Yıl: 2021 Cilt: 29 Sayı: 2 Sayfa Aralığı: 1015 - 1028 Metin Dili: İngilizce DOI: 10.3906/elk-2005-113 İndeks Tarihi: 07-06-2022

Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm

Öz:
Electromagnetic compatibility (EMC) has now become a substantial challenge more than any other time since the number of electric vehicles (EV) increased rapidly. The electric driving system in an EV consists of power electronic components supplied by high voltage battery source. They are both source and victim of potential electromagnetic interference (EMI) since fast switching process occurs inside them. Electromagnetic shielding provides a significant protection against EMI for any electrical and electronic components inside the vehicle. In this paper, analysis of shielding effectiveness (SE) by optimizing aperture dimensions of a rectangular enclosure is investigated. Realistic dimensions of the shielding enclosure of an inverter component are employed. An optimization methodology based on genetic algorithm (GA) is carried out and applied to an SE analytical model. It is aimed to keep the total aperture area as large as possible inside a particular dimension range while improving SE of the enclosure compared with the reference level. Obtained optimization results are presented by indicating optimum aperture length and width which satisfy both EMC and dimension requirements. Finally, it is concluded that through the optimization methodology designed in this study, the SE of the enclosure is raised from a poor level to an average one while providing larger aperture area
Anahtar Kelime:

