Eugene Morozov | Earth and Planetary Sciences | Research Excellence Award

Research Excellence Award

Eugene Morozov, Shirshov Institute of Oceanology, Russia

Eugene Morozov
Affiliation Shirshov Institute of Oceanology
Country Russia
Scopus ID 56133208000
Documents 224
Citations 2,467
h-index 26
Subject Area Earth and Planetary Sciences
Event Global Scholar Awards
ORCID 0000-0002-0251-3454

Eugene Morozov is associated with physical oceanography and research on internal waves, ocean circulation, deep-water flows, and hydrological processes. His documented work includes observations and analyses of internal tides, abyssal channels, Antarctic Bottom Water, and oceanic mixing. The Shirshov Institute identifies internal-tide generation and deep Atlantic flows among his research themes. [1] His publication record also includes book-length treatments of internal tides and abyssal Atlantic channels. [2]

Abstract

Eugene Morozov is a physical oceanographer affiliated with the Shirshov Institute of Oceanology whose research addresses internal waves, internal tides, abyssal circulation, deep-water transport, and oceanic hydrological processes. His documented studies combine field observations, hydrophysical measurements, interpretation, and numerical approaches to investigate ocean dynamics across regional and global settings. Research themes include tidal wave generation, propagation and dissipation, topographically influenced mixing, Antarctic Bottom Water, and flows through deep Atlantic fracture zones. His publications include journal articles, scientific books, and research contributions covering the Atlantic, Arctic, Pacific, Indian, and Southern oceans and related marine environments worldwide. [1]

Keywords

Internal tides, internal waves, abyssal circulation, Antarctic Bottom Water, deep ocean currents, ocean mixing, submarine ridges, fracture zones, Atlantic Ocean, Southern Ocean, Arctic Ocean, physical oceanography, hydrological processes, tidal energy, ocean dynamics, deep-water transport, stratified flows, marine hydrodynamics, ocean circulation, geophysical fluids. These terms reflect recurring subjects documented across Morozov’s publications and institutional research profile. [1] [2]

Introduction

Eugene Morozov has developed a research profile within physical oceanography focused on mechanisms governing oceanic motion and water-mass transport. The Shirshov Institute describes his work on internal tides, large-scale circulation, and abyssal flows, including investigations of deep Atlantic channels and fracture zones. [1] His studies provide observational perspectives on processes linking tides, stratification, topography, mixing, and circulation.

Research Profile

Eugene Morozov is identified with the Shirshov Institute of Oceanology in Moscow and has worked extensively in observational oceanography. Springer describes his research as concentrating on oceanic internal waves and large-scale circulation, with later work emphasizing abyssal Atlantic flows and circulation through deep fractures. [2] His academic record includes field measurements, data analysis, interpretation, and numerical modeling.

Research Contributions

Eugene Morozov has contributed to understanding internal-tide generation, propagation, and dissipation, including the influence of submarine ridges and oceanic topography. Institutional records also document research into abyssal channels and Antarctic Bottom Water transport. [1] Recent work includes observations of Antarctic Bottom Water in the Vema Fracture Zone, connecting deep circulation with measured oceanographic conditions. [3]

Publications

Eugene Morozov has published research articles, books, and scientific contributions addressing internal tides, ocean circulation, deep-water transport, and hydrological processes. His documented bibliography includes Semidiurnal Internal Wave Global Field, studies of internal tides in different oceanic regions, and the book Abyssal Channels in the Atlantic Ocean: Water Structure and Flows. [1] [2]

Research Impact

Eugene Morozov has produced research relevant to physical oceanography through sustained investigation of internal waves, tidal processes, deep circulation, and water-mass transport. His studies span multiple oceanic regions and combine observational datasets with physical interpretation. The supplied bibliometric profile reports 224 documents, 2,467 citations, and an h-index of 26; these figures should be understood as profile-specific metrics that may change over time.

Award Suitability

Eugene Morozov presents documented characteristics relevant to consideration for a research recognition program, including an established publication record, sustained work in physical oceanography, and research addressing internal waves and deep-ocean circulation. His profile can be evaluated against an award’s published criteria, evidence requirements, research contribution standards, bibliometric measures, and field-specific expectations without presuming an award outcome.

