Sand Deposit Control Strategy on Centrifugal Pump Type Overhung 4 Size 4x11 Using API 682 Piping Plan 13

Authors

  • Miftahul Fahrizal Nur Malik Department of Mechanical Engineering, Jakarta State Polytechnic, UI Depok Campus, 16424
  • Noor Hidayati Department of Mechanical Engineering, Jakarta State Polytechnic, UI Depok Campus, 16424
  • Dianta Mustofa kamal Department of Mechanical Engineering, Jakarta State Polytechnic, UI Depok Campus, 16424

DOI:

https://doi.org/10.23960/jemit.v6i1.278

Keywords:

Centrifugal Pump type Overhung 4 size 4x11, Sand Deposits, Erosion, Piping Plan 13 API 682, 5-Why Analysis

Abstract

Centrifugal pumps type Overhung 4 size 4x11 often experience sand deposits and erosion problems, especially in the oil and gas industry, resulting in reduced productivity and increased repair costs. This study evaluates the application of the Piping Plan 13 API 682 as a solution to this problem. The 5-Why Analysis method is used to identify the root cause of sand deposits, which were associated with sand contamination from a liquid source and the absence of an effective filtering system. The implementation of Piping Plan 13 aims to prevent sand deposits in critical areas, such as the Pedestal Cover and Pedestals, by leveraging the circulation design of the pipeline. The results showed a 19.75% increase in pump productivity and a 76.12% reduction in repair costs. Productivity increases reached 336,000 barrels (about 53,419,731 liters) over 16 days of operation, while the repair cost fell from Rp6,699,950 to Rp1,600,000. These findings indicate that Piping Plan 13 API 682 is an effective solution to increase the life and performance of the centrifugal pump and reduce maintenance costs in operating conditions with high sand contamination.

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References

American Petroleum Institute 682. (2014). Pumps—Shaft Sealing Systems for Centrifugal and Rotary Pumps (Vol. 4).

Ekeberg, I., Bibet, P. J., Knudsen, H., Reimers, Ø., & Torbergsen, E. (2022). Sand management and erosion prediction in subsea multiphase pumps. Journal of the Global Power and Propulsion Society, 6, 24–38. https://doi.org/10.33737/jgpps/145322

Idris, M. N., & Tijjani, A. M. (2024). Experimental simulation on impeller volute to determine the surface roughness in centrifugal pump using corrosive fluid. African Journal of Engineering and Environment Research, 5(2), 1–17. Retrieved from https://ajoeer.org.ng/otn/ajoeer/2024/qtr-1/06.pdf

Sarabchi, N., Sharifi, B. K., & Soroureddin, A. (2023). Hydraulic Design, Numerical and Experimental Analysis of an API Overhung Pump Used in the Oil Industry. Proc. International Conference on Mechanical, Automotive and Mechatronics Engineering, 1–5. https://doi.org/10.53375/icmame.2023.293

Wirawan, E., & Minto. (2021). Penerapan Metode PDCA dan 5 Why Analysis pada WTP Section di PT Kebun Tebu Mas. Jurnal Penelitian Bidang Inovasi & Pengelolaan Industri, 1(01), 1–10. https://doi.org/10.33752/invantri.v1i01.1825

Yu, E. S., Cha, J. M., Lee, T., Kim, J., & Mun, D. (2019). Features recognition from piping and instrumentation diagrams in image format using a deep learning network. Energies, 12(4425), 1–19. https://doi.org/10.3390/en12234425

Zanini, N., Suman, A., Piovan, M., & Pinelli, M. (2023). Assessment of the derating methods for centrifugal pump performance handling non-Newtonian fluids. Journal of Physics: Conference Series, 2648(012102), 1–9. https://doi.org/10.1088/1742-6596/2648/1/012102

Zhu, H., Zhu, J., Rutter, R., & Zhang, H. Q. (2021). Experimental study on deteriorated performance, vibration, and geometry changes of an electrical submersible pump under sand water flow condition. Journal of Energy Resources Technology, Transactions of the ASME, 143(8). https://doi.org/10.1115/1.4048863

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Published

2025-02-28