Uncertainty quantification of guided wave structural health monitoring for aeronautical composite structures
Language: English Series: Computational and experimental methods in structures | / edited by Ferri M. H. Aliabadi ; ; v. 14Publication details: World Scientific 2024 ChennaiDescription: xii, 188pISBN:- 9781800614697
- 629.134310287 Y9u
Item type | Current library | Collection | Call number | Status | Date due | Barcode | Item holds | |
---|---|---|---|---|---|---|---|---|
![]() |
PK Kelkar Library, IIT Kanpur | General Stacks | 629.134310287 Y9u (Browse shelf(Opens below)) | Available | A186674 |
Browsing PK Kelkar Library, IIT Kanpur shelves, Collection: General Stacks Close shelf browser (Hides shelf browser)
![]() |
![]() |
![]() |
![]() |
No cover image available |
![]() |
No cover image available | ||
629.13431 M473a7 Aircraft structures for engineering students [7th ed.] | 629.13431 SU71M MECHANICS OF AIRCRAFT STRUCTURES | 629.13431 SU71M2 MECHANICS OF AIRCRAFT STRUCTURES | 629.134310287 Y9u Uncertainty quantification of guided wave structural health monitoring for aeronautical composite structures | 629.13432 J724h HIGH SPEED WING THEORY | 629.134340284 V849G GLARE | 629.13435 B444a4 AIRCRAFT POWERPLANTS |
This book presents a guided wave-based structural health monitoring (GWSHM) system for aeronautical composite structures. Particular attention is paid to the development of a reliable and reproducible system with the capability to detect and localise barely visible impact damage (BVID) in carbon-fibre-reinforced polymer (CFRP) structures.TThe authors introduce a novel sensor installation method that offers ease of application and replacement as well as excellent durability. Electromechanical Impedance (EMI) is also explored to assess the durability of the sensor installation methods in simulated aircraft operational conditions including thermal cycles, fatigue loading, and hot-wet conditions.Damage characterisation using GWSHM is described and used to investigate damage in different CFRP structures. Key issues in guided wave-based damage identification are addressed, including wave mode and frequency selection, the influence of dynamic load, the validity of simulated damage, and the sensitivity of guided waves to impact damage in different CFRP materials.The influence of temperature on guided wave propagation in anisotropic CFRP structures is described, and a novel baseline reconstruction approach for temperature compensation is presented. Finally, a multi-level hierarchical approach for the quantification of an ultrasonic GWSHM system is put forth.
There are no comments on this title.