Riveted Lap Joints in Aircraft Fuselage : Design, Analysis and Properties
Fatigue of the pressurized fuselages of transport aircraft is a significant problem all builders and users of aircraft have to cope with for reasons associated with assuring a sufficient lifetime and safety, and formulating adequate inspection procedures. These aspects are all addressed in various f...
Gardado en:
| Auteurs principaux: | , |
|---|---|
| Formato: | Livre numérique |
| Idioma: | Anglais |
| Publicado: |
Dordrecht :
Springer Netherlands
[20..].
Cham : Springer Nature |
| Edición: | 1st ed. 2012. |
| Series: | Solid Mechanics and Its Applications
189 |
| Acceso en liña: | Accès sur la plateforme de l'éditeur Accès sur la plateforme Istex Accès Université d'Orléans Accès INSA CVL |
| Nota: |
Archives Springer e-books (Licence nationale) Archives Springer e-books (Licence nationale) |
| Autres localisations: | Voir dans le Sudoc |
| Edition sous un autre format: | • Riveted Lap Joints in Aircraft Fuselage, Texte imprimé, 9789400742819 • Riveted Lap Joints in Aircraft Fuselage, Texte imprimé, 9789400742819 • Riveted Lap Joints in Aircraft Fuselage, Texte imprimé, 9789400742833 • Riveted Lap Joints in Aircraft Fuselage, Texte imprimé, 9789400792678 |
Table des matières:
- Preface Nomenclature Acknowledgements Units and conversion factors,- Chapter 1: Riveted lap joints in a pressurized aircraft fuselage 1.1. Constructional solutions of the fuselage skin structure 1.2. Loading conditions for a longitudinal lap splice joint 1.3. Bonded and riveted-bonded lap joints 1.4. Fatigue damage of longitudinal lap splice joints 1.5. Summary of this chapter Chapter 2: Differences between the fatigue behaviour of Longitudinal lap joints in a Pressurized fuselage and laboratory lap joint specimens 2.1. Stress distribution and specimen geometry 2.2. Effect of the load frequency and environmental conditions 2.3. Summary of this chapter Chapter 3: Production variables influencing the fatigue behaviour of riveted lap jointS 3.1. Sheet material 3.2. Fastener type and material 3.3. Manufacturing process 3.3.1. Riveting method 3.3.2. Imperfections of rivet holes 3.3.3. Cold working of rivet holes 3.3.4. Surface treatment of the sheets 3.3.5. Squeeze force (a) Effect of the squeeze force on fatigue life (b) Dependence of rivet driven head dimensions on the squeeze force (c) Dependence of rivet hole expansion on the squeeze force (d) Residual stresses due to the riveting process 3.4. Summary of this chapter Chapter 4: Design parameters influencing the fatigue behaviour of riveted lap joints 4.1. Number of rivet rows 4.2. Rivet row spacing 4.3. Rivet pitch in row 4.4. Distance of the rivet from the sheet edge 4.5. Rivet pattern 4.6. Sheet thickness 4.7. Size effect 4.8. Summary of this chapter Chapter 5: Load transfer in lap joints with mechanical fasteners 5.1. Simple computation of axial forces in the sheets 5.2. Fastener flexibility 5.2.1. Analytical solution 5.2.2. Experimental determination 5.3. Measurement results on load transmission 5.4. Frictional forces 5.5. Summary of this chapter Chapter 6: Secondary bending for mechanically fastened joints with eccentricities 6. 1. The phenomenon of secondary bending 6.2. Analytical investigations 6.2.1. Models 6.2.2. Exemplary applications to lap joints (a) Standard geometry (b) Padded and staggered thickness geometry

