Literatura académica sobre el tema "Dioxanne"

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Artículos de revistas sobre el tema "Dioxanne"

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Majewski, Marek, D. Mark Gleave, and Pawel Nowak. "1,3-Dioxan-5-ones: synthesis, deprotonation, and reactions of their lithium enolates." Canadian Journal of Chemistry 73, no. 10 (1995): 1616–26. http://dx.doi.org/10.1139/v95-201.

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A general synthetic route to 2-alkyl- and 2,2-dialkyl-1,3-dioxan-5-ones, using tris(hydroxymethyl)-nitromethane as the starting material, is described. Deprotonation of these compounds was studied. It was established that these dioxanones could be deprotonated with LDA; however, the reduction of the carbonyl group via a hydride transfer from LDA, giving the corresponding dioxanols, often competed with deprotonation. The reduction could be minimized by using Corey's internal quench procedure to form silyl enol ethers and was less pronounced in 2,2-dialkyldioxanones (ketals) than in 2-alkyldioxa
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Durant, F., and M. Griffé. "Structure Cristalline Du Chlorure De Lithium Dioxanne-1,4 Monohydrate: LiCl.C4H8O2. H2O." Bulletin des Sociétés Chimiques Belges 77, no. 11-12 (2010): 557–67. http://dx.doi.org/10.1002/bscb.19680771104.

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van Coppernolle, A., J. P. Declercq, J. M. Dereppe, G. Germain, and M. van Meerssche. "Structures des Phényl-5 et Éthyl-5 Diméthyl-2,2 Dioxanne-1,3 Dione-4,6." Bulletin des Sociétés Chimiques Belges 88, no. 4 (2010): 223–26. http://dx.doi.org/10.1002/bscb.19790880405.

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Crozet, Michel P., Gaëlle Archaimbault, Patrice Vanelle, and Robert Nouguier. "Reactions SRN1 en serie heterocyclique: IV: Reactivite des sels du dimethyl-2,2 nitro-5 dioxanne-1,3." Tetrahedron Letters 26, no. 42 (1985): 5133–34. http://dx.doi.org/10.1016/s0040-4039(00)98882-8.

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Macau, J., and L. Lamberts. "Conductivité électrique Du Picrate De N-Butylammonium Dans Les Mélanges Eau Ou Alcool-Dioxanne Et Nitrobenzène-Benzène." Bulletin des Sociétés Chimiques Belges 80, no. 5-6 (2010): 551–62. http://dx.doi.org/10.1002/bscb.19710800525.

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Venkatesha, N. J., Y. S. Bhat, and B. S. Jai Prakash. "Dealuminated BEA zeolite for selective synthesis of five-membered cyclic acetal from glycerol under ambient conditions." RSC Advances 6, no. 23 (2016): 18824–33. http://dx.doi.org/10.1039/c6ra01437b.

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BEA zeolite is modified using phenoldisulfonic acid to change catalyst characteristics, which helps to form a single cyclic product. A new term called volume space acidity (VSA) provides volume space available for dioxane to dioxalane rearrangement.
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Zhong, Guo Lun, Yu Jiao Jiang, Rong Li, Fei Chen, Hong Lei Mao, and Yong Hong Wang. "Preparation and Optical Properties of Poly[3,4-Bis-(1,3-Dioxane-2-Ylethyl)] Thiophene." Advanced Materials Research 391-392 (December 2011): 1423–26. http://dx.doi.org/10.4028/www.scientific.net/amr.391-392.1423.

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A new polythiophene derivative, poly[3,4-bis-(1,3-dioxane-2-ylethyl) thiophene] (PBDT) with two 1,3-dioxane groups was synthesized via two-step strategy. Firstly, a precursor polymer poly(3,4-dibromothiophene) (PDBrT) was prepared, and secondly the bromo-atoms were substituted by 1,3-dioxan-2-ylethyl groups to get the target polymer. The later reaction was monitored by FTIR spectroscopy. Molecular weights of PBDT were measured by GPC. In addition, the optical absorption and photoluminescence (PL) of PBDT and PDBrT were investigated and demonstrated that the maximum emission wavelength of PBDT
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Kuhn, Norbert, Ahmed Al Sheikh, and Manfred Steimann. "Synthesis and Structure of a Zwitterionic Imidazolium 1,3-Dioxanide." Zeitschrift für Naturforschung B 58, no. 8 (2003): 817–19. http://dx.doi.org/10.1515/znb-2003-0818.

