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Multifunctional Polyurethane-Based Foam Composites Reinforced by a Fabric Structure: Preparation Mechanical Acoustic and EMI Shielding Properties

机译:织物结构增强的多功能聚氨酯基泡沫复合材料:制备机械声学和EMI屏蔽性能

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摘要

This study proposes multifunctional, fabric-reinforced composites (MFRCs) based on a bionic design, which are prepared by two-step foaming and a combination of different fabric constructs. MFRCs are evaluated in terms of sound absorption, compression resistance, electromagnetic interference shielding effectiveness (EMI SE), and drop impact, thereby examining the effects of fabric structures. The test results indicate that the enhanced composites have superiority functions when combined with carbon fabric in the upper layer and spacer fabric in the lower layer. They have maximum compression resistance, which is 116.9 kPa at a strain of 60%, and their compression strength is increased by 135.9% compared with the control specimen. As a result of the fabric structure on the cell morphology, the maximum resonance peak shifts toward high frequency when using spacer fabric as the intermediate layer. The average sound absorption coefficient is above 0.7 at 1000–4000 Hz. The reinforced composites possessed EMI SE of 50 dB at 2 GHz; an attenuation rate of 99.999% was obtained, suggesting a good practical application value. Furthermore, the cushioning effect of the MFRCs improved significantly, and the maximum dynamic contact force during the impact process was reduced by 57.28% compared with composites without any fabric structure. The resulting MFRCs are expected to be used as sound absorbent security walls, machinery equipment, and packaging for commercial EMI shielding applications in the future.
机译:这项研究提出了一种基于仿生设计的多功能织物增强复合材料(MFRC),该复合材料是通过两步发泡和不同织物结构的组合来制备的。 MFRC在吸声,抗压缩性,电磁干扰屏蔽效果(EMI SE)和跌落冲击方面进行了评估,从而检查了织物结构的影响。测试结果表明,增强复合材料与上层的碳纤维织物和下层的间隔织物结合时具有优越的功能。它们具有最大的抗压强度,在60%的应变下为116.9 kPa,与对照样品相比,其抗压强度提高了135.9%。由于细胞形态上的织物结构,当使用间隔织物作为中间层时,最大共振峰向高频移动。在1000–4000 Hz时,平均吸声系数大于0.7。增强复合材料在2 GHz时的EMI SE为50 dB。衰减率为99.999%,具有良好的实际应用价值。此外,与没有织物结构的复合材料相比,MFRCs的缓冲效果显着提高,并且在冲击过程中的最大动态接触力降低了57.28%。预期所得的MFRC将来会用作吸音安全墙,机械设备以及用于商业EMI屏蔽应用的包装。

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