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AGRICULTURE, AGROCHEMICAL, FEED PRODUCTION, AGROECOLOGY

LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER

A.Z. Sapakov * 1 , S.Z. Sapakova 2 , D.E. Osser 3

1 Kazakh National Agrarian Research University; 2 International university of information technology; 3 Kazakh National Agrarian Research University, c. Almaty

doi.org/10.37884/3-2021/10 pp. 85-95 Admitted 05.03.2022 Published 30.09.2021

Abstract

Growing traditional green fodder requires a lot of land, but also grows with the absorption of large amounts of water and soil nutrients, depending on the metrological conditions in such cultivation. In this case certain costs of cultivation requires and the years when the sun was hot risk of burns. The influence of such factors one way to reduce the cultivation is by hydroponic method. During the study to plants nutrient transfer based on technology the following six types of hydroponic systems (HS) are considered: rising and falling water; HS in the nutrient solution; aeroponics; HS of aquatic crops; drip irrigation HS. At the same time, HS in the production of green fodder an overview of the design was made and their advantages and disadvantages are considered.HS is effective in the cultivation of green fodder nutrients as a technology the cultivation by transfer is. With this technology the cultivation of fodder grasses because it takes place in a closed system, feed solution into this system transfer automation is easy. Optimization of hydroponic feed technology for technological purposes trends control requires modernization of automation equipment (MAE).

