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Development of Aircraft Spoiler Demonstrators for Cost-Efficient Investigations of SHM Technologies under Quasi-Realistic Loading Conditions

Publikation: Beitrag in FachzeitschriftArtikelBegutachtung

Abstract

An idealized 1:2 scale demonstrator and a numerical parameter optimization algorithm are proposed to closely reproduce the deformation shape and, thus, spatial strain directions of a real aerodynamically loaded civil aircraft spoiler using only four concentrated loads. Cost-efficient experimental studies on demonstrators of increasing complexity are required to transfer knowledge from coupons to full-scale structures and to build up confidence in novel structural health monitoring (SHM) technologies. Especially for testing novel sensor systems that depend on or are affected by mechanical strains, e.g., strain-based SHM methods, it is essential that the considered lab-scale structures reflect the strain states of the real structure at operational loading conditions. Finite element simulations with detailed models were performed for static strength analysis and for comparison to experimental measurements. The simulated and measured deformations and spatial strain directions of the idealized demonstrator correlated well with the numerical results of the real aircraft spoiler. Thus, using the developed idealized demonstrator, strain-based SHM systems can be tested under conditions that reflect operational aerodynamic pressure loads, while the test effort and costs are significantly reduced. Furthermore, the presented loading optimization algorithm can be easily adapted to mimic other pressure loads in plate-like structures to reproduce specific structural conditions.
OriginalspracheEnglisch
Aufsatznummer320
Seiten (von - bis)320
Seitenumfang19
FachzeitschriftAerospace
Volume8
Ausgabenummer11
DOIs
PublikationsstatusVeröffentlicht - Nov. 2021

Wissenschaftszweige

  • 203 Maschinenbau
  • 203003 Bruchmechanik
  • 203007 Festigkeitslehre
  • 203012 Luftfahrttechnik
  • 203015 Mechatronik
  • 203022 Technische Mechanik
  • 203034 Kontinuumsmechanik
  • 205016 Werkstoffprüfung
  • 201117 Leichtbau
  • 203002 Betriebsfestigkeit
  • 203004 Fahrzeugtechnik
  • 203011 Leichtbau
  • 205015 Verbundwerkstoffe
  • 211905 Bionik

JKU-Schwerpunkte

  • Sustainable Development: Responsible Technologies and Management

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