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Technical Paper

Improving the Accuracy of Hybrid III-50th Percentile Male FE Model

2011-04-12
2011-01-0018
Accurate prediction of the responses from the anthropomorphic test devices (ATDs) in vehicle crash tests is critical to achieving better vehicle occupant performances. In recent years, automakers have used finite element (FE) models of the ATDs in computer simulations to obtain early assessments of occupant safety, and to aid in the development of occupant restraint systems. However, vehicle crash test results have variation, sometimes significant. This presents a challenge to assessing the accuracy of the ATD FE models, let alone improving them. To resolve this issue, it is important to understand the test variation and carefully select the target data for model improvement. This paper presents the work carried out by General Motors and Humanetics Innovative Solutions (formerly FTSS) in a joint project, aimed at improving the FE model of the Hybrid III-50 ATD (HIII-50) v5.1.
Journal Article

Development of Advanced EuroSID-2 and EuroSID-2re Radioss Dummies

2010-04-12
2010-01-0215
EuroSID-2 and EuroSID-2re are among the most frequently used side impact dummies in vehicle crash safety. Radioss is one of most widely applied finite element codes for crash safety analysis. To meet the needs of crash safety analysis and to exploit the potential of the Radioss code, a new generation of EuroSID-2 (ES2) and EuroSID-2re (ES2_RE) Radioss dummies was developed at First Technology Safety System (FTSS) in collaboration with Altair. This paper describes in detail the development of the ES2/ES2_RE dummies. Firstly whole dummy meshes were created based on CAD data and intensive efforts were made to obtain penetration/intersection-free models. Secondly FTSS finite element certificate tests at component level were conducted to obtain satisfactory component performances. These tests include the head drop test, the neck pendulum test, the lumbar pendulum test and the thorax drop test [ 1 , 2 ].
Technical Paper

Responses of the Q3, Hybrid III and a Three Year Old Child Finite Element Model Under a Simulated 213 Test

2008-04-14
2008-01-1121
This research focuses on the response of the Q3, Hybrid III 3-year-old dummy and a child finite element model in a simulated 213 sled test. The Q3 and Hybrid III 3-year old child finite element models were developed by First Technology Safety Systems. The 3-year-old child finite element model was developed by Nagoya University by model-based scaling from the AM50 (50 percentile male) total human model for safety. The child models were positioned in a forward facing, five-point child restraint system using Finite Element Model Builder. An acceleration pulse acquired from an experimental 213 sled test, which was completed following the guidelines outlined in the Federal Motor Vehicle Safety Standard 213 using a Hybrid III 3-year-old dummy, was applied to the seat buck supporting the child restraint seat. The numerical simulations utilizing the Q3, Hybrid III 3-year-old and the child finite element model were conducted using the explicit non-linear finite element code LS-DYNA.
Technical Paper

Development of Advanced Finite Element Models of World SID 5th and 50th — The Next Generation Side Impact Dummies

2007-04-16
2007-01-0891
This paper describes the development of new advanced Finite Element (FE) models of the World SID series, namely World SID 50th and 5th, the new generation of side impact Anthropomorphic Test Devices (ATD). The model development follows the FTSS's rigorous quality assurance (QA) procedure and uses the manufacture's product data and test facilities extensively. The models are validated at material, component & assembly, full dummy certification and sled test application levels. A detailed modeling methodology is described. The models correlate well with both the component and whole dummy level test results.
Technical Paper

Elevated Temperature Formability of Some Engineering Metals for Gas Forming of Automotive Structures

2001-10-16
2001-01-3103
This paper provides a preliminary study on tensile behavior and formability of some engineering magnesium and aluminum alloys, and steels at elevated temperatures (>0.6 Tm) and high strain rates (>0.1/s). A new elevated-temperature biaxial formability testing technique is developed to study strain path dependence as well as temperature and strain rate dependence. The formability test and in-die forming process are simulated with FEA method, and a concept of forming process diagram is established. The technical feasibility of elevated temperature gas forming for automotive components is discussed.
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