Electromagnetic Scattering Properties and Characterisation of Sintered SiC Composite–Based Microwave Spectrum
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كيفية الاقتباس

Electromagnetic Scattering Properties and Characterisation of Sintered SiC Composite–Based Microwave Spectrum. (2024). مجلة الخوارزمي الهندسية, 20(3), 71-86. https://doi.org/10.22153/kej.2024.06.002

تواريخ المنشور

الإستلام

2023-11-02

النسخة النهائية

2024-04-05

الموافقة

2024-06-12

النشر الالكتروني

2024-09-01

الملخص

واحدة من أكثر مواد السيراميك الهيكلية الواعدة هي كربيد السيليكون(SiC) ، حيث له خصائص حرارية وكهروميكانيكية ممتازة. هذه الخصائص مفيدة ل CMC لتعزيز أداء المركب خاصة عند إضافات النانو المتكاملة. في هذا البحث, تم تصنيع مركب SiC من SiC بثلاثة تركيزات مع  ZnO و Si. تم اختبار الخواص المغناطيسية لجميع المخاليط باستخدام مراقبة العينة الاهتزازية (VSM). تم تلبيد العينات الخضراء في فرن التلبيد عند 1600 درجة مئوية في بيئة النيتروجين. تم اختبار جميع المركبات التي تم الحصول عليها وتوصيفها باستخدام تقنيات و توصيفات مختلفة مثل حيود الأشعة السينية، ومورفولوجيا السطح تمت باستخدام FESEM، ومحلل الشبكة لاختبار الخصائص العازلة للعينات. بناء على بيئة التلبيد، تم اكتشاف نيتريد السيليكون في المركب بسبب عملية النتردة على طول المركب. من ناحية أخرى، تم حساب الخصائص المغناطيسية والامتصاصية لجميع مركبات SiC. تعتبر الخصائص العازلة عالية حيث يميل المركب إلى أن يكون عاكسا في نطاق التردد المنخفض و نافذ كلما زاد التردد على طول نطاق التردد.

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المراجع

V. Tomar, "5 - Multiscale modeling of the structure and properties of ceramic nanocomposites," in Ceramic Nanocomposites, R. Banerjee and I. Manna, Eds., ed: Woodhead Publishing, 2013, pp. 153-182.

A. A. Kareem, "Enhanced thermal and electrical properties of epoxy/carbon fiber–silicon carbide composites," Advanced Composites Letters, vol. 29, p. 2633366X19894598, 2020/01/01 2020.

S. Singh, S. Shukla, A. Kumar, and D. Singh, "Influence of Zn dispersion in SiC on electromagnetic wave absorption characteristics," Journal of Alloys and Compounds, vol. 738, pp. 448-460, 2018/03/25/ 2018.

D. Ding, W. Zhou, B. Zhang, F. Luo, and D. Zhu, "Complex permittivity and microwave absorbing properties of SiC fiber woven fabrics," Journal of Materials Science, vol. 46, pp. 2709-2714, 2010.

L. Long, W. Zhou, P. Xiao, and Y. Li, "Microwave absorption properties of SiO2 doped furan resin derived carbon particles," Journal of Materials Science: Materials in Electronics, vol. 30, pp. 3359-3364, February 01 2019.

Q. Wen, Y. Feng, Z. Yu, D.-L. Peng, N. Nicoloso, E. Ionescu, et al., "Microwave Absorption of SiC/HfCxN1−x/C Ceramic Nanocomposites with HfCxN1−x-Carbon Core–Shell Particles," Journal of the American Ceramic Society, vol. 99, pp. 2655-2663, 2016/08/01 2016.

X. Ye, Z. Chen, S. Ai, B. Hou, J. Zhang, X. Liang, et al., "Synthesis and microwave absorption properties of novel reticulation SiC/Porous melamine-derived carbon foam," Journal of Alloys and Compounds, vol. 791, pp. 883-891, 2019/06/30/ 2019.

J. Kuang, T. Xiao, X. Hou, Q. Zheng, Q. Wang, P. Jiang, et al., "Microwave synthesis of worm-like SiC nanowires for thin electromagnetic wave absorbing materials," Ceramics International, vol. 45, pp. 11660-11667, 2019/06/15/ 2019.

F. Qin and C. Brosseau, "A review and analysis of microwave absorption in polymer composites filled with carbonaceous particles," Journal of Applied Physics, vol. 111, 2012.

