Thermal Analysis and Design of Self-Heating Molds Using Large-Scale Additive Manufacturing for Out-of-Autoclave Applications

D. Pokkalla, A. Hassen, J. Heineman, Thomas Snape, J. Arimond, V. Kunc, Seokpum Kim
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引用次数: 1

Abstract

Autoclave processing is a commonly used state-of-the-art fiber-reinforced composite manufacturing technology, albeit with high capital cost, long cycle times and high energy consumption. Alternatively, out-of-autoclave processing reduces the initial and operating costs while producing composite structures with similar quality as that of autoclave parts. Additive Manufacturing (AM) the scaled-up molds for out-of-autoclave process using carbon fiber (CF) reinforced composite offers design flexibility, enhanced mechanical, and thermal properties in addition to reduction in weight and cost. However, heating of these molds using an oven is still expensive and necessitates an energy-efficient heating process. In this study, resistive heating through heating elements embedded within fiber reinforced composite molds is used as an efficient heating mechanism. The goal is to design wire embeddings and determine the optimal heat flux density to achieve a target uniform temperature of 80°C across the mold surface. To this end, numerical analyses were performed to evaluate the temperature distribution across the composite mold surface for a given wire placement and mold configuration. Constant thermal properties of the 20 wt.% short CF reinforced acrylonitrile butadiene styrene (ABS) were used in the thermal analysis. Time taken to reach the steady state temperature was also estimated. Design guidelines for wire embeddings were included to enable efficient manufacturing of fiber-reinforced composites through out-of-autoclave molds.
热分析和设计使用大规模增材制造的自加热模具用于非高压釜应用
高压灭菌工艺是一种常用的最先进的纤维增强复合材料制造技术,尽管资本成本高,周期时间长,能耗高。另外,在生产与高压灭菌器部件质量相似的复合结构时,非高压灭菌器加工可降低初始和操作成本。增材制造(AM)是一种使用碳纤维(CF)增强复合材料的高压灭菌器外工艺的放大模具,除了减轻重量和成本外,还提供了设计灵活性、增强的机械性能和热性能。然而,使用烤箱加热这些模具仍然是昂贵的,需要一个节能的加热过程。在本研究中,通过嵌入在纤维增强复合材料模具中的加热元件进行电阻加热是一种有效的加热机制。目标是设计线嵌入并确定最佳热流密度,以实现整个模具表面80°C的目标均匀温度。为此,进行了数值分析,以评估给定线材放置和模具配置下复合模具表面的温度分布。采用20wt .%短CF增强丙烯腈-丁二烯-苯乙烯(ABS)的恒热性能进行热分析。还估计了达到稳态温度所需的时间。包括电线嵌入的设计准则,以实现通过高压灭菌器外模具有效制造纤维增强复合材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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