Acidogenic fermentation for the production of volatile fatty acids from cassava sour starch extraction process wastewater

Cassava and its processed products, such as sour starch, form the economic backbone of various communities in Colombia. However, their production generates effluents with high organic loads, cyanide concentrations, and acidic pH levels, leading to significant deterioration of receiving wáter sources...

Full description

Autores:
SANCHEZ LEDESMA, LINA MARCELA
Tipo de recurso:
Doctoral thesis
Fecha de publicación:
2025
Institución:
Universidad del Valle
Repositorio:
Repositorio Digital Univalle
Idioma:
eng
OAI Identifier:
oai:bibliotecadigital.univalle.edu.co:10893/38142
Acceso en línea:
https://hdl.handle.net/10893/38142
Palabra clave:
Ácidos grasos volátiles (AGV)
Fermentación acidogénica
Modelación cinética
Almidón de yuca
Aguas residuales
Rights
openAccess
License
Atribución-NoComercial-SinDerivadas 4.0 Internacional (CC BY-NC-ND 4.0)
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dc.title.eng.fl_str_mv Acidogenic fermentation for the production of volatile fatty acids from cassava sour starch extraction process wastewater
title Acidogenic fermentation for the production of volatile fatty acids from cassava sour starch extraction process wastewater
spellingShingle Acidogenic fermentation for the production of volatile fatty acids from cassava sour starch extraction process wastewater
Ácidos grasos volátiles (AGV)
Fermentación acidogénica
Modelación cinética
Almidón de yuca
Aguas residuales
title_short Acidogenic fermentation for the production of volatile fatty acids from cassava sour starch extraction process wastewater
title_full Acidogenic fermentation for the production of volatile fatty acids from cassava sour starch extraction process wastewater
title_fullStr Acidogenic fermentation for the production of volatile fatty acids from cassava sour starch extraction process wastewater
title_full_unstemmed Acidogenic fermentation for the production of volatile fatty acids from cassava sour starch extraction process wastewater
title_sort Acidogenic fermentation for the production of volatile fatty acids from cassava sour starch extraction process wastewater
dc.creator.fl_str_mv SANCHEZ LEDESMA, LINA MARCELA
dc.contributor.advisor.none.fl_str_mv Ramirez-Malule, Howard
Rodriguez Victoria, Jenny Alexandra
dc.contributor.author.none.fl_str_mv SANCHEZ LEDESMA, LINA MARCELA
dc.subject.lemb.none.fl_str_mv Ácidos grasos volátiles (AGV)
Fermentación acidogénica
Modelación cinética
Almidón de yuca
Aguas residuales
topic Ácidos grasos volátiles (AGV)
Fermentación acidogénica
Modelación cinética
Almidón de yuca
Aguas residuales
description Cassava and its processed products, such as sour starch, form the economic backbone of various communities in Colombia. However, their production generates effluents with high organic loads, cyanide concentrations, and acidic pH levels, leading to significant deterioration of receiving wáter sources. If these discharges are not properly treated beforehand, bodies of water may become unsuitable for human consumption, fishing, or recreation. Previous research indicates that this type of wastewater can be treated through anaerobic digestion, yielding methane as the primary product. However, studies also suggest that the volatile fatty acids produced during the acidogenic phase of anaerobic digestion, known as acidogenic fermentation, have valuable applications in various chemical and biological processes. This doctoral thesis begins with an introduction to the environmental issues caused by effluents from sour starch extraction from cassava, along with an analysis of previous research and emerging trends in its treatment. It also outlines the challenges that motivated this study and led to the establishment of three specific objectives (Chapter 1). Next, acidogenic fermentation and volatile fatty acid production are examined as alternatives for wastewater treatment through a bibliometric análisis of existing scientific literature (Chapter 2). This analysis identified key operational variables, which were evaluated at the laboratory scale for the substrate of interest. The individual and interactive effects of fermentation time and pH (Chapter 3), as well as the substrate-microorganism relationship and temperature (Chapter 4), were examined. Additionally, recognizing the importance of modeling in complementing experimental trials and enhancing the understanding of biological processes, a kinetic study was conducted on the acidogenic fermentation of wastewater from cassava processing. This study identified the models that best fit soluble organic matter consumption and volatile fatty acid production (Chapter 5). Finally, this thesis synthesizes the results and outlines perspectives for future research in the field (Chapter 6).
