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1

Heitmann, Sebastian [Verfasser]. "Membrane-Assisted Downstream Processing for Biobutanol Purification / Sebastian Heitmann." München : Verlag Dr. Hut, 2014. http://d-nb.info/1064559921/34.

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2

Abdehagh, Niloofar. "Improvements in Biobutanol Production: Separation and Recovery by Adsorption." Thesis, Université d'Ottawa / University of Ottawa, 2016. http://hdl.handle.net/10393/34406.

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Due to environmental challenges, depleting oil resources, rising cost of oil and instability in oil-producing countries, biofuel production has attracted a lot of attention in recent decades. Biobutanol is one of the biofuels showing the most potential as an alternative for partly replacing petroleum-based fuels. Both researchers and industrialists are currently working at developing an energy-effective process to produce biobutanol at a large scale. Acetone-butanol-ethanol (ABE) fermentation is the biological process of biobutanol production and Clostridia are the most common bacteria used to
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3

Natalense, Júlio César. "Prospecção tecnológica do biobutanol no contexto brasileiro de biocombustíveis." Universidade de São Paulo, 2013. http://www.teses.usp.br/teses/disponiveis/85/85131/tde-13082013-091628/.

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Dois exemplos de combustíveis renováveis em uso atualmente são bioetanol e biodiesel. Novas alternativas de combustíveis incluem etanol celulósico e biobutanol. Estes apresentam vantagens pois contribuem para uma melhor produtividade e otimização do uso de biomassa. Possuem ainda boas propriedades que garantem o bom desempenho como combustíveis. A pesquisa e interesse industrial têm crescido sobre o biobutanol, com melhorias no processo tradicional de fermentação ABE (Acetona-Butanol-Etanol), desenvolvimento de novos microorganismos para aumentar o rendimento e técnicas de separação para isola
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4

NATALENSE, JULIO C. "Prospecção tecnológica do biobutanol no contexto brasileiro de biocombustíveis." reponame:Repositório Institucional do IPEN, 2013. http://repositorio.ipen.br:8080/xmlui/handle/123456789/10525.

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Made available in DSpace on 2014-10-09T12:41:29Z (GMT). No. of bitstreams: 0<br>Made available in DSpace on 2014-10-09T13:59:49Z (GMT). No. of bitstreams: 0<br>Dissertação (Mestrado)<br>IPEN/D<br>Instituto de Pesquisas Energeticas e Nucleares - IPEN-CNEN/SP
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5

Belletante, Ségolène. "Méthode multi-échelle pour la conception optimale d'une bioraffinerie multi-produit." Thesis, Toulouse, INPT, 2016. http://www.theses.fr/2016INPT0072/document.

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De nos jours, de nouvelles technologies sont développées pour produire efficacement des produits dérivés de matières premières autresque le pétrole, comme par exemple la biomasse. En effet, la biomasse et plus spécifiquement la biomasse non alimentaire possède un fort potentielcomme substitut aux ressources fossiles pour des raisons environnementales, économiques et politiques. Dans ce contexte, l’étude des bioraffineries offre de nouvelles opportunités pour le Process System Engineering et plus particulièrement pour des activités de recherche quivisent la conception de systèmes constitués d’e
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6

Sheng, Lili. "Towards biobutanol production in a thermophile using synthetic biology principles." Thesis, University of Nottingham, 2014. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.716494.

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Driven by the diminishing total reserve of fossil fuels and growing concerns about energy security and environmental issues, there is an increasing interest in developing microbial-based processes for the production of biofuel. As most natural fermentation processes do not yield desirable products at an economically viable scale, it is often required to genetically engineer, including deletion and/or insertion of necessary pathways to optimize yield or get new products. Thus it is essential to have the necessary genetic tools, and such was developed, to both improve and innovate upon existing
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7

Santangelo, Francesca [Verfasser]. "Ionic Liquids as extraction solvents for Biobutanol purification / Francesca Santangelo." München : Verlag Dr. Hut, 2013. http://d-nb.info/1045989274/34.

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8

VARGAS, David Leonardo Nuncira. "Análise Termodinâmica da produção de Biobutanol em uma BIorefinaria brasileira." reponame:Repositório Institucional da UNIFEI, 2013. http://repositorio.unifei.edu.br:8080/xmlui/handle/123456789/790.

