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Parametric chemistry reverse engineering biomaterial composites for additive manufacturing of bio-cement structures across scales

机译:参数化学逆向工程生物材料复合材料,用于横跨秤的生物水泥结构的添加剂制造

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Motivated by the need to develop novel renewable and biocompatible composites for complex macro-scale structures, and inspired by natural shell, insect cuticles, and plant cell walls, we have developed a multi-material, robotic 3D printing platform and associated computational techniques that leverage the concepts of parametric chemistry and tunable hierarchical structuring for the additive manufacturing of hierarchical biomaterials, in meter-scale forms, with complex geometries. To do so, we have designed and engineered a bio-cement composite using natural and abundant polymers such as chitosan and cellulose. After assessing the chemical, mechanical, and optical properties of this prototypical bio-composite, we utilized these results as inputs to modulate our computational design and robotic fabrication platforms. Doing so has taken us closer to our goal of true Fabrication Information Modelling (FIM), which integrates atomistic material properties to inform large-scale digital fabrication.
机译:有必要开发用于复杂宏观结构的新型可再生和生物相容性的复合材料,并由天然壳,昆虫角质层和植物细胞壁的启发,我们开发了一种多材料,机器人3D印刷平台和相关的计算技术,可利用具有复杂几何形状的分层生物材料的添加剂制造的参数化学和可调谐分层结构的概念,具有复杂的几何形状。为此,我们设计了使用壳聚糖和纤维素等天然和丰富的聚合物设计和设计了生物水泥复合材料。在评估该原型生物复合材料的化学,机械和光学性质之后,我们利用这些结果作为调制我们计算设计和机器人制造平台的输入。这样做让我们更接近我们真正的制造信息建模(FIM)的目标,这集成了原子的材料特性以通知大规模的数字制造。

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