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{Bis(methylthio)methylene}-2,2-dimethyl-4,6-dioxo-1,3- dioxane (7) reacts with cis-1,2-diamino-1,2-dicyanoethene to give 2,2-dimethyl-4,6-dioxo-5-{2-(4,5-dicyano)} imidazolio-1,3-dioxan-5-yl-imidazolium ylide (8) as a stable crystalline solid in good yield. The crystal structure of 8 × C3H6OS is discussed.
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M'Halla, J., and S. M'Halla. "Étude densimétrique et calorimétrique des systèmes binaires et ternaires (eau/dioxanne/NaB(Ph)4). Effet “clathrate" et solvatation préférentielle de B(Ph)4-." Journal de Chimie Physique et de Physico-Chimie Biologique 96, no. 8 (1999): 1450–78. http://dx.doi.org/10.1051/jcp:1999221.

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Durant, F., Y. Gobillon, P. Piret, and M. van Meerssche. "Étude par Diffraction de Rayons X de Complexes D'Halogénures Alcalins et de Molécules Organiques. V. Structure du Complexe Chlorure du Lithium. Dioxanne-1,4." Bulletin des Sociétés Chimiques Belges 75, no. 1-2 (2010): 52–69. http://dx.doi.org/10.1002/bscb.19660750106.

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Tesis sobre el tema "Dioxanne"

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BARBIERI, PATRICK. "Nouvelles syntheses d'heterocycles utilisant le dioxanne-1,4 diol-2,3." Paris 6, 1989. http://www.theses.fr/1989PA066737.

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Nouvelles syntheses d'heterocycles utilisant le dioxanne-1,4 diol-2,3. Le glyoxal ou ethanedial, le plus simple des dialdehydes alphatiques est un synthon tres utile tant en chimie heterocyclique, qu'en chimie macromoleculaire. Son utilisation a l'etat pur est difficile car il se polymerise rapidement. L'emploi de la combinaison bisulfitique ou des solutions aqueuses de ce reactif entraine parfois des problemes de reactivite et d'isolement des produits. Le dioxanne-1,4- diol-2,3, issu de la combinaison du glyoxal avec l'ethyleneglycol est un compose cristallise stable a temperature ambiante et
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2

ELAISSI, ABDELKRIM. "Proprietes explosives des melanges 1,4-dioxanne/chlore en phase vapeur." Orléans, 1994. http://www.theses.fr/1994ORLE2020.

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Les proprietes explosives des melanges 1,4-dioxanne/chlore, en phase gazeuse, ont ete etudiees principalement par la methode du tube a choc. Les vitesses de reaction de ces melanges dilues par un gaz inerte ont ete mesurees derriere une onde de choc reflechie, par spectrophotometrie d'absorption a 330 nm et d'emission dans l'infrarouge a 8,9 m. La reaction est caracterisee par une periode d'induction ou delai d'auto-inflammation que l'on a cherche a relier aux pression, temperature et composition initiale du melange. La formulation obtenue permet d'estimer a mieux que 20% pres ce delai dans de
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Battin-Leclerc, Frédérique. "Réactions du 1,4-dioxanne gazeux en présence d'oxygène ou de chlore." Vandoeuvre-les-Nancy, INPL, 1991. http://docnum.univ-lorraine.fr/public/INPL_T_1991_BATTIN_LECLERC_F.pdf.

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Ce mémoire décrit des travaux sur la pyrolyse et les réactions avec l'oxygène ou avec le chlore du 1,4-dioxanne gazeux. La pyrolyse du dioxanne a été étudiée en réacteur statique, à 510 et 550°C pour des pressions inferieures à 20 torr et des temps de séjour compris entre 1 et 10 min. Les principaux produits formés sont Co, H2, C2H4, HCHO. Un mécanisme radicalaire en chaines permet d'expliquer ces résultats expérimentaux. Une étude de l'oxydation de mélanges équimoléculaires dioxanne-Co2 en réacteur statique à des températures comprises entre 200 et 400°C et à des pressions su atmosphériques,
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Florian, Maria Carmen. "Design, synthèse et analyse structurale de nouvelles molécules hôtes : Macrocycles et cyclophanes." Rouen, 2006. http://www.theses.fr/2006ROUES034.

