首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers. Part L, Journal of Materials: Design and Application >Mechanical performance of three-dimensional printed sandwich composite with a high-flexible core
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Mechanical performance of three-dimensional printed sandwich composite with a high-flexible core

机译:具有高柔性芯的三维印刷三明治复合材料的机械性能

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This paper aims to investigate experimentally and using finite element analysis the performance of using three-dimensional printing technology to produce a composite sandwich panel that is made of the high-flexible core as well as with high stiffness upper and lower surfaces made of a glass fiber reinforced composite filament. There are many advantages of using sandwich structures in many applications, especially the aerospace field, where the high stiffness to strength and the lightweight is the most preferred in such applications. The conventional manufacturing methods that are used to produce sandwich panels are limited to particular core geometry, whereas manufacturing a composite core is not possible by these traditional production methods. So by using additive manufacturing technology, it becomes more applicable to design a combination of different geometries and materials to achieve properties that have never been made before, especially combining flexibility and high energy absorption keeping high strength to failure. A central deflection to a length of 0.26 is observed within the elastic zone, a remarkable ratio in beams that reflects the three-dimensional printed sandwich beams’ capability with a highly flexible core to absorb energy that would open doors for many industrial applications that is attributed to the lowest flexural rigidity (167E-3Pa · m4) of the sandwich by using the TriHex infill pattern. In contrast, the Gyroid infill structure could afford the highest central load (0.264 kN). At the peak load applied on the sandwich beam, a maximum error of 5.4% is estimated by finite element analysis lower than the experimental values.
机译:本文旨在通过实验和使用有限元分析来研究使用三维印刷技术的性能,生产由高柔性芯和由玻璃纤维制成的高刚度的高刚度和下表面制成的复合夹层面板增强复合灯丝。在许多应用中使用夹层结构具有许多优点,特别是航空航天场,其中高强度和轻质是在这种应用中最优选的。用于生产夹层面板的传统制造方法限于特定的芯几何形状,而通过这些传统的生产方法无法制造复合芯。因此,通过使用添加剂制造技术,它变得更适用于设计不同几何形状和材料的组合,以实现从未做过的性质,特别是组合灵活性和高能量吸收保持高强度与失效。在弹性区内观察到长度为0.26的中央偏转,横梁中的显着比将三维印刷的夹层光束的能力与高度柔性的核心反射以吸收能量为归因的许多工业应用打开门的能量通过使用Trihex填充图案,夹层的最低弯曲刚度(167E-3PA·M4)。相比之下,陀螺填充结构可能负担最高的中央负荷(0.264 kN)。在施加在夹层光束上的峰值负荷,通过比实验值低的有限元分析估计5.4%的最大误差。

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