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Technical Paper

Using a Geometric Toolkit to Link Finite Element Calculations in Sheet Metal Forming Analysis

1994-03-01
940748
Sheet metal forming of automobile body panel consists of two processes performed in series: binder forming and punch forming. Due to differences in deformation characteristics of the two forming processes, their analysis methods are different. The binder wrap surface shape and formed part shape are calculated using different mathematical models and different finite element codes, e.g., WRAPFORM and PANELFORM, respectively. The output of the binder forming analysis may not be directly applicable to the subsequent punch forming analysis. Interpolation, or approximation, of the calculated binder wrap surface geometry is needed. This surface representation requirement is carried out using computer aided geometric design tools. This paper discusses the use of such a tool, SURFPLAN, to link WRAPFORM and PANELFORM calculations.
Technical Paper

The Effects of Friction on Bursting of Tubes in Corner Filling

2003-03-03
2003-01-0688
Corner filling is a benchmark experiment in tube hydroforming. It was designed to gain knowledge pertinent of this new fabrication process. The corner filling benchmark has been widely used in the automotive and steel industries. Common sense as well as physical tests suggests that friction is an important parameter that affects the deformation of the tube and the bursting of the tubes. However, numerical simulations have yet to verify this fact. In this paper, the stress/strain states in the tube were computed using a finite element model. The dependence of bursting on friction for corner filling was estimated by using the forming limit diagram and a tensile-based failure criterion.
Technical Paper

The Bulge of Tubes and a Failure Criterion for Tube Hydroforming

2001-03-05
2001-01-1132
The bulge test in hydroforming is a simple fundamental experiment used to obtain basic knowledge in tube expansion. The results can be used to assist design and manufacturing of hydroformed automotive parts. It also can be used to develop a failure criterion for tubes in hydroforming. For these purposes, a section of a long unsupported tube with fixed ends was simulated numerically to obtain the mechanical states of the tube subjected to internal pressure. Steel and aluminum tubes are used. For the bulge tests, the internal pressure reaches a maximum and then decreases in value without failure while the stress, strain and volume of the tube keep increasing. A failure criterion for the bursting of a tube is proposed based on the stress-strain curve of the material.
Technical Paper

Free Expansion Bulge Testing of Tubes For Automotive Hydroform Applications

2004-03-08
2004-01-0832
Free expansion of straight tubes is the simplest test to evaluate tube properties for hydroforming applications and to provide basic understanding of the mechanics of tube hydroforming. A circular cylindrical tube is sealed at both ends and fluid, usually water, is pumped into the tube to increase its internal pressure to bulge and burst the tube. Previous numerical simulations of the free expansion tube test were limited to modeling the midsection of the tube under various assumptions of deformation path. The simulation results obtained deviated from the experimental results under all simulation conditions considered. A new model is developed in this paper in which the whole tube is simulated instead of considering only its mid-section. Judged by the pressure-expansion relations, the model accurately predicted free expansion hydroforming tests results.
Technical Paper

Evaluation of a Dynamic Explicit Finite Element Code for Binder Forming Calculations

1995-02-01
950693
In order to develop a binder forming analysis model based on contact principle of mechanics and to search for an accurate finite element computer code to analyze the model, ABAQUS/Explicit was evaluated using a benchmark example of a step-die. Because the step-die is a quasi-static problem and ABAQUS/Explicit is a dynamic finite element code, we are particularly interested in avoiding oscillations of the blank in the die cavity after the binder is closed. The study reveals that the oscillations can be eliminated and an asymptotic solution obtained if the die close speed is not too high. The optimum die close time for the benchmark is obtained based on the efficiency of computing and accuracy of the solution. The issues of oscillations and asymptotic solutions related to analyzing a quasi-static binder forming problem by a dynamic finite element code are settled in this paper.
Technical Paper

A Bursting Failure Criterion for Tube Hydroforming

2002-03-04
2002-01-0794
Fundamental differences exist between sheet metal forming and hydroforming processes. Sheet metal forming is basically a one step metal fabrication process. Almost all plastic deformation of an originally flat blank is introduced when the punch is moved normal to a clamped sheet metal. Hydroforming, however, consists of multiple steps of tube making, pre-bending, crushing, pressurization, etc. Each of the above mentioned steps can introduce permanent plastic deformations. The forming limit diagram obtained for sheet metal forming may or may not be used in hydroforming evaluations. A failure criterion is proposed for predicting bursting failures in tube hydroforming. The tube material's stress-strain curve, obtainable from uniaxial tensile test and subjected to some postulations under large stress/strain states, is used in judging the failure.
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