Influence of process pressures on filling behavior of tubular fabrics in bladder-assisted resin transfer molding

Research output: Contribution to journalArticleResearchpeer-review

Bibtex - Download

@article{d9f4f0734c334425a197c6e5bfbf766b,
title = "Influence of process pressures on filling behavior of tubular fabrics in bladder-assisted resin transfer molding",
abstract = "Among the family of liquid composite molding techniques, bladder-assisted resin transfer molding (BARTM) enables efficient manufacturing of hollow composite parts based on tubular reinforcing textiles. However, resin injection under certain processing conditions can result in high filling times or improper parts and finding the optimal process parameters is often a difficult task. This paper studies the impregnation behavior of a biaxial braided fabric in pressure-driven BARTM under a wide range of injection and bladder pressures. Saturation experiments were accomplished by means of a specifically developed injection test rig comprising an under-sized elastomeric bladder and a monolithic transparent mold. The results obtained show significant influence of the relevant process parameters on local preform compaction, apparent global permeability and filling time. Based on the experiments, a universal moldability diagram was derived that enables identification of admissible and critical operating conditions in BARTM, which supports the finding of optimal part filling settings.",
author = "Christian Schillfahrt and Ewald Fauster and Ralf Schledjewski",
year = "2017",
month = oct,
day = "30",
doi = "10.1080/20550340.2017.1389048",
language = "English",
volume = "3.2017",
pages = "148--158",
journal = "Advanced Manufacturing: Polymer and Composites Science",
issn = "2055-0359",
number = "4",

}

RIS (suitable for import to EndNote) - Download

TY - JOUR

T1 - Influence of process pressures on filling behavior of tubular fabrics in bladder-assisted resin transfer molding

AU - Schillfahrt, Christian

AU - Fauster, Ewald

AU - Schledjewski, Ralf

PY - 2017/10/30

Y1 - 2017/10/30

N2 - Among the family of liquid composite molding techniques, bladder-assisted resin transfer molding (BARTM) enables efficient manufacturing of hollow composite parts based on tubular reinforcing textiles. However, resin injection under certain processing conditions can result in high filling times or improper parts and finding the optimal process parameters is often a difficult task. This paper studies the impregnation behavior of a biaxial braided fabric in pressure-driven BARTM under a wide range of injection and bladder pressures. Saturation experiments were accomplished by means of a specifically developed injection test rig comprising an under-sized elastomeric bladder and a monolithic transparent mold. The results obtained show significant influence of the relevant process parameters on local preform compaction, apparent global permeability and filling time. Based on the experiments, a universal moldability diagram was derived that enables identification of admissible and critical operating conditions in BARTM, which supports the finding of optimal part filling settings.

AB - Among the family of liquid composite molding techniques, bladder-assisted resin transfer molding (BARTM) enables efficient manufacturing of hollow composite parts based on tubular reinforcing textiles. However, resin injection under certain processing conditions can result in high filling times or improper parts and finding the optimal process parameters is often a difficult task. This paper studies the impregnation behavior of a biaxial braided fabric in pressure-driven BARTM under a wide range of injection and bladder pressures. Saturation experiments were accomplished by means of a specifically developed injection test rig comprising an under-sized elastomeric bladder and a monolithic transparent mold. The results obtained show significant influence of the relevant process parameters on local preform compaction, apparent global permeability and filling time. Based on the experiments, a universal moldability diagram was derived that enables identification of admissible and critical operating conditions in BARTM, which supports the finding of optimal part filling settings.

U2 - 10.1080/20550340.2017.1389048

DO - 10.1080/20550340.2017.1389048

M3 - Article

VL - 3.2017

SP - 148

EP - 158

JO - Advanced Manufacturing: Polymer and Composites Science

JF - Advanced Manufacturing: Polymer and Composites Science

SN - 2055-0359

IS - 4

ER -