Effect of tungsten on the precipitation kinetics and localized corrosion resistance of super duplex stainless steels

© 2018 by NACE International. Although extensively used in oil and gas production due to their excellent combination of mechanical properties and corrosion resistance, 25Cr super duplex stainless steels (SDSSs) are susceptible to the precipitation of deleterious phases during heat treatment and weld...

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Main Authors: Bernås, M., Westermann, I., Johnsen, R., Torres, C., Jernberg, A., Qvale, A., Iannuzzi, Mariano
Format: Conference Paper
Published: 2018
Online Access:http://hdl.handle.net/20.500.11937/73045
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author Bernås, M.
Westermann, I.
Johnsen, R.
Torres, C.
Jernberg, A.
Qvale, A.
Iannuzzi, Mariano
author_facet Bernås, M.
Westermann, I.
Johnsen, R.
Torres, C.
Jernberg, A.
Qvale, A.
Iannuzzi, Mariano
author_sort Bernås, M.
building Curtin Institutional Repository
collection Online Access
description © 2018 by NACE International. Although extensively used in oil and gas production due to their excellent combination of mechanical properties and corrosion resistance, 25Cr super duplex stainless steels (SDSSs) are susceptible to the precipitation of deleterious phases during heat treatment and welding. Deleterious phases, in turn, affect both localized corrosion resistance and mechanical properties. Much debate still exists as to whether alloying elements such as tungsten accelerate or retard the formation of detrimental precipitates. In this work, the effect of W on the precipitation kinetics of three 25Cr SDSS grades, namely, UNS S32750 (W-free), S32760 (Low-W), and S39274 (High-W) was quantified in Time-Temperature-Transformation (TTT) diagrams. Optical microscopy, scanning electron microscopy-energy dispersive X-ray spectroscopy (SEM-EDS), and Electron backscatter diffraction (EBSD) were used to characterize the microstructure evolution and construct the TTT diagrams. The effect of intermetallic compounds (IMCs) and tertiary phases on localized corrosion resistance was investigated as a function of volume fraction and type of precipitate, with a focus on s- and ?-phase formation. The localized corrosion resistance of the various metallurgical stages was determined using open circuit potential measurements as a function of temperature during immersion in 6 wt% FeCl3 pH = 1.0. The s-phase precipitation rate was slower in the High-W SDSS compared to the other alloys, possibly due to ?-phase precipitation at grain boundaries. At 846°C, the isothermal heating time required to observe a drop in Critical Pitting Temperature (CPT) doubled for the High-W SDSS. The implications of these findings in materials selection for oil and gas production equipment are discussed.
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institution Curtin University Malaysia
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publishDate 2018
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spelling curtin-20.500.11937-730452018-12-13T09:15:10Z Effect of tungsten on the precipitation kinetics and localized corrosion resistance of super duplex stainless steels Bernås, M. Westermann, I. Johnsen, R. Torres, C. Jernberg, A. Qvale, A. Iannuzzi, Mariano © 2018 by NACE International. Although extensively used in oil and gas production due to their excellent combination of mechanical properties and corrosion resistance, 25Cr super duplex stainless steels (SDSSs) are susceptible to the precipitation of deleterious phases during heat treatment and welding. Deleterious phases, in turn, affect both localized corrosion resistance and mechanical properties. Much debate still exists as to whether alloying elements such as tungsten accelerate or retard the formation of detrimental precipitates. In this work, the effect of W on the precipitation kinetics of three 25Cr SDSS grades, namely, UNS S32750 (W-free), S32760 (Low-W), and S39274 (High-W) was quantified in Time-Temperature-Transformation (TTT) diagrams. Optical microscopy, scanning electron microscopy-energy dispersive X-ray spectroscopy (SEM-EDS), and Electron backscatter diffraction (EBSD) were used to characterize the microstructure evolution and construct the TTT diagrams. The effect of intermetallic compounds (IMCs) and tertiary phases on localized corrosion resistance was investigated as a function of volume fraction and type of precipitate, with a focus on s- and ?-phase formation. The localized corrosion resistance of the various metallurgical stages was determined using open circuit potential measurements as a function of temperature during immersion in 6 wt% FeCl3 pH = 1.0. The s-phase precipitation rate was slower in the High-W SDSS compared to the other alloys, possibly due to ?-phase precipitation at grain boundaries. At 846°C, the isothermal heating time required to observe a drop in Critical Pitting Temperature (CPT) doubled for the High-W SDSS. The implications of these findings in materials selection for oil and gas production equipment are discussed. 2018 Conference Paper http://hdl.handle.net/20.500.11937/73045 restricted
spellingShingle Bernås, M.
Westermann, I.
Johnsen, R.
Torres, C.
Jernberg, A.
Qvale, A.
Iannuzzi, Mariano
Effect of tungsten on the precipitation kinetics and localized corrosion resistance of super duplex stainless steels
title Effect of tungsten on the precipitation kinetics and localized corrosion resistance of super duplex stainless steels
title_full Effect of tungsten on the precipitation kinetics and localized corrosion resistance of super duplex stainless steels
title_fullStr Effect of tungsten on the precipitation kinetics and localized corrosion resistance of super duplex stainless steels
title_full_unstemmed Effect of tungsten on the precipitation kinetics and localized corrosion resistance of super duplex stainless steels
title_short Effect of tungsten on the precipitation kinetics and localized corrosion resistance of super duplex stainless steels
title_sort effect of tungsten on the precipitation kinetics and localized corrosion resistance of super duplex stainless steels
url http://hdl.handle.net/20.500.11937/73045