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Dans la première partie, nous avons réalisé la synthèse de nouveaux composés dispiro-1. 3- dioxaniques sous forme d’isomères syn et anti. La synthèse de nouveaux macrocycles à motif 1. 3-dioxanique a été réalisée par la technique de la haute dilution et par effet template. La conception de ces macrocycles a été basée sur la connaissance de la stéréochimie des précurseurs et sur la pré-organisation de ces derniers, favorable à la formation des macrocycles. Dans la deuxième partie, nous avons réalisé la synthèse et l’analyse structurale de nouveaux dérivés dioxaniques du 1. 3. 5- triacétylbenzèn
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Robert-Scott, Gabrielle. "Préparation de nouveaux dioxanes chiraux à partir de précurseurs glucidiques." Master's thesis, Université Laval, 2021. http://hdl.handle.net/20.500.11794/69672.

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La quête vers de nouveaux squelettes moléculaires en est une dont la communauté scientifique n'est pas près de se lasser. Dans un objectif de découvrir de nouvelles entités chimiques aux propriétés biologiques intéressantes, la glycochimie peut faire preuve d'avantages attrayants. Les glucides permettent d'atteindre des caractéristiques désirables de manières efficaces comme la chiralité et la fonctionnalisation. De plus, les glucides sont une des classes de biomolécules les plus importantes. Ils contribuent à une panoplie de processus biochimiques. L'étude de ces mécanismes d'actions n'est gu
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Legrand, Cécile. "Etude de la synthèse, de la caractérisation et du mésomorphisme de polymères cristaux liquides à groupes mésogènes latéraux contenant une structure dioxanne-1,3 trans." Grenoble 2 : ANRT, 1988. http://catalogue.bnf.fr/ark:/12148/cb376151451.

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Witt, Betsy Suzanne. "Bioaugmentation of TreeWells® to Enhance the Aerobic Degradation of 1,4-Dioxane at High Concentrations." Ohio University / OhioLINK, 2018. http://rave.ohiolink.edu/etdc/view?acc_num=ohiou1534768504663964.

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Ward, William Jackson. "1,4-Dioxane Remediation Using a Constructed Wetland." Diss., The University of Arizona, 2008. http://hdl.handle.net/10150/195111.

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This research addressed the question whether a constructed wetland system with phytoremediation could successfully uptake 1,4-Dioxane in groundwater and secondary effluent. It further addressed whether open pond storage could successfully treat wetland discharge. The project was located at the University of Arizona's Constructed Ecosystems Research Facility (CERF) in Tucson, Arizona. This two-year field study was motivated by previous laboratory studies which demonstrated the capability of plants to remediate the recalcitrant contaminant 1,4-Dioxane.The study was conducted in two open steel
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Voith, Matthias. "Asymmetrische Synthese von 2 Methyl-substituierten 1,3-Diolen." Aachen : Shaker, 2003. http://deposit.d-nb.de/cgi-bin/dokserv?idn=969516622.

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Dong, Chu Chuan. "Fluorinated tolane and dioxane liquid crystals for ferroelectric display applications." Thesis, University of Hull, 1994. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.301499.

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Libros sobre el tema "Dioxanne"

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Daiokishin osen chitai: Tokorozawa kara no hōkoku. Ryokufū Shuppan, 1998.

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Hartung, Rolf. Health and environmental effects assessment for l,4-dioxane. Gelman Sciences, 1989.

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Porssa, Manuchehr. Synthesis and stereochemistry of 1,3-dioxans. Portsmouth Polytechnic, Dept. ofChemistry, 1988.

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Julie, Stickney, and Diguiseppi Bill, eds. Environmental investigation and remediation: 1,4-dioxane and other solvent stabilizers. Taylor & Francis, 2010.

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Kabushiki Kaisha Kaneka Tekuno Risāchi. Heisei 20-nendo daiokishin-rui mikisei hasseigen kentō chōsa hōkokusho. Kaneka Tekuno Risāchi, 2009.

