Academic literature on the topic 'Development of Hydrobiology'

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Journal articles on the topic "Development of Hydrobiology"

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Komarek, O. "Chapman, A.R.O., M.T., Lahaye, M. (ed.): Development in Hydrobiology." Biologia plantarum 39, no. 1 (July 1, 1997): 66. http://dx.doi.org/10.1023/a:1000981509363.

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Jørgensen, S. E. "Development in hydrobiology comparative reservoir limnology and water quality management." Ecological Modelling 72, no. 3-4 (April 1994): 279–81. http://dx.doi.org/10.1016/0304-3800(94)90090-6.

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Zhidkov, Z. V., V. G. Sideleva, and I. B. Savinich. "The scientific collection of fishes of Middle Asia in Saint Petersburg State University: history and present state." Proceedings of the Zoological Institute RAS 323, no. 4 (December 26, 2019): 395–411. http://dx.doi.org/10.31610/trudyzin/2019.323.4.395.

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The article describes the history and present state of the collection of fish of Middle Asia which is currently kept at the Department of Ichthyology and Hydrobiology and Department of Vertebrate Zoology of Saint Petersburg State University. The collecting of fish specimens in the Zoological Cabinet of the University started in the 60s of the XIX century. This was the time of the beginning of the active study of biological diversity and development of natural resources of Middle Asia (Turkestan) as well as military expansion of the Russian Empire into the region. Extensive ichthyological material was collected by A.P. Fedchenko in the Turkestan Expedition (1868–1871), M.N. Bogdanov and V.D. Alenitsyn in the Khiva Campaign (1873) and the Aral-Caspian Expedition (1874), A.M. Nikolsky in the Balkhash Expedition (1884) as well as I.S. Polyakov, D.D. Pedashenko, A.A. Kushakevich, P.Y. Schmidt, K.M. Deryugin and others. Professor K.F. Kessler described 12 new fish species based on study of the material brought from Turkestan. Today, the collection of Middle Asian fish includes 45 lots with 109 specimens in good condition. The taxonomic diversity of fish is represented by 5 families, 19 genera, and 28 freshwater and migratory species. Main part of the collection (89%) is stored at the Department of Ichthyology and Hydrobiology of Saint Petersburg State University, and other part is stored at the Department of Vertebrate Zoology.
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Dombek, Václav. "Institute of clean technologies for mining and utilization of raw materials for energy use – a new potential of research in Ostrava." GeoScience Engineering 58, no. 2 (June 1, 2012): 16–22. http://dx.doi.org/10.2478/v10205-011-0015-1.

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Abstract A year ago, in Ostrava, one of the major RDI (Research and Development for Innovation) projects was initiated in the Moravian-Silesian Region, called the Institute of Clean Technologies for Mining and Utilization of Raw Materials for Energy Use. During the first year, many of the top and often unique research laboratories and workplaces were built with a budget of over CZK200m, such as “Workplace of Electron Microprobe”, „Workplace of Tomographic Methods“, “Workplace of Hydrochemistry and Hydrobiology”, “Workplace of Thermal, Hydraulic and Mechanical (THM) Processes in Rocks”, “Workplace of Water Jet”, “Isotope and GCTOF Laboratory” and many others. This laid the basis for various research programmes with truly extraordinary extent and impact not only on the Czech industry but also economy of other EU member states.
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Khilchevskyi, V. K. "ESSAY ON THE HISTORY OF SURFACE WATER HYDROCHEMISTRY IN UKRAINE." Hydrology, hydrochemistry and hydroecology, no. 2 (57) (2020): 5–87. http://dx.doi.org/10.17721/2306-5680.2020.2.1.

