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    <title>Auteurs : Peng Wang</title>
    <link>https://popups.uliege.be/esaform21/index.php?id=503</link>
    <description>Publications of Auteurs Peng Wang</description>
    <language>fr</language>
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      <title>Investigation of the formability behaviour of optimized tufted and un-tufted multi-layer carbon preforms during the stamping process</title>
      <link>https://popups.uliege.be/esaform21/index.php?id=2520</link>
      <description>The originality of this work consists of studying the stamping behaviour of tufted and un-tufted multi-layer carbon preforms. Several tufted preforms with different stratifications have been manufactured. The stamping test was carried out using a hemispherical punch and conducted at two blank-holder pressures (0.05 and 0.2 MPa). The experimental data show that the addition of tufting yarn, the number of layers and the blank-holder pressure significantly affected the forming behaviour: the tufted preform presents a higher punch force, lower material drawin and shear angles with significant structural defects than the un-tufted preform. The increase of the blank-holder pressure increases all these characteristics and emphasizes the structural defects on the fibrous reinforcements. Similarly, the transition from two layers to four layers lamination at the same blank-holder pressure is followed by an increase of the punch force, reducing the material draw-in and the shear angles especially those measured at the transient zone, and causes more structural defects on all stamped preforms. Therefore, two localized tufting configurations, Right Localized Tufted and Inclined Localized Tufted, at the stamping transition area have been proposed. The results show that these two configurations present a minimum punch force and a maximum material draw-in similar to those measured on the un-tufted structure. The shear angles are much greater than those recorded on the conventionally (fully) tufted preform. Thus, the localized tufting in the most stressed areas proves to be the most suitable solution for the stamped preforms. </description>
      <pubDate>Wed, 24 Mar 2021 13:08:08 +0100</pubDate>
      <lastBuildDate>Mon, 29 Mar 2021 11:10:43 +0200</lastBuildDate>
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      <title>Macro-meso scale simulations of 3D woven composite reinforcements during the forming process</title>
      <link>https://popups.uliege.be/esaform21/index.php?id=496</link>
      <description> During the forming stage in the RTM process, deformations and orientations of yarns at the mesoscopic scale are essential to evaluate mechanical behaviors of final composite products and calculate the permeability of the reinforcement. However, due to the high computational cost, it is very difficult to carry out a mesoscopic draping simulation for the entire reinforcement. In this paper, a macro-meso scale simulation of composite reinforcements is presented in order to predict mesoscopic deformations of the fabric in a reasonable calculation time. The proposed multi-scale method allows linking the macroscopic simulation of the reinforcement with the mesoscopic modelling of the RVE through a macromeso embedded analysis. On the base of macroscopic simulations using a hyperelastic constitutive law of the reinforcement, an embedded mesoscopic geometry is first deduced from the macroscopic simulation of the draping. To overcome the inconvenience of the macro-meso embedded solution which leads to unreal excessive yarn extensions, local mesoscopic simulations based on the embedded analysis are carried out on a single RVE by defining specific boundary conditions. Finally, the multi-scale forming simulations are investigated in comparison with the experimental results, illustrating the efficiency of the proposed approach, in terms of accuracy and CPU time.  </description>
      <pubDate>Sat, 20 Mar 2021 00:05:47 +0100</pubDate>
      <lastBuildDate>Fri, 02 Apr 2021 17:00:02 +0200</lastBuildDate>
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