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3D printed polyurethane exhibits isotropic elastic behavior despite its anisotropic surface

机译:3D印刷聚氨酯表现出各向异性表面的各向同性弹性行为

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Purpose Mechanical properties testing of the hyperelastic thermoplastic polyurethane (TPU) produced by the continuous digital light processing (CDLP) method of additive manufacturing. Primarily, this paper aims to verify that 3D printed TPU still satisfies commonly assumed volumetric incompressibility and material isotropy in elastic range. The secondary aim is to investigate the accuracy and reproducibility of the CDLP method. Design/methodology/approach Cylindrical samples were printed and subjected to a volumetric compression test to reveal their bulk modulus K and maximal theoretical porosity (MTP). Dog bone specimens were oriented along different axes and printed. Their dimensions were measured, and they were subjected to cyclic uniaxial tests up to 100% strain to reveal the level of stress softening and possible anisotropy. The hyperelastic Yeoh model was fitted to the mean response. Findings The authors measured the bulk modulus of K = 1851 +/- 184 MPa. The mean MTP was 0.9 +/- 0.5%. The mean response was identical in both directions and the data could be fitted by the isotropic third order Yeoh function with R<^>2 = 0.996. The dimensions measurement revealed the largest error (above 5%) in the direction perpendicular to the direction of the digital light projection while the dimensions in other two dimensions were much more accurate (0.75 and 1%, respectively). Practical implications The TPU printed by CDLP can be considered and modelled as isotropic and practically volumetrically incompressible. The parts in the printing chamber should be positioned in a way that the important dimensions are not parallel to the direction of the digital light projection. Originality/value The authors experimentally confirmed the volumetric incompressibility and mechanical isotropy of the TPU printed using the CDLP method.
机译:用连续数字光加工(CDLP)制造方法生产的高塑性热塑性聚氨酯(TPU)的目的机械性能试验。主要是,本文旨在验证3D印刷TPU仍然满足弹性范围内常见的体积不可压制性和材料各向同性。二次目的是研究CDLP方法的准确性和再现性。印刷设计/方法/方法圆柱形样品并进行体积压缩试验,以显示它们的散装量k和最大理论孔隙率(MTP)。狗骨标本沿不同的轴定向并印刷。测量其尺寸,对它们进行环状单轴试验,高达100%菌株,以显示胁迫软化水平和可能的各向异性。高弹性YeOH模型适用于平均反应。调查结果作者测量了k = 1851 +/- 184MPa的体积模量。平均mtp为0.9 +/- 0.5%。平均响应在两个方向上相同,并且数据可以通过各向同性的第三阶yeoh函数装配R <^> 2 = 0.996。尺寸测量在垂直于数字光投射方向的方向上显示最大误差(高于5%),而其他两个尺寸的尺寸更准确(分别为0.75和1%)。实际意义CDLP印刷的TPU可以考虑并以各向同性和实际体积的不可压缩建模和建模。打印室中的部件应以重要的尺寸不平行于数字光投射的方向的方式定位。原始性/价值作者通过CDLP方法实验证实了TPU的体积不可压制性和机械各向同性。

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