ANALISIS KEMURNIAN OKSIGEN PADA SISTEM PRESSURE SWING ADSORPTION (PSA) DENGAN PENAMBAHAN MASSA MATERIAL ADSORBENT ZEOLIT 13X (600,700 Dan 800 Gram
DOI:
https://doi.org/10.22441/jtm.v12i3.14276Keywords:
Oksigen konsentrator, pressure swing adsoption, material adsorbent, zeolit 13X, adsorpsi.Abstract
Polusi udara menyebabkan masalah pernapasan akut dan kronis yang menjadi perhatian yang berkembang baik dari tingkat global maupun individu. Akibatnya, ada kebutuhan yang berkembang untuk mengatasi kesehatan dan kualitas hidup melalui konsentrator oksigen yang ringan dan portabel dengan pasokan oksigen kelas medis konsentrasi oksigen 88-92%. Penelitian ini bertujuan untuk memilih zeolit yang dapat digunakan untuk menghasilkan gas oksigen dan mengetahui kemurnian oksigen yang dihasilkan pada sitem pressure swing adsoption (PSA) pada setiap variasi massa adsorbent zeolit 13x yang digunakan., Penelitian dilakukan dengan tahapan percobaan pada sistem pressure swing adsorption (PSA) dengan uji adsorpsi menggunakan variasi massa material adsorbent zeolit 13x 600,700 dan 800 gram. Berdasarkan hasil penelitian yang telah dilakukan pada sistem eksperimen pressure swing adsorption (PSA) untuk aplikasi oxygen concentrator dapat di simpulkan bahwa dari pengujian variasi massa adsorbent zeolite molecular sieve (ZMS) 13X yang dilakukan pada sistem pressure swing adsorption (PSA) untuk oxygen concentrator untuk pencapaian kemurnian oksigen paling baik berada pada kondisi 2 dengan nilai maksimal 81.5%.Downloads
References
Ackley, M. W., Rege, S. U., & Saxena, H. (2003). Application of natural zeolites in the purification and separation of gases. Microporous and Mesoporous Materials, 61(1–3), 25–42. https://doi.org/10.1016/S1387-1811(03)00353-6
Hadioso, S., NURSANTO, N., & RIZAL, A. (2015). Implementasi Regulator Oksigen Otomatis berdasarkan Tingkat Pernapasan menggunakan Logika Fuzzy. ELKOMIKA: Jurnal Teknik Energi Elektrik, Teknik Telekomunikasi, & Teknik Elektronika, 3(1), 52. https://doi.org/10.26760/elkomika.v3i1.52
Herawaty, E. (1993). Sifat-sifat Permukaan dan Proses Katalisis.
Hugon, O., Sauvan, M., Benech, P., Pijolat, C., & Lefebvre, F. (2000). Gas separation with a zeolite filter, application to the selectivity enhancement of chemical sensors. Sensors and Actuators, B: Chemical, 67(3), 235–243. https://doi.org/10.1016/S0925-4005(00)00514-1
Jee, J. G., Kim, M. B., & Lee, C. H. (2005). Pressure swing adsorption processes to purify oxygen using a carbon molecular sieve. Chemical Engineering Science, 60(3), 869–882. https://doi.org/10.1016/j.ces.2004.09.050
Kholilah, I., & Al Tahtawi, A. R. (2017). Aplikasi Arduino-Android untuk Sistem Keamanan Sepeda Motor. Jurnal Teknologi Rekayasa, 1(1), 53. https://doi.org/10.31544/jtera.v1.i1.2016.53-58
Leenhouts, D. (2017). The differences of oxygen & oxygen gas. Scienching.
Litch, J. A., & Bishop, R. A. (2000). Oxygen concentrators for the delivery of . supplemental oxygen in remote high-altitude areas. Wilderness and Environmental Medicine, 11(3), 189–191. http://dx.doi.org/10.1580/1080-6032(2000)011[0189:OCFTDO]2.3.CO;2
Liu, Y., Zhang, Q., Song, L., & Chen, Y. (2019). Attention-based recurrent neural networks for accurate short-term and long-term dissolved oxygen prediction. Computers and Electronics in Agriculture, 165(August), 104964. https://doi.org/10.1016/j.compag.2019.104964
McCash E. M. (2001). Adsorption and desorption. Surface Chemistry, 81–84. https://doi.org/10.22236/teknoka.v3i0.2918
Muhriz, M., Subagio, A., & Pardoyo, P. (2011). Pembuatan Zeolit Nanopartikel dengan Metode High Energy Milling (Zeolite
Nanoparticle Fabrication using High Energy Milling Method). Jurnal Sains Dan Matematika, 1(9), 11–17.
