FROM THE INTRODUCTIONVehicle crashworthiness has been improving in recent years with attention mainly directed towards reducing the impact of the crash on the passengers. Effort has been spent in experimental research and in establishing safe theoretical design criteria on the mechanics of crumpling, providing to the engineers the ability to design vehicle structures so that the maximum amount of energy will dissipate while the material surrounding the passenger compartment is deformed, thus protecting the people inside. During the last decade the attention given to crashworthiness and crash energy management has been centered on composite structures. The main advantages of fibre reinforced composite materials over more conventional isotropic materials, are the very high specific strengths and specific stiffness which can be achieved. Moreover, with composites, the designer can vary the type of fibre, matrix and fibre orientation to produce composites with proved material properties. Besides the perspective of reduced weight, design flexibility and low fabrication costs, composite materials offer a considerable potential for lightweight energy absorbing structures; these facts attract the attention of the automotive and aircraft industry owing to the increased use of composite materials in various applications, such as frame rails used in the apron construction of a car body and the subfloor of an aircraft, replacing the conventional materials used. Our monograph is intended to provide an introduction to this relatively new topic of structural crashworthiness for professional engineers. It will introduce them to terms and concepts of it and acquaint them with some sources of literature about it. We believe that our survey constitutes a reasonably well-balanced synopsis of the topic.
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Crashworthiness of Composite Thin-Walled Structural Components provides an in-depth, illustrated survey of both the technology and applications of this growing field.
Preface Introduction Vehicle Crashworthiness2.1 Aspects of Crashworthiness2.2 Use of Composite Materials in Crashworthiness ApplicationsFailure Mechanisms of Composites3.1 Notation3.2 Failure Modes3.3 Failure under Several Loading Conditions3.4 Material Testing3.5 Failure Criteria3.6 Numerical SimulationEnergy Absorption Capability of Thin-Walled Composite Structural Components4.1 Definition4.2 Factors Affecting the Energy Absorption Capability4.3 Failure Mechanisms/Mechanical Response4.4 Predictive Techniques4.5 Quantitative DataCircular Tubes5.1 Notation5.2 General5.3 Axial Collapse: Static and Dynamic5.4 BendingSquare-Rectangular Tubes6.1 Notation6.2 General6.3 Axial Collapse: Static and Dynamic6.4 BendingCircular Frusta7.1 Notation7.2 General7.3 Axial Collapse: Static and DynamicSquare Frusta8.1 Notation8.2 General8.3 Axial Collapse: Static an DynamicAutomotive Sections9.1 Notation9.2 General9.3 Axial Collapse: Static and Dynamic9.4 BendingClassification of Macro- and Microfailure Modes and Quantitative Data10.1 Common Defects in the Processing of Composite Materials10.2 Common Defects in Loaded Composite Thin-Walled StructuresReferencesSubject IndexAuthor Index
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Produktdetaljer
ISBN
9781566766357
Publisert
1998-08-18
Utgiver
Vendor
CRC Press Inc
Vekt
660 gr
Høyde
234 mm
Bredde
156 mm
Aldersnivå
UU, 05
Språk
Product language
Engelsk
Format
Product format
Innbundet
Antall sider
270