Evaluasi Performansi Propagasi LoRa E220-900T30D di Lingkungan Rural untuk Monitoring Turbin Angin Berbasis IoT

Authors

  • Indah Kurniawati Universitas Muhammadiyah Surabaya
  • Reynanda Bagus W.A Universitas Muhammadiyah Surabaya
  • Ridho Akbar Universitas Muhammadiyah Surabaya
  • M. Akmal Rais Universitas Muhammadiyah Surabaya

DOI:

https://doi.org/10.30736/jt.v18i1.1614

Keywords:

LoRa, RSSI, SNR, eksponen path loss, varians

Abstract

Monitoring turbin angin secara handal diperlukan untuk menjamin kinerja dan kontinuitas pembangkitan energi, khususnya pada lokasi yang sulit dijangkau. Monitoring offline dinilai kurang efisien karena memerlukan penghentian operasi turbin. Turbin angin ini direncanakan untuk diletakkan di wilayah rural Bangkalan, Madura, dimana belum ada penelitian sebelumnya yang membahas pemodelan kanal propagasi dengan LoRa yang digunakan sebagai media komunikasi  di daerah tersebut. Penelitian ini bertujuan mengevaluasi performansi jaringan LoRa E220-900T30D sebagai media monitoring turbin angin berbasis IoT dan Wireless Sensor Network (WSN) di lingkungan rural Bangkalan, Madura. Pengujian dilakukan pada frekuensi 920 MHz dengan bandwidth 125 kHz, spreading factor (SF) 7, dan daya pancar 30 dBm. Parameter yang dianalisis meliputi Received Signal Strength Indicator (RSSI) dan Signal-to-Noise Ratio (SNR) pada jarak 10 m hingga 2699 m, serta pemodelan propagasi menggunakan regresi log-distance, dan evaluasi standar deviasi shadowing dan varians. Hasil pengukuran menunjukkan bahwa RSSI menurun secara valid terhadap jarak setelah memasuki medan jauh diatas 1 km dengan koefisien determinasi R² = 0,98 dan standar deviasi shadowing dan varians  masing-masing adalah 0,3 dB dan 0,09. Nilai eksponen path loss n = 2,73 mengindikasikan dominasi lintasan langsung pada lingkungan rural. Penelitian ini berhasil mengidentifikasi nilai eksponen, mengidentifikasi batas medan dekat perangkat, dan menentukan nilai varians shadowing untuk perancangan jaringan nirkabel, serta menunjukkan akurasi regresi log-distance yang tinggi dalam prediksi RSSI.

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References

Adullah, N. F., Alobaidy, H. A. H., & Nordin, R. (2022). Wireless Airborne Iot Network For Rural Water Quality Monitoring. 2022 IEEE 20th Student Conference On Research And Development, Scored 2022. Https://Doi.Org/10.1109/Scored57082.2022.9974083

Al-Shareeda, M. A., Alsadhan, A. A., Qasim, H. H., & Manickam, S. (2023). Long Range Technology For Internet Of Things: Review, Challenges, And Future Directions. Bulletin Of Electrical Engineering And Informatics, 12(6). Https://Doi.Org/10.11591/Eei.V12i6.5214

Anisah, I., Wirawan, Suwadi, & Yuliana, M. (2023). Experimental Results Of Lora Network Radio Propagation Modeling In Campus Area. 6th International Seminar On Research Of Information Technology And Intelligent Systems, ISRITI 2023 - Proceeding. Https://Doi.Org/10.1109/ISRITI60336.2023.10467989

Astutik, L. Y. (2023). Studi Kinerja Jaringan Lora: Optimalisasi Dan Analisis Efisiensi Komunikasi Nirkabel. Jurnal Sistem Komputer Dan Informatika (JSON), 5(2). Https://Doi.Org/10.30865/Json.V5i2.7147

Berto, R., Napoletano, P., & Savi, M. (2021). A Lora-Based Mesh Network For Peer-To-Peer Long-Range Communication. Sensors, 21(13). Https://Doi.Org/10.3390/S21134314

Black, I. M., Richmond, M., & Kolios, A. (2021). Condition Monitoring Systems: A Systematic Literature Review On Machine-Learning Methods Improving Offshore-Wind Turbine Operational Management. International Journal Of Sustainable Energy, 40(10). Https://Doi.Org/10.1080/14786451.2021.1890736