Pan, M., Omar, H. M., & Rohani, S. (2017). Application of nanosize zeolite molecular sieves for medical oxygen concentration. Nanomaterials, 7(8). https://doi.org/10.3390/nano7080195
PG&E Innovation. (2018). Pressure Swing Adsorption Technical Analysis. shorturl.at/prERZ
Setiawan, M. A., & Riyanto, I. (2019). Sistem Kendali Tekanan Udara Pada Kompresor Dengan Pengaturan Kecepatan Motor 3 Fasa. Maestro, 2(1), 204–211.
Shaputra.R,Gunoto.P, I. . (2019). Kran Air Otomatis Pada Tempat Berwudhu Menggunakan Sensor Ultrasonik Berbasis Arduino Uno. Sigma Teknika, 2(2), 192–201.
Shokroo, E. J., Farsani, D. J., Meymandi, H. K., & Yadollahi, N. (2016). Comparative study of zeolite 5A and zeolite 13X in air separation by pressure swing adsorption. Korean Journal of Chemical Engineering, 33(4), 1391–1401. https://doi.org/10.1007/s11814-015-0232-6
Shrestha, B. M., Singh, B. B., Gautam, M. P., & Chand, M. B. (2002). The oxygen concentrator is a suitable alternative to oxygen cylinders in Nepal. Canadian Journal of Anesthesia, 8–12.
Sudibandriyo, M., Pan, Z., F., J. E., Robinson, R. L., & Gasem, K. A. (2003). Adsorption of methane, nitrogen, carbon dioxide, and their binary mixtures on dry activated carbon at 318.2 K and pressures up to 13.6 MPa. Langmuir, 19(13), 5323–5331.
Syahputra, R. (2015). Simulasi Pengendalian Temperatur Pada Heat Exchanger Menggunakan Teknik Neuro-Fuzzy Adaptif. Jurnal Teknologi, Teknik Elektro UMY, 8(2), 161–168.
Tandy, E., Hasibuan, I. F., & Harahap, H. (2012). Kemampuan adsorben limbah lateks alam terhadap minyak pelumas dalam air. Teknik Kimia USU, 1(2), 34–38.
World Health Organization. (2020). Sumber penyediaan dan pendistribusian Oksigen untuk fasilitas perawatan COVID-19. Covid-19, April, 1–7
Downloads
Additional Files
Published
How to Cite
Issue
Section
License
The copyright to this article is transferred to Universitas Mercu Buana (UMB) if and when the article is accepted for publication. The undersigned hereby transfers any and all rights in and to the paper including without limitation all copyrights to UMB. The undersigned hereby represents and warrants that the paper is original and that he/she is the author of the paper, except for material that is clearly identified as to its original source, with permission notices from the copyright owners where required. The undersigned represents that he/she has the power and authority to make and execute this assignment.
We declare that:
1. This paper has not been published in the same form elsewhere.
2. It will not be submitted anywhere else for publication prior to acceptance/rejection by this Journal.
3. A copyright permission is obtained for materials published elsewhere and which require this permission for reproduction.
Furthermore, I/We hereby transfer the unlimited rights of publication of the above mentioned paper in whole to UMB. The copyright transfer covers the exclusive right to reproduce and distribute the article, including reprints, translations, photographic reproductions, microform, electronic form (offline, online) or any other reproductions of similar nature.
The corresponding author signs for and accepts responsibility for releasing this material on behalf of any and all co-authors. This agreement is to be signed by at least one of the authors who have obtained the assent of the co-author(s) where applicable. After submission of this agreement signed by the corresponding author, changes of authorship or in the order of the authors listed will not be accepted.
Retained Rights/Terms and Conditions
1. Authors retain all proprietary rights in any process, procedure, or article of manufacture described in the Work.
2. Authors may reproduce or authorize others to reproduce the Work or derivative works for the authors personal use or for company use, provided that the source and the UMB copyright notice are indicated, the copies are not used in any way that implies UMB endorsement of a product or service of any employer, and the copies themselves are not offered for sale.
3. Although authors are permitted to re-use all or portions of the Work in other works, this does not include granting third-party requests for reprinting, republishing, or other types of re-use.
This work is also licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.









