<?xml version='1.0' encoding='utf-8'?>
<article xmlns:ns0="http://www.w3.org/1999/xlink" xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:ali="http://www.niso.org/schemas/ali/1.0/" article-type="research-article" dtd-version="1.2" xml:lang="ru">
 <front>
 <journal-meta>
 <journal-id journal-id-type="publisher-id">dongu-ecolog.ru</journal-id>
 <journal-title-group>
 <journal-title xml:lang="ru">Проблемы экологии и охраны природы техногенного региона</journal-title>
 <trans-title-group xml:lang="en">
 <trans-title>Problems of Ecology and Nature Protection of Technogenic Region</trans-title>
 </trans-title-group>
 </journal-title-group>
 <issn publication-format="electronic">2077-3366</issn>
 </journal-meta>
 <article-meta>
 <article-id pub-id-type="publisher-id">416</article-id>
 <article-id pub-id-type="doi">10.5281/zenodo.21080002</article-id>
 <article-categories>
 <subj-group subj-group-type="toc-heading" xml:lang="en">
 <subject>Articles</subject>
 </subj-group>
 <subj-group subj-group-type="toc-heading" xml:lang="ru">
 <subject>Статьи</subject>
 </subj-group>
 <subj-group subj-group-type="article-type">
 <subject>Research Article</subject>
 </subj-group>
 </article-categories>
 <title-group>
 <article-title xml:lang="en">FIELD STUDIES OF HYDROPHYSICAL DEHYDRATION OF SOILS IN THE MIDDLE TAIGA SUBZONE OF WESTERN SIBERIA</article-title>
 <trans-title-group xml:lang="ru">
 <trans-title>ПОЛЕВЫЕ ИССЛЕДОВАНИЯ ГИДРОФИЗИЧЕСКОЙ ДЕГИДРАТАЦИИ ПОЧВ В СРЕДНЕТАЕЖНОЙ ПОДЗОНЕ ЗАПАДНОЙ СИБИРИ</trans-title>
 </trans-title-group>
 </title-group>
 <contrib-group>
 <contrib contrib-type="author">
 <contrib-id contrib-id-type="orcid">https://orcid.org/0000-0001-7985-6474</contrib-id>
 <name-alternatives>
 <name xml:lang="en">
 <surname>Nosova</surname>
 <given-names>Maria Vladimirovna</given-names>
 </name>
 <name xml:lang="ru">
 <surname>Носова</surname>
 <given-names>Мария Владимировна</given-names>
 </name>
 </name-alternatives>
 <email>nsmvsh@mail.ru</email>
 <xref ref-type="aff" rid="aff1">1</xref>
 </contrib>
 <contrib contrib-type="author">
 <contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-7432-1726</contrib-id>
 <name-alternatives>
 <name xml:lang="en">
 <surname>Seredina</surname>
 <given-names>Valentina Petrovna</given-names>
 </name>
 <name xml:lang="ru">
 <surname>Середина</surname>
 <given-names>Валентина Петровна</given-names>
 </name>
 </name-alternatives>
 <email>seredina_v@mail.ru</email>
 <xref ref-type="aff" rid="aff2">2</xref>
 </contrib>
 <contrib contrib-type="author">
 <name-alternatives>
 <name xml:lang="en">
 <surname>Stovbunik</surname>
 <given-names>Sergey Anatolievich</given-names>
 </name>
 <name xml:lang="ru">
 <surname>Стовбуник</surname>
 <given-names>Сергей Анатольевич</given-names>
 </name>
 </name-alternatives>
 <email>StovbunikSA@rn-pd.rosneft.ru</email>
 <xref ref-type="aff" rid="aff3">3</xref>
 </contrib>
 </contrib-group>
 <aff-alternatives id="aff1">
 <aff xml:lang="ru">
 <institution>ООО "Сахалинская Энергия"</institution>
 </aff>
 <aff xml:lang="en">
 <institution>Sakhalin Energy LLC</institution>
 </aff>
 </aff-alternatives>
 <aff-alternatives id="aff2">
 <aff xml:lang="ru">
 <institution>Национальный исследовательский Томский государственный университет</institution>
 </aff>
 <aff xml:lang="en">
 <institution>National Research Tomsk State University</institution>
 </aff>
 </aff-alternatives>
 <aff-alternatives id="aff3">
 <aff xml:lang="ru">
 <institution>ООО «РН-Проектирование Добыча»</institution>
 </aff>
 <aff xml:lang="en">
 <institution>RN-Design Extraction LLC</institution>
 </aff>
 </aff-alternatives>
 <pub-date date-type="pub" iso-8601-date="2026-07-02" publication-format="electronic">
 <day>02</day>
 <month>07</month>
 <year>2026</year>
 </pub-date>
 <issue>2</issue>
 <issue-title xml:lang="en">NO2 (2026)</issue-title>
 <issue-title xml:lang="ru">№2 (2026)</issue-title>
 <fpage>26</fpage>
 <lpage>37</lpage>