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The article presents an review of reserchs of the chemical composition of surface water in Ukraine from the beginning of systematic research in the first half of the twentieth century and to this day (1920-2020). Four characteristic chronological periods in the history of hydrochemical studies in Ukraine are identified. First period (1920s – 1950s) – the beginning of systematic hydrochemical studies of surface waters. Second period (1950s – 1970s) – the expansion of hydrochemical research to meet the needs of water and hydropower construction, the development of hydrochemistry of reservoirs. Third period (1970s – at the beginning of the 2000s) – development of integrated hydrochemical studies in the context of a growing anthropogenic load on water bodies; creation of a system of hydrochemical monitoring of water bodies within the framework of the national system of monitoring and environmental control. Fourth period (after the beginning of the 2000s) – reformatting of hydrochemical studies (monitoring systems) to the requirements of the European Union Water Framework Directive. The article also describes the scientific hydrochemical schools: Institute of Hydrobiology, NAS of Ukraine; Taras Shevchenko National University of Kyiv; Ukrainian Hydrometeorological Institute of the SES of Ukraine and NAS of Ukraine
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Möllmann, Christian, Alessandra Conversi, and Martin Edwards. "Comparative analysis of European wide marine ecosystem shifts: a large-scale approach for developing the basis for ecosystem-based management." Biology Letters 7, no. 4 (January 26, 2011): 484–86. http://dx.doi.org/10.1098/rsbl.2010.1213.

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Abrupt and rapid ecosystem shifts (where major reorganizations of food-web and community structures occur), commonly termed regime shifts, are changes between contrasting and persisting states of ecosystem structure and function. These shifts have been increasingly reported for exploited marine ecosystems around the world from the North Pacific to the North Atlantic. Understanding the drivers and mechanisms leading to marine ecosystem shifts is crucial in developing adaptive management strategies to achieve sustainable exploitation of marine ecosystems. An international workshop on a comparative approach to analysing these marine ecosystem shifts was held at Hamburg University, Institute for Hydrobiology and Fisheries Science, Germany on 1–3 November 2010. Twenty-seven scientists from 14 countries attended the meeting, representing specialists from seven marine regions, including the Baltic Sea, the North Sea, the Barents Sea, the Black Sea, the Mediterranean Sea, the Bay of Biscay and the Scotian Shelf off the Canadian East coast. The goal of the workshop was to conduct the first large-scale comparison of marine ecosystem regime shifts across multiple regional areas, in order to support the development of ecosystem-based management strategies.
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Warren, Andrew, and A. T. Grove. "The Niger and Its Neighbours: Environmental History and Hydrobiology, Human Use and Health Hazards of the Major West African Rivers." Geographical Journal 153, no. 1 (March 1987): 105. http://dx.doi.org/10.2307/634485.

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Wang, Qi, Wenjing Pang, ShuJie Ge, Hengguo Yu, Chuanjun Dai, Xianfeng Huang, Jun Li, and Min Zhao. "Characteristics of Fluorescence Spectra, UV Spectra, and Specific Growth Rates during the Outbreak of Toxic Microcystis Aeruginosa FACHB-905 and Non-Toxic FACHB-469 under Different Nutrient Conditions in a Eutrophic Microcosmic Simulation Device." Water 12, no. 8 (August 17, 2020): 2305. http://dx.doi.org/10.3390/w12082305.

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Microcystis aeruginosa is the dominant alga forming cyanobacteria blooms, the growth of which is limited by available nutrients. Thus, it is necessary to study cyanobacteria blooms and explore the growth of Microcystis aeruginosa under different nutrient conditions. In this paper, we take Microcystis aeruginosa, including toxic Freshwater Algae Culture of Hydrobiology Collection (FACHB)-905 and non-toxic FACHB-469 strains, into account. The strains were cultured using a simulation device under different nutrient conditions. Ultraviolet spectra, three-dimensional fluorescence spectra, and kinetic parameter indicators of the two species are studied. Compared to FACHB-469, the results show that the specific growth rate of FACHB-905 is much higher, in particular, FACHB-905 is the dominant species under low nutrient conditions. Furthermore, the UV spectral characteristics indicate that the molecular weight of dissolved organic matter in the culture tank of toxic FACHB-905 is greater than that of FACHB-469. Additionally, the humification index of toxic FACHB-905 is slightly higher as well, which suggests that it is more stable in the presence of dissolved organic matter during blooms. Therefore, the toxic Microcystis strain is more likely to become the dominant species in water blooms under lower eutrophic conditions and water blooms formed by the toxic Microcystis strain may be more difficult to recover from.
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Svoboda, Jiří. "Physiological processes related to the bee swarming." Acta Universitatis Agriculturae et Silviculturae Mendelianae Brunensis 58, no. 5 (2010): 345–54. http://dx.doi.org/10.11118/actaun201058050345.

