Paul Schatrow
German Aerospace Center
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Publication
Featured researches published by Paul Schatrow.
International Journal of Crashworthiness | 2014
Paul Schatrow; Matthias Waimer
Transport aircraft made of carbon fibre reinforced plastics (CFRP) have to provide an equivalent crashworthiness compared to todays aluminium aircraft designs. However, CFRP structures typically show brittle failure behaviour under complex loading conditions and little energy absorption, whereas aluminium structures provide comparably high energy absorption due to their ductile failure characteristics. Improved crashworthiness for CFRP fuselages can be obtained by the installation of special crash devices, which are designed for energy absorption by progressive failure in compression, tension or bending. The realisation of crashworthy CFRP fuselage designs with the focus on compression or bending absorbers is often associated with significant mass penalty compared to the purely static sizing of the corresponding fuselage structure. In this context, an alternative crash kinematics was developed and numerically investigated in which most of the kinetic energy is dissipated by tension absorption in the sub-cargo area of a fuselage structure. The numerical study was performed on the basis of a purely vertical impact with a two-bay fuselage section using the explicit finite element (FE) solver Abaqus/Explicit. The simulation results show for the developed crash kinematics several advantages, e.g. reduced mass penalty, with the tension absorption concept compared to crash concepts that use energy absorption by progressive crushing in the sub-cargo area.
International Journal of Crashworthiness | 2018
Matthias Waimer; Thomas Feser; Paul Schatrow; Dominik Schueler
ABSTRACT Due to their inherently brittle behaviour, carbon fibre reinforced plastics (CFRP) structures demand for a specific design to achieve appropriate crash energy absorption compared to classical metallic fuselage designs. In this paper, experimental as well as numerical studies on two different crashworthy designs are presented. The first concept aims to absorb the crash energy by crushing of CFRP components below a reinforced cargo cross beam in combination with further energy absorbing devices in the lower side shell. The feasibility of this concept was in the meantime proven by tests at the coupon and structural element level. An alternative crash concept making use of energy absorption in so-called tension absorbers in the passenger and cargo floor structure was developed and assessed with the focus on a reduction of structural mass in combination with improved concept robustness. This paper provides a summary of the performed research work and discusses the context of the concept development. Details on the individual research tasks can be found in further publications which are given in the references.
Applied Composite Materials | 2015
Ralf Sturm; Paul Schatrow; Yves Klett
The paper presents an homogenised core model suitable for use in the analysis of fuselage sandwich panels with folded composite cores under combined loading conditions. Within a multiscale numerical design process a failure criterion was derived for describing the macroscopic behaviour of folded cores under combined loading using a detailed foldcore micromodel. The multiscale modelling method was validated by simulation of combined compression/bending failure of foldcore sandwich panels.
Archive | 2013
Paul Schatrow; Matthias Waimer
CEAS Aeronautical Journal | 2016
Paul Schatrow; Matthias Waimer
Archive | 2016
Matthias Waimer; Paul Schatrow; Thomas Feser; Harald Kraft; Dieter Kohlgrüber
Archive | 2016
Paul Schatrow; Ralf Sturm; Harald Kraft
Archive | 2016
Mathieu Vinot; Paul Schatrow; Ralf Sturm; Frieder Heieck; Daniel Fernández
Archive | 2016
Paul Schatrow; Matthias Waimer
Archive | 2016
Paul Schatrow; Matthias Waimer