填充纳米填料的三维打印蜂窝结构具有高效的电磁干扰屏蔽性能

Jeyanthi Subramanian, V. Selvaraj, Kuldeep A. Saxena, E. Jayamani, Rohan Singh, Chander Prakash, D. Buddhi
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引用次数: 0

摘要

这项研究的新颖之处在于制造有效的电磁干扰(EMI)屏蔽材料,以防止电气元件受到 EMI 的影响。在这项工作中,使用 Solidworks 设计了一种蜂窝结构,该结构的平行边缘之间的距离各不相同。所有蜂窝结构均使用 Creality Ender-3 三维打印机制造。结构孔中填充了塑化剂/炭黑/铝粉。扫描电子显微镜和傅立叶变换红外光谱测试显示了塑化剂中纳米填料的存在。在设计和分析电磁干扰屏蔽效果(EMI SE)实验时,采用了响应面方法中的中央复合设计。利用 EMI SE 结果建立了数学模型,以预测结果并通过误差估计进行验证。通过在三维打印蜂窝结构中加入碳黑/铝/塑性复合材料,厚度为 6 毫米的蜂窝结构在 8-12 GHz 频率范围内显示出 23.8 dB 的极高总 EMI SE。根据优化研究的结果,1.5 重量% 的炭黑、0.5 重量% 的铝粉和 4 毫米的平行边缘间距是实现最高总 EMI SE 的最佳参数。总之,研究结果表明,填充纳米填料的三维打印蜂窝结构是一种非常理想的材料,可用于国防和航空等对轻质和 EMI SE 性能要求极高的领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
3D-printed honeycomb structure filled with nanofillers for efficient electromagnetic interference shielding performance
The novelty of this research aims to fabricate effective electromagnetic interference (EMI) shielding materials to prevent electrical components from EMI. In this work, Solidworks was used to design a honeycomb structure with different distances between parallel edges of the structure. All honeycomb structures were manufactured using Creality Ender-3, a 3D printer. The holes of the structure were filled with plasticine/carbon black/aluminum powder. SEM and FTIR tests were used to showcase the presence of nanofillers in the plasticine. The Central Composite design, a response surface methodology method, has been used to design and analyze the EMI shielding effectiveness (EMI SE) experiments. Mathematical models have been developed using the EMI SE results to predict the outcomes and verify them with error estimation. By incorporating the carbon black/aluminum/plasticine composite into the 3D-printed honeycomb structures, the honeycomb structure with a thickness of 6 mm shows a considerably high total EMI SE of 23.8 dB in the 8–12 GHz frequency range. According to the results of an optimization study, 1.5 wt.% of carbon black, 0.5 wt.% of aluminum powder, and a 4-mm distance between parallel edges are the optimal parameters for achieving the highest total EMI SE. Overall, the results show a 3D-printed honeycomb structure filled with nanofillers is a fantastic material employed in various fields, including defense and aviation, where lighter weight and EMI SE properties are critical.
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