Academic literature on the topic 'Dithionate de sodium'
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Journal articles on the topic "Dithionate de sodium"
Harrison, William T. A., and M. John Plater. "An unexpected oxidation: NaK5Cl2(S2O6)2revisited." Acta Crystallographica Section E Crystallographic Communications 73, no. 2 (January 13, 2017): 188–91. http://dx.doi.org/10.1107/s2056989017000494.
Full textSchindler, Manon, Nicolas Couvrat, Yohann Cartigny, Clément Brandel, and Gérard Coquerel. "Synthesis and Characterization of Sodium Dithionate and its Dihydrate." Chemical Engineering & Technology 42, no. 7 (April 23, 2019): 1446–51. http://dx.doi.org/10.1002/ceat.201800705.
Full textChang, Tsui-Hsuan, Kuo-Hao Tung, Po-Wen Gu, Tzung-Hai Yen, and Chao-Min Cheng. "Rapid Simultaneous Determination of Paraquat and Creatinine in Human Serum Using a Piece of Paper." Micromachines 9, no. 11 (November 12, 2018): 586. http://dx.doi.org/10.3390/mi9110586.
Full textRistic, R., J. N. Sherwood, and K. Wojciechowski. "Morphology and growth kinetics of large sodium chlorate crystals grown in the presence and absence of sodium dithionate impurity." Journal of Physical Chemistry 97, no. 41 (October 1993): 10774–82. http://dx.doi.org/10.1021/j100143a042.
Full textRistić, R., B. Yu Shekunov, and J. N. Sherwood. "Growth of the tetrahedral faces of sodium chlorate crystals in the presence of dithionate impurity." Journal of Crystal Growth 139, no. 3-4 (May 1994): 336–43. http://dx.doi.org/10.1016/0022-0248(94)90185-6.
Full textLelie, S., E. O. Hole, M. Duchateau, W. Schroeyers, S. Schreurs, and D. Verellen. "The investigation of lithium formate hydrate, sodium dithionate and N-methyl taurine as clinical EPR dosimeters." Radiation Measurements 59 (December 2013): 218–24. http://dx.doi.org/10.1016/j.radmeas.2013.07.001.
Full textLan, Zhi-Peng, Xiaojun Lai, Kevin Roberts, and Helmut Klapper. "X-ray Topographic and Polarized Optical Microscopy Studies of Inversion Twinning in Sodium Chlorate Single Crystals Grown in the Presence of Sodium Dithionate Impurities." Crystal Growth & Design 14, no. 11 (October 14, 2014): 6084–92. http://dx.doi.org/10.1021/cg5012428.
Full textYamaguchi, Hiroshi, Shigehito Sato, Seiji Watanabe, and Hiroshi Naito. "Pre-embarkment Prognostication for Acute Paraquat Poisoning." Human & Experimental Toxicology 9, no. 6 (November 1990): 381–84. http://dx.doi.org/10.1177/096032719000900604.
Full textRahim, Shermin, and John Milne. "Studies on the interaction of selenite and selenium with sulphur donors. Part 4. Thiosulfate." Canadian Journal of Chemistry 74, no. 5 (May 1, 1996): 753–59. http://dx.doi.org/10.1139/v96-082.
Full textLan, Zhipeng, Guilherme A. Calligaris, Alan S. de Menezes, Adenilson O. dos Santos, Xiaojun Lai, Lisandro P. Cardoso, and Kevin J. Roberts. "Characterization of the Structural Environment of Dithionate Ions Associated with Their Role in the Crystal Habit Modification of Sodium Chlorate." Crystal Growth & Design 18, no. 6 (May 15, 2018): 3328–38. http://dx.doi.org/10.1021/acs.cgd.7b01770.
Full textDissertations / Theses on the topic "Dithionate de sodium"
Schindler, Manon. "Deracémisation du chlorate de sodium avec et sans l’influence du dithionate de sodium." Thesis, Normandie, 2020. http://www.theses.fr/2020NORMR004.
Full textIn the field of pharmaceutical chemistry, crystallization based methods are used to obtain pure enantiomers. The advantage of deracemization is the conversion of the unwanted enantiomer into the desired enantiomer by means of racemization in liquid phase, giving rise to a theoretical yield of 100%. The mechanism of Temperature Cycling Induced Deracemization (TCID) process, still matter of debate, has been investigated in this thesis. Research was focused on the development of the TCID process for sodium chlorate (NaClO3). This model compound is achiral at the solvated state which enables to focus investigation on crystallization mechanisms involved during deracemization. After the full solid state characterization of sodium dithionate (Na2S2O6), this compound has been used as a nonchiral impurity in the TCID process of NaClO3 and highlighted the key role of secondary nucleation in the process. Thus, the success of the TCID process depends on the right balance between growth and secondary nucleation. From an industrial perspective, the Couette Taylor reactor has been considered as a promising device for the development of continuous deracemization process. Attempts to deracemize NaClO3 in this kind of reactor showed that symmetry breaking and deracemization of NaClO3 were successful. Nonetheless, crystal recycling, via either attrition or secondary nucleation, has to be improved to enhance deracemization process before considering the execution of continuous process
Lan, Zhipeng. "The structural role of sodium dithionate impurity in the habit modification of sodium chlorate single crystals." Thesis, University of Leeds, 2013. http://etheses.whiterose.ac.uk/6311/.
