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Elektromanyetik Ekranlama İşlemlerinde Kullanılan Çeşitli Malzemelerin Değerlendirilmesi

Year 2024, Volume: 7 Issue: 4, 1860 - 1881, 16.09.2024
https://doi.org/10.47495/okufbed.1386984

Abstract

Elektromanyetik ekranlama, günümüz teknolojik dünyasında büyük öneme sahip bir konudur. Bu makale, elektromanyetik ekranlama malzemelerinin özelliklerine odaklanarak, elektromanyetik alanların kontrol altına alınmasının neden önemli olduğunu vurgulamaktadır. Elektromanyetik kirlilik, elektronik cihazlardan ve dış kaynaklardan yayılan elektromanyetik alanların istenmeyen etkilerine işaret eder. Bu tür etkiler, sağlık sorunlarından elektronik cihazların çalışma performansını etkileyen sorunlara kadar uzanabilir. Elektromanyetik ekranlama, bu olumsuz etkileri en aza indirmek için kullanılan yöntemler bütünüdür. Bu nedenle elektromanyetik ekranlayıcı malzemelerin özelliklerinin araştırılması, modern teknolojinin sürdürülebilirliği açısından da hayati öneme sahiptir. Bu derleme çalışması, farklı malzemelerin elektromanyetik ekranlama kapasitelerini incelemekte ve endüstri, tıp, savunma ve iletişim gibi birçok alanda uygulama potansiyeli taşıyan bu teknolojinin gelişimini ilerletmeyi amaçlamaktadır.

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Evaluation of Various Materials Used in Electromagnetic Shielding Processes

Year 2024, Volume: 7 Issue: 4, 1860 - 1881, 16.09.2024
https://doi.org/10.47495/okufbed.1386984

Abstract

Electromagnetic shielding is a topic of major importance in today's technological world. This paper emphasizes the importance of controlling electromagnetic fields by focusing on the properties of electromagnetic shielding materials. Electromagnetic pollution refers to the undesirable effects of electromagnetic fields emitted from electronic devices and external sources. Such effects can range from health problems to problems affecting the operating performance of electronic devices. Electromagnetic shielding is a set of methods used to minimize these negative effects. For this reason, investigating the properties of electromagnetic shielding materials is of critical importance for the sustainable development of modern technology. This review study examines the electromagnetic shielding capacities of different materials and aims to advance the development of this technology, which has the potential for applications in many fields such as industry, medicine, defense, and communication. In conclusion, this article, which reviews the electromagnetic shielding properties of materials, provides a scientific basis on how these materials can be used to control electromagnetic fields. It is thought that this study will be useful for those working in the related field to develop the Turkish literature and to expand the domestic resources.

