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Published in: Mechanics of Composite Materials 2/2023

20-04-2023

Analysis and Modeling of Semi-Open Thermoplastic Honeycomb Core Structures for Mechanical Simulation with Representative Volume Elements

Authors: H. Rusch, A. Horn, H. Altenbach

Published in: Mechanics of Composite Materials | Issue 2/2023

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Abstract

Due to the need for alternative materials for the realization of lightweight structures, the analysis of sandwich structures that have a semi-open thermoplastic honeycomb core as an internal support structure is of great technical and scientific interest. Sandwich components with a honeycomb-structured core layer between two continuous fiber-reinforced face sheets exhibit maximum weight-specific stiffnesses and strengths. The folded thermoplastic honeycomb cores have some characteristic properties not found in conventional honeycomb cores due to their special production, which causes the semi-open structure. As a result of the folding process, the cell walls of the honeycombs are not joined together in the folding direction, as would be the case, for example, with glued or expanded honeycombs. This specificity has a great influence on the structural mechanical behavior of the honeycomb. To characterize the mechanical material properties, one possibility is to examine the honeycomb structure based on data obtained by the computed tomography method and, building on this, to analyze these properties in more detail by means of modeling a representative volume element that reflects the cell geometry of the honeycomb core as closely as possible. The aim of this approach is to determine effective material parameters that can be applied to mechanical simulation using the finite element method. The validation of these characteristic values was carried out based on results that can be obtained through standardized, mechanical, quasi-static experiments.

