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An inverse method for determining the spatially resolved properties of viscoelastic–viscoplastic three-dimensional printed materials

机译:确定粘弹性-粘塑性三维印刷材料的空间分辨特性的逆方法

摘要

A method using experimental nanoindentation and inverse finite-element analysis (FEA) has been developed that enables the spatial variation of material constitutive properties to be accurately determined. The method was used to measure property variation in a three-dimensional printed (3DP) polymeric material. The accuracy of the method is dependent on the applicability of the constitutive model used in the inverse FEA, hence four potential material models: viscoelastic, viscoelastic–viscoplastic, nonlinear viscoelastic and nonlinear viscoelastic–viscoplastic were evaluated, with the latter enabling the best fit to experimental data. Significant changes in material properties were seen in the depth direction of the 3DP sample, which could be linked to the degree of cross-linking within the material, a feature inherent in a UV-cured layer-by-layer construction method. It is proposed that the method is a powerful tool in the analysis of manufacturing processes with potential spatial property variation that will also enable the accurate prediction of final manufactured part performance.
机译:已经开发出一种使用实验性纳米压痕和有限元逆分析(FEA)的方法,该方法能够准确确定材料本构特性的空间变化。该方法用于测量三维印刷(3DP)聚合物材料中的特性变化。该方法的准确性取决于逆FEA中使用的本构模型的适用性,因此评估了四种潜在的材料模型:粘弹性,粘弹性-粘塑性,非线性粘弹性和非线性粘弹性-粘塑性,其中后者可以最适合实验数据。在3DP样品的深度方向上可以看到材料性能的重大变化,这可能与材料内的交联度有关,这是UV固化逐层构造方法固有的特征。建议该方法是分析具有潜在空间特性变化的制造过程的有力工具,这也将使最终制造零件性能的准确预测成为可能。

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