Quantification of the chemical reactivity of molten nitrate salts with heat treatable aluminum alloys

This work explores the conditions for safe heat treatment of aluminum alloys containing lithium and magnesium in molten sodium nitrate (NaNO3) bath furnaces, and conditions where industrial accidents may occur. Using calorimetry coupled to classical thermodynamics, the strength of classical thermody...

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Main Authors: J.-P. Harvey, Shanti Singh, Kentaro Oishi, Barbara Acheson, Richard Turcotte, Daniel Pilon, Jonathan Lavoie, Bernard Grange
Format: Article
Language:English
Published: Elsevier 2021-01-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127520308297
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spelling doaj-093e2de7738743439df460f4a2b69a632021-01-02T05:06:31ZengElsevierMaterials & Design0264-12752021-01-01198109293Quantification of the chemical reactivity of molten nitrate salts with heat treatable aluminum alloysJ.-P. Harvey0Shanti Singh1Kentaro Oishi2Barbara Acheson3Richard Turcotte4Daniel Pilon5Jonathan Lavoie6Bernard Grange7Polytechnique Montréal, Chem. Eng., Box 6079, Station Downtown, Montréal, QC, H3C 3A7, Canada; Corresponding author.Natural Resources Canada, Canmet Canadian Explosives Research Laboratory, 1 Haanel Dr., Ottawa, ON K1A 1M1, CanadaPolytechnique Montréal, Chem. Eng., Box 6079, Station Downtown, Montréal, QC, H3C 3A7, CanadaNatural Resources Canada, Canmet Canadian Explosives Research Laboratory, 1 Haanel Dr., Ottawa, ON K1A 1M1, CanadaNatural Resources Canada, Canmet Canadian Explosives Research Laboratory, 1 Haanel Dr., Ottawa, ON K1A 1M1, CanadaPolytechnique Montréal, Chem. Eng., Box 6079, Station Downtown, Montréal, QC, H3C 3A7, CanadaNatural Resources Canada, Canmet Canadian Explosives Research Laboratory, 1 Haanel Dr., Ottawa, ON K1A 1M1, CanadaConstellium Technology Center, CS 10027, 38341 Voreppe Cedex, FranceThis work explores the conditions for safe heat treatment of aluminum alloys containing lithium and magnesium in molten sodium nitrate (NaNO3) bath furnaces, and conditions where industrial accidents may occur. Using calorimetry coupled to classical thermodynamics, the strength of classical thermodynamics when analyzing thermal curves was demonstrated through a series of small-scale thermal analyses of various aluminum alloys in contact with sodium nitrate. This system was selected to illustrate reactions that may lead to severe and violent heat effect phenomena. Using idealized binary alloys, severe oxidation of magnesium- and lithium-rich aluminum alloy samples were shown to occur near 500 °C, a temperature range dangerously close to the operating temperature of solution heat treatment furnaces in manufacturing processes of heat treatable aluminum alloy sheets used in the aerospace industry. Commercial aluminum alloys AW257, 2198, 2024, and 1050 were also assessed with the same tools. The temperature that needed to be reached for these commercial aluminum alloys to react with molten sodium nitrate was significantly higher than the normal operating temperature of a conventional solution heat treatment furnace.http://www.sciencedirect.com/science/article/pii/S0264127520308297
collection DOAJ
language English
format Article
sources DOAJ
author J.-P. Harvey
Shanti Singh
Kentaro Oishi
Barbara Acheson
Richard Turcotte
Daniel Pilon
Jonathan Lavoie
Bernard Grange
spellingShingle J.-P. Harvey
Shanti Singh
Kentaro Oishi
Barbara Acheson
Richard Turcotte
Daniel Pilon
Jonathan Lavoie
Bernard Grange
Quantification of the chemical reactivity of molten nitrate salts with heat treatable aluminum alloys
Materials & Design
author_facet J.-P. Harvey
Shanti Singh
Kentaro Oishi
Barbara Acheson
Richard Turcotte
Daniel Pilon
Jonathan Lavoie
Bernard Grange
author_sort J.-P. Harvey
title Quantification of the chemical reactivity of molten nitrate salts with heat treatable aluminum alloys
title_short Quantification of the chemical reactivity of molten nitrate salts with heat treatable aluminum alloys
title_full Quantification of the chemical reactivity of molten nitrate salts with heat treatable aluminum alloys
title_fullStr Quantification of the chemical reactivity of molten nitrate salts with heat treatable aluminum alloys
title_full_unstemmed Quantification of the chemical reactivity of molten nitrate salts with heat treatable aluminum alloys
title_sort quantification of the chemical reactivity of molten nitrate salts with heat treatable aluminum alloys
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2021-01-01
description This work explores the conditions for safe heat treatment of aluminum alloys containing lithium and magnesium in molten sodium nitrate (NaNO3) bath furnaces, and conditions where industrial accidents may occur. Using calorimetry coupled to classical thermodynamics, the strength of classical thermodynamics when analyzing thermal curves was demonstrated through a series of small-scale thermal analyses of various aluminum alloys in contact with sodium nitrate. This system was selected to illustrate reactions that may lead to severe and violent heat effect phenomena. Using idealized binary alloys, severe oxidation of magnesium- and lithium-rich aluminum alloy samples were shown to occur near 500 °C, a temperature range dangerously close to the operating temperature of solution heat treatment furnaces in manufacturing processes of heat treatable aluminum alloy sheets used in the aerospace industry. Commercial aluminum alloys AW257, 2198, 2024, and 1050 were also assessed with the same tools. The temperature that needed to be reached for these commercial aluminum alloys to react with molten sodium nitrate was significantly higher than the normal operating temperature of a conventional solution heat treatment furnace.
url http://www.sciencedirect.com/science/article/pii/S0264127520308297
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