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				<journal-id journal-id-type="publisher">et</journal-id><journal-id journal-id-type="ojs">et</journal-id>
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			<journal-title xml:lang="ru">Вопросы природопользования</journal-title><trans-title-group xml:lang="en"><trans-title>Environmental Management Issues</trans-title></trans-title-group>
</journal-title-group>			<issn pub-type="epub">3034-3461</issn>			<publisher><publisher-name>Индивидуальный предприниматель Подколзин М.М.</publisher-name></publisher>
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			<article-id pub-id-type="doi">10.25726/t0555-6608-3654-k</article-id><article-id pub-id-type="publisher-id">192</article-id>
			<article-categories><subj-group subj-group-type="heading" xml:lang="en"><subject>ENVIRONMENT AND TECHNOLOGIES</subject></subj-group><subj-group subj-group-type="heading" xml:lang="ru"><subject>ОКРУЖАЮЩАЯ СРЕДА И ТЕХНОЛОГИИ</subject></subj-group></article-categories>
			<title-group><article-title xml:lang="ru">Связь термической стабильности солей BSB и BOB щелочных металлов и аммония с электрохимическими свойствами их растворов в апротонных диполярных растворителях</article-title><trans-title-group xml:lang="en"><trans-title>The relationship of the thermal stability of BSB and BOB salts of alkali metals and ammonium with the electrochemical properties of their solutions in aprotic dipolar solvents</trans-title></trans-title-group></title-group>
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						<name name-style="western" specific-use="primary" xml:lang="ru">
							<surname>Петрова</surname>
							<given-names>Мария Владимировна</given-names>
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						<name name-style="western" xml:lang="en">
							<surname>Petrova</surname>
							<given-names>Maria V.</given-names>
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					<email>petrova@spbu.ru</email>
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				<aff xml:lang="ru"><institution content-type="orgname">Санкт-Петербургский государственный университет</institution></aff>
				<aff xml:lang="en"><institution content-type="orgname">Saint Petersburg State University</institution></aff>
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			<pub-date date-type="collection"><year>2025</year></pub-date><pub-date date-type="pub" publication-format="epub"><day>30</day><month>03</month><year>2025</year></pub-date>
			<volume seq="1">44</volume>
			<issue>33</issue>
				<issue-id>14</issue-id><issue-title xml:lang="ru">Вопросы природопользования </issue-title><issue-title xml:lang="en">Environmental management issues</issue-title><fpage>8</fpage>
				<lpage>15</lpage>
			<history>
				<date date-type="received" iso-8601-date="2025-05-27">
					<day>27</day>
					<month>05</month>
					<year>2025</year>
				</date>
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				<copyright-statement>Copyright (c) 2025 Вопросы природопользования</copyright-statement>
				<copyright-year>2025</copyright-year>
				<copyright-holder>Вопросы природопользования</copyright-holder>
				<license xml:lang="ru" xlink:href="https://creativecommons.org/licenses/by-nc-nd/4.0">
					<license-p>Это произведение доступно по лицензии Creative Commons «Attribution-NonCommercial-NoDerivatives» («Атрибуция — Некоммерческое использование — Без производных произведений») 4.0 Всемирная.</license-p>
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					<license-p>Метаданные настоящей записи распространяются на условиях Creative Commons CC0 1.0 (передача в общественное достояние).</license-p>
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			<abstract><p>Энергия кристаллической решетки соли является одним из факторов, который влияет на степень диссоциации соли и энтальпийные и энтропийные характеристики растворов электролитов. Именно они формируют термодинамические показатели этих растворов и их способность участвовать в транспорте ионов. Поэтому для дальнейшего изучения этих свойств нужно было установить термические свойства солей BOB и BSB щелочных металлов и аммония. На стабильность электролитной системы большое влияние имеет наличие фазовых превращений и химических реакции в солевой компоненте электролита. Наиболее информативным физико-химическим методом, который позволяет выяснить наличие этих преобразований являются методы дифференциально-термического (ГТА) и термогравиметрического анализа (ТГА). Электропроводность и вязкость сильно связаны, поскольку именно вязкость определяет характер движения носителей заряда. Вязкость и электропроводность изменяются симбатно. Минимумы и максимумы