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A preliminary study of cushion properties of a 3D printed thermoplastic polyurethane Kelvin foam

机译:3D打印热塑性聚氨酯开尔文泡沫的缓冲性能的初步研究

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The cells in conventional packaging foams have random size and orientation, and the energy-absorbing behaviour of these foams is determined by the collective contribution of different sizes of cells. In contrast to the random nature of stochastic foams, 3D printing technologies allow engineers to design and produce foams having engineered cellular structures. In this study, engineered cellular structures based on the classic Kelvin 1887 model were 3D printed in 30 x 30 x 30 mm thermoplastic polyurethane cubes with a repeating size of 216 unit cells. One hundred consecutive cyclic compression tests were performed to assess the 3D printed foam's resilience and energy absorption characteristics. The stress-strain curve of the 3D printed thermoplastic polyurethane foam indicated viscoelastic behaviour and a Mullins effect indicative of resilient rubber. A long wave buckling mode was observed during cyclic compression cycles due to the Kelvin structure. The cushion factor computed from the stress-strain curve was close to that of a metal spring with linear elasticity. The combination of the 3D printed foam's resilience, its much lower density than rubber, and the complete geometric freedom of the engineered cellular structures offer designers the potential to create high-performance cushion materials tailored for packaging applications.
机译:常规包装泡沫中的泡孔具有随机的大小和方向,这些泡沫的能量吸收行为取决于不同大小的泡孔的共同贡献。与随机泡沫的随机性相反,3D打印技术使工程师能够设计和生产具有工程孔结构的泡沫。在这项研究中,基于经典Kelvin 1887模型的工程化细胞结构被3D打印在30 x 30 x 30 mm热塑性聚氨酯立方体中,重复尺寸为216个晶胞。进行了一百次连续的循环压缩测试,以评估3D打印泡沫的回弹性和能量吸收特性。 3D打印热塑性聚氨酯泡沫的应力-应变曲线表明了粘弹性行为,而穆林斯效应表明了弹性橡胶。由于开尔文结构,在循环压缩循环中观察到了长波屈曲模式。根据应力-应变曲线计算的缓冲系数接近具有线性弹性的金属弹簧的缓冲系数。 3D打印泡沫的回弹力,比橡胶低得多的密度以及工程蜂窝结构的完全几何自由度相结合,为设计人员提供了开发针对包装应用量身定制的高性能缓冲垫材料的潜力。

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