Performance Prediction of Erosive Wear of Steel for Two-Phase Flow in an Inverse U-Bend.

U-bends discrete phase model elbow erosion sand wear

Journal

Materials (Basel, Switzerland)
ISSN: 1996-1944
Titre abrégé: Materials (Basel)
Pays: Switzerland
ID NLM: 101555929

Informations de publication

Date de publication:
12 Aug 2022
Historique:
received: 15 07 2022
revised: 08 08 2022
accepted: 11 08 2022
entrez: 26 8 2022
pubmed: 27 8 2022
medline: 27 8 2022
Statut: epublish

Résumé

Erosion of the elbow due to non-Newtonian viscous slurry flows is often observed in hydrocarbon transportation pipelines. This paper intends to study the erosion behavior of double offset U-bends and 180° U-bends for two-phase (liquid-sand) flow. A numerical simulation was conducted using the Discrete Phase Model (DPM) on carbon steel pipe bends with a 40 mm diameter and an R/D ratio of 1.5. The validity of the erosion model has been established by comparing it with the results quantified in the literature by experiment. While the maximum erosive wear rates of all evaluated cases were found to be quite different, the maximum erosion locations have been identified between 150° and 180° downstream at the outer curvature. It was seen that with the increase in disperse phase diameter, the erosive wear rate and impact area increased. Moreover, with the change of configuration from a 180° U-bend to a double offset U-bend, the influence of turbulence on the transit of the disperse phase decreases as the flow approaches downstream and results in less erosive wear in a double offset U-bend. Furthermore, the simulation results manifest that the erosive wear increases with an increase in flow velocity, and the erosion rate of the double offset U-bend was nearly 8.58 times less than the 180° U-bend for a carrier fluid velocity of 2 m/s and 1.82 times less for 4 m/s carrier fluid velocity. The erosion rate of the double offset U-bend was reduced by 120% compared to the 180° U-bend for 6 m/s in liquid-solid flow.

Identifiants

pubmed: 36013695
pii: ma15165558
doi: 10.3390/ma15165558
pmc: PMC9414689
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Deanship of Scientific Research, Najran University. Kingdom of Saudi Arabia, National Research Priorities funding program
ID : NU/NRP/SERC/11/13

Références

Materials (Basel). 2019 Nov 26;12(23):
pubmed: 31779074
Materials (Basel). 2022 May 23;15(10):
pubmed: 35629747

Auteurs

Saifur Rahman (S)

Electrical Engineering Department, College of Engineering, Najran University, Najran 61441, Saudi Arabia.

Rehan Khan (R)

Department of Mechanical Engineering, College of Electrical and Mechanical Engineering, National University of Sciences and Technology, Islamabad 44000, Pakistan.

Usama Muhammad Niazi (UM)

Department of Mechanical Engineering Technology, National Skills University, Islamabad 44000, Pakistan.

Stanislaw Legutko (S)

Faculty of Mechanical Engineering, Poznan University of Technology, 60-965 Poznan, Poland.

Muhammad Ali Khan (MA)

Department of Mechanical Engineering, College of Electrical and Mechanical Engineering, National University of Sciences and Technology, Islamabad 44000, Pakistan.

Bilal Anjum Ahmed (BA)

Department of Mechanical Engineering, College of Electrical and Mechanical Engineering, National University of Sciences and Technology, Islamabad 44000, Pakistan.

Jana Petrů (J)

Department of Machining, Assembly and Engineering Metrology, Mechanical Engineering Faculty, VŠB-Technical University of Ostrava, 17. Listopadu 2172/15, 708 00 Ostrava, Czech Republic.

Jiří Hajnyš (J)

Department of Machining, Assembly and Engineering Metrology, Mechanical Engineering Faculty, VŠB-Technical University of Ostrava, 17. Listopadu 2172/15, 708 00 Ostrava, Czech Republic.

Muhammad Irfan (M)

Electrical Engineering Department, College of Engineering, Najran University, Najran 61441, Saudi Arabia.

Classifications MeSH