{"id":10077,"date":"2022-06-23T14:50:00","date_gmt":"2022-06-23T12:50:00","guid":{"rendered":"https:\/\/www.toulouse-biotechnology-institute.fr\/?p=10077"},"modified":"2022-06-29T14:18:44","modified_gmt":"2022-06-29T12:18:44","slug":"soutenance-de-these-ryma-laifa","status":"publish","type":"post","link":"https:\/\/www.toulouse-biotechnology-institute.fr\/en\/soutenance-de-these-ryma-laifa\/","title":{"rendered":"Defense of thesis Ryma LAIFA"},"content":{"rendered":"<p>PhD defence <strong>29 Juin \u00e0 14h&nbsp;<\/strong>en salle&nbsp;<strong>401-TBI,<\/strong><\/p>\n\n\n\n<p>&#8220;<strong>Performances techniques et environnementales d&#8217;un photo-bior\u00e9acteur solaire pour la production de la Spiruline fraiche<\/strong>&#8221;<\/p>\n\n\n\n<p>Encadr\u00e9e par&nbsp;<\/p>\n\n\n\n<p><strong>Ligia BARNA<\/strong>&nbsp;et&nbsp;<strong>Pascal GUIRAUD<\/strong><\/p>\n\n\n\n<p>Le jury est compos\u00e9 de<\/p>\n\n\n\n<ul class=\"wp-block-list\"><li><strong>M. Jean-Philippe STEYER<\/strong>, INRAE Narbonne, Rapporteur<\/li><li><strong>M.&nbsp;J\u00e9r\u00e9my PRUVOST<\/strong>, GEPEA &#8211; Universit\u00e9 de Nantes, Rapporteur<\/li><li>M.&nbsp;<strong>Eric CLIMENT<\/strong>, IMFT Toulouse, Examinateur<\/li><li><strong>M.&nbsp;R\u00e9gis OLIVES<\/strong>, PROMES- Universit\u00e9 de Perpignan, Examinateur&nbsp;<\/li><li><strong>M.&nbsp;Aras AHMADI<\/strong>, TBI- INSA Toulouse, Invit\u00e9<\/li><li><strong>M. J\u00e9r\u00f4me MORCHAIN<\/strong>, TBI- INSA Toulouse, Invit\u00e9<\/li><li><strong>Mme Ligia BARNA,<\/strong>&nbsp;&nbsp;TBI- INSA Toulouse, Directrice de th\u00e8se<\/li><li><strong>M. Pascal GUIRAUD,&nbsp;<\/strong>TBI -INSA Toulouse, Directeur de th\u00e8se&nbsp;<\/li><\/ul>\n\n\n\n<p><strong>Abstract<\/strong><br>Les cultures de microalgues et cyanobact\u00e9ries sont des processus de production prometteurs<br>pour une large gamme de produits biosourc\u00e9s d&#8217;int\u00e9r\u00eat, impliqu\u00e9s dans les domaines de<br>l\u2019\u00e9nergie, pharmaceutique, cosm\u00e9tique, et de la nutrition humaine et animale. Les processus de<br>production de microalgues n\u00e9cessitent de l&#8217;eau, des nutriments, de la lumi\u00e8re pour la<br>croissance des cellules, et de l&#8217;\u00e9nergie pour le contr\u00f4le thermique et le m\u00e9lange. Quel qu\u2019il soit<br>le domaine d&#8217;application, la pr\u00e9diction des performances de l&#8217;ensemble de la fili\u00e8re de<br>production reste un d\u00e9fi en raison du manque de mod\u00e8les appropri\u00e9s pour chaque op\u00e9ration<br>unitaire impliqu\u00e9e. En effet, le nombre de param\u00e8tres \u00e0 prendre en compte pour l\u2019\u00e9valuation<br>la plus r\u00e9aliste de ce processus est important. Pour les m\u00eame raisons, l&#8217;optimisation de ces<br>param\u00e8tres dans l&#8217;id\u00e9e d&#8217;atteindre les meilleures performances est loin d&#8217;\u00eatre r\u00e9alis\u00e9e.<br>L&#8217;objectif de ce travail de th\u00e8se est de d\u00e9velopper un outil capable de simuler la production de<br>la Spiruline fra\u00eeche dans un photobior\u00e9acteur tubulaire fonctionnant le long d\u2019une ann\u00e9e, en<br>tenant compte des param\u00e8tres de conception et des facteurs environnementaux dynamiques<br>comme la temp\u00e9rature et la lumi\u00e8re solaire qui fluctuent dans le temps et selon la position<br>g\u00e9ographique du syst\u00e8me. Le but final est d\u2019\u00e9valuer les performances techniques et<br>environnementales de l&#8217;ensemble du processus de production.