Open Access
Issue |
E3S Web Conf.
Volume 336, 2022
The International Conference on Energy and Green Computing (ICEGC’2021)
|
|
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Article Number | 00076 | |
Number of page(s) | 10 | |
DOI | https://doi.org/10.1051/e3sconf/202233600076 | |
Published online | 17 January 2022 |
- A. Cigre, Electrical and magnetic fields generated by transmission networks, example of calculation of electromagnetic disturbances by the CIGRE method, International Conference of Large High-voltage Electrical Networks, Paris Edition Dunod, 21-43 (1983) [Google Scholar]
- G. Kulkarni, W.Z. Gandhare, Proximity effects of high voltage transmission lines on humans, ACEEE Int. J. on Electrical and Power Engineering 3, 1, 2832 (2012) [Google Scholar]
- R. Radwan, M. Abdel-Salam, A.B. Mahdy, M. Samy, Laboratory Validation of Calculations of Magnetic Field Mitigation Underneath Transmission Lines Using Passive and Active Shield Wires, Innovative Systems Design and Engineering 2, 4, 218–232 (2011) [Google Scholar]
- J. C. Bravo-Rodríguez, J .C. del-Pino-López, and P.A. Cruz-Romero, Survey on Optimization Techniques Applied to Magnetic Field Mitigation in Power System, Escuela Politécnica Superior, Universidad de Sevilla. Energies 12, 7 p. 1332, https://doi:10.3390/en12071332 (2019) [Google Scholar]
- Jamal M. Ehtaiba, Sayeh M. Elhabashi, Magnetic Field Around the New 400kV OH Power Transmission Lines In Libya, Proceedings of the Wseas International Conference on environment, medicine and health sciences, January 2010 [Google Scholar]
- W. Tourab, A. Babouri, Measurement and modeling of personal exposure to the electric and magnetic fields in the vicinity of high voltage power lines, Safety and Health at Work 7, 10, 102–110, (2016) [Google Scholar]
- R. Amiri, H. Hadi, M. Marich, The influence of sag in the electric field calculation around high voltage overhead transmission lines, In: 2006 IEEE Conference on Electrical Insulation and Dielectric Phenomena. IEEE, 206-209, (2006) [CrossRef] [Google Scholar]
- R. Deltuva, R. Lovrić, Distribution of magnetic field in 400kV double-circuit transmission lines, Applied Sciences 10, 9, p. 3266 [Google Scholar]
- S. Vujević, D. Lovrić, P. Sarajčev, Comparison of 2D algorithms for the computation of power line electric and magnetic fields, European Transactions on Electrical Power 21, 1, 505-521 (2011) [CrossRef] [Google Scholar]
- K Erenturk, MATLAB-based GUIs for fuzzy logic controller design and applications to PMDC motor and AVR control, Computer Applications in Engineering Education 13, 1, 10-25 (2005) [CrossRef] [Google Scholar]
- J. R. Riba Ruiz, A. Garcia Espinosa, J. A. Ortega, Validation of the parametric model of a DC contactor using Matlab-Simulink, Computer Applications in Engineering Education, Published online in Wiley Inter Science, DOI: 10.1002/cae.20315 19, 2, 337-346 (2011) [Google Scholar]
- C. Hamilton, Using MATLAB to advance the robotics laboratory, Computer Applications in Engineering Education 15, 3, 205-213 (2007) [CrossRef] [Google Scholar]
- M. C. M. Teixeira, E. Assunção, M. R. Covacic, Proportional controllers: Direct method for stability analysis and MATLAB implementation, IEEE Transactions on Education 50, 1, 74-78 (2007) [CrossRef] [Google Scholar]
- C. Garrido, A. F. Otero, J. Cidras, Low-frequency magnetic fields from electrical appliances and power lines, IEEE Transactions on Power Delivery 18, 4, 1310-1319 (2003) [CrossRef] [Google Scholar]
- R. G. Olsen, T. A. Pankaskie, On the exact, carson and image theories for wires at or above the earth’s interface, IEEE Transactions on Power Apparatus and Systems PAS-102, 4, 769-778 (1983) [CrossRef] [Google Scholar]
- H. M. Ismail, Characteristics of the magnetic field under hybrid ac/dc high voltage transmission lines, electric power systems Research 79, 1, 1-7 (2009) [Google Scholar]
- P. A. Tipler, Physics for Scientifics and Engineers, 4th edition. W.H. Freeman and Company, Worth Publishers, New York, 892-893 (1990) [Google Scholar]
- P. R. Bannister, Image theory results for the mutual impedance of crossing earth return circuits, IEEE Transactions on Electromagnetic Compatibility 4, 158-160 (1973) [CrossRef] [Google Scholar]
- K. Budnik, W. Machczyński, Contribution to studies on calculation of the magnetic field under power lines, European Transactions on Electrical Power 16, 4, 345-364 (2006) [Google Scholar]
- M. Darveniza, A practical extension of Rusck's formula for maximum lightning-induced voltages that accounts for ground resistivity, IEEE Transactions on Power Delivery 22, 1, 605-612 (2006) [Google Scholar]
- E. Resistivity, ANSI/IEEE Std 81, An American National Standard IEEE Guide for Measuring Earth Resistivity, Ground Impedance, and Earth Surface Potentials of a Ground System (1983) [Google Scholar]
- D. Yao, B. Li, J. Deng, D. Huang, X. Wu, Power frequency magnetic field of heavy current transmit electricity lines based on simulation current method, In Proceedings 2008 World Automation Congress. IEEE, 1-4 (2008) [Google Scholar]
- J.R Riba Ruiz, A. Garcia Espinosa, Magnetic field generated by sagging conductors of overhead power lines, Computer Applications in Engineering Education 19, 4, 787-794 (2009) [Google Scholar]
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