Delamination Buckling of Composite Materials:
Gespeichert in:
1. Verfasser: | |
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Format: | Elektronisch E-Book |
Sprache: | English |
Veröffentlicht: |
Dordrecht
Springer Netherlands
1988
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Schriftenreihe: | Mechanics of Elastic Stability
14 |
Schlagworte: | |
Online-Zugang: | Volltext |
Beschreibung: | LIOn Delamination of Laminated Composites (a) Fiber-Reinforced Composites Considerable technological advances in the production of high-strength fibers (graphite, boron, etc.) have led to a wide use of light high-strength composite materials (graphite epoxy, boron-epoxy, etc.). It is expedient, to make thin walled composite rods, plates, and shells from such materials. Plates can be made by bonding a set of unidirectional thin fiber layers, Fig.l.l. Such plates are orthotropic, as a rule. A random short-fiber composite is shown in Fig. 1.2. Fiber-reinforced composites are widely used in thin-walled aircraft structures because of their specific high strength. For example, the graphite-epoxy composite is characterized by a unidirectional tensile strength of 1.4 GPa while the density is 1.6 Mg/rrt? . For comparison, we may take a steel (steel 4340) whose corresponding properties are identified by values like 1.2 GPa and 7.8 Mg/rrt? . 1. INTRODUCTION Figure 1.1 2 1.1. On Delamination of Laminated Composites Figure 1.2 3 1. INTRODUCTION It is characteristic for laminated plastic material to possess a fairly low bonding. Therefore, low-velocity impacts and defects in manufacturing lead to local delamination. (b) Linear Problems of Delamination Buckling Delamination can significantly reduce the compressive strength and stiffness of the laminate. Local delamination can be considered as a crack in the bond. Under buckling there appears a high interlaminate stress at the crack edge that leads to a spreading of the crack. Delamination growth can lead to structural instability |
Beschreibung: | 1 Online-Ressource (X, 96 p) |
ISBN: | 9789400928190 9789401077699 |
ISSN: | 0924-2112 |
DOI: | 10.1007/978-94-009-2819-0 |
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Datensatz im Suchindex
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any_adam_object | |
author | Kachanov, L. M. |
author_facet | Kachanov, L. M. |
author_role | aut |
author_sort | Kachanov, L. M. |
author_variant | l m k lm lmk |
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dewey-ones | 531 - Classical mechanics |
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discipline | Physik |
doi_str_mv | 10.1007/978-94-009-2819-0 |
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illustrated | Not Illustrated |
indexdate | 2024-07-10T01:20:56Z |
institution | BVB |
isbn | 9789400928190 9789401077699 |
issn | 0924-2112 |
language | English |
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series2 | Mechanics of Elastic Stability |
spelling | Kachanov, L. M. Verfasser aut Delamination Buckling of Composite Materials by L. M. Kachanov Dordrecht Springer Netherlands 1988 1 Online-Ressource (X, 96 p) txt rdacontent c rdamedia cr rdacarrier Mechanics of Elastic Stability 14 0924-2112 LIOn Delamination of Laminated Composites (a) Fiber-Reinforced Composites Considerable technological advances in the production of high-strength fibers (graphite, boron, etc.) have led to a wide use of light high-strength composite materials (graphite epoxy, boron-epoxy, etc.). It is expedient, to make thin walled composite rods, plates, and shells from such materials. Plates can be made by bonding a set of unidirectional thin fiber layers, Fig.l.l. Such plates are orthotropic, as a rule. A random short-fiber composite is shown in Fig. 1.2. Fiber-reinforced composites are widely used in thin-walled aircraft structures because of their specific high strength. For example, the graphite-epoxy composite is characterized by a unidirectional tensile strength of 1.4 GPa while the density is 1.6 Mg/rrt? . For comparison, we may take a steel (steel 4340) whose corresponding properties are identified by values like 1.2 GPa and 7.8 Mg/rrt? . 1. INTRODUCTION Figure 1.1 2 1.1. On Delamination of Laminated Composites Figure 1.2 3 1. INTRODUCTION It is characteristic for laminated plastic material to possess a fairly low bonding. Therefore, low-velocity impacts and defects in manufacturing lead to local delamination. (b) Linear Problems of Delamination Buckling Delamination can significantly reduce the compressive strength and stiffness of the laminate. Local delamination can be considered as a crack in the bond. Under buckling there appears a high interlaminate stress at the crack edge that leads to a spreading of the crack. Delamination growth can lead to structural instability Physics Mechanics Engineering Surfaces (Physics) Automotive Engineering Characterization and Evaluation of Materials Ingenieurwissenschaften https://doi.org/10.1007/978-94-009-2819-0 Verlag Volltext |
spellingShingle | Kachanov, L. M. Delamination Buckling of Composite Materials Physics Mechanics Engineering Surfaces (Physics) Automotive Engineering Characterization and Evaluation of Materials Ingenieurwissenschaften |
title | Delamination Buckling of Composite Materials |
title_auth | Delamination Buckling of Composite Materials |
title_exact_search | Delamination Buckling of Composite Materials |
title_full | Delamination Buckling of Composite Materials by L. M. Kachanov |
title_fullStr | Delamination Buckling of Composite Materials by L. M. Kachanov |
title_full_unstemmed | Delamination Buckling of Composite Materials by L. M. Kachanov |
title_short | Delamination Buckling of Composite Materials |
title_sort | delamination buckling of composite materials |
topic | Physics Mechanics Engineering Surfaces (Physics) Automotive Engineering Characterization and Evaluation of Materials Ingenieurwissenschaften |
topic_facet | Physics Mechanics Engineering Surfaces (Physics) Automotive Engineering Characterization and Evaluation of Materials Ingenieurwissenschaften |
url | https://doi.org/10.1007/978-94-009-2819-0 |
work_keys_str_mv | AT kachanovlm delaminationbucklingofcompositematerials |