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nitrogen
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Book: Alloy Phase Diagrams
Series: ASM Handbook
Volume: 3
Publisher: ASM International
Published: 27 April 2016
DOI: 10.31399/asm.hb.v03.a0006179
EISBN: 978-1-62708-163-4
... Abstract This article is a compilation of binary alloy phase diagrams for which nitrogen (N) is the first named element in the binary pair. The diagrams are presented with element compositions in weight percent. The atomic percent compositions are given in a secondary scale. For each binary...
Abstract
This article is a compilation of binary alloy phase diagrams for which nitrogen (N) is the first named element in the binary pair. The diagrams are presented with element compositions in weight percent. The atomic percent compositions are given in a secondary scale. For each binary system, a table of crystallographic data is provided that includes the composition, Pearson symbol, space group, and prototype for each phase.
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in Gas Nitriding and Gas Nitrocarburizing of Steels
> Steel Heat Treating Fundamentals and Processes
Published: 01 August 2013
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Published: 30 September 2015
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Published: 01 January 1986
Fig. 4 Inert gas fusion system for detecting nitrogen and oxygen. 1, Helium supply; 2, pressure regulator; 3, heated copper; 4, NaOH-impregnated clay; 5, Mg(ClO 4 ) 2 desiccant; 6, flow control; 7, flow manifold; 8, gas doser (optional); 9, sample holding chamber; 10, electrode (impulse
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Published: 01 January 1986
Fig. 5 Insert gas fusion system for detecting nitrogen and oxygen. 1, Helium supply; 2, two-stage pressure regulator; 3, NaOH-impregnated clay; 4, Mg(ClO 4 ) 2 desiccant; 5, flow restrictor; 6, flow meter; 7, pressure regulator; 8, needle valve; 9, gas doser (optional); 10, flow manifold; 11
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Published: 01 January 1986
Fig. 15 XPS survey of the nitrogen-fired fracture surface. No detectable nickel on this surface
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Published: 01 January 2002
Fig. 33 Effect of nickel on SCC in 20.4% MgCl 2 deaerated with nitrogen. Source: Ref 26
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Published: 01 December 2008
Fig. 20 Effect of nitrogen flow rate during purging on the residual gas pressure remaining in an aluminum bronze melt. The curve for oxygen purging is also shown. Source: Ref 16 , 18
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Published: 01 December 2008
Fig. 21 Comparison of the effectiveness of solid degassing flux versus nitrogen purging. Source: Ref 18
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Published: 31 October 2011
Fig. 19 Comparison between experimental nitrogen concentrations and modeled results for several mass transport enhancement factors at electron temperatures between 3250 and 3000 K for a nitrogen supersaturation level of 75% at a travel speed of 8.5 mm/s (0.33 in./s). Adapted from Ref 12
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Published: 01 December 2008
Fig. 1 Effect of carbon on the solubility of hydrogen and nitrogen in the iron-carbon alloys at 1823 K (i.e., liquid) and 1500 K (i.e., austenite) and 1 atm pressure
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Published: 01 December 2008
Fig. 2 Effect of sulfur in the rate of reaction of nitrogen with Fe-C SAT -S alloys
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Published: 01 December 2008
Fig. 3 Effect of bismuth on the reaction of nitrogen with Fe-C SAT -Bi alloys at 1450 °C (2640 °F)
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Published: 01 December 2008
Fig. 4 Effect of tellurium on the reaction of nitrogen with Fe-C SAT -Te alloys at 1450 °C (2640 °F)
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Published: 01 December 2008
Fig. 5 Effect of carbon on the reaction of nitrogen with Fe-C-S alloys at constant sulfur activity
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Published: 01 December 2008
Fig. 6 Thermodynamic pressure of nitrogen and hydrogen at the end of solidification equal to 1 atm for an Fe-3.8wt%C alloy
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Published: 01 December 2008
Fig. 7 Rate of removal of nitrogen from an Fe-3.8wt%C alloy with argon bubbling at 0.005 m 3 /s (10 scfm) in a 10 Mg (11 ton) reactor
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Published: 01 December 2008
Fig. 10 Reduction in nitrogen content of X38CrMoV51 (Fe-0.38C-5.2Cr-1.3Mo-0.4V-1Si-0.4Mn) die steel after vacuum induction melting processing
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Published: 01 December 2008
Fig. 7 Nitrogen concentrations in various metals as a function of the partial pressure of nitrogen after plasma arc remelting. (a) Iron. (b) 16–25–6 stainless steel. (c) Austenitic stainless steel. Curves A and B, induction heating; minimum and maximum nitrogen concentrations, respectively
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