The formation of methodology laser monitoring of an emergency of technogenic character in the territory affected by rocketly and artillery damage
Abstract
Purpose: formation of a methodology for conducting laser monitoring of an emergency of technogenic character in the territory that has suffered missile and artillery damage.
Method: methods of system analysis, probability theory, decision-making theory, mathematical and simulation modeling.
Results: trace measurement by the method of differential absorption, which is the basis of the technique, is the part of the signal excluded from the analysis, due to the scattering of radiation on the inhomogeneity of the medium and its non-resonant absorption.
Theoretical implications: theoretical foundations of the method of differential absorption of laser radiation have gained further development.
Practical implications: results contribute to a timely response to exceeding the maximum permissible concentrations of harmful (polluting) substances, as well as limiting the negative consequences for the life and health of the population and the environment.
Value: creation of a unique approach to the assessment and analysis of the consequences of an emergency due to the presence of harmful (polluting) substances in the atmospheric air in excess of the maximum allowable concentrations in the territory that was hit by missile and artillery.
Research limitations: limitations of the application of the mentioned methodology are mainly related to the influence of physical factors, environmental conditions occurring in the territory that has suffered rocket and artillery damage.
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References
Rashkevich, N. (2023). Analysis of the current state of warning of emergency situations in the territories of ukraine which were suffered by rocket and artillery impacts. Municipal economy of cities, 4(178), 232–251. https://doi.org/10.33042/2522-1809-2023-4-178-232-251. [in Ukrainian].
Rashkevich, N., Myroshnyk, О., Shevchenko, R. (2023). Analysis of the current state of warning of emergency situations related to the danger of groundwater. Nadzvychayni sytuatsiyi: poperedzhennya ta likvidatsiya, 7(2), 193–216. Available from : http://fire-journal.ck.ua/index.php/fire/article/view/174/172. [in Ukrainian].
Rashkevych N., Shevchenko R., Neshpor O. (2024). Development of an algorithm of the information and technical method of emergency prevention in the territories affected by rocket and artillery damage. Municipal economy of cities, 3 (184), 223–228. https://doi.org/10.33042/2522-1809-2024-3-184-223-228. [in Ukrainian].
Ob odobrenii Strategii reformirovaniya sistemy Gosudarstvennoy sluzhby Ukrainy po chrezvychaynym situatsiyam: Rasporyazheniye KMU ot 25 yanvarya 2017 g. №61-r Kiyev. Available from : https://zakon.rada.gov.ua/laws/show/61-2017-%D1%80#Text. [in Ukrainian].
Rashkevych, N. V., Loboychenko, V. M., Shevchenko, R. I. (2022). Minimizatsiya naslidkiv ekolohichnoyi nebezpeky terytoriyi, vnaslidok yikh vohnevoho poshkodzhennya boyeprypasamy. Materialy I Mizhnarodna naukovo-praktychna konferentsiya «Podolannya ekolohichnykh ryzykiv ta zahrozy dlya dovkillya v umovakh nadzvychaynykh sytuatsiy - 2022», m. Poltava, 113–116. Available from : http://repositsc.nuczu.edu.ua/handle/123456789/15263. [in Ukrainian].
Ob Obshchegosudarstvennoy tselevoy programme zashchity naseleniya i territoriy ot chrezvychaynykh situatsiy tekhnogennogo i prirodnogo kharaktera na 2013-2017 gody: Zakon Ukrainy (Sobraniye zakonodatel'stva Rossiyskoy Federatsii (VVR), 2013, №19-20, st.173). Available from : https://zakon.rada.gov.ua/laws/show/4909-17#Text. [in Ukrainian].
Chernogor, L., Rashkevich, О. (2011). Results of trace laser monitoring of polluting gaseous impurities in the atmosphere. Eastern European journal of advanced technologies, 4/9 (52), 57–62. Available from : http://journals.uran.ua/eejet/article/download/1483/1381. [in Ukrainian].
Vamol V., Rashkevich А., Rashkevich N. (2016). An analysis of features of the ecological monitoring of atmospheric air is in the zone of emergencies of technogenic character. Bulletin of NTU “KhPI”. Series: Mechanical-technological systems and complexes, 49 (1221), 85–89. Available from : http://repositsc.nuczu.edu.ua/bitstream/123456789/1548/1/85-89.pdf. [in Ukrainian].
Yong-Le Pan, Steven C. Hill, Ronald G. Pinnick, Hermes Huang, Jerold R. Bottiger, and Richard K. Chang (2010). Fluorescence spectra of atmospheric aerosol particles measured using one or two excitation wavelengths: Comparison of classification schemes employing different emission and scattering results. Optics Express, 18 (12), 12436-12457.
Chernogor, L., Rashkevich, О. (2013). Automated laser complex for operational monitoring of the concentration of pollutants in the atmosphere. Eastern European Journal of Advanced Technologies, 2/10 (62), 39–42. Available from : http://journals.uran.ua/eejet/article/download/12752/10625. [in Ukrainian].
Mykytenko, V. I., Kotovsʹkyy, V. Y., Bohatyrʹova, H. V. (2007). Bahatokanalʹni ikonichni systemy dystantsiynoho monitorynhu. Visti akademiyi inzhenernykh nauk Ukrayiny, 2(32), 21–26. Available from : https://ela.kpi.ua/handle/123456789/27034. [in Ukrainian].
Mensah, E. M. F. E. (2009). Lidar Techniques and Remote Sensing in the Atmosphere: Understanding the use of laser light in the atmosphere. AuthorHouse. 144.
Semeniuk, K., Dastoor, A. (2020). Current state of atmospheric aerosol thermodynamics and mass transfer modeling: A review. Atmosphere, 11 (2), 156. https://doi.org/10.3390/atmos11020156.
Petruk, V. H., Vasylʹkivsʹkyy, I. V., Kvaternyuk, S. M. (2016). Dystantsiynyy spektropolyarymetrychnyy kontrolʹ polidyspersnykh aerozolʹnykh seredovyshch v ekolohichnomu monitorynhu: monohrafiya, 187 s. [in Ukrainian].
Tanré, D., Bréon, F. M., Deuzé, J. L., Dubovik, O., Ducos, F., François, P., ... & Waquet, F. (2011). Remote sensing of aerosols by using polarized, directional and spectral measurements within the A-Train: the PARASOL mission. Atmospheric Measurement Techniques, 4(7), 1383-1395.
Nicolae, D., Talianu, C., Nemuc, A., Carstea, E. (2008). Benefits and drawbacks of laser remote sensing in atmospheric research. Scientific Bulletin Journal of “Politehnica” University of Bucharest, A Series, 70(4), 5-14.
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