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Mechanical Properties and Process Improvement of Tungsten Carbide Additively Manufactured with Renewable Biopolymers

机译:用可再生生物聚合物加碳化钨碳化钨的机械性能和工艺改进

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The following study presents ongoing work on the mechanical behavior and process improvement of tungsten carbide that is prepared using additive manufacturing of a sustainable polymeric precursor paste. The Taguchi method was implemented to develop a design-of-experiments and analyze the effect of individual honeycomb geometry design parameters on the compressive moduli of samples fabricated via 3D printing of the sustainable paste. The printing gel was known to provide porosity to tungsten carbide samples, which were hypothesized to increase specific strength given the reduction in density that porosity provides. Mechanical properties were of strong interest in this study, but the emergence of deformations during additive manufacturing appeared to result in significant variability during mechanical testing. Consequently, this study also sought to improve the additive process by aiming to achieve a known constant flowrate of the printing gel and adjusting printing nozzle speed to reflect this. Ongoing work includes utilizing the process improvement investigated in this study to refabricate designed honeycomb geometries of tungsten carbide so that they can be reviewed for mechanical properties. Further studies will then compare mechanical properties to tungsten carbide that was not additively manufactured with the sustainable paste and therefore does not exhibit considerable porosity.
机译:以下研究呈现了使用可持续聚合物前体浆料的添加剂制造制备的碳化钨的机械行为和工艺改进的持续工作。实施TAGUCHI方法以开发实验设计,并分析各个蜂窝几何设计参数对可持续浆料3D印刷制造的样品的压缩模量的影响。已知印刷凝胶提供给碳化钨样品的孔隙率,这被假设以增加孔隙度提供的密度降低的特定强度。机械性能对该研究有浓厚的兴趣,但添加剂制造期间的变形出现似乎在机械测试期间导致显着的变化。因此,本研究还试图通过旨在实现印刷凝胶的已知恒定流量并调节印刷喷嘴速度来改善添加剂过程。正在进行的工作包括利用本研究中调查的过程改进,以重新破坏碳化钨的设计蜂窝几何形状,以便可以审查它们的机械性能。然后,进一步的研究将对没有可持续浆料的碳化钨进行比较机械性能,因此没有表现出相当大的孔隙率。

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