Cortesi, S., Vogt, C., & Magno, M. (2023). Comparison Between An RSSI- And An MCPD-Based BLE Indoor Localization System. Computers, 12(3). Https://Doi.Org/10.3390/Computers12030059

Dananjaya, R. H., Sutrisno, S., & Fitriady, S. (2022). Penerapan Artificial Neural Network (Ann) Dalam Memprediksi Kapasitas Dukung Fondasi Tiang. Matriks Teknik Sipil, 10(4). Https://Doi.Org/10.20961/Mateksi.V10i4.65034

Davis, N. N., Badger, J., Hahmann, A. N., Hansen, B. O., Mortensen, N. G., Kelly, M., Larsén, X. G., Olsen, B. T., Floors, R., Lizcano, G., Casso, P., Lacave, O., Bosch, A., Bauwens, I., Knight, O. J., Loon, A. P. Van, Fox, R., Parvanyan, T., Bo, S., … Drummond, R. (2023). The Global Wind Atlas. Bulletin Of The American Meteorological Society, 104(8).

Dsa, R. J., Rashmitha, & Rao, B. (2024). Lora-Powered Iot Messaging System For Internet-Free Communication. International Journal For Research In Applied Science And Engineering Technology, 12(4). Https://Doi.Org/10.22214/Ijraset.2024.60126

Edwin, L., Lee, H. J., Ker, P. J., Jamaludin, M. Z., Akhmal Abu Bakar, M. A., Awang, R., & Yusuf, F. A. M. (2022). Lora System With IOT Technology For Smart Agriculture System. 2022 IEEE 20th Student Conference On Research And Development, Scored 2022. Https://Doi.Org/10.1109/Scored57082.2022.9974084

El Chall, R., Lahoud, S., & El Helou, M. (2019). Lorawan Network: Radio Propagation Models And Performance Evaluation In Various Environments In Lebanon. IEEE Internet Of Things Journal, 6(2). Https://Doi.Org/10.1109/JIOT.2019.2906838

Fahrezi, F. M., Sulaiman, M. A., & Toni, T. (2024). Analisis Pengaruh Parameter Fisik Terhadap Jarak Jangkauan Dan Keandalan Data Lora SX1276. Jurnal RESISTOR (Rekayasa Sistem Komputer), 7(3). Https://Doi.Org/10.31598/Jurnalresistor.V7i3.1666

Feng, X., Yan, F., & Liu, X. (2019). Study Of Wireless Communication Technologies On Internet Of Things For Precision Agriculture. Wireless Personal Communications, 108(3). Https://Doi.Org/10.1007/S11277-019-06496-7

Goldsmith, A. (2005). Wireless Communications, Cambridge University Press. In Cambridge University Press.

Gonzalez, C., Gibeaux, S., Ponte, D., Espinosa, A., Pitti, J., & Nolot, F. (2022). An Exploration Of Lora Network In Tropical Farming Environment. 2022 IEEE 2nd International Conference On Computer Communication And Artificial Intelligence, CCAI 2022. Https://Doi.Org/10.1109/CCAI55564.2022.9807765

Guo, Q., Yang, F., & Wei, J. (2021). Experimental Evaluation Of The Packet Reception Performance Of Lora. Sensors (Switzerland), 21(4). Https://Doi.Org/10.3390/S21041071

Hamed, T. A., & Alshare, A. (2022). Environmental Impact Of Solar And Wind Energy-A Review. Journal Of Sustainable Development Of Energy, Water And Environment Systems, 10(2). Https://Doi.Org/10.13044/J.Sdewes.D9.0387

Hawelayuda, P., & Wagyana, D. A. (2024). Perancangan Sistem Monitoring Kelembaban Tanah Dan Penyiraman Otomatis Berbasis Wireless Sensor Network Dengan Lora. Sniv: Seminar Nasional Inovasi Vokasi, 3(1).

Irianto, K. D. (2022). Performance Evaluation Of Lora In Farm Irrigation System With Internet Of Things. Kinetik: Game Technology, Information System, Computer Network, Computing, Electronics, And Control. Https://Doi.Org/10.22219/Kinetik.V7i4.1551

Kementerian Komunikasi Dan Informatika. (2019). Peraturan Direktur Jendral Sumberdaya Dan Perangkat POS Dan Informatika Nomor 3 Tahun 2019 Tentang Persyaraan Teknis Dan Alat Telomunikasi Low Power Wide Area (P. 6).