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One of the essential genetically subjected behaviours of a bee-colony is swarming. However, in the time of queen breeding and technical approach to colony division, swarming constitutes a problem in the effectiveness of controlled beekeeping and subsequently in decreasing of the attainable economic profits. The intensity of swarming is a polyfactorial phenomenon whose characteristic feature is seasonality (the availability of breed, course of weather) so the swarming intensity is different in particular years. This study is connected with the research carried out at the Department of Zoo­lo­gy, Fisheries, Hydrobiology and Apiculture at Mendel University in Brno. The experiment focused on the relationship between the swarming and biological state of bee-colony was realized in three seasons of the period 2003–2005. Experimental bee-colonies were stimulated to the swarming fever by zoo-technical practices, at the same time the biological status of given bee-colony was observed. Within the process of marking of newly emerged workers there was observed their number continuously during the particular season. The samples of 3- and 4-week-old workers were instrumental to the analysis of the development of their hypopharyngeal glands. The study has proved that a) bee-colonies building higher number of queen cells are likely expected to be in swarming fever, b) 3-week-old workers have hypopharyngeal glands in higher stage of development than 4-week-old workers, c) higher stage of swarming fever is closely correlated with higher stage of de­ve­lop­ment of hypopharyngeal glands. These facts can contribute to the comprehension of the reason and relationships of the swarming.
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Hryhorenko, T., N. Savenko, N. Chuzhma, and A. Bazaieva. "Cultivation of young-of-the-year carp with the use of chlorella (Chlorella (Beijerinck, 1890)) suspension." Ribogospodarsʹka nauka Ukraïni, no. 3(57) (September 30, 2021): 33–47. http://dx.doi.org/10.15407/fsu2021.03.033.

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Purpose. Investigate ecological conditions and determine fish productivity of ponds when growing young-of-the-year carp using a suspension of chlorella. Methodology. During the study, we used methods generally accepted in hydrochemistry, hydrobiology and fish farming. Findings. The article presents the results of the study on the use of chlorella suspension in the cultivation of carp. It was found that the use of chlorella suspension created favorable hydrochemical conditions resulting in intensive development of zooplankton, which had a positive effect on the growth of young-of-the-year carp and fish productivity of the pond. The development of the natural food supply was sufficient to meet the nutritional needs of juvenile carp. The average seasonal biomass of zooplankton in the experimental pond was 28.68 g/m3 that was 1.5 times higher than in the control. The share of cladocerans in the total biomass of zooplankton in the experimental pond was 76.6%, versus 36.8% in the control. The average biomass of zoobenthos for the growing season in the experimental was 1.3 times higher than in the control, and was formed by chironomid larvae, which are valuable in the food chain. Originality. The study investigated ecological conditions and fish productivity of growing ponds under conditions of the application of cattle manure and suspension of chlorella when growing carp in monoculture. Practical value. It was found that the use of chlorella suspension promotes the intensification of the development of zooplankton organisms in ponds. The obtained data can be used to develop practical recommendations for optimizing the conditions for growing carp seeds and increasing the biological productivity of ponds. Key words: nursery ponds, natural food supply, phytoplankton, zooplankton, zoobenthos, young-of-the-year carp, chlorella suspension, fish productivity.
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Dissertations / Theses on the topic "Development of Hydrobiology"

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Байдак, Леонід Андрійович. "Становлення та діяльність дніпропетровської гідробіологічної школи техногенно трансформованих прісноводних екосистем (30-ті – 90-ті рр. XX ст.)." Thesis, Дніпропетровський державний аграрно-економічний університет, 2014. http://repository.kpi.kharkov.ua/handle/KhPI-Press/17175.