X. Yin, L. Kong, L. Zhang, L. Cheng, N. Travitzky, and P. Greil, "Electromagnetic properties of Si–C–N based ceramics and composites," International Materials Reviews, p. 1743280414Y.000, 2014.

D. de Faoite, D. Browne, F. Chang-Díaz, and K. Stanton, "A review of the processing, composition, and temperature-dependent mechanical and thermal properties of dielectric technical ceramics," Journal of Materials Science, vol. 47, pp. 4211-4235, 05/01 2012.

X. Lin, H. Gong, Y. Zhang, J. Bi, Y. Feng, Y. Liu, et al., "Dielectric properties of porous SiC/Si3N4 ceramics by polysilazane immersion-pyrolysis," Progress in Natural Science: Materials International, vol. 29, pp. 184-189, 2019/04/01/ 2019.

G. Zheng, X. Yin, S. Liu, X. Liu, J. Deng, and Q. Li, "Improved electromagnetic absorbing properties of Si3N4–SiC/SiO2 composite ceramics with multi-shell microstructure," Journal of the European Ceramic Society, vol. 33, pp. 2173-2180, 2013/10/01/ 2013.

S. Xiao, H. Mei, D. Han, and L. Cheng, "Sandwich-like SiCnw/C/Si3N4 porous layered composite for full X-band electromagnetic wave absorption at elevated temperature," Composites Part B: Engineering, vol. 183, p. 107629, 2020/02/15/ 2020.

Q. Li, X. Li, Z. Zhu, L. Ye, W. Liu, Y. Gao, et al., "Evolution of microstructure and mechanical properties of SiCf/SiC composites induced by He ions irradiation at various temperatures," Ceramics International, vol. 49, pp. 39449-39457, 2023/12/01/ 2023.

Y.-z. Ma, X.-w. Yin, and Q. Li, "Effects of heat treatment temperature on microstructure and electromagnetic properties of ordered mesoporous carbon," Transactions of Nonferrous Metals Society of China, vol. 23, pp. 1652-1660, 2013/06/01/ 2013.

F. Qin and C. Brosseau, "A review and analysis of microwave absorption in polymer composites filled with carbonaceous particles," Journal of Applied Physics, vol. 111, p. 061301, 2012.

W.-J. Lee, J.-W. Lee, and C.-G. Kim, "Characteristics of an electromagnetic wave absorbing composite structure with a conducting polymer electromagnetic bandgap (EBG) in the X-band," Composites Science and Technology, vol. 68, pp. 2485-2489, 2008.

W. Zhou, R.-m. Yin, L. Long, H. Luo, W.-d. Hu, Y.-h. Ding, et al., "SiC nanofibers modified Si3N4 ceramics for improved electromagnetic interference shielding in X-band," Ceramics International, vol. 44, pp. 2249-2254, 2018/02/01/ 2018.

S. J. Lee and S. Baek, "Effect of SiO2 content on the microstructure, mechanical and dielectric properties of Si3N4 ceramics," Ceramics International, vol. 42, pp. 9921-9925, 2016/06/01/ 2016.

J. Barta, M. Manela, and R. Fischer, "Si3N4 and Si2N2O for high performance radomes," Materials Science and Engineering, vol. 71, pp. 265-272, 1985/05/01/ 1985.

A. R. Hussein, T. M. B. Albarody, and M. A. Abdullah, "Dielectric and scattering properties of transparent SiC composite in X-band range for radome application," Journal of the Australian Ceramic Society, vol. 59, pp. 1023-1038, 2023/09/01 2023.

Y. Gou, H. Wang, and K. Jian, "Formation of carbon-rich layer on the surface of SiC fiber by sintering under vacuum for superior mechanical and thermal properties," Journal of the European Ceramic Society, vol. 37, pp. 907-914, 2017/03/01/ 2017.

G. Mishra, S. Mohapatra, S. Prusty, M. Sharma, R. Chatterjee, S. Singh, et al., "Magnetic Properties of Nanocrystalline )-SiC," Journal of nanoscience and nanotechnology, vol. 11, pp. 5049-53, 06/01 2011.