Kurniawati, I., Akbar, R., & Astomo, R. B. (2025). Characteristics Of UHF Propagation Channels Due To The Impact Of Vegetation On WSN In The Tropical Forests. Journal Of Telecommunication Electronics And Control Engineering (JTECE), 7(1). Https://Doi.Org/10.20895/Jtece.V7i1.1494

Lora Alliance Technical Committee. (2020). Lorawan Is Secure (But Implementation Matters). Lora Alliance Resource Hub. Https://Lora-Alliance.Org/Resource-Hub/Lorawanr-Secure-Implementation-Matters

Maldonado-Correa, J., Martín-Martínez, S., Artigao, E., & Gómez-Lázaro, E. (2020). Using SCADA Data For Wind Turbine Condition Monitoring: A Systematic Literature Review. Energies, 13(12). Https://Doi.Org/10.3390/En13123132

Marahatta, A., Rajbhandari, Y., Shrestha, A., Singh, A., Thapa, A., Gonzalez-Longatt, F., Korba, P., & Shin, S. (2021). Evaluation Of A Lora Mesh Network For Smart Metering In Rural Locations. Electronics, 10(6), 751. Https://Doi.Org/10.3390/Electronics10060751

Marquez, L. E., & Calle, M. (2023). Understanding Lora-Based Localization: Foundations And Challenges. IEEE Internet Of Things Journal, 10(13). Https://Doi.Org/10.1109/JIOT.2023.3248860

Mathe, C. (2023, November 16). Monitor The Technical Equipment Of A Building Through Lorawan: A Solution To Wiring Issues. Wattsense.

Milarokostas, C., Tsolkas, D., Passas, N., & Merakos, L. (2023). A Comprehensive Study On Lpwans With A Focus On The Potential Of Lora/Lorawan Systems. IEEE Communications Surveys And Tutorials, 25(1). Https://Doi.Org/10.1109/COMST.2022.3229846

Obiri, N. M., & Shikunzi, H. (2023). Long-Range Wide Area Network (Lora-WAN) Connectivity And Range Evaluation In A Rural Setting. International Journal Of Computer Applications, 185(3). Https://Doi.Org/10.5120/Ijca2023922699

Pandit, R., Astolfi, D., Hong, J., Infield, D., & Santos, M. (2023). SCADA Data For Wind Turbine Data-Driven Condition/Performance Monitoring: A Review On State-Of-Art, Challenges And Future Trends. In Wind Engineering (Vol. 47, Number 2). Https://Doi.Org/10.1177/0309524X221124031

Parsons, J. D. (John D. (2000). The Mobile Radio Propagation Channel: Second Edition (J. D. Parson, Ed.; Second Edition). John Wiley And Sons.

Pirri, M., Pirri, A., Leonardi, L., Bello, L. Lo, & Patti, G. (2025). Comparative Assessment Of Adaptive Data Rate Algorithms For Lorawan Iot Applications. Https://Doi.Org/10.1109/Iwasi66786.2025.11122003

Rappaport, T. S. (2002). Wireless Communications: Principles And Practice (2nd Ed.). Prentice Hall PTR.

SEMTECH. (2016). Lora SX Datasheet.

Susilo, D. E. (2024). Simulasi Perencanaan Jaringan Long Range (Lora) Pada Area Kota Semarang Menggunakan Cloud Rf. Power Elektronik : Jurnal Orang Elektro, 12(3). Https://Doi.Org/10.30591/Polektro.V12i3.5302

Wu, W., Wang, W., Wang, B., & Song, R. (2021). Throughput Of Distributed Queueing-Based Lora For Long-Distance Communication. Eurasip Journal On Advances In Signal Processing, 2021(1). Https://Doi.Org/10.1186/S13634-021-00739-1

Yanziah, A., Soim, S., & Rose, M. M. (2020). Analisis Jarak Jangkauan Lora Dengan Parameter Rssi Dan Packet Loss Pada Area Urban. Jurnal Teknologi Technoscientia. Https://Doi.Org/10.34151/Technoscientia.V13i1.3031

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Published

2026-03-19

How to Cite

Kurniawati, I., Reynanda Bagus W.A, Ridho Akbar, & M. Akmal Rais. (2026). Evaluasi Performansi Propagasi LoRa E220-900T30D di Lingkungan Rural untuk Monitoring Turbin Angin Berbasis IoT. Jurnal Teknika, 18(1), 69–78. https://doi.org/10.30736/jt.v18i1.1614

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Section

Jurnal teknika