ó㳺íà íàñåëåíèõ ì³ñöüISSN: 2707-0441 eISSN: 2707-045X
Âèïóñê 68, 2018   -   Ñòîð³íêè: 232-242
ÀÊÒÈÂÍÎÅ ÝÊÐÀÍÈÐÎÂÀÍÈÅ ÌÀÃÍÈÒÍÎÃÎ ÏÎËß ÂÎÇÄÓØÍÛÕ ËÈÍÈÉ ÝËÅÊÒÐÎÏÅÐÅÄÀ×È (Ïîñâÿùàåòñÿ ñâåòëîé ïàìÿòè Þðèÿ Äàíèëîâè÷à Äóìàíñêîãî)
Ðîçîâ Â.Þ.1, Êóçíåöîâ Á.².1, ͳê³ò³íà Ò.Á.1, Áîâäóé ².Â.1
1 ÄÅÐÆÀÂÍÀ ÓÑÒÀÍÎÂÀ "²ÍÑÒÈÒÓÒ ÒÅÕͲ×ÍÈÕ ÏÐÎÁËÅÌ ÌÀÃÍÅÒÈÇÌÓ ÍÀÍ ÓÊÐÀ¯ÍÈ"

ÓÄÊ: 621.3.01
https://doi.org/10.32402/hygiene2018.68.232

ÀÍÎÒÀÖ²ß:
Íàçâà ñòàòò³: ÀÊÒÈÂÍÅ ÅÊÐÀÍÓÂÀÍÍß ÌÀÃͲÒÍÎÃÎ ÏÎËß ÏβÒÐßÍÈÕ Ë²Í²É ÅËÅÊÒÐÎÏÅÐÅÄÀײ.
Äëÿ çàáåçïå÷åííÿ ñàí³òàðíèõ íîðì Óêðà¿íè ïî ìàãí³òíîìó ïîëþ â æèòëîâèõ çîíàõ, ùî ðîçòàøîâàí³ ïîáëèçó ËÅÏ, îá´ðóíòîâàíà äîö³ëüí³ñòü çàñòîñóâàííÿ ìåòîä³â àêòèâíîãî åê-ðàíóâàííÿ. Ïðîâåäåíèé àíàë³ç ïðîñòîðîâî ÷àñîâèõ õàðàêòåðèñòèê ìàãí³òíîãî ïîëÿ, ùî ãåíå-ðóºòüñÿ ËÅÏ, ³ âèêîíàíî ñèíòåç ñèñòåì àêòèâíîãî åêðàíóâàííÿ ìàãí³òíîãî ïîëÿ, ùî ãåíåðó-ºòüñÿ ËÅÏ. Íàâåäåíî ðåçóëüòàòè òåîðåòè÷íèõ ³ åêñïåðèìåíòàëüíèõ äîñë³äæåíü ñèñòåì àêòèâíîãî åêðàíóâàííÿ, çà äîïîìîãîþ ÿêèõ ìîæíà çíèçèòè âèõ³äíó ³íäóêö³þ ìàãí³òíîãî ïîëÿ äî ð³âíÿ ñàí³òàðíèõ íîðì Óêðà¿íè â æèòëîâèõ çîíàõ, ùî ðîçòàøîâàí³ ïîáëèçó ËÅÏ.