 <history>
 <date date-type="received" iso-8601-date="2026-07-07">
 <day>07</day>
 <month>07</month>
 <year>2026</year>
 </date>
 </history>
 <permissions>
 <copyright-statement xml:lang="ru">Copyright ©; 2026, Проблемы экологии и охраны природы техногенного региона</copyright-statement>
 <copyright-statement xml:lang="en">Copyright ©; 2026, Problems of Ecology and Nature Protection of Technogenic Region</copyright-statement>
 <copyright-year>2026</copyright-year>
 <copyright-holder xml:lang="ru">Проблемы экологии и охраны природы техногенного региона</copyright-holder>
 <copyright-holder xml:lang="en">Problems of Ecology and Nature Protection of Technogenic Region</copyright-holder>
 <license license-type="open-access" ns0:href="https://creativecommons.org/licenses/by-nc/4.0/" xml:lang="ru">
 <license-p>Эта статья распространяется на условиях лицензии Creative Commons Attribution-NonCommercial 4.0 International (CC BY-NC 4.0)</license-p>
 </license>
 <license license-type="open-access" ns0:href="https://creativecommons.org/licenses/by-nc/4.0/" xml:lang="en">
 <license-p>This article is distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0)</license-p>
 </license>
 <ali:free_to_read />
 </permissions>
 <self-uri ns0:href="https://dongu-ecolog.ru/index.php/ecolog/article/view/416">https://dongu-ecolog.ru/index.php/ecolog/article/view/416</self-uri>
 <abstract xml:lang="en">
 <p>The article presents the results of a comprehensive study of the transformation of water-physical properties and soil-hydrological constants of alluvial soils of the middle taiga subzone of Western Siberia under conditions of local oil pollution. Based on the analysis of soil horizons in the epicenter and peripheral zones of the oil spill, a significant deterioration in such indicators as total and least moisture capacity, active moisture range and wilting point moisture was established. Clear correlations between the level of pollution and the degradation of water-retaining properties of the soil were revealed. Particular attention is paid to the spatial stratification of oil products and their impact on the physiological availability of moisture. A set of reclamation measures is proposed, including biological, agrotechnical and sorption approaches. The results can be used for environmental monitoring, sustainable land use planning and development of regional programs for restoration of soils damaged by oil load.</p>
 </abstract>
 <trans-abstract xml:lang="ru">
 <p>В статье представлены результаты комплексного исследования трансформации водно-физических свойств и почвенно-гидрологических констант аллювиальных почв среднетаежной подзоны Западной Сибири в условиях локального нефтяного загрязнения. На основе анализа почвенных горизонтов в эпицентре и периферийных зонах нефтеразлива установлено значительное ухудшение таких показателей, как полная и наименьшая влагоемкость, диапазон активной влаги и влажность завядания. Выявлены четкие корреляционные связи между уровнем загрязнения и деградацией водоудерживающих свойств почвы. Особое внимание уделено пространственной стратификации нефтепродуктов и их влиянию на физиологическую доступность влаги. Предложен комплекс мер по рекультивации, включающий биологические, агротехнические и сорбционные подходы. Результаты могут быть использованы для экологического мониторинга, планирования устойчивого землепользования и разработки региональных программ восстановления почв, нарушенных нефтяной нагрузкой.</p>
 </trans-abstract>
 <kwd-group xml:lang="en">
 <kwd>oil pollution of soils</kwd>
 <kwd>alluvial soils</kwd>
 <kwd>hydrophobization</kwd>
 <kwd>soil-hydrological constants</kwd>
 <kwd>total moisture capacity</kwd>
 <kwd>active moisture range</kwd>
 <kwd>Western Siberia</kwd>
 <kwd>soil degradation</kwd>
 </kwd-group>
 <kwd-group xml:lang="ru">
 <kwd>нефтяное загрязнение почв</kwd>
 <kwd>аллювиальные почвы</kwd>
 <kwd>гидрофобизация</kwd>
