Вестник МГТУ, 2022, Т. 25, № 4.
Виноградов А. В. и др. Анализ технического состояния и срока нахождения в эксплуатации. Porsius J. T., Claassen L., Smid T., Woudenberg F. [et al.]. Health responses to a new high-voltage power line route: Design of a quasi-experimental prospective field study in the Netherlands // BMC Public Health. 2014. Vol. 14. Article number: 237. DOI: https://doi.org/10.1186/1471-2458-14-237. Sardaro R., Bozzo F., Fucilli V. High-voltage overhead transmission lines and farmland value: Evidences from the real estate market in Apulia, southern Italy // Energy Policy. 2018. Vol. 119. P. 449-457. DOI: https://doi.org/10.1016/j.enpol.2018.05.005. Sermage-Faure C., Demoury C., Rudant J., Goujon-Bellec S. [et al.]. Childhood leukaemia close to high-voltage power lines - the Geocap study, 2002-2007 // British Journal of Cancer. 2013. Vol. 108. P. 1899-1906. DOI: https://doi.org/10.1038/bjc.2013.128. Sims S., Dent P. High-voltage overhead power lines and property values: A residential study in the UK // Urban Studies. 2005. Vol. 42, Iss. 4. P. 665-694. DOI: https://doi.org/10.1080/00420980500060541. References Borodin, M. V., Belikov, R. P., Lansberg, A. A. 2021. Analysis of the technical condition and capacity of the 110 kV overhead line of the branch of PJSC "IDGC Centre" - "Orelenergo". Vesti vysshikh uchebnykh zavedeniy Chernozem'ya, 1(63), pp. 40-50. DOI: https://doi.org/10.53015/18159958_2021_1_40. EDN: VNIMGP. (In Russ.) Zalesova, O. V., Selivanov, V. N. 2015. Calculation of induced voltage on disconnected 110 kV power lines. Trudy Kol'skogo nauchnogo tsentra RAN, 2(28), pp. 87-98. EDN: UYBJYB. (In Russ.) Zasypkin, A. S., Shchurov, A. N., Teterin, A. D. 2018. Application of sensors of icy load and sensors of longitudinal gravity of overhead line wires to assess the danger of icy conditions. Bulletin o f Higher Educational Institutions. North Caucasus region. Technical Sciences, 2(198), pp. 48-53. DOI: https://doi.org/10.17213/ 0321-2653-2018-2-48-53. EDN: XQLFUL. (In Russ.) Zakharov, A. A., Popov, V. V., Nikolashkin, S. V. 2005. Development of a mathematical model and recommendations for reliable operation of 110 kV overhead lines on the "Yakutsk - Churapcha - Khandyga" section. Vestnik Yakutskogo gosudarstvennogo universiteta, 2(4), pp. 94-99. EDN: JWXJZB. (In Russ.) Levin, D. S. 2013. Modes of 110-330 kV single-chain overhead power transmission lines using a backup phase. Vestnik Donskogo gosudarstvennogo tekhnicheskogo universiteta, 13(1-2 (70-71)), pp. 93-96. EDN: QISOFX. (In Russ.) Piskovatsky, Yu. V. 2011. The method for detecting sustained damage to overhead power transmission lines with a voltage of 110-220 kV in the cycle of automatic re-activation. Power Engineering: Research, Equipment, Technology , 5-6, pp. 96-103. EDN: NVAMFX. (In Russ.) Tretyakov, E. A., Krause, A. V., Tkach, V. A. 2013. Absorption of excess charging power in extended low-load 110 kV power lines. Journal o f Transsib Railway Studies, 2(14), pp. 68-75. EDN: QCGDQV. (In Russ.) Fedorov, M. N., Fedorov, D. M. 2016. Protection from electromagnetic fields generated by 110 kV overhead high-voltage power lines. Pozharnaya bezopasnost': Problemy i perspektivy, 2(1-7), pp. 339-341. EDN: YOSRLF. (In Russ.) Khamidullin, I. N., Ilyin, V. K. 2016. On the issue of reliability of 35-500 kV overhead power transmission lines. Electrical and data processingfacilities and systems, 12(1), pp. 45-53. EDN: XWVYSB. (In Russ.) Shilin, A. A., Dementiev, S. S. 2017. A linear dimension video measurement device for assessing the intensity of power line glaciation. Power engineering: research, equipment, technology, 19(11-12), pp. 135-141. EDN: YTZTYQ. (In Russ.) Yaroslavsky, D. A., Sadykov, M. F. 2017. Development of a device for monitoring and quantitative control of ice formation on overhead power lines. Power Engineering: Research, Equipment, Technology , 19(3-4), pp. 69-79. EDN: ZBTIZL. (In Russ.) Amoon, A. T., Crespi, C. M., Ahlbom, A., Bhatnagar, M. et al. 2018. Proximity to overhead power lines and childhood leukaemia: An international pooled analysis. British Journal o f Cancer, 119, pp. 364-373. DOI: https://doi.org/10.1038/s41416-018-0097-7. Anderson, O. C., Williamson, J., Wohl, A. 2017. The effect of high-voltage overhead transmission lines on property values: A review of the literature since 2010. The Appraisal Journal, 85(3), pp. 179-193. Gervasi, F., Murtas, R., Decarli, A., Russo, A. G. 2019. Residential distance from high-voltage overhead power lines and risk of Alzheimer’s dementia and Parkinson’s disease: A population-based case - control study in a metropolitan area of Northern Italy. International Journal o f Epidemiology, 48(6), pp. 1949-1957. DOI: https://doi.org/10.1093/ije/dyz139. Jayantha, W. M., Abeydeera, L. H. U. W. 2020. Effects of high-voltage overhead power lines (HVOPLs) on residential property prices. Asian Journal o f Economics and Empirical Research, 7(2), pp. 115-125. DOI: https://doi.org/10.20448/journal.501.2020.72.115.125. 332
Made with FlippingBook
RkJQdWJsaXNoZXIy MTUzNzYz