green fodder hydroponic nutrient hydroponic systems feeding method

01 Introduction

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02 References

  1. 1. F. Buwalda, R. Baas, and P. A. van Weel, “a Soilless Ebb-and-Flow System for All-Year-Round Chrysanthemums,” Acta Hortic., no. 361, pp. 123–132, 1994, doi: 10.17660/actahortic.1994.361.10.
  2. 2. A. kumarD, “Survey Paper on Aeroponics,” Int. J. Innov. Eng. Technol., vol. 13, no. 4, pp. 42–44, 2019, [Online]. Available: http://dx.doi.org/10.21172/ijiet.134.06.
  3. 3. S. Solanki, N. Gaurav, G. Bhawani, and A. Kumar, “Challenges and Possibilities in Hydroponics: an Indian Perspective.,” Int. J. Adv. Res., vol. 5, no. 11, pp. 177–182, 2017, doi: 10.21474/ijar01/5752.
  4. 4. A. Alshrouf, “Hydroponics, aeroponic and aquaponic as compared with conventional farming,” Am. Sci. Res. J. Eng. Technol. Sci., vol. 27, no. 1, pp. 247–255, 2017, [Online]. Available: http://asrjetsjournal.org/.
  5. 5. F. Buwalda et al., “a Soilless Ebb-and-Flow System for All-Year-Round Chrysanthemums,” Acta Hortic., vol. 3, no. 361, pp. 123–132, 2017, doi: 10.17660/actahortic.1994.361.10.
  6. 6. J. M. Wesonga, C. Wainaina, F. K. Ombwara, P. W. Masinde, and P. G. Home, “Wick Material and Media for Capillary Wick Based Irrigation System in Kenya,” Int. J. Sci. Res., vol. 3, no. 4, pp. 613–617, 2014.
  7. 7. M. H. Tunio et al., “Potato production in aeroponics: An emerging food growing system in sustainable agriculture for food security,” Chil. J. Agric. Res., vol. 80, no. 1, pp. 118–132, 2020, doi: 10.4067/S0718-58392020000100118.
  8. 8. A. Nursyahid, T. A. Setyawan, K. Sa’diyah, E. D. Wardihani, H. Helmy, and A. Hasan, “Analysis of Deep Water Culture (DWC) hydroponic nutrient solution level control systems,” IOP Conf. Ser. Mater. Sci. Eng., vol. 1108, no. 1, p. 012032, 2021, doi: 10.1088/1757-899x/1108/1/012032.
  9. 9. M. H. Jensen, “Hydroponic Culture for the Tropics: Opportunities and Alternatives,” Univ. Arizona Tucson, Arizona, pp. 1–9, 2008, [Online]. Available: http://www/agnet.org/library/eb/329.
  10. 10. A. EI-Kazzaz, “Soilless Agriculture a New and Advanced Method for Agriculture Development: an Introduction,” Agric. Res. Technol. Access J., vol. 3, no. 2, 2017, doi: 10.19080/artoaj.2017.03.555610.
  11. 11. F. Modu, A. Adam, F. Aliyu, A. Mabu, and M. Musa, “A survey of smart hydroponic systems,” Adv. Sci. Technol. Eng. Syst., vol. 5, no. 1, pp. 233–248, 2020, doi: 10.25046/aj050130.
  12. 12. C. Seaman, “A Sheffield Hallam University thesis Investigation of Nutrient Solutions for the Hydroponic Growth of Plants.”
  13. 13. P. R. Adler, J. K. Harper, F. Takeda, E. M. Wade, and S. T. Summerfelt, “Economic evaluation of hydroponics and other treatment options for phosphorus removal in aquaculture effluent,” HortScience, vol. 35, no. 6, pp. 993–999, 2000, doi: 10.21273/hortsci.35.6.993.
  14. 14. I. Print, “Proceedings of the 9 th International Scientific Conference Rural Development 2019 Edited by prof . Asta Raupelienė INTERNATIONAL TRADE IMPACT ON GLOBAL WARMTH IN TEXTILE,” vol. 3230, pp. 2015–2020, 2019.
  15. 15. N. J. Bhatt and B. R. Kanzariya, “International Journal of Advance Engineering and Research Experimental Investigations on Wick Irrigation : An Indigenous Irrigation Technique to suit Small-land holders,” pp. 138–144, 2017.
  16. 16. G. N. Al-Karaki and N. Al-Momani, “Evaluation of Some Barley Cultivars for Green Fodder Production and Water Use Efficiency under Hydroponic Conditions,” Jordan J. Agric. Sci., vol. 7, no. 3, pp. 448–457, 2011, [Online]. Available: https://journals.ju.edu.jo/index.php/JJAS/article/download/2584/2342.
  17. 17. H. Takeshima and P. K. Joshi, “Protected Agriculture , Precision Agriculture , and Vertical Farming,” Int. Food Policy Res. Inst., no. March, p. 49, 2019, [Online]. Available: http://ebrary.ifpri.org/utils/getfile/collection/p15738coll2/id/133152/filename/133363.pdf.
  18. 18. J. Karol and C. Bowen, “AROAA: Automated and Research Oriented Aeroponic Agriculture fubini.swarthmore.edu/grow,” 2016.
  19. 19. C. Bambang Dwi Kuncoro, T. Sutandi, C. Adristi, and Y. Der Kuan, “Aeroponics root chamber temperature conditioning design for smart mini-tuber potato seed cultivation,” Sustain., vol. 13, no. 9, pp. 1–18, 2021, doi: 10.3390/su13095140.
  20. 20. B. Baiyin et al., “Effect of nutrient solution flow rate on hydroponic plant growth and root morphology,” Plants, vol. 10, no. 9, pp. 1–14, 2021, doi: 10.3390/plants10091840.
  21. 21. J. D. Borrero, “Vertical hydroponic system Image,” 2021, [Online]. Available: https://www.supragarden.com/WebRoot/vilkasfi02/Shops/2016122606/59A2/ED3A/87DA/955A/0C03/0A28/1011/64C5/How-it-works-english_K220_1024x1024.jpg.
  22. 22. A. Nursyahid, H. Helmy, A. I. Karimah, and T. A. Setiawan, “Nutrient Film Technique (NFT) hydroponic nutrition controlling system using linear regression method,” IOP Conf. Ser. Mater. Sci. Eng., vol. 1108, no. 1, p. 012033, 2021, doi: 10.1088/1757-899x/1108/1/012033.
  23. 23. D. Bodenmiller, “EFFECTS OF AERATION ON LETTUCE (Lactuca sativa) GROWTH IN DEEP WATER CULTURE AQUAPONICS,” Environ. Sci., vol. 2, no. September, pp. 11–26, 2017, [Online]. Available: http://www.theseus.fi/handle/10024/139274.
  24. 24. A. B. Adekeye, O. S. Onifade, G. T. Amole, R. Y. Aderinboye, and O. A. Jolaoso, “Water use efficiency and fodder yield of maize (Zea mays) and wheat (Triticum aestivum) under hydroponic condition as affected by sources of water and days to harvest,” African J. Agric. Res., vol. 16, no. 6, pp. 909–915, 2020, doi: 10.5897/ajar2019.14503.
  25. 25. H. Işıl AKBAĞ, O. Sinan TÜRKMEN, H. Bayteki̇n, and İ. Yaman YURTMAN, “Effects of Harvesting Time on Nutritional Value of Hydroponic Barley Production,” Turkish J. Agric. Nat. Sci. Spec., no. 2, 2014, Accessed: Oct. 23, 2021. [Online]. Available: www.turkjans.com.
  26. 26. N. Sciences, “Effects of Harvesting Time on Nutritional Value of Hydroponic Barley Production,” Türk Tarım ve Doğa Bilim. Dergisi-Turkish J. Agric. Nat. Sci., vol. 1, no. Özel Sayı-2, pp. 1761–1765, 2015.
  27. 27. H. Helmy, A. Nursyahid, T. A. Setyawan, and A. Hasan, “Nutrient Film Technique ( NFT ) Hydroponic Monitoring System,” J. Appl. Inf. Commun. Technol., vol. 1, no. 1, pp. 1–6, 2016.
  28. 28. J. Chidiac, “Shallow Aggregate Ebb-and-Flow System for Greenhouse Lettuce Production,” no. January, p. 33, 2017.
  29. 29. Е. Букатич, Н. Обвинцева, and Е. Пряхин, “Цитогенетические эффекты острого гамма-облучения в клетках меристемы проростка латука (Lactuca sativa L. ),” Вестник Челябинского Государственного Университета, no. 7 (298), 2013.
  30. 30. A. Aires, “Hydroponic Production Systems: Impact on Nutritional Status and Bioactive Compounds of Fresh Vegetables,” Veg. - Importance Qual. Veg. to Hum. Heal., 2018, doi: 10.5772/intechopen.73011.
  31. 31. K. Kano et al., “Effects of organic fertilizer on bok choy growth and quality in hydroponic cultures,” Agronomy, vol. 11, no. 3, 2021, doi: 10.3390/agronomy11030491.
  32. 32. L. Salem, “Assessing Deep-Water Culture and Sand-Bed Aquaponics Systems for Lettuce ( Lactuca sativa ) Yield and Water Consumption Thesis Submitted to The Center for Applied Research on the Environment and Sustainability – CARES In Partial Fulfillment of the Require,” 2019.
  33. 33. S. B. Mohammed and R. Sookoo, “Nutrient Film Technique for Commercial Production,” Agric. Sci. Res. J., vol. 6, no. 11, pp. 269–274, 2016, [Online]. Available: http://resjournals.com/journals/agricultural-science-research-journal.html.
  34. 34. R. S. Ferrarezi and R. Testezlaf, “Performance of wick irrigation system using self-compensating troughs with substrates for lettuce production,” J. Plant Nutr., vol. 39, no. 1, pp. 147–161, 2016, doi: 10.1080/01904167.2014.983127.
  35. 35. N. Suroto, “Economic Analysis : Solar Panels Application of NFT ( Nutrient Film Technique ) Hydroponic System in Bandung,” vol. 1, pp. 21–30, 2021.
  36. 36. R. K. Gill, “Nutrient Management for Growing Dandelion (Taraxacum officinale L.) in Nutrient Film and Deep Flow Hydroponics,” ProQuest Diss. Theses, p. 61, 2016, [Online]. Available: https://search.proquest.com/docview/1790093257?accountid=11440.
  37. 37. C. Services-division, “Aeroponic Technology : Blessing or Curse,” Int. J. Eng. Res. Technol., vol. 3, no. 7, pp. 691–693, 2014.
  38. 38. A. Razzaq Al-Tawaha et al., “Effect of water fl ow rate on quantity and quality of lettuce (Lactuca sativa L.) in nutrient fi lm technique (NFT) under hydroponics conditions Abstract,” Bulg. J. Agric. Sci., vol. 24, no. 5, pp. 793–800, 2018.
  39. 39. A. K. S. Aguas et al., “Microcontroller-Based Aeroponics Farming Management System,” 2019.
  40. 40. R. W. Zobel, P. Del Tredici, and J. G. Torrey, “Method for Growing Plants Aeroponically,” Plant Physiol., vol. 57, no. 3, pp. 344–346, 1976, doi: 10.1104/pp.57.3.344.
  41. 41. R. Anlauf, P. Rehrmann, and H. Schacht, “Simulation of water uptake and redistribution in growing media during ebb-and-flow irrigation,” J. Hortic. For., vol. 4, no. 1, pp. 8–21, 2012, doi: 10.5897/JHF11.058.

