Algorithm Scheme to Simulate the Distortions during Gas Quenching in a Single-Piece Flow Technology

Low-pressure carburizing followed by high-pressure quenching in single-piece flow technology has shown good results in avoiding distortions. For better control of specimen quality in these processes, developing numerical simulations can be beneficial. However, there is no commercial software able to...

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Main Authors: Jacek Sawicki, Krzysztof Krupanek, Wojciech Stachurski, Victoria Buzalski
Format: Article
Language:English
Published: MDPI AG 2020-07-01
Series:Coatings
Subjects:
Online Access:https://www.mdpi.com/2079-6412/10/7/694
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spelling doaj-6f1251f92f3e45fe90b0b5eb3bf0098a2020-11-25T03:01:47ZengMDPI AGCoatings2079-64122020-07-011069469410.3390/coatings10070694Algorithm Scheme to Simulate the Distortions during Gas Quenching in a Single-Piece Flow TechnologyJacek Sawicki0Krzysztof Krupanek1Wojciech Stachurski2Victoria Buzalski3Institute of Materials Science and Engineering, Lodz University of Technology, 1/15 Stefanowski Street, 90-924 Lodz, PolandInstitute of Materials Science and Engineering, Lodz University of Technology, 1/15 Stefanowski Street, 90-924 Lodz, PolandInstitute of Machine Tools and Production Engineering, Lodz University of Technology, 1/15 Stefanowski Street, 90-924 Lodz, PolandEngineering and Exact Sciences, State University of Western Parana, 645 Rua da Faculdade, 85903-000 Toledo, BrazilLow-pressure carburizing followed by high-pressure quenching in single-piece flow technology has shown good results in avoiding distortions. For better control of specimen quality in these processes, developing numerical simulations can be beneficial. However, there is no commercial software able to simulate distortion formation during gas quenching that considers the complex fluid flow field and heat transfer coefficient as a function of space and time. For this reason, this paper proposes an algorithm scheme that aims for more refined results. Based on the physical phenomena involved, a numerical scheme was divided into five modules: diffusion module, fluid module, thermal module, phase transformation module, and mechanical module. In order to validate the simulation, the results were compared with the experimental data. The outcomes showed that the average difference between the numerical and experimental data for distortions was 1.7% for the outer diameter and 12% for the inner diameter of the steel element. Numerical simulation also showed the differences between deformations in the inner and outer diameters as they appear in the experimental data. Therefore, a numerical model capable of simulating distortions in the steel elements during high-pressure gas quenching after low-pressure carburizing using a single-piece flow technology was obtained, whereupon the complex fluid flow and variation of the heat transfer coefficient was considered.https://www.mdpi.com/2079-6412/10/7/694quenchingheat treatmentnumerical simulation
collection DOAJ
language English
format Article
sources DOAJ
author Jacek Sawicki
Krzysztof Krupanek
Wojciech Stachurski
Victoria Buzalski
spellingShingle Jacek Sawicki
Krzysztof Krupanek
Wojciech Stachurski
Victoria Buzalski
Algorithm Scheme to Simulate the Distortions during Gas Quenching in a Single-Piece Flow Technology
Coatings
quenching
heat treatment
numerical simulation
author_facet Jacek Sawicki
Krzysztof Krupanek
Wojciech Stachurski
Victoria Buzalski
author_sort Jacek Sawicki
title Algorithm Scheme to Simulate the Distortions during Gas Quenching in a Single-Piece Flow Technology
title_short Algorithm Scheme to Simulate the Distortions during Gas Quenching in a Single-Piece Flow Technology
title_full Algorithm Scheme to Simulate the Distortions during Gas Quenching in a Single-Piece Flow Technology
title_fullStr Algorithm Scheme to Simulate the Distortions during Gas Quenching in a Single-Piece Flow Technology
title_full_unstemmed Algorithm Scheme to Simulate the Distortions during Gas Quenching in a Single-Piece Flow Technology
title_sort algorithm scheme to simulate the distortions during gas quenching in a single-piece flow technology
publisher MDPI AG
series Coatings
issn 2079-6412
publishDate 2020-07-01
description Low-pressure carburizing followed by high-pressure quenching in single-piece flow technology has shown good results in avoiding distortions. For better control of specimen quality in these processes, developing numerical simulations can be beneficial. However, there is no commercial software able to simulate distortion formation during gas quenching that considers the complex fluid flow field and heat transfer coefficient as a function of space and time. For this reason, this paper proposes an algorithm scheme that aims for more refined results. Based on the physical phenomena involved, a numerical scheme was divided into five modules: diffusion module, fluid module, thermal module, phase transformation module, and mechanical module. In order to validate the simulation, the results were compared with the experimental data. The outcomes showed that the average difference between the numerical and experimental data for distortions was 1.7% for the outer diameter and 12% for the inner diameter of the steel element. Numerical simulation also showed the differences between deformations in the inner and outer diameters as they appear in the experimental data. Therefore, a numerical model capable of simulating distortions in the steel elements during high-pressure gas quenching after low-pressure carburizing using a single-piece flow technology was obtained, whereupon the complex fluid flow and variation of the heat transfer coefficient was considered.
topic quenching
heat treatment
numerical simulation
url https://www.mdpi.com/2079-6412/10/7/694
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AT wojciechstachurski algorithmschemetosimulatethedistortionsduringgasquenchinginasinglepieceflowtechnology
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