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Fitting Laguerre Tessellations to the Microstructure of Cellular Materials

机译:将LAGUERRE TESSELLATION贴在细胞材料的微观结构

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Cellular materials are employed in many fields, ranging from medical technologies to aerospace industry. In applications, understanding the influence of the microstructures on the physical properties of materials is of crucial importance. Stochastic models are a powerful tool to investigate this link. In particular, random Laguerre tessellations (weighted generalizations of the well-known Voronoi model) generated by systems of non-overlapping balls have proven to be a promising model for rigid foams. Model fitting is based on geometric characteristics estimated from micro-computed tomographic images of the microstructures. More precisely, the model is chosen to minimize a distance measure composed of several geometric characteristics of the typical cell. However, with this approach, inference of the model parameters is time consuming and needs manual interaction. In this talk, we investigate strategies leading to an automatic model fitting. Finally, this model fitting approach is applied to polymethacrylimide (PMI) foam samples.
机译:在许多领域中使用细胞材料,从医学技术到航空航天工业。在应用中,了解微观结构对材料物理性质的影响至关重要。随机模型是调查此链接的强大工具。特别是,由非重叠球系统产生的随机拉格鲁曲面细分(众所周知的Voronoi模型的加权概括)已经被证明是刚性泡沫的有希望的模型。模型拟合基于从微观结构的微计算机断层图像估计的几何特征。更确切地说,选择模型以最小化由典型电池的几个几何特性组成的距离测量。然而,通过这种方法,模型参数的推断是耗时和需要手动交互。在这次谈话中,我们调查了导致自动模型配件的策略。最后,该模型配合方法应用于聚甲基丙烯酸酯(PMI)泡沫样品。

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