 <kwd>почвенно-гидрологические константы</kwd>
 <kwd>полная влагоемкость</kwd>
 <kwd>диапазон активной влаги</kwd>
 <kwd>Западная Сибирь</kwd>
 <kwd>деградация почв</kwd>
 </kwd-group>
 </article-meta>
 </front>
 <body>
 <p>[Полный текст статьи отсутствует в исходных данных. Необходимо добавить текст из PDF или другого источника.]</p>
 </body>
 <back>
 <ref-list>
 <title>Список литературы</title>
 <ref id="B1">
 <mixed-citation>1. ГОСТ 17.4.4.02–84. Охрана природы. Почвы. Методы отбора и подготовки проб для химического, бакте-риологического и гельминтологического анализа. Введ. 1985-07-01. М.: Государственный комитет СССР по стандартам, 1984. 15 с.</mixed-citation>
 </ref>
 <ref id="B2">
 <mixed-citation>2. ГОСТ 28268–89. Почвы. Методы определения влажности, максимальной гигроскопической влажности и влажности устойчивого завядания растений. Введ. 1990-01-01. М.: Госстандарт, 1989. 12 с.</mixed-citation>
 </ref>
 <ref id="B3">
 <mixed-citation>3. ГОСТ Р ИСО 18763-2019. Качество почвы. Определение токсического воздействия загрязняющих веществ на всхожесть и рост на ранних стадиях высших растений. Введ. 2021-01-01. М.: Стандартинформ, 2019. 27 с.</mixed-citation>
 </ref>
 <ref id="B4">
 <mixed-citation>4. Носова М. В. Влияние нефтесолевого загрязнения на экологическое состояние почв поймы реки Оби в условиях среднетаежной подзоны Западной Сибири: дис. … канд. биол. наук: спец. 1.5.15. Томск, 2024. 213 с.</mixed-citation>
 </ref>
 <ref id="B5">
 <mixed-citation>5. ПНД Ф 16.1:2.21–98. Методика выполнения измерений массовой доли нефтепродуктов в почвах и донных отложениях методом ИК-спектрометрии. М.: Федеральный центр анализа и оценки техногенного воздействия, 1998. 24 с.</mixed-citation>
 </ref>
 <ref id="B6">
 <mixed-citation>6. РД 52.33.219–2022. Руководство по определению агрогидрологических свойств почв. – Обнинск: ФГБУ «ВНИИГМИ-МЦД», 2023. 126 с.</mixed-citation>
 </ref>
 <ref id="B7">
 <mixed-citation>7. Шишов Л. Л., Тонконогов В. Д., Лебедева И. И., Герасимова М. И. Классификации и диагностика почв России. Смоленск: Ойкумена, 2004. 342 с</mixed-citation>
 </ref>
 <ref id="B8">
 <mixed-citation>8. Hussain I., Puschenreiter M., Gerhard S., Schöftner P., Yousaf S., Wang A., Reichenauer T. G. Rhizoremediation of petroleum hydrocarbon-contaminated soils: Improvement opportunities and field applications // Environmental and Experimental Botany. 2018. Vol. 147. P. 202–219. DOI: 10.1016/j.envexpbot.2017.12.016.</mixed-citation>
 </ref>
 <ref id="B9">
 <mixed-citation>9. Ossai I. C., Ahmed A., Hassan A., Hamid F. S. Remediation of soil and water contaminated with petroleum hydrocarbon: A review // (Environmental) Technology &amp; Innovation. 2020. Vol. 17. P. 100526. DOI: 10.1016/j.eti.2019.100526.</mixed-citation>
 </ref>
 <ref id="B10">
 <mixed-citation>10. Tang, J., Lu X., Sun Q. &amp; Zhu W. Aging effect of petroleum hydrocarbons in soil under different attenuation conditions // Agriculture, Ecosystems &amp; Environment. 2012. Vol. 149. P. 109–117.</mixed-citation>
 </ref>
 <ref id="B11">
 <mixed-citation>11. Varjani S. J., Gnansounou E., Pandey A. Comprehensive review on toxicity of persistent organic pollutants from petroleum refinery waste and their degradation by microorganisms // Chemosphere. 2017. Vol. 188. P. 280–291. DOI: 10.1016/j.chemosphere.2017.09.005.</mixed-citation>
 </ref>
 <ref id="B12">
 <mixed-citation>12. World Reference Base for Soil Resources. International Soil Classification System for Naming Soils and Creating Legends for Soil Maps // World Soil Resources Reports. Rome: FAO, 2022. No 106. P. 181.</mixed-citation>
 </ref>
 <ref id="B13">
 <mixed-citation>References</mixed-citation>
 </ref>
 <ref id="B14">
 <mixed-citation>1. GOST – State Standard 17.4.4.02–84 (1984). Okhrana prirody. Pochvy. Metody otbora i podgotovki prob dlya khimicheskogo, bakteriologicheskogo i gel'mintologicheskogo analiza [Nature protection. Soils. Methods for sampling and preparing samples for chemical, bacteriological, and helminthological analysis]. (In Russian).</mixed-citation>
