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 <front>
  <journal-meta>
   <journal-id journal-id-type="publisher-id">Herald of Technological University</journal-id>
   <journal-title-group>
    <journal-title xml:lang="en">Herald of Technological University</journal-title>
    <trans-title-group xml:lang="ru">
     <trans-title>ВЕСТНИК ТЕХНОЛОГИЧЕСКОГО УНИВЕРСИТЕТА</trans-title>
    </trans-title-group>
   </journal-title-group>
   <issn publication-format="print">3034-4689</issn>
  </journal-meta>
  <article-meta>
   <article-id pub-id-type="publisher-id">98698</article-id>
   <article-id pub-id-type="doi">10.55421/3034-4689_2025_28_4_69</article-id>
   <article-categories>
    <subj-group subj-group-type="toc-heading" xml:lang="ru">
     <subject>2. Химическая технология</subject>
    </subj-group>
    <subj-group subj-group-type="toc-heading" xml:lang="en">
     <subject>2. Chemical Technology</subject>
    </subj-group>
    <subj-group>
     <subject>2. Химическая технология</subject>
    </subj-group>
   </article-categories>
   <title-group>
    <article-title xml:lang="en">LABORATORY FERRATE GENERATOR: DESIGN, MODES, EFFICIENCY</article-title>
    <trans-title-group xml:lang="ru">
     <trans-title>ЛАБОРАТОРНЫЙ ГЕНЕРАТОР ФЕРРАТОВ: КОНСТРУКЦИЯ, РЕЖИМЫ, ЭФФЕКТИВНОСТЬ</trans-title>
    </trans-title-group>
   </title-group>
   <contrib-group content-type="authors">
    <contrib contrib-type="author">
     <name-alternatives>
      <name xml:lang="ru">
       <surname>Киреев</surname>
       <given-names>Сергей Юрьевич</given-names>
      </name>
      <name xml:lang="en">
       <surname>Kireev</surname>
       <given-names>Sergey Yur'evich</given-names>
      </name>
     </name-alternatives>
     <email>sergey58_79@mail.ru</email>
     <bio xml:lang="ru">
      <p>доктор технических наук;</p>
     </bio>
     <bio xml:lang="en">
      <p>doctor of technical sciences;</p>
     </bio>
     <xref ref-type="aff" rid="aff-1"/>
    </contrib>
    <contrib contrib-type="author">
     <name-alternatives>
      <name xml:lang="ru">
       <surname>Штепа</surname>
       <given-names>В. Н.</given-names>
      </name>
      <name xml:lang="en">
       <surname>Shtepa</surname>
       <given-names>V. N.</given-names>
      </name>
     </name-alternatives>
     <xref ref-type="aff" rid="aff-2"/>
    </contrib>
    <contrib contrib-type="author">
     <name-alternatives>
      <name xml:lang="ru">
       <surname>Киреева</surname>
       <given-names>С. Н.</given-names>
      </name>
      <name xml:lang="en">
       <surname>Kireeva</surname>
       <given-names>S. N.</given-names>
      </name>
     </name-alternatives>
     <xref ref-type="aff" rid="aff-3"/>
    </contrib>
    <contrib contrib-type="author">
     <name-alternatives>
      <name xml:lang="ru">
       <surname>Дубина</surname>
       <given-names>Александр Валентинович</given-names>
      </name>
      <name xml:lang="en">
       <surname>Dubina</surname>
       <given-names>Alexander Valentinovich</given-names>
      </name>
     </name-alternatives>
    </contrib>
    <contrib contrib-type="author">
     <name-alternatives>
      <name xml:lang="ru">
       <surname>Кирилина</surname>
       <given-names>Ю. Н.</given-names>
      </name>
      <name xml:lang="en">
       <surname>Kirilina</surname>
       <given-names>Yu. N.</given-names>
      </name>
     </name-alternatives>
     <xref ref-type="aff" rid="aff-3"/>
    </contrib>
    <contrib contrib-type="author">
     <name-alternatives>
      <name xml:lang="ru">
       <surname>Крылов</surname>
       <given-names>В. А.</given-names>
      </name>
      <name xml:lang="en">
       <surname>Krylov</surname>
       <given-names>V. A.</given-names>
      </name>
     </name-alternatives>
     <xref ref-type="aff" rid="aff-3"/>
     <xref ref-type="aff" rid="aff-4"/>
    </contrib>
   </contrib-group>
   <aff-alternatives id="aff-1">
    <aff>
     <institution xml:lang="ru">Пензенский государственный университет</institution>
     <city>Пенза</city>
     <country>Россия</country>
    </aff>
    <aff>
     <institution xml:lang="en">Penza State University</institution>
     <city>Penza</city>
     <country>Russian Federation</country>
    </aff>
   </aff-alternatives>
   <aff-alternatives id="aff-2">
    <aff>
     <institution xml:lang="ru">Белорусский государственный технологический университет</institution>
    </aff>
    <aff>
     <institution xml:lang="en">Belarusian State Technological University</institution>
    </aff>
   </aff-alternatives>
   <aff-alternatives id="aff-3">
    <aff>
     <institution xml:lang="ru">Пензенский государственный университет</institution>
    </aff>
    <aff>
     <institution xml:lang="en">Penza State University</institution>
    </aff>
   </aff-alternatives>
   <aff-alternatives id="aff-4">
    <aff>
     <institution xml:lang="ru">ООО «Маяк-Техноцелл»</institution>
     <country>Россия</country>
    </aff>
    <aff>
     <institution xml:lang="en">ООО «Маяк-Техноцелл»</institution>
     <country>Russian Federation</country>
    </aff>
   </aff-alternatives>
