Rancang Bangun Mesin Kompresor Angin 90 Watt Berbasis Panel Surya Monocrystalline 120 WP

Authors

  • Erfan Ali Mubarok Universitas Hasyim Asy’ari Tebuireng Jombang
  • Basuki Basuki Universitas Hasyim Asy’ari Tebuireng Jombang
  • Mohammad Munib Rosadi Universitas Hasyim Asy’ari Tebuireng Jombang
  • Dian Anisa Rokhmah Wati Universitas Hasyim Asy’ari Tebuireng Jombang

DOI:

https://doi.org/10.61722/jssr.v2i5.2626

Keywords:

Solar Panels, Air Compressor, Tool Development

Abstract

At this time the dry season tends to be longer than it should be, this can be utilized as alternative energy which can be used as a substitute for fossil fuels, alternative energy that can be utilized during the hot dry season as a substitute for fossil energy is solar power generation (PLTS) which can be used for various needs, one of which is used for wind compressors, air compressors usually suck air from the atmosphere, but there are also those that attract air or gas with a pressure higher than atmospheric pressure. A 90 watt air compressor based on 120 WP monocrystalline solar cells is one of the applications for solar power generation (PLTS), This 90 watt wind compressor based on 120 WP monocrystalline solar cells uses the R&D (Research And Development) method. This design process begins with making a tool design including frame design, solar panels, ESP 32, battery, 90 watt air compressor, inverter, The results of the design of a 90 watt wind compressor based on a 120 Wp monocrystalline solar panel. This tool has frame dimensions of 800 x 720 x 500 mm using hollow iron (25 x 25 mm), this tool uses a battery type VOZ VD12-12 (12V 7.0AH), SCC (Solar Charge Control) with type STEC ZS10-10A, ESP 32 as the controller, uses an inverter which functions to change the current from DC to AC with a voltage of 2000 W, and uses a 90 watt air compressor.

References

Dina, S. F., Limbong, H. P., & Rambe, S. M. (2018). Rancangan Dan Uji Performansi Alat Pengering Tenaga Surya Menggunakan Pompa Kalor (Hibrida) Untuk Pengeringan Biji Kakao. Indonesian Journal of Industrial Research, 12, 21-33.

Gautami, S., & Astuti, F. N. (2023). Persepsi Masyarakat Mengenai Plts Atap Sebagai Sumber Energi Terbarukan Di Wilayah Kota Pekanbaru. Jsmi: Jurnal Senpling Multidisiplin Indonesia, 1(2), 90-100.

Hammadi, S. H. (2009). Solar updraft tower power plant with thermal storage. Basrah Journal for Engineering Research, 9(1), 9-16.

Halim, L. (2022). Analisis Teknis dan Biaya Investasi Pemasangan PLTS On Grid dan Off Grid di Indonesia. RESISTOR (Elektronika Kendali Telekomunikasi Tenaga Listrik Komputer), 5(2), 131-136.

Harahap, R., & Siahaan, S. (2023). Studi Perencanaan Sistem Pembangkit Listrik Hybrid (Panel Surya dan Diesel Generator) pada Kapal Nelayan di Pelabuhan Perikanan Samudera (PPS) Belawan. Buletin Utama Teknik, 18(3), 245-253.

Jibril, A., Cakranegara, P. A., Putri, R. S. W., & Octiva, C. S. (2022). Analisis Efisiensi Kerja Kompressor Pada Mesin Refrigerasi di PT. XYZ. Jurnal Mesin Nusantara, 5(1), 86-95.

Permana. S. D. (2021) Analisis Kinerja Sistim Kompresor Udara Di Jalur Produksi PT. X Melalui Audit Energi

Setiawan, M. T., Winarno, I., Dewantara, B. Y., Elektro, P. T., Hang, U., & Surabaya, T. (2021). Implementasi Internet Of Things Dalam Rancang Bangun Sistem Monitoring Pada Solar Cell Berbasis Web. JEECOM J. Electr. Eng. Comput, 3(1), 34-38.

Sugiyono. 2016. Metode Penelitian Kuantitatif, Kualitatif dan R&D. Bandung: CV. Alfabeta.

Downloads

Published

2024-09-28