 </ref>
 <ref id="B15">
 <mixed-citation>2. GOST – State Standard 28268–89 (1989). Pochvy. Metody opredeleniya vlazhnosti, maksimal'noi gigroskopicheskoi vlazhnosti i vlazhnosti ustoichivogo zavyadaniya rastenii [Soils. Methods for determining moisture, maximum hygroscopic moisture, and moisture of permanent wilting]. (In Russian).</mixed-citation>
 </ref>
 <ref id="B16">
 <mixed-citation>3. GOST – State Standard R ISO 18763-2019 (2019). Kachestvo pochvy. Opredelenie toksicheskogo vozdeistviya zagryaznyayushchikh veshchestv na vskhozhest' i rost na rannikh stadiyakh vysshikh rastenii [Soil quality. Determination of the toxic effects of pollutants on germination and early growth of higher plants]. (In Russian).</mixed-citation>
 </ref>
 <ref id="B17">
 <mixed-citation>4. Nosova, M. V. (2024). Vliyanie neftesolevogo zagryazneniya na ekologicheskoe sostoyanie pochv poimy reki Obi v usloviyakh srednetaezhnoi podzony Zapadnoi Sibiri [The influence of oil-salt pollution on the ecological condition of soils in the Ob River floodplain in the middle taiga subzone of Western Siberia] [Candidate dissertation, Tomsk]. (In Russian).</mixed-citation>
 </ref>
 <ref id="B18">
 <mixed-citation>5. PND F 16.1:2.21–98 (1998). Metodika vypolneniya izmerenii massovoi doli nefteproduktov v pochvakh i donnykh otlozheniyakh metodom IK-spektrometrii [Method for measuring the mass fraction of petroleum products in soils and bottom sediments by IR spectrometry]. Moscow: Federal'nyi tsentr analiza i otsenki tekhnogennogo vozdeistviya, 24 p. (In Russian).</mixed-citation>
 </ref>
 <ref id="B19">
 <mixed-citation>6. RD 52.33.219–2022 (2023). Rukovodstvo po opredeleniyu agrogidrologicheskikh svoistv pochv [Guideline for determining agrihydrological properties of soils]. Obninsk: FGBU "VNIIGMI-MTsD", 126 p. (In Russian).</mixed-citation>
 </ref>
 <ref id="B20">
 <mixed-citation>7. Shishov, L. L., Tonkonogov, V. D., Lebedeva, I. I., &amp; Gerasimova, M. I. (2004). Klassifikatsii i diagnostika pochv Rossii [Classification and diagnosis of soils in Russia]. Oikumena, 342 p. (In Russian)</mixed-citation>
 </ref>
 <ref id="B21">
 <mixed-citation>8. Hussain, I., Puschenreiter, M., Gerhard, S., Schöftner, P., Yousaf, S., Wang, A., Syed, J. H., &amp; Reichenauer, T. G. (2018). Rhizoremediation of petroleum hydrocarbon-contaminated soils: Improvement opportunities and field applications. Environmental and Experimental Botany, 147, 202–219, doi: 10.1016/j.envexpbot.2017.12.016. (In English).</mixed-citation>
 </ref>
 <ref id="B22">
 <mixed-citation>9. Ossai, I. C., Ahmed, A., Hassan, A., &amp; Hamid, F. S. (2020). Remediation of soil and water contaminated with petroleum hydrocarbon: A review. Environmental Technology &amp; Innovation, 17, 100526, doi: 10.1016/j.eti.2019.100526. (In English).</mixed-citation>
 </ref>
 <ref id="B23">
 <mixed-citation>10. Tang, J., Lu, X., Sun, Q., &amp; Zhu, W. (2012). Aging effect of petroleum hydrocarbons in soil under different attenuation conditions. Agriculture, Ecosystems &amp; Environment, 149, 109–117. (In English).</mixed-citation>
 </ref>
 <ref id="B24">
 <mixed-citation>11. Varjani, S. J., Gnansounou, E., &amp; Pandey, A. (2017). Comprehensive review on toxicity of persistent organic pollutants from petroleum refinery waste and their degradation by microorganisms. Chemosphere, 188, 280–291, doi: 10.1016/j.chemosphere.2017.09.005. (In English).</mixed-citation>
 </ref>
 <ref id="B25">
 <mixed-citation>12. Food and Agriculture Organization of the United Nations. (2022). World reference base for soil resources: International soil classification system for naming soils and creating legends for soil maps (World Soil Resources Reports No. 106, p. 181). FAO. (In English).</mixed-citation>
 </ref>
 </ref-list>
 </back>
 </article>