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Pearce, Robert. Picosecond laser study of the rotational dynamics of the resorufin anion in the binary solvents water/dioxane and water/THF. National Library of Canada, 1990.

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1,4-Dioxane. S. Hirsch, 1994.

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B, Wilbur Sharon, Syracuse Research Corporation, and United States. Agency for Toxic Substances and Disease Registry., eds. Toxicological profile for 1,4-dioxane. U.S. Dept. of Health and Human Services, Public Health Service, Agency for Toxic Substances and Disease Registry, 2006.

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Centre, Bhabha Atomic Research, ed. Low level estimation of 1,4-Dioxane in ambient air. Bhabha Atomic Research Centre, 2007.

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Seihin Hyōka Gijutsu Kiban Kikō., Kagaku Busshitsu Hyōka Kenkyū Kikō., and Shin Enerugī Sangyō Gijutsu Sōgō Kaihatsu Kikō (Japan), eds. 1, 4 jiokisan: Kagaku busshitsu haishutsu haaku kanri sokushinhō seirei gōbangō 1-113, CAS tōroku bangō 123-91-1 = 1, 4 dioxane. Seihin Hyōka Gijutsu Kiban Kikō Kagaku Busshitsu Kanri Sentā, 2007.

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Capítulos de libros sobre el tema "Dioxanne"

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Gooch, Jan W. "Dioxan (Dioxane)." In Encyclopedic Dictionary of Polymers. Springer New York, 2011. http://dx.doi.org/10.1007/978-1-4419-6247-8_3761.

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Hallenbeck, William H., and Kathleen M. Cunningham-Burns. "Dioxane." In Pesticides and Human Health. Springer New York, 1985. http://dx.doi.org/10.1007/978-1-4612-5054-8_34.

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Gooch, Jan W. "1,4-Dioxane." In Encyclopedic Dictionary of Polymers. Springer New York, 2011. http://dx.doi.org/10.1007/978-1-4419-6247-8_3762.

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Ware, George W. "p-Dioxane." In Reviews of Environmental Contamination and Toxicology. Springer New York, 1988. http://dx.doi.org/10.1007/978-1-4612-3922-2_10.

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Bell, Caitlin H., and Norman D. Forsberg. "1,4-Dioxane." In Emerging Contaminants Handbook. CRC Press, 2019. http://dx.doi.org/10.1201/b22226-2.

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Wohlfarth, Ch. "Viscosity of 1,4-dioxane." In Supplement to IV/18. Springer Berlin Heidelberg, 2008. http://dx.doi.org/10.1007/978-3-540-75486-2_102.

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Hirota, E., K. Kuchitsu, T. Steimle, J. Vogt, and N. Vogt. "107 C4H8O2 1,3-Dioxane." In Molecules Containing Three or Four Carbon Atoms and Molecules Containing Five or More Carbon Atoms. Springer Berlin Heidelberg, 2014. http://dx.doi.org/10.1007/978-3-642-41504-3_108.

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Wohlfarth, Christian. "Viscosity of 1,4-dioxane." In Viscosity of Pure Organic Liquids and Binary Liquid Mixtures. Springer Berlin Heidelberg, 2017. http://dx.doi.org/10.1007/978-3-662-49218-5_98.

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Bezwada, R. S., S. W. Shalaby, and H. D. Newman. "Bioabsorbable Fibers ofp-Dioxanone Copolymers." In ACS Symposium Series. American Chemical Society, 1990. http://dx.doi.org/10.1021/bk-1990-0433.ch015.

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Winkelmann, Jochen. "Diffusion coefficient of 1,4-dioxane in 1,4-dioxane-d8 at infinite dilution." In Diffusion in Gases, Liquids and Electrolytes. Springer Berlin Heidelberg, 2018. http://dx.doi.org/10.1007/978-3-662-54089-3_1544.

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Actas de conferencias sobre el tema "Dioxanne"

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Chinnasami, Harish, George Idicula, Daniel Hayes, and Ram Devireddy. "Effect of Controlled Rate Freezing on the Microstructural Properties of Poly (L-lactic Acid) Scaffolds." In ASME 2012 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/imece2012-87558.

