Reliability, Availability, Maintainability, and Safety Analysis of Finger Joint Fu-King Furnimate Machine in Wood Manufacturing Industry

Tegar Tri Nugraha(1*), Fransiskus Tatas Dwi Atmaji(2), Sheila Amalia Salma(3),

(1) Telkom University
(2) Telkom University
(3) Telkom University
(*) Corresponding Author
DOI: https://doi.org/10.23917/jiti.v20i2.15591

Abstract

The objective of this research was to investigate the performance of the Finger Joint Fu-King Furnimate machine, especially for the most critical component of this machine. Based on historical data of machine damage, the Finger Joint Fu-King Furnimate is the machine that has the highest-level frequency of damage. Reliability, Availability, Maintainability, and Safety (RAMS) methods are proposed to analyze the machine's historical data. The result shows that the reliability of machine performance at t = 160 hours is only 27.42%, but the availability of machines is quite high, which passed the standard of 95%. Meanwhile, the maintainability of the machine is relatively fast, which the repair time of its critical component is 8 hours. The low-reliability critical machine spare part affected the safety of the spare part which the Safety Integrity Level (SIL) in the lowest standard (level 1). In general, the novelty of this research is to combine the application of the RAM method as the basis for analyzing machine performance with a safety analysis of the selected critical machine subsystems.

Keywords

availability; key performance indicator; maintainability; reliability; safety

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References

Afiva, W. H., Atmaji, F. T. D., & Alhilman, J. (2019). Usulan Interval Preventive Maintenance dan Estimasi Biaya Pemeliharaan Menggunakan Metode Reliability Centered Maintenance dan FMECA. Jurnal Ilmiah Teknik Industri, 18(2), 213–223. https://doi.org/10.23917/jiti.v18i2.8551

Ansori, N., & Mustajib, M. I. (2013). Sistem Perawatan Terpadu (Integrated Maintenance System) (Pert). Graha Ilmu.

Atmaji, F. T. D. (2015). Optimasi Jadwal Perawatan Pencegahan Pada Mesin Tenun Unit Satu Di Pt Ksm, Yogyakarta. Jurnal Rekayasa Sistem & Industri (JRSI), 2(02), 7–11. //jrsi.sie.telkomuniversity.ac.id/JRSI/article/view/83

Atmaji, F. T. D., & Putra, A. A. N. N. U. (2018). Spare Part Inventory Policy at ABC Company Using RCS (Reliability Centered Spare) method. Jurnal Manajemen Industri Dan Logistik, 2(1), 90–102.

Choudhary, D., Tripathi, M., & Shankar, R. (2019). Reliability, availability and maintainability analysis of a cement plant: a case study. International Journal of Quality and Reliability Management, 36(3), 298–313. https://doi.org/10.1108/IJQRM-10-2017-0215

Dhillon, B. S. (2006). Maintainability, Maintenance, and Reliability for Engineers.

El-Metwally, M., El-Shimy, M., Mohamed, A., Elshahed, M., & Sayed, A. (2018). Reliability assessment of wind turbine operating concepts using reliability block diagrams (RBDs). 2017 19th International Middle-East Power Systems Conference, MEPCON 2017 - Proceedings, 2018-Febru(December), 430–436. https://doi.org/10.1109/MEPCON.2017.8301216

Fusaro, R., & Viola, N. (2018). Preliminary reliability and safety assessment methodology for trans-atmospheric transportation systems. Aircraft Engineering and Aerospace Technology, 90(4), 639–651. https://doi.org/10.1108/AEAT-11-2016-0214

Garg, A., & Deshmukh, S. G. (2006). Maintenance management: Literature review and directions. Journal of Quality in Maintenance Engineering, 12(3), 205–238. https://doi.org/10.1108/13552510610685075

Hasan, O., Ahmed, W., Tahar, S., & Hamdi, M. S. (2015). Reliability block diagrams based analysis: A survey. AIP Conference Proceedings, 1648(ii), 1–5. https://doi.org/10.1063/1.4913184

Koussaimi, M. A., Bouami, D., & Elfezazi, S. (2016). Improvement maintenance implementation based on downtime analysis approach. Journal of Quality in Maintenance Engineering, 22(4), 378–393. https://doi.org/10.1108/JQME-12-2013-0081

Larrucea, X., Belmonte, F., & Transport, A. (2017). Reliability Engineering.

Moss, S., Ulber, L., & Hoed, I. den. (2019). A herbicide resistance risk matrix. Crop Protection, 115(April 2018), 13–19. https://doi.org/10.1016/j.cropro.2018.09.005

Nurrahman, F., Atmaji, F. T., & Budiasih, E. (2019). Analisis dan Perancangan Usulan Kebijakan Perawatan Pada Mesin UHF Menggunakan Metode Reliability, Availability, Maintainability, Safety (RAMS) Di PT XYZ. 6 (2), 6111–6117.

Sikos, L., & Klemeš, J. (2010). Reliability, availability, and maintenance optimization of heat exchanger networks. Applied Thermal Engineering, 30 (1), 63–69. https://doi.org/10.1016/j.applthermaleng.2009.02.013

Tsarouhas, P. (2018). Reliability, availability, and maintainability (RAM) analysis for wine packaging production line. International Journal of Quality & Reliability Management, 34(3), 821–842. https://doi.org/10.1108/IJQRM-02-2017-0026

Tsarouhas, Panagiotis. (2019). Statistical analysis of failure data for estimating reliability, availability, and maintainability of an automated croissant production line. Journal of Quality in Maintenance Engineering, 25(3), 452–475. https://doi.org/10.1108/JQME-04-2018-0029

Warsokusumo, T., Prahasto, T., & Widodo, A. (2020). Combining RAMS with EEP for performance-based maintenance: a review. Journal of Quality in Maintenance Engineering. https://doi.org/10.1108/JQME-06-2019-0063

Zhang, Z., Jia, L., & Qin, Y. (2020). RAMS analysis of railway network: model development and a case study in China. Smart and Resilient Transport, ahead-of-p(ahead-of-print). https://doi.org/10.1108/srt-10-2020-0013

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