A Study on Fracture Characteristics of Plastics and Application to Head Impact Simulation for Instrument Panels

2008 ◽  
Vol 1 (1) ◽  
pp. 829-834
Author(s):  
Kangwook Lee ◽  
Taejung Yeo ◽  
Soonjo Park ◽  
Helmut Arnulf Gese ◽  
Harry Dell
Author(s):  
Giuseppe Miscia ◽  
Enrico Bertocchi ◽  
Luca D’Agostino ◽  
Andrea Baldini ◽  
Enrico Dolcini ◽  
...  

In the last few years, the restrictive safety standards and the need for weight reduction have brought the crashworthiness research to focus on composite materials because of their high energy absortion-to-mass ratio. On the other hand, the possibility of obtaining predictive dynamic FEA models for these new materials is still an open issue: the present work aims at developing a methodology for the characterization of composite materials with particular interest for the head impact simulation. Composite materials behavior, defined through the mathematical models implemented in FEA codes, is very complex and requires a large amount of physical and numerical setting parameters. The majority of these parameters can be obtained by an experimental campaign that involves several kind of different tests. The presented methodology allows to obtain a good numerical-experimental correlation simply performing few tests which emulate the behavior of the component during the head impact event. A software tool based on a genetic optimization technique has been developed in order to determinate automatically the material properties values that guarantee the best numerical-experimental correlation.


2005 ◽  
Author(s):  
Mike Keranen ◽  
Srikanth Krishnaraj ◽  
Kumar Kulkarni ◽  
Li Lu ◽  
Ravi Thyagarajan ◽  
...  

2016 ◽  
Vol 2016.28 (0) ◽  
pp. _1G43-1_-_1G43-5_
Author(s):  
Yu SUIZU ◽  
Junji OHGI ◽  
Itsuo SAKURAMOTO ◽  
Xian CHEN ◽  
Norihiro NISHIDA ◽  
...  

2021 ◽  
Vol 2021.59 (0) ◽  
pp. 01c5
Author(s):  
Kanshi OH ◽  
Junji OHGI ◽  
Xian CHEN ◽  
Fei JIANG ◽  
Norihiro NISHIDA ◽  
...  

2018 ◽  
Vol 2018.56 (0) ◽  
pp. 107
Author(s):  
Yuki MASATSUGU ◽  
Junji OHGI ◽  
Yu SUIZU ◽  
Xian CHEN ◽  
Fei JIANG ◽  
...  

Author(s):  
A. Lawley ◽  
M. R. Pinnel ◽  
A. Pattnaik

As part of a broad program on composite materials, the role of the interface on the micromechanics of deformation of metal-matrix composites is being studied. The approach is to correlate elastic behavior, micro and macroyielding, flow, and fracture behavior with associated structural detail (dislocation substructure, fracture characteristics) and stress-state. This provides an understanding of the mode of deformation from an atomistic viewpoint; a critical evaluation can then be made of existing models of composite behavior based on continuum mechanics. This paper covers the electron microscopy (transmission, fractography, scanning microscopy) of two distinct forms of composite material: conventional fiber-reinforced (aluminum-stainless steel) and directionally solidified eutectic alloys (aluminum-copper). In the former, the interface is in the form of a compound and/or solid solution whereas in directionally solidified alloys, the interface consists of a precise crystallographic boundary between the two constituents of the eutectic.


Sign in / Sign up

Export Citation Format

Share Document