Desain Sistem Monitoring Kelembapan Tanah, Suhu, dan Intensitas Ultraviolet Menggunakan Arduino Mega 2560 Berbasis Internet of Things (IoT)

  • Subur Pramono Universitas Islam Negeri Sultan Maulana Hasanuddin Banten
    (ID)
  • Miftahul Ulum Universitas Islam Negeri Sultan Maulana Hasanuddin Banten
    (ID)
  • Rudiana Universitas Islam Negeri Sultan Maulana Hasanuddin Banten
    (ID)
  • Ramona Dyah Safitri Universitas Buddhi Dharma
    (ID)
Keywords: Arduino Mega 2560;, Internet of Things (IoT);, Soil Moisture;, Temperature;, Ultraviolet Intensity

Abstract

We have successfully developed a monitoring system of soil moisture, temperature, and ultraviolet based on the Internet of Things (IoT) using Arduino Mega 2560. The sensors used to measure soil moisture, temperature, and ultraviolet are the soil moisture sensor, DHT-11 sensor, and GY-ML8511 sensor. Node MCU ESP8266 application is used to communicate between Arduino Mega 2560 and smartphones. Outputs of soil moisture sensors are connected to the water pump and blower. The water pump is on when soil moisture is below 60% and else it is off, the blower is on when soil moisture is above 80%. In this study, we don’t use the time parameter in the water pump or blower. Meanwhile, temperature and ultraviolet sensors were just used to monitor the system considered. The largest ultraviolet intensity measured by ML8511 sensors is squared at the value ADC is 123 and voltage 1,01V. Based on the testing system, it was obtained that the system is optimally operated

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References

A. P. Nanda et al., “SISTEM OTOMATIS PENYIRAMAN TANAMAN BERBASIS SENSOR,” Technol. J. Ilm., vol. 15, no. 4, pp. 764–774, 2024, doi: http://dx.doi.org/10.31602/tji.v15i4.16300.

S. A. Putri, H. Istiqomah, and A. Wirasto, “Pemanfaatan Logika Fuzzy dalam Sektor Pertanian : Sebuah Kajian Literatur,” J. Kolaborasi Ris. Sarj., vol. 1, no. 1, pp. 73–93, 2024, [Online]. Available: https://ejournal.uhb.ac.id/index.php/korisa

Y. Suryani and T. Cahyanto, Pengantar Jamur Makroskopis. Bandung: Gunung Djati Publishing, 2015.

C. Xu et al., “MicroRNA164 Affects Plant Responses to UV Radiation in Perennial Ryegrass,” Plants, vol. 13, no. 9, pp. 1–14, 2024, doi: 10.3390/plants13091242.

W. F. Wardhiani, “Peran Politik Pertanian Dalam Pembangunan Pertanian Menghadapi Era Revolusi Industri 4.0 di Sektor Pertanian,” JISIPOL | J. Ilmu Sos. dan Ilmu Polit., vol. 3, no. 2, p. 83, 2019, [Online]. Available: https://ejournal.unibba.ac.id/index.php/jisipol/article/view/120/117

R. D. Safitri and J. Akbar, “Monitoring Akusisi Data Manajemen Energi Listrik, Suhu dan Kelembaban Laboratorium Berbasis Internet of Things (IoT),” G-Tech J. Teknol. Terap., vol. 8, no. 1, pp. 265–275, 2023, doi: 10.33379/gtech.v8i1.3656.

Y. B. Widodo, A. M. Ichsan, and T. Sutabri, “Perancangan Sistem Smart Home Dengan Konsep Internet Of Things Hybrid Berbasis Protokol Message Queuing Telemetry Transport,” J. Teknol. Inform. dan Komput., vol. 6, no. 2, pp. 123–136, 2020, doi: 10.37012/jtik.v6i2.302.

A. R. Halim, M. Saiful, and L. Kertawijaya, “Rancang Bangun Alat Pengukur Suhu Tubuh Pintar berbasis Internet Of Things,” Infotek J. Inform. dan Teknol., vol. 5, no. 1, pp. 117–127, 2022, doi: 10.29408/jit.v5i1.4615.

D. W. Herdiyanto, W. Cahyadi, and M. K. Ni’am, “Prototype Sistem Kontrol dan Monitoring Suhu Udara dan Air Nutrisi pada Greenhouse Hidroponik Tanaman Selada Berbasis Telegram,” in Seminar Nasional Teknik Elektro SENTRO Ke-1 “ Peran Teknologi Elektro untuk Industri 4 . 0 Sektor Agroindustri di Era New Normal ,” Universitas Jember, 2021, pp. 1–10.

