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Abstract
Fish need oxygen for metabolic processes, especially cultured fish. The high amount of dissolved oxygen (DO) in the water greatly affects the quality of life of the fish. A good aquaculture pond is a pond that uses an aerator machine, because the dissolved oxygen content will fulfill the life of all fish. The purpose of this research is to design an automatic controlled aeration device system and utilize solar panel technology as an energy source. This system uses a monitor feature for controlled oxygen levels using a DO sensor, the results of the monitoring are then displayed on the LCD. The data will be processed to make a decision, whether the aerator engine is on or off. The aerator engine activity is continuously controlled by a device connected to a sensor. The sensor will measure real-time dissolved oxygen levels and display it on the LCD. The test steps carried out on this tool are the automation response system test and power resistance test based on the load of the electronic circuit. In the automatic system setting, when the DO value exceeds 6.86 mg / L, the aerator engine will shut down, then restart when the DO level is below 5.20 mg / L. Solar Panel electrical devices with a capacity of 10 WP, 10 A controllers and a 12 V, 7 Ah battery, are sufficient for the energy needs of electronic circuit loads. System testing shows that the system is functioning properly as intended.
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Copyright (c) 2020 Aquacultura Indonesiana

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References
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- Salmin. 2007. Oksigen terlarut (DO) dan kebutuhan oksigen biologi (BOD) sebagai salah satu indikator untuk menentukan kualitas perairan. Oseana, 30(3):21–26.
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References
Adiyana, K., Supriyono, E. 2015. Efisiensi daya listrik dan kondisi oksigen terlarut pada pemeliharaan postlarva udang vaname Litopenaeus vannamei menggunakan sumber energi surya. Jurnal Kelautan Nasional, 10(1)33-41.
Kumar, A., Moulick S., Mal B.C. 2013. Selection of aerators for intensive aquacultural pond. Aquacultural Engineering, 56, 71– 78.
Laws, E.A. 2000. Aquatic Pollution: An Introductory Text. 3rd ed. John Wiley & Sons. New York, 639 pp.
Macqy, G., Pajarillo, J., Tenorio, J.E., Trambulo, E.M., Apsay, M.R.B., Chua, M.G. 2013 Development of dissolved oxygen monitoring system for fish ponds. IEEE 3rd International Conference on System Engineering and Technology, Malaysia, 19 - 20 Aug.
Mardhiya, I.R., Surtono, A., Suciyati, S.W. 2017. Sistem akuisisi data pengukuran kadar oksigen terlarut pada air tambak udang menggunakan sensor dissolved oxygen (DO). Jurnal Teori dan Aplikasi Fisika, 5(2):133-140.
Safrizal. 2017. Rancangan panel surya sebagai sumber energi listrik pada gedung fakultas sains dan teknologi UNISNU jepara. Jurnal Disprotek, 8(2):75-81.
Salmin. 2007. Oksigen terlarut (DO) dan kebutuhan oksigen biologi (BOD) sebagai salah satu indikator untuk menentukan kualitas perairan. Oseana, 30(3):21–26.
Siskandar, R., Kusumah, B. R. 2019. Design and construction of control devices for aquaponic monitoring management. Aquaqultura Indonesiana. 20(2):72–79.
Subandi, Hani, S. 2015. Pembangkit listrik energi matahari sebagai penggerak pompa air dengan menggunakan solar cell. Jurnal Teknologi Technoscientia, 7(2):157-163.