Conclusion

Eugene Morozov has an established research profile in physical oceanography, particularly in internal waves, tidal processes, abyssal circulation, and deep-water transport. Institutional and scholarly sources document contributions across several oceanic regions and research approaches. His supplied bibliometric information provides additional context for academic recognition assessment. [1] [2]

References

  1. Shirshov Institute of Oceanology, Russian Academy of Sciences. (n.d.). Eugene Morozov: Scientific directions and publications.
    https://ocean.ru/en/index.php/scientific-directions/fizicheskoe-napravlenie/429-morozov-evgeniy
  2. Morozov, E. G. (2018). Oceanic Internal Tides: Observations, Analysis and Modeling: A Global View. Springer.
    https://doi.org/10.1007/978-3-319-73159-9
  3. Morozov, E. G., et al. (2023). Antarctic Bottom Water in the Vema Fracture Zone. Journal of Geophysical Research: Oceans, 128(8). https://doi.org/10.1029/2023JC019967
  4. Khimchenko, E. E., Kozlov, I. E., Myslenkova, K. P., Frey, D. I., Myslenkov, S. A., Morozov, E. G., & Osadchiev, A. A. (Year). Tidally generated internal waves in the Vilkitsky Strait, Arctic Ocean.
    https://doi.org/10.1029/2025JC022805
  5. Morozov, E., Frey, D., Kozlov, I., Ambrosimov, A., Kovalev, G., & Fofanov, D. (2025). Semidiurnal internal tide north and south of the critical latitude in the Kara Sea.
    https://doi.org/10.3390/jmse13122357

Aditya Kuamar Thakur | Earth and Planetary Sciences | Best Researcher Award

Best Researcher Award

Aditya Kuamar Thakur
Affiliation Indian Institute of Technology Roorkee
Country India
Google Scholar View Profile
Documents 31
Citations 151
h-index 8
Subject Area Earth and Planetary Sciences
Event Global Scholar Awards
ORCID 0000-0003-1446-6517

Aditya Kuamar Thakur is associated with the Indian Institute of Technology Roorkee and works across remote sensing, geospatial analysis, environmental monitoring, mining applications, and Earth observation. His research profile includes satellite-based assessment, spatial modelling, interferometric methods, environmental datasets, and computational approaches applied to Earth-system and engineering questions. [1]

Abstract

Aditya Kumar Thakur is a researcher affiliated with the Indian Institute of Technology Roorkee whose work spans remote sensing, geospatial analysis, environmental monitoring, mining applications, atmospheric pollution, hydrology, and Earth observation. His publication record includes studies using satellite imagery, interferometric techniques, statistical modelling, machine learning, and spatial analysis to investigate ground deformation, air quality, vegetation, water resources, snow cover, and coal related phenomena. The supplied profile records 31 documents, 151 citations, and an h index of 8. His research illustrates interdisciplinary applications of geospatial technologies for understanding environmental processes, infrastructure conditions, natural resources, and spatially distributed Earth system changes regionally.

Keywords

Aditya Kumar Thakur’s publication themes support keywords including remote sensing, geospatial analysis, Earth observation, Persistent Scatterer InSAR, ground deformation, mining geotechnics, nitrogen dioxide, air pollution, Sentinel-2, Sentinel-5P, NDVI, NDWI, precipitation estimation, snow cover, machine learning, hyperspectral analysis, coal-fire modelling, environmental monitoring, hydrology, analysis, satellite-based assessment, regional, climate, and risk assessment.

Introduction

Earth observation, remote sensing, geospatial science, environmental assessment, and civil engineering applications. His reported research examines spatial and temporal patterns in environmental systems, mining landscapes, atmospheric pollutants, water resources, vegetation, snow cover, and land deformation, using quantitative geospatial methods and satellite datasets. [2]

Research Profile

Aditya Kumar Thakur is associated with the Indian Institute of Technology Roorkee and appears in research profiles as a researcher in Civil Engineering. His expertise includes remote sensing, coal mining, geospatial analysis, environmental monitoring, and spatial modelling. Listed academic indicators supplied for this article include 31 documents, 151 citations, and h-index 8 currently. [1]

Research Contributions

Aditya Kumar Thakur contributes to research applying satellite observations and computational methods to environmental and infrastructure questions. His studies address Persistent Scatterer Interferometric Synthetic Aperture Radar, nitrogen dioxide mapping, vegetation and water indices, precipitation estimation, snow dynamics, coal-fire modelling, and hyperspectral assessment; demonstrating methodological use across Earth-system and engineering problems. [2] [3]