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Дисертація на здобуття наукового ступеня кандидата історичних наук за спеціальністю 07.00.07 – історія науки і техніки. – Національний технічний університет "Харківський політехнічний інститут", Харків, 2014. Дисертаційна робота є комплексним дослідженням, присвяченим висвітленню основних етапів наукової діяльності дніпропетровської гідробіологічної школи: дослідження техногенно-трансформованих прісноводних екосистем впродовж 1930–1990 рр. Показано процес формування наукового колективу, який першим у межах Радянського Союзу та одним з перших у світі розпочав дослідження трансформації прісноводних екосистем, що є актуальним у сучасних умовах стрімкого погіршення стану водних екосистем. Вперше запропонована періодизація становлення і розвитку дніпропетровської гідробіологічної школи, виділено чотири основні періоди. Виявлено, що різні періоди розвитку лідерами дніпропетровської гідробіологічної школи були такі видатні вчені, як Д. О. Свіренко (1927–1941 рр.), Г. Б. Мельников (1944–1973 рр.), А. І. Дворецький (з 1976 р.). Показано, що початковий період наукової діяльності видатного вченого-гідробіолога, полярника, академіка П. П. Ширшова мав вагомий вплив на становлення наукового світогляду вченого в майбутньому. Окреслено основні теоретичні й практичні надбання вчених, одержані при дослідженні Каховського і Дніпродзержинського водосховищ на Дніпрі, річок Донбасу і Приазов’я, водоакумулюючих водосховищ Криму, водних екосистем Придніпров’я. Окреслені новаторські напрями наукових досліджень, започатковані науковцями гідробіологічної школи, зокрема, дослідження розвитку технічної, космічної гідробіології та прісноводної радіоекології в Україні.
Thesis for the degree of candidate of historical sciences, specialty 07.00.07-History of Science and Technology. - National Technical University "Kharkiv Polytechnic Institute", Kharkiv,2014. The thesis is a complex research, devoted to coverage of the main stages of scientific Dnepropetrovsk hydrobiological school: a study of man-caused transformed freshwater ecosystems throughout the 1930 – 1990s. The work reflects the process of the research team formation. For the first time the periodization of formation and development of the Dnepropetrovsk hydrobiological school is proposed and four main periods are highlighted. It is revealed that such recognized scholars as D.A. Svirenko (1927–1941), G.B. Melnikov (1944–1973) A.I. Dvoretsky (from 1976) were leaders of Dnepropetrovsk hydrobiological school at different periods of its development. It is shown that the initial period of the scientific work of the famous scientisthydrobiologist, polar, academician P.P. Shirshov had a significant influence on the formation of a scientific outlook of the scientist in the future. The basic theoretical and practical achievements received by scientists in the study of Kakhovskoe and Dniprodzerghinskoe reservoirs located upon the Dnieper river; rivers of Donbass and Pryazov’ye, water-accumulating reservoirs of the Crimea, water ecosystems of Prydnieprov’ye are outlined. Innovative areas of research, started by scientists from the hydrobiological school, in particular, the study of technical, space hydrobiology and freshwater radioecology in Ukraine are designated.
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Байдак, Леонід Андрійович. "Становлення та діяльність дніпропетровської гідробіологічної школи техногенно трансформованих прісноводних екосистем (30-ті – 90-ті рр. XX ст.)." Thesis, НТУ "ХПІ", 2015. http://repository.kpi.kharkov.ua/handle/KhPI-Press/17172.