˲ÒÅÐÀÒÓÐÀ:
1. WHO. The International EMF Project. (Accessed: 17- Feb-2017). URL : http://www.who.int/peh-emf/project/en/
2. Ïðàâèëà óëàøòóâàííÿ åëåêòðîóñòàíîâîê. 5-òå âèä., ïåðåðîáë. é äîïîâí. Õàðê³â: Ôîðò, 2014. 800 ñ.
3. Ðîçîâ Â.Þ., Ãðèí÷åíêî Â.Ñ., Ïåëåâèí Ä.Å., ×óíèõèí Ê.Â. Ìîäåëèðîâàíèå ýëåêòðîìàãíèòíîãî ïîëÿ â ïîìåùåíèÿõ æèëûõ äîìîâ, ðàñïîëîæåííûõ âáëèçè ëèíèé ýëåêòðîïåðåäà÷è. Òåõíè÷åñêàÿ ýëåêòðîäèíàìèêà. 2016. ¹3. Ñ. 6-9.
4. Ðîçîâ Â.Þ., Ðåóöêèé Ñ.Þ., Ïåëåâèí Ä.Å., ßêîâåíêî Â.Í. Èññëåäîâàíèå ìàãíèòíîãî ïîëÿ âûñîêîâîëüòíûõ ëèíèé ýëåêòðîïåðåäà÷è ïåðåìåííîãî òîêà. Òåõí³÷íà åëåêòðîäèíàì³êà. 2012. ¹1. Ñ. 3-9.
5. Ïåëåâèí Ä.Å. Ìåòîäû ñíèæåíèÿ ìàãíèòíîãî ïîëÿ âîçäóøíûõ ëèíèé ýëåêòðîïåðåäà÷è çà ïðåäåëàìè îõðàííûõ çîí. Òåõí³÷íà åëåêòðîäèíàì³êà. 2014. ¹5. Ñ. 14-16.
6. Ðîçîâ Â.Þ., Ðåóöêèé Ñ.Þ., Ïåëåâèí Ä.Å., Ïèëþãèíà Î.Þ. Ìàãíèòíîå ïîëå ëèíèé ýëåêòðîïåðåäà÷è è ìåòîäû åãî ñíèæåíèÿ äî áåçîïàñíîãî óðîâíÿ. Òåõí³÷íà åëåêòðîäèíàì³êà. 2013. ¹2. Ñ. 3-9.
7. Ðîçîâ Â.Þ., Ðåóöêèé Ñ.Þ., Ïèëþãèíà Î.Þ. Ìåòîä ðàñ÷åòà ìàãíèòíîãî ïîëÿ òðåõôàçíûõ ëèíèé ýëåêòðîïåðåäà÷è. Òåõí³÷íà åëåêòðîäèíàì³êà. 2014. ¹5. Ñ. 11-13.
8. Active Magnetic Shielding (Field Cancellation). URL : http://www.emfservices.com/afcs.html
9. Beltran H., Fuster V., Garcha M. Magnetic field reduction screening system for a magnetic field source used in industrial applications. 9 Congreso Hispano Luso de Ingeniería Eléctrica (9CHLIE), Marbella (Málaga). 2005. Ð. 84-99.
10. Celozzi S. Garzia F. Active shielding for power-frequency magnetic field reduction using genetic algorithms optimization. IEE Proc. Sci. Meas. Technol. Rome, 2004. Vol. 151, ¹1. P. 2-7. DOI : https://doi.org/10.1049/ip-smt:20040002
11. Brake H.J.M., Wieringa H.J., Rogalla H. Improvement of the performance of a mu -metal magnetically shielded room by means of active compensation (biomagnetic applications). Measurement Science and Technology. 1991. Vol. 2 (7). P. 596-602. DOI : https://doi.org/10.1088/0957-0233/2/7/004
12. Yamazaki K., Kato K., Kobayashi K. MCG Measurement in the environment of active magnetic shield. Neurology and Clinical Neurophysiology. 2004. Vol. 40. P. 1-4.
13. Schnabel A., Voigt J., Burghoff M., Knappe-Gruneberg S. Magnetic Shielding State of art, new magnetic shielding and active magnetic shielding for low noise applications. Rome, Italy, 2003. Vol. 51. ¹5. P. 137-142.
14. Shenkman A., Sonkin N., Kamensky V. Active protection from electromagnetic field hazards of a high voltage power line. HAIT Journal of Science and Engineering. 2005. Vol. 2 (2). P. 254-265.
15. Brake H.J.M., Huonker R., Rogalla H. New results in active noise compensation for magnetically shielded rooms. Measurement Science and Technology. 1993. ¹4. P. 1370-1375. DOI : https://doi.org/10.1088/0957-0233/4/12/010
16. Kazuo Kato, Keita Yamazaki, Tomoya Sato, Akira Haga, Takashi Okitsu, Kazuhiro Muramatsu, Tomoaki Ueda, Masahito Yoshizawa. Shielding Effect of Panel Type Active Magnetic Compensation. IEEJ Transactions on Fundamentals and Materials. 2005. Vol. 125. P. 99-106. DOI : https://doi.org/10.1541/ieejfms.125.99
17. Êóçíåöîâ Á.È., Íèêèòèíà Ò.Á., Áîâäóé È.Â., Âîëîøêî À.Â., Âèíè÷åíêî Å.Â., Êîáûëÿíñêèé Á.Á. Cèíòåç ñèñòåì àêòèâíîãî ýêðàíèðîâàíèÿ ìàãíèòíîãî ïîëÿ âîçäóøíûõ ëèíèé ýëåêòðîïåðåäà÷è íà îñíîâå ìíîãîêðèòåðèàëüíîé îïòèìèçàöèè. Åëåêòðîòåõí³êà ³ åëåêòðîìåõàí³êà. 2016. ¹6. Ñ. 26-30. DOI : https://doi.org/10.20998/2074-272X.2016.6.05
18. Clerc M. Particle Swarm Optimization. London : ISTE Ltd, 2006. 244 p. DOI : https://doi.org/10.1002/9780470612163
19. Gazi V., Passino K.M. Swarm Stability and Optimization. Springer, 2011. 318 p. DOI : https://doi.org/10.1007/978-3-642-18041-5
20. Êóçíåöîâ Á.È., Íèêèòèíà Ò.Á., Áîâäóé È.Â., Âîëîøêî À.Â., Âèíè÷åíêî Å.Â., Êîáûëÿíñêèé Á.Á. Ýêñïåðèìåíòàëüíîå èññëåäîâàíèå âëèÿíèÿ ïðîñòðàíñòâåííîãî ðàñïîëîæåíèÿ äàò÷èêîâ ìàãíèòíîãî ïîëÿ íà ýôôåêòèâíîñòü çàìêíóòîé ñèñòåìû àêòèâíîãî ýêðàíèðîâàíèÿ ìàãíèòíîãî ïîëÿ ëèíèé ýëåêòðîïåðåäà÷è. Åëåêòðîòåõí³êà ³ åëåêòðîìåõàí³êà. 2017. ¹1. Ñ. 16-20. DOI : https://doi.org/10.20998/2074-272X.2017.1.03