на кривой вязкость – температура коррелируют с таковыми на кривой температура – электропроводность. При рассмотрении температурно-концентрационной зависимости солей BSB-величина вязкости коррелирует с величиной электропроводности. Это особенно наглядно видно на примере концентрационной и температурной электропроводностей KBSB и NaBSB в DMFA. Установлено, что калийные соли имеют большую зависимость электропроводности от концентрации чем натриевые. При рассмотрении тройных диаграмм зависимости вязкости и электропроводности от температуры установлено, что электропроводность является функцией температуры. </p></abstract><trans-abstract xml:lang="en"><p>The energy of the salt crystal lattice is one of the factors that affects the degree of salt dissociation and the enthalpy and entropy characteristics of electrolyte solutions. They form the thermodynamic parameters of these solutions and their ability to participate in ion transport. Therefore, in order to further study these properties, it was necessary to establish the thermal properties of BOB and BSB salts of alkali metals and ammonium. The stability of the electrolyte system is greatly influenced by the presence of phase transformations and chemical reactions in the salt component of the electrolyte. The most informative physico-chemical method that makes it possible to determine the presence of these transformations are the methods of differential thermal (GTA) and thermogravimetric analysis (TGA). Electrical conductivity and viscosity are strongly related, since it is the viscosity that determines the nature of the movement of charge carriers. Viscosity and electrical conductivity vary symbiotally. The minima and maxima on the viscosity–temperature curve correlate with those on the temperature–conductivity curve. When considering the temperature-concentration dependence of BSB salts, the viscosity value correlates with the electrical conductivity value. This is particularly evident in the example of the concentration and temperature electrical conductivities of KBSB and NaBSB in DMFA. It has been established that potassium salts have a greater dependence of electrical conductivity on concentration than sodium salts. When considering the triple diagrams of the dependence of viscosity and electrical conductivity on temperature, it was found that electrical conductivity is a function of temperature.</p></trans-abstract><trans-abstract xml:lang="en"><p>The energy of the salt crystal lattice is one of the factors that affects the degree of salt dissociation and the enthalpy and entropy characteristics of electrolyte solutions. They form the thermodynamic parameters of these solutions and their ability to participate in ion transport. Therefore, in order to further study these properties, it was necessary to establish the thermal properties of BOB and BSB salts of alkali metals and ammonium. The stability of the electrolyte system is greatly influenced by the presence of phase transformations and chemical reactions in the salt component of the electrolyte. The most informative physico-chemical method that makes it possible to determine the presence of these transformations are the methods of differential thermal (GTA) and thermogravimetric analysis (TGA). Electrical conductivity and viscosity are strongly related, since it is the viscosity that determines the nature of the movement of charge carriers. Viscosity and electrical conductivity vary symbiotally. The minima and maxima on the viscosity–temperature curve correlate with those on the temperature–conductivity curve. When considering the temperature-concentration dependence of BSB salts, the viscosity value correlates with the electrical conductivity value. This is particularly evident in the example of the concentration and temperature electrical conductivities of KBSB and NaBSB in DMFA. It has been established that potassium salts have a greater dependence of electrical conductivity on concentration than sodium salts. When considering the triple diagrams of the dependence of viscosity and electrical conductivity on temperature, it was found that electrical conductivity is a function of temperature.</p></trans-abstract>
			
			
			<kwd-group xml:lang="ru"><title>Ключевые слова</title><kwd>электролит</kwd><kwd>раствор</kwd><kwd>химия</kwd><kwd>электропроводность</kwd></kwd-group><kwd-group xml:lang="en"><title>Keywords</title><kwd>electrolyte</kwd><kwd>solution</kwd><kwd>chemistry</kwd><kwd>electrical conductivity</kwd></kwd-group><funding-group>
				<funding-statement xml:lang="ru">Исследование выполнено без внешнего финансирования.</funding-statement>
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