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PISTON: Jurnal Teknologi

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Query: "UV index"
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  • %2026-%06-%26 pp. 82 - 90

    Development of an IoT-Based Heat Index and UV Index Monitoring System Using ESP8266 in Sikka Regency

    Isma Alip, Zakaria Al Farizi, Nurfadilah
    doi 10.55679/pistonjt.v11i1.139
    Views 0
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    References
    Development of an IoT-Based Heat Index and UV Index Monitoring System Using ESP8266 in Sikka Regency
    1. D. T. Songo, P. Suryandari, and A. D. Sulistiowati, “Perancangan Hotel Resort di Pantai Sine Tulungagung, Jawa Timur,” Maestro, vol. 5, no. 1, pp. 15–33, 2022.
    2. S. Ristanto, C. Huda, D. Affandi, and F. Kurniawan, “Pengukuran Indeks Ultraviolet Matahari dan Atenuasinya oleh Beberapa Bahan untuk Rekomendasi Waktu Aman Berjemur,” Indonesian Journal of Applied Physics, vol. 11, no. 2, pp. 248–255, 2021.
    3. F. A. Faustine, I. Rahman, R. M. Tasya, A. J. N. Pulungan, and E. Kholinne, “The Importance of Heat Acclimation in Recreational Runners: Benefits, Challenges and Strategies,” Jurnal Akta Trimedika (JAT), vol. 2, no. 2, pp. 754–768, 2025, doi: 10.25105/aktatrimedika.v2i2.22449.
    4. F. S. Arsad et al., “The Impact of Heatwaves on Mortality and Morbidity and the Associated Vulnerability Factors: A Systematic Review,” Int. J. Environ. Res. Public Health, vol. 19, no. 23, 2022, doi: 10.3390/ijerph192316356.
    5. D. J. Vecellio, S. T. Wolf, R. M. Cottle, and W. L. Kenney, “Utility of the Heat Index in defining the upper limits of thermal balance during light physical activity (PSU HEAT Project),” Int. J. Biometeorol., vol. 66, no. 9, pp. 1759–1769, 2022, doi: 10.1007/s00484-022-02316-z.
    6. G. Havenith, J. W. Smallcombe, S. Hodder, O. Jay, and J. Foster, “Comparing the efficacy of different climate indices for prediction of labor loss, body temperatures, and thermal perception in a wide variety of warm and hot climates,” J. Appl. Physiol., vol. 137, no. 2, pp. 312–328, Aug. 2024, doi: 10.1152/japplphysiol.00613.2023.
    7. E. Fitraneti, Y. Rizal, S. Riska Nafiah, I. Primawati, and D. Ayu Hamama, “Pengaruh Paparan Sinar Ultraviolet terhadap Kesehatan Kulit dan Upaya Pencegahannya : Tinjauan Literatur,” Scientific Journal, vol. 3, no. 3, pp. 185–194, May 2024, doi: 10.56260/sciena.v3i3.147.
    8. Muh. N. Fajri, M. Anshari, Antarissubhi, and Suryani, “Rancang Bangun Sistem Monitoring Dan Controlling Pada Pengering Pakaian Berbasis Wemos D1 R1,” Jurnal Teknik Elektro, vol. 14, no. 2, pp. 72–78, 2022.
    9. M. Yampolsky, E. Pikhay, R. Shima Edelstein, and Y. Roizin, “High-Sensitivity CMOS-Integrated Floating Gate-Based UVC Sensors,” Sensors, vol. 23, no. 5, 2023, doi: 10.3390/s23052509.
    10. Md. M. Islam, M. A. Kashem, and J. Uddin, “An internet of things framework for real-time aquatic environment monitoring using an Arduino and sensors,” International Journal of Electrical and Computer Engineering (IJECE), vol. 12, no. 1, pp. 826–833, Feb. 2022, doi: 10.11591/ijece.v12i1.pp826-833.
    11. M. Anitha and L. S. Kumar, “Development of an IoT-Enabled Air Pollution Monitoring and Air Purifier System,” Mapan - Journal of Metrology Society of India, vol. 38, no. 3, pp. 669–688, 2023, doi: 10.1007/s12647-023-00660-y.
    12. V. S. Windyasari and M. A. Candra, “Prototipe Sistem Otomatis Lampu Ultraviolet-B Pada Kandang Burung Dengan Sensor Suhu Berbasis Mikrokontroler Arduino,” Jurnal Algoritma, Logika dan Komputasi, vol. 3, no. 2, pp. 284–290, 2021, doi: 10.30813/j-alu.v3i2.2479.
    13. A. Abusultan, H. Abunahla, Y. Halawani, B. Mohammad, N. Alamoodi, and A. Alazzam, “Artificial Intelligence-Aided Low Cost and Flexible Graphene Oxide-Based Paper Sensor for Ultraviolet and Sunlight Monitoring,” Nanoscale Res. Lett., vol. 17, no. 1, 2022, doi: 10.1186/s11671-022-03727-y.
  • %2025-%06-%16 pp. 8 - 18