Citation Links

[1]2021. LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER. Izdenister natigeler. 3 (91) (Sep. 2021), 85–95. DOI:https://doi.org/10.37884/3-2021/10.
(1)LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER. Izdenister natigeler 2021, No. 3 (91), 85-95. https://doi.org/10.37884/3-2021/10.
LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER. (2021). Izdenister Natigeler, 3 (91), 85-95. https://doi.org/10.37884/3-2021/10
LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER. Izdenister natigeler, [S. l.], n. 3 (91), p. 85–95, 2021. DOI: 10.37884/3-2021/10. Disponível em: https://kazvetjournal.kaznaru.edu.kz/index.php/research/article/view/48. Acesso em: 15 sep. 2026.
“LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER”. 2021. Izdenister Natigeler, no. 3 (91) (September): 85-95. https://doi.org/10.37884/3-2021/10.
“LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER” (2021) Izdenister natigeler, (3 (91), pp. 85–95. doi:10.37884/3-2021/10.
[1]“LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER”, Izdenister natigeler, no. 3 (91), pp. 85–95, Sep. 2021, doi: 10.37884/3-2021/10.
“LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER”. Izdenister Natigeler, no. 3 (91), Sept. 2021, pp. 85-95, https://doi.org/10.37884/3-2021/10.
“LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER”. Izdenister natigeler, no. 3 (91) (September 30, 2021): 85–95. Accessed September 15, 2026. https://kazvetjournal.kaznaru.edu.kz/index.php/research/article/view/48.
1.LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER. Izdenister natigeler [Internet]. 2021 Sep. 30 [cited 2026 Sep. 15];(3 (91):85-9. Available from: https://kazvetjournal.kaznaru.edu.kz/index.php/research/article/view/48
1.LITERATURE REVIEW OF HYDROPONIC DEVICES FOR GROWING GREEN FODDER. Izdenister natigeler. 2021;(3 (91):85-95. doi:10.37884/3-2021/10