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Development of ultralight, super-elastic, hierarchical metallic meta-structures with i3DP technology

机译:用I3DP技术开发超广岛,超强弹性,等级金属元结构

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Lightweight and mechanically robust materials show promising applications in thermal insulation, energy absorption, and battery catalyst supports. This study demonstrates an effective method for creation of ultralight metallic structures based on initiator-integrated 3D printing technology (i3DP), which provides a possible platform to design the materials with the best geometric parameters and desired mechanical performance. In this study, ultralight Ni foams with 3D interconnected hollow tubes were fabricated, consisting of hierarchical features spanning three scale orders ranging from submicron to centimeter. The resultant materials can achieve an ultralight density of as low as 5.1 mg cm(-3) and nearly recover after significant compression up to 50%. Due to a high compression ratio, the hierarchical structure exhibits superior properties in terms of energy absorption and mechanical efficiency. The relationship of structural parameters and mechanical response was established. The ability of achieving ultralight density <10 mg cm(-3) and the stable <(E)over bar> similar to (rho) over bar (2) scaling through all range of relative density, indicates an advantage over the previous stochastic metal foams. Overall, this initiator-integrated 3D printing approach provides metallic structures with substantial benefits from the hierarchical design and fabrication flexibility to ultralight applications.
机译:轻质和机械鲁棒材料显示出在绝热,能量吸收和电池催化剂载体中的有希望的应用。本研究展示了基于启动因素集成的3D打印技术(I3DP)的超轻金属结构的有效方法,其提供了一种可能的平台,用于设计具有最佳几何参数的材料和所需的机械性能。在这项研究中,制造了具有3D互连的中空管的超轻的Ni泡沫,由跨越三个尺度从亚微米到厘米的比例订单组成。所得材料可以达到低至5.1mg cm(-3)的超轻密度,并且在显着压缩后几乎回收至50%。由于高压缩比,在能量吸收和机械效率方面具有优异的性能。建立了结构参数和机械响应的关系。通过各种相对密度缩放(2)缩放,实现超广直密度<10mg cm(-3)和稳定的<(e)的稳定性<(e)的能力表示在先前的随机金属上的优点泡沫。总的来说,这种引发器集成的3D打印方法提供了金属结构,具有大量优势,从分层设计和对超高速应用的制造灵活性。

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