References

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  • Balan I., Morari C., Patroi A.E. Composite materials for electromagnetic shielding. UPB Scientific Bulletin, Series B 2016; 78(2): 233-238.
  • Barsukov V., Senyk I., Kryukova O., Butenko O. Composite carbon-polymer materials for electromagnetic radiation shielding. Materials Today: Proceedings 2018; 5(8): 15909-15914.
  • Bibikov S., Prokof’Ev M. Composite materials for some radiophysics applications. In Metal, Ceramic and Polymeric Composites for Various Uses 2011; IntechOpen.
  • Bozkurt M., Şahin N., Karabul Y., Kılıç M., Özdemir, Z.G. Radiation shielding performances of Na2SiO3 based low-cost micro and nano composites for diagnostic imaging. Progress in Nuclear Energy 2022; 143: 104058.
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  • Doğan AK., Celep M., Sefa O. Sar ölçümlerinde kullanılmak üzere dipol anten yapımı ve karakterizasyonu. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi 2014; 20(8): 310-313.
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  • Egbo MK. A fundamental review on composite materials and some of their applications in biomedical engineering. Journal of King Saud University-Engineering Sciences 2021; 33(8): 557-568.
  • Geesala S., Pukkala SK., Gottapu AN. Modeling & Simulation Analysis for evaluation of Electromagnetic Sheilding Effectiveness of Conductive Fabrics using Flanged Co-axial Transmission Line Holder as per ASTM D4935-10 standard.15th International Conference on ElectroMagnetic Interference & Compatibility (INCEMIC) 2018; 1-4.
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  • Hariyawan MY., Darwis RS., Posma SN. Pengaruh Ketebalan Material Terhadap Shielding effectiveness pada Frekuensi Rendah. Jurnal Elektro dan Mesin Terapan 2021; 7(2): 18-24.
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  • Inudo S., Miyake M., Hirato T. Electrical properties of Cu I films prepared by spin coating. Physica status solidi (a) 2013; 210(11): 2395-2398.
  • Jagatheesan K., Ramasamy A., Das A., Basu A. Fabrics and their composites for electromagnetic shielding applications. Textile progress 2015; 47(2): 87-161.
  • Jagatheesan K., Ramasamy A., Das A., Basu A. Electromagnetic shielding effectiveness of carbon/stainless steel/polypropylene hybrid yarn-based knitted fabrics and their composites. The journal of the Textile Institute 2018; 109(11): 1445-1457.
  • Jang J.M., Lee H.S., Singh J.K. Electromagnetic shielding performance of different metallic coatings deposited by arc thermal spray process. Materials 2020; 13(24): 5776.
  • Jha BK. Effects of electromagnetic fields on human beings and electronic devices. Himalayan Physics 2012; 3: 38-39.
  • Jia L.C., Ding K.Q., Ma R.J., Wang H.L., Sun W.J., Yan D.X., Li B., Li Z.M. Highly conductive and machine-washable textiles for efficient electromagnetic interference shielding. Advanced Materials Technologies 2019; 4(2):1800503.
  • Jia Z., Zhang M., Liu B., Wang F., Wei G., Su Z. Graphene foams for electromagnetic interference shielding: a review. ACS Applied Nano Materials 2020; 3(7): 6140-6155.
  • Karadakov P.B., VanVeller B. Magnetic shielding paints an accurate and easy-to-visualize portrait of aromaticity. Chemical communications 2021; 57(75): 9504-9513.
  • Karaman ÖF., Çeven EK., Dırık AE. Metal İplikli Dokuma Kumaşlarının Elektromanyetik Kalkanlama Etkinliğinin Mobil Cihazlar ile Tespiti. Uludağ Üniversitesi Mühendislik Fakültesi Dergisi 2016; 21(2): 85-94.
  • Kaya Aİ., Çifci A. Bakır Folyo Kaplı Yönlendirilmiş Yonga Levhanın Elektromanyetik Girişimi Soğurma Etkinliği. Mehmet Akif Ersoy Üniversitesi Fen Bilimleri Enstitüsü Dergisi 2018; 9 (1): 279-284.
  • Khalid T., Albasha L., Qaddoumi N., Yehia S. Feasibility study of using electrically conductive concrete for electromagnetic shielding applications as a substitute for carbon-laced polyurethane absorbers in anechoic chambers. IEEE Transactions on Antennas and Propagation 2017; 65(5): 2428-2435.
  • Kittur J., Desai B., Chaudhari R., Loharkar P.K. A comparative study of EMI shielding effectiveness of metals, metal coatings and carbon-based materials. IOP Conference Series: Materials Science and Engineering 2020; 810(1): 12019.
  • Kruželák J., Kvasničáková A., Hložeková K., Hudec I. Progress in polymers and polymer composites used as efficient materials for EMI shielding. Nanoscale Advances 2021; 3(1): 123-172.
  • Li L., Dong S., Dong X., Yu X., Han B. Electromagnetic wave shielding/absorption performances of cementitious composites incorporating carbon nanotube metamaterial with helical chirality. Journal of Composite Materials 2020; 54(25): 3857-3870.
  • Li P., Shan Y., Deng J., Xijiang Y. Electromagnetic interference shielding effectiveness of carbon-nanotubes based coatings. 2010 Asia-Pacific International Symposium on Electromagnetic Compatibility 2010; 969-972.
  • Los P., Lukomska A., Jeziorska R. Metal-polymer composites for electromagnetic interference shielding applications. Polimery 2016; 61(10): 663-669.
  • Luo J., Huo L., Wang L., Huang X., Li J., Guo Z., Gao Q., Hu M., Xue H., Gao J. Superhydrophobic and multi-responsive fabric composite with excellent electro-photo-thermal effect and electromagnetic interference shielding performance. Chemical Engineering Journal 2020; 391: 123537.
  • Lyu L., Liu J., Liu H., Liu C., Lu Y., Sun K., Fan R., Wang N., Lu N., Guo Z., Wujcik EK. An overview of electrically conductive polymer nanocomposites toward electromagnetic interference shielding. Engineered Science 2018; 2(59): 26-42.
  • Markus I., Ohayon E., Constantini K., Geva-Kleinberger K., Ibrahim R., Ruban A., Gene Y. The Effect of Extremely Low-Frequency Electromagnetic Fields on Inflammation and Performance-Related Indices in Trained Athletes: A Double-Blinded Crossover Study. International Journal of Molecular Sciences 2023; 24(17): 13463.
  • Mei H., Han D., Xiao S., Ji T., Tang J., Cheng L. Improvement of the electromagnetic shielding properties of C/SiC composites by electrophoretic deposition of carbon nanotube on carbon fibers. Carbon 2016; 109: 149-153.
  • Mishra R.K., Gupta R.D., Datar S. Metamaterial microwave absorber (MMA) for electromagnetic interference (EMI) shielding in X-band. Plasmonics 2021; 16(6): 2061-2071.
  • Ozturk M., Chung DDL. Enhancing the electromagnetic interference shielding effectiveness of carbon-fiber reinforced cement paste by coating the carbon fiber with nickel. Journal of Building Engineering 2021a; 41: 102757. Ozturk M., Chung DDL. Radio-wave shielding behavior of steel structures. Journal of Electromagnetic Waves and Applications 2021b; 35(11): 1407-1419.
  • Parmar S., Ray B., Date K., Datar S. Modified graphene as a conducting ink for electromagnetic interference shielding. Journal of Physics D: Applied Physics 2019; 52(37): 375302.
  • Paul CR., Scully RC., Steffka MA. Introduction to electromagnetic compatibility. John Wiley ve Sons 2022.
  • Pavlik M., Kolcunova I., Lukáš L. Measuring the shielding effectiveness and reflection of electromagnetic field of building material. 16th International Scientific Conference on Electric Power Engineering (EPE) 2015; 56-59.
  • Pavlik M., Medved D. (2021). Measuring shielding effectiveness of electromagnetic field for degradation shielding paint. Przeglad Elektrotechniczny 2021; 97(12).
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There are 77 citations in total.

