温度控制提高层间结合强度在熔融沉积建模

Raoul Kumrai-Woodruff, Qing Wang
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引用次数: 2

摘要

熔融沉积建模(FDM)为许多领域的新发展提供了机会。层间键合弱导致的z向各向异性强度被认为是FDM工业应用有限的原因。本文旨在研究使用温度控制打印环境来提高丙烯腈-丁二烯-苯乙烯(ABS)的z向强度。在打印过程中,提高环境温度以减少从打印中传递的热量,从而促进更多的聚合物链在层之间的相互扩散。在24.8°C到71.2°C的环境打印温度下打印狗骨样品,并进行拉伸测试。热像仪用于识别FDM过程中的热损失。与开壳印刷相比,极限拉伸强度增加了104%。用手写笔谱仪和扫描电子显微镜比较了层间键的质量,表明在较高的环境温度下发生了额外的聚合物间扩散。环境温度与层间部件强度呈弱正相关。进一步的实验可以为确定理想的环境打印温度提供范围,该温度可能取决于打印设置和所使用的打印机。
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Temperature Control to Increase Inter-Layer Bonding Strength in Fused Deposition Modelling
Fused Deposition Modelling (FDM) provides opportunities for new development in numerous areas. Z-directional anisotropic strength caused by weak inter-layer bonding has been recognized as the reason for limited industry adoption of FDM. This paper aims to investigate increasing the Z-directional strength of Acrylonitrile Butadiene Styrene (ABS) using a temperature controlled print environment. The ambient temperature during printing was increased to reduce heat transfer from the print, thereby encouraging more polymer chain inter-diffusion between layers. Dogbone specimens were printed at ambient print temperatures between 24.8°C and 71.2°C and tensile tests were performed. A thermal camera was used to identify heat loss in the FDM process. Ultimate tensile strength was found to increase by a maximum of 104% compared to open enclosure printing. A stylus profiler and scanning electron microscopy were used to compare the quality of the inter-layer bonds, suggesting that additional polymer inter-diffusion occurred at hotter ambient temperatures. A weak positive relationship was found between ambient air temperature and inter-layer part strength. Further experimentation could provide scope to determine an ideal ambient print temperature that is likely to be dependent on print settings and the printer used.
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