LAPSE:2021.0296v1
Published Article

LAPSE:2021.0296v1
Improving the Inner Surface State of Thick-Walled Tubes by Heat Treatments with Internal Quenching Considering a Simulation Based Optimization
April 29, 2021
Abstract
Internal Quenching is an innovative heat treatment method for difficult to access component sections. Especially, the microstructure, as well as the residual stress state at inner surfaces, of thick-walled tubes can be adjusted with the presented flexible heat treatment process. Based on multiphysical FE-models of two different steels, a simulative optimization study, considering different internal quenching strategies, was performed in order to find the optimal cooling conditions. The focus hereby was on the adjustment of a martensitic inner surface with high compressive residual stresses. The simulatively determined optimal cooling strategies were carried out experimentally and analyzed. A good agreement of the resulting hardness and residual stresses was achieved, validating the presented Fe-model of the Internal Quenching process. The shown results also indicate that the arising inner surface state is very sensitive to the transformation behavior of the used steel. Furthermore, the presented study shows that a preliminary simulative consideration of the heat treatment process helps to evaluate significant effects, reducing the experimental effort and time.
Internal Quenching is an innovative heat treatment method for difficult to access component sections. Especially, the microstructure, as well as the residual stress state at inner surfaces, of thick-walled tubes can be adjusted with the presented flexible heat treatment process. Based on multiphysical FE-models of two different steels, a simulative optimization study, considering different internal quenching strategies, was performed in order to find the optimal cooling conditions. The focus hereby was on the adjustment of a martensitic inner surface with high compressive residual stresses. The simulatively determined optimal cooling strategies were carried out experimentally and analyzed. A good agreement of the resulting hardness and residual stresses was achieved, validating the presented Fe-model of the Internal Quenching process. The shown results also indicate that the arising inner surface state is very sensitive to the transformation behavior of the used steel. Furthermore, the presented study shows that a preliminary simulative consideration of the heat treatment process helps to evaluate significant effects, reducing the experimental effort and time.
Record ID
Keywords
finite element, heat treatment modeling, heat treatment simulation, Internal Quenching, phase transformation, residual stress, steel treatment
Subject
Suggested Citation
Mühl F, Klug M, Dietrich S, Schulze V. Improving the Inner Surface State of Thick-Walled Tubes by Heat Treatments with Internal Quenching Considering a Simulation Based Optimization. (2021). LAPSE:2021.0296v1
Author Affiliations
Mühl F: Institute for Applied Materials (IAM-WK), Karlsruhe Insitute of Technology (KIT), Engelbert-Arnold-Str. 4, 76131 Karlsruhe, Germany
Klug M: Institute for Applied Materials (IAM-WK), Karlsruhe Insitute of Technology (KIT), Engelbert-Arnold-Str. 4, 76131 Karlsruhe, Germany
Dietrich S: Institute for Applied Materials (IAM-WK), Karlsruhe Insitute of Technology (KIT), Engelbert-Arnold-Str. 4, 76131 Karlsruhe, Germany
Schulze V: Institute for Applied Materials (IAM-WK), Karlsruhe Insitute of Technology (KIT), Engelbert-Arnold-Str. 4, 76131 Karlsruhe, Germany [ORCID]
Klug M: Institute for Applied Materials (IAM-WK), Karlsruhe Insitute of Technology (KIT), Engelbert-Arnold-Str. 4, 76131 Karlsruhe, Germany
Dietrich S: Institute for Applied Materials (IAM-WK), Karlsruhe Insitute of Technology (KIT), Engelbert-Arnold-Str. 4, 76131 Karlsruhe, Germany
Schulze V: Institute for Applied Materials (IAM-WK), Karlsruhe Insitute of Technology (KIT), Engelbert-Arnold-Str. 4, 76131 Karlsruhe, Germany [ORCID]
Journal Name
Processes
Volume
8
Issue
10
Article Number
E1303
Year
2020
Publication Date
2020-10-16
ISSN
2227-9717
Version Comments
Original Submission
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PII: pr8101303, Publication Type: Journal Article
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LAPSE:2021.0296v1
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https://doi.org/10.3390/pr8101303
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[v1] (Original Submission)
Apr 29, 2021
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Apr 29, 2021
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Record Owner
Calvin Tsay
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