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Submitted by repositorio repositorio (repositorio@unifei.edu.br) on 2017-06-01T17:55:03Z No. of bitstreams: 1 dissertacao_vargas_2013.pdf: 6902307 bytes, checksum: 9e904c430061193a57efc9a4e6b1cf4a (MD5)<br>Made available in DSpace on 2017-06-01T17:55:03Z (GMT). No. of bitstreams: 1 dissertacao_vargas_2013.pdf: 6902307 bytes, checksum: 9e904c430061193a57efc9a4e6b1cf4a (MD5) Previous issue date: 2013<br>Os biocombustíveis continuarão sendo o mecanismo de redução sustentável do consumo dos combustíveis fósseis na matriz energética mundial, mantendo o crescimento com a inserção de novas fontes d
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9

Chen, Tianyi. "Production of n-Butanol by Clostridium Carboxidivorans." The Ohio State University, 2019. http://rave.ohiolink.edu/etdc/view?acc_num=osu1556309785594048.

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10

Swidah, Reem. "Engineering Saccharomyces cerevisiae toward n‐butanol production." Thesis, University of Manchester, 2016. https://www.research.manchester.ac.uk/portal/en/theses/engineering-saccharomyces-cerevisiae-toward-nbutanol-production(8fbbfed7-9de7-46e9-aabe-69bfa8a6218c).html.

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Biobutanol represents a second generation biofuel, which can be producedfrom renewable resources by microorganisms. A Saccharomyces cerevisiae strainbearing the five butanol synthetic genes (hbd, adhe2, crt, ccr and ERG10) wasconstructed, where the hbd, adhe2, crt and ccr genes are derived from Clostridiumbeijerinckii, while ERG10 is a yeast gene. The genes were transformed individually onsingle cassettes, which integrated into specific chromosomal sites. The single integrantstrains were back‐crossed to create a strain bearing all five butanol synthetic genes. The butanol synthetic enzymes app
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11

Stončius, Saulius. "Biobutanolio panaudojimas biodyzelino gamyboje." Master's thesis, Lithuanian Academic Libraries Network (LABT), 2012. http://vddb.laba.lt/obj/LT-eLABa-0001:E.02~2012~D_20120621_142438-86485.

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Darbo tikslas – ištirti rapsų aliejaus peresterinimo procesą naudojant biobutanolį, įvertinti gauto biodyzelino savybes ir poveikį aplinkai. Darbo objektas – rapsų aliejaus riebalų rūgščių butilesteriai, gauti po rapsų aliejaus peresterinimo biobutanoliu. Darbo metodai – rapsų aliejaus peresterinimas butanoliu atliktas biotechnologiniu metodu, naudojant biokatalizatorių Lipozyme TL IM. Peresterinimo laipsnis, butilesterių ir parcialinių gliceridų kiekis nustatyti plonasluoksnės ir dujų chromatografijos metodais. Gauto biodyzelino savybės įvertintos pagal standarte LST EN 14214 pateiktas meto
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12

Nann, Alexander [Verfasser]. "Thermodynamics for the Extraction of Biobutanol Using Ionic Liquids / Alexander Nann." München : Verlag Dr. Hut, 2014. http://d-nb.info/1064559875/34.

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13

Van, der Merwe Abraham Blignault. "Evaluation of different process designs for biobutanol production from sugarcane molasses." Thesis, Stellenbosch : Stellenbosch University, 2010. http://hdl.handle.net/10019.1/4374.

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Thesis (MScEng (Process Engineering))--Stellenbosch University, 2010.<br>ENGLISH ABSTRACT: Recently, improved technologies have been developed for the biobutanol fermentation process: higher butanol concentrations and productivities are achieved during fermentation, and separation and purification techniques are less energy intensive. This may result in an economically viable process when compared to the petrochemical pathway for butanol production. The objective of this study is to develop process models to compare different possible process designs for biobutanol production from sugarca
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14

Cargal, Timothy Eric. "Proteomics and Genomics of Biobutanol Production from Clostridium beijerinckii." Youngstown State University / OhioLINK, 2015. http://rave.ohiolink.edu/etdc/view?acc_num=ysu1443559123.

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15

Bharathidasan, Ashok Kumar. "Production of Biobutanol from inulin-rich biomass and industrial food processing wastes." The Ohio State University, 2013. http://rave.ohiolink.edu/etdc/view?acc_num=osu1357318665.

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16

Visioli, Luiz Jardel. "PRODUÇÃO DE BIOBUTANOL A PARTIR DE SORGO SACARÍNEO POR MEIO DE PROCESSOS BIOTECNOLÓGICOS." Universidade Federal de Santa Maria, 2014. http://repositorio.ufsm.br/handle/1/7977.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior<br>The biobutanol production by fermentative process has a great importance to increase the global supply of biofuel and becomes these able to replace the use of fossil fuel. The main difficulty associated to this production occurs due the not economic viability of applied production process. The aspects that have more contribution to this are the product inhibition at low concentration, low titer and the use of expensive substrates. This work is divided in four scientific articles which are focused in question involved to this solven
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17

Watson, Julie Elizabeth. "Pentose sugar utilisation in Clostridium beijerinckii NCIMB 8052 for biobutanol production : genetic and physiological studies." Thesis, Edinburgh Napier University, 2012. http://researchrepository.napier.ac.uk/Output/6051.