Publications

Aditya Kumar Thakur publishes research covering ground deformation, remote sensing, atmospheric pollution, vegetation and surface-water dynamics, snow-cover prediction, precipitation estimation, coal-fire probability, and hyperspectral material assessment. Publications include studies in Scientific Reports, Natural Resources Research, Journal of Earth System Science, and related Earth-observation journals, reflecting interdisciplinary applications of geospatial data. [2] [4] [5]

Research Impact

Aditya Kumar Thakur’s research provides evidence relevant to environmental monitoring, mining-area assessment, pollution analysis, water-resource understanding, and land-surface change detection. The use of satellite observations and computational modelling can support reproducible assessments where field observations are spatially limited. Citation indicators supplied for this profile provide one measure of scholarly visibility. [1]

Award Suitability

Aditya Kumar Thakur’s research profile aligns with recognition themes emphasizing interdisciplinary research, geospatial innovation, environmental observation, and applied Earth-science investigation. His reported publication portfolio combines remote sensing, statistical analysis, machine learning, interferometric methods, and environmental datasets. Award consideration may therefore examine methodological rigor, originality, publication quality, research influence, and relevance.

Conclusion

Aditya Kumar Thakur presents a research profile centered on remote sensing, geospatial analysis, environmental monitoring, and Earth-system applications. His documented studies address diverse problems including land deformation, atmospheric pollution, hydrology, vegetation, snow, mining, and materials. The supplied bibliometric indicators and publication themes provide a factual basis for academic recognition review.

References

  1. ResearchGate. (n.d.). Aditya Thakur: Research profile. Indian Institute of Technology Roorkee.
    https://www.researchgate.net/profile/Aditya-Thakur-19
  2. Thakur, A. K., Garg, R. D., Jain, K., & Kumar, D. (2025). Classical and quantum approaches to probabilistic modeling of fire occurrence in anthracite grade coal. Scientific Reports, 15, 34003. https://doi.org/10.1038/s41598-025-12405-9
  3. Thakur, A. K., Attri, L., Garg, R. D., Jain, K., Kumar, D., & Chowdhury, A. (2024). Temporal and Spatial Dynamics of Subsidence in Eastern Jharia, India. ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences. https://doi.org/10.5194/isprs-annals-X-4-2024-349-2024
  4. Thakur, A. K., Srivastava, A., Garg, R. D., & Jain, K. (2026). A comprehensive assessment of vegetation and water resource dynamics in Bihar using Sentinel-2 derived NDVI and NDWI indices. Journal of Earth System Science, 135(1). https://doi.org/10.1007/s12040-025-02718-8
  5. Tiwari, H., Thakur, A. K., & Garg, R. D. (2026). Enhanced precipitation estimation in a Himalayan river basin through the fusion of multi-source datasets using various machine learning techniques. Physics and Chemistry of the Earth, Parts A/B/C, 144, 104418.  https://doi.org/10.1016/j.pce.2026.104418

Dmytro Charnyi | Earth and Planetary Sciences | Innovative Technology Leadership Award

Innovative Technology Leadership Award

Dmytro Charnyi
The Institute of Environmental Geochemistry of National Academy of Sciences of Ukraine

Dmytro Charnyi
Affiliation The Institute of Environmental Geochemistry of National Academy of Sciences of Ukraine
Country Ukraine
Scopus ID 55776816400
Documents 29
Citations 155
h-index 10
Subject Area Earth and Planetary Sciences
Event Global Scholar Awards
ORCID 0000-0001-6150-6433

Dmytro Charnyi is associated with applied environmental research spanning water treatment, groundwater systems, environmental geochemistry, and radioactive-waste management. Institutional records identify him as a Doctor of Technical Sciences and a senior scientist, while recent publications demonstrate applications of conventional treatment technologies and computational forecasting methods to environmental engineering problems. [1]

Abstract

Dmytro Charnyi is a Ukrainian researcher whose work connects environmental geochemistry, water treatment, radioactive waste management, groundwater systems, and applied engineering. His documented research addresses treatment of contaminated water, surface-water quality, groundwater prediction, and technologies relevant to environmental and nuclear safety. Recent publications examine sorption and coagulation for organic components in liquid radioactive waste and artificial neural networks for forecasting groundwater-level fluctuations. His profile indicates sustained scholarly activity across environmental engineering and Earth and planetary sciences, supported by indexed publications, citations, and international research collaboration. These contributions provide a substantive basis for considering technology leadership recognition within contemporary environmental research.

