复杂曲率零件制造过程中预浸料的热压釜固结模型

IF 2.6 3区 材料科学 Q2 ENGINEERING, MANUFACTURING International Journal of Material Forming Pub Date : 2023-09-18 DOI:10.1007/s12289-023-01784-x
Christopher Blackwell, Pavel Simacek, Roger Crane, Shridhar Yarlagadda, Suresh G. Advani
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引用次数: 0

摘要

在对零件孔隙率有严格要求的应用中,高压釜固结用于制造连续纤维复合材料。在此过程中施加的正压对降低部分孔隙率很有吸引力。然而,即使在正压下,某些部件的几何形状也会导致气孔问题。一种是在l括号几何中看到的凹角。高曲率区域孔隙率较高,影响了零件质量。由于高压灭菌过程需要几个小时,预浸料昂贵,解决问题的试错方法是不实用的。在这项工作中,提出了一个独特的基于物理的粘弹性模型来描述未固化的连续纤维热固性预浸料在静水压力下的力学行为。该模型考虑了由于纤维网络的压实、树脂中空隙的压缩以及树脂相对于纤维流动产生的粘性应力。这些本构表达式耦合到高压灭菌器固结期间发生的重要机制。利用UMAT子程序将粘弹性模型集成到有限元分析软件ABAQUS/Standard中。通过解析解和实验对比验证了平面几何和l形支架几何的数值结果。参数化研究确定影响制造零件质量的重要工艺和材料参数。
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A model for the autoclave consolidation of prepregs during manufacturing of complex curvature parts

Autoclave consolidation is used to manufacture continuous fiber composites in applications that have strict part porosity requirements. The applied positive pressure in this process is attractive for reduction in part porosity. However, some part geometries can cause porosity issues even under positive pressure. One is the concave corner seen in an L-bracket geometry. Higher porosity is seen in areas of high curvature, hindering part quality. Since the autoclave process takes several hours and prepreg material is expensive, trial-and-error methods of resolving issues are not practical. In this work, a unique physics-based viscoelastic model is proposed to describe the mechanical behavior of uncured continuous fiber thermoset prepreg undergoing consolidation under hydrostatic pressure. This model considers stress due to compaction of the fiber network, compression of voids in the resin, and viscous stress from resin flow relative to fibers. The constitutive expressions for these are coupled to important mechanisms that occur during autoclave consolidation. The viscoelastic model is incorporated into the finite element analysis software ABAQUS/Standard using a UMAT subroutine. Numerical results are validated by analytic solutions and experimental comparison for flat and L-bracket geometries. A parametric study identifies important process and material parameters that influence the quality of the manufactured part.

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来源期刊
International Journal of Material Forming
International Journal of Material Forming ENGINEERING, MANUFACTURING-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
5.10
自引率
4.20%
发文量
76
审稿时长
>12 weeks
期刊介绍: The Journal publishes and disseminates original research in the field of material forming. The research should constitute major achievements in the understanding, modeling or simulation of material forming processes. In this respect ‘forming’ implies a deliberate deformation of material. The journal establishes a platform of communication between engineers and scientists, covering all forming processes, including sheet forming, bulk forming, powder forming, forming in near-melt conditions (injection moulding, thixoforming, film blowing etc.), micro-forming, hydro-forming, thermo-forming, incremental forming etc. Other manufacturing technologies like machining and cutting can be included if the focus of the work is on plastic deformations. All materials (metals, ceramics, polymers, composites, glass, wood, fibre reinforced materials, materials in food processing, biomaterials, nano-materials, shape memory alloys etc.) and approaches (micro-macro modelling, thermo-mechanical modelling, numerical simulation including new and advanced numerical strategies, experimental analysis, inverse analysis, model identification, optimization, design and control of forming tools and machines, wear and friction, mechanical behavior and formability of materials etc.) are concerned.
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