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • [1] Aküner C, Dursun A. Electromagnetic compatibility test procedures and radiated test emission test sample. e- Journal of New World Sciences Academy 2009; 4 (2): 238-251 (in Turkish with an abstract in English).
  • [2] Güler S, Yenikaya S, Şimşek M. EMC design for electric vehicle (BEV) propulsion system. In: IEEE 11th Inter- national Conference on Electrical and Electronics Engineering (ELECO); Bursa, Turkey; 2019. pp. 286-289. doi: 10.23919/ELECO47770.2019.8990410
  • [3] Hoda I, Li J, Funato H. EMC design and development methodology for traction power inverters of electric vehicles. In: International Power Electronics Conference (IPEC); Niigata, Japan; 2018. pp. 2073-2077. doi: 10.23919/IPEC.2018.8507898
  • [4] Hirsch H, Jeschke S, Wei L, Trautmann M, Bärenfänger J et al. Latest development of the national and international EMC-standards for electric vehicles and their charging infrastructure. In: IEEE International Symposium on Electromagnetic Compatibility (EMC); Dresden, Germany; 2015. pp. 708-713. doi: 10.1109/ISEMC.2015.7256250
  • [5] Guttowski S, Weber S, Hoene E, John W, Reichl H. EMC issues in cars with electric drives. In: IEEE Symposium on Electromagnetic Compatibility. Symposium Record (Cat. No.03CH37446); Boston, MA, USA; 2003. pp. 777-782. doi: 10.1109/ISEMC.2003.1236706
  • [6] Weber T. EMC filters in high voltage traction drive systems. In: International Symposium on Electromagnetic Compatibility - EMC Europe; Hamburg, Germany; 2008. doi: 10.1109/EMCEUROPE.2008.4786909
  • [7] Qing-yu W, Xiao-dong Z, Lei W, Xi Z. EMC design for HEV drive system. In: International Symposium on Microwave, Antenna, Propagation and EMC Technologies for Wireless Communications; Hangzhou, China; 2007. pp. 1361-1364. doi: 10.1109/MAPE.2007.4393530
  • [8] Basyigit IB, Dogan H. The analytical and artificial intelligence methods to investigate the effects of aperture dimension ratio on electrical shielding effectiveness. International Journal of Electronics and Telecommunications 2019; 65 (3): 359-365. doi: 10.24425/ijet.2019.126322
  • [9] Ilgar TM, Bulut M, Saka B. Shielding effectiveness for metallic enclosures with various aperture shapes. In: 1st URSI Atlantic Radio Science Conference (URSI AT-RASC); Las Palmas, Spain; 2015. doi: 10.1109/URSI-AT- RASC.2015.7303047
  • [10] Chunhong G, Shufang L. Shielding effectiveness of an enclosure with apertures. In: IEEE International Symposium on Microwave, Antenna, Propagation and EMC Technologies for Wireless Communications; Beijing, China; 2005. pp. 614-618. doi: 10.1109/MAPE.2005.1617986
  • [11] Robinson MP, Benson TM, Christopoulos C, Dawson JF, Ganley MD et al. Analytical formulation for the shielding effectiveness of enclosures with apertures. IEEE Transactions on Electromagnetic Compatibility 1988; 40 (3): 240- 248. doi: 10.1109/15.709422
  • [12] Belokour I, Lovetri J, Kashyap S. Shielding effectiveness estimation of enclosures with apertures. In: IEEE International Symposium on Electromagnetic Compatibility; Washington, DC, USA; 2000. pp. 855-860. doi: 10.1109/ISEMC.2000.874734
  • [13] Chen J, Guo J, Tian C. Analyzing the shielding effectiveness of a graphene-coated shielding sheet by us- ing the HIE-FDTD method. IEEE Transactions on Electromagnetic Compatibility 2018; 60 (2): 362-367. doi: 10.1109/TEMC.2016.2621884
  • [14] Yan L, Fang M, Zhao X, Liu Q, Zhou H. Shielding effectiveness prediction of metallic structures with thin slots using FDTD. In: IEEE International Symposium on Electromagnetic Compatibility and 2018 IEEE Asia-Pacific Symposium on Electromagnetic Compatibility (EMC/APEMC); Singapore, Singapore; 2018. doi: 10.1109/ISEMC.2018.8393798
  • 15] Cerri G, Deleo R, Primiani VM. Theoretical and experimental evaluation of the electromagnetic radiation from apertures in shielded enclosure. IEEE Transactions on Electromagnetic Compatibility 1992; 34 (4): 423-432. doi: 10.1109/15.179275
  • [16] Kraft CH. Modeling leakage through finite apertures with TLM. In: Proceedings of IEEE Symposium on Electro- magnetic Compatibility; Chicago, IL, USA; 1994. pp. 73-76. doi: 10.1109/ISEMC.1994.385681
  • [17] Yenikaya, S. Hybrid MoM/FEM modelling of shielding effectiveness of loaded rectangular enclosures with apertures. In: IEEE International Symposium on Electromagnetic Compatibility; Austin, TX, USA; 2009. pp. 61-65. doi: 10.1109/ISEMC.2009.5284691
  • [18] Feng, C, Shen Z. A hybrid FD-MoM technique for predicting shielding effectiveness of metallic enclosures with aper- tures. IEEE Transactions on Electromagnetic Compatibility 2005; 47 (3): 456-462. doi: 10.1109/TEMC.2005.851726
  • [19] Ying X, Liao Y, Shi G, Zhang Y. Analysis and control of shielding effectiveness for a rectangular enclosure with a rectangular aperture. In: 11th International Symposium on Antennas, Propagation and EM Theory (ISAPE); Guilin, China; 2016. pp. 678-681. doi: 10.1109/ISAPE.2016.7834045
  • [20] Mendez HA. Shielding theory of enclosure with apertures. IEEE Transactions on Electromagnetic Compatibility 1978; 20 (2): 296-305. doi: 10.1109/TEMC.1978.303722
  • [21] Lan S, Lin W. Genetic algorithm optimization research based on simulated annealing. In: 17th IEEE/ACIS International Conference on Software Engineering, Artificial Intelligence, Networking and Parallel/Distributed Computing (SNPD); Shangai, China; 2016. doi: 10.1109/SNPD.2016.7515946
  • [22] Guo P, Wang X, Han Y. The enhanced genetic algorithms for the optimization design. In: 3rd International Conference on Biomedical Engineering and Informatics; Yantai, China; 2010. doi: 10.1109/BMEI.2010.5639829
  • [23] Yeniay Ö. An overview of genetic algorithms. Anadolu University Journal of Science and Technology 2001; 2 (1): 37-49.
  • [24] Oktem MH, Saka B. Design of multilayered cylindrical shields using a genetic algorithm. IEEE Transactions on Electromagnetic Compatibility 2001; 43 (2): 170-176. doi: 10.1109/15.925537
  • [25] Gupta KC, Garg R, Bahl IJ, Bhartia P. Coplanar Lines: Coplanar Waveguide and Coplanar Strips. In: Microstrip Lines and Slotlines. 2nd ed. Norwood, MA, USA: Artech House Inc., 1996, pp. 375-451.
  • [26] Ott HW. Shielding. In: Sanders S (editor). Electromagnetic Compatibility Engineering. Hoboken, NJ, USA: Wiley, 2009, pp. 238-301
APA Güler S, Yenikaya S (2021). Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm. , 1015 - 1028. 10.3906/elk-2005-113
Chicago Güler Sunay,Yenikaya Sibel Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm. (2021): 1015 - 1028. 10.3906/elk-2005-113
MLA Güler Sunay,Yenikaya Sibel Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm. , 2021, ss.1015 - 1028. 10.3906/elk-2005-113
AMA Güler S,Yenikaya S Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm. . 2021; 1015 - 1028. 10.3906/elk-2005-113
Vancouver Güler S,Yenikaya S Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm. . 2021; 1015 - 1028. 10.3906/elk-2005-113
IEEE Güler S,Yenikaya S "Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm." , ss.1015 - 1028, 2021. 10.3906/elk-2005-113
ISNAD Güler, Sunay - Yenikaya, Sibel. "Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm". (2021), 1015-1028. https://doi.org/10.3906/elk-2005-113
APA Güler S, Yenikaya S (2021). Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm. Turkish Journal of Electrical Engineering and Computer Sciences, 29(2), 1015 - 1028. 10.3906/elk-2005-113
Chicago Güler Sunay,Yenikaya Sibel Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm. Turkish Journal of Electrical Engineering and Computer Sciences 29, no.2 (2021): 1015 - 1028. 10.3906/elk-2005-113
MLA Güler Sunay,Yenikaya Sibel Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm. Turkish Journal of Electrical Engineering and Computer Sciences, vol.29, no.2, 2021, ss.1015 - 1028. 10.3906/elk-2005-113
AMA Güler S,Yenikaya S Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm. Turkish Journal of Electrical Engineering and Computer Sciences. 2021; 29(2): 1015 - 1028. 10.3906/elk-2005-113
Vancouver Güler S,Yenikaya S Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm. Turkish Journal of Electrical Engineering and Computer Sciences. 2021; 29(2): 1015 - 1028. 10.3906/elk-2005-113
IEEE Güler S,Yenikaya S "Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm." Turkish Journal of Electrical Engineering and Computer Sciences, 29, ss.1015 - 1028, 2021. 10.3906/elk-2005-113
ISNAD Güler, Sunay - Yenikaya, Sibel. "Analysis of shielding effectiveness by optimizing aperture dimensions of arectangular enclosure with genetic algorithmdimensions of arectangular enclosure with genetic algorithm". Turkish Journal of Electrical Engineering and Computer Sciences 29/2 (2021), 1015-1028. https://doi.org/10.3906/elk-2005-113