    Studi Karakteristik Energi Surya untuk Pemanenan Energi: Studi Awal di Kota Kendari

    La Ode Ahmad Barata, Samhuddin, Rizqi Firti Naryanto, Mera Kartika Delimayanti, La Baride
    doi 10.55679/pistonjt.v10i1.85
    Views 0
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    References
    Studi Karakteristik Energi Surya untuk Pemanenan Energi: Studi Awal di Kota Kendari
    1. Solargis, “Solar Resource and Photovoltaic Power Potensial of Indonesia,” 2017.
    2. IESR, “Peta jalan mempercepat pensiun pltu batubara pada 2045 (Roadmap to Accelerate the Retirement of Coal-Fired Power Plants at 2045).” Accessed: Dec. 30, 2024. [Online]. Available: https://iesr.or.id/peta-jalan-mempercepat-pensiun-pltu-batubara-pada-2045/
    3. ESDM, Handbook Of Energy & Economic Statistics Of Indonesia 2023. 2023.
    4. D. R. Armanda, “PEMANFAATAN PEMBANGKIT LISTRIK TENAGA SURYA (PLTS) PADA SISTEM KELISTRIKAN SULAWESI UTARA DAN GORONTALO,” Inst. Teknol. PLN, Jakarta, Indones., no. April, 2021.
    5. B. Indonesian Agency for Meteorology, Climatology, and Geophysics), “Dinamika Atmosfer.” Accessed: Jan. 25, 2025. [Online]. Available: https://www.bmkg.go.id/iklim/dinamika-atmosfer
    6. K. E. RI, Sultra Raih Penghargaan Dewan Energi Nasional. 2025.
    7. F. D. Putra, H. Radhiati, L. O. A. Barata, and L. K. Mangalla, “Studi Karakteristik PV Panel sebagai Pemanenan Energi Listrik : Efek Solar Tracking,” Enthalpy J. Ilm. Mhs. Tek. Mesin, vol. 10, no. 1, pp. 1–9, 2025, doi: http://dx.doi.org/10.55679/enthalpy.v9i4 1.
    8. GUBERNUR SULAWESI TENGGARA (South East Sulawesi Governor), RENCANA UMUM ENERGI DAERAH PROVINSI SULAWESI TENGGARA (Regional Energy General Plan). South East Sulawesi, 2021.
    9. L. A. Ningtyas, “Empat Kabupaten di Sultra Terima Bantuan PLTS.” Accessed: Apr. 15, 2025. [Online]. Available: https://www.rri.co.id/daerah/1341460/empat-kabupaten-di-sultra-terima-bantuan-plts
    10. D. G. Erbs, S. A. Klein, and J. A. Duffie, “Estimation of the diffuse radiation fraction for hourly, daily and monthly-average global radiation,” Sol. Energy, vol. 28, no. 4, pp. 293–302, 1982, doi: 10.1016/0038-092X(82)90302-4.
    11. L. C. Nethwadzi and H. Winkler, “Calculation of direct and diffuse solar irradiance components using a Slob Algorithm model in Gauteng conditions,” no. December 2018, 2019.
    12. N. Power, “Reports.” Accessed: Dec. 15, 2024. [Online]. Available: https://power.larc.nasa.gov/data-access-viewer/
    13. www.weatherspark.com, “Average Daily Incident Shortwave Solar Energy in Kendari.” Accessed: Jan. 25, 2025. [Online]. Available: https://weatherspark.com/y/137856/Average-Weather-in-Kendari-Indonesia-Year-Round
    14. M. Aljuwaysir Salah Fahad, K. Osman, U. Abidin, M. S. Ahmad, E. M. H. Ismaeil, and M. U. Farooq, “Review of Cooling Techniques for Improving Solar Photovoltaic Panel Efficiency,” J. Adv. Res. Fluid Mech. Therm. Sci., vol. 125, no. 1, pp. 193–219, 2025, doi: 10.37934/arfmts.125.1.193219.
    15. M. M. Abdel-Aziz and A. A. ElBahloul, “Innovations in improving photovoltaic efficiency: A review of performance enhancement techniques,” Energy Convers. Manag., vol. 327, no. March, p. 119589, Mar. 2025, doi: 10.1016/j.enconman.2025.119589.
    16. Muhammad Iqbal, An Introduction to Solar Radiation. Toronto: Academic Press, 1983. doi: 10.1016/b978-0-12-373750-2.x5001-0.
    17. M. H. Naraghi and E. Atefi, “Optimum Solar Panel Orientation and Performance: A Climatic Data-Driven Metaheuristic Approach,” Energies, vol. 15, no. 2, 2022, doi: 10.3390/en15020624.
    18. J. Ramos and J. A. Valladares, “University of XXX-solar radiation clearness and variability index,” ASEE Annu. Conf. Expo. Conf. Proc., 2014.
    19. S. Himran, Energi Surya: Konversi Termal dan Fotovoltaik (Solar Energi: Thermal Conversion and Photovolataic). ANDI, Yogyakarta, 2021.
  • %2024-%12-%27 pp. 72 - 79