<br>Les performances d&#8217;un tel syst\u00e8me d\u00e9pendent fortement, d&#8217;un point de vue macroscopique,<br>d\u2019un principal facteur qui est l&#8217;\u00e9nergie solaire, par cons\u00e9quent, il est n\u00e9cessaire d&#8217;estimer<br>correctement les bilans \u00e9nerg\u00e9tiques de ce syst\u00e8me. Dans ce contexte multiphysique, une<br>approche locale bas\u00e9e sur la m\u00e9thode de Monte Carlo a \u00e9t\u00e9 utilis\u00e9e permettant de capturer<br>l\u2019h\u00e9t\u00e9rog\u00e9n\u00e9it\u00e9 du photobior\u00e9acteur en termes de distribution spatiale de la lumi\u00e8re. \u00c0 l\u2019\u00e9chelle<br>de la cellule, des informations sur la quantit\u00e9 r\u00e9elle de lumi\u00e8re per\u00e7ue individuellement et par<br>l\u2019ensemble de la population, ont \u00e9t\u00e9 g\u00e9n\u00e9r\u00e9es utilisant un mod\u00e8le de suivi de particules tenant<br>compte de l\u2019hydrodynamique locale. La r\u00e9ponse des cellules a \u00e9t\u00e9 d\u00e9crite par un mod\u00e8le<br>dynamique de croissance biologique permettant l\u2019estimation du taux de croissance r\u00e9el relatif<br>\u00e0 l\u2019\u00e9nergie lumineuse collect\u00e9e par le photobior\u00e9acteur.<br>L\u2019interaction entre la biomasse et son milieu de culture a \u00e9t\u00e9 \u00e9galement consid\u00e9r\u00e9e \u00e0 travers<br>l\u2019utilisation de mod\u00e8les cin\u00e9tiques, permettant de rendre compte de l\u2019influence des substrats<br>nutritifs sur la cin\u00e9tique de croissance et donc sur les performances du syst\u00e8me. En effet,<br>l\u2019\u00e9volution du milieu de culture au regard de la consommation des nutriments et la r\u00e9action<br>entre les compos\u00e9s chimique a \u00e9t\u00e9 mise en \u00e9vidence en se basant sur les \u00e9quations<br>st\u0153chiom\u00e9trique et chimiques des esp\u00e8ces pr\u00e9sentes. Quant \u00e0 la temp\u00e9rature, le deuxi\u00e8me<br>facteur fondamental de la croissance, un mod\u00e8le thermique a \u00e9t\u00e9 d\u00e9velopp\u00e9 pour estimer son<br>\u00e9volution dans le PBR avec et sans l\u2019ajout d\u2019une serre et en fonction des param\u00e8tres statiques<br>tels que la localisation et la g\u00e9om\u00e9trie, et les conditions m\u00e9t\u00e9orologiques. \u00c0 l\u2019appui des<br>diff\u00e9rents bilans d\u2019\u00e9nergie et les principaux transferts de chaleur ayant lieu entre le syst\u00e8me<br>et son environnement, ce mod\u00e8le \u00e9value les besoins \u00e9nerg\u00e9tiques \u00e0 fournir et les piste de<br>gestion thermique \u00e9ventuelles pour maintenir la temp\u00e9rature dans la plage de fonctionnement.<br>Pour une ambition finale d\u2019\u00e9valuer la faisabilit\u00e9 technique, les co\u00fbts \u00e9nerg\u00e9tiques et<br>environnementaux, un couplage entre les r\u00e9sultats de ces mod\u00e8les et la m\u00e9thode de l&#8217;analyse<br>du cycle de vie a \u00e9t\u00e9 r\u00e9alis\u00e9. Ceci permet ouvrir la voie \u00e0 une optimisation du proc\u00e9d\u00e9 de<br>production par une approche d&#8217;\u00e9co-conception.<br>Mots cl\u00e9s : Spiruline, Photobior\u00e9acteur Solaire, Simulations, Mod\u00e8le thermique,<br>Performances, ACV.<\/p>","protected":false},"excerpt":{"rendered":"<p>June 29, 2022<\/p>","protected":false},"author":1,"featured_media":10078,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[10],"tags":[25],"class_list":["post-10077","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-evenement","tag-equipe-tim"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.3 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Soutenance de th\u00e8se Ryma LAIFA | TBI, Toulouse Biotechnology Institute<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, 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