Calibration of Fiber Orientation Simulations for LFT—A New Approach

Short fiber reinforced thermoplastics (SFT) are extensively used due to their excellent mechanical properties and low processing costs. Long fiber reinforced thermoplastics (LFT) show an even more interesting property profile and are increasingly used for structural parts. However, their processing...

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Main Authors: Fabian Willems, Philip Reitinger, Christian Bonten
Format: Article
Language:English
Published: MDPI AG 2020-10-01
Series:Journal of Composites Science
Subjects:
Online Access:https://www.mdpi.com/2504-477X/4/4/163
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spelling doaj-8e93d8969b3e4c0590cb7bdbacedfbcb2020-11-25T04:08:38ZengMDPI AGJournal of Composites Science2504-477X2020-10-01416316310.3390/jcs4040163Calibration of Fiber Orientation Simulations for LFT—A New ApproachFabian Willems0Philip Reitinger1Christian Bonten2Institut für Kunststofftechnik (IKT), University of Stuttgart, Pfaffenwaldring 32, 70569 Stuttgart, GermanyInstitut für Kunststofftechnik (IKT), University of Stuttgart, Pfaffenwaldring 32, 70569 Stuttgart, GermanyInstitut für Kunststofftechnik (IKT), University of Stuttgart, Pfaffenwaldring 32, 70569 Stuttgart, GermanyShort fiber reinforced thermoplastics (SFT) are extensively used due to their excellent mechanical properties and low processing costs. Long fiber reinforced thermoplastics (LFT) show an even more interesting property profile and are increasingly used for structural parts. However, their processing by injection molding is not as simple as for SFT, and their anisotropic properties resulting from the fiber microstructure (fiber orientation, length, and concentration) pose a challenge with regard to the engineering design process. To reliably predict the structural mechanical properties of fiber reinforced thermoplastics by means of micromechanical models, it is also necessary to reliable predict the fiber microstructure. Therefore, it is crucial to calibrate the underlying prediction models, such as the fiber orientation model, within the process simulation. In general, these models may be adjusted manually, but this is usually ineffective and time-consuming. To overcome this challenge, a new calibration method was developed to automatically calibrate the fiber orientation model parameters of the injection molding simulation by means of optimization methods. This optimization routine is based on experimentally determined fiber orientation distributions and leads to optimized parameters for the fiber orientation prediction model within a few minutes. To better understand the influence of the model parameters, different versions of the fiber orientation model, as well as process and material influences on the resulting fiber orientation distribution, were investigated. Finally, the developed approach to calibrate the fiber orientation model was compared with a classical approach, a direct optimization of the whole process simulation. Thereby, the new optimization approach shows a calculation time reduced by the factor 15 with comparable error variance.https://www.mdpi.com/2504-477X/4/4/163lightweight designlong fiber reinforced thermoplasticsprocess simulationfiber microstructureparameter-optimizationfiber orientation models
collection DOAJ
language English
format Article
sources DOAJ
author Fabian Willems
Philip Reitinger
Christian Bonten
spellingShingle Fabian Willems
Philip Reitinger
Christian Bonten
Calibration of Fiber Orientation Simulations for LFT—A New Approach
Journal of Composites Science
lightweight design
long fiber reinforced thermoplastics
process simulation
fiber microstructure
parameter-optimization
fiber orientation models
author_facet Fabian Willems
Philip Reitinger
Christian Bonten
author_sort Fabian Willems
title Calibration of Fiber Orientation Simulations for LFT—A New Approach
title_short Calibration of Fiber Orientation Simulations for LFT—A New Approach
title_full Calibration of Fiber Orientation Simulations for LFT—A New Approach
title_fullStr Calibration of Fiber Orientation Simulations for LFT—A New Approach
title_full_unstemmed Calibration of Fiber Orientation Simulations for LFT—A New Approach
title_sort calibration of fiber orientation simulations for lft—a new approach
publisher MDPI AG
series Journal of Composites Science
issn 2504-477X
publishDate 2020-10-01
description Short fiber reinforced thermoplastics (SFT) are extensively used due to their excellent mechanical properties and low processing costs. Long fiber reinforced thermoplastics (LFT) show an even more interesting property profile and are increasingly used for structural parts. However, their processing by injection molding is not as simple as for SFT, and their anisotropic properties resulting from the fiber microstructure (fiber orientation, length, and concentration) pose a challenge with regard to the engineering design process. To reliably predict the structural mechanical properties of fiber reinforced thermoplastics by means of micromechanical models, it is also necessary to reliable predict the fiber microstructure. Therefore, it is crucial to calibrate the underlying prediction models, such as the fiber orientation model, within the process simulation. In general, these models may be adjusted manually, but this is usually ineffective and time-consuming. To overcome this challenge, a new calibration method was developed to automatically calibrate the fiber orientation model parameters of the injection molding simulation by means of optimization methods. This optimization routine is based on experimentally determined fiber orientation distributions and leads to optimized parameters for the fiber orientation prediction model within a few minutes. To better understand the influence of the model parameters, different versions of the fiber orientation model, as well as process and material influences on the resulting fiber orientation distribution, were investigated. Finally, the developed approach to calibrate the fiber orientation model was compared with a classical approach, a direct optimization of the whole process simulation. Thereby, the new optimization approach shows a calculation time reduced by the factor 15 with comparable error variance.
topic lightweight design
long fiber reinforced thermoplastics
process simulation
fiber microstructure
parameter-optimization
fiber orientation models
url https://www.mdpi.com/2504-477X/4/4/163
work_keys_str_mv AT fabianwillems calibrationoffiberorientationsimulationsforlftanewapproach
AT philipreitinger calibrationoffiberorientationsimulationsforlftanewapproach
AT christianbonten calibrationoffiberorientationsimulationsforlftanewapproach
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