Penerapan Sistem Suplai Air Terintegrasi untuk Budidaya Bioflok Nila dan Greenhouse Sayur di KWT Mandiri Batu

Authors

  • Achmad Walid Politeknik Negeri Malang
  • Khoirul Anwar Politeknik Negeri Malang
  • Irwanda Yuni Pungkiarto Politeknik Negeri Malang
  • Arif Rochman Fachrudin Politeknik Negeri Malang
  • Intan Fadhilah Politeknik Negeri Malang
  • Yuniarto Agus Winoko Politeknik Negeri Malang

DOI:

https://doi.org/10.55606/nusantara.v6i3.10149

Keywords:

Biofloc, Community Service, Greenhouse, Integrated Water Supply, Water Distribution

Abstract

The Kelompok Wanita Tani (KWT) Mandiri in Mojorejo Hamlet, Batu City, manages Nile tilapia biofloc culture and vegetable production in a greenhouse, but water delivery had relied on a manually moved hose. This community service program aimed to install an integrated water supply system linking a storage tank, booster pump, main pipeline, biofloc pond outlet, and greenhouse distribution line. The activity used technical assistance and technology transfer through field observation, hydraulic design, component selection, pipe fabrication, installation, functional testing, and operational guidance. The installed system successfully conveyed water from the storage tank through the pump and pipeline to the biofloc pond outlet, while the greenhouse distribution line was arranged along the planting beds. Visual testing showed a continuous water flow and confirmed the functional connection among the main components. The system simplified pond filling, organized the distribution network, and reduced the need to move hoses repeatedly. However, performance evaluation remained qualitative because pressure, discharge, head loss, and irrigation uniformity were not measured using gauges or flow meters. Therefore, follow-up monitoring is required to quantify hydraulic performance and optimize irrigation scheduling. The program demonstrates that a simple, maintainable water-supply network can support more practical management of integrated aquaculture and greenhouse activities at the community level.

Downloads

Download data is not yet available.

References

Allen, R. G., Pereira, L. S., Raes, D., & Smith, M. (1998). Crop evapotranspiration: Guidelines for computing crop water requirements. FAO Irrigation and Drainage Paper No. 56. Rome: Food and Agriculture Organization of the United Nations.

Avnimelech, Y. (2015). Biofloc technology: A practical guide book (3rd ed.). Baton Rouge, LA: World Aquaculture Society.

Azim, M. E., & Little, D. C. (2008). The biofloc technology (BFT) in indoor tanks: Water quality, biofloc composition, and growth and welfare of Nile tilapia (Oreochromis niloticus). Aquaculture, 283(1-4), 29-35. https://doi.org/10.1016/j.aquaculture.2008.06.036

Badan Pusat Statistik Kota Batu. (2023). Kecamatan Junrejo dalam angka 2023. Batu: Badan Pusat Statistik Kota Batu.

Baudoin, W., Nono-Womdim, R., Lutaladio, N., Hodder, A., Castilla, N., Leonardi, C., De Pascale, S., & Qaryouti, M. (Eds.). (2013). Good agricultural practices for greenhouse vegetable crops: Principles for Mediterranean climate areas. FAO Plant Production and Protection Paper No. 217. Rome: Food and Agriculture Organization of the United Nations.

Bhandari, B. B. (2003). Participatory rural appraisal (PRA). Kanagawa: Institute for Global Environmental Strategies.

Bossier, P., & Ekasari, J. (2017). Biofloc technology application in aquaculture to support sustainable development goals. Microbial Biotechnology, 10(5), 1012-1016. https://doi.org/10.1111/1751-7915.12836

Chambers, R. (1996). Participatory rural appraisal (PRA): Challenges, potentials and paradigm. World Development, 22(10), 1437-1454.

Crab, R., Defoirdt, T., Bossier, P., & Verstraete, W. (2012). Biofloc technology in aquaculture: Beneficial effects and future challenges. Aquaculture, 356-357, 351-356. https://doi.org/10.1016/j.aquaculture.2012.04.046

Finnemore, E. J., & Franzini, J. B. (2002). Fluid mechanics with engineering applications. New York, NY: McGraw-Hill.

Hargreaves, J. A. (2013). Biofloc production systems for aquaculture. SRAC Publication No. 4503. Stoneville, MS: Southern Regional Aquaculture Center.

Ife, J. (2013). Community development in an uncertain world: Vision, analysis and practice. Cambridge: Cambridge University Press.

Karassik, I. J., Messina, J. P., Cooper, P., & Heald, C. C. (2008). Pump handbook (4th ed.). New York, NY: McGraw-Hill.

Keller, J., & Bliesner, R. D. (1990). Sprinkle and trickle irrigation. New York, NY: Van Nostrand Reinhold.

Knowles, M. S., Holton, E. F., III, & Swanson, R. A. (2005). The adult learner: The definitive classic in adult education and human resource development. Burlington, MA: Elsevier.

Mott, R. L. (2006). Applied fluid mechanics. Upper Saddle River, NJ: Pearson Prentice Hall.

Phocaides, A. (2007). Handbook on pressurized irrigation techniques (2nd ed.). Rome: Food and Agriculture Organization of the United Nations.

Saptana, Ashari, & Purwantini, T. B. (2016). Model kawasan rumah pangan lestari dan replikasinya. Forum Penelitian Agro Ekonomi.

Sularso, & Tahara, H. (2000). Pompa dan kompresor: Pemilihan, pemakaian, dan pemeliharaan. Jakarta: Pradnya Paramita.

United States Department of Agriculture, Natural Resources Conservation Service. (2013). National engineering handbook, Part 623, Chapter 7: Microirrigation. Washington, DC: USDA Natural Resources Conservation Service.

White, F. M. (2011). Fluid mechanics. New York, NY: McGraw-Hill.

Downloads

Published

2026-08-13

How to Cite

Achmad Walid, Khoirul Anwar, Irwanda Yuni Pungkiarto, Arif Rochman Fachrudin, Intan Fadhilah, & Yuniarto Agus Winoko. (2026). Penerapan Sistem Suplai Air Terintegrasi untuk Budidaya Bioflok Nila dan Greenhouse Sayur di KWT Mandiri Batu. Nusantara: Jurnal Pengabdian Kepada Masyarakat, 6(3), 279–288. https://doi.org/10.55606/nusantara.v6i3.10149

Similar Articles

<< < 15 16 17 18 19 20 21 22 23 24 > >> 

You may also start an advanced similarity search for this article.