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Bio-degradable poly (l-lactic acid) (PLLA) scaffolds were prepared by using thermally induced phase separation (TIPS) method. A solution of PLLA-Dioxane was formed by dissolving PLLA in dehydrated 1,4-Dioxane at three wt/vol percentages, specifically 3, 7 and 10%. This PLLA-Dioxane solution was then frozen in borosilicate glass vials (5mL) at three cooling rates (1, 10 and 40 °C/min) in a commercially available controlled rate freezer (CRF). The frozen solution was freeze-dried to sublimate the dioxane. The microstructural properties of the resulting PLLA scaffolds were determined utilizing Sc
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Chinnasami, Harish, Frank Breeden, Daniel Hayes, and Ram Devireddy. "Influence of Freezing (Thermal) Profiles on the Morphology and Mechanical Properties of Poly (L-Lactic Acid) Scaffolds." In ASME 2012 Summer Bioengineering Conference. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/sbc2012-80119.

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Bio-degradable Poly (l-lactic acid) (PLLA) scaffolds were prepared by using thermal liquid-liquid phase separation method. A solution of PLLA-Dioxane was prepared by dissolving PLLA in dehydrated 1,4-Dioxane. This PLLA-Dioxane solution was then directionally frozen in vials of similar dimensions but made of different materials (borosilicate glass, aluminum and copper). The frozen solution was then placed in a freeze-dryer to allow for the frozen dioxane to sublimate or lyophilized. The porosities of the resulting PLLA scaffolds were calculated and their porous structures were studied and compa
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Rizvi, Reza R., Jae K. Kim, and Hani E. Naguib. "Processing and MWNT Composition Effects on the Thermal, Electrical and Mechanical Properties of PLA-MWNT Composites." In ASME 2009 International Mechanical Engineering Congress and Exposition. ASMEDC, 2009. http://dx.doi.org/10.1115/imece2009-11314.

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This paper investigates the processing and its effects and the effect of multiwall carbon nanotube (MWNT) composition on the thermal, electrical and mechanical properties of polylactide (PLA)-MWNT composites. The composite films were prepared by a solvent casting process using two solvents, chloroform and 1,4-dioxane. The dispersion of the MWNTs in PLA was examined using a scanning electron microscope and was found to be more improved when 1,4-dioxane was used as the solvent as compared to chloroform. The thermal characteristics of the composites were examined on Differential Scanning Calorime
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Chinnasami, H., and R. Devireddy. "Osteo-Induction of Human Adipose Derived Stem Cells Cultured on Poly (L-Lactic Acid) Scaffolds Prepared by Thermally Induced Phase Separation Method." In ASME 2015 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2015. http://dx.doi.org/10.1115/imece2015-51906.

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Bio-degradable Poly (l-lactic acid) (PLLA) scaffolds synthesized using thermally induced phase separation (TIPS) method was used to load cryo-preserved human adipose derived stem cells (hASCs). To make the scaffolds, PLLA-Dioxane solutions were formed by dissolving PLLA in 1,4-Dioxane with three different compositions (wt/vol). These PLLA-Dioxane solutions, frozen in three different cooling rates were lyophilized at 0.037bar and −70°C for 48hrs resulting in porous PLLA scaffolds. Based on the porosity, pore size and compressive strength, a suitable scaffold was chosen to investigate its bio-co
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Ashok, K., N. Alagumurthi, and C. G. Saravanan. "The Effect of Mahua (Madhuca Longfolia) Oil With Dioxane Fuel Blends on Diesel Engine and Studies on Combustion and Emission Characteristics." In ASME 2009 International Mechanical Engineering Congress and Exposition. ASMEDC, 2009. http://dx.doi.org/10.1115/imece2009-12750.

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An organic compound, Dioxane, is blended to reduce the viscosity of raw vegetable oil (Mahua). A dilute blend was prepared by mixing with raw vegetable oil (Mahua) and 10% dioxane in volume basis. Tests were conducted on a single cylinder, water cooled, DI diesel engine coupled with the eddy current dynamometer. Emissions like HC, NOX, etc., were measured by using gas analyzer and smoke density was measured by using smoke meter. The cylinder pressure, heat release rate were measured by combustion analyzer. From the experimental investigation, it was observed that operating at a blend ratio of
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Chinnasami, Harish, Daniel Hayes, and Ram Devireddy. "Synthesis of Poly (L-Lactic Acid) Scaffolds Under Controlled Freezing Conditions." In ASME 2013 Summer Bioengineering Conference. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/sbc2013-14168.

