Prototype Automation of Air Conditioning Treatment in the Grinding Area AK Based on IoT
DOI:
https://doi.org/10.18196/jet.v5i2.12736Keywords:
DHT22 sensor, dust sensor GP2Y1010AUF0F, DS18B20 sensor, Velocity sensor Internet of ThingsAbstract
A good work environment will affect the level of productivity of workers in a company. The operation of the refrigeration machine in the cocoa powder grinding area is very important in production. The indicators for the operation of the cooling machine are dust density, ambient temperature and wind speed. With control on the indicator will increase efficiency. In this study, the indicator is controlled with a GP2Y1010AUF0F dust sensor, a DHT22 temperature sensor, a DS18B20 sensor, and a wind speed sensor as sensor inputs. Furthermore, the sensor will be processed by the Node M CU ESP826 module. System output will be displayed on LED and android. The results of this study indicate the accuracy of the dust sensor is 96.12%, the DHT22 temperature sensor is 99.80%, the DS18B20 temperature sensor is 99.57% and the speed sensor is 95.89%. In this prototype, we can monitor the temperature of the air velocity of dust particles in the engine and the temperature of the engine cooler together and closely monitored.References
I. Pratiwi, “Pengaruh Pencahayaan, Kebisingan Dan Temperatur Terhadap Performansi Kerja,” Nas. Conf. Appl. Ergon., pp. 1–7, 2013.
Jamaaluddin, I. Robandi, I. Anshory, Mahfudz, and R. Rahim, “Application of interval type-2 fuzzy inference system and big bang big crunch algorithm in short term load forecasting new year holiday,” J. Adv. Res. Dyn. Control Syst., 2020.
Jamaaluddin, I. Robandi, and I. Anshory, “A very short-term load forecasting in time of peak loads using interval type-2 fuzzy inference system: A case study on java bali electrical system,” J. Eng. Sci. Technol., vol. 14, no. 1, pp. 464–478, 2019.
W. Febri Aji, “Rancang bangun sistem pendeteksi debu berbasis arduino,” vol. 6, no. 2, pp. 31–41, 2017.
FANNIDA SHEILLA HARAHAP, “Pengukuran Dan Pengujian Kecepatan Angin Dengan Menggunakan Sensor Anemometer Berbasis Arduino Uno R3,” pp. 44–48, 2018.
F. Muliawati and A. Seftiana, “Prototipe Sistem Otomatis Pengukuran Densitas Debu, Kelembaban Udara, Dan Suhu Ruang Berbasis Mikrokontroler Atmega 32 Untuk Sterilisasi Udara Pada Ruang Perakitan Lensa Kamera,” Juteks, 2016.
U. Syafiqoh, S. Sunardi, and A. Yudhana, “Pengembangan Wireless Sensor Network Berbasis Internet of Things untuk Sistem Pemantauan Kualitas Air dan Tanah Pertanian,” J. Inform. J. Pengemb. IT, 2018.
D. Iswahyudi, I. Anshory, and J. Jamaaluddin, “Rancang Bangun Alat Pengontrol Kelembaban Udara Pada Budidaya Jamur Menggunakan Arduino Uno Dan Ultrasonik Mist Maker,” J. Elektron. List. Telekomun. Komputer, Inform. Sist. Kontrol, vol. 2, no. 1, pp. 28–37, 2020.
I. Abdul Rozaq and N. D. Yulita, UJI KARAKTERISASI SENSOR SUHU DS18B20 WATERPROOF BERBASIS ARDUINO UNO SEBAGAI SALAH SATU PARAMETER KUALITAS AIR. .
S. RAHARJO, “SISTEM OTOMATISASI FOTOSINTESIS BUATAN PADA AQUASCAPE BERBASIS ARDUINO,” Apr. 2018.
I. Sulistiyowati, Y. Findawati, S. K. A. Ayubi, J. Jamaaluddin, and M. P. T. Sulistyanto, “Cigarette detection system in closed rooms based on Internet of Thing (IoT),” J. Phys. Conf. Ser., vol. 1402, no. 4, 2019.
J. Jamaaluddin, I. Sulistiyowati, B. W. A. Reynanda, and I. Anshory, “Analysis of Overcurrent Safety in Miniature Circuit Breaker AC (Alternating Current) and DC (Direct Current) in Solar Power Generation Systems,” IOP Conf. Ser. Earth Environ. Sci., vol. 819, no. 1, 2021.
A. Solih and J. Jamaaluddin, “Rancang Bangun Pengaman Panel Distribusi Tenaga Listrik Di Lippo Plaza Sidoarjo Dari Kebakaran Berbasis Arduino Nano,” JEEE-U (Journal Electr. Electron. Eng., 2017.
J. Jamaaluddin, “Sistem Kontrol Pendingin Mobil Ramah Lingkungan Berbasis Android,” CYCLOTRON, 2019.
I. ANSHORY, I. ROBANDI, J. Jamaaluddin, A. FUDHOLI, and WIRAWAN, “Transfer function modeling and optimization speed response of bldc motor e-bike using intelligent controller,” J. Eng. Sci. Technol., vol. 16, no. 1, pp. 305–324, 2021.
Downloads
Published
How to Cite
Issue
Section
License
Copyright
The Authors submitting a manuscript do so on the understanding that if accepted for publication, copyright of the article shall be assigned to Journal of Electrical Technology UMY. Copyright encompasses rights to reproduce and deliver the article in all form and media, including reprints, photographs, microfilms, and any other similar reproductions, as well as translations.
Authors should sign Copyright Transfer Agreement when they have approved the final proofs sent by the journal prior the publication. JET UMY strives to ensure that no errors occur in the articles that have been published, both data errors and statements in the article.
JET UMY keep the rights to articles that have been published. Authors are permitted to disseminate published article by sharing the link of JET UMY website. Authors are allowed to use their works for any purposes deemed necessary without written permission from JET UMY with an acknowledgement of initial publication in this journal.
License
All articles published in JET UMY are licensed under a Creative Commons Attribution-ShareAlike 4.0 International (CC BY-SA) license. You are free to:
- Share — copy and redistribute the material in any medium or format
- Adapt — remix, transform, and build upon the material for any purpose, even commercially.
The licensor cannot revoke these freedoms as long as you follow the license terms. Under the following terms:
- Attribution — You must give appropriate credit, provide a link to the license, and indicate if changes were made. You may do so in any reasonable manner, but not in any way that suggests the licensor endorses you or your use.
- ShareAlike — If you remix, transform, or build upon the material, you must distribute your contributions under the same license as the original.
- No additional restrictions — You may not apply legal terms or technological measures that legally restrict others from doing anything the license permits.