Full textChalmin, Louis-Andre Odile. "Propriétés réductrices du dithionite de sodium dans des conditions de transfert de phase." Lyon 1, 1985. http://www.theses.fr/1985LYO19061.
Full textVegunta, Vijaya Lakshmi. "A study on the thermal stability of sodium dithionite using ATR-FTIR spectroscopy." Thesis, KTH, Fiber- och polymerteknologi, 2016. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-197370.
Full textWang, Yan. "Pretreatment and Enzymatic Treatment of Spruce : A functional designed wood components separation for a future biorefinery." Doctoral thesis, KTH, Träkemi och massateknologi, 2014. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-150395.
Full textQC 20140903
Pandey, Dhurba Raj. "Degradation of Select Chlorinated Hydrocarbons by (i) Sulfide-Treated Hydrous Ferric Oxide (HFO) and (ii) Hydroxyl Radicals Produced in the Dark by Oxygenation of Sodium Dithionite-Reduced HFO." Wright State University / OhioLINK, 2018. http://rave.ohiolink.edu/etdc/view?acc_num=wright1535462165887662.
Full textClaude-Montigny, Bénédicte. "Influence de polyélectrolytes et micelles sur la cinétique de transfert d'électrons entre l'ion dithionite et des dialkyl viologénes : rôle des interactions électrostatiques et hydrophobes, et stabilisation des viologénes réduits." Nancy 1, 1993. http://www.theses.fr/1993NAN10008.
Full textWalter, Karin. "Influence of acid hydrogen peroxide treatment on refining energy and TMP properties." Licentiate thesis, Mid Sweden University, Department of Natural Sciences, Engineering and Mathematics, 2009. http://urn.kb.se/resolve?urn=urn:nbn:se:miun:diva-9207.
Full textThe potential of using acid hydrogen peroxide under Fenton conditions to lower the electrical energy consumed during the production of Black spruce (Picea mariana) thermomechanical pulp (TMP) was investigated. The chemical system, which consisted of ferrous sulphate, hydrogen peroxide and optionally an enhancer (3,4-dimethoxybenzyl alcohol, ethylenediaminetetraacetic acid or oxalic acid/sodium oxalate), was evaluated as an inter-stage treatment where the primary refiner was used as a mixer. The produced TMPs were thoroughly characterised in order to explain the effect of the chemical system on fibre development and to be able to propose a mechanism for the impact on refining energy reduction. The possibility to improve the optical properties by washing, chelating and sodium dithionite or hydrogen peroxide bleaching the treated pulps was evaluated.
The results obtained in a pilot plant trial show that it is possible to significantly reduce the comparative specific energy consumption by approximately 20% and 35% at a freeness value of 100 ml CSF or a tensile index of 45 Nm/g by using 1% and 2% hydrogen peroxide respectively. The energy reduction is obtained without any substantial change in the fractional composition of the pulp, though tear strength is slightly reduced, as are brightness and pulp yield. No major differences between the reference pulp and the chemically treated pulps were found with respect to fibre length, width or cross-sectional dimensions. However, the acid hydrogen peroxide-treated pulps tend to have more collapsed fibres, higher flexibility, a larger specific surface area and a lower coarseness value. The yield loss accompanying the treatment is mainly a consequence of degraded hemicelluloses. It was also found that the total charge of the chemically treated pulps is higher compared to the reference pulps, something that may have influenced the softening behaviour of the fibre wall.
A washing or chelating procedure can reduce the metal ion content of the chemically treated TMPs considerably. The amount of iron can be further reduced to a level similar to that of untreated pulps by performing a reducing agent-assisted chelating stage (QY) with dithionite. The discoloration cannot, however, be completely eliminated. The brightness decrease of the treated pulps is thus not only caused by higher iron content in the pulp, but is also dependent on the type of iron compound and/or other coloured compounds connected with the acid hydrogen peroxide treatment. Oxidative bleaching with hydrogen peroxide (P) is more effective than reductive bleaching with sodium dithionite in regaining the brightness lost during the energy reductive treatment. Using a QY P sequence, a hydrogen peroxide charge of 3.8% was needed to reach an ISO brightness of 75% for the chemically treated pulps. The corresponding hydrogen peroxide charge for the untreated TMP reference was 2.5%.