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Poly (l-lactic acid) (PLLA) scaffolds for bone grafts were prepared by using Thermally Induced Phase Separation (TIPS) method. Solutions of PLLA-dioxane was formed by dissolving a pre-determined value of PLLA in dioxane (3, 7 and 10% wt/vol) at 323K. These solutions were frozen at controlled cooling rates (1, 10 and 40°C/min) in cylindrical capsules. The frozen solutions were freeze-dried for a period of 48 hours for the frozen dioxane to completely sublimate, leaving the porous PLLA scaffold. The scaffolds which were formed under different processing conditions were characterized in terms of
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Shapkin, A. A., R. V. Galeev, L. N. Gunderova, M. G. Fayzullin, and A. H. Mamleev. "Microwave spectrum and structure of 2-methyl-1,3-dioxane." In SPIE Proceedings, edited by Yurii N. Ponomarev, Semen N. Mikhailenko, and Leonid N. Sinitsa. SPIE, 2006. http://dx.doi.org/10.1117/12.724780.

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Stanton, Kathleen. "The Regulatory Landscape of Consumer Products Containing 1,4-dioxane." In Virtual 2021 AOCS Annual Meeting & Expo. American Oil Chemists’ Society (AOCS), 2021. http://dx.doi.org/10.21748/am21.454.

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Rizvi, Reza R., Jae K. Kim, and Hani E. Naguib. "Thermal, Electrical and Mechanical Properties of Blended and Solvent Cast PLA-MWNT Composites." In ASME 2009 Conference on Smart Materials, Adaptive Structures and Intelligent Systems. ASMEDC, 2009. http://dx.doi.org/10.1115/smasis2009-1314.

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This paper compares melt blending and solvent casting as processing routes for fabricating Polylactide (PLA)-Multiwall carbon nanotube (MWNT) composites. Composites with an MWNT content of 0, 0.5, 2 and 5 wt.% MWNT were fabricated using both processing techniques and their thermal, electrical and mechanical properties were evaluated. Two types of solvents, chloroform and 1,4-dioxane, were used to disperse MWNTs in PLA when preparing the solvent cast composites. Melt blended PLA-MWNT composites were prepared in a mini twin-screw compounder at a temperature of 165 °C. Samples from both processin
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Shapkin, A. A., R. V. Galeev, L. N. Gunderova, M. G. Fayzullin, and A. H. Mamleev. "Rotational spectrum, conformation and dipole moment of 4-methyl-1,3-dioxane." In SPIE Proceedings, edited by Yurii N. Ponomarev, Semen N. Mikhailenko, and Leonid N. Sinitsa. SPIE, 2006. http://dx.doi.org/10.1117/12.724843.

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Informes sobre el tema "Dioxanne"

1

Eck, William S. Studies on Metabolism of 1,4-Dioxane. Defense Technical Information Center, 2010. http://dx.doi.org/10.21236/ada528633.

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Reboulet, James E., and Amanda M. Lear. Design and Construction of a 1,4-Dioxane Vapor Generation System. Defense Technical Information Center, 2010. http://dx.doi.org/10.21236/ada525601.

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3

Alvarez-Cohen, Lisa, Ariel Grostern, Rebecca Parales, and Yinjie Tang. Oxygenase-Catalyzed Biodegradation of Emerging Water Contaminants: 1,4-Dioxane and N-Nitrosodimethylamine. Defense Technical Information Center, 2012. http://dx.doi.org/10.21236/ada579927.

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4

Mattie, David R., Timothy W. Bucher, Ashton L. Carter, et al. Acute Inhalation Toxicity Study of 1, 4-Dioxane in Rats (Rattus norvegicus). Defense Technical Information Center, 2012. http://dx.doi.org/10.21236/ada576720.

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5

de Almeida, Valmor F., Hongjun Liu, Kenneth W. Herwig, and Michelle Kidder. Neutron Scattering of Residual Hydrogen in 1,4-Dioxane-D8 Liquid. Understanding Measurements with Molecular Dynamics Simulations. Office of Scientific and Technical Information (OSTI), 2016. http://dx.doi.org/10.2172/1238755.

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