Details

Primary Language Turkish
Subjects Electrochemical Technologies
Journal Section REVIEWS
Authors

Uğur Sorgucu 0000-0001-9227-1526

Sema Atasever 0000-0002-2295-7917

Publication Date September 16, 2024
Submission Date November 6, 2023
Acceptance Date March 4, 2024
Published in Issue Year 2024 Volume: 7 Issue: 4

Cite

APA Sorgucu, U., & Atasever, S. (2024). Elektromanyetik Ekranlama İşlemlerinde Kullanılan Çeşitli Malzemelerin Değerlendirilmesi. Osmaniye Korkut Ata Üniversitesi Fen Bilimleri Enstitüsü Dergisi, 7(4), 1860-1881. https://doi.org/10.47495/okufbed.1386984
AMA Sorgucu U, Atasever S. Elektromanyetik Ekranlama İşlemlerinde Kullanılan Çeşitli Malzemelerin Değerlendirilmesi. Osmaniye Korkut Ata University Journal of Natural and Applied Sciences. September 2024;7(4):1860-1881. doi:10.47495/okufbed.1386984
Chicago Sorgucu, Uğur, and Sema Atasever. “Elektromanyetik Ekranlama İşlemlerinde Kullanılan Çeşitli Malzemelerin Değerlendirilmesi”. Osmaniye Korkut Ata Üniversitesi Fen Bilimleri Enstitüsü Dergisi 7, no. 4 (September 2024): 1860-81. https://doi.org/10.47495/okufbed.1386984.
EndNote Sorgucu U, Atasever S (September 1, 2024) Elektromanyetik Ekranlama İşlemlerinde Kullanılan Çeşitli Malzemelerin Değerlendirilmesi. Osmaniye Korkut Ata Üniversitesi Fen Bilimleri Enstitüsü Dergisi 7 4 1860–1881.
IEEE U. Sorgucu and S. Atasever, “Elektromanyetik Ekranlama İşlemlerinde Kullanılan Çeşitli Malzemelerin Değerlendirilmesi”, Osmaniye Korkut Ata University Journal of Natural and Applied Sciences, vol. 7, no. 4, pp. 1860–1881, 2024, doi: 10.47495/okufbed.1386984.
ISNAD Sorgucu, Uğur - Atasever, Sema. “Elektromanyetik Ekranlama İşlemlerinde Kullanılan Çeşitli Malzemelerin Değerlendirilmesi”. Osmaniye Korkut Ata Üniversitesi Fen Bilimleri Enstitüsü Dergisi 7/4 (September 2024), 1860-1881. https://doi.org/10.47495/okufbed.1386984.
JAMA Sorgucu U, Atasever S. Elektromanyetik Ekranlama İşlemlerinde Kullanılan Çeşitli Malzemelerin Değerlendirilmesi. Osmaniye Korkut Ata University Journal of Natural and Applied Sciences. 2024;7:1860–1881.
MLA Sorgucu, Uğur and Sema Atasever. “Elektromanyetik Ekranlama İşlemlerinde Kullanılan Çeşitli Malzemelerin Değerlendirilmesi”. Osmaniye Korkut Ata Üniversitesi Fen Bilimleri Enstitüsü Dergisi, vol. 7, no. 4, 2024, pp. 1860-81, doi:10.47495/okufbed.1386984.
Vancouver Sorgucu U, Atasever S. Elektromanyetik Ekranlama İşlemlerinde Kullanılan Çeşitli Malzemelerin Değerlendirilmesi. Osmaniye Korkut Ata University Journal of Natural and Applied Sciences. 2024;7(4):1860-81.

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