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Literature
1.
go back to reference I. Verpoest and J. Pflug, Half Closed Thermoplastic Honeycomb, Their Production Process and Equipment to Produce”. AT DE FR GB IT Patent EP 1 824 667 B1, 21. 07. (2010). I. Verpoest and J. Pflug, Half Closed Thermoplastic Honeycomb, Their Production Process and Equipment to Produce”. AT DE FR GB IT Patent EP 1 824 667 B1, 21. 07. (2010).
2.
go back to reference H. Altenbach, J. Altenbach, and W. Kissing, Mechanics of Composite Structural Elements, 2nd ed., Springer Nature Singapore Pte. Ltd. (2018). H. Altenbach, J. Altenbach, and W. Kissing, Mechanics of Composite Structural Elements, 2nd ed., Springer Nature Singapore Pte. Ltd. (2018).
3.
go back to reference D. Gross, W. Hauger, und P. Wriggers, Technische Mechanik 4 - Hydromechanik, Elemente der höheren Mechanik, Numerische Methoden, Darmstadt: Springer Vieweg (2014). D. Gross, W. Hauger, und P. Wriggers, Technische Mechanik 4 - Hydromechanik, Elemente der höheren Mechanik, Numerische Methoden, Darmstadt: Springer Vieweg (2014).
4.
go back to reference R. Kienzler und R. Schröder, Einführung in die Höhere Festigkeitslehre, Bremen: Springer Vieweg (2019). R. Kienzler und R. Schröder, Einführung in die Höhere Festigkeitslehre, Bremen: Springer Vieweg (2019).
5.
go back to reference J. Hiller, S. Kasperl, U. Hilpert, und M. Bartscher, “Koordinatenmessung mit industrieller Röntgen-Computertomografie,” Technisches Messen, 74, No. 11, 553-564 (2007)CrossRef J. Hiller, S. Kasperl, U. Hilpert, und M. Bartscher, “Koordinatenmessung mit industrieller Röntgen-Computertomografie,” Technisches Messen, 74, No. 11, 553-564 (2007)CrossRef
6.
go back to reference L. Gibson and M. Ashby, Cellular Solids — Structure and Properties, Cambridge: Cambridge University Press (1997).CrossRef L. Gibson and M. Ashby, Cellular Solids — Structure and Properties, Cambridge: Cambridge University Press (1997).CrossRef
7.
go back to reference V. G. Kouznetsova, Computational Homogenization for The Multi-Scale Analysis of Multi-Phase Materials, Technische Universiteit Eindhoven (2002). V. G. Kouznetsova, Computational Homogenization for The Multi-Scale Analysis of Multi-Phase Materials, Technische Universiteit Eindhoven (2002).
8.
go back to reference Y. Rémond, S. Ahzi, M. Baniassadi, and H. Garmestani, Applied RVE Reconstruction and Homogenization of Heterogeneous Materials, London: ISTE Ltd. (2016).CrossRef Y. Rémond, S. Ahzi, M. Baniassadi, and H. Garmestani, Applied RVE Reconstruction and Homogenization of Heterogeneous Materials, London: ISTE Ltd. (2016).CrossRef
9.
go back to reference R. Hill, “Elastic properties of reinforced solids: Some theoretical principles,” J. Mech. and Physics of Solids, 11, No. 5, 357-372 (1963).CrossRef R. Hill, “Elastic properties of reinforced solids: Some theoretical principles,” J. Mech. and Physics of Solids, 11, No. 5, 357-372 (1963).CrossRef
10.
go back to reference O. van der Sluis, P. J. G. Schreurs, W. A. M. Brekelmans, and H. E. H. Meijer, “Overall behaviour of heterogeneous elastoviscoplastic materials: effect of microstructural modelling,” Mech. Mater., No. 32, 449-462 (2000). O. van der Sluis, P. J. G. Schreurs, W. A. M. Brekelmans, and H. E. H. Meijer, “Overall behaviour of heterogeneous elastoviscoplastic materials: effect of microstructural modelling,” Mech. Mater., No. 32, 449-462 (2000).
11.
go back to reference K. Terada and N. Kikuchi, “A class of general algorithms for multi-scale analyses of heterogenous media,” Computer Methods in Appl. Mech. and Eng., No. 190, 5427-5464 (2000). K. Terada and N. Kikuchi, “A class of general algorithms for multi-scale analyses of heterogenous media,” Computer Methods in Appl. Mech. and Eng., No. 190, 5427-5464 (2000).
12.
go back to reference N. Goldberg, H. Donner, und J. Ihlemann, “Evaluation of hyperelastic models for unidirectional short fibre reinforced materials using a representative volume element with refined boundary conditions,” Technische Mechanik, 2, No. 35 (2014). N. Goldberg, H. Donner, und J. Ihlemann, “Evaluation of hyperelastic models for unidirectional short fibre reinforced materials using a representative volume element with refined boundary conditions,” Technische Mechanik, 2, No. 35 (2014).
13.
go back to reference J. C. Michel, H. Moulinec, and P. Suquet, “Effective properties of composite materials with periodic microstructure: a computational approach,” Computer Methods in Appl. Mech. and Eng., No. 172, 109-143 (1998). J. C. Michel, H. Moulinec, and P. Suquet, “Effective properties of composite materials with periodic microstructure: a computational approach,” Computer Methods in Appl. Mech. and Eng., No. 172, 109-143 (1998).
14.
go back to reference H. Donner, FEM-basierte Modellierung stark anisotroper Hybridcord-Elastomer-Verbunde, Technische Universität Chemnitz: Dissertation an der Fakultät für Maschinenbau (2017). H. Donner, FEM-basierte Modellierung stark anisotroper Hybridcord-Elastomer-Verbunde, Technische Universität Chemnitz: Dissertation an der Fakultät für Maschinenbau (2017).
15.
go back to reference E. Nast, “Materialparameter für Sandwichkonstruktionen,” Technische Mechanik, Bd. Sonderheft, 55-62 (1997). E. Nast, “Materialparameter für Sandwichkonstruktionen,” Technische Mechanik, Bd. Sonderheft, 55-62 (1997).
16.
go back to reference T. Oesch, In-Situ Röntgencompuertomographie für Mechanische, Thermische und Hydraulische Prozesse (2019). T. Oesch, In-Situ Röntgencompuertomographie für Mechanische, Thermische und Hydraulische Prozesse (2019).
17.
go back to reference E. Baur, G. Harsch, und M. Moneke, Werkstoff-Führer Kunststoffe - Eigenschaften - Prüfungen - Kennwerte, München: Hanser (2019).CrossRef E. Baur, G. Harsch, und M. Moneke, Werkstoff-Führer Kunststoffe - Eigenschaften - Prüfungen - Kennwerte, München: Hanser (2019).CrossRef
18.
go back to reference H. Ijaz, W. Saleem, M. Zain-ul-Abdein, T. Mabrouki, S. Rubaiee, und A. Salmeen Bin Maahfouz, Finite element analysis of bend test of sandwich structures using strain energy based homogenisation method, Research Article: Hindawi Publishing Corporation (2017). H. Ijaz, W. Saleem, M. Zain-ul-Abdein, T. Mabrouki, S. Rubaiee, und A. Salmeen Bin Maahfouz, Finite element analysis of bend test of sandwich structures using strain energy based homogenisation method, Research Article: Hindawi Publishing Corporation (2017).
Metadata
Title
Analysis and Modeling of Semi-Open Thermoplastic Honeycomb Core Structures for Mechanical Simulation with Representative Volume Elements
Authors
H. Rusch
A. Horn
H. Altenbach
Publication date
20-04-2023
Publisher
Springer US
Published in
Mechanics of Composite Materials / Issue 2/2023
Print ISSN: 0191-5665
Electronic ISSN: 1573-8922
DOI
https://doi.org/10.1007/s11029-023-10102-0

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