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用于平衡高承载能力和吸音性能的双尺度螺旋材料

Dual-Scale Spiral Material for Balancing High Load Bearing and Sound Absorption.

作者信息

Yu Chenlei, Duan Mingyu, Ti Fei, Xin Fengxian, Zhao Guiping, Lu Tian Jian, Yu Runpei, Li Moxiao, Chen Xin

机构信息

State Key Laboratory for Strength and Vibration of Mechanical Structures, Xi'an Jiaotong University, Xi'an, 710049, P. R. China.

National Key Laboratory for Mechanics and Control of Aerospace Structures, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, P. R. China.

出版信息

Adv Sci (Weinh). 2024 Jun;11(22):e2400250. doi: 10.1002/advs.202400250. Epub 2024 Mar 30.

Abstract

Porous materials with sound absorption and load-bearing capabilities are in demand in engineering fields like aviation and rail transportation. However, achieving both properties simultaneously is challenging due to the trade-off between interconnected pores for sound absorption and mechanical strength. Inspired by quilling art, a novel design using spiral material formed by rolling planar materials into helical structures is proposed. Experimental results show high structural strength through self-locking mechanisms, while double porosities from interlayer spiral slits and aligned submillimeter pores provide excellent sound absorption. These spiral sheets surpass foam aluminum in specific strength (up to 5.1 MPa) and approach aerogels in sound absorption (average coefficient of 0.93 within 0-6400 Hz). With its adaptability to various planar materials, this spiral design allows for hybrid combinations of different materials for multi-functionality, paving the way for designing advanced, lightweight porous materials for broad applications.

摘要

具有吸声和承重能力的多孔材料在航空和铁路运输等工程领域有需求。然而,由于吸声所需的相互连通的孔隙与机械强度之间的权衡,要同时实现这两种性能具有挑战性。受卷纸艺术的启发,提出了一种新颖的设计,即通过将平面材料卷成螺旋结构形成螺旋材料。实验结果表明,通过自锁机制可实现较高的结构强度,而层间螺旋缝隙和排列的亚毫米级孔隙形成的双重孔隙率提供了优异的吸声性能。这些螺旋片材在比强度(高达5.1兆帕)方面超过泡沫铝,在吸声方面接近气凝胶(0至6400赫兹内平均系数为0.93)。凭借其对各种平面材料的适应性,这种螺旋设计允许不同材料的混合组合以实现多功能性,为设计适用于广泛应用的先进轻质多孔材料铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d8c/11165468/194afbc44aaa/ADVS-11-2400250-g007.jpg

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