publishDate 2025
dc.date.accessioned.none.fl_str_mv 2025-09-19T15:36:22Z
dc.date.available.none.fl_str_mv 2025-09-19T15:36:22Z
dc.date.issued.none.fl_str_mv 2025
dc.type.spa.fl_str_mv Trabajo de grado - Doctorado
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dc.language.iso.none.fl_str_mv eng
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dc.rights.license.spa.fl_str_mv Atribución-NoComercial-SinDerivadas 4.0 Internacional (CC BY-NC-ND 4.0)
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dc.format.extent.none.fl_str_mv 1 recurso en línea (121 páginas)
dc.format.mimetype.none.fl_str_mv application/pdf
dc.publisher.spa.fl_str_mv Universidad del Valle
dc.publisher.place.spa.fl_str_mv Colombia
dc.publisher.faculty.spa.fl_str_mv FACULTAD DE INGENIERÍA
dc.publisher.program.spa.fl_str_mv DOCTORADO EN INGENIERÍA - ÉNFASIS INGENIERÍA SANITARIA Y AMBIENTAL
dc.publisher.branch.none.fl_str_mv Sede Cali
institution Universidad del Valle
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spelling Ramirez-Malule, Howardvirtual::1785-1Rodriguez Victoria, Jenny Alexandravirtual::1786-1SANCHEZ LEDESMA, LINA MARCELAvirtual::1784-12025-09-19T15:36:22Z2025-09-19T15:36:22Z2025https://hdl.handle.net/10893/38142Cassava and its processed products, such as sour starch, form the economic backbone of various communities in Colombia. However, their production generates effluents with high organic loads, cyanide concentrations, and acidic pH levels, leading to significant deterioration of receiving wáter sources. If these discharges are not properly treated beforehand, bodies of water may become unsuitable for human consumption, fishing, or recreation. Previous research indicates that this type of wastewater can be treated through anaerobic digestion, yielding methane as the primary product. However, studies also suggest that the volatile fatty acids produced during the acidogenic phase of anaerobic digestion, known as acidogenic fermentation, have valuable applications in various chemical and biological processes. This doctoral thesis begins with an introduction to the environmental issues caused by effluents from sour starch extraction from cassava, along with an analysis of previous research and emerging trends in its treatment. It also outlines the challenges that motivated this study and led to the establishment of three specific objectives (Chapter 1). Next, acidogenic fermentation and volatile fatty acid production are examined as alternatives for wastewater treatment through a bibliometric análisis of existing scientific literature (Chapter 2). This analysis identified key operational variables, which were evaluated at the laboratory scale for the substrate of interest. The individual and interactive effects of fermentation time and pH (Chapter 3), as well as the substrate-microorganism relationship and temperature (Chapter 4), were examined. Additionally, recognizing the importance of modeling in complementing experimental trials and enhancing the understanding of biological processes, a kinetic study was conducted on the acidogenic fermentation of wastewater from cassava processing. This study identified the models that best fit soluble organic matter consumption and volatile fatty acid production (Chapter 5). Finally, this thesis synthesizes the results and outlines perspectives for future research in the field (Chapter 6).La yuca y los productos derivados de su procesamiento, como el almidón agrio, se han convertido en la base de la economía de diversas poblaciones en Colombia. Sin embargo, su producción genera efluentes potencialmente contaminantes debido a la elevada carga orgánica, las concentraciones de cianuro y el pH ácido, lo que provoca un deterioro significativo de las fuentes hídricas receptoras. Si estos vertimientos no reciben un tratamiento previo, los cuerpos de agua pueden quedar inhabilitados para otros usos, como el consumo humano, la pesca o la recreación. Investigaciones previas han demostrado que este tipo de agua residual puede tratarse mediante digestión anaerobia, obteniéndose metano como principal producto. No obstante, otros estudios han evidenciado que los ácidos grasos volátiles generados en la fase acidogénica de la digestión anaerobia, conocida como fermentación acidogénica, pueden tener aplicaciones valiosas en diversos procesos químicos y biológicos. Esta tesis doctoral inicia con una introducción a la problemática ambiental generada por los efluentes de la extracción de almidón agrio a partir de la yuca, así como un análisis de antecedentes y nuevas tendencias en su tratamiento. Además, se presentan los desafíos que justificaron el desarrollo de este trabajo y permitieron el planteamiento de tres objetivos específicos (Capítulo 1). Posteriormente, se explora la fermentación acidogénica y la producción de ácidos grasos volátiles como