COMPOSITES SCIENCE AND ENGINEERING ›› 2026, Vol. 0 ›› Issue (2): 85-91.DOI: 10.19936/j.cnki.2096-8000.20260228.012
• BASIC AND MECHANICAL PERFORMANCE RESEARCH • Previous Articles Next Articles
LI Songming, YANG Shengshu, LIU Yushun, GUO Wen, XING Liying*
Received:2024-11-21
Online:2026-02-28
Published:2026-03-12
CLC Number:
LI Songming, YANG Shengshu, LIU Yushun, GUO Wen, XING Liying. Electromagnetic performance analysis and optimization of curved functionally composite material structures[J]. COMPOSITES SCIENCE AND ENGINEERING, 2026, 0(2): 85-91.
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URL: http://frp.cn/EN/10.19936/j.cnki.2096-8000.20260228.012
| [1] 韩敏阳, 韦国科, 周明, 等. 低频雷达吸波材料的研究进展[J]. 复合材料学报, 2022, 39(4): 1363-1377. [2] CHOI W H, KIM C G. Broadband microwave-absorbing honeycomb structure with novel design concept[J]. Composites Part B: Engineering, 2015, 83: 14-20. [3] LI S M, HUANG H, WU S B, et al. Study on microwave absorption performance enhancement of metamaterial/honeycomb sandwich composites in the low frequency band[J]. Polymers, 2022, 14(7): 1424. [4] HE F, ZHAO Y, SI K X, et al. Multisection step-impedance modeling and analysis of broadband microwave honeycomb absorbing structures[J]. Journal of Physics D: Applied Physics, 2021, 54(1): 015501. [5] KHURRAM A A, RAKHA S A, ALI N, et al. Microwave absorbing properties of lightweight nanocomposite/honeycomb sandwich structures[J]. Journal of Nanotechnology in Engineering and Medicine, 2015, 6(1): 011006. [6] 礼嵩明, 蒋诗才, 望咏林, 等. “超材料”结构吸波复合材料技术研究[J]. 材料工程, 2017, 45(11): 10-14. [7] 礼嵩明, 吴思保, 王甲富, 等. 含超材料的新型蜂窝夹层结构吸波复合材料[J]. 航空材料学报, 2019, 39(3): 94-99. [8] ZHAO Y C, LIU J F, SONG Z G, et al. Novel closed-form expressions for effective electromagnetic parameters of honeycomb radar-absorbing structure[J]. IEEE Transactions on Antennas and Propagation, 2016, 64(5): 1768-1778. [9] ZHAO Y C, LIU J F, SONG Z G, et al. Novel design method for grading honeycomb radar absorbing structure based on dispersive effective permittivity formula[J]. IEEE Antennas and Wireless Propagation Letters, 2017, 16: 1281-1284. [10] CHOI W H, CHOE H S, NAM Y W. Multifunctional microwave heating and absorbing honeycomb core using nickel-coated glass fabric[J]. Composites Part A: Applied Science and Manufacturing, 2020, 138:106070. [11] ZHAO Y M, SHAO Y M, JI G L, et al. Enhanced microwave-absorbing property of honeycomb sandwich structure with a significant interface effect[J]. Materials, 2022, 15(16): 5741. [12] WU L J, WANG Q, TANG Z H. Absorbing properties of three dimensional honeycomb-structured absorbing materials[C]//Institute of Electrical and Electronic Engineers. Proceedings of Asia-Pacific Conference on Environmental Electromagnetics. Piscataway: IEEE, 2012: 309-312. [13] FENG J, ZHANG Y C, WANG P, et al. Oblique incidence performance of radar absorbing honeycombs[J]. Composites Part B: Engineering, 2016, 99: 465-471. [14] WANG P, ZHANG Y C, CHEN H L, et al. Broadband radar absorption and mechanical behaviors of bendable over-expanded honeycomb panels[J]. Composites Science and Technology, 2018, 162: 33-48. [15] SANG B M, WON L J, SANG K Y, et al. A study on the microwave absorbing honeycomb core embedded with conductive periodic patterned surfaces for the effective dielectric constant[J]. Composite Structures, 2022, 289: 115471. [16] LUO H, CHEN F, WANG F, et al. Preparation and microwave absorption properties of honeycomb core structures coated with composite absorber[J]. AIP Advances, 2018, 8(5): 056635. [17] LYU L H, LIU W D, SUN B Z. Electromagnetic wave-absorbing and bending properties of three-dimensional honeycomb woven composites[J]. Polymers, 2021, 13(9): 1485. [18] LI W C, XU L Y, ZHANG X, et al. Investigating the effect of honeycomb structure composite on microwave absorption properties[J]. Composites Communications, 2020, 19: 182-188. [19] HE F, SI K X, LI R, et al. Broadband frequency selective surface absorber with dual-section step-impedance matching for oblique incidence applications[J]. IEEE Transactions on Antennas and Propagation, 2021, 69(11): 7647-7657. [20] 礼嵩明, 吴思保, 院伟, 等. 宽频蜂窝夹层结构吸波复合材料设计方法研究[J]. 玻璃钢/复合材料, 2019(7): 92-97. [21] 李旭光, 吴雪猛, 石珺玺, 等. 蜂窝夹层结构复合材料的吸波隐身技术研究进展[J]. 复合材料学报, 2024, 41(6): 2775-2788. [22] SCHMITZ P D, SANTANA L, BARRA G M O, et al. 3D printed honeycomb bilayer structures based on polylactic acid as lightweight microwave absorbing materials[J]. Polymers for Advanced Technologies, 2024, 35(3): 6339. [23] 牛磊, 郑磊, 潘文辉, 等. 多层复合蜂窝芯结构优化设计及其宽带吸波性能研究[J]. 微波学报, 2024, 40(3): 34-39. |
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