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Дисертація на здобуття наукового ступеня кандидата історичних наук за спеціальністю 07.00.07 – історія науки і техніки. – Національний технічний університет "Харківський політехнічний інститут", Харків, 2014. Дисертаційна робота є комплексним дослідженням, присвяченим висвітленню основних етапів наукової діяльності дніпропетровської гідробіологічної школи: дослідження техногенно-трансформованих прісноводних екосистем впродовж 1930–1990 рр. Показано процес формування наукового колективу, який першим у межах Радянського Союзу та одним з перших у світі розпочав дослідження трансформації прісноводних екосистем, що є актуальним у сучасних умовах стрімкого погіршення стану водних екосистем. Вперше запропонована періодизація становлення і розвитку дніпропетровської гідробіологічної школи, виділено чотири основні періоди. Виявлено, що різні періоди розвитку лідерами дніпропетровської гідробіологічної школи були такі видатні вчені, як Д. О. Свіренко (1927–1941 рр.), Г. Б. Мельников (1944–1973 рр.), А. І. Дворецький (з 1976 р.). Показано, що початковий період наукової діяльності видатного вченого-гідробіолога, полярника, академіка П. П. Ширшова мав вагомий вплив на становлення наукового світогляду вченого в майбутньому. Окреслено основні теоретичні й практичні надбання вчених, одержані при дослідженні Каховського і Дніпродзержинського водосховищ на Дніпрі, річок Донбасу і Приазов’я, водоакумулюючих водосховищ Криму, водних екосистем Придніпров’я. Окреслені новаторські напрями наукових досліджень, започатковані науковцями гідробіологічної школи, зокрема, дослідження розвитку технічної, космічної гідробіології та прісноводної радіоекології в Україні.
Thesis for the degree of candidate of historical sciences, specialty 07.00.07-History of Science and Technology. - National Technical University "Kharkiv Polytechnic Institute", Kharkiv,2014. The thesis is a complex research, devoted to coverage of the main stages of scientific Dnepropetrovsk hydrobiological school: a study of man-caused transformed freshwater ecosystems throughout the 1930 – 1990s. The work reflects the process of the research team formation. For the first time the periodization of formation and development of the Dnepropetrovsk hydrobiological school is proposed and four main periods are highlighted. It is revealed that such recognized scholars as D.A. Svirenko (1927–1941), G.B. Melnikov (1944–1973) A.I. Dvoretsky (from 1976) were leaders of Dnepropetrovsk hydrobiological school at different periods of its development. It is shown that the initial period of the scientific work of the famous scientisthydrobiologist, polar, academician P.P. Shirshov had a significant influence on the formation of a scientific outlook of the scientist in the future. The basic theoretical and practical achievements received by scientists in the study of Kakhovskoe and Dniprodzerghinskoe reservoirs located upon the Dnieper river; rivers of Donbass and Pryazov’ye, water-accumulating reservoirs of the Crimea, water ecosystems of Prydnieprov’ye are outlined. Innovative areas of research, started by scientists from the hydrobiological school, in particular, the study of technical, space hydrobiology and freshwater radioecology in Ukraine are designated.
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Books on the topic "Development of Hydrobiology"

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Adriaan W.C. Dorresteijn (Editor) and Wilfried Westheide (Editor), eds. Reproductive Strategies and Developmental Patterns in Annelids (DEVELOPMENTS IN HYDROBIOLOGY Volume 142) (Developments in Hydrobiology). 4th ed. Springer, 1999.

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(Editor), David M. Harper, Bill Brierley (Editor), Alastair J.D. Ferguson (Editor), and Geoff Phillips (Editor), eds. The Ecological Bases for Lake and Reservoir Management (Developments in Hydrobiology). Springer, 1999.

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R.S.E.W. Leuven (Editor), A.M.J. Ragas (Editor), A.J.M. Smits (Editor), and G.van der Velde (Editor), eds. Living Rivers: Trends and Challenges in Science and Management (Developments in Hydrobiology). Springer, 2006.

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(Editor), J. Meriläinen, P. Huttunen (Editor), and R. W. Battarbee (Editor), eds. Paleolimnology (Developments in Hydrobiology). Springer, 2007.