The radicals generated in the Fenton reaction will probably attack and weaken/soften the available outer fibre wall layers. This could facilitate fibre development and consequently lower the electrical energy demand for a certain degree of refinement.
TSAI, TZAY-CHERNG, and 蔡再成. "The Sodium Dithionite Process From Sodium Formate." Thesis, 1997. http://ndltd.ncl.edu.tw/handle/61783099177422538114.
Full text文化大學
應用化學系
85
Abstract The Sodium Dithionite manufactured process is made from Sodium Formate reacting with Sulfur Dioxide and Sodium Hydroxide. Based on the test datum, try to find the optimum condition ex. SO2 feed concentration, SO2/HCOONa Feed ratio, HCOOCH3 content in Methanol, reaction temperature, enable to increase the purity of Na2S2O4 product, meanwhile to develop the whole production process.
Hu, Hong-Liang. "Electrochemical brightening of pulp with sodium dithionite generated in-situ." Thesis, 1994. http://hdl.handle.net/2429/4996.
Full textBooks on the topic "Dithionate de sodium"
Makarov, Sergei V. Sodium Dithionite, Rongalite, and Thiourea Oxides: Chemistry and Application. World Scientific Publishing Co Pte Ltd, 2016.
Find full textBook chapters on the topic "Dithionate de sodium"
Anes, I. A., A. B. Botelho Junior, D. C. R. Espinosa, and J. A. S. Tenório. "Effect of pH and Potential in Chemical Precipitation of Copper by Sodium Dithionite." In Energy Technology 2019, 165–74. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-06209-5_17.
Full textBotelho Junior, A. B., I. A. Anes, M. A. Carvalho, D. C. R. Espinosa, and J. A. S. Tenório. "Recovery of Copper from Nickel Laterite Leach Waste by Chemical Reduction Using Sodium Dithionite." In Energy Technology 2018, 429–34. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-72362-4_38.
Full textBotelho Junior, A. B., I. A. Anes, M. A. Carvalho, D. C. R. Espinosa, and J. A. S. Tenório. "Erratum to: Recovery of Copper from Nickel Laterite Leach Waste by Chemical Reduction Using Sodium Dithionite." In Energy Technology 2018, E1. Cham: Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-72362-4_57.
Full textMasse, C. E. "From Dibromosuccinates with Sodium Dithionite." In Three Carbon-Heteroatom Bonds: Acid Halides; Carboxylic Acids and Acid Salts, 1. Georg Thieme Verlag KG, 2007. http://dx.doi.org/10.1055/sos-sd-020-00889.
Full text"Introduction." In Sodium Dithionite, Rongalite and Thiourea Oxides, 1–3. WORLD SCIENTIFIC (EUROPE), 2016. http://dx.doi.org/10.1142/9781786340962_0001.
Full text"Synthesis." In Sodium Dithionite, Rongalite and Thiourea Oxides, 5–19. WORLD SCIENTIFIC (EUROPE), 2016. http://dx.doi.org/10.1142/9781786340962_0002.
Full text"Structure." In Sodium Dithionite, Rongalite and Thiourea Oxides, 21–32. WORLD SCIENTIFIC (EUROPE), 2016. http://dx.doi.org/10.1142/9781786340962_0003.
Full text"General Properties and Analysis." In Sodium Dithionite, Rongalite and Thiourea Oxides, 33–38. WORLD SCIENTIFIC (EUROPE), 2016. http://dx.doi.org/10.1142/9781786340962_0004.
Full text"Stability in Solutions under Anaerobic and Aerobic Conditions." In Sodium Dithionite, Rongalite and Thiourea Oxides, 39–52. WORLD SCIENTIFIC (EUROPE), 2016. http://dx.doi.org/10.1142/9781786340962_0005.
Full text"Organic Reactions." In Sodium Dithionite, Rongalite and Thiourea Oxides, 53–105. WORLD SCIENTIFIC (EUROPE), 2016. http://dx.doi.org/10.1142/9781786340962_0006.
Full textConference papers on the topic "Dithionate de sodium"
Wojciechowski, Krzysztof. "Relation between morphology, growth kinetics, and quality of sodium chlorate crystals grown from pure and sodium-dithionate-doped solutions." In Solid State Crystals: Materials Science and Applications, edited by Jozef Zmija. SPIE, 1995. http://dx.doi.org/10.1117/12.224940.
Full textReports on the topic "Dithionate de sodium"
Telfeyan, Katherine Christina. The Use of Sodium Dithionite for the Remediation of Hexavalent Chromium in Mortendad Canyon. Office of Scientific and Technical Information (OSTI), February 2018. http://dx.doi.org/10.2172/1422944.
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