alternativa para el tratamiento del agua residual, a través de un análisis bibliométrico de la literatura científica existente (Capítulo 2). Como resultado de este análisis, se identificaron variables operacionales clave del proceso, las cuales fueron evaluadas a escala de laboratorio para el sustrato de interés. En este contexto, se analizaron los efectos individuales e interactivos del tiempo de fermentación y el pH (Capítulo 3), así como la relación sustrato-microorganismo y la temperatura (Capítulo 4). Adicionalmente, considerando la importancia de la modelación para complementar los ensayos experimentales y mejorar la comprensión de los procesos biológicos, se realizó un estudio cinético de la fermentación acidogénica del agua residual generada en el procesamiento de la yuca. En este estudio, se identificaron los modelos que mejor se ajustan al consumo de materia orgánica soluble y a la producción de ácidos grasos volátiles (Capítulo 5). 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jecuta públicamente en forma digital la Obra o cualquier Obra Derivada u Obra Colectiva, Usted debe mantener intacta toda la información de derecho de autor de la Obra y proporcionar, de forma razonable según el medio o manera que Usted esté utilizando: (i) el nombre del Autor Original si está provisto (o seudónimo, si fuere aplicable), y/o (ii) el nombre de la parte o las partes que el Autor Original y/o el Licenciante hubieren designado para la atribución (v.g., un instituto patrocinador, editorial, publicación) en la información de los derechos de autor del Licenciante, términos de servicios o de otras formas razonables; el título de la Obra si está provisto; en la medida de lo razonablemente factible y, si está provisto, el Identificador Uniforme de Recursos (Uniform Resource Identifier) que el Licenciante especifica para ser asociado con la Obra, salvo que tal URI no se refiera a la nota sobre los derechos de autor o a la información sobre el licenciamiento de la Obra; y en el caso de una Obra Derivada, atribuir el crédito identificando el uso de la Obra en la Obra Derivada (v.g., "Traducción Francesa de la Obra del Autor Original," o "Guión Cinematográfico basado en la Obra original del Autor Original"). Tal crédito puede ser implementado de cualquier forma razonable; en el caso, sin embargo, de Obras Derivadas u Obras Colectivas, tal crédito aparecerá, como mínimo, donde aparece el crédito de cualquier otro autor comparable y de una manera, al menos, tan destacada como el crédito de otro autor comparable.</li>
      <li>
        Para evitar toda confusión, el Licenciante aclara que, cuando la obra es una composición musical:
        <ol type="i">
          <li>Regalías por interpretación y ejecución bajo licencias generales. El Licenciante se reserva el derecho exclusivo de autorizar la ejecución pública o la ejecución pública digital de la obra y de recolectar, sea individualmente o a través de una sociedad de gestión colectiva de derechos de autor y derechos conexos (por ejemplo, SAYCO), las regalías por la ejecución pública o por la ejecución pública digital de la obra (por ejemplo Webcast) licenciada bajo licencias generales, si la interpretación o ejecución de la obra está primordialmente orientada por o dirigida a la obtención de una ventaja comercial o una compensación monetaria privada.</li>
          <li>Regalías por Fonogramas. El Licenciante se reserva el derecho exclusivo de recolectar, individualmente o a través de una sociedad de gestión colectiva de derechos de autor y derechos conexos (por ejemplo, los consagrados por la SAYCO), una agencia de derechos musicales o algún agente designado, las regalías por cualquier fonograma que Usted cree a partir de la obra (“versión cover”) y distribuya, en los términos del régimen de derechos de autor, si la creación o distribución de esa versión cover está primordialmente destinada o dirigida a obtener una ventaja comercial o una compensación monetaria privada.</li>
        </ol>
      </li>
      <li>Gestión de Derechos de Autor sobre Interpretaciones y Ejecuciones Digitales (WebCasting). Para evitar toda confusión, el Licenciante aclara que, cuando la obra sea un fonograma, el Licenciante se reserva el derecho exclusivo de autorizar la ejecución pública digital de la obra (por ejemplo, webcast) y de recolectar, individualmente o a través de una sociedad de gestión colectiva de derechos de autor y derechos conexos (por ejemplo, ACINPRO), las regalías por la ejecución pública digital de la obra (por ejemplo, webcast), sujeta a las disposiciones aplicables del régimen de Derecho de Autor, si esta ejecución pública digital está primordialmente dirigida a obtener una ventaja comercial o una compensación monetaria privada.</li>
    </ol>
  </li>
  <br/>
  <li>
    Representaciones, Garantías y Limitaciones de Responsabilidad.