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Williams, W. D. Salt Lakes (Developments in Hydrobiology). Springer, 2007.

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(Editor), J. Ejsmont-Karabin, and R. M. Pontin (Editor), eds. Rotifera VII (Developments in Hydrobiology). 3rd ed. Springer, 2007.

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(Editor), Henri J. Dumont, J. G. Tundisi (Editor), and K. Roche (Editor), eds. Intrazooplankton Predation (Developments in Hydrobiology). Springer, 2007.

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Aquatic Oligochaetes (Developments in Hydrobiology). Springer, 2000.

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Smirnov, N. N. Lake Glubokoe (Developments in Hydrobiology). Springer, 2007.

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(Editor), John M. Melack, Robert Jellison (Editor), and David B. Herbst (Editor), eds. Saline Lakes (Developments in Hydrobiology). Springer, 2002.

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Book chapters on the topic "Development of Hydrobiology"

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Šesták, Z., and P. Šiffel. "Changes in Chloroplast Fluorescence during Leaf Development." In Applications of Chlorophyll Fluorescence in Photosynthesis Research, Stress Physiology, Hydrobiology and Remote Sensing, 85–91. Dordrecht: Springer Netherlands, 1988. http://dx.doi.org/10.1007/978-94-009-2823-7_10.

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Conference papers on the topic "Development of Hydrobiology"

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Gromasheva, O. S. "ПРОЕКТ ИНФОРМАЦИОННОЙ СИСТЕМЫ АКУСТИКО-ГИДРОФИЗИЧЕСКОГО ПОЛИГОНА МЭС «МЫС ШУЛЬЦА»." In Fizika geosfer. ФГБУН Тихоокеанский океанологический институт им. В.И. Ильичева Дальневосточного отделения РАН, 2019. http://dx.doi.org/10.35976/poi.2019.1.38476.

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Морская экспериментальная станция (МЭС) Мыс Шульца расположена в шельфовой зоне Японского моря, в бухте Витязь Хасанского района Приморского края. Уже 40 лет здесь выполняется основная часть прибрежных экспериментальных исследований в области гидрофизики, геофизики, гидробиологии, проводятся натурные испытания приборов и оборудования, разработанного в ТОИ ДВО РАН, других организациях. МЭС Мыс Шульца является уникальным по географическому принципу местом для проведения сложнейших полигонных экспериментов. К сожалению, данные по проведенным экспериментам являются разрозненными, сведения о развитии структуры базы частично утеряны, либо хранятся на бумажных носителях в архиве института. Для решения такой проблемы является актуальным создание информационной системы МЭС Мыс Шульца . Структурно информационная система МЭС Мыс Шульца состоит из двух частей: историографической и экспериментальной. Первая часть, содержащая архивные материалы по истории создания полигона, публикации, связанные с экспериментальными исследованиями данного района, позволяет отследить этапы создания и развития МЭС Мыс Шульца . Основой второй части ИС должна стать база данных результатов экспедиций, проведенных в период 19792017г.г. на МЭС Мыс Шульца , что позволит накапливать, систематизировать, хранить и анализировать информацию о пространственновременной изменчивости акустическогидрофизических процессов в акватории, прилежащей к МЭС Мыс Шульца .The Maritime Experimental Station (MES) Cape Schulz is located in the shelf zone of the Sea of Japan, in the boot Vityaz of the Khasansky district of the Primorsky Territory. For 40 years, the bulk of coastal experimental research in the field of hydrophysics, geophysics, hydrobiology, field tests of instruments and equipment developed at the POI FEB RAS and other organizations have been carried out here. MES Cape Schulz is a unique geographical location for complex polygon experiments. Unfortunately, the data on the experiments are fragmented, the information about the development of the base structure is partially lost, or stored on paper in the institutes archive. Creation of the information system of the MES Schultz Cape is relevant for solving such a problem. The structure of the information system consists of two parts: historical and experimental. The first part contains archival materials on the history of the MES, publications related to experimental studies of the area. This information allows you to track the stages of the creation and development of the MES Cape Schulz. The database of the results of expeditions conducted in the period 19792017 at the MES Cape Schulz should become the basis of the second part of the IS. This will allow us to accumulate, systematize, store and analyze information on the spatiotemporal variability of acoustichydrophysical processes in the water area adjacent to MES Cape Schulz.
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2

