Volume 45 Issue 8
Aug.  2024
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JI Zhengjiang, CHENG Linhao, ZHENG Xitao, YAN Leilei. Electromagnetic Wave Dual-Polarized Absorption and Flexural Performance Design of Composite Laminates Based on Carbon Fibers[J]. Applied Mathematics and Mechanics, 2024, 45(8): 1096-1105. doi: 10.21656/1000-0887.450102
Citation: JI Zhengjiang, CHENG Linhao, ZHENG Xitao, YAN Leilei. Electromagnetic Wave Dual-Polarized Absorption and Flexural Performance Design of Composite Laminates Based on Carbon Fibers[J]. Applied Mathematics and Mechanics, 2024, 45(8): 1096-1105. doi: 10.21656/1000-0887.450102

Electromagnetic Wave Dual-Polarized Absorption and Flexural Performance Design of Composite Laminates Based on Carbon Fibers

doi: 10.21656/1000-0887.450102
  • Received Date: 2024-04-15
  • Rev Recd Date: 2024-06-06
  • Publish Date: 2024-08-01
  • To address the challenge of balancing load-bearing and electromagnetic (EM) wave absorption properties in aircraft composite skin, the outstanding mechanical and electrical characteristics of carbon fiber (CF) prepregs were utilized to construct a carbon fiber dual-polarized absorbing laminated structure (CFDALS). The bidirectional CF arrays were introduced into the glass fiber (GF) laminated structure, to endow the laminated structure with dual-polarized EM wave absorption performances. Additionally, the excellent load-bearing capacity of the CF reflector was used to enhance the mechanical properties. Simulation results indicate that, the CFDALS achieves an average absorptivity over 90% within the 8~18 GHz frequency band at incident angles of 0°~45°, and within the 5~18 GHz band at incident angles of 0°~60° for TE and TM polarized EM waves, respectively. The 3-point bending simulation results show that, the CFDALS exhibits higher specific flexural strengths and stiffnesses along 2 directions of the CF arrays while achieving dual-polarized EM wave absorption. Incorporation of bidirectionally arranged CF prepregs into GF prepregs enhances the dual-polarized EM wave absorption performance and the bidirectional flexural performance of the CFDALS simultaneously. The work provides a novel solution for the EM wave absorbing and load-bearing integrated design for aircraft composite skin applications.
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  • [1]
    姚智馨, 肖绍球. 超宽带宽角极化不敏感的电路模拟吸波材料设计[J]. 雷达学报, 2021, 10(2): 274-280.

    YAO Zhixin, XIAO Shaoqiu. Wide-angle, ultra-wideband, and polarization-insensitive circuit analog absorbers[J]. Journal of Radars, 2021, 10(2): 274-280. (in Chinese)
    [2]
    陈明继, 裴永茂, 方岱宁. 夹芯型雷达吸波结构的多目标优化[J]. 应用数学和力学, 2010, 31(3): 315-323. doi: 10.3879/j.issn.1000-0887.2010.03.007

    CHEN Mingji, PEI Yongmao, FANG Daining. Multi-objective optimization design of radar absorbing sandwich structure[J]. Applied Mathematics and Mechanics, 2010, 31(3): 315-323. (in Chinese) doi: 10.3879/j.issn.1000-0887.2010.03.007
    [3]
    陶梅贞, 孙秦, 艾剑良, 等. 现代飞机结构综合设计[M]. 西安: 西北工业大学出版社, 2014.

    TAO Meizhen, SUN Qin, AI Jianliang, et al. Comprehensive Design of Modern Aircraft Structures[M]. Xi'an: Northwestern Polytechnical University Press, 2014. (in Chinese)
    [4]
    高彬, 杨文, 彭兴国. 后机身蒙皮的改进优化[J]. 应用数学和力学, 2014, 35(S1): 113-117.

    GAO Bin, YANG Wen, PENG Xingguo. Optimization design of the rear fuselage skin[J]. Applied Mathematics and Mechanics, 2014, 35(S1): 113-117. (in Chinese)
    [5]
    张雪霏, 周金堂, 姚正军, 等. CIP/GF/CF/EP吸波复合材料的制备及力学性能[J]. 材料工程, 2019, 47(10): 141-147.