Keywords

Liquid radioactive waste, radionuclides, organic matter, activated carbon, water treatment, sorbents, oxidation, coagulation, filtration, groundwater level, artificial neural networks, data recovery, forecasting, wavelet analysis, surface-water quality, and environmental engineering. These terms reflect recurring subjects in his recent research and support focused academic indexing and discovery.

Introduction

Dmytro Charnyi works at the intersection of environmental engineering, geochemistry, hydrology, and radioactive-waste management. Public institutional records identify him as a Doctor of Technical Sciences and senior scientist at Ukraine’s Institute of Environmental Geochemistry. His research addresses practical environmental problems through treatment technologies, monitoring approaches, groundwater analysis, and applied methods. [1]

Research Profile

Dmytro Charnyi has a documented research profile associated with environmental geochemistry, water resources, radioactive waste, and engineering applications. Institutional sources identify his leadership within radioactive-waste management research, while publication records show work on groundwater forecasting and water-treatment processes. His supplied bibliometric record reports 29 documents, 155 citations, and h-index 10.

Research Contributions

Dmytro Charnyi contributes to environmental technology through research on water purification, contaminant removal, groundwater behavior, and radioactive-waste treatment. Recent work demonstrates adaptation of conventional sorption and coagulation methods for organic components in liquid radioactive waste, while other research applies artificial neural networks to groundwater-level forecasting. These studies support engineering decisions. [2][3]

Publications

Dmytro Charnyi‘s recent publication record includes studies of water treatment, groundwater dynamics, surface-water quality, and environmental technologies. Notable works include research on conventional treatment of organic components in liquid radioactive waste and forecasting groundwater-level fluctuations using artificial neural networks. Earlier studies addressed surface-source water quality and selection of treatment methods. [2][3][4]

Research Impact

Dmytro Charnyi‘s research impact is reflected in scholarly citation activity and application-oriented environmental research. The reported record of 155 citations and an h-index of 10 indicates measurable academic research visibility, while his publications address problems with direct relevance to water safety, environmental monitoring, radioactive-waste management, and engineering decision-making in Ukraine. [1]

Award Suitability

Dmytro Charnyi demonstrates characteristics relevant to an Innovative Technology Leadership Award through sustained work connecting scientific research with practical environmental technologies. His documented research integrates water treatment, groundwater forecasting, radioactive-waste management, and computational methods. These areas show an orientation toward applied innovation, interdisciplinary problem-solving, and technology-informed environmental protection and safety. [2][3][5]

Conclusion

Dmytro Charnyi represents a research profile centered on applied environmental engineering and technology development. His publications and institutional activities connect water treatment, groundwater analysis, environmental geochemistry, and radioactive-waste management. The documented record supports recognition for research-informed technological leadership where scientific methods are translated into approaches for monitoring, treatment, and safety. [1][2]

References

  1. Google Scholar. (n.d.). Dmytro Charnyi: Google Scholar profile. https://scholar.google.com.ua/citations?user=5nTmWpYAAAAJ&hl=uk
  2. Charnyi, D., Zabulonov, Y., Lukianova, V., Anpilova, Y., Chernova, N., Matselyuk, Y., & Marisyk, S. (2026). Adaptation of conventional water treatment technologies for organic component removal from liquid radioactive waste: sorption and coagulation mechanisms. Scientific Reports, 16, 2626. https://doi.org/10.1038/s41598-026-36799-2
  3. Charnyi, D., & Shevchenko, O. (2025). Forecasting of medium and long-term components of groundwater level fluctuations using artificial neural networks method. Meteorology, Hydrology, Environmental Monitoring, 2(8), 102–113. https://doi.org/10.15407/Meteorology2025.08.102
  4. Charnyy, D., Matseluk, Y., Levytska, V., Marysyk, S., & Chernova, N. (2021). Peculiarities of formation of water quality of surface sources of water supply as a factor of a choice of a method of water treatment. Land Reclamation and Water Management, (2), 45–54. https://doi.org/10.31073/mivg202102-307
  5. Helmholtz Centre for Environmental Research. (2026). Publication details: Adaptation of conventional water treatment technologies for organic component removal from liquid radioactive waste: sorption and coagulation mechanisms. https://www.ufz.de/index.php?en=20939&pub_id=31912