M. Hablul Barri, B. Aji Pramudita, and A. Pandu Wirawan, “Sistem Penyiram Tanaman Otomatis dengan Sensor Soil Moisture dan Sensor DHT11,” J. Ilm. Tek. Elektro, vol. 1, no. 1, pp. 9–15, 2022, [Online]. Available: http://e-journals.unmul.ac.id/index.php/TE

M. W. Lodan, Y. B. M. Darkel, H. B. N. Muda, and T. E. D. Labamaking, “Desain Pendeteksi Kebakaran Menggunakan Sensor Suhu dan Sensor Api Berbasis IOT Dengan Metode Naive Bayes,” Digit. Transform. Technol., vol. 4, no. 1, pp. 425–432, 2022, doi: 10.47709/digitech.v4i1.4121.

E. Zet Kafiar, E. K. Allo, and D. J. Mamahit, “Rancang Bangun Penyiram Tanaman Berbasis Arduino Uno Menggunakan Sensor Kelembaban YL-39 Dan YL-69,” J. Tek. Elektro dan Komput., vol. 7, no. 3, 2018.

M. F. Ramadhan, M. Yusfi, and H. Harmadi, “Analisis Sensitivitas Sensor GY-ML8511 dalam Deteksi Formalin,” J. Fis. Unand, vol. 13, no. 5, pp. 684–689, 2024, doi: 10.25077/jfu.13.5.684-689.2024.

V. K. Pratifi, A. T. Sasongko, and D. Afandi, “Integration of DHT11 and PIR Sensors in Indoor Temperature Automation and Motion Detection System Using Arduino Nano Microcontroller Integrasi Sensor DHT11 dan PIR dalam Sistem Otomatisasi Suhu dan Deteksi Gerakan dalam Ruangan Menggunakan Mikrokontroler,” Malcom Indones. J. Mach. Learn. Comput. Sci., vol. 4, no. 3, pp. 1148–1159, 2024, [Online]. Available: https://journal.irpi.or.id/index.php/malcom

H. Fauzian and R. Hidayat, “Sistem Monitoring Air Qualty (Si Montoq) Menggunakan Sensor Mics-6814 dan DHT-11 Berbasis Internet of Things,” J. Komput. dan Elektro Sains, vol. 2, no. 1, pp. 6–9, Oct. 2023, doi: 10.58291/komets.v2i1.143.

Y. Astutik, Murad, G. M. D. Putra, and D. A. Setiawati, “Remote monitoring systems in greenhouse based on NodeMCU ESP8266 microcontroller and Android,” in AIP Conference Proceedings, American Institute of Physics Inc., Dec. 2019. doi: 10.1063/1.5141286.

T. Ulfa Urbach and Wildian, “Rancang Bangun Sistem Monitoring dan Kontrol Temperatur Pemanasan Zat Cair Menggunakan Sensor Inframerah MLX90614,” J. Fis. Unand, vol. 8, no. 3, 2019.

Y. Cauvain, T. Aviandi, and P. Paduloh, “TEMPERATURE AND HUMIDITY INSTRUMENTATION PRACTICUM REPORT USING ARDUINO WITH DHT 11 SENSOR,” J. Salome Multidisipliner Keilmuan, vol. 2, no. 1, pp. 183–191, 2024.

S. Klongdee, P. Netinant, and M. Rukhiran, “Evaluating the Impact of Controlled Ultraviolet Light Intensities on the Growth of Kale Using IoT-Based Systems,” Internet of Things, vol. 5, no. 2, pp. 449–477, 2024, doi: 10.3390/iot5020021.

P. Y. Aisyah, I. P. E. W. Pratama, F. Rahmadhana, and M. G. Al Ghifari, “Internet of things-based rice field irrigation evaporation monitoring system,” Bull. Electr. Eng. Informatics, vol. 13, no. 4, pp. 2331–2339, 2024, doi: 10.11591/eei.v13i4.5803.

I. Prasojo, P. T. Nguyen, N. Shahu, and others, “Design of ultrasonic sensor and ultraviolet sensor implemented on a fire fighter robot using AT89S52,” J. Robot. Control, vol. 1, no. 2, pp. 55–58, 2020.

Eveline, Sudjadi, and Darjat, “Rancang Bangun Prototipe Pengatur Kelembapan Tanah Otomatis Pada Taman Berbasis Mikrokontroler,” Transient J. Ilm. Tek. Elektro, vol. 7, no. 2, pp. 494–499, 2018, doi: https://doi.org/10.14710/transient.v7i2.494-499.

N. A. Pramono, O. Ghaisyani, B. A. Purwandani, and F. I. Sofyan, “Application of Arduino Programming Using ML8511 UV Sensor Hookup Guide to Learning the Effect of Ultraviolet’s Level,” J. Disruptive Learn. Innov., vol. 2, no. 1, p. 37, 2020, doi: 10.17977/um072v2i12020p37-44.

Published
2025-02-02
How to Cite
Pramono, S., Ulum, M., Rudiana, & Safitri, R. D. (2025). Desain Sistem Monitoring Kelembapan Tanah, Suhu, dan Intensitas Ultraviolet Menggunakan Arduino Mega 2560 Berbasis Internet of Things (IoT). JFT: Jurnal Fisika Dan Terapannya, 11(2), 122-135. https://doi.org/10.24252/jft.v11i2.52790
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