Main Article Content
Abstract
The management concept of aquaponic cultivation requires good care and management. Aquaponics that are not managed properly have great potential to cause failure. Simplification of management steps, we need a system that can simplify and must
minimize the risk of failure. This research creates an integrated system between hardware and software that can help manage aquaponic cultivation more simply and safely. The purpose of this research is to device construct physical data gauges for pool water quality and planting media quality, and design software for easy of monitoring systems of instrument device work and monitoring systems for users. The system has a built-in aquaponic condition monitoring feature via an installed sensor. The conditions monitored by this system are conditions of air temperature, humidity, water temperature, light intensity, level of turbidity of water, and height of fish feed at the feedlot. The system has two automation features. The first automation feature is the automation of fish feeding with a certain time lag. The second automation feature is the automation of the water
heater engine. Water heater engine will be turned on or off at a certain temperature. The system also features an engine control feature in aquaponics that includes a water pump engine, an aerator engine, and a water heater engine. System monitoring, automation and control features can be accessed by users via the web. Testing of the
system has indicated that the system is functioning properly in accordance with the objectives. The algorithm is correct, so the system output matches the expected output.
Keywords
Article Details
Copyright (c) 2019 Aquacultura Indonesiana

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
References
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References
Agustina, Rustaman, Riandi, W. Purwianingsih. 2018. The learning of aquaponics practice in university. Journal of Physics: Conference Series. 1013. doi: 10.1088/1742-6596/1013/1/012018.
Andriani Y., Y. Dhahiyat, Zahidah, U. Subhan, Iskandar, I. Zidni and T. Mawardiani. 2018 . Effect of Water Irrigation Volume on Capsicum Frutescens Growth and Plankton Abundance in Aquaponics System. IOP Conference Series: Earth and Environmental Science. 139. doi: 10.1088/1755-1315/139/1/012001.
Bethe, A. Liza, M.A. Salam, K.F. Umme and Shakil R. Effects of Molasses and Compost Tea as Foliar Spray on Water Spinach (Ipomoea Aquatica) in Aquaponics System,n.d., 5.
Bittsánszky, András, U. Nikolett, G. Gábor, M. Alex, J. Ranka, V. Morris, K. Benzion dan K. Tamás. 2016. Nutrient supply of plants in aquaponic systems. Ecocycles. 2(2) . doi:10.19040/ecocycles.v2i2.57.
Boxman, E. Suzanne, N. Michael, J. Sarina, L. Kevan and A. Maya. 2018. Evaluation of water treatment capacity, nutrient cycling, and biomass production in a marine aquaponic system. Ecological Engineering. 120:299-310. doi: 10.1016/j.ecolen g .2018.06.003.
Cohen, Abigail, M. Stephen, M. Zack, W. Marc and B. Bert. 2018 . Combined fish and lettuce cultivation: an aquaponics life cycle assessment. Procedia CIRP . 69:551-606 . doi:10.1016/j.procir.2017.11.029.
Estim, Abentin, S. Syafiqah and M. Saleem. 2018. Water quality remediation using aquaponics sub-systems as biological and mechanical filters in aquaculture. Journal of Water Process Engineering. doi: 10.1016/j.jwpe.2018.02.001.
Estrada, P., Nallely, H. Alfredo, M.J. Javier, Z.I Iram, A. Carlos, C. Elia, J.R Cecilia, D. Delia and C. Antonio. 2018. Stochastic modelling of aquaponic production of tilapia (Oreochromis niloticus) with lettuce (Lactuca sativa) and cucumber (Cucumis sativus). Aquaculture Research. 49(12):3723-3757.
doi: 10.1111/are.13840.
Goddek, Simon, D. Boris, M. Utra, R. Kristin, J. Haissam and T. Ragnheidur. 2015. Challenges of sustainable and commercial aquaponics. Sustainability. 4: 4199–4224.
doi: 10.3390/su7044199.
Karimanzira, Divas and R. Thomas. 2019. Enhancing aquaponics management with iot-based predictive analytics for efficient information utilization. InformationProcessing in Agriculture. doi: 10.1016/j.inpa.2018.12.003.
Kumar, N., Hari, B. Sandhya, H. Sanjana and K. Vaishali. 2016. An autonomous aquaponics system using 6lowpan based wsn. In 2016 IEEE 4th International Conference on Future Internet of Things and Cloud Workshops (FiCloudW), .125–32. Vienna, Austria: IEEE.
doi: 10.1109/W-FiCloud.2016.37.
Li, Chunjie, Z. Boyu, L. Pengxuan, S. Hongtao, L.Linfang, G. Yueshu, T.L. Chew, Z. Zhenjia and M.W. Wei. 2019. Performance of a pilot-scale aquaponics system using hydroponics and immobilized biofilm treatment for water quality control. Journal of Cleaner Production .208. doi: 10.1016/j.jclep ro.2018.10.170.
Mamatha, M.N. and Namratha. 2017. Design & implementation of indoor farming using automated aquaponics system. Ieee international conference on smart technologies and management for computing, communication, controls, energy and materials (ICSTM). 396–401. doi:10.1109/ICSTM.2017.8089192.
Manju, M., V. Karthik, S. Hariharan and B. Sreekar. 2017 .real time monitoring of the environmental parameters of an aquaponic system based on internet of things. In 2017 Third International Conference on Science Technology Engineering & Management (ICONSTEM). 943–48 . Chennai: IEEE. doi:10.1109/ICONSTEM.2017.8261342.
Mchunu, Ntobeko, L and Gareth, S. Aidan. 2018. Aquaponics in south africa: results of a national survey. Aquaculture Reports.12. doi:10.1016/j.aqrep.2018.08.001.
Murad, A. Harun, S.N. Mohyar, R. Sapawi and S.Y. Ten. 2017. Design of aquaponics water monitoring system using arduino microcontroller, 020248. Krabi, Thailand. doi:10.1063/1.5002442.
Murugesan, Sankar, P. Powar, M.S. Sanjay, A. Mali. 2017. Micro controller based automatic aquaphonic system using solar. In 2017 International Conference on Intelligent Sustainable Systems (ICISS).43–47. Palladam: IEEE. doi: 10.1109/ISS1.2017.8389456.
Nagayo, M. Analene, M. Cesar, V. Eugene, K.S. Raad, S. Rodrigo. 2017. An automated solar-powered aquaponics system towards agricultural sustainability in the sultanate of oman. In 2017 IEEE International Conference on Smart Grid and Smart Cities (ICSGSC). 42–49. Singapore, Singapore: IEEE. doi: 10.1109/ICSGSC.2017.8038547.