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The future of biofuel production hinges on a cheap, readily available feedstock. In terms of resources available, lignocellulose is the most abundant renewable resource on the planet, available from a plethora of sources such as agriculture, forestry, industry and municipals, therefore presenting an attractive resource. Cellulose, hemicellulose and lignin are the three main constituents of lignocellulose. The viability of such a feedstock requires as much of these constituents being converted to product as possible and therefore requires the suitable candidate organism to achieve this. Hemicel
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18

Martinez, Aguilar Maricelly. "Production de biobutanol à partir de lignocellulose : un nouveau procédé thermochimique A simple process for the production of fuel additives using residual lignocellulosic biomass Production of fuel additives by direct conversion of softwood bark using a cheap metal salt Conversion of lignocellulosic biomass in biobutanol by a novel thermal process." Thesis, Ecole nationale des Mines d'Albi-Carmaux, 2020. http://www.theses.fr/2020EMAC0006.

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La demande d'énergie au cours des dernières années a augmenté et un grand pourcentage de l'énergie est dérivée des combustibles fossiles, mais l'utilisation de ces carburants a généré des émissions de CO2 et de la pollution environnementale. Pour ce problème, on a mené des recherches sur l'utilisation des énergies alternatives à partir de biomasse lignocellulosique pour produire des carburants qui réduisent les émissions de CO2. Le Canada est un pays avec une abondance de résidus lignocellulosiques qui sont une source pour la production de différents produits chimiques. La première partie de l
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19

Chogi, Marianne Akemi Neroni. "Produção de biocombustíveis a partir de glicose e manipueira." Universidade Federal de São Carlos, 2016. https://repositorio.ufscar.br/handle/ufscar/8943.

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20

Markskog, Linda. "Investigation of butanol tolerance in Saccharomyces cerevisiae and of genes linked to butanol tolerance." Thesis, Linköpings universitet, Biologi, 2017. http://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-138357.

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The global warming on earth has been obvious since the 1950’s. Fossil fuels have a big impact on the observed warming and it is time to replace them with more environmentally friendly fuels. Biobutanol has been proven to be a preferred substitute to fossil fuels. The yeast Saccharomyces cerevisiae is a potential butanol producer. A problem in the biobutanol production is that the product, butanol, is toxic to the producer. In this study four S. cerevisiae strains were investigated for 1- and 2-butanol tolerance with spot tests and growth measurements with different concentrations of 1- and 2-b
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21

Youn, Gukhee S. "BIOETHANOL AND BIOBUTANOL PRODUCTION WITH CLOSTRIDIUM CARBOXIDIVORANS, CLOSTRIDIUM BEIJERINCKII, AND CO-CULTURE FROM BIOMASS: CARBON DIOXIDE/HYDROGEN GAS VS. GLUCOSE FERMENTATION." The Ohio State University, 2017. http://rave.ohiolink.edu/etdc/view?acc_num=osu1492626355327054.

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22

Garcia-Cano, Jorge. "Deshidratación de bioalcoholes para la obtención directa de mezclas biocombustibles alcohol + gasolina por destilación azeotrópica heterogénea: estudio de la viabilidad del proceso con etanol para ser adaptado al biobutanol." Doctoral thesis, Universidad de Alicante, 2015. http://hdl.handle.net/10045/53426.

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23

Amponsah, Yvonne. "In situ product recovery of butanol and butyric acid from fermentation processes using gas stripping and reverse osmosis." Master's thesis, Alma Mater Studiorum - Università di Bologna, 2021.

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Two types of in situ product recovery processes are investigated: gas stripping for solvent removal in continuous butanol fermentation and reverse osmosis for acid separation and purification in a continuous butyric acid fermentation. Gas stripping and reverse osmosis are easy to operate and design processes that can be integrated to fermentation processes.
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24

Chen, Yi-Chun, and 陳怡君. "Biobutanol production from rice straw." Thesis, 2011. http://ndltd.ncl.edu.tw/handle/49209347364118469855.

