Mathematical Modeling of Wax Deposition in Field-Scale Crude Oil Pipeline Systems

The formation of solid wax crystals, which interlock and form a gel-like layer on the inner wall of the crude oil pipeline, influences the transportation of waxy crude oil. The deposited layer grows continuously and hardens during the oil transportation, reducing the effective inside diameter of the...

Full description

Bibliographic Details
Main Authors: Francis Oketch Ochieng, Mathew Ngugi Kinyanjui, Jeconia Okelo Abonyo, Phineas Roy Kiogora
Format: Article
Language:English
Published: Wiley 2022-01-01
Series:Journal of Applied Mathematics
Online Access:http://dx.doi.org/10.1155/2022/2845221
_version_ 1826825669714116608
author Francis Oketch Ochieng
Mathew Ngugi Kinyanjui
Jeconia Okelo Abonyo
Phineas Roy Kiogora
author_facet Francis Oketch Ochieng
Mathew Ngugi Kinyanjui
Jeconia Okelo Abonyo
Phineas Roy Kiogora
author_sort Francis Oketch Ochieng
collection DOAJ
description The formation of solid wax crystals, which interlock and form a gel-like layer on the inner wall of the crude oil pipeline, influences the transportation of waxy crude oil. The deposited layer grows continuously and hardens during the oil transportation, reducing the effective inside diameter of the crude oil pipeline and the flow rate. In extreme cases, the deposited layer may block the crude oil pipeline leading to a loss of production and capital investment. In this paper, wax deposition from multiphase flow in field-scale oil pipeline transport systems has been studied. The novelty of this work is to develop a mathematical model that incorporates water-in-oil emulsions, wax precipitation kinetics, molecular diffusion, and shear dispersion to enable accurate predictions of both the wax deposit growth rate and aging of the deposit. The coupled nonlinear partial differential equations governing the flow are discretized in time by a second-order semi-implicit time discretization scheme based on the Adams-Bashforth and Crank-Nicolson methods, which completely decouples the computation of the governing equations. The resulting temporal schemes are discretized in space by the bivariate spectral collocation method based on Chebyshev-Gauss-Lobatto grid points and simulated in MATLAB software to obtain the profiles of the flow variables. The simulation results are presented in graphical and in tabular forms and discussed. This study found that the deposit thickness is directly proportional to the Reynolds number and inversely proportional to the mass Grashof number, Schmidt number, and Weber number. Deposit aging is rampant during the early stages of wax deposition, after which it stabilizes at a specific value as time elapses. A deposition model to predict the wax deposit thickness and aging is proposed in this study. The findings of this study will help in making informed decisions on the planning of pigging operations, thermal insulation, and other remediation techniques to be applied in controlling wax deposition in field-scale crude oil pipeline systems.
first_indexed 2024-04-11T03:50:18Z
format Article
id doaj.art-f6d0e8267d494349a2458c344d54ebd1
institution Directory Open Access Journal
issn 1687-0042
language English
last_indexed 2025-02-16T08:00:04Z
publishDate 2022-01-01
publisher Wiley
record_format Article
series Journal of Applied Mathematics
spelling doaj.art-f6d0e8267d494349a2458c344d54ebd12025-02-03T05:57:59ZengWileyJournal of Applied Mathematics1687-00422022-01-01202210.1155/2022/2845221Mathematical Modeling of Wax Deposition in Field-Scale Crude Oil Pipeline SystemsFrancis Oketch Ochieng0Mathew Ngugi Kinyanjui1Jeconia Okelo Abonyo2Phineas Roy Kiogora3Department of Pure and Applied MathematicsDepartment of Pure and Applied MathematicsDepartment of Pure and Applied MathematicsDepartment of Pure and Applied MathematicsThe formation of solid wax crystals, which interlock and form a gel-like layer on the inner wall of the crude oil pipeline, influences the transportation of waxy crude oil. The deposited layer grows continuously and hardens during the oil transportation, reducing the effective inside diameter of the crude oil pipeline and the flow rate. In extreme cases, the deposited layer may block the crude oil pipeline leading to a loss of production and capital investment. In this paper, wax deposition from multiphase flow in field-scale oil pipeline transport systems has been studied. The novelty of this work is to develop a mathematical model that incorporates water-in-oil emulsions, wax precipitation kinetics, molecular diffusion, and shear dispersion to enable accurate predictions of both the wax deposit growth rate and aging of the deposit. The coupled nonlinear partial differential equations governing the flow are discretized in time by a second-order semi-implicit time discretization scheme based on the Adams-Bashforth and Crank-Nicolson methods, which completely decouples the computation of the governing equations. The resulting temporal schemes are discretized in space by the bivariate spectral collocation method based on Chebyshev-Gauss-Lobatto grid points and simulated in MATLAB software to obtain the profiles of the flow variables. The simulation results are presented in graphical and in tabular forms and discussed. This study found that the deposit thickness is directly proportional to the Reynolds number and inversely proportional to the mass Grashof number, Schmidt number, and Weber number. Deposit aging is rampant during the early stages of wax deposition, after which it stabilizes at a specific value as time elapses. A deposition model to predict the wax deposit thickness and aging is proposed in this study. The findings of this study will help in making informed decisions on the planning of pigging operations, thermal insulation, and other remediation techniques to be applied in controlling wax deposition in field-scale crude oil pipeline systems.http://dx.doi.org/10.1155/2022/2845221
spellingShingle Francis Oketch Ochieng
Mathew Ngugi Kinyanjui
Jeconia Okelo Abonyo
Phineas Roy Kiogora
Mathematical Modeling of Wax Deposition in Field-Scale Crude Oil Pipeline Systems
Journal of Applied Mathematics
title Mathematical Modeling of Wax Deposition in Field-Scale Crude Oil Pipeline Systems
title_full Mathematical Modeling of Wax Deposition in Field-Scale Crude Oil Pipeline Systems
title_fullStr Mathematical Modeling of Wax Deposition in Field-Scale Crude Oil Pipeline Systems
title_full_unstemmed Mathematical Modeling of Wax Deposition in Field-Scale Crude Oil Pipeline Systems
title_short Mathematical Modeling of Wax Deposition in Field-Scale Crude Oil Pipeline Systems
title_sort mathematical modeling of wax deposition in field scale crude oil pipeline systems
url http://dx.doi.org/10.1155/2022/2845221
work_keys_str_mv AT francisoketchochieng mathematicalmodelingofwaxdepositioninfieldscalecrudeoilpipelinesystems
AT mathewngugikinyanjui mathematicalmodelingofwaxdepositioninfieldscalecrudeoilpipelinesystems
AT jeconiaokeloabonyo mathematicalmodelingofwaxdepositioninfieldscalecrudeoilpipelinesystems
AT phineasroykiogora mathematicalmodelingofwaxdepositioninfieldscalecrudeoilpipelinesystems