    <p>A MENOS QUE LAS PARTES LO ACORDARAN DE OTRA FORMA POR ESCRITO, EL LICENCIANTE OFRECE LA OBRA (EN EL ESTADO EN EL QUE SE ENCUENTRA) “TAL CUAL”, SIN BRINDAR GARANTÍAS DE CLASE ALGUNA RESPECTO DE LA OBRA, YA SEA EXPRESA, IMPLÍCITA, LEGAL O CUALQUIERA OTRA, INCLUYENDO, SIN LIMITARSE A ELLAS, GARANTÍAS DE TITULARIDAD, COMERCIABILIDAD, ADAPTABILIDAD O ADECUACIÓN A PROPÓSITO DETERMINADO, AUSENCIA DE INFRACCIÓN, DE AUSENCIA DE DEFECTOS LATENTES O DE OTRO TIPO, O LA PRESENCIA O AUSENCIA DE ERRORES, SEAN O NO DESCUBRIBLES (PUEDAN O NO SER ESTOS DESCUBIERTOS). ALGUNAS JURISDICCIONES NO PERMITEN LA EXCLUSIÓN DE GARANTÍAS IMPLÍCITAS, EN CUYO CASO ESTA EXCLUSIÓN PUEDE NO APLICARSE A USTED.</p>
  </li>
  <br/>
  <li>
    Limitación de responsabilidad.
    <p>A MENOS QUE LO EXIJA EXPRESAMENTE LA LEY APLICABLE, EL LICENCIANTE NO SERÁ RESPONSABLE ANTE USTED POR DAÑO ALGUNO, SEA POR RESPONSABILIDAD EXTRACONTRACTUAL, PRECONTRACTUAL O CONTRACTUAL, OBJETIVA O SUBJETIVA, SE TRATE DE DAÑOS MORALES O PATRIMONIALES, DIRECTOS O INDIRECTOS, PREVISTOS O IMPREVISTOS PRODUCIDOS POR EL USO DE ESTA LICENCIA O DE LA OBRA, AUN CUANDO EL LICENCIANTE HAYA SIDO ADVERTIDO DE LA POSIBILIDAD DE DICHOS DAÑOS. ALGUNAS LEYES NO PERMITEN LA EXCLUSIÓN DE CIERTA RESPONSABILIDAD, EN CUYO CASO ESTA EXCLUSIÓN PUEDE NO APLICARSE A USTED.</p>
  </li>
  <br/>
  <li>
    Término.
    <ol type="a">
      <li>Esta Licencia y los derechos otorgados en virtud de ella terminarán automáticamente si Usted infringe alguna condición establecida en ella. Sin embargo, los individuos o entidades que han recibido Obras Derivadas o Colectivas de Usted de conformidad con esta Licencia, no verán terminadas sus licencias, siempre que estos individuos o entidades sigan cumpliendo íntegramente las condiciones de estas licencias. Las Secciones 1, 2, 5, 6, 7, y 8 subsistirán a cualquier terminación de esta Licencia.</li>
      <li>Sujeta a las condiciones y términos anteriores, la licencia otorgada aquí es perpetua (durante el período de vigencia de los derechos de autor de la obra). No obstante lo anterior, el Licenciante se reserva el derecho a publicar y/o estrenar la Obra bajo condiciones de licencia diferentes o a dejar de distribuirla en los términos de esta Licencia en cualquier momento; en el entendido, sin embargo, que esa elección no servirá para revocar esta licencia o que deba ser otorgada , bajo los términos de esta licencia), y esta licencia continuará en pleno vigor y efecto a menos que sea terminada como se expresa atrás. La Licencia revocada continuará siendo plenamente vigente y efectiva si no se le da término en las condiciones indicadas anteriormente.</li>
    </ol>
  </li>
  <br/>
  <li>
    Varios.
    <ol type="a">
      <li>Cada vez que Usted distribuya o ponga a disposición pública la Obra o una Obra Colectiva, el Licenciante ofrecerá al destinatario una licencia en los mismos términos y condiciones que la licencia otorgada a Usted bajo esta Licencia.</li>
      <li>Si alguna disposición de esta Licencia resulta invalidada o no exigible, según la legislación vigente, esto no afectará ni la validez ni la aplicabilidad del resto de condiciones de esta Licencia y, sin acción adicional por parte de los sujetos de este acuerdo, aquélla se entenderá reformada lo mínimo necesario para hacer que dicha disposición sea válida y exigible.</li>
      <li>Ningún término o disposición de esta Licencia se estimará renunciada y ninguna violación de ella será consentida a menos que esa renuncia o consentimiento sea otorgado por escrito y firmado por la parte que renuncie o consienta.</li>
      <li>Esta Licencia refleja el acuerdo pleno entre las partes respecto a la Obra aquí licenciada. No hay arreglos, acuerdos o declaraciones respecto a la Obra que no estén especificados en este documento. El Licenciante no se verá limitado por ninguna disposición adicional que pueda surgir en alguna comunicación emanada de Usted. Esta Licencia no puede ser modificada sin el consentimiento mutuo por escrito del Licenciante y Usted.</li>
    </ol>
  </li>
  <br/>
</ol>