   <pub-date publication-format="print" date-type="pub" iso-8601-date="2025-08-01T11:33:32+03:00">
    <day>01</day>
    <month>08</month>
    <year>2025</year>
   </pub-date>
   <pub-date publication-format="electronic" date-type="pub" iso-8601-date="2025-08-01T11:33:32+03:00">
    <day>01</day>
    <month>08</month>
    <year>2025</year>
   </pub-date>
   <volume>28</volume>
   <issue>4</issue>
   <fpage>69</fpage>
   <lpage>75</lpage>
   <self-uri xlink:href="https://elibrary.ru/item.asp?id=81207644">https://elibrary.ru/item.asp?id=81207644</self-uri>
   <abstract xml:lang="ru">
    <p>Статья посвящена разработке и оптимизации лабораторного генератора ферратов (Fe(VI)) для эффективной очистки воды от широкого спектра загрязнителей, включая антибиотики, синтетические красители, тяжелые металлы и микроорганизмы. Установка продемонстрировала высокую производительность при оптимальных параметрах работы: плотность тока 10 мА/см², pH 12, температура 25°C и скорость потока 0,3 л/мин. Выход по току Fe(VI) достиг 78%, что обеспечило эффективность удаления загрязнителей на уровне 86% для амоксициллина, 96% для метиленового синего, 94% для дрожжевых клеток и 95% для ионов Pb²⁺. Ключевыми механизмами очистки стали: окисление органических соединений до CO₂ и H₂O (редокс-потенциал Fe(VI) +2,2 В), коагуляция взвешенных частиц гидроксидами железа Fe(OH)₃, обеззараживание за счет повреждения клеточных структур патогенов. Конструкция генератора основана на использовании железной стружки (сталь Ст3) в качестве анода, что снизило стоимость на 90% по сравнению с традиционными электродами. Модульная система обеспечила гибкость при работе с малыми объемами (50-200 мл) и различными типами загрязнений. Однако производительность установки ограничена 0,5 л/час, а необходимость частой замены диафрагмы при высокоминерализованных стоках увеличивает эксплуатационные затраты. Преимущества технологии включают экологическую безопасность (отсутствие токсичных побочных продуктов, таких как диоксины), экономичность и многофункциональность. Для анализа использовались спектрофотометрия (λ = 510 нм для Fe(VI)), турбидиметрия (OD₆₀₀ для дрожжей) и рефрактометрия, что обеспечило точность измерений при минимальных затратах. Перспективы работы связаны с интеграцией IoT-датчиков для онлайн-мониторинга и применением возобновляемых источников энергии. Результаты подтверждают потенциал ферратов как рентабельного и экологически чистого решения для водоочистки, особенно в регионах с ограниченными ресурсами.</p>
   </abstract>
   <trans-abstract xml:lang="en">
    <p>The article is devoted to the development and optimization of a laboratory ferrate generator (Fe(VI)) for effective water purification from a wide range of pollutants, including antibiotics, synthetic dyes, heavy metals and microorganisms. The installation has demonstrated high performance with optimal operating parameters: current density 10 mA/cm2, pH 12, temperature 25°C and flow rate 0.3 l/min. The current yield of Fe(VI) reached 78%, which ensured a pollutant removal efficiency of 86% for amoxicillin, 96% for methylene blue, 94% for yeast cells, and 95% for Pb2⁺ ions. The key mechanisms of steel purification: oxidation of organic compounds to co₂ and H₂O (redox potential Fe(VI) +2,2 V), coagulation of suspended particles with iron hydroxides Fe(OH)₃, disinfection due to damage to cellular structures of pathogens. The generator's design is based on the use of iron shavings (St3 steel) as an anode, which reduced the cost by 90% compared to traditional electrodes. The modular system provides flexibility for handling small volumes (50-200 ml) and various types of contaminants. However, the plant's capacity is limited to 0,5 liters/hour, and the need for frequent replacement of the diaphragm in highly mineralized drains increases operating costs. The advantages of the technology include environmental safety (absence of toxic by-products such as dioxins), cost-effectiveness and versatility. Spectrophotometry (λ = 510 nm for Fe(VI)), turbidimetry (OD₆₀₀ for yeast) and refractometry were used for the analysis, which ensured the accuracy of measurements at minimal cost. The prospects of the work are related to the integration of IoT sensors for online monitoring and the use of renewable energy sources. The results confirm the potential of ferrates as a cost-effective and environmentally friendly solution for water treatment, especially in regions with limited resources.</p>
   </trans-abstract>
   <kwd-group xml:lang="ru">
    <kwd>ФЕРРАТЫ</kwd>
    <kwd>ОЧИСТКА ВОДЫ</kwd>
    <kwd>ЭЛЕКТРОХИМИЧЕСКИЙ СИНТЕЗ</kwd>
    <kwd>КСЕНОБИОТИКИ</kwd>
    <kwd>ЭКОЛОГИЧЕСКАЯ БЕЗОПАСНОСТЬ</kwd>
    <kwd>ЛАБОРАТОРНЫЙ ГЕНЕРАТОР</kwd>
    <kwd>ЭФФЕКТИВНОСТЬ ОЧИСТКИ</kwd>
   </kwd-group>
   <kwd-group xml:lang="en">
    <kwd>FERRATES</kwd>
    <kwd>WATER PURIFICATION</kwd>
    <kwd>ELECTROCHEMICAL SYNTHESIS</kwd>
    <kwd>XENOBIOTICS</kwd>
    <kwd>ENVIRONMENTAL SAFETY</kwd>
    <kwd>LABORATORY GENERATOR</kwd>
    <kwd>PURIFICATION EFFICIENCY</kwd>
   </kwd-group>
  </article-meta>
 </front>
 <body>
  <p></p>
 </body>
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