Buch, Englisch, 234 Seiten, Format (B × H): 152 mm x 228 mm, Gewicht: 405 g
Buch, Englisch, 234 Seiten, Format (B × H): 152 mm x 228 mm, Gewicht: 405 g
ISBN: 978-0-12-819420-1
Verlag: Elsevier Science Publishing Co Inc
Modeling and Analysis of Passive Vibration Isolation Systems discusses a wide range of dynamic models that can be used for the design and analysis of passive vibration isolation systems. These models range from linear viscoelastic single degree-of-freedom systems to multiple degree-of-freedom nonlinear systems. They can be used to evaluate hyperelasticity and creep, and to represent the inertia effect for an evaluation of vibroacoustic characteristics at high frequencies. This book also highlights specific nonlinear behavior, displacement-limiting designs, hyperelastic behavior, and characteristics associated with elastomeric materials for each model. It also identifies key attributes, limitations, and constraints, providing a holistic reference that can be used for the design and analysis of passive vibration isolators. Modeling and Analysis of Passive Vibration Isolation Systems serves as a reference for engineers and researchers involved in the design, development, modeling, analysis, and testing of passive vibration isolation systems and as a reference for a graduate course in vibration modeling and analysis.
Zielgruppe
Researchers in automotive, aerospace, and civil engineering and heavy machinery; Professional automotive, aerospace, and civil engineers
Autoren/Hrsg.
Fachgebiete
- Technische Wissenschaften Verkehrstechnik | Transportgewerbe Luft- und Raumfahrttechnik, Luftverkehr
- Technische Wissenschaften Bauingenieurwesen Technische Dynamik (Modalanalyse), Erdbebensicherheit
- Technische Wissenschaften Maschinenbau | Werkstoffkunde Technische Mechanik | Werkstoffkunde Statik, Dynamik, Kinetik, Kinematik
- Technische Wissenschaften Verkehrstechnik | Transportgewerbe Fahrzeugtechnik
Weitere Infos & Material
1. Vibration isolation-background
2. Viscoelasticmodeling-passive vibration isolators
3. Vibration isolation system modeling
4. Vibration isolation systems-nonlinearmodels
5. Modeling elastomer characteristics
6. Modeling inertia effect
7. Elastomeric vibration isolator design