- AutorIn
- Andreas Hornig Technische Universität Dresen, Fakultät Maschinenwesen, Institut für Leichtbau und Kunststofftechnik (ILK), Germany
- Richard FrohbergInstitute for Plastics Processing (IKV) in Industry and Craft at RWTH Aachen University
- Tim BätzelTechnische Universität Dresen, Fakultät Maschinenwesen, Institut für Leichtbau und Kunststofftechnik (ILK), Germany
- Maik Gude
- Niels Modler
- Titel
- Embedded sensing and actuating in CFRP composite structures - concept and technology demonstration for tailored embeddable sensor-actuator layers (TEmSAL)
- Zitierfähige Url:
- https://nbn-resolving.org/urn:nbn:de:bsz:14-qucosa2-910069
- Quellenangabe
- Smart materials and structures
Erscheinungsjahr: 2022
Jahrgang: 31
Heft: 9
E-ISSN: 1361-665X
Artikelnummer: 095007 - Erstveröffentlichung
- 2022
- Abstract (EN)
- Carbon fibre reinforced plastic (CFRP) materials are of interest for the aerospace and aviation industry to master growing economic and ecological challenges. In contrast to conventional metallic materials, they offer both higher specific material properties, such as strengths, stiffnesses, and an increased energy absorption capacity in case of impact loading scenarios. Additionally, the possibility of integrating functional elements, such as actuators and sensors, predestine CFRP for the development of more lightweight structural components. In this study, a generic composite structure is instrumented with embedded piezo ceramic sensor elements. A technology for TEmSAL is presented and applied within an autoclave manufacturing process. Aspects of the designing process, manufacturing and instrumentation as well as experimental impact sensing and self-actuation results are presented and discussed.
- Andere Ausgabe
- Link zum Artikel, der zuerst in „Smart materials and structures” erschienen ist
DOI: 10.1088/1361-665X/ac7d23 - Freie Schlagwörter (DE)
- Aktuatorik, CFK, Verbundwerkstoffe, Strukturen, Aufprallsensorik
- Freie Schlagwörter (EN)
- actuating, CFRP, composite, structures, impact sensing
- Klassifikation (DDC)
- 530
- 600
- Verlag
- IOP Publishing, Bristol
- Förder- / Projektangaben
- European Commission (EC)
H2020 | RIA
EXTREME Dynamic Loading - Pushing the Boundaries of Aerospace Composite Material Structures
(EXTREME)
ID: 636549 - Version / Begutachtungsstatus
- publizierte Version / Verlagsversion
- URN Qucosa
- urn:nbn:de:bsz:14-qucosa2-910069
- Veröffentlichungsdatum Qucosa
- 21.05.2024
- Dokumenttyp
- Artikel
- Sprache des Dokumentes
- Englisch
- Lizenz / Rechtehinweis
CC BY 4.0