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碩士<br>國立交通大學<br>環境工程系所<br>99<br>This study aimed to integrate a cost-effective approach on the conversion of rice straw into fermentable sugars and biobutanol production through Acetone-Butanol-Ethanol (ABE) fermentation. The optimal initial cell concentration and incubation temperature for ABE fermentation under both sterile and non-sterile conditions were resolved by central composite design and response surface methodology (CCD-RSM). Saccharification experiments of non-pretreated rice straw (NPRS), pretreated rice straw (PRS), and mixture of pretreated rice straw and acid hydrolysate (MPR
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25

Wen, Huei-Ru, and 溫惠茹. "The influence of vanillin on biobutanol production and the evaluation of continuous biobutanol production by immobilized cells." Thesis, 2015. http://ndltd.ncl.edu.tw/handle/p563uk.

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碩士<br>國立交通大學<br>環境工程系所<br>104<br>High demand and apply of fossil fuel has caused not only shortage problem, but also greenhouse effect and climate change. Therefore, the development and application of biomass energy has caught the attention around the world to reduce fossil fuel consumption and energy conservation to be eco-friendly. Beside bio-ethanol and bio-diesel that had industrialized developed, bio-butanol can be prospective biofuels product by Clostridium through ABE fermentation process. This is because bio-butanol has a higher energy density than ethanol, and can be uniformly mixed w
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26

Li, Yi-Hxuan, and 李怡萱. "Effect of Ionic Liquids on Biobutanol Production." Thesis, 2014. http://ndltd.ncl.edu.tw/handle/55n5pk.

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碩士<br>國立宜蘭大學<br>環境工程學系碩士班<br>102<br>Due to energy shortage and environmental impact, renewable energy has been draw lots of attentions in the last decade. Bioenergy is considered a potential renewable energy that converts biomass into either biofuel or biogas. In particular, acetone-butanol-ethanol (ABE) fermentation from biomass has regained lots of attentation lately. Before ABE fermentation, biomass should be hydrolyzed for releasing fermentable sugars. This relies on physical, chemical, or biological treatment to break down the matrix structure of biomass. Using ionic liquids (ILs) for bio
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27

Procentese, Alessandra. "Processes for biobutanol production from renewable resources." Tesi di dottorato, 2015. http://www.fedoa.unina.it/10172/1/TesiDottorato_AlessandraProcentese_240315.pdf.

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The impact of petroleum fuel emissions and more rapid diminishing petroleum reserves have increased the research for alternative biofuel sources. In this scenario, recently is rising the biorefinery concept. A biorefinery is a facility that produces fuels, power, heat, and value-added chemicals from biomass conversion. The study carried out during the present Ph.D. program aimed at investigating the butanol production process by fermentation from renewable resources. The activities, in order to pursue the biorefinery concept, were articulated according to three paths :i)Feedstock market and te
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28

Huang, Lu-Chun, and 黃呂鈞. "Studies on Biobutanol Production from Organic Waste Using Enriched Mixed Culture." Thesis, 2013. http://ndltd.ncl.edu.tw/handle/33143854666359425831.

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碩士<br>逢甲大學<br>綠色能源科技碩士學位學程<br>101<br>Abstract The development of biofuels in many countries has becomean important research target due to rise in crude oil prices, environmental concerns, energy security and climate change in recent years. Biofuels such as ethanol and butanol, both derived from biomass, can replace more than 25% of the energy produced, and are more suitable for mixing with gasoline. Butanol fermentation by pure bacteria as opposed to mixed cultureis mainly limited by the price of its production costs and contamination during the production and purification of pure bacteria. I
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29

JIAN, ZIH-CE, and 簡子策. "Kinetic study of biobutanol production: Effect of substrate concentration and butyrate concentration." Thesis, 2011. http://ndltd.ncl.edu.tw/handle/25104759271574255078.

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碩士<br>國立宜蘭大學<br>環境工程學系碩士班<br>99<br>For more than a century, fossil fuels have been used to satisfy humans’ needs. However, the energy demand has increased drastically due to rapid industrialization and urbanization in the middle of twentieth century. The growing concern of greenhouse effect related to the excessive use of fossil fuels is one of the major driving forces to explore alternative energy sources. The overall goal of the study was to propose a biological process in terms of acetone-butanol-ethanol (ABE) fermentation for converting renewable biomass and negative value organic waste
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30

Belletante, Ségolène. "Méthode multi-échelle pour la conception optimale d'une bioraffinerie multi-produit." Phd thesis, 2016. http://oatao.univ-toulouse.fr/16551/7/belletante_segolene.pdf.

