Analysis of Pressure Laboratory Scale Swing Adsorption (PSA) Varian Design using Zeolite 13X as Adsorben Medium

Authors

  • Dhimas Satria Mechanical Engineering, Universitas Sultan Ageng Tirtayasa
  • Teguh Kurniawan Chemical Engineering, Universitas Sultan Ageng Tirtayasa
  • Rina Lusiani Mechanical Engineering, Universitas Sultan Ageng Tirtayasa
  • Erny Listijorini Mechanical Engineering, Universitas Sultan Ageng Tirtayasa
  • Imron Rosyadi Mechanical Engineering, Universitas Sultan Ageng Tirtayasa
  • Nidya Jullanar Salman Mechanical Engineering, Universitas Sultan Ageng Tirtayasa

DOI:

https://doi.org/10.22219/jemmme.v6i2.17777

Keywords:

variant, design concept, PSA, zeolite 13X

Abstract

The demand of high quality of oxygen increases, especially in the middle of covid -19 pandemic. The importance recentl is using technology and material to improve the quality of oxygen. Therefore a study was conducted which aim to obtain the best varian on concept desain concept analysis of pressure swing adsorption (PSA)  which utilize adsorption material of sintetic zeolite 13x. the method used is Quality Function Deployment (QFD) which is information collecting about the need and the willingness of users. The steps carried out to obtain the best variant design concept of pressure swing adsorption are as follow: requirement list determination, priority scale determination, house of quality making, PSA specification determination, design concept and the best variant determination. The result obtained is the selected the best variant which was 10th variant because it has been fulfilled the requirement the specification list because this variant when PSA was used is bed or column type is single bed with the capacity of zeolite of 13X 2 – 2,5 kg, the valve mechanism is manual so that it need no automatic control system, the electricity source was from PLN and need no accumulator and the product of )2 using 1 single tank which is simpler.

Downloads

Download data is not yet available.

References

L. D. Yuanita, “Kajian Modifikasi dan Karakterisasi Zeolit Alam dari Berbagai Negara,” Universitas Negeri Yogyakarta, 2010.

R. . Hay, “Zeolites and Zeolitic Reactions in Sedimentary Rocks,” University of Califonia, Berkeley, 1966.

D. Srihapsari, “Penggunaan Zeolit Alam yang Telah Diaktivasi dengan Larutan HCl untuk Menjerap Logam-logam Penyebab Kesadahan Air,” Universitas Negeri Semarang, 2006.

M. Mortimer and P. Taylor, Chemical Kinetics and Mechanism. Cambridge: The Royal Society of Chemistry, 2002.

S. Mulyanto, Suyitno, R. A. Rachmanto, L. L. G. Hidayat, A. H. Wibowo, and S. Hadi, “Synthesis and characterization of natural red dye from Caesalpinia sappan linn,” AIP Conf. Proc., vol. 1717, pp. 1–7, 2016, doi: 10.1063/1.4943475.

S. Warsito, Sriatun, and Taslimah, “Pengaruh Penambahan Surfaktan Cetylrimethylammonium Bromide (N-CTAB) pada Sintesis Zeolit-Y,” Universitas Diponegoro, 2008.

P. Payra and P. K. Dutta, Zeolites: A Primer. Colombus, Ohio, USA: Marcel Dekker, Inc. The Ohio State University, 2003.

D. D. Anggoro, Buku Ajar Teori dan Aplikasi Rekayasa Zeolit. Semarang.: UNDIP Press, 2017.

E. M. Ulfah, F. A. Yasnuar, and Istadi, “Optimasi Pembuatan Katalis Zeolit X dari Tawas, NaOH dan Water Glass dengan Response Surface Methodology,” Universitas Diponegoro, 2006.

C. A. Grande, “Advanced in Pressure Swing Adsorption for Gas Separation,” Int. Sch. Res. Netw. Chem. Eng., 2012.

J. Caro and M. Noack, “Zeolite Membranes – Status and Prospective,” in Advanced in Nanoporous Materials, vol. 1, ElsevierB.V., 2009.

T. Sitorus, “Kajian Eksperimental Mesin Pendingin Adsorpsi Tenaga Surya Dengan Menggunakan Adsorben Campuran,” Rekayasa Mesin, vol. 10, no. 1, pp. 45–52, 2019.

D. Wawrzyńczak et al., “The pilot dual-reflux vacuum pressure swing adsorption unit for CO2 capture from flue gas,” Sep. Purif. Technol., vol. 209, no. July 2018, pp. 560–570, 2019, doi: 10.1016/j.seppur.2018.07.079.

P. Sinha and N. Padhiyar, “Optimal Startup Operation of A Pressure Swing Adsorption,” IFAC Pap., vol. 52, no. 1, pp. 130–135, 2019.

M. Pan, H. M. Omar, and S. Rohani, “Application of Nanosize Zeolite Molecular Sieves for Medical Oxygen Concentration,” Nanomaterials, vol. 7, no. 195, 2017, doi: 10.3390/nano7080195.

S. Jain, A. S. Moharir, P. Li, and G. Wozny, “Heuristic design of pressure swing adsorption: A preliminary study,” Sep. Purif. Technol., vol. 33, no. 1, pp. 25–43, 2003, doi: 10.1016/S1383-5866(02)00208-3.

H. Gao, M. He, W. Sun, and Y. Yan, “Surface wave characteristic of falling film in swing absorber and its influences on absorption performance,” Appl. Therm. Eng., vol. 129, pp. 1508–1517, 2018, doi: 10.1016/j.applthermaleng.2017.09.141.

Fausiah, Arfiana, E. R. Finalis, and A. Nurdin, “Desain Sistem Proses Upgrading Biogas dengan Menggunakan Pressure Swing Adsorption (PSA),” Technopex Inst. Teknol. Indones., pp. 324–329, 2018.

E. J. Shokroo, D. J. Farsani, H. K. Meymandi, and N. Yadollahi, “Comparative study of zeolite 5A and zeolite 13X in air separation by pressure swing adsorption,” Korean J. Chem. Eng., vol. 33, no. 4, pp. 1391–1401, 2016, doi: 10.1007/s11814-015-0232-6.

D. Satria, D. Pujangga Asmara Lanank Esiswitoyo, N. K. Caturwati, E. Listijorini, and R. Lusiani, “Body Design Concept of Remotely Operated Vehicle (ROV) of Observation Class with the Method of Concept Screening and Concept Scoring,” MATEC Web Conf., vol. 218, 2018, doi: 10.1051/matecconf/201821802009.

D. Satria, S. Susilo, R. Lusiani, and Y. Hermawan, “Design of Alpha Type Stirling Machine Biomass-Based Innovation Design With The Capacity of 100 Watt,” IOP Conf. Ser. Mater. Sci. Eng., p. 012124, 2019, doi: 10.1088/1757-899X/673/1/012124.

Downloads

Published

2021-11-08

How to Cite

Satria, D., Kurniawan, T., Lusiani, R., Listijorini, E., Rosyadi, I., & Salman, N. J. (2021). Analysis of Pressure Laboratory Scale Swing Adsorption (PSA) Varian Design using Zeolite 13X as Adsorben Medium. Journal of Energy, Mechanical, Material, and Manufacturing Engineering, 6(2), 103–110. https://doi.org/10.22219/jemmme.v6i2.17777

Issue

Section

Articles