Implementation of IoT Technology in Aquaponics and Modern Aquaculture Systems for Optimizing Catfish Growth
DOI:
https://doi.org/10.52435/complete.v5i2.642Keywords:
Aquaponics, Aquaculture, Catfish Growth Optimization, IoTAbstract
In the modern era, various systems of agriculture and aquaculture have evolved rapidly. One remarkable innovation is modern aquaponics, a method that is gaining recognition as a sustainable solution for food production. This system combines fish farming and agriculture into a unified and mutually beneficial approach. Modern aquaponics has proven to be effective in overcoming the constraints of urban land, providing a viable solution for both agriculture and aquaculture. For optimal results in fish farming, it is crucial to consistently monitor the conditions of fish growth and health to avoid the risk of crop failure. In response to this challenge, this study aims to implement an Internet of Things (IoT) system in modern aquaponics, focusing primarily on enhancing the growth of catfish in a controlled and efficient manner. This system employs a range of IoT sensors, including pH sensors, Total Dissolved Solids (TDS) sensors, and temperature sensors, to monitor the water quality within the aquaponics setup continuously. Such monitoring not only ensures optimal conditions for healthier fish but also increases plant productivity, thereby enhancing the overall sustainability and effectiveness of the cultivation process. The results of sensor testing revealed a pH value of 7.2, indicating that the water's acidity level is within a balanced and optimal range for supporting the health of catfish. TDS sensor readings showed a value of 300 ppm, suggesting that the concentration of dissolved particles is ideal for the well-being of the fish. Furthermore, temperature measurements from the DS18B20 sensor recorded a water temperature of 28°C, which falls within the optimal range for catfish growth (28–30°C). These conditions create a stable environment that supports the healthy growth of fish in the aquaponics system.
References
S. P. Sulaiman, M. S. D. T. S. Arzam, S. P. Ar, M. S. D. A. N. Samsi, And M. S. D. A. Ahmad, Okupasi Lahan Untuk Budidaya Dalam Mendukung Pertanian Berkelanjutan Berbasis Teori Analisis Sistem. Cv. Azka Pustaka, 2024.
N. Saskia, D. Firnia, P. Utama, And A. H. Sodiq, “The Efektivitas Rhizobakteria Dan Pupuk Kotoran Kambing Pada Pertumbuhan Dan Hasil Tanaman Bawang Merah (Allium Ascalonicum L.),” Jia (Jurnal Ilm. Agribisnis) J. Agribisnis Dan Ilmu Sos. Ekon. Pertan., Vol. 9, No. 3, Pp. 215–226, 2024.
B. Setiawan, S. Styawati, And S. Alim, “Implementasi Sistem Iot Pada Akuakultur Dan Hydroponik (Akuaponik) Modern Untuk Pertumbuhan Ikan Nila,” J. Inform. J. Pengemb. It, Vol. 9, No. 1, Pp. 47–53, 2024.
M. Handayani, C. Vikasari, And O. Prasadi, “Akuaponik Sebagai Sistem Pemanfaatan Limbah Budidaya Ikan Lele Di Desa Kalijaran,” Jtrm (Jurnal Teknol. Dan Rekayasa Manufaktur), Vol. 2, No. 1, Pp. 41–50, 2020.
G. M. Samadan, A. Syazili, M. N. Findra, S. Supyan, And Y. D. Wijayanti, “Efektifitas Jenis Tanaman Berbeda Terhadap Kualitas Air Media Budidaya Udang Galah (Macrobranchium Rosenbergii De Man 1879) Sistem Akuaponik,” Juv. J. Ilm. Kelaut. Dan Perikan., Vol. 4, No. 1, Pp. 31–42, 2023.
N. A. N. Aisyah, A. Sugianti, H. Z. Muhtarom, D. P. Prastyawan, And M. T. Ardiazza, “Implementasi Invoper (Inovasi Pertanian) Dengan Sistem Aquaponik Sebagai Teknologi Tepat Guna Dalam Budidaya Lele,” Nusant. J. Pengabdi. Kpd. Masy., Vol. 3, No. 3, Pp. 161–168, 2023.
R. A. Nugroho, L. T. Pambudi, D. Chilmawati, And A. H. C. Haditomo, “Aplikasi Teknologi Aquaponic Pada Budidaya Ikan Air Tawar Untuk Optimalisasi Kapasitas Produksi,” J. Saintek Perikan., Vol. 8, No. 1, 2012.
A. A. E. Astari, K. Merta, N. W. A. Sudiartini, And N. P. P. Sukarini, “Studi Kelayakan Usaha Dan Strategi Pengembangan Budidaya Ikan Lele Di Kota Denpasar (Studi Kasus Petani Ikan Lele Di Ubung Kaja),” J. Jdm, Vol. 4, No. 2, Pp. 108–125, 2021.
A. Alwansyah And A. Fahrurozi, “Implementasi Internet Of Thing (Iot) Sistem Monitoring Kualitas Air Shrimp Farming Vaname Pada Aplikasi Berbasis Android,” J. Ilm. Teknol. Dan Rekayasa, Vol. 29, No. 1, Pp. 71–85, 2024.
N. Fitriana, A. A. Darmawan, And M. F. Rahmawati, “Internet Of Things Untuk Monitoring Kondisi Air Budidaya Ikan Kelompok ‘Tutut Jaya’kota Malang,” J. Abdimas Nusa Mandiri, Vol. 6, No. 2, Pp. 76–85, 2024.
F. P. E. Putra, M. A. Mahmud, And I. S. Maqom, “Pengembangan Sistem Pemantauan Lingkungan Berbasis Internet Of Things (Iot) Di Kampus,” Digit. Transform. Technol., Vol. 3, No. 2, Pp. 996–1001, 2023.
L. Ihtisyamuddin And M. Mashoedah, “Pengembangan Sistem Monitoring Kualitas Air Dan Pemberi Pakan Otomatis Pada Kolam Budidaya Ikan Lele Berbasis Internet Of Things Di Mbs (Muhammadiyah Boarding School) Yogyakarta,” J. Electron. Educ., 2023.
P. R. Indonesia And W. Nusantara, “Undang Undang No. 23 Tahun 1997 Tentang: Pengelolaan Lingkungan Hidup,” Lembar Negara Ri Tahun,(3699), 1997.
P. Puspitahati, R. Andini, And H. P. Rahmad, “Urban Farming Dengan Sistem Hidroponik Nft (Nutrient Film Technique) Dipengaruhi Kemiringan Talang Dan Debit Air Pada Produksi Tanaman Pakcoy (Brassica Rapa Chinensis),” In Seminar Nasional Lahan Suboptimal, 2021, Pp. 835–843.
Q. A’yunin Et Al., Perikanan Berkelanjutan. Universitas Brawijaya Press, 2021.
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