A Fast Method for Predicting the Mechanical Properties of Precipitation-Hardenable Aluminum Alloys

Most heat treatment simulations of precipitation-hardenable aluminum alloys are incomplete or restricted to sub-steps of the process chain. In general, the studies addressing the heat treatment of aluminum components have only provided a qualitative guidance of heat treatment, which does not match t...

Full description

Bibliographic Details
Main Authors: Anastasiya Toenjes, Axel von Hehl
Format: Article
Language:English
Published: MDPI AG 2019-01-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/9/2/147
id doaj-e6000beeab7249d29c46aa31f4bb7174
record_format Article
spelling doaj-e6000beeab7249d29c46aa31f4bb71742020-11-24T21:48:33ZengMDPI AGMetals2075-47012019-01-019214710.3390/met9020147met9020147A Fast Method for Predicting the Mechanical Properties of Precipitation-Hardenable Aluminum AlloysAnastasiya Toenjes0Axel von Hehl1Leibniz Institute for Materials Engineering IWT, University of Bremen, Badgasteiner Str. 3, 28359 Bremen, GermanyLeibniz Institute for Materials Engineering IWT, University of Bremen, Badgasteiner Str. 3, 28359 Bremen, GermanyMost heat treatment simulations of precipitation-hardenable aluminum alloys are incomplete or restricted to sub-steps of the process chain. In general, the studies addressing the heat treatment of aluminum components have only provided a qualitative guidance of heat treatment, which does not match the heat treatment that is necessary for specific parts with specific requirements. Thus, a quick and accurate simulation of the whole heat treatment process would hold great economic benefit for industrial applications in predicting suitable heat treatment processes that are able to meet the required mechanical properties of proposed novel aluminum components. In this paper, the development of a time and cost efficient method for generating such prediction models is presented by means of an example aluminum alloy EN AW-6082. During the process sub-steps of solution annealing, quenching and aging, the time-temperature correlations connected to the precipitation-hardening conditions were analyzed. The precision of the prediction model depends on the size of the material database, which should be able to be adjusted to the individual requirements of the simulation user. In order to obtain the greatest time and cost efficiency in generating such a model, a specific experimental design was developed. The results of the method development are presented and discussed.https://www.mdpi.com/2075-4701/9/2/147method developmentprecipitation-hardenable aluminum alloyscalculation of mechanical properties
collection DOAJ
language English
format Article
sources DOAJ
author Anastasiya Toenjes
Axel von Hehl
spellingShingle Anastasiya Toenjes
Axel von Hehl
A Fast Method for Predicting the Mechanical Properties of Precipitation-Hardenable Aluminum Alloys
Metals
method development
precipitation-hardenable aluminum alloys
calculation of mechanical properties
author_facet Anastasiya Toenjes
Axel von Hehl
author_sort Anastasiya Toenjes
title A Fast Method for Predicting the Mechanical Properties of Precipitation-Hardenable Aluminum Alloys
title_short A Fast Method for Predicting the Mechanical Properties of Precipitation-Hardenable Aluminum Alloys
title_full A Fast Method for Predicting the Mechanical Properties of Precipitation-Hardenable Aluminum Alloys
title_fullStr A Fast Method for Predicting the Mechanical Properties of Precipitation-Hardenable Aluminum Alloys
title_full_unstemmed A Fast Method for Predicting the Mechanical Properties of Precipitation-Hardenable Aluminum Alloys
title_sort fast method for predicting the mechanical properties of precipitation-hardenable aluminum alloys
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2019-01-01
description Most heat treatment simulations of precipitation-hardenable aluminum alloys are incomplete or restricted to sub-steps of the process chain. In general, the studies addressing the heat treatment of aluminum components have only provided a qualitative guidance of heat treatment, which does not match the heat treatment that is necessary for specific parts with specific requirements. Thus, a quick and accurate simulation of the whole heat treatment process would hold great economic benefit for industrial applications in predicting suitable heat treatment processes that are able to meet the required mechanical properties of proposed novel aluminum components. In this paper, the development of a time and cost efficient method for generating such prediction models is presented by means of an example aluminum alloy EN AW-6082. During the process sub-steps of solution annealing, quenching and aging, the time-temperature correlations connected to the precipitation-hardening conditions were analyzed. The precision of the prediction model depends on the size of the material database, which should be able to be adjusted to the individual requirements of the simulation user. In order to obtain the greatest time and cost efficiency in generating such a model, a specific experimental design was developed. The results of the method development are presented and discussed.
topic method development
precipitation-hardenable aluminum alloys
calculation of mechanical properties
url https://www.mdpi.com/2075-4701/9/2/147
work_keys_str_mv AT anastasiyatoenjes afastmethodforpredictingthemechanicalpropertiesofprecipitationhardenablealuminumalloys
AT axelvonhehl afastmethodforpredictingthemechanicalpropertiesofprecipitationhardenablealuminumalloys
AT anastasiyatoenjes fastmethodforpredictingthemechanicalpropertiesofprecipitationhardenablealuminumalloys
AT axelvonhehl fastmethodforpredictingthemechanicalpropertiesofprecipitationhardenablealuminumalloys
_version_ 1725891667845709824