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De nos jours, de nouvelles technologies sont développées pour produire efficacement des produits dérivés de matières premières autresque le pétrole, comme par exemple la biomasse. En effet, la biomasse et plus spécifiquement la biomasse non alimentaire possède un fort potentielcomme substitut aux ressources fossiles pour des raisons environnementales, économiques et politiques. Dans ce contexte, l’étude des bioraffineries offre de nouvelles opportunités pour le Process System Engineering et plus particulièrement pour des activités de recherche quivisent la conception de systèmes constitués d’e
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31

Pei-YiChe and 車佩怡. "Fermentative biobutanol production from agricultural wastes: strain isolation, medium optimization and fermentation strategy development." Thesis, 2010. http://ndltd.ncl.edu.tw/handle/57448933559441666241.

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碩士<br>國立成功大學<br>化學工程學系碩博士班<br>98<br>In this study, we utilized anaerobic fermentation to produce sustainable liquid biofuel (i.e., butanol) from renewable feedstock. An effective butanol-producing bacterial microflora was obtained from sewage sludge. Analysis with denaturing gradient gel electrophoresis (DGGE) followed by 16S rDNA sequence comparison, the major players in the bacterial microflora were identified as Clostridium saccharoperbutylacetonicum, Clostridium butylicum, Clostridium sp., and Clostridium acetobutylicum. Optimal medium composition for enhanced biobutanol production was ob
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32

Lee, Chuan, and 李荃. "Biobutanol production from agriculture waste, rice straw, by modified Vertical Mass-Flow type Bioreactor." Thesis, 2018. http://ndltd.ncl.edu.tw/handle/3qz84e.

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33

Chen, Chieh-Chih, and 陳建志. "Study on the Production Conditions of Biobutanol from Sargassum sp. by Batch Fermentation with Clostridium spp." Thesis, 2013. http://ndltd.ncl.edu.tw/handle/57775003122068684034.

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碩士<br>國立臺灣海洋大學<br>食品科學系<br>101<br>The purpose of this study is using Sagassum siliquosum polysaccharide hydrolysates (SPSH) that produced from Sagassum siliquosum dry powder treated with 0.4 N HCl heat-acid extraction, cellulase hydrolysis, amylase hydrolysis, and Sagassum siliquosum polysaccharides induced MA103 and MAEF108 crude enzyme hydrolysis as fermentation substrate for biobutanol production by Clostridium spp. The results of heat-acid extraction with different concentrations of diluted HCl and citric acid indicated that the reducing sugars yield of 0.4 N HCl heat-acid extraction was 1
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34

Ya-ChunLin and 林雅駿. "Enhanced biobutanol fermentation with immobilized cells using microalgal biomass as feedstock integrated with in-situ product removal." Thesis, 2018. http://ndltd.ncl.edu.tw/handle/798gq8.

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35

Liu, Teng-Wun, and 劉騰文. "Study on the Production Condition of Biobutanol Produced by Clostridium sp. Through Anaerobic Fermentation from Gracilaria sp. and the Life Cycle Assessment." Thesis, 2016. http://ndltd.ncl.edu.tw/handle/78532482928480995913.

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碩士<br>國立臺灣海洋大學<br>食品科學系<br>104<br>The objective of this study is to develop potential fermentation techniques for producing bio-butanol from red algae Gracilaria sp., to exam the effect of 2 stages gas-stripping system, upgrading the butanol tolerance of Clostridium sp., and immobilized cell on bio-butanol production, respectively, and to conduct life cycle assessment (LCA) analysis for the potential bio-butanol production protocol. The main work including hydrolyzing Gracilaria sp. and its hot water extracted polysaccharides (PS) with acid, commercially available cellulase, and multiple crude
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36

Tsung-YuTsai and 蔡宗佑. "Biobutanol fermentation with immobilized cells using agricultural wastes and microalgal biomass as feedstock combining VMD in-situ product removal to enhance butanol production." Thesis, 2014. http://ndltd.ncl.edu.tw/handle/2x57zk.

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碩士<br>國立成功大學<br>化學工程學系<br>102<br>This study first investigated the feasibility of using two kinds of pH control methods (i.e., chemical addition and auto-titration) for bio-butanol production with Clostridium acetobutylicum ATCC 824. Addition of 100 mM acetate buffer could maintain the pH at a constant level and exhibiting an improvement in the butanol concentration from 2.0 g/l to 5.5 g/l. Calcium carbonate was also used to maintain the pH of the ABE fermentation. When the concentration of calcium carbonate was greater than 8 g/l, the pH could effectively be maintained at around 4.8, which is
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37

黃鈺淳. "Developing Taiwan’s Emerging Industry by Means of Global Technology Layout:The Case of Biobutanols." Thesis, 2014. http://ndltd.ncl.edu.tw/handle/fb54b8.

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