Gromasheva, O. S. "ПРОЕКТ ИНФОРМАЦИОННОЙ СИСТЕМЫ АКУСТИКО-ГИДРОФИЗИЧЕСКОГО ПОЛИГОНА МЭС «МЫС ШУЛЬЦА»." In Fizika geosfer. ФГБУН Тихоокеанский океанологический институт им. В.И. Ильичева Дальневосточного отделения РАН, 2019. http://dx.doi.org/10.35976/poi.2019.62.24.009.

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Abstract:
Морская экспериментальная станция (МЭС) Мыс Шульца расположена в шельфовой зоне Японского моря, в бухте Витязь Хасанского района Приморского края. Уже 40 лет здесь выполняется основная часть прибрежных экспериментальных исследований в области гидрофизики, геофизики, гидробиологии, проводятся натурные испытания приборов и оборудования, разработанного в ТОИ ДВО РАН, других организациях. МЭС Мыс Шульца является уникальным по географическому принципу местом для проведения сложнейших полигонных экспериментов. К сожалению, данные по проведенным экспериментам являются разрозненными, сведения о развитии структуры базы частично утеряны, либо хранятся на бумажных носителях в архиве института. Для решения такой проблемы является актуальным создание информационной системы МЭС Мыс Шульца . Структурно информационная система МЭС Мыс Шульца состоит из двух частей: историографической и экспериментальной. Первая часть, содержащая архивные материалы по истории создания полигона, публикации, связанные с экспериментальными исследованиями данного района, позволяет отследить этапы создания и развития МЭС Мыс Шульца . Основой второй части ИС должна стать база данных результатов экспедиций, проведенных в период 19792017г.г. на МЭС Мыс Шульца , что позволит накапливать, систематизировать, хранить и анализировать информацию о пространственновременной изменчивости акустическогидрофизических процессов в акватории, прилежащей к МЭС Мыс Шульца . Ключевые слова: морская экспериментальная станция, информационная система, акустические методы, гидрофизические измерения, база данных.The Maritime Experimental Station (MES) Cape Schulz is located in the shelf zone of the Sea of Japan, in the boot Vityaz of the Khasansky district of the Primorsky Territory. For 40 years, the bulk of coastal experimental research in the field of hydrophysics, geophysics, hydrobiology, field tests of instruments and equipment developed at the POI FEB RAS and other organizations have been carried out here. MES Cape Schulz is a unique geographical location for complex polygon experiments. Unfortunately, the data on the experiments are fragmented, the information about the development of the base structure is partially lost, or stored on paper in the institutes archive. Creation of the information system of the MES Schultz Cape is relevant for solving such a problem. The structure of the information system consists of two parts: historical and experimental. The first part contains archival materials on the history of the MES, publications related to experimental studies of the area. This information allows you to track the stages of the creation and development of the MES Cape Schulz. The database of the results of expeditions conducted in the period 19792017 at the MES Cape Schulz should become the basis of the second part of the IS. This will allow us to accumulate, systematize, store and analyze information on the spatiotemporal variability of acoustichydrophysical processes in the water area adjacent to MES Cape Schulz. Keywords: marine experimental station, information system, acoustic methods, hydrophysical measurements, database.
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3

McConnell, Robert, and Douglas Robison. "Hydrobiologic Monitoring for New Water Supply Development in the Tampa Bay Region, Florida." In World Water and Environmental Resources Congress 2001. Reston, VA: American Society of Civil Engineers, 2001. http://dx.doi.org/10.1061/40569(2001)449.

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