Design and Development of an ESP8266-Based Digital Thermometer Using a DHT22 Sensor with OLED Display Output
DOI:
https://doi.org/10.55606/jeei.v6i1.6661Keywords:
Digital thermometer, ESP8266, DHT22, OLED, Temperature and humidity measurementAbstract
The advancement of microcontroller technology enables the development of accurate and practical temperature measurement devices. This study aims to design and build a digital thermometer based on ESP8266 using a DHT22 sensor to measure air temperature and humidity in real time, with the measurement results displayed on an OLED screen. The research methodology includes circuit design, microcontroller programming, sensor calibration, and system testing by comparing the measurement results with reference instruments. The test results indicate that the system operates stably and responsively. The average temperature measurement deviation compared to the reference thermometer is 6.26 °C , while the average humidity measurement deviation compared to the digital hygrometer is 4.56 %RH . These results indicate that the DHT22 sensor provides acceptable accuracy and remains within tolerable limits for environmental monitoring applications
References
[1] R. Buyya dan A. V. Dastjerdi, Internet of Things: Principles and Paradigms. Boston, MA, USA: Morgan Kaufmann, 2016.
[2] A. Yuhana, S. Hidayat, dan D. Permana, “Rancang Bangun Sistem Monitoring Suhu dan Kelembapan Berbasis NodeMCU ESP8266,” Jurnal Teknologi dan Sistem Komputer, vol. 8, no. 2, pp. 85-92, 2020.
[3] M. Hudhoifah dan D. I. Mulyana, “Implementasi Monitoring Suhu dan Kelembapan Lingkungan Menggunakan Sensor DHT22 Berbasis IoT,” MALCOM: Indonesian Journal of Machine Learning and Computer Science, vol. 4, no. 2, pp. 210–218, 2024.
[4] R.Saputra, H. Putra, dan A. Andre, “Perancangan Sistem Monitoring Lingkungan Berbasis ESP8266 dan Sensor DHT22,” ELECTRON Jurnal Ilmiah Teknik Elektro, vol. 3, no. 1, pp. 1–9, 2022.
[5]A.Kurniawan dan I. Maulana, “Sistem Monitoring Suhu dan Kelembapan Ruangan Menggunakan ESP8266 Berbasis Web,” Jurnal RESTI, vol. 5, no. 3, pp. 456–463, 2021.
[6] S. R. Ramadhan, F. A. Nugroho, dan L. Sari, “Implementasi Sensor DHT22 pada Sistem Monitoring Lingkungan Berbasis Mikrokontroler,” Jurnal Teknologi Informasi dan Ilmu Komputer, vol. 7, no. 4, pp. 721–728, 2020.
[7] M. F. Hakim dan A. Nugraha, “Perancangan Termometer Digital Berbasis ESP8266 dengan Output OLED,” Jurnal Teknik Elektro dan Informatika, vol. 9, no. 2, pp. 101–108, 2023.
[8] N. Hidayati, R. Kurniawan, dan S. Wibowo, “Monitoring Suhu dan Kelembapan Berbasis Internet of Things Menggunakan NodeMCU,” Jurnal Informatika Mulawarman, vol. 15, no. 1, pp. 12–19, 2020.
[9] A. Prasetyo dan Y. Firmansyah, “Implementasi OLED sebagai Media Tampilan pada Sistem Embedded,” Jurnal Mikrokontroler dan Sistem Tertanam, vol. 6, no. 2, pp. 55–62, 2019.
[10] A. S. Putra dan R. Amelia, “Rancang Bangun Alat Monitoring Suhu dan Kelembapan Berbasis IoT,” Jurnal Media Informatika Budidarma, vol. 6, no. 1, pp. 230–237, 2022.
[11] Espressif Systems, ESP8266EX Datasheet, Shanghai, China, 2020.
[12] Aosong Electronics, DHT22 (AM2302) Digital Temperature and Humidity Sensor Datasheet, 2019.
[13] S. Monk, Programming Arduino: Getting Started with Sketches, 2nd ed. New York, NY, USA: McGraw-Hill, 2020.
[14] A. Zainuddin dan B. Pratama, “Analisis Akurasi Sensor DHT22 untuk Pengukuran Suhu dan Kelembapan,” Jurnal Instrumentasi, vol. 4, no. 2, pp. 88–95, 2021.
[15] K. Ashton, “That ‘Internet of Things’ Thing,” RFID Journal, pp. 97–114, 2019.


.png)
.png)