    ZHANG Xuefei, ZHOU Jintang, YAO Zhengjun, et al. Preparation and mechanical property of CIP/GF/CF/EP absorbing composites[J]. Journal of Materials and Engineering, 2019, 47(10): 141-147. (in Chinese)
    [6]
    YUE J, MA X F, GONG Y L, et al. Constructing 3D heterogeneous flower-like spherical MoS2/CNTs composites with worm-like surface as a superior electromagnetic wave absorber[J]. Solid State Sciences, 2024, 147: 107388. doi: 10.1016/j.solidstatesciences.2023.107388
    [7]
    ZHU Z X, ZHOU J, LI Y G, et al. Design of a composite metamaterial toward perfect microwave absorption and excellent load-bearing performance[J]. Materials and Design, 2023, 229: 111910. doi: 10.1016/j.matdes.2023.111910
    [8]
    ZHANG C G, JI S J, ZHAO J, et al. Design and analysis of a polarization-independent and incident angle insensitive triple-band metamaterial absorber[J]. Physica E: Low-Dimensional Systems and Nanostructures, 2022, 138: 115131. doi: 10.1016/j.physe.2021.115131
    [9]
    WANG C X, CHEN M J, LEI H S, et al. Radar stealth and mechanical properties of a broadband radar absorbing structure[J]. Composites Part B: Engineering, 2017, 123: 19-27. doi: 10.1016/j.compositesb.2017.05.005
    [10]
    HUANG Y X, YUAN X J, CHEN M J, et al. Ultrathin multifunctional carbon/glass fiber reinforced lossy lattice metastructure for integrated design of broadband microwave absorption and effective load bearing[J]. Carbon, 2018, 144: 449-456.
    [11]
    GOU G J, HUA W L, LIU K Y, et al. Bimetallic MOF@wood-derived hierarchical porous carbon composites for efficient microwave absorption[J]. Diamond and Related Materials, 2024, 141: 110688. doi: 10.1016/j.diamond.2023.110688
    [12]
    KONG W W, SHI J F, ZOU K K, et al. Synergistically optimizing interlaminar and electromagnetic interference shielding behavior of carbon fiber composite based on interfacial reinforcement[J]. Carbon, 2022, 200: 448-455. doi: 10.1016/j.carbon.2022.08.080
    [13]
    LIU Z X, ZHANG R B, WANG S J, et al, Design and fabrication of an all-composite ultra-broadband absorbing structure with superior load-bearing capacity[J]. Composites Science and Technology, 2023, 240: 110094. doi: 10.1016/j.compscitech.2023.110094
    [14]
    刘鑫, 吴倩倩, 于国财, 等. 碳纤维/树脂基复合材料曲壁蜂窝夹芯结构的三点弯曲性能[J]. 应用数学和力学, 2022, 43(5): 490-498.

    LIU Xin, WU Qianqian, YU Guocai, et al. Three-point bending properties of carbon fiber reinforced polymer composite honeycomb sandwich structures with curved wall[J]. Applied Mathematics and Mechanics, 2022, 43(5): 490-498. (in Chinese)
    [15]
    陆晓欣. 碳纤维增强树脂基复合材料表面阻抗调制与结构吸波性能研究[D]. 哈尔滨: 哈尔滨工业大学, 2014.

    LU Xiaoxin. Research on the surface impedance modulation and structural absorbing properties of carbon fiber reinforced plastic[D]. Harbin: Harbin Institute of Technology, 2014. (in Chinese)
    [16]
    ZHANG Z, LEI H S, YANG H Y, et al. Novel multifunctional lattice composite structures with superior load-bearing capacities and radar absorption characteristics[J]. Composites Science and Technology, 2021, 216: 109064.
    [17]
    LI C, CAO Q S, ZHOU G M, et al. Design and study of a new broadband RCS carbon-glass fiber hybrid metamaterial[J]. Composite Structures, 2022, 301: 1116207.
    [18]
    JIN D H, JANG M S, CHOI J H, et al. Multi-slab hybrid radar absorbing structure containing short carbon fiber layer with controllable permittivity[J]. Composite Structures, 2021, 273: 114279.
    [19]
    LI C, CAO Q S, ZHOU G M, et al. A new stitched-plain weave fabric composite structure with reduced broadband radar cross-section[J]. Composite Structures, 2023, 321: 117261.
    [20]
    王黄腾龙. 宽入射角电磁超介质吸波材料吸波机理研究[D]. 成都: 电子科技大学, 2014.

    WANG Huangtenglong. Theoretical analyse of wide-angle metamaterial absorber[D]. Chengdu: University of Electronic Science and Technology of China, 2014. (in Chinese)
    [21]
    姚智馨. 超宽带宽入射角的电路模拟吸波材料机理与设计方法研究[D]. 成都: 电子科技大学, 2021.

    YAO Zhixin. Research on mechanism and design of ultra-wideband wide-angle circuit analog absorbers[D]. Chengdu: University of Electronic Science and Technology of China, 2021. (in Chinese)
    [22]
    张海丰, 李颖, 王东方, 等. 斜入射时平板吸波材料电磁参数匹配规律研究[J]. 江西师范大学学报(自然科学版), 2017, 41(6): 641-644.

    ZHANG Haifeng, LI Ying, WANG Dongfang, et al. The study on the electromagnetic matching laws of absorbing materials at the oblique incidence of electromagnetic wave[J]. Journal of Jiangxi Normal University(Natural Science), 2017, 41(6): 641-644. (in Chinese)
    [23]
    纪正江, 董佳晨, 梁良, 等. 面向飞机蒙皮的碳纤维预浸料吸波承载一体化层合结构设计[J/OL]. 复合材料学报, 2024: 1-10[2024-06-06]. https://doi.org/10.13801/j.cnki.fhclxb.20231019.003.

    JI Zhengjiang, DONG Jiachen, LIANG Liang, et al. Design of carbon fiber prepreg microwave absorbing and load-bearing integrated laminated structure for aircraft skin[J/OL]. Acta Materiae Compositae Sinica, 2024: 1-10[2024-06-06]. https://doi.org/10.13801/j.cnki.fhclxb.20231019.003. (in Chinese)
    [24]
    CHENG L H, SI Y, JI Z J, et al. A novel linear gradient carbon fiber array integrated square honeycomb structure with electromagnetic wave absorption and enhanced mechanical performances[J]. Composite Structures, 2023, 305: 116510.
    [25]
    曾庆敦, 黄小清, 林雪慧. 层内混杂复合材料应力集中问题的研究[J]. 应用数学和力学, 2001, 22(2): 135-139.

    ZENG Qingdun, HUANG Xiaoqing, LIN Xuehui. Study on stress concentrations in an intraply hybrid composite sheet[J]. Applied Mathematics and Mechanics, 2001, 22(2): 135-139. (in Chinese)
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