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 <front>
  <journal-meta>
   <journal-id journal-id-type="publisher-id">Safety in Technosphere</journal-id>
   <journal-title-group>
    <journal-title xml:lang="en">Safety in Technosphere</journal-title>
    <trans-title-group xml:lang="ru">
     <trans-title>Безопасность в техносфере</trans-title>
    </trans-title-group>
   </journal-title-group>
   <issn publication-format="print">1998-071X</issn>
  </journal-meta>
  <article-meta>
   <article-id pub-id-type="publisher-id">13324</article-id>
   <article-id pub-id-type="doi">10.12737/21723</article-id>
   <article-categories>
    <subj-group subj-group-type="toc-heading" xml:lang="ru">
     <subject>Методы и средства обеспечения безопасности</subject>
    </subj-group>
    <subj-group subj-group-type="toc-heading" xml:lang="en">
     <subject>Methods and means of safety</subject>
    </subj-group>
    <subj-group>
     <subject>Методы и средства обеспечения безопасности</subject>
    </subj-group>
   </article-categories>
   <title-group>
    <article-title xml:lang="en">Solid-Phase Biosorbents for Water Purification from Petroleum Hydrocarbons</article-title>
    <trans-title-group xml:lang="ru">
     <trans-title>Твердофазные биосорбенты для очистки воды от нефтяных углеводородов</trans-title>
    </trans-title-group>
   </title-group>
   <contrib-group content-type="authors">
    <contrib contrib-type="author">
     <name-alternatives>
      <name xml:lang="ru">
       <surname>Али-Элдиин</surname>
       <given-names>Мохамед Абд-Элнаби </given-names>
      </name>
      <name xml:lang="en">
       <surname>Aly-Eldine</surname>
       <given-names>M.A. </given-names>
      </name>
     </name-alternatives>
     <email>alieldine@mail.ru</email>
    </contrib>
    <contrib contrib-type="author">
     <name-alternatives>
      <name xml:lang="ru">
       <surname>Лейкин</surname>
       <given-names>Ю. А.</given-names>
      </name>
      <name xml:lang="en">
       <surname>Leykin</surname>
       <given-names>Yu. А.</given-names>
      </name>
     </name-alternatives>
     <email>leykinya@mail.ru</email>
    </contrib>
    <contrib contrib-type="author">
     <name-alternatives>
      <name xml:lang="ru">
       <surname>Черкасова</surname>
       <given-names>Т. А.</given-names>
      </name>
      <name xml:lang="en">
       <surname>Cherkasova</surname>
       <given-names>T. A.</given-names>
      </name>
     </name-alternatives>
     <email>tacherpur@yandex.ru</email>
     <bio xml:lang="ru">
      <p>кандидат химических наук;</p>
     </bio>
     <bio xml:lang="en">
      <p>candidate of chemical sciences;</p>
     </bio>
     <xref ref-type="aff" rid="aff-1"/>
    </contrib>
    <contrib contrib-type="author">
     <name-alternatives>
      <name xml:lang="ru">
       <surname>Мизиев</surname>
       <given-names>М. А.</given-names>
      </name>
      <name xml:lang="en">
       <surname>Miziev</surname>
       <given-names>M. А.</given-names>
      </name>
     </name-alternatives>
     <email>magomed.miziev@mail.ru</email>
     <xref ref-type="aff" rid="aff-2"/>
    </contrib>
   </contrib-group>
   <aff-alternatives id="aff-1">
    <aff>
     <institution xml:lang="ru">Российский химико-технологический университет имени Д.И. Менделеева</institution>
     <country>Россия</country>
    </aff>
    <aff>
     <institution xml:lang="en">D. Mendeleyev University of ChemicalTechnology of Russia</institution>
     <country>Russian Federation</country>
    </aff>
   </aff-alternatives>
   <aff-alternatives id="aff-2">
    <aff>
     <institution xml:lang="ru">Российский химико-технологический университет имени Д.И. Менделеева</institution>
     <country>Россия</country>
    </aff>
    <aff>
     <institution xml:lang="en">D. Mendeleyev University of Chemical Technology of Russia</institution>
     <country>Russian Federation</country>
    </aff>
   </aff-alternatives>
   <pub-date publication-format="print" date-type="pub" iso-8601-date="2016-06-25T00:00:00+03:00">
    <day>25</day>
    <month>06</month>
    <year>2016</year>
   </pub-date>
   <pub-date publication-format="electronic" date-type="pub" iso-8601-date="2016-06-25T00:00:00+03:00">
    <day>25</day>
    <month>06</month>
    <year>2016</year>
   </pub-date>
   <volume>5</volume>
   <issue>3</issue>
   <fpage>48</fpage>
   <lpage>57</lpage>
   <self-uri xlink:href="https://zh-szf.ru/en/nauka/article/13324/view">https://zh-szf.ru/en/nauka/article/13324/view</self-uri>
   <abstract xml:lang="ru">
    <p>На модельном растворе додекана исследованы сорбенты с иммобилизованными клетками микроорганизмов рода&#13;
