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Development of a design and characterization framework for fabrication c functionally graded materials using magnetic field-assisted digital light processing stereolithography

机译:使用磁场辅助数字光处理立体刻录的制造C功能分级材料的设计和表征框架的开发

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摘要

Functionally graded materials (FGMs) offer several advantages over traditional materials. Fabrication of FGMs via additive manufacturing (AM) processes would allow creating a part with a complex geometry while controlling the graded structure and has gained significant interest in the recent years. Magnetic field-assisted digital light processing (DLP) stereolithography is a promising technique to fabricate FGMs. However, it is still challenging to be able to fabricate FGMs with precisely controlled structures and properties. In this study, a design, manufacturing, and characterization framework is developed for using DLP to fabricate FGMs. In this work, a customized DLP printer with assisitve magnetic field is developed and used to fabricate polymeric composites with embedded magnetic particles. By varying the magnetic field, different gradients of particle concentration can be achieved. The particle distribution within the sample is characterized by nano-computed tomography and the greyscale analysis using optical microscopy. Nanoindentation is performed to measure the local material properties in the graded area. Standard tensile tests are also conducted on samples with preset particle contents, and the results are cross compared with nanoindentation results. A finite element model is developed to analyze the effect of magnetic flux density on the resulting particle content. Correlations between the magnetic flux density and particle content, and between the particle content and the local material behavior are shown, which form the foundation of the proposed framework. This framework provides a guided method for designers and manufacturers to create FGMs with more predictable results.
机译:功能分级材料(FGMS)优于传统材料的几个优点。通过添加剂制造(AM)工艺的FGMS制备将允许在控制分级结构的同时产生具有复杂几何形状的一部分,并且在近年来上获得了显着的兴趣。磁场辅助数字光处理(DLP)立体光刻是制造FGM的有希望的技术。然而,能够用精确控制的结构和性质制造FGM仍然具有挑战性。在本研究中,开发了一种设计,制造和表征框架,用于使用DLP制造FGM。在这项工作中,开发了一种具有Assisitve磁场的定制DLP打印机,并用于制造具有嵌入磁性颗粒的聚合物复合材料。通过改变磁场,可以实现不同的颗粒浓度的梯度。样品内的颗粒分布的特征在于纳米计算断层摄影和使用光学显微镜的灰度分析。进行纳米indentation以测量分级区域中的局部材料特性。标准拉伸试验也在具有预设颗粒含量的样品上进行,结果与纳米狭窄结果相比。开发有限元模型以分析磁通密度对所得颗粒含量的影响。显示磁通密度和颗粒含量与颗粒含量与颗粒含量与局部材料行为之间的相关性,形成所提出的框架的基础。该框架为设计者和制造商提供了一种导游的方法,可以创建具有更具可预测结果的FGM。

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