D. Varshney and S. Dwivedi, "Structure, morphology, optical and magnetic response of ZnO, Mn3O4and doped Zn0.5Mn0.5O nanoparticles as-synthesized using a chemical co-precipitation method," Semiconductor Science and Technology, vol. 31, p. 035017, 2016/02/15 2016.

H. Khurshid, W. Li, M.-H. Phan, P. Mukherjee, G. C. Hadjipanayis, and H. Srikanth, "Surface spin disorder and exchange-bias in hollow maghemite nanoparticles," Applied Physics Letters, vol. 101, 2012.

X. Qi, Q. Hu, H. Cai, R. Xie, Z. Bai, Y. Jiang, et al., "Heteronanostructured Co@carbon nanotubes-graphene ternary hybrids: synthesis, electromagnetic and excellent microwave absorption properties," Scientific Reports, vol. 6, p. 37972, 2016/11/28 2016.

J. Townsend, R. Burtovyy, P. Aprelev, K. G. Kornev, and I. Luzinov, "Enhancing Mechanical and Thermal Properties of Epoxy Nanocomposites via Alignment of Magnetized SiC Whiskers," ACS Applied Materials & Interfaces, vol. 9, pp. 22927-22940, 2017/07/12 2017.

W. Zhou, R.-m. Yin, L. Long, H. Luo, W.-d. Hu, Y.-h. Ding, et al., "Enhanced high-temperature dielectric properties and microwave absorption of SiC nanofibers modified Si3N4 ceramics within the gigahertz range," Ceramics International, vol. 44, pp. 12301-12307, 2018/08/01/ 2018.

G. Zheng, X. Yin, J. Wang, M. Guo, and X. Wang, "Complex Permittivity and Microwave Absorbing Property of Si3N4–SiC Composite Ceramic," Journal of Materials Science & Technology, vol. 28, pp. 745-750, 2012/08/01/ 2012.

H. Qin, Y. Liu, F. Ye, Z. Cheng, C. Chen, L. Cheng, et al., "Dielectric and microwave absorption properties of SiCnw-SiBCN composite ceramics deposited via chemical vapor infiltration," Journal of Alloys and Compounds, vol. 771, pp. 747-754, 2019/01/15/ 2019.

R. Al-Gaashani, S. Radiman, A. R. Daud, N. Tabet, and Y. Al-Douri, "XPS and optical studies of different morphologies of ZnO nanostructures prepared by microwave methods," Ceramics International, vol. 39, pp. 2283-2292, 2013/04/01/ 2013.

P. Yin, Y. Deng, L. Zhang, J. Huang, H. Li, Y. Li, et al., "The microwave absorbing properties of ZnO/Fe3O4/paraffin composites in low frequency band," Materials Research Express, vol. 5, p. 026109, 2018/02/23 2018.

C.-H. Yu, K.-A. Chiu, T.-H. Do, and L. Chang, "Oriented Si3N4 crystallites formed by plasma nitriding of SiO2/Si (111) substrate," Surface and Coatings Technology, vol. 395, p. 125877, 2020/08/15/ 2020.

J. Prakash, R. Venugopalan, B. M. Tripathi, S. K. Ghosh, J. K. Chakravartty, and A. K. Tyagi, "Chemistry of one dimensional silicon carbide materials: Principle, production, application and future prospects," Progress in Solid State Chemistry, vol. 43, pp. 98-122, 2015.

J.-H. Choi, Y.-W. Nam, M.-S. Jang, and C.-G. Kim, "Characteristics of silicon carbide fiber-reinforced composite for microwave absorbing structures," Composite Structures, 2018.

J. G. Vera-Dimas, M. Tecpoyotl-Torres, J. A. García-Limón, and C. A. O. O. Zezzatti, "Experimental test of epoxy resin as a radome for patch antennas," Procedia Engineering, vol. 35, pp. 155-164, 2012/01/01/ 2012.

P. C. Kim, D. G. Lee, W.-G. Lim, and I. S. Seo, "Polarization characteristics of a composite stealth radome with a frequency selective surface composed of dipole elements," Composite Structures, vol. 90, pp. 242-246, 2009/09/01/ 2009.

X. Li, L. Zhang, X. Yin, L. Feng, and Q. Li, "Effect of chemical vapor infiltration of SiC on the mechanical and electromagnetic properties of Si3N4–SiC ceramic," Scripta Materialia, vol. 63, pp. 657-660, 2010/09/01/ 2010.

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