The Effect of Heat Tracing Installation for Wax Prevention on Onshore Buried Swampy Pipelines
Abstract
Transporting crude oil using pipelines is a widely adopted method globally. In one segment owned by PT. XYZ, especially in swampy areas, the fluid temperature tends to drop below the wax appearance temperature (WAT) during oil transportation. This is due to the relatively low temperature in swamp areas caused by heat loss to the environment. The solubility of paraffin in crude oil drastically decreases as fluid temperature drops, causing wax molecules to precipitate and deposit on the cold pipe walls. PT. XYZ employs chemical treatment by adding a pour point depressant (PPD) to lower the pour point temperature (PPT). However, PPD is effective only at certain temperatures, necessitating a study for alternative treatments. Another method involves installing heaters on the pipeline to reduce the viscosity of transported crude oil and enhance its flowability, either through direct heating or heat tracing using insulation with low thermal conductivity. Therefore, in PT. XYZ's case, an analysis is required to identify locations where fluid temperature decreases occur to ensure precise heater installation. Various software tools, including OLGA, have been developed to predict and describe wax deposition phenomena and temperature decreases along the pipeline. OLGA software can simulate locations of fluid temperature decreases in the pipeline, estimate heat loss along the pipeline, and simulate heat tracing technologies to prevent wax deposition. Simulation results indicate that wax deposition can be prevented by installing skin effect heat tracing with a heating power of 15 W/m and insulated with 2-inch aerogel, maintaining the oil temperature downstream at 157.34°F, well above the desired 115°F threshold.
Keywords
Full Text:
PDFReferences
Alnaimat, F., & Ziauddin, M. (2020) Wax Deposition and Prediction in Petroleum Pipelines, Journal of Petroleum Science and Engineering, 184, 1-2.
American Petroleum Institute. (1991) Recommended Practice for Design and Installation of Offshore Production Platform Piping Systems. American Petroleum Institute, Dallas.
Azevedo, L. F. A., & Teixeira, A. M. (2003) A Critical Review of the Modeling of Wax Deposition Mechanisms, Petroleum Science and Technology, 21(3–4), 393–408.
Bendlksen, K. H., Maines, D., Moe, R., & Nuland, S. (2004) The Dynamic Two-fluid Model OLGA: Theory and Application, SPE Reprint Series, 58, 52–61.
Bhatia, A. (2020) Heat Tracing Systems Credit: 4. Continuing Education and Development Inc., New York.
Burger, E. D. (1981) Studies of Wax Deposition in the Trans Alaska Pipeline, Journal of Petroleum Technology, 33 (06), 1075–1086.
Felandry, D., Haq, M., & Farras, R. (2022) Implementasi Good Corporate Governance Dalam Kerjasama Antara PT. Pertamina Hulu Rokan Dan PT. Patra Drilling Contractor di Kecamatan Mandau Kabupaten Bengkalis Provinsi Riau. In Jotika Research in Business Law (Vol. 1, Issue 2).
González, D., Stanko, M., & Golan, M. (2018) Numerical Feasibility Study of Electric Heating Strategies for Subsea Tie-In Flowlines Using a 1-D Mechanistic Multiphase Flow Simulator. Engineering, 10(09), 561–571.
Hamill, M., Chakkalakal, F., & Beres, J. (2017) Building the World’s Longest Heated Pipeline-A Technology Application Review, IEEE Transactions on Industry Applications, 53(1), 709–717.
Huang, Z., Zheng, S., & Fogler, H. S. (2015) Wax Deposition Experimental Characterizations, Theoretical Modeling, and Field Practices, CRC Press, New York.
Institute of Electrical and Electronics Engineers. (2017) IEEE Std 515 – 2017, IEEE Industry Applications Society, New York.
Lardear, J. L. (1991) Control of Self-Regulating Heating Cable for Use in Pipeline Heating Applications, IEEE Transactions on Industry Applications, 21, 6-7.
Organization of the Petroleum Exporting Countries. (2023) World Oil Outlook 2045 Organization of the Petroleum Exporting Countries, OPEC, Austria.
Ragunathan, T., Husin, H., & Wood, C. D. (2020) Wax Formation Mechanisms, Wax Chemical Inhibitors and Factors Affecting Chemical Inhibition, Applied Sciences (Switzerland), 10, 479.
Rahmat, G., & Budisatya Wiranatanegara, M. (2021) Subsurface Geological Evaluation of the Central Sumatra Basin in Relation to the Presence of Heavy Oil, Scientific Contributions Oil and Gas, 44, 65-81.
Rehan, M., Nizami, A. S., Taylan, O., Al-Sasi, B. O., & Demirbas, A. (2016) Determination of Wax Content, Crude Oil, Petroleum Science and Technology, 34(9), 799–804.
Schlumberger. (2017) Dynamic Multiphase Flow Simulator OLGA 2016 : User Manual, Schlumberger, Houtson.
Sousa, A. M., Ribeiro, T. P., Pereira, M. J., & Matos, H. A. (2022) On the Economic Impact of Wax Deposition on the Oil and Gas Industry. Energy Conversion and Management, 16.
Thaher, Y. N. (2014) Pemodelan Deposisi Wax Pada Pipa Minyak Bawah Laut dan Strategi Mitigasinya, M.S. Thesis, University of Indonesia, Jakarta.
Theyab, M. (2020) Study of Fluid Flow Assurance in Hydrocarbon Production-Investigation Wax Mechanisms, PhD Thesis, London South Bank University, London.
Venkatesan, R., Nagarajan, N. R., Paso, K., Yi, Y. B., Sastry, A. M., & Fogler, H. S. (2005) The Strength of Paraffin Gels Formed Under Static and Flow Conditions, Chemical Engineering Science, 60(13), 3587–3598.
Yao, Z., Zhang, Y., Zheng, Y., Xing, C., & Hu, Y. (2022) Enhance Flows of Waxy Crude Oil in Offshore Petroleum Pipeline: A Review, Journal of Petroleum Science and Engineering. 208.
Yuan, Q., Luo, Y., Shi, T., Gao, Y., Wei, J., Yu, B., & Chen, Y. (2023) Investigation Into the Heat Transfer Models for the Hot Crude Oil Transportation in a Long-buried Pipeline, Energy Science and Engineering, 11(6), 2169–2184.
DOI: https://doi.org/10.23955/rkl.v19i1.37754
Article Metrics
Abstract view : 0 timesPDF - 0 times
Refbacks
Copyright (c) 2024 Samuel Bagas Wahyu Santoso

This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.
JURNAL REKAYASA KIMIA & LINGKUNGAN
Jurusan Teknik Kimia Universitas Syiah Kuala, Jl. Tgk. Syech Abdur Rauf No.7, Kopelma Darussalam, Banda Aceh, INDONESIA
PRINCIPAL CONTACT
Nasrul Arahman, Prof. Dr. S.T., M.T.
Phone: +62813-6092-7917
E-mail: rkl@che.usk.ac.id, nasrular@usk.ac.id
SUPPORT CONTACT
Mirna Rahmah Lubis
E-mail: mirna@che.usk.ac.id
Wahyu Rinaldi, ST, M.Sc.
E-mail: wahyu.rinaldi@che.usk.ac.id