Pseudomonas (К-5-25, К-2) и Rhodococcus (EriA. 2-4М). Рассмотрены сорбенты на основе нетканых материалов из полипропиленового волокна (нейтрального) и из акрилонитрильного волокна (содержащего в своей структуре группы&#13;
первичного и вторичного аминов), а также на основе вермикулита, природного минерала из группы гидрослюд слоистого строения. Проведена оценка эффективности сорбционного и биокаталитического вкладов для изучения&#13;
степени очистки воды. Такие саморегенерирующиеся системы, сочетающие физико-химическое и биологическое&#13;
удаление нефтяных углеводородов из растворов с малыми и следовыми концентрациями, могут работать в динамическом режиме. При этом сорбент выполняет одну из важнейших функций биосистемы, обеспечивая доставку&#13;
и накопление нефтяных компонентов из жидкой фазы, а иммобилизованные клетки осуществляют саморегенерацию биосорбента. Анализ сравнительной эффективности этих процессов с использованием кинетического анализа результатов, полученных на твердофазном сорбенте с иммобилизованными клетками и на исходном сорбенте&#13;
без клеток, позволил определить степень физико-химического удаления додекана из водной эмульсии и степень&#13;
его биодеградации, как в жидкой, так и в твердой фазе сорбционного материала. Наиболее эффективным оказался&#13;
биосорбент на основе акрилонитрильного нетканого материала, позволивший уменьшить концентрацию додекана в системе до уровня ПДКрыб.хоз. в течение восьми дней.</p>
   </abstract>
   <trans-abstract xml:lang="en">
    <p>In the model solution of dodecane investigated sorbents with immobilized microbial&#13;
cells genus Pseudomonas (K-5-25, A-2) and Rhodococcus (EriA. 2-4m). Sorbents based&#13;
on non-woven fabrics made of polypropylene fibers (neutral) and the acrylonitrile&#13;
fibers containing in their structure of the group of primary and secondary amines, as&#13;
well as on natural material of the mineral from the group of hydrous layered structure.&#13;
The efficiency of the sorption and biocatalytic contributions to the study of the degree&#13;
of water purification. Such self-recovering system, combining physico-chemical and&#13;
biological removal of petroleum hydrocarbons from solutions with low concentrations&#13;
of trace and can operate in dynamic mode. Moreover, the sorbent performs one of the&#13;
most important functions of biological systems, providing delivery and accumulation&#13;
of oil components from the liquid phase, immobilized cells and carry out selfregeneration&#13;
biosorbent. Analysis of the comparative effectiveness of these processes&#13;
with the use of a kinetic model of the results obtained on the solid-phase sorbent with&#13;
immobilized cells and the initial sorbent without cells, allowed us to determine the&#13;
degree of physical and chemical removal of dodecane from an aqueous emulsion and&#13;
the degree of biodegradation, as in liquid, and in solid phase sorption material. The&#13;
most efficient biological system has shown itself on the basis of non-woven material&#13;
acrylonitrile, allowing up to 8 days to reduce the concentration of dodecane to the&#13;
level of maximum permissible concentration and below.</p>
   </trans-abstract>
   <kwd-group xml:lang="ru">
    <kwd>сорбция</kwd>
    <kwd>биодеструкция</kwd>
    <kwd>иммобилизованные клетки микроорганизмов</kwd>
    <kwd>биосистемы</kwd>
    <kwd>кинетика.</kwd>
   </kwd-group>
   <kwd-group xml:lang="en">
    <kwd>sorption</kwd>
    <kwd>biodegradation</kwd>
    <kwd>immobilized microbial cells</kwd>
    <kwd>biosystems and kinetics.</kwd>
   </kwd-group>
  </article-meta>
 </front>
 <body>
  <p>1. IntroductionApplication of highly effective sorption technologies for producing high-purity water usually involves pretreatment of water to remove petroleum hydrocarbons (PHCs) that causes loss of sorption activity due to blocking and “poisoning” of active  ionic centers of polymeric ion exchangers. One of the most economically efficient means of the removal of spilled oil from either land or sea is the use of sorbents (Walkup et al., 1969). Synthetic sorbents such as polypropylene and polyurethane are the most commonly used commercial sorbents in oil-spill cleanup due to their oleophilic and hydrophobic characteristics (Schatzberg, 1971).Bio-catalytic methods of water purification from oil hydrocarbons using immobilized oil-oxidizing microorganisms can significantly increase treatment efficiency (Li et al., 2005), compared to using the active solid phase support only.In general, biological treatment of environmental pollutants is preferred over physicochemical as the former is cost effective, efficient and environmentally friendly (Ojo, 2006).</p>
 </body>
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