    Uji Karakteristik Briket Campuran Serbuk Kayu dan Tandan Kosong Sawit Sebagai Bahan Bakar Alternatif

    La Ode Ahmad Barata, Masharib Al Akhyar, Aminur, Amrullah, Akbar Naro Parawangsa
    doi 10.55679/pistonjt.v9i2.77
    Views 0
    Abstract PDF
    References
    Uji Karakteristik Briket Campuran Serbuk Kayu dan Tandan Kosong Sawit Sebagai Bahan Bakar Alternatif
    1. M. Y. Thoha and D. E. Fajrin, “Pembuatan Briket Arang dari Daun Jati dengan Sagu Aren sebagai Pengikat,” J. Tek. Kim., vol. 17, no. 1, pp. 34–43, 2010.
    2. Y. O. Ari Adrian, Rudianda Sulaeman, “KARAKTERISTIK WOOD PELLET DARI LIMBAH KAYU KARET (Hevea brazilliensis Muell. Arg) SEBAGAI ALTERNATIF SUMBER ENERGI TERBARUKAN,” J. Fak. Pertan, vol. 4, no. 12, pp. 10–14, 2015.
    3. L. O. Nurudin, L. K. Mangalla, and L. O. A. Barata, “Analisis Karakteristik Biomassa Cangkang Kelapa Dan Kulit Mete Melalui Proses Torefaksi,” Enthalpy J. Ilm. Mhs. Tek. Mesin, vol. 7, no. 1, p. 28, 2022.
    4. N. Amalia, E. Kurniawan, and Jalaluddin, “Pemanfaatan Arang Tandan Kosong Sawit sebagai Bahan Bakar Alternative dalam Bentuk Briket,” Semin. Nas. Penelit. LPPM UMJ, pp. 1–10, 2020.
    5. F. Maharani, M. Muhammad, J. Jalaluddin, E. Kurniawan, and Z. Ginting, “Pembuatan Briket dari Arang Serbuk Gergaji Kayu dengan Perekat Tepung Singkong sebagai Bahan Bakar Alternatif,” J. Teknol. Kim. Unimal, vol. 11, no. 2, p. 207, 2022.
    6. A. Dhora and A. Sihotang, “Pemanfaatan Tandan Kosong Kelapa Sawit Sebagai Bahan Baku Briket Dengan Perekat Tepung Kanji,” J. Sains dan Ilmu Terap., vol. 5, no. 1, pp. 14–17, 202.
    7. R. Rifdah, N. Herawati, and F. Dubron, “Pembuatan Biobriket Dari Limbah Tongkol Jagung Pedagang Jagung Rebus Dan Rumah Tangga Sebagai Bahan Bakar Energi Terbarukan Dengan Proses Karbonisasi,” J. Distilasi, vol. 2, no. 2, p. 39, 2017.
    8. Suluh Sallolo And Silka., “Analisis Pemanfaatan Briket Arang Campuran Sabut Kelapa Dengan Tempurung Kelapa Sebagai Bahan Bakar Alternatif,” J. neutrino Pendidik. Fis. UKI Toraja, vol. 3, no. 1, pp. 1–6, 2020.
    9. A. A. Marantika, S. Sulhadi, and T. Darsono, “Penambahan Arang Serbuk Gergaji Pada Briket Jerami Sebagai Bahan Bakar Alternatif,” vol. VI, pp. SNF2017-MPS-149-SNF2017-MPS-154, 2017.
    10. I. L. Millah, T. Darsono, S. Sulhadi, and A. Ahmadun, “Pemanfaatan Arang Tempurung Kelapa Dari Limbah Pengasapan Ikan Sebagai Briket Bahan Bakar,” vol. VI, pp. SNF2017-MPS-155-SNF2017-MPS-160, 2017.
    11. R. P. Djafaar, “Pengaruh Temperatur Terhadap Karakteristik Briket Bioarang Dari Sampah Kebun Campuran Dan Kulit Kacang Tanah Dengan Tambahan Minyak Jelantah,” Skripsi, no. Jurusan Teknik Lingkungan, Universitas Islam Indonesia, Sleman, pp. 5–16, 2016.
    12. H. B. Adja and A. T.-J. pd. Anam, “Study Komparasi Sekam Padi Sebagai Bahan Bakar Alternatif Berbasis Proximate And Ultimate Analysis,” J. Mesin Mater. Manufaktur dan Energi, vol. 2, no. 1, pp. 8–17, 2021.
    13. A. Ekayuliana and N. Hidayati, “Analisis Nilai Kalor dan Nilai Ultimate Briket Sampah Organik Dengan Bubur Kertas,” J. Mek. Terap., vol. 1, no. 2, pp. 107–115, 2020.
    14. T. M. Gantina, “Pengaruh penambahan arang tempurung kelapa terhadap peningkatan nilai kalor dan proses pembakaran briket bio-batubara,” J. Tek. Energi, vol. 9, no. November, pp. 31–36, 2019.
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