Effects of deficit irrigation on the yield and yield components of drip irrigated cotton in a mediterranean environment," Agricultural Water Management, Elsevier, vol. 98(4), pages 597-605, February.
    2. Fernández, J.E. & Alcon, F. & Diaz-Espejo, A. & Hernandez-Santana, V. & Cuevas, M.V., 2020. "Water use indicators and economic analysis for on-farm irrigation decision: A case study of a super high density olive tree orchard," Agricultural Water Management, Elsevier, vol. 237(C).
    3. Kiymaz, Sultan & Ertek, Ahmet, 2015. "Water use and yield of sugar beet (Beta vulgaris L.) under drip irrigation at different water regimes," Agricultural Water Management, Elsevier, vol. 158(C), pages 225-234.
    4. Ertek, Ahmet & Sensoy, Suat & Gedik, Ibrahim & Kucukyumuk, Cenk, 2006. "Irrigation scheduling based on pan evaporation values for cucumber (Cucumis sativus L.) grown under field conditions," Agricultural Water Management, Elsevier, vol. 81(1-2), pages 159-172, March.
    5. Parvizi, Hossein & Sepaskhah, Ali Reza & Ahmadi, Seyed Hamid, 2014. "Effect of drip irrigation and fertilizer regimes on fruit yields and water productivity of a pomegranate (Punica granatum (L.) cv. Rabab) orchard," Agricultural Water Management, Elsevier, vol. 146(C), pages 45-56.
    6. Haghverdi, Amir & Yonts, C. Dean & Reichert, David L. & Irmak, Suat, 2017. "Impact of irrigation, surface residue cover and plant population on sugarbeet growth and yield, irrigation water use efficiency and soil water dynamics," Agricultural Water Management, Elsevier, vol. 180(PA), pages 1-12.
    7. Hernandez-Santana, V. & Fernández, J.E. & Cuevas, M.V. & Perez-Martin, A. & Diaz-Espejo, A., 2017. "Photosynthetic limitations by water deficit: Effect on fruit and olive oil yield, leaf area and trunk diameter and its potential use to control vegetative growth of super-high density olive orchards," Agricultural Water Management, Elsevier, vol. 184(C), pages 9-18.
    8. Li, Yangyang & Liu, Ningning & Fan, Hua & Su, Jixia & Fei, Cong & Wang, Kaiyong & Ma, Fuyu & Kisekka, Isaya, 2019. "Effects of deficit irrigation on photosynthesis, photosynthate allocation, and water use efficiency of sugar beet," Agricultural Water Management, Elsevier, vol. 223(C), pages 1-1.
    9. Pereira, Luis S. & Cordery, Ian & Iacovides, Iacovos, 2012. "Improved indicators of water use performance and productivity for sustainable water conservation and saving," Agricultural Water Management, Elsevier, vol. 108(C), pages 39-51.
    10. Oweis, T.Y. & Farahani, H.J. & Hachum, A.Y., 2011. "Evapotranspiration and water use of full and deficit irrigated cotton in the Mediterranean environment in northern Syria," Agricultural Water Management, Elsevier, vol. 98(8), pages 1239-1248, May.
    11. Zare Abyaneh, Hamid & Jovzi, Mehdi & Albaji, Mohammad, 2017. "Effect of regulated deficit irrigation, partial root drying and N-fertilizer levels on sugar beet crop (Beta vulgaris L.)," Agricultural Water Management, Elsevier, vol. 194(C), pages 13-23.
    12. Sepaskhah, A. R. & Kamgar-Haghighi, A. A., 1997. "Water use and yields of sugarbeet grown under every-other-furrow irrigation with different irrigation intervals," Agricultural Water Management, Elsevier, vol. 34(1), pages 71-79, July.
    13. Zhang, Huimeng & Xiong, Yunwu & Huang, Guanhua & Xu, Xu & Huang, Quanzhong, 2017. "Effects of water stress on processing tomatoes yield, quality and water use efficiency with plastic mulched drip irrigation in sandy soil of the Hetao Irrigation District," Agricultural Water Management, Elsevier, vol. 179(C), pages 205-214.
    14. Topak, Ramazan & Acar, Bilal & Uyanöz, Refik & Ceyhan, Ercan, 2016. "Performance of partial root-zone drip irrigation for sugar beet production in a semi-arid area," Agricultural Water Management, Elsevier, vol. 176(C), pages 180-190.
    15. Kiymaz, Sultan & Ertek, Ahmet, 2015. "Yield and quality of sugar beet (Beta vulgaris L.) at different water and nitrogen levels under the climatic conditions of Kırsehir, Turkey," Agricultural Water Management, Elsevier, vol. 158(C), pages 156-165.
    16. Mahmoud, El-Sayed A. & Hassanin, Mahmoud A. & Borham, Taha I. & Emara, Eman I.R., 2018. "Tolerance of some sugar beet varieties to water stress," Agricultural Water Management, Elsevier, vol. 201(C), pages 144-151.
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