Numerical Filling Predictions and Mechanical Mold Simulations for Composite Manufacturing Techniques: RTM Tool Development

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Numerical Filling Predictions and Mechanical Mold Simulations for Composite Manufacturing Techniques: RTM Tool Development. / Grössing, Harald; Konstantopoulos, Spiridon; Schledjewski, Ralf.
Key engineering materials. Band 651-653 2015. S. 423-432 (Key engineering materials).

Publikationen: Beitrag in Buch/Bericht/KonferenzbandBeitrag in Buch/SammelbandForschung

Vancouver

Grössing H, Konstantopoulos S, Schledjewski R. Numerical Filling Predictions and Mechanical Mold Simulations for Composite Manufacturing Techniques: RTM Tool Development. in Key engineering materials. Band 651-653. 2015. S. 423-432. (Key engineering materials). doi: 10.4028/www.scientific.net/KEM.651-653.423

Bibtex - Download

@inbook{de94afecbbcb450da79d2b692e9ce47d,
title = "Numerical Filling Predictions and Mechanical Mold Simulations for Composite Manufacturing Techniques: RTM Tool Development",
abstract = "This paper presents the development of a novel omega-shaped resin transfer molding (RTM) tool, which is especially designed to host different types of sensors and to avoid common problems of RTM (e.g. uneven heating, low tool durability, deflection). Permeability measurements were executed in order to get real permeability measurements for numerical mold filling simulations. Three different kinds of flow behaviors (isotropic, orthotropic and anisotropic) were considered as filling patterns and the flow front predictions. Due to the U-shaped composite part design, the mold curvature effects on the flow front propagation caused by the increased fiber volume content in these areas were also taken into account. The tool was designed with a heating ability using purified liquid water guided to a channel circuit within both top and bottom halves of the tool. Deflection and heat transfer simulations were performed with the finite element method (FEM). All three executed simulations (filling, heat transfer and deflection) were used as a guideline for the final mold design.",
keywords = " FEM Simulations , Liquid Composite Molding, Resin transfer molding",
author = "Harald Gr{\"o}ssing and Spiridon Konstantopoulos and Ralf Schledjewski",
year = "2015",
doi = "10.4028/www.scientific.net/KEM.651-653.423",
language = "English",
volume = "651-653",
series = "Key engineering materials",
publisher = "Trans Tech Publications",
pages = "423--432",
booktitle = "Key engineering materials",

}

RIS (suitable for import to EndNote) - Download

TY - CHAP

T1 - Numerical Filling Predictions and Mechanical Mold Simulations for Composite Manufacturing Techniques: RTM Tool Development

AU - Grössing, Harald

AU - Konstantopoulos, Spiridon

AU - Schledjewski, Ralf

PY - 2015

Y1 - 2015

N2 - This paper presents the development of a novel omega-shaped resin transfer molding (RTM) tool, which is especially designed to host different types of sensors and to avoid common problems of RTM (e.g. uneven heating, low tool durability, deflection). Permeability measurements were executed in order to get real permeability measurements for numerical mold filling simulations. Three different kinds of flow behaviors (isotropic, orthotropic and anisotropic) were considered as filling patterns and the flow front predictions. Due to the U-shaped composite part design, the mold curvature effects on the flow front propagation caused by the increased fiber volume content in these areas were also taken into account. The tool was designed with a heating ability using purified liquid water guided to a channel circuit within both top and bottom halves of the tool. Deflection and heat transfer simulations were performed with the finite element method (FEM). All three executed simulations (filling, heat transfer and deflection) were used as a guideline for the final mold design.

AB - This paper presents the development of a novel omega-shaped resin transfer molding (RTM) tool, which is especially designed to host different types of sensors and to avoid common problems of RTM (e.g. uneven heating, low tool durability, deflection). Permeability measurements were executed in order to get real permeability measurements for numerical mold filling simulations. Three different kinds of flow behaviors (isotropic, orthotropic and anisotropic) were considered as filling patterns and the flow front predictions. Due to the U-shaped composite part design, the mold curvature effects on the flow front propagation caused by the increased fiber volume content in these areas were also taken into account. The tool was designed with a heating ability using purified liquid water guided to a channel circuit within both top and bottom halves of the tool. Deflection and heat transfer simulations were performed with the finite element method (FEM). All three executed simulations (filling, heat transfer and deflection) were used as a guideline for the final mold design.

KW - FEM Simulations

KW - Liquid Composite Molding

KW - Resin transfer molding

U2 - 10.4028/www.scientific.net/KEM.651-653.423

DO - 10.4028/www.scientific.net/KEM.651-653.423

M3 - Chapter

VL - 651-653

T3 - Key engineering materials

SP - 423

EP - 432

BT - Key engineering materials

ER -