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Categorical prototyping: incorporating molecular mechanisms into 3D printing

机译:分类原型:将分子机制纳入3D打印

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摘要

We apply the mathematical framework of category theory to articulate the precise relation between the structure and mechanics of a nanoscale system in a macroscopic domain. We maintain the chosen molecular mechanical properties from the nanoscale to the continuum scale. Therein we demonstrate a procedure to 'protoype a model', as category theory enables us to maintain certain information across disparate fields of study, distinct scales, or physical realizations. This process fits naturally with prototyping, as a prototype is not a complete product but rather a reduction to test a subset of properties. To illustrate this point, we use large-scale multi-material printing to examine the scaling of the elastic modulus of 2D carbon allotropes at the macroscale and validate our printed model using experimental testing. The resulting hand-held materials can be examined more readily, and yield insights beyond those available in the original digital representations. We demonstrate this concept by twisting the material, a test beyond the scope of the original model. The method developed can be extended to other methods of additive manufacturing.
机译:我们应用范畴论的数学框架来阐明宏观领域中纳米尺度系统的结构与力学之间的精确关系。我们维持从纳米尺度到连续尺度的选定分子力学性能。由于类别理论使我们能够在不同的研究领域,不同的规模或物理实现中维护某些信息,因此我们在此演示了“对模型进行原型制作”的过程。这个过程很自然地适合原型制作,因为原型不是完整的产品,而是简化的测试属性子集。为了说明这一点,我们使用大规模的多材料打印在宏观上检查了二维碳同素异形体的弹性模量的缩放比例,并使用实验测试验证了我们的打印模型。生成的手持材料可以更容易地进行检查,并获得超出原始数字表示形式的见解。我们通过扭曲材料来证明这一概念,这是超出原始模型范围的测试。开发的方法可以扩展到其他增材制造方法。

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