Simulating the Growth of Dual-Phase Boride Layer on AISI M2 Steel by Two Kinetic Approaches

Two kinetic approaches (integral method and Dybkov method) have been applied for simulating the boriding kinetics of AISI M2 steel in the range of 1173 to 1323 K, by including the effect of incubation periods. For the integral method, a peculiar solution of the resulting system of differential algeb...

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Main Authors: Mourad Keddam, Peter Jurči
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Coatings
Subjects:
Online Access:https://www.mdpi.com/2079-6412/11/4/433
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spelling doaj-9a5477ce4b6d4d9e9577366e6f38dc902021-04-09T23:04:35ZengMDPI AGCoatings2079-64122021-04-011143343310.3390/coatings11040433Simulating the Growth of Dual-Phase Boride Layer on AISI M2 Steel by Two Kinetic ApproachesMourad Keddam0Peter Jurči1Laboratoire de Technologie des Matériaux, Faculté G.M. et G.P., Université des Sciences et de Technologie Houari Boumediène, Bab-Ezzouar 16111, AlgeriaFaculty of Material Sciences and Technology in Trnava, Slovak University of Technology, 91724 Trnava, SlovakiaTwo kinetic approaches (integral method and Dybkov method) have been applied for simulating the boriding kinetics of AISI M2 steel in the range of 1173 to 1323 K, by including the effect of incubation periods. For the integral method, a peculiar solution of the resulting system of differential algebraic equations (DAE) has been employed for assessing the diffusivities of boron in <i>FeB</i> and <i>Fe2B</i>. The boron activation energies in <i>FeB</i> and <i>Fe2B</i> have been deduced from both approaches and compared with the data taken from the literature. Furthermore, to experimentally extend the validity of both approaches, four additional boriding conditions obtained on the boronized samples at 1173, 1223, 1273 and 1323 K for 10 h were then used. The predicted boride layers’ thicknesses were confronted to the experimental values. Consequently, a satisfactory concordance was obtained when comparing the simulated layers’ thicknesses to the experimental values derived from the literature.https://www.mdpi.com/2079-6412/11/4/433boriding treatmentiron borideskinetics approachesdiffusionactivation energy
collection DOAJ
language English
format Article
sources DOAJ
author Mourad Keddam
Peter Jurči
spellingShingle Mourad Keddam
Peter Jurči
Simulating the Growth of Dual-Phase Boride Layer on AISI M2 Steel by Two Kinetic Approaches
Coatings
boriding treatment
iron borides
kinetics approaches
diffusion
activation energy
author_facet Mourad Keddam
Peter Jurči
author_sort Mourad Keddam
title Simulating the Growth of Dual-Phase Boride Layer on AISI M2 Steel by Two Kinetic Approaches
title_short Simulating the Growth of Dual-Phase Boride Layer on AISI M2 Steel by Two Kinetic Approaches
title_full Simulating the Growth of Dual-Phase Boride Layer on AISI M2 Steel by Two Kinetic Approaches
title_fullStr Simulating the Growth of Dual-Phase Boride Layer on AISI M2 Steel by Two Kinetic Approaches
title_full_unstemmed Simulating the Growth of Dual-Phase Boride Layer on AISI M2 Steel by Two Kinetic Approaches
title_sort simulating the growth of dual-phase boride layer on aisi m2 steel by two kinetic approaches
publisher MDPI AG
series Coatings
issn 2079-6412
publishDate 2021-04-01
description Two kinetic approaches (integral method and Dybkov method) have been applied for simulating the boriding kinetics of AISI M2 steel in the range of 1173 to 1323 K, by including the effect of incubation periods. For the integral method, a peculiar solution of the resulting system of differential algebraic equations (DAE) has been employed for assessing the diffusivities of boron in <i>FeB</i> and <i>Fe2B</i>. The boron activation energies in <i>FeB</i> and <i>Fe2B</i> have been deduced from both approaches and compared with the data taken from the literature. Furthermore, to experimentally extend the validity of both approaches, four additional boriding conditions obtained on the boronized samples at 1173, 1223, 1273 and 1323 K for 10 h were then used. The predicted boride layers’ thicknesses were confronted to the experimental values. Consequently, a satisfactory concordance was obtained when comparing the simulated layers’ thicknesses to the experimental values derived from the literature.
topic boriding treatment
iron borides
kinetics approaches
diffusion
activation energy
url https://www.mdpi.com/2079-6412/11/4/433
work_keys_str_mv AT mouradkeddam simulatingthegrowthofdualphaseboridelayeronaisim2steelbytwokineticapproaches
AT peterjurci simulatingthegrowthofdualphaseboridelayeronaisim2steelbytwokineticapproaches
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