Loading [MathJax]/extensions/tex2jax.js

A Case-Based Reasoning Approach to Model Manufacturing Constraints for Impact Extrusion

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autorschaft

  • Kevin Herrmann
  • Eduard Ortlieb
  • Hendrik Wester
  • Paul Christoph Gembarski
  • Bernd Arno Behrens
  • Roland Lachmayer

Details

OriginalspracheEnglisch
FachzeitschriftAdvanced engineering materials
PublikationsstatusElektronisch veröffentlicht (E-Pub) - 26 März 2025

Abstract

This study introduces a hybrid modeling approach for manufacturing processes, combining a constraint-based process model with case-based reasoning (CBR). The constraint-based model formalizes geometric transformations, material behaviors, and manufacturing constraints through explicit mathematical expressions. CBR integrates knowledge from simulations and experimental data, enabling the representation of complex and nonlinear relationships without full formalization. The approach supports manufacturability analyses during product design by creating an adaptive modeling environment. Application to a hybrid extrusion process demonstrates its effectiveness in modeling the deformation and stress behavior of the joining zone in multimaterial components. Key results reveal that counter pressure reduces tensile stresses in the joining zone, improving bond integrity, while changes in shoulder angle and tapering influence geometry and stress distribution. Simulation data integrated into CBR identifies similar scenarios and predicts manufacturability for new configurations. This method enhances the alignment of design decisions with manufacturing constraints, reducing development time and improving product quality. Future work aims to extend this approach to additional processes in the tailored forming chain, providing a comprehensive framework for manufacturing knowledge.

ASJC Scopus Sachgebiete

Zitieren

A Case-Based Reasoning Approach to Model Manufacturing Constraints for Impact Extrusion. / Herrmann, Kevin; Ortlieb, Eduard; Wester, Hendrik et al.
in: Advanced engineering materials, 26.03.2025.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Herrmann, K., Ortlieb, E., Wester, H., Gembarski, P. C., Behrens, B. A., & Lachmayer, R. (2025). A Case-Based Reasoning Approach to Model Manufacturing Constraints for Impact Extrusion. Advanced engineering materials. Vorabveröffentlichung online. https://doi.org/10.1002/adem.202401359
Herrmann K, Ortlieb E, Wester H, Gembarski PC, Behrens BA, Lachmayer R. A Case-Based Reasoning Approach to Model Manufacturing Constraints for Impact Extrusion. Advanced engineering materials. 2025 Mär 26. Epub 2025 Mär 26. doi: 10.1002/adem.202401359
Download
@article{5ab5bb68fcfd474e80c4db03adbda0d1,
title = "A Case-Based Reasoning Approach to Model Manufacturing Constraints for Impact Extrusion",
abstract = "This study introduces a hybrid modeling approach for manufacturing processes, combining a constraint-based process model with case-based reasoning (CBR). The constraint-based model formalizes geometric transformations, material behaviors, and manufacturing constraints through explicit mathematical expressions. CBR integrates knowledge from simulations and experimental data, enabling the representation of complex and nonlinear relationships without full formalization. The approach supports manufacturability analyses during product design by creating an adaptive modeling environment. Application to a hybrid extrusion process demonstrates its effectiveness in modeling the deformation and stress behavior of the joining zone in multimaterial components. Key results reveal that counter pressure reduces tensile stresses in the joining zone, improving bond integrity, while changes in shoulder angle and tapering influence geometry and stress distribution. Simulation data integrated into CBR identifies similar scenarios and predicts manufacturability for new configurations. This method enhances the alignment of design decisions with manufacturing constraints, reducing development time and improving product quality. Future work aims to extend this approach to additional processes in the tailored forming chain, providing a comprehensive framework for manufacturing knowledge.",
keywords = "case-based reasoning, constraints satisfaction problems, designs for manufacturing, impact extrusions, tailored forming",
author = "Kevin Herrmann and Eduard Ortlieb and Hendrik Wester and Gembarski, {Paul Christoph} and Behrens, {Bernd Arno} and Roland Lachmayer",
note = "Publisher Copyright: {\textcopyright} 2025 The Author(s). Advanced Engineering Materials published by Wiley-VCH GmbH.",
year = "2025",
month = mar,
day = "26",
doi = "10.1002/adem.202401359",
language = "English",
journal = "Advanced engineering materials",
issn = "1438-1656",
publisher = "Wiley-VCH Verlag",

}

Download

TY - JOUR

T1 - A Case-Based Reasoning Approach to Model Manufacturing Constraints for Impact Extrusion

AU - Herrmann, Kevin

AU - Ortlieb, Eduard

AU - Wester, Hendrik

AU - Gembarski, Paul Christoph

AU - Behrens, Bernd Arno

AU - Lachmayer, Roland

N1 - Publisher Copyright: © 2025 The Author(s). Advanced Engineering Materials published by Wiley-VCH GmbH.

PY - 2025/3/26

Y1 - 2025/3/26

N2 - This study introduces a hybrid modeling approach for manufacturing processes, combining a constraint-based process model with case-based reasoning (CBR). The constraint-based model formalizes geometric transformations, material behaviors, and manufacturing constraints through explicit mathematical expressions. CBR integrates knowledge from simulations and experimental data, enabling the representation of complex and nonlinear relationships without full formalization. The approach supports manufacturability analyses during product design by creating an adaptive modeling environment. Application to a hybrid extrusion process demonstrates its effectiveness in modeling the deformation and stress behavior of the joining zone in multimaterial components. Key results reveal that counter pressure reduces tensile stresses in the joining zone, improving bond integrity, while changes in shoulder angle and tapering influence geometry and stress distribution. Simulation data integrated into CBR identifies similar scenarios and predicts manufacturability for new configurations. This method enhances the alignment of design decisions with manufacturing constraints, reducing development time and improving product quality. Future work aims to extend this approach to additional processes in the tailored forming chain, providing a comprehensive framework for manufacturing knowledge.

AB - This study introduces a hybrid modeling approach for manufacturing processes, combining a constraint-based process model with case-based reasoning (CBR). The constraint-based model formalizes geometric transformations, material behaviors, and manufacturing constraints through explicit mathematical expressions. CBR integrates knowledge from simulations and experimental data, enabling the representation of complex and nonlinear relationships without full formalization. The approach supports manufacturability analyses during product design by creating an adaptive modeling environment. Application to a hybrid extrusion process demonstrates its effectiveness in modeling the deformation and stress behavior of the joining zone in multimaterial components. Key results reveal that counter pressure reduces tensile stresses in the joining zone, improving bond integrity, while changes in shoulder angle and tapering influence geometry and stress distribution. Simulation data integrated into CBR identifies similar scenarios and predicts manufacturability for new configurations. This method enhances the alignment of design decisions with manufacturing constraints, reducing development time and improving product quality. Future work aims to extend this approach to additional processes in the tailored forming chain, providing a comprehensive framework for manufacturing knowledge.

KW - case-based reasoning

KW - constraints satisfaction problems

KW - designs for manufacturing

KW - impact extrusions

KW - tailored forming

UR - http://www.scopus.com/inward/record.url?scp=105001024237&partnerID=8YFLogxK

U2 - 10.1002/adem.202401359

DO - 10.1002/adem.202401359

M3 - Article

AN - SCOPUS:105001024237

JO - Advanced engineering materials

JF - Advanced engineering materials

SN - 1438-1656

ER -

Von denselben Autoren